blob: 1d23c7e5d2fffecf54195359b600035e85fb3b48 [file] [log] [blame]
yangguo@chromium.org78d1ad42012-02-09 13:53:47 +00001// Copyright 2012 the V8 project authors. All rights reserved.
ricow@chromium.org65fae842010-08-25 15:26:24 +00002// Redistribution and use in source and binary forms, with or without
3// modification, are permitted provided that the following conditions are
4// met:
5//
6// * Redistributions of source code must retain the above copyright
7// notice, this list of conditions and the following disclaimer.
8// * Redistributions in binary form must reproduce the above
9// copyright notice, this list of conditions and the following
10// disclaimer in the documentation and/or other materials provided
11// with the distribution.
12// * Neither the name of Google Inc. nor the names of its
13// contributors may be used to endorse or promote products derived
14// from this software without specific prior written permission.
15//
16// THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
17// "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
18// LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
19// A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
20// OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
21// SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
22// LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
23// DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
24// THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
25// (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
26// OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
27
28#include "v8.h"
29
30#if defined(V8_TARGET_ARCH_IA32)
31
32#include "bootstrapper.h"
vegorov@chromium.org7304bca2011-05-16 12:14:13 +000033#include "code-stubs.h"
sgjesse@chromium.orgea88ce92011-03-23 11:19:56 +000034#include "isolate.h"
vegorov@chromium.org7304bca2011-05-16 12:14:13 +000035#include "jsregexp.h"
ricow@chromium.org65fae842010-08-25 15:26:24 +000036#include "regexp-macro-assembler.h"
erik.corry@gmail.com394dbcf2011-10-27 07:38:48 +000037#include "stub-cache.h"
erikcorry0ad885c2011-11-21 13:51:57 +000038#include "codegen.h"
ricow@chromium.org65fae842010-08-25 15:26:24 +000039
40namespace v8 {
41namespace internal {
42
43#define __ ACCESS_MASM(masm)
whesse@chromium.org7a392b32011-01-31 11:30:36 +000044
45void ToNumberStub::Generate(MacroAssembler* masm) {
46 // The ToNumber stub takes one argument in eax.
karlklose@chromium.org83a47282011-05-11 11:54:09 +000047 Label check_heap_number, call_builtin;
whesse@chromium.org7b260152011-06-20 15:33:18 +000048 __ JumpIfNotSmi(eax, &check_heap_number, Label::kNear);
whesse@chromium.org7a392b32011-01-31 11:30:36 +000049 __ ret(0);
50
51 __ bind(&check_heap_number);
52 __ mov(ebx, FieldOperand(eax, HeapObject::kMapOffset));
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +000053 Factory* factory = masm->isolate()->factory();
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +000054 __ cmp(ebx, Immediate(factory->heap_number_map()));
karlklose@chromium.org83a47282011-05-11 11:54:09 +000055 __ j(not_equal, &call_builtin, Label::kNear);
whesse@chromium.org7a392b32011-01-31 11:30:36 +000056 __ ret(0);
57
58 __ bind(&call_builtin);
59 __ pop(ecx); // Pop return address.
60 __ push(eax);
61 __ push(ecx); // Push return address.
62 __ InvokeBuiltin(Builtins::TO_NUMBER, JUMP_FUNCTION);
63}
64
65
ricow@chromium.org65fae842010-08-25 15:26:24 +000066void FastNewClosureStub::Generate(MacroAssembler* masm) {
67 // Create a new closure from the given function info in new
68 // space. Set the context to the current context in esi.
yangguo@chromium.org5a11aaf2012-06-20 11:29:00 +000069 Counters* counters = masm->isolate()->counters();
70
ricow@chromium.org65fae842010-08-25 15:26:24 +000071 Label gc;
72 __ AllocateInNewSpace(JSFunction::kSize, eax, ebx, ecx, &gc, TAG_OBJECT);
73
yangguo@chromium.org5a11aaf2012-06-20 11:29:00 +000074 __ IncrementCounter(counters->fast_new_closure_total(), 1);
75
ricow@chromium.org65fae842010-08-25 15:26:24 +000076 // Get the function info from the stack.
77 __ mov(edx, Operand(esp, 1 * kPointerSize));
78
mstarzinger@chromium.org1b3afd12011-11-29 14:28:56 +000079 int map_index = (language_mode_ == CLASSIC_MODE)
80 ? Context::FUNCTION_MAP_INDEX
81 : Context::STRICT_MODE_FUNCTION_MAP_INDEX;
sgjesse@chromium.orgea88ce92011-03-23 11:19:56 +000082
yangguo@chromium.org46839fb2012-08-28 09:06:19 +000083 // Compute the function map in the current native context and set that
ricow@chromium.org65fae842010-08-25 15:26:24 +000084 // as the map of the allocated object.
yangguo@chromium.org46839fb2012-08-28 09:06:19 +000085 __ mov(ecx, Operand(esi, Context::SlotOffset(Context::GLOBAL_OBJECT_INDEX)));
86 __ mov(ecx, FieldOperand(ecx, GlobalObject::kNativeContextOffset));
yangguo@chromium.org5a11aaf2012-06-20 11:29:00 +000087 __ mov(ebx, Operand(ecx, Context::SlotOffset(map_index)));
88 __ mov(FieldOperand(eax, JSObject::kMapOffset), ebx);
ricow@chromium.org65fae842010-08-25 15:26:24 +000089
90 // Initialize the rest of the function. We don't have to update the
91 // write barrier because the allocated object is in new space.
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +000092 Factory* factory = masm->isolate()->factory();
93 __ mov(ebx, Immediate(factory->empty_fixed_array()));
ricow@chromium.org65fae842010-08-25 15:26:24 +000094 __ mov(FieldOperand(eax, JSObject::kPropertiesOffset), ebx);
95 __ mov(FieldOperand(eax, JSObject::kElementsOffset), ebx);
96 __ mov(FieldOperand(eax, JSFunction::kPrototypeOrInitialMapOffset),
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +000097 Immediate(factory->the_hole_value()));
ricow@chromium.org65fae842010-08-25 15:26:24 +000098 __ mov(FieldOperand(eax, JSFunction::kSharedFunctionInfoOffset), edx);
99 __ mov(FieldOperand(eax, JSFunction::kContextOffset), esi);
100 __ mov(FieldOperand(eax, JSFunction::kLiteralsOffset), ebx);
101
102 // Initialize the code pointer in the function to be the one
103 // found in the shared function info object.
yangguo@chromium.org5a11aaf2012-06-20 11:29:00 +0000104 // But first check if there is an optimized version for our context.
105 Label check_optimized;
106 Label install_unoptimized;
107 if (FLAG_cache_optimized_code) {
108 __ mov(ebx, FieldOperand(edx, SharedFunctionInfo::kOptimizedCodeMapOffset));
109 __ test(ebx, ebx);
110 __ j(not_zero, &check_optimized, Label::kNear);
111 }
112 __ bind(&install_unoptimized);
113 __ mov(FieldOperand(eax, JSFunction::kNextFunctionLinkOffset),
114 Immediate(factory->undefined_value()));
ricow@chromium.org65fae842010-08-25 15:26:24 +0000115 __ mov(edx, FieldOperand(edx, SharedFunctionInfo::kCodeOffset));
116 __ lea(edx, FieldOperand(edx, Code::kHeaderSize));
117 __ mov(FieldOperand(eax, JSFunction::kCodeEntryOffset), edx);
118
119 // Return and remove the on-stack parameter.
120 __ ret(1 * kPointerSize);
121
yangguo@chromium.org5a11aaf2012-06-20 11:29:00 +0000122 __ bind(&check_optimized);
123
124 __ IncrementCounter(counters->fast_new_closure_try_optimized(), 1);
125
yangguo@chromium.org46839fb2012-08-28 09:06:19 +0000126 // ecx holds native context, ebx points to fixed array of 3-element entries
127 // (native context, optimized code, literals).
yangguo@chromium.org5a11aaf2012-06-20 11:29:00 +0000128 // Map must never be empty, so check the first elements.
129 Label install_optimized;
130 // Speculatively move code object into edx.
131 __ mov(edx, FieldOperand(ebx, FixedArray::kHeaderSize + kPointerSize));
132 __ cmp(ecx, FieldOperand(ebx, FixedArray::kHeaderSize));
133 __ j(equal, &install_optimized);
134
135 // Iterate through the rest of map backwards. edx holds an index as a Smi.
136 Label loop;
137 Label restore;
138 __ mov(edx, FieldOperand(ebx, FixedArray::kLengthOffset));
139 __ bind(&loop);
140 // Do not double check first entry.
141 __ cmp(edx, Immediate(Smi::FromInt(SharedFunctionInfo::kEntryLength)));
142 __ j(equal, &restore);
143 __ sub(edx, Immediate(Smi::FromInt(
144 SharedFunctionInfo::kEntryLength))); // Skip an entry.
145 __ cmp(ecx, CodeGenerator::FixedArrayElementOperand(ebx, edx, 0));
146 __ j(not_equal, &loop, Label::kNear);
147 // Hit: fetch the optimized code.
148 __ mov(edx, CodeGenerator::FixedArrayElementOperand(ebx, edx, 1));
149
150 __ bind(&install_optimized);
151 __ IncrementCounter(counters->fast_new_closure_install_optimized(), 1);
152
153 // TODO(fschneider): Idea: store proper code pointers in the optimized code
154 // map and either unmangle them on marking or do nothing as the whole map is
155 // discarded on major GC anyway.
156 __ lea(edx, FieldOperand(edx, Code::kHeaderSize));
157 __ mov(FieldOperand(eax, JSFunction::kCodeEntryOffset), edx);
158
159 // Now link a function into a list of optimized functions.
160 __ mov(edx, ContextOperand(ecx, Context::OPTIMIZED_FUNCTIONS_LIST));
161
162 __ mov(FieldOperand(eax, JSFunction::kNextFunctionLinkOffset), edx);
163 // No need for write barrier as JSFunction (eax) is in the new space.
164
165 __ mov(ContextOperand(ecx, Context::OPTIMIZED_FUNCTIONS_LIST), eax);
166 // Store JSFunction (eax) into edx before issuing write barrier as
167 // it clobbers all the registers passed.
168 __ mov(edx, eax);
169 __ RecordWriteContextSlot(
170 ecx,
171 Context::SlotOffset(Context::OPTIMIZED_FUNCTIONS_LIST),
172 edx,
173 ebx,
174 kDontSaveFPRegs);
175
176 // Return and remove the on-stack parameter.
177 __ ret(1 * kPointerSize);
178
179 __ bind(&restore);
180 // Restore SharedFunctionInfo into edx.
181 __ mov(edx, Operand(esp, 1 * kPointerSize));
182 __ jmp(&install_unoptimized);
183
ricow@chromium.org65fae842010-08-25 15:26:24 +0000184 // Create a new closure through the slower runtime call.
185 __ bind(&gc);
186 __ pop(ecx); // Temporarily remove return address.
187 __ pop(edx);
188 __ push(esi);
189 __ push(edx);
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +0000190 __ push(Immediate(factory->false_value()));
ricow@chromium.org65fae842010-08-25 15:26:24 +0000191 __ push(ecx); // Restore return address.
vegorov@chromium.org21b5e952010-11-23 10:24:40 +0000192 __ TailCallRuntime(Runtime::kNewClosure, 3, 1);
ricow@chromium.org65fae842010-08-25 15:26:24 +0000193}
194
195
196void FastNewContextStub::Generate(MacroAssembler* masm) {
197 // Try to allocate the context in new space.
198 Label gc;
ager@chromium.org0ee099b2011-01-25 14:06:47 +0000199 int length = slots_ + Context::MIN_CONTEXT_SLOTS;
200 __ AllocateInNewSpace((length * kPointerSize) + FixedArray::kHeaderSize,
ricow@chromium.org65fae842010-08-25 15:26:24 +0000201 eax, ebx, ecx, &gc, TAG_OBJECT);
202
203 // Get the function from the stack.
204 __ mov(ecx, Operand(esp, 1 * kPointerSize));
205
erik.corry@gmail.comf2038fb2012-01-16 11:42:08 +0000206 // Set up the object header.
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +0000207 Factory* factory = masm->isolate()->factory();
svenpanne@chromium.org6d786c92011-06-15 10:58:27 +0000208 __ mov(FieldOperand(eax, HeapObject::kMapOffset),
209 factory->function_context_map());
ricow@chromium.org65fae842010-08-25 15:26:24 +0000210 __ mov(FieldOperand(eax, Context::kLengthOffset),
ager@chromium.org0ee099b2011-01-25 14:06:47 +0000211 Immediate(Smi::FromInt(length)));
ricow@chromium.org65fae842010-08-25 15:26:24 +0000212
erik.corry@gmail.comf2038fb2012-01-16 11:42:08 +0000213 // Set up the fixed slots.
lrn@chromium.org5d00b602011-01-05 09:51:43 +0000214 __ Set(ebx, Immediate(0)); // Set to NULL.
ricow@chromium.org65fae842010-08-25 15:26:24 +0000215 __ mov(Operand(eax, Context::SlotOffset(Context::CLOSURE_INDEX)), ecx);
svenpanne@chromium.org6d786c92011-06-15 10:58:27 +0000216 __ mov(Operand(eax, Context::SlotOffset(Context::PREVIOUS_INDEX)), esi);
ricow@chromium.org65fae842010-08-25 15:26:24 +0000217 __ mov(Operand(eax, Context::SlotOffset(Context::EXTENSION_INDEX)), ebx);
218
svenpanne@chromium.org6d786c92011-06-15 10:58:27 +0000219 // Copy the global object from the previous context.
yangguo@chromium.org46839fb2012-08-28 09:06:19 +0000220 __ mov(ebx, Operand(esi, Context::SlotOffset(Context::GLOBAL_OBJECT_INDEX)));
221 __ mov(Operand(eax, Context::SlotOffset(Context::GLOBAL_OBJECT_INDEX)), ebx);
ricow@chromium.org65fae842010-08-25 15:26:24 +0000222
223 // Initialize the rest of the slots to undefined.
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +0000224 __ mov(ebx, factory->undefined_value());
ager@chromium.org0ee099b2011-01-25 14:06:47 +0000225 for (int i = Context::MIN_CONTEXT_SLOTS; i < length; i++) {
ricow@chromium.org65fae842010-08-25 15:26:24 +0000226 __ mov(Operand(eax, Context::SlotOffset(i)), ebx);
227 }
228
229 // Return and remove the on-stack parameter.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +0000230 __ mov(esi, eax);
ricow@chromium.org65fae842010-08-25 15:26:24 +0000231 __ ret(1 * kPointerSize);
232
233 // Need to collect. Call into runtime system.
234 __ bind(&gc);
svenpanne@chromium.org6d786c92011-06-15 10:58:27 +0000235 __ TailCallRuntime(Runtime::kNewFunctionContext, 1, 1);
ricow@chromium.org65fae842010-08-25 15:26:24 +0000236}
237
238
svenpanne@chromium.orga8bb4d92011-10-10 13:20:40 +0000239void FastNewBlockContextStub::Generate(MacroAssembler* masm) {
240 // Stack layout on entry:
241 //
242 // [esp + (1 * kPointerSize)]: function
243 // [esp + (2 * kPointerSize)]: serialized scope info
244
245 // Try to allocate the context in new space.
246 Label gc;
247 int length = slots_ + Context::MIN_CONTEXT_SLOTS;
248 __ AllocateInNewSpace(FixedArray::SizeFor(length),
249 eax, ebx, ecx, &gc, TAG_OBJECT);
250
251 // Get the function or sentinel from the stack.
252 __ mov(ecx, Operand(esp, 1 * kPointerSize));
253
254 // Get the serialized scope info from the stack.
255 __ mov(ebx, Operand(esp, 2 * kPointerSize));
256
erik.corry@gmail.comf2038fb2012-01-16 11:42:08 +0000257 // Set up the object header.
svenpanne@chromium.orga8bb4d92011-10-10 13:20:40 +0000258 Factory* factory = masm->isolate()->factory();
259 __ mov(FieldOperand(eax, HeapObject::kMapOffset),
260 factory->block_context_map());
261 __ mov(FieldOperand(eax, Context::kLengthOffset),
262 Immediate(Smi::FromInt(length)));
263
yangguo@chromium.org46839fb2012-08-28 09:06:19 +0000264 // If this block context is nested in the native context we get a smi
svenpanne@chromium.orga8bb4d92011-10-10 13:20:40 +0000265 // sentinel instead of a function. The block context should get the
yangguo@chromium.org46839fb2012-08-28 09:06:19 +0000266 // canonical empty function of the native context as its closure which
svenpanne@chromium.orga8bb4d92011-10-10 13:20:40 +0000267 // we still have to look up.
268 Label after_sentinel;
269 __ JumpIfNotSmi(ecx, &after_sentinel, Label::kNear);
270 if (FLAG_debug_code) {
271 const char* message = "Expected 0 as a Smi sentinel";
272 __ cmp(ecx, 0);
273 __ Assert(equal, message);
274 }
275 __ mov(ecx, GlobalObjectOperand());
yangguo@chromium.org46839fb2012-08-28 09:06:19 +0000276 __ mov(ecx, FieldOperand(ecx, GlobalObject::kNativeContextOffset));
svenpanne@chromium.orga8bb4d92011-10-10 13:20:40 +0000277 __ mov(ecx, ContextOperand(ecx, Context::CLOSURE_INDEX));
278 __ bind(&after_sentinel);
279
erik.corry@gmail.comf2038fb2012-01-16 11:42:08 +0000280 // Set up the fixed slots.
svenpanne@chromium.orga8bb4d92011-10-10 13:20:40 +0000281 __ mov(ContextOperand(eax, Context::CLOSURE_INDEX), ecx);
282 __ mov(ContextOperand(eax, Context::PREVIOUS_INDEX), esi);
283 __ mov(ContextOperand(eax, Context::EXTENSION_INDEX), ebx);
284
285 // Copy the global object from the previous context.
yangguo@chromium.org46839fb2012-08-28 09:06:19 +0000286 __ mov(ebx, ContextOperand(esi, Context::GLOBAL_OBJECT_INDEX));
287 __ mov(ContextOperand(eax, Context::GLOBAL_OBJECT_INDEX), ebx);
svenpanne@chromium.orga8bb4d92011-10-10 13:20:40 +0000288
289 // Initialize the rest of the slots to the hole value.
290 if (slots_ == 1) {
291 __ mov(ContextOperand(eax, Context::MIN_CONTEXT_SLOTS),
292 factory->the_hole_value());
293 } else {
294 __ mov(ebx, factory->the_hole_value());
295 for (int i = 0; i < slots_; i++) {
296 __ mov(ContextOperand(eax, i + Context::MIN_CONTEXT_SLOTS), ebx);
297 }
298 }
299
300 // Return and remove the on-stack parameters.
301 __ mov(esi, eax);
302 __ ret(2 * kPointerSize);
303
304 // Need to collect. Call into runtime system.
305 __ bind(&gc);
306 __ TailCallRuntime(Runtime::kPushBlockContext, 2, 1);
307}
308
309
erikcorry0ad885c2011-11-21 13:51:57 +0000310static void GenerateFastCloneShallowArrayCommon(
311 MacroAssembler* masm,
312 int length,
313 FastCloneShallowArrayStub::Mode mode,
314 Label* fail) {
315 // Registers on entry:
ricow@chromium.org65fae842010-08-25 15:26:24 +0000316 //
erikcorry0ad885c2011-11-21 13:51:57 +0000317 // ecx: boilerplate literal array.
318 ASSERT(mode != FastCloneShallowArrayStub::CLONE_ANY_ELEMENTS);
ricow@chromium.org65fae842010-08-25 15:26:24 +0000319
320 // All sizes here are multiples of kPointerSize.
erik.corry@gmail.com394dbcf2011-10-27 07:38:48 +0000321 int elements_size = 0;
erikcorry0ad885c2011-11-21 13:51:57 +0000322 if (length > 0) {
323 elements_size = mode == FastCloneShallowArrayStub::CLONE_DOUBLE_ELEMENTS
324 ? FixedDoubleArray::SizeFor(length)
325 : FixedArray::SizeFor(length);
erik.corry@gmail.com394dbcf2011-10-27 07:38:48 +0000326 }
ricow@chromium.org65fae842010-08-25 15:26:24 +0000327 int size = JSArray::kSize + elements_size;
328
ricow@chromium.org65fae842010-08-25 15:26:24 +0000329 // Allocate both the JS array and the elements array in one big
330 // allocation. This avoids multiple limit checks.
erikcorry0ad885c2011-11-21 13:51:57 +0000331 __ AllocateInNewSpace(size, eax, ebx, edx, fail, TAG_OBJECT);
ricow@chromium.org65fae842010-08-25 15:26:24 +0000332
333 // Copy the JS array part.
334 for (int i = 0; i < JSArray::kSize; i += kPointerSize) {
erikcorry0ad885c2011-11-21 13:51:57 +0000335 if ((i != JSArray::kElementsOffset) || (length == 0)) {
ricow@chromium.org65fae842010-08-25 15:26:24 +0000336 __ mov(ebx, FieldOperand(ecx, i));
337 __ mov(FieldOperand(eax, i), ebx);
338 }
339 }
340
erikcorry0ad885c2011-11-21 13:51:57 +0000341 if (length > 0) {
ricow@chromium.org65fae842010-08-25 15:26:24 +0000342 // Get hold of the elements array of the boilerplate and setup the
343 // elements pointer in the resulting object.
344 __ mov(ecx, FieldOperand(ecx, JSArray::kElementsOffset));
345 __ lea(edx, Operand(eax, JSArray::kSize));
346 __ mov(FieldOperand(eax, JSArray::kElementsOffset), edx);
347
348 // Copy the elements array.
erikcorry0ad885c2011-11-21 13:51:57 +0000349 if (mode == FastCloneShallowArrayStub::CLONE_ELEMENTS) {
erik.corry@gmail.com394dbcf2011-10-27 07:38:48 +0000350 for (int i = 0; i < elements_size; i += kPointerSize) {
351 __ mov(ebx, FieldOperand(ecx, i));
352 __ mov(FieldOperand(edx, i), ebx);
353 }
354 } else {
erikcorry0ad885c2011-11-21 13:51:57 +0000355 ASSERT(mode == FastCloneShallowArrayStub::CLONE_DOUBLE_ELEMENTS);
erik.corry@gmail.com394dbcf2011-10-27 07:38:48 +0000356 int i;
357 for (i = 0; i < FixedDoubleArray::kHeaderSize; i += kPointerSize) {
358 __ mov(ebx, FieldOperand(ecx, i));
359 __ mov(FieldOperand(edx, i), ebx);
360 }
361 while (i < elements_size) {
362 __ fld_d(FieldOperand(ecx, i));
363 __ fstp_d(FieldOperand(edx, i));
364 i += kDoubleSize;
365 }
366 ASSERT(i == elements_size);
ricow@chromium.org65fae842010-08-25 15:26:24 +0000367 }
368 }
erikcorry0ad885c2011-11-21 13:51:57 +0000369}
ricow@chromium.org65fae842010-08-25 15:26:24 +0000370
erikcorry0ad885c2011-11-21 13:51:57 +0000371
372void FastCloneShallowArrayStub::Generate(MacroAssembler* masm) {
373 // Stack layout on entry:
374 //
375 // [esp + kPointerSize]: constant elements.
376 // [esp + (2 * kPointerSize)]: literal index.
377 // [esp + (3 * kPointerSize)]: literals array.
378
379 // Load boilerplate object into ecx and check if we need to create a
380 // boilerplate.
381 __ mov(ecx, Operand(esp, 3 * kPointerSize));
382 __ mov(eax, Operand(esp, 2 * kPointerSize));
383 STATIC_ASSERT(kPointerSize == 4);
384 STATIC_ASSERT(kSmiTagSize == 1);
385 STATIC_ASSERT(kSmiTag == 0);
386 __ mov(ecx, FieldOperand(ecx, eax, times_half_pointer_size,
387 FixedArray::kHeaderSize));
388 Factory* factory = masm->isolate()->factory();
389 __ cmp(ecx, factory->undefined_value());
390 Label slow_case;
391 __ j(equal, &slow_case);
392
393 FastCloneShallowArrayStub::Mode mode = mode_;
394 // ecx is boilerplate object.
395 if (mode == CLONE_ANY_ELEMENTS) {
396 Label double_elements, check_fast_elements;
397 __ mov(ebx, FieldOperand(ecx, JSArray::kElementsOffset));
398 __ CheckMap(ebx, factory->fixed_cow_array_map(),
399 &check_fast_elements, DONT_DO_SMI_CHECK);
400 GenerateFastCloneShallowArrayCommon(masm, 0,
401 COPY_ON_WRITE_ELEMENTS, &slow_case);
402 __ ret(3 * kPointerSize);
403
404 __ bind(&check_fast_elements);
405 __ CheckMap(ebx, factory->fixed_array_map(),
406 &double_elements, DONT_DO_SMI_CHECK);
407 GenerateFastCloneShallowArrayCommon(masm, length_,
408 CLONE_ELEMENTS, &slow_case);
409 __ ret(3 * kPointerSize);
410
411 __ bind(&double_elements);
412 mode = CLONE_DOUBLE_ELEMENTS;
413 // Fall through to generate the code to handle double elements.
414 }
415
416 if (FLAG_debug_code) {
417 const char* message;
418 Handle<Map> expected_map;
419 if (mode == CLONE_ELEMENTS) {
420 message = "Expected (writable) fixed array";
421 expected_map = factory->fixed_array_map();
422 } else if (mode == CLONE_DOUBLE_ELEMENTS) {
423 message = "Expected (writable) fixed double array";
424 expected_map = factory->fixed_double_array_map();
425 } else {
426 ASSERT(mode == COPY_ON_WRITE_ELEMENTS);
427 message = "Expected copy-on-write fixed array";
428 expected_map = factory->fixed_cow_array_map();
429 }
430 __ push(ecx);
431 __ mov(ecx, FieldOperand(ecx, JSArray::kElementsOffset));
432 __ cmp(FieldOperand(ecx, HeapObject::kMapOffset), expected_map);
433 __ Assert(equal, message);
434 __ pop(ecx);
435 }
436
437 GenerateFastCloneShallowArrayCommon(masm, length_, mode, &slow_case);
ricow@chromium.org65fae842010-08-25 15:26:24 +0000438 // Return and remove the on-stack parameters.
439 __ ret(3 * kPointerSize);
440
441 __ bind(&slow_case);
442 __ TailCallRuntime(Runtime::kCreateArrayLiteralShallow, 3, 1);
443}
444
445
mstarzinger@chromium.orgf8c6bd52011-11-23 12:13:52 +0000446void FastCloneShallowObjectStub::Generate(MacroAssembler* masm) {
447 // Stack layout on entry:
448 //
449 // [esp + kPointerSize]: object literal flags.
450 // [esp + (2 * kPointerSize)]: constant properties.
451 // [esp + (3 * kPointerSize)]: literal index.
452 // [esp + (4 * kPointerSize)]: literals array.
453
454 // Load boilerplate object into ecx and check if we need to create a
455 // boilerplate.
456 Label slow_case;
457 __ mov(ecx, Operand(esp, 4 * kPointerSize));
458 __ mov(eax, Operand(esp, 3 * kPointerSize));
459 STATIC_ASSERT(kPointerSize == 4);
460 STATIC_ASSERT(kSmiTagSize == 1);
461 STATIC_ASSERT(kSmiTag == 0);
462 __ mov(ecx, FieldOperand(ecx, eax, times_half_pointer_size,
463 FixedArray::kHeaderSize));
464 Factory* factory = masm->isolate()->factory();
465 __ cmp(ecx, factory->undefined_value());
466 __ j(equal, &slow_case);
467
468 // Check that the boilerplate contains only fast properties and we can
469 // statically determine the instance size.
470 int size = JSObject::kHeaderSize + length_ * kPointerSize;
471 __ mov(eax, FieldOperand(ecx, HeapObject::kMapOffset));
472 __ movzx_b(eax, FieldOperand(eax, Map::kInstanceSizeOffset));
473 __ cmp(eax, Immediate(size >> kPointerSizeLog2));
474 __ j(not_equal, &slow_case);
475
476 // Allocate the JS object and copy header together with all in-object
477 // properties from the boilerplate.
478 __ AllocateInNewSpace(size, eax, ebx, edx, &slow_case, TAG_OBJECT);
479 for (int i = 0; i < size; i += kPointerSize) {
480 __ mov(ebx, FieldOperand(ecx, i));
481 __ mov(FieldOperand(eax, i), ebx);
482 }
483
484 // Return and remove the on-stack parameters.
485 __ ret(4 * kPointerSize);
486
487 __ bind(&slow_case);
488 __ TailCallRuntime(Runtime::kCreateObjectLiteralShallow, 4, 1);
489}
490
491
ricow@chromium.org9fa09672011-07-25 11:05:35 +0000492// The stub expects its argument on the stack and returns its result in tos_:
493// zero for false, and a non-zero value for true.
ricow@chromium.org65fae842010-08-25 15:26:24 +0000494void ToBooleanStub::Generate(MacroAssembler* masm) {
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +0000495 // This stub overrides SometimesSetsUpAFrame() to return false. That means
496 // we cannot call anything that could cause a GC from this stub.
ricow@chromium.org9fa09672011-07-25 11:05:35 +0000497 Label patch;
ager@chromium.orgea91cc52011-05-23 06:06:11 +0000498 Factory* factory = masm->isolate()->factory();
ricow@chromium.org9fa09672011-07-25 11:05:35 +0000499 const Register argument = eax;
lrn@chromium.orgac2828d2011-06-23 06:29:21 +0000500 const Register map = edx;
501
ricow@chromium.org9fa09672011-07-25 11:05:35 +0000502 if (!types_.IsEmpty()) {
503 __ mov(argument, Operand(esp, 1 * kPointerSize));
504 }
ager@chromium.orgea91cc52011-05-23 06:06:11 +0000505
506 // undefined -> false
whesse@chromium.org4acdc2c2011-08-15 13:01:23 +0000507 CheckOddball(masm, UNDEFINED, Heap::kUndefinedValueRootIndex, false);
ager@chromium.orgea91cc52011-05-23 06:06:11 +0000508
509 // Boolean -> its value
whesse@chromium.org4acdc2c2011-08-15 13:01:23 +0000510 CheckOddball(masm, BOOLEAN, Heap::kFalseValueRootIndex, false);
511 CheckOddball(masm, BOOLEAN, Heap::kTrueValueRootIndex, true);
ricow@chromium.org65fae842010-08-25 15:26:24 +0000512
lrn@chromium.orgac2828d2011-06-23 06:29:21 +0000513 // 'null' -> false.
whesse@chromium.org4acdc2c2011-08-15 13:01:23 +0000514 CheckOddball(masm, NULL_TYPE, Heap::kNullValueRootIndex, false);
ricow@chromium.org65fae842010-08-25 15:26:24 +0000515
ricow@chromium.org9fa09672011-07-25 11:05:35 +0000516 if (types_.Contains(SMI)) {
517 // Smis: 0 -> false, all other -> true
518 Label not_smi;
519 __ JumpIfNotSmi(argument, &not_smi, Label::kNear);
whesse@chromium.org4acdc2c2011-08-15 13:01:23 +0000520 // argument contains the correct return value already.
ricow@chromium.org9fa09672011-07-25 11:05:35 +0000521 if (!tos_.is(argument)) {
522 __ mov(tos_, argument);
523 }
524 __ ret(1 * kPointerSize);
525 __ bind(&not_smi);
vegorov@chromium.org7943d462011-08-01 11:41:52 +0000526 } else if (types_.NeedsMap()) {
ricow@chromium.org9fa09672011-07-25 11:05:35 +0000527 // If we need a map later and have a Smi -> patch.
528 __ JumpIfSmi(argument, &patch, Label::kNear);
529 }
ricow@chromium.org65fae842010-08-25 15:26:24 +0000530
vegorov@chromium.org7943d462011-08-01 11:41:52 +0000531 if (types_.NeedsMap()) {
ricow@chromium.org9fa09672011-07-25 11:05:35 +0000532 __ mov(map, FieldOperand(argument, HeapObject::kMapOffset));
ricow@chromium.org65fae842010-08-25 15:26:24 +0000533
whesse@chromium.org4acdc2c2011-08-15 13:01:23 +0000534 if (types_.CanBeUndetectable()) {
535 __ test_b(FieldOperand(map, Map::kBitFieldOffset),
536 1 << Map::kIsUndetectable);
537 // Undetectable -> false.
538 Label not_undetectable;
539 __ j(zero, &not_undetectable, Label::kNear);
540 __ Set(tos_, Immediate(0));
541 __ ret(1 * kPointerSize);
542 __ bind(&not_undetectable);
543 }
ricow@chromium.org9fa09672011-07-25 11:05:35 +0000544 }
ricow@chromium.org65fae842010-08-25 15:26:24 +0000545
ricow@chromium.org9fa09672011-07-25 11:05:35 +0000546 if (types_.Contains(SPEC_OBJECT)) {
547 // spec object -> true.
548 Label not_js_object;
549 __ CmpInstanceType(map, FIRST_SPEC_OBJECT_TYPE);
550 __ j(below, &not_js_object, Label::kNear);
whesse@chromium.org4acdc2c2011-08-15 13:01:23 +0000551 // argument contains the correct return value already.
552 if (!tos_.is(argument)) {
553 __ Set(tos_, Immediate(1));
554 }
ricow@chromium.org9fa09672011-07-25 11:05:35 +0000555 __ ret(1 * kPointerSize);
556 __ bind(&not_js_object);
ricow@chromium.org9fa09672011-07-25 11:05:35 +0000557 }
ricow@chromium.org65fae842010-08-25 15:26:24 +0000558
ricow@chromium.org9fa09672011-07-25 11:05:35 +0000559 if (types_.Contains(STRING)) {
560 // String value -> false iff empty.
561 Label not_string;
562 __ CmpInstanceType(map, FIRST_NONSTRING_TYPE);
563 __ j(above_equal, &not_string, Label::kNear);
564 __ mov(tos_, FieldOperand(argument, String::kLengthOffset));
565 __ ret(1 * kPointerSize); // the string length is OK as the return value
566 __ bind(&not_string);
ricow@chromium.org9fa09672011-07-25 11:05:35 +0000567 }
568
569 if (types_.Contains(HEAP_NUMBER)) {
570 // heap number -> false iff +0, -0, or NaN.
571 Label not_heap_number, false_result;
572 __ cmp(map, factory->heap_number_map());
573 __ j(not_equal, &not_heap_number, Label::kNear);
574 __ fldz();
575 __ fld_d(FieldOperand(argument, HeapNumber::kValueOffset));
576 __ FCmp();
577 __ j(zero, &false_result, Label::kNear);
whesse@chromium.org4acdc2c2011-08-15 13:01:23 +0000578 // argument contains the correct return value already.
579 if (!tos_.is(argument)) {
580 __ Set(tos_, Immediate(1));
581 }
ricow@chromium.org9fa09672011-07-25 11:05:35 +0000582 __ ret(1 * kPointerSize);
583 __ bind(&false_result);
584 __ Set(tos_, Immediate(0));
585 __ ret(1 * kPointerSize);
586 __ bind(&not_heap_number);
ricow@chromium.org9fa09672011-07-25 11:05:35 +0000587 }
588
whesse@chromium.org4acdc2c2011-08-15 13:01:23 +0000589 __ bind(&patch);
590 GenerateTypeTransition(masm);
ricow@chromium.org9fa09672011-07-25 11:05:35 +0000591}
592
593
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +0000594void StoreBufferOverflowStub::Generate(MacroAssembler* masm) {
595 // We don't allow a GC during a store buffer overflow so there is no need to
596 // store the registers in any particular way, but we do have to store and
597 // restore them.
598 __ pushad();
599 if (save_doubles_ == kSaveFPRegs) {
600 CpuFeatures::Scope scope(SSE2);
601 __ sub(esp, Immediate(kDoubleSize * XMMRegister::kNumRegisters));
602 for (int i = 0; i < XMMRegister::kNumRegisters; i++) {
603 XMMRegister reg = XMMRegister::from_code(i);
604 __ movdbl(Operand(esp, i * kDoubleSize), reg);
605 }
606 }
607 const int argument_count = 1;
608
609 AllowExternalCallThatCantCauseGC scope(masm);
610 __ PrepareCallCFunction(argument_count, ecx);
611 __ mov(Operand(esp, 0 * kPointerSize),
612 Immediate(ExternalReference::isolate_address()));
613 __ CallCFunction(
614 ExternalReference::store_buffer_overflow_function(masm->isolate()),
615 argument_count);
616 if (save_doubles_ == kSaveFPRegs) {
617 CpuFeatures::Scope scope(SSE2);
618 for (int i = 0; i < XMMRegister::kNumRegisters; i++) {
619 XMMRegister reg = XMMRegister::from_code(i);
620 __ movdbl(reg, Operand(esp, i * kDoubleSize));
621 }
622 __ add(esp, Immediate(kDoubleSize * XMMRegister::kNumRegisters));
623 }
624 __ popad();
625 __ ret(0);
626}
627
628
ricow@chromium.org9fa09672011-07-25 11:05:35 +0000629void ToBooleanStub::CheckOddball(MacroAssembler* masm,
630 Type type,
lrn@chromium.orgd4e9e222011-08-03 12:01:58 +0000631 Heap::RootListIndex value,
whesse@chromium.org4acdc2c2011-08-15 13:01:23 +0000632 bool result) {
ricow@chromium.org9fa09672011-07-25 11:05:35 +0000633 const Register argument = eax;
634 if (types_.Contains(type)) {
635 // If we see an expected oddball, return its ToBoolean value tos_.
636 Label different_value;
lrn@chromium.orgd4e9e222011-08-03 12:01:58 +0000637 __ CompareRoot(argument, value);
ricow@chromium.org9fa09672011-07-25 11:05:35 +0000638 __ j(not_equal, &different_value, Label::kNear);
whesse@chromium.org4acdc2c2011-08-15 13:01:23 +0000639 if (!result) {
640 // If we have to return zero, there is no way around clearing tos_.
641 __ Set(tos_, Immediate(0));
642 } else if (!tos_.is(argument)) {
643 // If we have to return non-zero, we can re-use the argument if it is the
644 // same register as the result, because we never see Smi-zero here.
645 __ Set(tos_, Immediate(1));
646 }
ricow@chromium.org9fa09672011-07-25 11:05:35 +0000647 __ ret(1 * kPointerSize);
648 __ bind(&different_value);
ricow@chromium.org9fa09672011-07-25 11:05:35 +0000649 }
650}
651
652
653void ToBooleanStub::GenerateTypeTransition(MacroAssembler* masm) {
654 __ pop(ecx); // Get return address, operand is now on top of stack.
655 __ push(Immediate(Smi::FromInt(tos_.code())));
656 __ push(Immediate(Smi::FromInt(types_.ToByte())));
657 __ push(ecx); // Push return address.
658 // Patch the caller to an appropriate specialized stub and return the
659 // operation result to the caller of the stub.
660 __ TailCallExternalReference(
661 ExternalReference(IC_Utility(IC::kToBoolean_Patch), masm->isolate()),
662 3,
663 1);
ricow@chromium.org65fae842010-08-25 15:26:24 +0000664}
665
666
ricow@chromium.org65fae842010-08-25 15:26:24 +0000667class FloatingPointHelper : public AllStatic {
668 public:
ricow@chromium.org65fae842010-08-25 15:26:24 +0000669 enum ArgLocation {
670 ARGS_ON_STACK,
671 ARGS_IN_REGISTERS
672 };
673
674 // Code pattern for loading a floating point value. Input value must
675 // be either a smi or a heap number object (fp value). Requirements:
676 // operand in register number. Returns operand as floating point number
677 // on FPU stack.
678 static void LoadFloatOperand(MacroAssembler* masm, Register number);
679
680 // Code pattern for loading floating point values. Input values must
681 // be either smi or heap number objects (fp values). Requirements:
682 // operand_1 on TOS+1 or in edx, operand_2 on TOS+2 or in eax.
683 // Returns operands as floating point numbers on FPU stack.
684 static void LoadFloatOperands(MacroAssembler* masm,
685 Register scratch,
686 ArgLocation arg_location = ARGS_ON_STACK);
687
688 // Similar to LoadFloatOperand but assumes that both operands are smis.
689 // Expects operands in edx, eax.
690 static void LoadFloatSmis(MacroAssembler* masm, Register scratch);
691
692 // Test if operands are smi or number objects (fp). Requirements:
693 // operand_1 in eax, operand_2 in edx; falls through on float
694 // operands, jumps to the non_float label otherwise.
695 static void CheckFloatOperands(MacroAssembler* masm,
696 Label* non_float,
697 Register scratch);
698
kasperl@chromium.orga5551262010-12-07 12:49:48 +0000699 // Checks that the two floating point numbers on top of the FPU stack
700 // have int32 values.
701 static void CheckFloatOperandsAreInt32(MacroAssembler* masm,
702 Label* non_int32);
703
ricow@chromium.org65fae842010-08-25 15:26:24 +0000704 // Takes the operands in edx and eax and loads them as integers in eax
705 // and ecx.
ricow@chromium.org65fae842010-08-25 15:26:24 +0000706 static void LoadUnknownsAsIntegers(MacroAssembler* masm,
707 bool use_sse3,
708 Label* operand_conversion_failure);
709
kasperl@chromium.orga5551262010-12-07 12:49:48 +0000710 // Must only be called after LoadUnknownsAsIntegers. Assumes that the
711 // operands are pushed on the stack, and that their conversions to int32
712 // are in eax and ecx. Checks that the original numbers were in the int32
713 // range.
714 static void CheckLoadedIntegersWereInt32(MacroAssembler* masm,
715 bool use_sse3,
716 Label* not_int32);
717
718 // Assumes that operands are smis or heap numbers and loads them
719 // into xmm0 and xmm1. Operands are in edx and eax.
ricow@chromium.org65fae842010-08-25 15:26:24 +0000720 // Leaves operands unchanged.
721 static void LoadSSE2Operands(MacroAssembler* masm);
722
723 // Test if operands are numbers (smi or HeapNumber objects), and load
724 // them into xmm0 and xmm1 if they are. Jump to label not_numbers if
725 // either operand is not a number. Operands are in edx and eax.
726 // Leaves operands unchanged.
727 static void LoadSSE2Operands(MacroAssembler* masm, Label* not_numbers);
728
729 // Similar to LoadSSE2Operands but assumes that both operands are smis.
730 // Expects operands in edx, eax.
731 static void LoadSSE2Smis(MacroAssembler* masm, Register scratch);
kasperl@chromium.orga5551262010-12-07 12:49:48 +0000732
733 // Checks that the two floating point numbers loaded into xmm0 and xmm1
734 // have int32 values.
735 static void CheckSSE2OperandsAreInt32(MacroAssembler* masm,
736 Label* non_int32,
737 Register scratch);
ricow@chromium.org65fae842010-08-25 15:26:24 +0000738};
739
740
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000741// Get the integer part of a heap number. Surprisingly, all this bit twiddling
742// is faster than using the built-in instructions on floating point registers.
743// Trashes edi and ebx. Dest is ecx. Source cannot be ecx or one of the
744// trashed registers.
745static void IntegerConvert(MacroAssembler* masm,
746 Register source,
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000747 bool use_sse3,
748 Label* conversion_failure) {
749 ASSERT(!source.is(ecx) && !source.is(edi) && !source.is(ebx));
750 Label done, right_exponent, normal_exponent;
751 Register scratch = ebx;
752 Register scratch2 = edi;
vegorov@chromium.org7304bca2011-05-16 12:14:13 +0000753 // Get exponent word.
754 __ mov(scratch, FieldOperand(source, HeapNumber::kExponentOffset));
755 // Get exponent alone in scratch2.
756 __ mov(scratch2, scratch);
757 __ and_(scratch2, HeapNumber::kExponentMask);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000758 if (use_sse3) {
759 CpuFeatures::Scope scope(SSE3);
vegorov@chromium.org7304bca2011-05-16 12:14:13 +0000760 // Check whether the exponent is too big for a 64 bit signed integer.
761 static const uint32_t kTooBigExponent =
762 (HeapNumber::kExponentBias + 63) << HeapNumber::kExponentShift;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +0000763 __ cmp(scratch2, Immediate(kTooBigExponent));
vegorov@chromium.org7304bca2011-05-16 12:14:13 +0000764 __ j(greater_equal, conversion_failure);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000765 // Load x87 register with heap number.
766 __ fld_d(FieldOperand(source, HeapNumber::kValueOffset));
767 // Reserve space for 64 bit answer.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +0000768 __ sub(esp, Immediate(sizeof(uint64_t))); // Nolint.
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000769 // Do conversion, which cannot fail because we checked the exponent.
770 __ fisttp_d(Operand(esp, 0));
771 __ mov(ecx, Operand(esp, 0)); // Load low word of answer into ecx.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +0000772 __ add(esp, Immediate(sizeof(uint64_t))); // Nolint.
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000773 } else {
774 // Load ecx with zero. We use this either for the final shift or
775 // for the answer.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +0000776 __ xor_(ecx, ecx);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000777 // Check whether the exponent matches a 32 bit signed int that cannot be
778 // represented by a Smi. A non-smi 32 bit integer is 1.xxx * 2^30 so the
779 // exponent is 30 (biased). This is the exponent that we are fastest at and
780 // also the highest exponent we can handle here.
781 const uint32_t non_smi_exponent =
782 (HeapNumber::kExponentBias + 30) << HeapNumber::kExponentShift;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +0000783 __ cmp(scratch2, Immediate(non_smi_exponent));
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000784 // If we have a match of the int32-but-not-Smi exponent then skip some
785 // logic.
ricow@chromium.org4668a2c2011-08-29 10:41:00 +0000786 __ j(equal, &right_exponent, Label::kNear);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000787 // If the exponent is higher than that then go to slow case. This catches
788 // numbers that don't fit in a signed int32, infinities and NaNs.
ricow@chromium.org4668a2c2011-08-29 10:41:00 +0000789 __ j(less, &normal_exponent, Label::kNear);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000790
791 {
792 // Handle a big exponent. The only reason we have this code is that the
793 // >>> operator has a tendency to generate numbers with an exponent of 31.
794 const uint32_t big_non_smi_exponent =
795 (HeapNumber::kExponentBias + 31) << HeapNumber::kExponentShift;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +0000796 __ cmp(scratch2, Immediate(big_non_smi_exponent));
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000797 __ j(not_equal, conversion_failure);
798 // We have the big exponent, typically from >>>. This means the number is
799 // in the range 2^31 to 2^32 - 1. Get the top bits of the mantissa.
800 __ mov(scratch2, scratch);
801 __ and_(scratch2, HeapNumber::kMantissaMask);
802 // Put back the implicit 1.
803 __ or_(scratch2, 1 << HeapNumber::kExponentShift);
804 // Shift up the mantissa bits to take up the space the exponent used to
805 // take. We just orred in the implicit bit so that took care of one and
806 // we want to use the full unsigned range so we subtract 1 bit from the
807 // shift distance.
808 const int big_shift_distance = HeapNumber::kNonMantissaBitsInTopWord - 1;
809 __ shl(scratch2, big_shift_distance);
810 // Get the second half of the double.
811 __ mov(ecx, FieldOperand(source, HeapNumber::kMantissaOffset));
812 // Shift down 21 bits to get the most significant 11 bits or the low
813 // mantissa word.
814 __ shr(ecx, 32 - big_shift_distance);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +0000815 __ or_(ecx, scratch2);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000816 // We have the answer in ecx, but we may need to negate it.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +0000817 __ test(scratch, scratch);
ricow@chromium.org4668a2c2011-08-29 10:41:00 +0000818 __ j(positive, &done, Label::kNear);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000819 __ neg(ecx);
ricow@chromium.org4668a2c2011-08-29 10:41:00 +0000820 __ jmp(&done, Label::kNear);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000821 }
822
823 __ bind(&normal_exponent);
824 // Exponent word in scratch, exponent part of exponent word in scratch2.
825 // Zero in ecx.
826 // We know the exponent is smaller than 30 (biased). If it is less than
ulan@chromium.org2efb9002012-01-19 15:36:35 +0000827 // 0 (biased) then the number is smaller in magnitude than 1.0 * 2^0, i.e.
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000828 // it rounds to zero.
829 const uint32_t zero_exponent =
830 (HeapNumber::kExponentBias + 0) << HeapNumber::kExponentShift;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +0000831 __ sub(scratch2, Immediate(zero_exponent));
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000832 // ecx already has a Smi zero.
ricow@chromium.org4668a2c2011-08-29 10:41:00 +0000833 __ j(less, &done, Label::kNear);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000834
835 // We have a shifted exponent between 0 and 30 in scratch2.
836 __ shr(scratch2, HeapNumber::kExponentShift);
837 __ mov(ecx, Immediate(30));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +0000838 __ sub(ecx, scratch2);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000839
840 __ bind(&right_exponent);
841 // Here ecx is the shift, scratch is the exponent word.
842 // Get the top bits of the mantissa.
843 __ and_(scratch, HeapNumber::kMantissaMask);
844 // Put back the implicit 1.
845 __ or_(scratch, 1 << HeapNumber::kExponentShift);
846 // Shift up the mantissa bits to take up the space the exponent used to
847 // take. We have kExponentShift + 1 significant bits int he low end of the
848 // word. Shift them to the top bits.
849 const int shift_distance = HeapNumber::kNonMantissaBitsInTopWord - 2;
850 __ shl(scratch, shift_distance);
851 // Get the second half of the double. For some exponents we don't
852 // actually need this because the bits get shifted out again, but
853 // it's probably slower to test than just to do it.
854 __ mov(scratch2, FieldOperand(source, HeapNumber::kMantissaOffset));
855 // Shift down 22 bits to get the most significant 10 bits or the low
856 // mantissa word.
857 __ shr(scratch2, 32 - shift_distance);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +0000858 __ or_(scratch2, scratch);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000859 // Move down according to the exponent.
860 __ shr_cl(scratch2);
861 // Now the unsigned answer is in scratch2. We need to move it to ecx and
862 // we may need to fix the sign.
karlklose@chromium.org83a47282011-05-11 11:54:09 +0000863 Label negative;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +0000864 __ xor_(ecx, ecx);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000865 __ cmp(ecx, FieldOperand(source, HeapNumber::kExponentOffset));
karlklose@chromium.org83a47282011-05-11 11:54:09 +0000866 __ j(greater, &negative, Label::kNear);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000867 __ mov(ecx, scratch2);
karlklose@chromium.org83a47282011-05-11 11:54:09 +0000868 __ jmp(&done, Label::kNear);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000869 __ bind(&negative);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +0000870 __ sub(ecx, scratch2);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000871 __ bind(&done);
872 }
873}
874
875
whesse@chromium.org030d38e2011-07-13 13:23:34 +0000876void UnaryOpStub::PrintName(StringStream* stream) {
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000877 const char* op_name = Token::Name(op_);
878 const char* overwrite_name = NULL; // Make g++ happy.
879 switch (mode_) {
880 case UNARY_NO_OVERWRITE: overwrite_name = "Alloc"; break;
881 case UNARY_OVERWRITE: overwrite_name = "Overwrite"; break;
882 }
whesse@chromium.org030d38e2011-07-13 13:23:34 +0000883 stream->Add("UnaryOpStub_%s_%s_%s",
884 op_name,
885 overwrite_name,
886 UnaryOpIC::GetName(operand_type_));
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000887}
888
889
890// TODO(svenpanne): Use virtual functions instead of switch.
danno@chromium.org40cb8782011-05-25 07:58:50 +0000891void UnaryOpStub::Generate(MacroAssembler* masm) {
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000892 switch (operand_type_) {
danno@chromium.org40cb8782011-05-25 07:58:50 +0000893 case UnaryOpIC::UNINITIALIZED:
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000894 GenerateTypeTransition(masm);
895 break;
danno@chromium.org40cb8782011-05-25 07:58:50 +0000896 case UnaryOpIC::SMI:
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000897 GenerateSmiStub(masm);
898 break;
danno@chromium.org40cb8782011-05-25 07:58:50 +0000899 case UnaryOpIC::HEAP_NUMBER:
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000900 GenerateHeapNumberStub(masm);
901 break;
danno@chromium.org40cb8782011-05-25 07:58:50 +0000902 case UnaryOpIC::GENERIC:
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000903 GenerateGenericStub(masm);
904 break;
905 }
906}
907
908
danno@chromium.org40cb8782011-05-25 07:58:50 +0000909void UnaryOpStub::GenerateTypeTransition(MacroAssembler* masm) {
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000910 __ pop(ecx); // Save return address.
ricow@chromium.org4f693d62011-07-04 14:01:31 +0000911
912 __ push(eax); // the operand
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000913 __ push(Immediate(Smi::FromInt(op_)));
ricow@chromium.org4f693d62011-07-04 14:01:31 +0000914 __ push(Immediate(Smi::FromInt(mode_)));
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000915 __ push(Immediate(Smi::FromInt(operand_type_)));
916
917 __ push(ecx); // Push return address.
918
919 // Patch the caller to an appropriate specialized stub and return the
920 // operation result to the caller of the stub.
921 __ TailCallExternalReference(
ricow@chromium.org4f693d62011-07-04 14:01:31 +0000922 ExternalReference(IC_Utility(IC::kUnaryOp_Patch), masm->isolate()), 4, 1);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000923}
924
925
926// TODO(svenpanne): Use virtual functions instead of switch.
danno@chromium.org40cb8782011-05-25 07:58:50 +0000927void UnaryOpStub::GenerateSmiStub(MacroAssembler* masm) {
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000928 switch (op_) {
929 case Token::SUB:
930 GenerateSmiStubSub(masm);
931 break;
932 case Token::BIT_NOT:
933 GenerateSmiStubBitNot(masm);
934 break;
935 default:
936 UNREACHABLE();
937 }
938}
939
940
danno@chromium.org40cb8782011-05-25 07:58:50 +0000941void UnaryOpStub::GenerateSmiStubSub(MacroAssembler* masm) {
karlklose@chromium.org83a47282011-05-11 11:54:09 +0000942 Label non_smi, undo, slow;
943 GenerateSmiCodeSub(masm, &non_smi, &undo, &slow,
944 Label::kNear, Label::kNear, Label::kNear);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000945 __ bind(&undo);
946 GenerateSmiCodeUndo(masm);
947 __ bind(&non_smi);
948 __ bind(&slow);
949 GenerateTypeTransition(masm);
950}
951
952
danno@chromium.org40cb8782011-05-25 07:58:50 +0000953void UnaryOpStub::GenerateSmiStubBitNot(MacroAssembler* masm) {
karlklose@chromium.org83a47282011-05-11 11:54:09 +0000954 Label non_smi;
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000955 GenerateSmiCodeBitNot(masm, &non_smi);
956 __ bind(&non_smi);
957 GenerateTypeTransition(masm);
958}
959
960
danno@chromium.org40cb8782011-05-25 07:58:50 +0000961void UnaryOpStub::GenerateSmiCodeSub(MacroAssembler* masm,
962 Label* non_smi,
963 Label* undo,
964 Label* slow,
965 Label::Distance non_smi_near,
966 Label::Distance undo_near,
967 Label::Distance slow_near) {
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000968 // Check whether the value is a smi.
whesse@chromium.org7b260152011-06-20 15:33:18 +0000969 __ JumpIfNotSmi(eax, non_smi, non_smi_near);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000970
971 // We can't handle -0 with smis, so use a type transition for that case.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +0000972 __ test(eax, eax);
karlklose@chromium.org83a47282011-05-11 11:54:09 +0000973 __ j(zero, slow, slow_near);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000974
975 // Try optimistic subtraction '0 - value', saving operand in eax for undo.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +0000976 __ mov(edx, eax);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000977 __ Set(eax, Immediate(0));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +0000978 __ sub(eax, edx);
karlklose@chromium.org83a47282011-05-11 11:54:09 +0000979 __ j(overflow, undo, undo_near);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000980 __ ret(0);
981}
982
983
danno@chromium.org40cb8782011-05-25 07:58:50 +0000984void UnaryOpStub::GenerateSmiCodeBitNot(
karlklose@chromium.org83a47282011-05-11 11:54:09 +0000985 MacroAssembler* masm,
986 Label* non_smi,
987 Label::Distance non_smi_near) {
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000988 // Check whether the value is a smi.
whesse@chromium.org7b260152011-06-20 15:33:18 +0000989 __ JumpIfNotSmi(eax, non_smi, non_smi_near);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +0000990
991 // Flip bits and revert inverted smi-tag.
992 __ not_(eax);
993 __ and_(eax, ~kSmiTagMask);
994 __ ret(0);
995}
996
997
danno@chromium.org40cb8782011-05-25 07:58:50 +0000998void UnaryOpStub::GenerateSmiCodeUndo(MacroAssembler* masm) {
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +0000999 __ mov(eax, edx);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +00001000}
1001
1002
1003// TODO(svenpanne): Use virtual functions instead of switch.
danno@chromium.org40cb8782011-05-25 07:58:50 +00001004void UnaryOpStub::GenerateHeapNumberStub(MacroAssembler* masm) {
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +00001005 switch (op_) {
1006 case Token::SUB:
1007 GenerateHeapNumberStubSub(masm);
1008 break;
1009 case Token::BIT_NOT:
1010 GenerateHeapNumberStubBitNot(masm);
1011 break;
1012 default:
1013 UNREACHABLE();
1014 }
1015}
1016
1017
danno@chromium.org40cb8782011-05-25 07:58:50 +00001018void UnaryOpStub::GenerateHeapNumberStubSub(MacroAssembler* masm) {
ager@chromium.orgea91cc52011-05-23 06:06:11 +00001019 Label non_smi, undo, slow, call_builtin;
1020 GenerateSmiCodeSub(masm, &non_smi, &undo, &call_builtin, Label::kNear);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +00001021 __ bind(&non_smi);
1022 GenerateHeapNumberCodeSub(masm, &slow);
1023 __ bind(&undo);
1024 GenerateSmiCodeUndo(masm);
1025 __ bind(&slow);
1026 GenerateTypeTransition(masm);
ager@chromium.orgea91cc52011-05-23 06:06:11 +00001027 __ bind(&call_builtin);
1028 GenerateGenericCodeFallback(masm);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +00001029}
1030
1031
danno@chromium.org40cb8782011-05-25 07:58:50 +00001032void UnaryOpStub::GenerateHeapNumberStubBitNot(
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +00001033 MacroAssembler* masm) {
karlklose@chromium.org83a47282011-05-11 11:54:09 +00001034 Label non_smi, slow;
1035 GenerateSmiCodeBitNot(masm, &non_smi, Label::kNear);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +00001036 __ bind(&non_smi);
1037 GenerateHeapNumberCodeBitNot(masm, &slow);
1038 __ bind(&slow);
1039 GenerateTypeTransition(masm);
1040}
1041
1042
danno@chromium.org40cb8782011-05-25 07:58:50 +00001043void UnaryOpStub::GenerateHeapNumberCodeSub(MacroAssembler* masm,
1044 Label* slow) {
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +00001045 __ mov(edx, FieldOperand(eax, HeapObject::kMapOffset));
1046 __ cmp(edx, masm->isolate()->factory()->heap_number_map());
1047 __ j(not_equal, slow);
1048
1049 if (mode_ == UNARY_OVERWRITE) {
1050 __ xor_(FieldOperand(eax, HeapNumber::kExponentOffset),
1051 Immediate(HeapNumber::kSignMask)); // Flip sign.
1052 } else {
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00001053 __ mov(edx, eax);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +00001054 // edx: operand
1055
1056 Label slow_allocate_heapnumber, heapnumber_allocated;
1057 __ AllocateHeapNumber(eax, ebx, ecx, &slow_allocate_heapnumber);
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00001058 __ jmp(&heapnumber_allocated, Label::kNear);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +00001059
1060 __ bind(&slow_allocate_heapnumber);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00001061 {
1062 FrameScope scope(masm, StackFrame::INTERNAL);
1063 __ push(edx);
1064 __ CallRuntime(Runtime::kNumberAlloc, 0);
1065 __ pop(edx);
1066 }
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +00001067
1068 __ bind(&heapnumber_allocated);
1069 // eax: allocated 'empty' number
1070 __ mov(ecx, FieldOperand(edx, HeapNumber::kExponentOffset));
1071 __ xor_(ecx, HeapNumber::kSignMask); // Flip sign.
1072 __ mov(FieldOperand(eax, HeapNumber::kExponentOffset), ecx);
1073 __ mov(ecx, FieldOperand(edx, HeapNumber::kMantissaOffset));
1074 __ mov(FieldOperand(eax, HeapNumber::kMantissaOffset), ecx);
1075 }
1076 __ ret(0);
1077}
1078
1079
danno@chromium.org40cb8782011-05-25 07:58:50 +00001080void UnaryOpStub::GenerateHeapNumberCodeBitNot(MacroAssembler* masm,
1081 Label* slow) {
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +00001082 __ mov(edx, FieldOperand(eax, HeapObject::kMapOffset));
1083 __ cmp(edx, masm->isolate()->factory()->heap_number_map());
1084 __ j(not_equal, slow);
1085
1086 // Convert the heap number in eax to an untagged integer in ecx.
vegorov@chromium.org7304bca2011-05-16 12:14:13 +00001087 IntegerConvert(masm, eax, CpuFeatures::IsSupported(SSE3), slow);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +00001088
1089 // Do the bitwise operation and check if the result fits in a smi.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00001090 Label try_float;
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +00001091 __ not_(ecx);
1092 __ cmp(ecx, 0xc0000000);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00001093 __ j(sign, &try_float, Label::kNear);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +00001094
1095 // Tag the result as a smi and we're done.
1096 STATIC_ASSERT(kSmiTagSize == 1);
1097 __ lea(eax, Operand(ecx, times_2, kSmiTag));
1098 __ ret(0);
1099
1100 // Try to store the result in a heap number.
1101 __ bind(&try_float);
1102 if (mode_ == UNARY_NO_OVERWRITE) {
1103 Label slow_allocate_heapnumber, heapnumber_allocated;
kmillikin@chromium.orgc53e10d2011-05-18 09:12:58 +00001104 __ mov(ebx, eax);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +00001105 __ AllocateHeapNumber(eax, edx, edi, &slow_allocate_heapnumber);
1106 __ jmp(&heapnumber_allocated);
1107
1108 __ bind(&slow_allocate_heapnumber);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00001109 {
1110 FrameScope scope(masm, StackFrame::INTERNAL);
1111 // Push the original HeapNumber on the stack. The integer value can't
1112 // be stored since it's untagged and not in the smi range (so we can't
1113 // smi-tag it). We'll recalculate the value after the GC instead.
1114 __ push(ebx);
1115 __ CallRuntime(Runtime::kNumberAlloc, 0);
1116 // New HeapNumber is in eax.
1117 __ pop(edx);
1118 }
kmillikin@chromium.orgc53e10d2011-05-18 09:12:58 +00001119 // IntegerConvert uses ebx and edi as scratch registers.
1120 // This conversion won't go slow-case.
1121 IntegerConvert(masm, edx, CpuFeatures::IsSupported(SSE3), slow);
1122 __ not_(ecx);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +00001123
1124 __ bind(&heapnumber_allocated);
1125 }
1126 if (CpuFeatures::IsSupported(SSE2)) {
1127 CpuFeatures::Scope use_sse2(SSE2);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00001128 __ cvtsi2sd(xmm0, ecx);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +00001129 __ movdbl(FieldOperand(eax, HeapNumber::kValueOffset), xmm0);
1130 } else {
1131 __ push(ecx);
1132 __ fild_s(Operand(esp, 0));
1133 __ pop(ecx);
1134 __ fstp_d(FieldOperand(eax, HeapNumber::kValueOffset));
1135 }
1136 __ ret(0);
1137}
1138
1139
1140// TODO(svenpanne): Use virtual functions instead of switch.
danno@chromium.org40cb8782011-05-25 07:58:50 +00001141void UnaryOpStub::GenerateGenericStub(MacroAssembler* masm) {
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +00001142 switch (op_) {
1143 case Token::SUB:
1144 GenerateGenericStubSub(masm);
1145 break;
1146 case Token::BIT_NOT:
1147 GenerateGenericStubBitNot(masm);
1148 break;
1149 default:
1150 UNREACHABLE();
1151 }
1152}
1153
1154
danno@chromium.org40cb8782011-05-25 07:58:50 +00001155void UnaryOpStub::GenerateGenericStubSub(MacroAssembler* masm) {
karlklose@chromium.org83a47282011-05-11 11:54:09 +00001156 Label non_smi, undo, slow;
1157 GenerateSmiCodeSub(masm, &non_smi, &undo, &slow, Label::kNear);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +00001158 __ bind(&non_smi);
1159 GenerateHeapNumberCodeSub(masm, &slow);
1160 __ bind(&undo);
1161 GenerateSmiCodeUndo(masm);
1162 __ bind(&slow);
1163 GenerateGenericCodeFallback(masm);
1164}
1165
1166
danno@chromium.org40cb8782011-05-25 07:58:50 +00001167void UnaryOpStub::GenerateGenericStubBitNot(MacroAssembler* masm) {
karlklose@chromium.org83a47282011-05-11 11:54:09 +00001168 Label non_smi, slow;
1169 GenerateSmiCodeBitNot(masm, &non_smi, Label::kNear);
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +00001170 __ bind(&non_smi);
1171 GenerateHeapNumberCodeBitNot(masm, &slow);
1172 __ bind(&slow);
1173 GenerateGenericCodeFallback(masm);
1174}
1175
1176
danno@chromium.org40cb8782011-05-25 07:58:50 +00001177void UnaryOpStub::GenerateGenericCodeFallback(MacroAssembler* masm) {
sgjesse@chromium.org8e8294a2011-05-02 14:30:53 +00001178 // Handle the slow case by jumping to the corresponding JavaScript builtin.
1179 __ pop(ecx); // pop return address.
1180 __ push(eax);
1181 __ push(ecx); // push return address
1182 switch (op_) {
1183 case Token::SUB:
1184 __ InvokeBuiltin(Builtins::UNARY_MINUS, JUMP_FUNCTION);
1185 break;
1186 case Token::BIT_NOT:
1187 __ InvokeBuiltin(Builtins::BIT_NOT, JUMP_FUNCTION);
1188 break;
1189 default:
1190 UNREACHABLE();
1191 }
1192}
1193
1194
danno@chromium.org40cb8782011-05-25 07:58:50 +00001195void BinaryOpStub::GenerateTypeTransition(MacroAssembler* masm) {
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001196 __ pop(ecx); // Save return address.
1197 __ push(edx);
1198 __ push(eax);
1199 // Left and right arguments are now on top.
1200 // Push this stub's key. Although the operation and the type info are
1201 // encoded into the key, the encoding is opaque, so push them too.
1202 __ push(Immediate(Smi::FromInt(MinorKey())));
1203 __ push(Immediate(Smi::FromInt(op_)));
1204 __ push(Immediate(Smi::FromInt(operands_type_)));
1205
1206 __ push(ecx); // Push return address.
1207
1208 // Patch the caller to an appropriate specialized stub and return the
1209 // operation result to the caller of the stub.
1210 __ TailCallExternalReference(
danno@chromium.org40cb8782011-05-25 07:58:50 +00001211 ExternalReference(IC_Utility(IC::kBinaryOp_Patch),
sgjesse@chromium.orgea88ce92011-03-23 11:19:56 +00001212 masm->isolate()),
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001213 5,
1214 1);
1215}
1216
1217
1218// Prepare for a type transition runtime call when the args are already on
1219// the stack, under the return address.
danno@chromium.org40cb8782011-05-25 07:58:50 +00001220void BinaryOpStub::GenerateTypeTransitionWithSavedArgs(MacroAssembler* masm) {
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001221 __ pop(ecx); // Save return address.
1222 // Left and right arguments are already on top of the stack.
1223 // Push this stub's key. Although the operation and the type info are
1224 // encoded into the key, the encoding is opaque, so push them too.
1225 __ push(Immediate(Smi::FromInt(MinorKey())));
1226 __ push(Immediate(Smi::FromInt(op_)));
1227 __ push(Immediate(Smi::FromInt(operands_type_)));
1228
1229 __ push(ecx); // Push return address.
1230
1231 // Patch the caller to an appropriate specialized stub and return the
1232 // operation result to the caller of the stub.
1233 __ TailCallExternalReference(
danno@chromium.org40cb8782011-05-25 07:58:50 +00001234 ExternalReference(IC_Utility(IC::kBinaryOp_Patch),
sgjesse@chromium.orgea88ce92011-03-23 11:19:56 +00001235 masm->isolate()),
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001236 5,
1237 1);
1238}
1239
1240
danno@chromium.org40cb8782011-05-25 07:58:50 +00001241void BinaryOpStub::Generate(MacroAssembler* masm) {
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00001242 // Explicitly allow generation of nested stubs. It is safe here because
1243 // generation code does not use any raw pointers.
1244 AllowStubCallsScope allow_stub_calls(masm, true);
1245
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001246 switch (operands_type_) {
danno@chromium.org40cb8782011-05-25 07:58:50 +00001247 case BinaryOpIC::UNINITIALIZED:
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001248 GenerateTypeTransition(masm);
1249 break;
danno@chromium.org40cb8782011-05-25 07:58:50 +00001250 case BinaryOpIC::SMI:
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001251 GenerateSmiStub(masm);
1252 break;
danno@chromium.org40cb8782011-05-25 07:58:50 +00001253 case BinaryOpIC::INT32:
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001254 GenerateInt32Stub(masm);
1255 break;
danno@chromium.org40cb8782011-05-25 07:58:50 +00001256 case BinaryOpIC::HEAP_NUMBER:
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001257 GenerateHeapNumberStub(masm);
1258 break;
danno@chromium.org40cb8782011-05-25 07:58:50 +00001259 case BinaryOpIC::ODDBALL:
lrn@chromium.org7516f052011-03-30 08:52:27 +00001260 GenerateOddballStub(masm);
1261 break;
danno@chromium.org40cb8782011-05-25 07:58:50 +00001262 case BinaryOpIC::BOTH_STRING:
danno@chromium.org160a7b02011-04-18 15:51:38 +00001263 GenerateBothStringStub(masm);
1264 break;
danno@chromium.org40cb8782011-05-25 07:58:50 +00001265 case BinaryOpIC::STRING:
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001266 GenerateStringStub(masm);
1267 break;
danno@chromium.org40cb8782011-05-25 07:58:50 +00001268 case BinaryOpIC::GENERIC:
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001269 GenerateGeneric(masm);
1270 break;
1271 default:
1272 UNREACHABLE();
1273 }
1274}
1275
1276
whesse@chromium.org030d38e2011-07-13 13:23:34 +00001277void BinaryOpStub::PrintName(StringStream* stream) {
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001278 const char* op_name = Token::Name(op_);
1279 const char* overwrite_name;
1280 switch (mode_) {
1281 case NO_OVERWRITE: overwrite_name = "Alloc"; break;
1282 case OVERWRITE_RIGHT: overwrite_name = "OverwriteRight"; break;
1283 case OVERWRITE_LEFT: overwrite_name = "OverwriteLeft"; break;
1284 default: overwrite_name = "UnknownOverwrite"; break;
1285 }
whesse@chromium.org030d38e2011-07-13 13:23:34 +00001286 stream->Add("BinaryOpStub_%s_%s_%s",
1287 op_name,
1288 overwrite_name,
1289 BinaryOpIC::GetName(operands_type_));
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001290}
1291
1292
danno@chromium.org40cb8782011-05-25 07:58:50 +00001293void BinaryOpStub::GenerateSmiCode(
1294 MacroAssembler* masm,
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001295 Label* slow,
1296 SmiCodeGenerateHeapNumberResults allow_heapnumber_results) {
1297 // 1. Move arguments into edx, eax except for DIV and MOD, which need the
1298 // dividend in eax and edx free for the division. Use eax, ebx for those.
1299 Comment load_comment(masm, "-- Load arguments");
1300 Register left = edx;
1301 Register right = eax;
1302 if (op_ == Token::DIV || op_ == Token::MOD) {
1303 left = eax;
1304 right = ebx;
ager@chromium.org5f0c45f2010-12-17 08:51:21 +00001305 __ mov(ebx, eax);
1306 __ mov(eax, edx);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001307 }
1308
1309
1310 // 2. Prepare the smi check of both operands by oring them together.
1311 Comment smi_check_comment(masm, "-- Smi check arguments");
1312 Label not_smis;
1313 Register combined = ecx;
1314 ASSERT(!left.is(combined) && !right.is(combined));
1315 switch (op_) {
1316 case Token::BIT_OR:
1317 // Perform the operation into eax and smi check the result. Preserve
1318 // eax in case the result is not a smi.
1319 ASSERT(!left.is(ecx) && !right.is(ecx));
1320 __ mov(ecx, right);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00001321 __ or_(right, left); // Bitwise or is commutative.
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001322 combined = right;
1323 break;
1324
1325 case Token::BIT_XOR:
1326 case Token::BIT_AND:
1327 case Token::ADD:
1328 case Token::SUB:
1329 case Token::MUL:
1330 case Token::DIV:
1331 case Token::MOD:
1332 __ mov(combined, right);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00001333 __ or_(combined, left);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001334 break;
1335
1336 case Token::SHL:
1337 case Token::SAR:
1338 case Token::SHR:
1339 // Move the right operand into ecx for the shift operation, use eax
1340 // for the smi check register.
1341 ASSERT(!left.is(ecx) && !right.is(ecx));
1342 __ mov(ecx, right);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00001343 __ or_(right, left);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001344 combined = right;
1345 break;
1346
1347 default:
1348 break;
1349 }
1350
1351 // 3. Perform the smi check of the operands.
1352 STATIC_ASSERT(kSmiTag == 0); // Adjust zero check if not the case.
whesse@chromium.org7b260152011-06-20 15:33:18 +00001353 __ JumpIfNotSmi(combined, &not_smis);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001354
1355 // 4. Operands are both smis, perform the operation leaving the result in
1356 // eax and check the result if necessary.
1357 Comment perform_smi(masm, "-- Perform smi operation");
1358 Label use_fp_on_smis;
1359 switch (op_) {
1360 case Token::BIT_OR:
1361 // Nothing to do.
1362 break;
1363
1364 case Token::BIT_XOR:
1365 ASSERT(right.is(eax));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00001366 __ xor_(right, left); // Bitwise xor is commutative.
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001367 break;
1368
1369 case Token::BIT_AND:
1370 ASSERT(right.is(eax));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00001371 __ and_(right, left); // Bitwise and is commutative.
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001372 break;
1373
1374 case Token::SHL:
1375 // Remove tags from operands (but keep sign).
1376 __ SmiUntag(left);
1377 __ SmiUntag(ecx);
1378 // Perform the operation.
1379 __ shl_cl(left);
1380 // Check that the *signed* result fits in a smi.
1381 __ cmp(left, 0xc0000000);
vegorov@chromium.org7304bca2011-05-16 12:14:13 +00001382 __ j(sign, &use_fp_on_smis);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001383 // Tag the result and store it in register eax.
1384 __ SmiTag(left);
1385 __ mov(eax, left);
1386 break;
1387
1388 case Token::SAR:
1389 // Remove tags from operands (but keep sign).
1390 __ SmiUntag(left);
1391 __ SmiUntag(ecx);
1392 // Perform the operation.
1393 __ sar_cl(left);
1394 // Tag the result and store it in register eax.
1395 __ SmiTag(left);
1396 __ mov(eax, left);
1397 break;
1398
1399 case Token::SHR:
1400 // Remove tags from operands (but keep sign).
1401 __ SmiUntag(left);
1402 __ SmiUntag(ecx);
1403 // Perform the operation.
1404 __ shr_cl(left);
1405 // Check that the *unsigned* result fits in a smi.
1406 // Neither of the two high-order bits can be set:
1407 // - 0x80000000: high bit would be lost when smi tagging.
1408 // - 0x40000000: this number would convert to negative when
1409 // Smi tagging these two cases can only happen with shifts
1410 // by 0 or 1 when handed a valid smi.
1411 __ test(left, Immediate(0xc0000000));
ager@chromium.orgea91cc52011-05-23 06:06:11 +00001412 __ j(not_zero, &use_fp_on_smis);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001413 // Tag the result and store it in register eax.
1414 __ SmiTag(left);
1415 __ mov(eax, left);
1416 break;
1417
1418 case Token::ADD:
1419 ASSERT(right.is(eax));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00001420 __ add(right, left); // Addition is commutative.
vegorov@chromium.org7304bca2011-05-16 12:14:13 +00001421 __ j(overflow, &use_fp_on_smis);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001422 break;
1423
1424 case Token::SUB:
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00001425 __ sub(left, right);
vegorov@chromium.org7304bca2011-05-16 12:14:13 +00001426 __ j(overflow, &use_fp_on_smis);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001427 __ mov(eax, left);
1428 break;
1429
1430 case Token::MUL:
1431 // If the smi tag is 0 we can just leave the tag on one operand.
1432 STATIC_ASSERT(kSmiTag == 0); // Adjust code below if not the case.
1433 // We can't revert the multiplication if the result is not a smi
1434 // so save the right operand.
1435 __ mov(ebx, right);
1436 // Remove tag from one of the operands (but keep sign).
1437 __ SmiUntag(right);
1438 // Do multiplication.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00001439 __ imul(right, left); // Multiplication is commutative.
vegorov@chromium.org7304bca2011-05-16 12:14:13 +00001440 __ j(overflow, &use_fp_on_smis);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001441 // Check for negative zero result. Use combined = left | right.
1442 __ NegativeZeroTest(right, combined, &use_fp_on_smis);
1443 break;
1444
1445 case Token::DIV:
1446 // We can't revert the division if the result is not a smi so
1447 // save the left operand.
1448 __ mov(edi, left);
1449 // Check for 0 divisor.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00001450 __ test(right, right);
vegorov@chromium.org7304bca2011-05-16 12:14:13 +00001451 __ j(zero, &use_fp_on_smis);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001452 // Sign extend left into edx:eax.
1453 ASSERT(left.is(eax));
1454 __ cdq();
1455 // Divide edx:eax by right.
1456 __ idiv(right);
1457 // Check for the corner case of dividing the most negative smi by
1458 // -1. We cannot use the overflow flag, since it is not set by idiv
1459 // instruction.
1460 STATIC_ASSERT(kSmiTag == 0 && kSmiTagSize == 1);
1461 __ cmp(eax, 0x40000000);
1462 __ j(equal, &use_fp_on_smis);
1463 // Check for negative zero result. Use combined = left | right.
1464 __ NegativeZeroTest(eax, combined, &use_fp_on_smis);
1465 // Check that the remainder is zero.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00001466 __ test(edx, edx);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001467 __ j(not_zero, &use_fp_on_smis);
1468 // Tag the result and store it in register eax.
1469 __ SmiTag(eax);
1470 break;
1471
1472 case Token::MOD:
1473 // Check for 0 divisor.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00001474 __ test(right, right);
vegorov@chromium.org7304bca2011-05-16 12:14:13 +00001475 __ j(zero, &not_smis);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001476
1477 // Sign extend left into edx:eax.
1478 ASSERT(left.is(eax));
1479 __ cdq();
1480 // Divide edx:eax by right.
1481 __ idiv(right);
1482 // Check for negative zero result. Use combined = left | right.
1483 __ NegativeZeroTest(edx, combined, slow);
1484 // Move remainder to register eax.
1485 __ mov(eax, edx);
1486 break;
1487
1488 default:
1489 UNREACHABLE();
1490 }
1491
1492 // 5. Emit return of result in eax. Some operations have registers pushed.
1493 switch (op_) {
1494 case Token::ADD:
1495 case Token::SUB:
1496 case Token::MUL:
1497 case Token::DIV:
1498 __ ret(0);
1499 break;
1500 case Token::MOD:
1501 case Token::BIT_OR:
1502 case Token::BIT_AND:
1503 case Token::BIT_XOR:
1504 case Token::SAR:
1505 case Token::SHL:
1506 case Token::SHR:
1507 __ ret(2 * kPointerSize);
1508 break;
1509 default:
1510 UNREACHABLE();
1511 }
1512
1513 // 6. For some operations emit inline code to perform floating point
1514 // operations on known smis (e.g., if the result of the operation
1515 // overflowed the smi range).
1516 if (allow_heapnumber_results == NO_HEAPNUMBER_RESULTS) {
1517 __ bind(&use_fp_on_smis);
1518 switch (op_) {
1519 // Undo the effects of some operations, and some register moves.
1520 case Token::SHL:
1521 // The arguments are saved on the stack, and only used from there.
1522 break;
1523 case Token::ADD:
1524 // Revert right = right + left.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00001525 __ sub(right, left);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001526 break;
1527 case Token::SUB:
1528 // Revert left = left - right.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00001529 __ add(left, right);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001530 break;
1531 case Token::MUL:
1532 // Right was clobbered but a copy is in ebx.
1533 __ mov(right, ebx);
1534 break;
1535 case Token::DIV:
1536 // Left was clobbered but a copy is in edi. Right is in ebx for
1537 // division. They should be in eax, ebx for jump to not_smi.
1538 __ mov(eax, edi);
1539 break;
1540 default:
1541 // No other operators jump to use_fp_on_smis.
1542 break;
1543 }
1544 __ jmp(&not_smis);
1545 } else {
1546 ASSERT(allow_heapnumber_results == ALLOW_HEAPNUMBER_RESULTS);
1547 switch (op_) {
ager@chromium.orgea91cc52011-05-23 06:06:11 +00001548 case Token::SHL:
1549 case Token::SHR: {
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001550 Comment perform_float(masm, "-- Perform float operation on smis");
1551 __ bind(&use_fp_on_smis);
1552 // Result we want is in left == edx, so we can put the allocated heap
1553 // number in eax.
1554 __ AllocateHeapNumber(eax, ecx, ebx, slow);
1555 // Store the result in the HeapNumber and return.
ager@chromium.orgea91cc52011-05-23 06:06:11 +00001556 // It's OK to overwrite the arguments on the stack because we
1557 // are about to return.
1558 if (op_ == Token::SHR) {
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001559 __ mov(Operand(esp, 1 * kPointerSize), left);
ager@chromium.orgea91cc52011-05-23 06:06:11 +00001560 __ mov(Operand(esp, 2 * kPointerSize), Immediate(0));
1561 __ fild_d(Operand(esp, 1 * kPointerSize));
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001562 __ fstp_d(FieldOperand(eax, HeapNumber::kValueOffset));
ager@chromium.orgea91cc52011-05-23 06:06:11 +00001563 } else {
1564 ASSERT_EQ(Token::SHL, op_);
1565 if (CpuFeatures::IsSupported(SSE2)) {
1566 CpuFeatures::Scope use_sse2(SSE2);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00001567 __ cvtsi2sd(xmm0, left);
ager@chromium.orgea91cc52011-05-23 06:06:11 +00001568 __ movdbl(FieldOperand(eax, HeapNumber::kValueOffset), xmm0);
1569 } else {
1570 __ mov(Operand(esp, 1 * kPointerSize), left);
1571 __ fild_s(Operand(esp, 1 * kPointerSize));
1572 __ fstp_d(FieldOperand(eax, HeapNumber::kValueOffset));
1573 }
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001574 }
ager@chromium.orgea91cc52011-05-23 06:06:11 +00001575 __ ret(2 * kPointerSize);
1576 break;
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001577 }
1578
1579 case Token::ADD:
1580 case Token::SUB:
1581 case Token::MUL:
1582 case Token::DIV: {
1583 Comment perform_float(masm, "-- Perform float operation on smis");
1584 __ bind(&use_fp_on_smis);
1585 // Restore arguments to edx, eax.
1586 switch (op_) {
1587 case Token::ADD:
1588 // Revert right = right + left.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00001589 __ sub(right, left);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001590 break;
1591 case Token::SUB:
1592 // Revert left = left - right.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00001593 __ add(left, right);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001594 break;
1595 case Token::MUL:
1596 // Right was clobbered but a copy is in ebx.
1597 __ mov(right, ebx);
1598 break;
1599 case Token::DIV:
1600 // Left was clobbered but a copy is in edi. Right is in ebx for
1601 // division.
1602 __ mov(edx, edi);
1603 __ mov(eax, right);
1604 break;
1605 default: UNREACHABLE();
1606 break;
1607 }
1608 __ AllocateHeapNumber(ecx, ebx, no_reg, slow);
kmillikin@chromium.orgc36ce6e2011-04-04 08:25:31 +00001609 if (CpuFeatures::IsSupported(SSE2)) {
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001610 CpuFeatures::Scope use_sse2(SSE2);
1611 FloatingPointHelper::LoadSSE2Smis(masm, ebx);
1612 switch (op_) {
1613 case Token::ADD: __ addsd(xmm0, xmm1); break;
1614 case Token::SUB: __ subsd(xmm0, xmm1); break;
1615 case Token::MUL: __ mulsd(xmm0, xmm1); break;
1616 case Token::DIV: __ divsd(xmm0, xmm1); break;
1617 default: UNREACHABLE();
1618 }
1619 __ movdbl(FieldOperand(ecx, HeapNumber::kValueOffset), xmm0);
1620 } else { // SSE2 not available, use FPU.
1621 FloatingPointHelper::LoadFloatSmis(masm, ebx);
1622 switch (op_) {
1623 case Token::ADD: __ faddp(1); break;
1624 case Token::SUB: __ fsubp(1); break;
1625 case Token::MUL: __ fmulp(1); break;
1626 case Token::DIV: __ fdivp(1); break;
1627 default: UNREACHABLE();
1628 }
1629 __ fstp_d(FieldOperand(ecx, HeapNumber::kValueOffset));
1630 }
1631 __ mov(eax, ecx);
1632 __ ret(0);
1633 break;
1634 }
1635
1636 default:
1637 break;
1638 }
1639 }
1640
1641 // 7. Non-smi operands, fall out to the non-smi code with the operands in
1642 // edx and eax.
1643 Comment done_comment(masm, "-- Enter non-smi code");
1644 __ bind(&not_smis);
1645 switch (op_) {
1646 case Token::BIT_OR:
1647 case Token::SHL:
1648 case Token::SAR:
1649 case Token::SHR:
1650 // Right operand is saved in ecx and eax was destroyed by the smi
1651 // check.
1652 __ mov(eax, ecx);
1653 break;
1654
1655 case Token::DIV:
1656 case Token::MOD:
1657 // Operands are in eax, ebx at this point.
1658 __ mov(edx, eax);
1659 __ mov(eax, ebx);
1660 break;
1661
1662 default:
1663 break;
1664 }
1665}
1666
1667
danno@chromium.org40cb8782011-05-25 07:58:50 +00001668void BinaryOpStub::GenerateSmiStub(MacroAssembler* masm) {
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001669 Label call_runtime;
1670
1671 switch (op_) {
1672 case Token::ADD:
1673 case Token::SUB:
1674 case Token::MUL:
1675 case Token::DIV:
1676 break;
1677 case Token::MOD:
1678 case Token::BIT_OR:
1679 case Token::BIT_AND:
1680 case Token::BIT_XOR:
1681 case Token::SAR:
1682 case Token::SHL:
1683 case Token::SHR:
1684 GenerateRegisterArgsPush(masm);
1685 break;
1686 default:
1687 UNREACHABLE();
1688 }
1689
danno@chromium.org40cb8782011-05-25 07:58:50 +00001690 if (result_type_ == BinaryOpIC::UNINITIALIZED ||
1691 result_type_ == BinaryOpIC::SMI) {
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001692 GenerateSmiCode(masm, &call_runtime, NO_HEAPNUMBER_RESULTS);
1693 } else {
1694 GenerateSmiCode(masm, &call_runtime, ALLOW_HEAPNUMBER_RESULTS);
1695 }
1696 __ bind(&call_runtime);
1697 switch (op_) {
1698 case Token::ADD:
1699 case Token::SUB:
1700 case Token::MUL:
1701 case Token::DIV:
1702 GenerateTypeTransition(masm);
1703 break;
1704 case Token::MOD:
1705 case Token::BIT_OR:
1706 case Token::BIT_AND:
1707 case Token::BIT_XOR:
1708 case Token::SAR:
1709 case Token::SHL:
1710 case Token::SHR:
1711 GenerateTypeTransitionWithSavedArgs(masm);
1712 break;
1713 default:
1714 UNREACHABLE();
1715 }
1716}
1717
1718
danno@chromium.org40cb8782011-05-25 07:58:50 +00001719void BinaryOpStub::GenerateStringStub(MacroAssembler* masm) {
1720 ASSERT(operands_type_ == BinaryOpIC::STRING);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001721 ASSERT(op_ == Token::ADD);
ager@chromium.org0ee099b2011-01-25 14:06:47 +00001722 // Try to add arguments as strings, otherwise, transition to the generic
danno@chromium.org40cb8782011-05-25 07:58:50 +00001723 // BinaryOpIC type.
ager@chromium.org0ee099b2011-01-25 14:06:47 +00001724 GenerateAddStrings(masm);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001725 GenerateTypeTransition(masm);
1726}
1727
1728
danno@chromium.org40cb8782011-05-25 07:58:50 +00001729void BinaryOpStub::GenerateBothStringStub(MacroAssembler* masm) {
danno@chromium.org160a7b02011-04-18 15:51:38 +00001730 Label call_runtime;
danno@chromium.org40cb8782011-05-25 07:58:50 +00001731 ASSERT(operands_type_ == BinaryOpIC::BOTH_STRING);
danno@chromium.org160a7b02011-04-18 15:51:38 +00001732 ASSERT(op_ == Token::ADD);
1733 // If both arguments are strings, call the string add stub.
1734 // Otherwise, do a transition.
1735
1736 // Registers containing left and right operands respectively.
1737 Register left = edx;
1738 Register right = eax;
1739
1740 // Test if left operand is a string.
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00001741 __ JumpIfSmi(left, &call_runtime, Label::kNear);
danno@chromium.org160a7b02011-04-18 15:51:38 +00001742 __ CmpObjectType(left, FIRST_NONSTRING_TYPE, ecx);
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00001743 __ j(above_equal, &call_runtime, Label::kNear);
danno@chromium.org160a7b02011-04-18 15:51:38 +00001744
1745 // Test if right operand is a string.
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00001746 __ JumpIfSmi(right, &call_runtime, Label::kNear);
danno@chromium.org160a7b02011-04-18 15:51:38 +00001747 __ CmpObjectType(right, FIRST_NONSTRING_TYPE, ecx);
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00001748 __ j(above_equal, &call_runtime, Label::kNear);
danno@chromium.org160a7b02011-04-18 15:51:38 +00001749
1750 StringAddStub string_add_stub(NO_STRING_CHECK_IN_STUB);
1751 GenerateRegisterArgsPush(masm);
1752 __ TailCallStub(&string_add_stub);
1753
1754 __ bind(&call_runtime);
1755 GenerateTypeTransition(masm);
1756}
1757
1758
svenpanne@chromium.orgfb046332012-04-19 12:02:44 +00001759// Input:
1760// edx: left operand (tagged)
1761// eax: right operand (tagged)
1762// Output:
1763// eax: result (tagged)
danno@chromium.org40cb8782011-05-25 07:58:50 +00001764void BinaryOpStub::GenerateInt32Stub(MacroAssembler* masm) {
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001765 Label call_runtime;
danno@chromium.org40cb8782011-05-25 07:58:50 +00001766 ASSERT(operands_type_ == BinaryOpIC::INT32);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001767
1768 // Floating point case.
1769 switch (op_) {
1770 case Token::ADD:
1771 case Token::SUB:
1772 case Token::MUL:
svenpanne@chromium.orgfb046332012-04-19 12:02:44 +00001773 case Token::DIV:
1774 case Token::MOD: {
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001775 Label not_floats;
1776 Label not_int32;
kmillikin@chromium.orgc36ce6e2011-04-04 08:25:31 +00001777 if (CpuFeatures::IsSupported(SSE2)) {
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001778 CpuFeatures::Scope use_sse2(SSE2);
1779 FloatingPointHelper::LoadSSE2Operands(masm, &not_floats);
1780 FloatingPointHelper::CheckSSE2OperandsAreInt32(masm, &not_int32, ecx);
svenpanne@chromium.orgfb046332012-04-19 12:02:44 +00001781 if (op_ == Token::MOD) {
1782 GenerateRegisterArgsPush(masm);
1783 __ InvokeBuiltin(Builtins::MOD, JUMP_FUNCTION);
1784 } else {
1785 switch (op_) {
1786 case Token::ADD: __ addsd(xmm0, xmm1); break;
1787 case Token::SUB: __ subsd(xmm0, xmm1); break;
1788 case Token::MUL: __ mulsd(xmm0, xmm1); break;
1789 case Token::DIV: __ divsd(xmm0, xmm1); break;
1790 default: UNREACHABLE();
1791 }
1792 // Check result type if it is currently Int32.
1793 if (result_type_ <= BinaryOpIC::INT32) {
1794 __ cvttsd2si(ecx, Operand(xmm0));
1795 __ cvtsi2sd(xmm2, ecx);
verwaest@chromium.org33e09c82012-10-10 17:07:22 +00001796 __ pcmpeqd(xmm2, xmm0);
1797 __ movmskpd(ecx, xmm2);
1798 __ test(ecx, Immediate(1));
1799 __ j(zero, &not_int32);
svenpanne@chromium.orgfb046332012-04-19 12:02:44 +00001800 }
1801 GenerateHeapResultAllocation(masm, &call_runtime);
1802 __ movdbl(FieldOperand(eax, HeapNumber::kValueOffset), xmm0);
1803 __ ret(0);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001804 }
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001805 } else { // SSE2 not available, use FPU.
1806 FloatingPointHelper::CheckFloatOperands(masm, &not_floats, ebx);
1807 FloatingPointHelper::LoadFloatOperands(
1808 masm,
1809 ecx,
1810 FloatingPointHelper::ARGS_IN_REGISTERS);
1811 FloatingPointHelper::CheckFloatOperandsAreInt32(masm, &not_int32);
svenpanne@chromium.orgfb046332012-04-19 12:02:44 +00001812 if (op_ == Token::MOD) {
1813 // The operands are now on the FPU stack, but we don't need them.
1814 __ fstp(0);
1815 __ fstp(0);
1816 GenerateRegisterArgsPush(masm);
1817 __ InvokeBuiltin(Builtins::MOD, JUMP_FUNCTION);
1818 } else {
1819 switch (op_) {
1820 case Token::ADD: __ faddp(1); break;
1821 case Token::SUB: __ fsubp(1); break;
1822 case Token::MUL: __ fmulp(1); break;
1823 case Token::DIV: __ fdivp(1); break;
1824 default: UNREACHABLE();
1825 }
1826 Label after_alloc_failure;
1827 GenerateHeapResultAllocation(masm, &after_alloc_failure);
1828 __ fstp_d(FieldOperand(eax, HeapNumber::kValueOffset));
1829 __ ret(0);
1830 __ bind(&after_alloc_failure);
1831 __ fstp(0); // Pop FPU stack before calling runtime.
1832 __ jmp(&call_runtime);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001833 }
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001834 }
1835
1836 __ bind(&not_floats);
1837 __ bind(&not_int32);
1838 GenerateTypeTransition(masm);
1839 break;
1840 }
1841
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001842 case Token::BIT_OR:
1843 case Token::BIT_AND:
1844 case Token::BIT_XOR:
1845 case Token::SAR:
1846 case Token::SHL:
1847 case Token::SHR: {
1848 GenerateRegisterArgsPush(masm);
1849 Label not_floats;
1850 Label not_int32;
1851 Label non_smi_result;
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001852 FloatingPointHelper::LoadUnknownsAsIntegers(masm,
1853 use_sse3_,
1854 &not_floats);
1855 FloatingPointHelper::CheckLoadedIntegersWereInt32(masm, use_sse3_,
1856 &not_int32);
1857 switch (op_) {
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00001858 case Token::BIT_OR: __ or_(eax, ecx); break;
1859 case Token::BIT_AND: __ and_(eax, ecx); break;
1860 case Token::BIT_XOR: __ xor_(eax, ecx); break;
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001861 case Token::SAR: __ sar_cl(eax); break;
1862 case Token::SHL: __ shl_cl(eax); break;
1863 case Token::SHR: __ shr_cl(eax); break;
1864 default: UNREACHABLE();
1865 }
1866 if (op_ == Token::SHR) {
1867 // Check if result is non-negative and fits in a smi.
1868 __ test(eax, Immediate(0xc0000000));
1869 __ j(not_zero, &call_runtime);
1870 } else {
1871 // Check if result fits in a smi.
1872 __ cmp(eax, 0xc0000000);
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00001873 __ j(negative, &non_smi_result, Label::kNear);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001874 }
1875 // Tag smi result and return.
1876 __ SmiTag(eax);
1877 __ ret(2 * kPointerSize); // Drop two pushed arguments from the stack.
1878
1879 // All ops except SHR return a signed int32 that we load in
1880 // a HeapNumber.
1881 if (op_ != Token::SHR) {
1882 __ bind(&non_smi_result);
1883 // Allocate a heap number if needed.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00001884 __ mov(ebx, eax); // ebx: result
karlklose@chromium.org83a47282011-05-11 11:54:09 +00001885 Label skip_allocation;
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001886 switch (mode_) {
1887 case OVERWRITE_LEFT:
1888 case OVERWRITE_RIGHT:
1889 // If the operand was an object, we skip the
1890 // allocation of a heap number.
1891 __ mov(eax, Operand(esp, mode_ == OVERWRITE_RIGHT ?
1892 1 * kPointerSize : 2 * kPointerSize));
whesse@chromium.org7b260152011-06-20 15:33:18 +00001893 __ JumpIfNotSmi(eax, &skip_allocation, Label::kNear);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001894 // Fall through!
1895 case NO_OVERWRITE:
1896 __ AllocateHeapNumber(eax, ecx, edx, &call_runtime);
1897 __ bind(&skip_allocation);
1898 break;
1899 default: UNREACHABLE();
1900 }
1901 // Store the result in the HeapNumber and return.
kmillikin@chromium.orgc36ce6e2011-04-04 08:25:31 +00001902 if (CpuFeatures::IsSupported(SSE2)) {
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001903 CpuFeatures::Scope use_sse2(SSE2);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00001904 __ cvtsi2sd(xmm0, ebx);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001905 __ movdbl(FieldOperand(eax, HeapNumber::kValueOffset), xmm0);
1906 } else {
1907 __ mov(Operand(esp, 1 * kPointerSize), ebx);
1908 __ fild_s(Operand(esp, 1 * kPointerSize));
1909 __ fstp_d(FieldOperand(eax, HeapNumber::kValueOffset));
1910 }
1911 __ ret(2 * kPointerSize); // Drop two pushed arguments from the stack.
1912 }
1913
1914 __ bind(&not_floats);
1915 __ bind(&not_int32);
1916 GenerateTypeTransitionWithSavedArgs(masm);
1917 break;
1918 }
1919 default: UNREACHABLE(); break;
1920 }
1921
svenpanne@chromium.orgfb046332012-04-19 12:02:44 +00001922 // If an allocation fails, or SHR hits a hard case, use the runtime system to
1923 // get the correct result.
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001924 __ bind(&call_runtime);
1925
1926 switch (op_) {
1927 case Token::ADD:
1928 GenerateRegisterArgsPush(masm);
1929 __ InvokeBuiltin(Builtins::ADD, JUMP_FUNCTION);
1930 break;
1931 case Token::SUB:
1932 GenerateRegisterArgsPush(masm);
1933 __ InvokeBuiltin(Builtins::SUB, JUMP_FUNCTION);
1934 break;
1935 case Token::MUL:
1936 GenerateRegisterArgsPush(masm);
1937 __ InvokeBuiltin(Builtins::MUL, JUMP_FUNCTION);
1938 break;
1939 case Token::DIV:
1940 GenerateRegisterArgsPush(masm);
1941 __ InvokeBuiltin(Builtins::DIV, JUMP_FUNCTION);
1942 break;
1943 case Token::MOD:
kasperl@chromium.orga5551262010-12-07 12:49:48 +00001944 break;
1945 case Token::BIT_OR:
1946 __ InvokeBuiltin(Builtins::BIT_OR, JUMP_FUNCTION);
1947 break;
1948 case Token::BIT_AND:
1949 __ InvokeBuiltin(Builtins::BIT_AND, JUMP_FUNCTION);
1950 break;
1951 case Token::BIT_XOR:
1952 __ InvokeBuiltin(Builtins::BIT_XOR, JUMP_FUNCTION);
1953 break;
1954 case Token::SAR:
1955 __ InvokeBuiltin(Builtins::SAR, JUMP_FUNCTION);
1956 break;
1957 case Token::SHL:
1958 __ InvokeBuiltin(Builtins::SHL, JUMP_FUNCTION);
1959 break;
1960 case Token::SHR:
1961 __ InvokeBuiltin(Builtins::SHR, JUMP_FUNCTION);
1962 break;
1963 default:
1964 UNREACHABLE();
1965 }
1966}
1967
1968
danno@chromium.org40cb8782011-05-25 07:58:50 +00001969void BinaryOpStub::GenerateOddballStub(MacroAssembler* masm) {
lrn@chromium.org7516f052011-03-30 08:52:27 +00001970 if (op_ == Token::ADD) {
1971 // Handle string addition here, because it is the only operation
1972 // that does not do a ToNumber conversion on the operands.
1973 GenerateAddStrings(masm);
1974 }
1975
danno@chromium.org160a7b02011-04-18 15:51:38 +00001976 Factory* factory = masm->isolate()->factory();
1977
lrn@chromium.org7516f052011-03-30 08:52:27 +00001978 // Convert odd ball arguments to numbers.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00001979 Label check, done;
danno@chromium.org160a7b02011-04-18 15:51:38 +00001980 __ cmp(edx, factory->undefined_value());
karlklose@chromium.org83a47282011-05-11 11:54:09 +00001981 __ j(not_equal, &check, Label::kNear);
lrn@chromium.org7516f052011-03-30 08:52:27 +00001982 if (Token::IsBitOp(op_)) {
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00001983 __ xor_(edx, edx);
lrn@chromium.org7516f052011-03-30 08:52:27 +00001984 } else {
danno@chromium.org160a7b02011-04-18 15:51:38 +00001985 __ mov(edx, Immediate(factory->nan_value()));
lrn@chromium.org7516f052011-03-30 08:52:27 +00001986 }
karlklose@chromium.org83a47282011-05-11 11:54:09 +00001987 __ jmp(&done, Label::kNear);
lrn@chromium.org7516f052011-03-30 08:52:27 +00001988 __ bind(&check);
danno@chromium.org160a7b02011-04-18 15:51:38 +00001989 __ cmp(eax, factory->undefined_value());
karlklose@chromium.org83a47282011-05-11 11:54:09 +00001990 __ j(not_equal, &done, Label::kNear);
lrn@chromium.org7516f052011-03-30 08:52:27 +00001991 if (Token::IsBitOp(op_)) {
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00001992 __ xor_(eax, eax);
lrn@chromium.org7516f052011-03-30 08:52:27 +00001993 } else {
danno@chromium.org160a7b02011-04-18 15:51:38 +00001994 __ mov(eax, Immediate(factory->nan_value()));
lrn@chromium.org7516f052011-03-30 08:52:27 +00001995 }
1996 __ bind(&done);
1997
1998 GenerateHeapNumberStub(masm);
1999}
2000
2001
danno@chromium.org40cb8782011-05-25 07:58:50 +00002002void BinaryOpStub::GenerateHeapNumberStub(MacroAssembler* masm) {
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002003 Label call_runtime;
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002004
2005 // Floating point case.
2006 switch (op_) {
2007 case Token::ADD:
2008 case Token::SUB:
2009 case Token::MUL:
2010 case Token::DIV: {
2011 Label not_floats;
kmillikin@chromium.orgc36ce6e2011-04-04 08:25:31 +00002012 if (CpuFeatures::IsSupported(SSE2)) {
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002013 CpuFeatures::Scope use_sse2(SSE2);
2014 FloatingPointHelper::LoadSSE2Operands(masm, &not_floats);
2015
2016 switch (op_) {
2017 case Token::ADD: __ addsd(xmm0, xmm1); break;
2018 case Token::SUB: __ subsd(xmm0, xmm1); break;
2019 case Token::MUL: __ mulsd(xmm0, xmm1); break;
2020 case Token::DIV: __ divsd(xmm0, xmm1); break;
2021 default: UNREACHABLE();
2022 }
2023 GenerateHeapResultAllocation(masm, &call_runtime);
2024 __ movdbl(FieldOperand(eax, HeapNumber::kValueOffset), xmm0);
2025 __ ret(0);
2026 } else { // SSE2 not available, use FPU.
2027 FloatingPointHelper::CheckFloatOperands(masm, &not_floats, ebx);
2028 FloatingPointHelper::LoadFloatOperands(
2029 masm,
2030 ecx,
2031 FloatingPointHelper::ARGS_IN_REGISTERS);
2032 switch (op_) {
2033 case Token::ADD: __ faddp(1); break;
2034 case Token::SUB: __ fsubp(1); break;
2035 case Token::MUL: __ fmulp(1); break;
2036 case Token::DIV: __ fdivp(1); break;
2037 default: UNREACHABLE();
2038 }
2039 Label after_alloc_failure;
2040 GenerateHeapResultAllocation(masm, &after_alloc_failure);
2041 __ fstp_d(FieldOperand(eax, HeapNumber::kValueOffset));
2042 __ ret(0);
2043 __ bind(&after_alloc_failure);
jkummerow@chromium.org28faa982012-04-13 09:58:30 +00002044 __ fstp(0); // Pop FPU stack before calling runtime.
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002045 __ jmp(&call_runtime);
2046 }
2047
2048 __ bind(&not_floats);
2049 GenerateTypeTransition(masm);
2050 break;
2051 }
2052
2053 case Token::MOD: {
2054 // For MOD we go directly to runtime in the non-smi case.
2055 break;
2056 }
2057 case Token::BIT_OR:
2058 case Token::BIT_AND:
2059 case Token::BIT_XOR:
2060 case Token::SAR:
2061 case Token::SHL:
2062 case Token::SHR: {
2063 GenerateRegisterArgsPush(masm);
2064 Label not_floats;
2065 Label non_smi_result;
2066 FloatingPointHelper::LoadUnknownsAsIntegers(masm,
2067 use_sse3_,
2068 &not_floats);
2069 switch (op_) {
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002070 case Token::BIT_OR: __ or_(eax, ecx); break;
2071 case Token::BIT_AND: __ and_(eax, ecx); break;
2072 case Token::BIT_XOR: __ xor_(eax, ecx); break;
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002073 case Token::SAR: __ sar_cl(eax); break;
2074 case Token::SHL: __ shl_cl(eax); break;
2075 case Token::SHR: __ shr_cl(eax); break;
2076 default: UNREACHABLE();
2077 }
2078 if (op_ == Token::SHR) {
2079 // Check if result is non-negative and fits in a smi.
2080 __ test(eax, Immediate(0xc0000000));
2081 __ j(not_zero, &call_runtime);
2082 } else {
2083 // Check if result fits in a smi.
2084 __ cmp(eax, 0xc0000000);
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00002085 __ j(negative, &non_smi_result, Label::kNear);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002086 }
2087 // Tag smi result and return.
2088 __ SmiTag(eax);
2089 __ ret(2 * kPointerSize); // Drop two pushed arguments from the stack.
2090
2091 // All ops except SHR return a signed int32 that we load in
2092 // a HeapNumber.
2093 if (op_ != Token::SHR) {
2094 __ bind(&non_smi_result);
2095 // Allocate a heap number if needed.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002096 __ mov(ebx, eax); // ebx: result
karlklose@chromium.org83a47282011-05-11 11:54:09 +00002097 Label skip_allocation;
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002098 switch (mode_) {
2099 case OVERWRITE_LEFT:
2100 case OVERWRITE_RIGHT:
2101 // If the operand was an object, we skip the
2102 // allocation of a heap number.
2103 __ mov(eax, Operand(esp, mode_ == OVERWRITE_RIGHT ?
2104 1 * kPointerSize : 2 * kPointerSize));
whesse@chromium.org7b260152011-06-20 15:33:18 +00002105 __ JumpIfNotSmi(eax, &skip_allocation, Label::kNear);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002106 // Fall through!
2107 case NO_OVERWRITE:
2108 __ AllocateHeapNumber(eax, ecx, edx, &call_runtime);
2109 __ bind(&skip_allocation);
2110 break;
2111 default: UNREACHABLE();
2112 }
2113 // Store the result in the HeapNumber and return.
kmillikin@chromium.orgc36ce6e2011-04-04 08:25:31 +00002114 if (CpuFeatures::IsSupported(SSE2)) {
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002115 CpuFeatures::Scope use_sse2(SSE2);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002116 __ cvtsi2sd(xmm0, ebx);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002117 __ movdbl(FieldOperand(eax, HeapNumber::kValueOffset), xmm0);
2118 } else {
2119 __ mov(Operand(esp, 1 * kPointerSize), ebx);
2120 __ fild_s(Operand(esp, 1 * kPointerSize));
2121 __ fstp_d(FieldOperand(eax, HeapNumber::kValueOffset));
2122 }
2123 __ ret(2 * kPointerSize); // Drop two pushed arguments from the stack.
2124 }
2125
2126 __ bind(&not_floats);
2127 GenerateTypeTransitionWithSavedArgs(masm);
2128 break;
2129 }
2130 default: UNREACHABLE(); break;
2131 }
2132
2133 // If an allocation fails, or SHR or MOD hit a hard case,
2134 // use the runtime system to get the correct result.
2135 __ bind(&call_runtime);
2136
2137 switch (op_) {
2138 case Token::ADD:
2139 GenerateRegisterArgsPush(masm);
2140 __ InvokeBuiltin(Builtins::ADD, JUMP_FUNCTION);
2141 break;
2142 case Token::SUB:
2143 GenerateRegisterArgsPush(masm);
2144 __ InvokeBuiltin(Builtins::SUB, JUMP_FUNCTION);
2145 break;
2146 case Token::MUL:
2147 GenerateRegisterArgsPush(masm);
2148 __ InvokeBuiltin(Builtins::MUL, JUMP_FUNCTION);
2149 break;
2150 case Token::DIV:
2151 GenerateRegisterArgsPush(masm);
2152 __ InvokeBuiltin(Builtins::DIV, JUMP_FUNCTION);
2153 break;
2154 case Token::MOD:
2155 GenerateRegisterArgsPush(masm);
2156 __ InvokeBuiltin(Builtins::MOD, JUMP_FUNCTION);
2157 break;
2158 case Token::BIT_OR:
2159 __ InvokeBuiltin(Builtins::BIT_OR, JUMP_FUNCTION);
2160 break;
2161 case Token::BIT_AND:
2162 __ InvokeBuiltin(Builtins::BIT_AND, JUMP_FUNCTION);
2163 break;
2164 case Token::BIT_XOR:
2165 __ InvokeBuiltin(Builtins::BIT_XOR, JUMP_FUNCTION);
2166 break;
2167 case Token::SAR:
2168 __ InvokeBuiltin(Builtins::SAR, JUMP_FUNCTION);
2169 break;
2170 case Token::SHL:
2171 __ InvokeBuiltin(Builtins::SHL, JUMP_FUNCTION);
2172 break;
2173 case Token::SHR:
2174 __ InvokeBuiltin(Builtins::SHR, JUMP_FUNCTION);
2175 break;
2176 default:
2177 UNREACHABLE();
2178 }
2179}
2180
2181
danno@chromium.org40cb8782011-05-25 07:58:50 +00002182void BinaryOpStub::GenerateGeneric(MacroAssembler* masm) {
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002183 Label call_runtime;
2184
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00002185 Counters* counters = masm->isolate()->counters();
2186 __ IncrementCounter(counters->generic_binary_stub_calls(), 1);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002187
2188 switch (op_) {
2189 case Token::ADD:
2190 case Token::SUB:
2191 case Token::MUL:
2192 case Token::DIV:
2193 break;
2194 case Token::MOD:
2195 case Token::BIT_OR:
2196 case Token::BIT_AND:
2197 case Token::BIT_XOR:
2198 case Token::SAR:
2199 case Token::SHL:
2200 case Token::SHR:
2201 GenerateRegisterArgsPush(masm);
2202 break;
2203 default:
2204 UNREACHABLE();
2205 }
2206
2207 GenerateSmiCode(masm, &call_runtime, ALLOW_HEAPNUMBER_RESULTS);
2208
2209 // Floating point case.
2210 switch (op_) {
2211 case Token::ADD:
2212 case Token::SUB:
2213 case Token::MUL:
2214 case Token::DIV: {
2215 Label not_floats;
kmillikin@chromium.orgc36ce6e2011-04-04 08:25:31 +00002216 if (CpuFeatures::IsSupported(SSE2)) {
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002217 CpuFeatures::Scope use_sse2(SSE2);
2218 FloatingPointHelper::LoadSSE2Operands(masm, &not_floats);
2219
2220 switch (op_) {
2221 case Token::ADD: __ addsd(xmm0, xmm1); break;
2222 case Token::SUB: __ subsd(xmm0, xmm1); break;
2223 case Token::MUL: __ mulsd(xmm0, xmm1); break;
2224 case Token::DIV: __ divsd(xmm0, xmm1); break;
2225 default: UNREACHABLE();
2226 }
2227 GenerateHeapResultAllocation(masm, &call_runtime);
2228 __ movdbl(FieldOperand(eax, HeapNumber::kValueOffset), xmm0);
2229 __ ret(0);
2230 } else { // SSE2 not available, use FPU.
2231 FloatingPointHelper::CheckFloatOperands(masm, &not_floats, ebx);
2232 FloatingPointHelper::LoadFloatOperands(
2233 masm,
2234 ecx,
2235 FloatingPointHelper::ARGS_IN_REGISTERS);
2236 switch (op_) {
2237 case Token::ADD: __ faddp(1); break;
2238 case Token::SUB: __ fsubp(1); break;
2239 case Token::MUL: __ fmulp(1); break;
2240 case Token::DIV: __ fdivp(1); break;
2241 default: UNREACHABLE();
2242 }
2243 Label after_alloc_failure;
2244 GenerateHeapResultAllocation(masm, &after_alloc_failure);
2245 __ fstp_d(FieldOperand(eax, HeapNumber::kValueOffset));
2246 __ ret(0);
2247 __ bind(&after_alloc_failure);
jkummerow@chromium.org28faa982012-04-13 09:58:30 +00002248 __ fstp(0); // Pop FPU stack before calling runtime.
2249 __ jmp(&call_runtime);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002250 }
2251 __ bind(&not_floats);
2252 break;
2253 }
2254 case Token::MOD: {
2255 // For MOD we go directly to runtime in the non-smi case.
2256 break;
2257 }
2258 case Token::BIT_OR:
2259 case Token::BIT_AND:
2260 case Token::BIT_XOR:
2261 case Token::SAR:
2262 case Token::SHL:
2263 case Token::SHR: {
2264 Label non_smi_result;
2265 FloatingPointHelper::LoadUnknownsAsIntegers(masm,
2266 use_sse3_,
2267 &call_runtime);
2268 switch (op_) {
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002269 case Token::BIT_OR: __ or_(eax, ecx); break;
2270 case Token::BIT_AND: __ and_(eax, ecx); break;
2271 case Token::BIT_XOR: __ xor_(eax, ecx); break;
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002272 case Token::SAR: __ sar_cl(eax); break;
2273 case Token::SHL: __ shl_cl(eax); break;
2274 case Token::SHR: __ shr_cl(eax); break;
2275 default: UNREACHABLE();
2276 }
2277 if (op_ == Token::SHR) {
2278 // Check if result is non-negative and fits in a smi.
2279 __ test(eax, Immediate(0xc0000000));
2280 __ j(not_zero, &call_runtime);
2281 } else {
2282 // Check if result fits in a smi.
2283 __ cmp(eax, 0xc0000000);
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00002284 __ j(negative, &non_smi_result, Label::kNear);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002285 }
2286 // Tag smi result and return.
2287 __ SmiTag(eax);
2288 __ ret(2 * kPointerSize); // Drop the arguments from the stack.
2289
2290 // All ops except SHR return a signed int32 that we load in
2291 // a HeapNumber.
2292 if (op_ != Token::SHR) {
2293 __ bind(&non_smi_result);
2294 // Allocate a heap number if needed.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002295 __ mov(ebx, eax); // ebx: result
karlklose@chromium.org83a47282011-05-11 11:54:09 +00002296 Label skip_allocation;
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002297 switch (mode_) {
2298 case OVERWRITE_LEFT:
2299 case OVERWRITE_RIGHT:
2300 // If the operand was an object, we skip the
2301 // allocation of a heap number.
2302 __ mov(eax, Operand(esp, mode_ == OVERWRITE_RIGHT ?
2303 1 * kPointerSize : 2 * kPointerSize));
whesse@chromium.org7b260152011-06-20 15:33:18 +00002304 __ JumpIfNotSmi(eax, &skip_allocation, Label::kNear);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002305 // Fall through!
2306 case NO_OVERWRITE:
2307 __ AllocateHeapNumber(eax, ecx, edx, &call_runtime);
2308 __ bind(&skip_allocation);
2309 break;
2310 default: UNREACHABLE();
2311 }
2312 // Store the result in the HeapNumber and return.
kmillikin@chromium.orgc36ce6e2011-04-04 08:25:31 +00002313 if (CpuFeatures::IsSupported(SSE2)) {
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002314 CpuFeatures::Scope use_sse2(SSE2);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002315 __ cvtsi2sd(xmm0, ebx);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002316 __ movdbl(FieldOperand(eax, HeapNumber::kValueOffset), xmm0);
2317 } else {
2318 __ mov(Operand(esp, 1 * kPointerSize), ebx);
2319 __ fild_s(Operand(esp, 1 * kPointerSize));
2320 __ fstp_d(FieldOperand(eax, HeapNumber::kValueOffset));
2321 }
2322 __ ret(2 * kPointerSize);
2323 }
2324 break;
2325 }
2326 default: UNREACHABLE(); break;
2327 }
2328
2329 // If all else fails, use the runtime system to get the correct
2330 // result.
2331 __ bind(&call_runtime);
2332 switch (op_) {
2333 case Token::ADD: {
ager@chromium.org0ee099b2011-01-25 14:06:47 +00002334 GenerateAddStrings(masm);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002335 GenerateRegisterArgsPush(masm);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002336 __ InvokeBuiltin(Builtins::ADD, JUMP_FUNCTION);
2337 break;
2338 }
2339 case Token::SUB:
2340 GenerateRegisterArgsPush(masm);
2341 __ InvokeBuiltin(Builtins::SUB, JUMP_FUNCTION);
2342 break;
2343 case Token::MUL:
2344 GenerateRegisterArgsPush(masm);
2345 __ InvokeBuiltin(Builtins::MUL, JUMP_FUNCTION);
2346 break;
2347 case Token::DIV:
2348 GenerateRegisterArgsPush(masm);
2349 __ InvokeBuiltin(Builtins::DIV, JUMP_FUNCTION);
2350 break;
2351 case Token::MOD:
2352 __ InvokeBuiltin(Builtins::MOD, JUMP_FUNCTION);
2353 break;
2354 case Token::BIT_OR:
2355 __ InvokeBuiltin(Builtins::BIT_OR, JUMP_FUNCTION);
2356 break;
2357 case Token::BIT_AND:
2358 __ InvokeBuiltin(Builtins::BIT_AND, JUMP_FUNCTION);
2359 break;
2360 case Token::BIT_XOR:
2361 __ InvokeBuiltin(Builtins::BIT_XOR, JUMP_FUNCTION);
2362 break;
2363 case Token::SAR:
2364 __ InvokeBuiltin(Builtins::SAR, JUMP_FUNCTION);
2365 break;
2366 case Token::SHL:
2367 __ InvokeBuiltin(Builtins::SHL, JUMP_FUNCTION);
2368 break;
2369 case Token::SHR:
2370 __ InvokeBuiltin(Builtins::SHR, JUMP_FUNCTION);
2371 break;
2372 default:
2373 UNREACHABLE();
2374 }
2375}
2376
2377
danno@chromium.org40cb8782011-05-25 07:58:50 +00002378void BinaryOpStub::GenerateAddStrings(MacroAssembler* masm) {
fschneider@chromium.org3a5fd782011-02-24 10:10:44 +00002379 ASSERT(op_ == Token::ADD);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00002380 Label left_not_string, call_runtime;
ager@chromium.org0ee099b2011-01-25 14:06:47 +00002381
2382 // Registers containing left and right operands respectively.
2383 Register left = edx;
2384 Register right = eax;
2385
2386 // Test if left operand is a string.
whesse@chromium.org7b260152011-06-20 15:33:18 +00002387 __ JumpIfSmi(left, &left_not_string, Label::kNear);
ager@chromium.org0ee099b2011-01-25 14:06:47 +00002388 __ CmpObjectType(left, FIRST_NONSTRING_TYPE, ecx);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00002389 __ j(above_equal, &left_not_string, Label::kNear);
ager@chromium.org0ee099b2011-01-25 14:06:47 +00002390
2391 StringAddStub string_add_left_stub(NO_STRING_CHECK_LEFT_IN_STUB);
2392 GenerateRegisterArgsPush(masm);
2393 __ TailCallStub(&string_add_left_stub);
2394
2395 // Left operand is not a string, test right.
2396 __ bind(&left_not_string);
whesse@chromium.org7b260152011-06-20 15:33:18 +00002397 __ JumpIfSmi(right, &call_runtime, Label::kNear);
ager@chromium.org0ee099b2011-01-25 14:06:47 +00002398 __ CmpObjectType(right, FIRST_NONSTRING_TYPE, ecx);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00002399 __ j(above_equal, &call_runtime, Label::kNear);
ager@chromium.org0ee099b2011-01-25 14:06:47 +00002400
2401 StringAddStub string_add_right_stub(NO_STRING_CHECK_RIGHT_IN_STUB);
2402 GenerateRegisterArgsPush(masm);
2403 __ TailCallStub(&string_add_right_stub);
2404
2405 // Neither argument is a string.
2406 __ bind(&call_runtime);
2407}
2408
2409
danno@chromium.org40cb8782011-05-25 07:58:50 +00002410void BinaryOpStub::GenerateHeapResultAllocation(
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002411 MacroAssembler* masm,
2412 Label* alloc_failure) {
2413 Label skip_allocation;
2414 OverwriteMode mode = mode_;
2415 switch (mode) {
2416 case OVERWRITE_LEFT: {
2417 // If the argument in edx is already an object, we skip the
2418 // allocation of a heap number.
whesse@chromium.org7b260152011-06-20 15:33:18 +00002419 __ JumpIfNotSmi(edx, &skip_allocation, Label::kNear);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002420 // Allocate a heap number for the result. Keep eax and edx intact
2421 // for the possible runtime call.
2422 __ AllocateHeapNumber(ebx, ecx, no_reg, alloc_failure);
2423 // Now edx can be overwritten losing one of the arguments as we are
2424 // now done and will not need it any more.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002425 __ mov(edx, ebx);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002426 __ bind(&skip_allocation);
2427 // Use object in edx as a result holder
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002428 __ mov(eax, edx);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002429 break;
2430 }
2431 case OVERWRITE_RIGHT:
2432 // If the argument in eax is already an object, we skip the
2433 // allocation of a heap number.
whesse@chromium.org7b260152011-06-20 15:33:18 +00002434 __ JumpIfNotSmi(eax, &skip_allocation, Label::kNear);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002435 // Fall through!
2436 case NO_OVERWRITE:
2437 // Allocate a heap number for the result. Keep eax and edx intact
2438 // for the possible runtime call.
2439 __ AllocateHeapNumber(ebx, ecx, no_reg, alloc_failure);
2440 // Now eax can be overwritten losing one of the arguments as we are
2441 // now done and will not need it any more.
2442 __ mov(eax, ebx);
2443 __ bind(&skip_allocation);
2444 break;
2445 default: UNREACHABLE();
2446 }
2447}
2448
2449
danno@chromium.org40cb8782011-05-25 07:58:50 +00002450void BinaryOpStub::GenerateRegisterArgsPush(MacroAssembler* masm) {
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002451 __ pop(ecx);
2452 __ push(edx);
2453 __ push(eax);
2454 __ push(ecx);
2455}
2456
2457
ricow@chromium.org65fae842010-08-25 15:26:24 +00002458void TranscendentalCacheStub::Generate(MacroAssembler* masm) {
whesse@chromium.org023421e2010-12-21 12:19:12 +00002459 // TAGGED case:
2460 // Input:
2461 // esp[4]: tagged number input argument (should be number).
2462 // esp[0]: return address.
2463 // Output:
2464 // eax: tagged double result.
2465 // UNTAGGED case:
2466 // Input::
2467 // esp[0]: return address.
2468 // xmm1: untagged double input argument
2469 // Output:
2470 // xmm1: untagged double result.
2471
ricow@chromium.org65fae842010-08-25 15:26:24 +00002472 Label runtime_call;
2473 Label runtime_call_clear_stack;
whesse@chromium.org023421e2010-12-21 12:19:12 +00002474 Label skip_cache;
2475 const bool tagged = (argument_type_ == TAGGED);
2476 if (tagged) {
2477 // Test that eax is a number.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00002478 Label input_not_smi;
2479 Label loaded;
whesse@chromium.org023421e2010-12-21 12:19:12 +00002480 __ mov(eax, Operand(esp, kPointerSize));
whesse@chromium.org7b260152011-06-20 15:33:18 +00002481 __ JumpIfNotSmi(eax, &input_not_smi, Label::kNear);
whesse@chromium.org023421e2010-12-21 12:19:12 +00002482 // Input is a smi. Untag and load it onto the FPU stack.
2483 // Then load the low and high words of the double into ebx, edx.
2484 STATIC_ASSERT(kSmiTagSize == 1);
2485 __ sar(eax, 1);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002486 __ sub(esp, Immediate(2 * kPointerSize));
whesse@chromium.org023421e2010-12-21 12:19:12 +00002487 __ mov(Operand(esp, 0), eax);
2488 __ fild_s(Operand(esp, 0));
2489 __ fst_d(Operand(esp, 0));
2490 __ pop(edx);
2491 __ pop(ebx);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00002492 __ jmp(&loaded, Label::kNear);
whesse@chromium.org023421e2010-12-21 12:19:12 +00002493 __ bind(&input_not_smi);
2494 // Check if input is a HeapNumber.
2495 __ mov(ebx, FieldOperand(eax, HeapObject::kMapOffset));
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00002496 Factory* factory = masm->isolate()->factory();
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002497 __ cmp(ebx, Immediate(factory->heap_number_map()));
whesse@chromium.org023421e2010-12-21 12:19:12 +00002498 __ j(not_equal, &runtime_call);
2499 // Input is a HeapNumber. Push it on the FPU stack and load its
2500 // low and high words into ebx, edx.
2501 __ fld_d(FieldOperand(eax, HeapNumber::kValueOffset));
2502 __ mov(edx, FieldOperand(eax, HeapNumber::kExponentOffset));
2503 __ mov(ebx, FieldOperand(eax, HeapNumber::kMantissaOffset));
ricow@chromium.org65fae842010-08-25 15:26:24 +00002504
whesse@chromium.org023421e2010-12-21 12:19:12 +00002505 __ bind(&loaded);
2506 } else { // UNTAGGED.
kmillikin@chromium.orgc36ce6e2011-04-04 08:25:31 +00002507 if (CpuFeatures::IsSupported(SSE4_1)) {
whesse@chromium.org023421e2010-12-21 12:19:12 +00002508 CpuFeatures::Scope sse4_scope(SSE4_1);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002509 __ pextrd(edx, xmm1, 0x1); // copy xmm1[63..32] to edx.
whesse@chromium.org023421e2010-12-21 12:19:12 +00002510 } else {
2511 __ pshufd(xmm0, xmm1, 0x1);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002512 __ movd(edx, xmm0);
whesse@chromium.org023421e2010-12-21 12:19:12 +00002513 }
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002514 __ movd(ebx, xmm1);
whesse@chromium.org023421e2010-12-21 12:19:12 +00002515 }
2516
2517 // ST[0] or xmm1 == double value
ricow@chromium.org65fae842010-08-25 15:26:24 +00002518 // ebx = low 32 bits of double value
2519 // edx = high 32 bits of double value
2520 // Compute hash (the shifts are arithmetic):
2521 // h = (low ^ high); h ^= h >> 16; h ^= h >> 8; h = h & (cacheSize - 1);
2522 __ mov(ecx, ebx);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002523 __ xor_(ecx, edx);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002524 __ mov(eax, ecx);
2525 __ sar(eax, 16);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002526 __ xor_(ecx, eax);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002527 __ mov(eax, ecx);
2528 __ sar(eax, 8);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002529 __ xor_(ecx, eax);
sgjesse@chromium.orgea88ce92011-03-23 11:19:56 +00002530 ASSERT(IsPowerOf2(TranscendentalCache::SubCache::kCacheSize));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002531 __ and_(ecx,
sgjesse@chromium.orgea88ce92011-03-23 11:19:56 +00002532 Immediate(TranscendentalCache::SubCache::kCacheSize - 1));
ricow@chromium.org65fae842010-08-25 15:26:24 +00002533
whesse@chromium.org023421e2010-12-21 12:19:12 +00002534 // ST[0] or xmm1 == double value.
ricow@chromium.org65fae842010-08-25 15:26:24 +00002535 // ebx = low 32 bits of double value.
2536 // edx = high 32 bits of double value.
2537 // ecx = TranscendentalCache::hash(double value).
sgjesse@chromium.orgea88ce92011-03-23 11:19:56 +00002538 ExternalReference cache_array =
2539 ExternalReference::transcendental_cache_array_address(masm->isolate());
2540 __ mov(eax, Immediate(cache_array));
2541 int cache_array_index =
2542 type_ * sizeof(masm->isolate()->transcendental_cache()->caches_[0]);
2543 __ mov(eax, Operand(eax, cache_array_index));
ricow@chromium.org65fae842010-08-25 15:26:24 +00002544 // Eax points to the cache for the type type_.
2545 // If NULL, the cache hasn't been initialized yet, so go through runtime.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002546 __ test(eax, eax);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002547 __ j(zero, &runtime_call_clear_stack);
2548#ifdef DEBUG
2549 // Check that the layout of cache elements match expectations.
sgjesse@chromium.orgea88ce92011-03-23 11:19:56 +00002550 { TranscendentalCache::SubCache::Element test_elem[2];
ricow@chromium.org65fae842010-08-25 15:26:24 +00002551 char* elem_start = reinterpret_cast<char*>(&test_elem[0]);
2552 char* elem2_start = reinterpret_cast<char*>(&test_elem[1]);
2553 char* elem_in0 = reinterpret_cast<char*>(&(test_elem[0].in[0]));
2554 char* elem_in1 = reinterpret_cast<char*>(&(test_elem[0].in[1]));
2555 char* elem_out = reinterpret_cast<char*>(&(test_elem[0].output));
2556 CHECK_EQ(12, elem2_start - elem_start); // Two uint_32's and a pointer.
2557 CHECK_EQ(0, elem_in0 - elem_start);
2558 CHECK_EQ(kIntSize, elem_in1 - elem_start);
2559 CHECK_EQ(2 * kIntSize, elem_out - elem_start);
2560 }
2561#endif
2562 // Find the address of the ecx'th entry in the cache, i.e., &eax[ecx*12].
2563 __ lea(ecx, Operand(ecx, ecx, times_2, 0));
2564 __ lea(ecx, Operand(eax, ecx, times_4, 0));
2565 // Check if cache matches: Double value is stored in uint32_t[2] array.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00002566 Label cache_miss;
ricow@chromium.org65fae842010-08-25 15:26:24 +00002567 __ cmp(ebx, Operand(ecx, 0));
karlklose@chromium.org83a47282011-05-11 11:54:09 +00002568 __ j(not_equal, &cache_miss, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002569 __ cmp(edx, Operand(ecx, kIntSize));
karlklose@chromium.org83a47282011-05-11 11:54:09 +00002570 __ j(not_equal, &cache_miss, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002571 // Cache hit!
mstarzinger@chromium.org1b3afd12011-11-29 14:28:56 +00002572 Counters* counters = masm->isolate()->counters();
2573 __ IncrementCounter(counters->transcendental_cache_hit(), 1);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002574 __ mov(eax, Operand(ecx, 2 * kIntSize));
whesse@chromium.org023421e2010-12-21 12:19:12 +00002575 if (tagged) {
2576 __ fstp(0);
2577 __ ret(kPointerSize);
2578 } else { // UNTAGGED.
2579 __ movdbl(xmm1, FieldOperand(eax, HeapNumber::kValueOffset));
2580 __ Ret();
2581 }
ricow@chromium.org65fae842010-08-25 15:26:24 +00002582
2583 __ bind(&cache_miss);
mstarzinger@chromium.org1b3afd12011-11-29 14:28:56 +00002584 __ IncrementCounter(counters->transcendental_cache_miss(), 1);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002585 // Update cache with new value.
2586 // We are short on registers, so use no_reg as scratch.
2587 // This gives slightly larger code.
whesse@chromium.org023421e2010-12-21 12:19:12 +00002588 if (tagged) {
2589 __ AllocateHeapNumber(eax, edi, no_reg, &runtime_call_clear_stack);
2590 } else { // UNTAGGED.
2591 __ AllocateHeapNumber(eax, edi, no_reg, &skip_cache);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002592 __ sub(esp, Immediate(kDoubleSize));
whesse@chromium.org023421e2010-12-21 12:19:12 +00002593 __ movdbl(Operand(esp, 0), xmm1);
2594 __ fld_d(Operand(esp, 0));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002595 __ add(esp, Immediate(kDoubleSize));
whesse@chromium.org023421e2010-12-21 12:19:12 +00002596 }
ulan@chromium.org9a21ec42012-03-06 08:42:24 +00002597 GenerateOperation(masm, type_);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002598 __ mov(Operand(ecx, 0), ebx);
2599 __ mov(Operand(ecx, kIntSize), edx);
2600 __ mov(Operand(ecx, 2 * kIntSize), eax);
2601 __ fstp_d(FieldOperand(eax, HeapNumber::kValueOffset));
whesse@chromium.org023421e2010-12-21 12:19:12 +00002602 if (tagged) {
2603 __ ret(kPointerSize);
2604 } else { // UNTAGGED.
2605 __ movdbl(xmm1, FieldOperand(eax, HeapNumber::kValueOffset));
2606 __ Ret();
ricow@chromium.org65fae842010-08-25 15:26:24 +00002607
whesse@chromium.org023421e2010-12-21 12:19:12 +00002608 // Skip cache and return answer directly, only in untagged case.
2609 __ bind(&skip_cache);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002610 __ sub(esp, Immediate(kDoubleSize));
whesse@chromium.org023421e2010-12-21 12:19:12 +00002611 __ movdbl(Operand(esp, 0), xmm1);
2612 __ fld_d(Operand(esp, 0));
ulan@chromium.org9a21ec42012-03-06 08:42:24 +00002613 GenerateOperation(masm, type_);
whesse@chromium.org023421e2010-12-21 12:19:12 +00002614 __ fstp_d(Operand(esp, 0));
2615 __ movdbl(xmm1, Operand(esp, 0));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002616 __ add(esp, Immediate(kDoubleSize));
whesse@chromium.org023421e2010-12-21 12:19:12 +00002617 // We return the value in xmm1 without adding it to the cache, but
2618 // we cause a scavenging GC so that future allocations will succeed.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002619 {
2620 FrameScope scope(masm, StackFrame::INTERNAL);
2621 // Allocate an unused object bigger than a HeapNumber.
2622 __ push(Immediate(Smi::FromInt(2 * kDoubleSize)));
2623 __ CallRuntimeSaveDoubles(Runtime::kAllocateInNewSpace);
2624 }
whesse@chromium.org023421e2010-12-21 12:19:12 +00002625 __ Ret();
2626 }
2627
2628 // Call runtime, doing whatever allocation and cleanup is necessary.
2629 if (tagged) {
2630 __ bind(&runtime_call_clear_stack);
2631 __ fstp(0);
2632 __ bind(&runtime_call);
sgjesse@chromium.orgea88ce92011-03-23 11:19:56 +00002633 ExternalReference runtime =
2634 ExternalReference(RuntimeFunction(), masm->isolate());
2635 __ TailCallExternalReference(runtime, 1, 1);
whesse@chromium.org023421e2010-12-21 12:19:12 +00002636 } else { // UNTAGGED.
2637 __ bind(&runtime_call_clear_stack);
2638 __ bind(&runtime_call);
2639 __ AllocateHeapNumber(eax, edi, no_reg, &skip_cache);
2640 __ movdbl(FieldOperand(eax, HeapNumber::kValueOffset), xmm1);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002641 {
2642 FrameScope scope(masm, StackFrame::INTERNAL);
2643 __ push(eax);
2644 __ CallRuntime(RuntimeFunction(), 1);
2645 }
whesse@chromium.org023421e2010-12-21 12:19:12 +00002646 __ movdbl(xmm1, FieldOperand(eax, HeapNumber::kValueOffset));
2647 __ Ret();
2648 }
ricow@chromium.org65fae842010-08-25 15:26:24 +00002649}
2650
2651
2652Runtime::FunctionId TranscendentalCacheStub::RuntimeFunction() {
2653 switch (type_) {
ricow@chromium.org65fae842010-08-25 15:26:24 +00002654 case TranscendentalCache::SIN: return Runtime::kMath_sin;
2655 case TranscendentalCache::COS: return Runtime::kMath_cos;
mstarzinger@chromium.org1b3afd12011-11-29 14:28:56 +00002656 case TranscendentalCache::TAN: return Runtime::kMath_tan;
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002657 case TranscendentalCache::LOG: return Runtime::kMath_log;
ricow@chromium.org65fae842010-08-25 15:26:24 +00002658 default:
2659 UNIMPLEMENTED();
2660 return Runtime::kAbort;
2661 }
2662}
2663
2664
ulan@chromium.org9a21ec42012-03-06 08:42:24 +00002665void TranscendentalCacheStub::GenerateOperation(
2666 MacroAssembler* masm, TranscendentalCache::Type type) {
ricow@chromium.org65fae842010-08-25 15:26:24 +00002667 // Only free register is edi.
whesse@chromium.org023421e2010-12-21 12:19:12 +00002668 // Input value is on FP stack, and also in ebx/edx.
2669 // Input value is possibly in xmm1.
2670 // Address of result (a newly allocated HeapNumber) may be in eax.
ulan@chromium.org9a21ec42012-03-06 08:42:24 +00002671 if (type == TranscendentalCache::SIN ||
2672 type == TranscendentalCache::COS ||
2673 type == TranscendentalCache::TAN) {
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002674 // Both fsin and fcos require arguments in the range +/-2^63 and
2675 // return NaN for infinities and NaN. They can share all code except
2676 // the actual fsin/fcos operation.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00002677 Label in_range, done;
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002678 // If argument is outside the range -2^63..2^63, fsin/cos doesn't
2679 // work. We must reduce it to the appropriate range.
2680 __ mov(edi, edx);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002681 __ and_(edi, Immediate(0x7ff00000)); // Exponent only.
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002682 int supported_exponent_limit =
2683 (63 + HeapNumber::kExponentBias) << HeapNumber::kExponentShift;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002684 __ cmp(edi, Immediate(supported_exponent_limit));
vegorov@chromium.org7304bca2011-05-16 12:14:13 +00002685 __ j(below, &in_range, Label::kNear);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002686 // Check for infinity and NaN. Both return NaN for sin.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002687 __ cmp(edi, Immediate(0x7ff00000));
karlklose@chromium.org83a47282011-05-11 11:54:09 +00002688 Label non_nan_result;
vegorov@chromium.org7304bca2011-05-16 12:14:13 +00002689 __ j(not_equal, &non_nan_result, Label::kNear);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002690 // Input is +/-Infinity or NaN. Result is NaN.
2691 __ fstp(0);
2692 // NaN is represented by 0x7ff8000000000000.
2693 __ push(Immediate(0x7ff80000));
2694 __ push(Immediate(0));
2695 __ fld_d(Operand(esp, 0));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002696 __ add(esp, Immediate(2 * kPointerSize));
karlklose@chromium.org83a47282011-05-11 11:54:09 +00002697 __ jmp(&done, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002698
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002699 __ bind(&non_nan_result);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002700
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002701 // Use fpmod to restrict argument to the range +/-2*PI.
2702 __ mov(edi, eax); // Save eax before using fnstsw_ax.
2703 __ fldpi();
2704 __ fadd(0);
2705 __ fld(1);
2706 // FPU Stack: input, 2*pi, input.
2707 {
karlklose@chromium.org83a47282011-05-11 11:54:09 +00002708 Label no_exceptions;
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002709 __ fwait();
2710 __ fnstsw_ax();
2711 // Clear if Illegal Operand or Zero Division exceptions are set.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002712 __ test(eax, Immediate(5));
karlklose@chromium.org83a47282011-05-11 11:54:09 +00002713 __ j(zero, &no_exceptions, Label::kNear);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002714 __ fnclex();
2715 __ bind(&no_exceptions);
2716 }
ricow@chromium.org65fae842010-08-25 15:26:24 +00002717
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002718 // Compute st(0) % st(1)
2719 {
karlklose@chromium.org83a47282011-05-11 11:54:09 +00002720 Label partial_remainder_loop;
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002721 __ bind(&partial_remainder_loop);
2722 __ fprem1();
2723 __ fwait();
2724 __ fnstsw_ax();
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002725 __ test(eax, Immediate(0x400 /* C2 */));
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002726 // If C2 is set, computation only has partial result. Loop to
2727 // continue computation.
2728 __ j(not_zero, &partial_remainder_loop);
2729 }
2730 // FPU Stack: input, 2*pi, input % 2*pi
2731 __ fstp(2);
2732 __ fstp(0);
2733 __ mov(eax, edi); // Restore eax (allocated HeapNumber pointer).
2734
2735 // FPU Stack: input % 2*pi
2736 __ bind(&in_range);
ulan@chromium.org9a21ec42012-03-06 08:42:24 +00002737 switch (type) {
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002738 case TranscendentalCache::SIN:
2739 __ fsin();
2740 break;
2741 case TranscendentalCache::COS:
2742 __ fcos();
2743 break;
mstarzinger@chromium.org1b3afd12011-11-29 14:28:56 +00002744 case TranscendentalCache::TAN:
2745 // FPTAN calculates tangent onto st(0) and pushes 1.0 onto the
2746 // FP register stack.
2747 __ fptan();
2748 __ fstp(0); // Pop FP register stack.
2749 break;
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002750 default:
2751 UNREACHABLE();
2752 }
2753 __ bind(&done);
2754 } else {
ulan@chromium.org9a21ec42012-03-06 08:42:24 +00002755 ASSERT(type == TranscendentalCache::LOG);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002756 __ fldln2();
2757 __ fxch();
2758 __ fyl2x();
ricow@chromium.org65fae842010-08-25 15:26:24 +00002759 }
ricow@chromium.org65fae842010-08-25 15:26:24 +00002760}
2761
2762
ricow@chromium.org65fae842010-08-25 15:26:24 +00002763// Input: edx, eax are the left and right objects of a bit op.
2764// Output: eax, ecx are left and right integers for a bit op.
ricow@chromium.org65fae842010-08-25 15:26:24 +00002765void FloatingPointHelper::LoadUnknownsAsIntegers(MacroAssembler* masm,
2766 bool use_sse3,
2767 Label* conversion_failure) {
2768 // Check float operands.
2769 Label arg1_is_object, check_undefined_arg1;
2770 Label arg2_is_object, check_undefined_arg2;
2771 Label load_arg2, done;
2772
2773 // Test if arg1 is a Smi.
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00002774 __ JumpIfNotSmi(edx, &arg1_is_object, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002775
2776 __ SmiUntag(edx);
2777 __ jmp(&load_arg2);
2778
2779 // If the argument is undefined it converts to zero (ECMA-262, section 9.5).
2780 __ bind(&check_undefined_arg1);
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00002781 Factory* factory = masm->isolate()->factory();
2782 __ cmp(edx, factory->undefined_value());
ricow@chromium.org65fae842010-08-25 15:26:24 +00002783 __ j(not_equal, conversion_failure);
2784 __ mov(edx, Immediate(0));
2785 __ jmp(&load_arg2);
2786
2787 __ bind(&arg1_is_object);
2788 __ mov(ebx, FieldOperand(edx, HeapObject::kMapOffset));
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00002789 __ cmp(ebx, factory->heap_number_map());
ricow@chromium.org65fae842010-08-25 15:26:24 +00002790 __ j(not_equal, &check_undefined_arg1);
2791
2792 // Get the untagged integer version of the edx heap number in ecx.
vegorov@chromium.org7304bca2011-05-16 12:14:13 +00002793 IntegerConvert(masm, edx, use_sse3, conversion_failure);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002794 __ mov(edx, ecx);
2795
2796 // Here edx has the untagged integer, eax has a Smi or a heap number.
2797 __ bind(&load_arg2);
2798
2799 // Test if arg2 is a Smi.
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00002800 __ JumpIfNotSmi(eax, &arg2_is_object, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002801
2802 __ SmiUntag(eax);
2803 __ mov(ecx, eax);
2804 __ jmp(&done);
2805
2806 // If the argument is undefined it converts to zero (ECMA-262, section 9.5).
2807 __ bind(&check_undefined_arg2);
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00002808 __ cmp(eax, factory->undefined_value());
ricow@chromium.org65fae842010-08-25 15:26:24 +00002809 __ j(not_equal, conversion_failure);
2810 __ mov(ecx, Immediate(0));
2811 __ jmp(&done);
2812
2813 __ bind(&arg2_is_object);
2814 __ mov(ebx, FieldOperand(eax, HeapObject::kMapOffset));
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00002815 __ cmp(ebx, factory->heap_number_map());
ricow@chromium.org65fae842010-08-25 15:26:24 +00002816 __ j(not_equal, &check_undefined_arg2);
2817
2818 // Get the untagged integer version of the eax heap number in ecx.
vegorov@chromium.org7304bca2011-05-16 12:14:13 +00002819 IntegerConvert(masm, eax, use_sse3, conversion_failure);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002820 __ bind(&done);
2821 __ mov(eax, edx);
2822}
2823
2824
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002825void FloatingPointHelper::CheckLoadedIntegersWereInt32(MacroAssembler* masm,
2826 bool use_sse3,
2827 Label* not_int32) {
2828 return;
2829}
2830
2831
ricow@chromium.org65fae842010-08-25 15:26:24 +00002832void FloatingPointHelper::LoadFloatOperand(MacroAssembler* masm,
2833 Register number) {
karlklose@chromium.org83a47282011-05-11 11:54:09 +00002834 Label load_smi, done;
ricow@chromium.org65fae842010-08-25 15:26:24 +00002835
whesse@chromium.org7b260152011-06-20 15:33:18 +00002836 __ JumpIfSmi(number, &load_smi, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002837 __ fld_d(FieldOperand(number, HeapNumber::kValueOffset));
karlklose@chromium.org83a47282011-05-11 11:54:09 +00002838 __ jmp(&done, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002839
2840 __ bind(&load_smi);
2841 __ SmiUntag(number);
2842 __ push(number);
2843 __ fild_s(Operand(esp, 0));
2844 __ pop(number);
2845
2846 __ bind(&done);
2847}
2848
2849
2850void FloatingPointHelper::LoadSSE2Operands(MacroAssembler* masm) {
karlklose@chromium.org83a47282011-05-11 11:54:09 +00002851 Label load_smi_edx, load_eax, load_smi_eax, done;
ricow@chromium.org65fae842010-08-25 15:26:24 +00002852 // Load operand in edx into xmm0.
whesse@chromium.org7b260152011-06-20 15:33:18 +00002853 __ JumpIfSmi(edx, &load_smi_edx, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002854 __ movdbl(xmm0, FieldOperand(edx, HeapNumber::kValueOffset));
2855
2856 __ bind(&load_eax);
2857 // Load operand in eax into xmm1.
whesse@chromium.org7b260152011-06-20 15:33:18 +00002858 __ JumpIfSmi(eax, &load_smi_eax, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002859 __ movdbl(xmm1, FieldOperand(eax, HeapNumber::kValueOffset));
karlklose@chromium.org83a47282011-05-11 11:54:09 +00002860 __ jmp(&done, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002861
2862 __ bind(&load_smi_edx);
2863 __ SmiUntag(edx); // Untag smi before converting to float.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002864 __ cvtsi2sd(xmm0, edx);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002865 __ SmiTag(edx); // Retag smi for heap number overwriting test.
2866 __ jmp(&load_eax);
2867
2868 __ bind(&load_smi_eax);
2869 __ SmiUntag(eax); // Untag smi before converting to float.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002870 __ cvtsi2sd(xmm1, eax);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002871 __ SmiTag(eax); // Retag smi for heap number overwriting test.
2872
2873 __ bind(&done);
2874}
2875
2876
2877void FloatingPointHelper::LoadSSE2Operands(MacroAssembler* masm,
2878 Label* not_numbers) {
karlklose@chromium.org83a47282011-05-11 11:54:09 +00002879 Label load_smi_edx, load_eax, load_smi_eax, load_float_eax, done;
ricow@chromium.org65fae842010-08-25 15:26:24 +00002880 // Load operand in edx into xmm0, or branch to not_numbers.
whesse@chromium.org7b260152011-06-20 15:33:18 +00002881 __ JumpIfSmi(edx, &load_smi_edx, Label::kNear);
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00002882 Factory* factory = masm->isolate()->factory();
2883 __ cmp(FieldOperand(edx, HeapObject::kMapOffset), factory->heap_number_map());
ricow@chromium.org65fae842010-08-25 15:26:24 +00002884 __ j(not_equal, not_numbers); // Argument in edx is not a number.
2885 __ movdbl(xmm0, FieldOperand(edx, HeapNumber::kValueOffset));
2886 __ bind(&load_eax);
2887 // Load operand in eax into xmm1, or branch to not_numbers.
whesse@chromium.org7b260152011-06-20 15:33:18 +00002888 __ JumpIfSmi(eax, &load_smi_eax, Label::kNear);
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00002889 __ cmp(FieldOperand(eax, HeapObject::kMapOffset), factory->heap_number_map());
karlklose@chromium.org83a47282011-05-11 11:54:09 +00002890 __ j(equal, &load_float_eax, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002891 __ jmp(not_numbers); // Argument in eax is not a number.
2892 __ bind(&load_smi_edx);
2893 __ SmiUntag(edx); // Untag smi before converting to float.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002894 __ cvtsi2sd(xmm0, edx);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002895 __ SmiTag(edx); // Retag smi for heap number overwriting test.
2896 __ jmp(&load_eax);
2897 __ bind(&load_smi_eax);
2898 __ SmiUntag(eax); // Untag smi before converting to float.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002899 __ cvtsi2sd(xmm1, eax);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002900 __ SmiTag(eax); // Retag smi for heap number overwriting test.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00002901 __ jmp(&done, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002902 __ bind(&load_float_eax);
2903 __ movdbl(xmm1, FieldOperand(eax, HeapNumber::kValueOffset));
2904 __ bind(&done);
2905}
2906
2907
2908void FloatingPointHelper::LoadSSE2Smis(MacroAssembler* masm,
2909 Register scratch) {
2910 const Register left = edx;
2911 const Register right = eax;
2912 __ mov(scratch, left);
2913 ASSERT(!scratch.is(right)); // We're about to clobber scratch.
2914 __ SmiUntag(scratch);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002915 __ cvtsi2sd(xmm0, scratch);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002916
2917 __ mov(scratch, right);
2918 __ SmiUntag(scratch);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002919 __ cvtsi2sd(xmm1, scratch);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002920}
2921
2922
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002923void FloatingPointHelper::CheckSSE2OperandsAreInt32(MacroAssembler* masm,
2924 Label* non_int32,
2925 Register scratch) {
2926 __ cvttsd2si(scratch, Operand(xmm0));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002927 __ cvtsi2sd(xmm2, scratch);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002928 __ ucomisd(xmm0, xmm2);
2929 __ j(not_zero, non_int32);
2930 __ j(carry, non_int32);
2931 __ cvttsd2si(scratch, Operand(xmm1));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00002932 __ cvtsi2sd(xmm2, scratch);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00002933 __ ucomisd(xmm1, xmm2);
2934 __ j(not_zero, non_int32);
2935 __ j(carry, non_int32);
2936}
2937
2938
ricow@chromium.org65fae842010-08-25 15:26:24 +00002939void FloatingPointHelper::LoadFloatOperands(MacroAssembler* masm,
2940 Register scratch,
2941 ArgLocation arg_location) {
karlklose@chromium.org83a47282011-05-11 11:54:09 +00002942 Label load_smi_1, load_smi_2, done_load_1, done;
ricow@chromium.org65fae842010-08-25 15:26:24 +00002943 if (arg_location == ARGS_IN_REGISTERS) {
2944 __ mov(scratch, edx);
2945 } else {
2946 __ mov(scratch, Operand(esp, 2 * kPointerSize));
2947 }
whesse@chromium.org7b260152011-06-20 15:33:18 +00002948 __ JumpIfSmi(scratch, &load_smi_1, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002949 __ fld_d(FieldOperand(scratch, HeapNumber::kValueOffset));
2950 __ bind(&done_load_1);
2951
2952 if (arg_location == ARGS_IN_REGISTERS) {
2953 __ mov(scratch, eax);
2954 } else {
2955 __ mov(scratch, Operand(esp, 1 * kPointerSize));
2956 }
whesse@chromium.org7b260152011-06-20 15:33:18 +00002957 __ JumpIfSmi(scratch, &load_smi_2, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002958 __ fld_d(FieldOperand(scratch, HeapNumber::kValueOffset));
karlklose@chromium.org83a47282011-05-11 11:54:09 +00002959 __ jmp(&done, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00002960
2961 __ bind(&load_smi_1);
2962 __ SmiUntag(scratch);
2963 __ push(scratch);
2964 __ fild_s(Operand(esp, 0));
2965 __ pop(scratch);
2966 __ jmp(&done_load_1);
2967
2968 __ bind(&load_smi_2);
2969 __ SmiUntag(scratch);
2970 __ push(scratch);
2971 __ fild_s(Operand(esp, 0));
2972 __ pop(scratch);
2973
2974 __ bind(&done);
2975}
2976
2977
2978void FloatingPointHelper::LoadFloatSmis(MacroAssembler* masm,
2979 Register scratch) {
2980 const Register left = edx;
2981 const Register right = eax;
2982 __ mov(scratch, left);
2983 ASSERT(!scratch.is(right)); // We're about to clobber scratch.
2984 __ SmiUntag(scratch);
2985 __ push(scratch);
2986 __ fild_s(Operand(esp, 0));
2987
2988 __ mov(scratch, right);
2989 __ SmiUntag(scratch);
2990 __ mov(Operand(esp, 0), scratch);
2991 __ fild_s(Operand(esp, 0));
2992 __ pop(scratch);
2993}
2994
2995
2996void FloatingPointHelper::CheckFloatOperands(MacroAssembler* masm,
2997 Label* non_float,
2998 Register scratch) {
karlklose@chromium.org83a47282011-05-11 11:54:09 +00002999 Label test_other, done;
ricow@chromium.org65fae842010-08-25 15:26:24 +00003000 // Test if both operands are floats or smi -> scratch=k_is_float;
3001 // Otherwise scratch = k_not_float.
whesse@chromium.org7b260152011-06-20 15:33:18 +00003002 __ JumpIfSmi(edx, &test_other, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003003 __ mov(scratch, FieldOperand(edx, HeapObject::kMapOffset));
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00003004 Factory* factory = masm->isolate()->factory();
3005 __ cmp(scratch, factory->heap_number_map());
ricow@chromium.org65fae842010-08-25 15:26:24 +00003006 __ j(not_equal, non_float); // argument in edx is not a number -> NaN
3007
3008 __ bind(&test_other);
whesse@chromium.org7b260152011-06-20 15:33:18 +00003009 __ JumpIfSmi(eax, &done, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003010 __ mov(scratch, FieldOperand(eax, HeapObject::kMapOffset));
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00003011 __ cmp(scratch, factory->heap_number_map());
ricow@chromium.org65fae842010-08-25 15:26:24 +00003012 __ j(not_equal, non_float); // argument in eax is not a number -> NaN
3013
3014 // Fall-through: Both operands are numbers.
3015 __ bind(&done);
3016}
3017
3018
kasperl@chromium.orga5551262010-12-07 12:49:48 +00003019void FloatingPointHelper::CheckFloatOperandsAreInt32(MacroAssembler* masm,
3020 Label* non_int32) {
3021 return;
3022}
3023
3024
kasperl@chromium.orga5551262010-12-07 12:49:48 +00003025void MathPowStub::Generate(MacroAssembler* masm) {
kasperl@chromium.orga5551262010-12-07 12:49:48 +00003026 CpuFeatures::Scope use_sse2(SSE2);
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00003027 Factory* factory = masm->isolate()->factory();
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00003028 const Register exponent = eax;
3029 const Register base = edx;
3030 const Register scratch = ecx;
3031 const XMMRegister double_result = xmm3;
3032 const XMMRegister double_base = xmm2;
3033 const XMMRegister double_exponent = xmm1;
3034 const XMMRegister double_scratch = xmm4;
kasperl@chromium.orga5551262010-12-07 12:49:48 +00003035
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00003036 Label call_runtime, done, exponent_not_smi, int_exponent;
kasperl@chromium.orga5551262010-12-07 12:49:48 +00003037
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00003038 // Save 1 in double_result - we need this several times later on.
3039 __ mov(scratch, Immediate(1));
3040 __ cvtsi2sd(double_result, scratch);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00003041
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00003042 if (exponent_type_ == ON_STACK) {
3043 Label base_is_smi, unpack_exponent;
3044 // The exponent and base are supplied as arguments on the stack.
3045 // This can only happen if the stub is called from non-optimized code.
3046 // Load input parameters from stack.
3047 __ mov(base, Operand(esp, 2 * kPointerSize));
3048 __ mov(exponent, Operand(esp, 1 * kPointerSize));
3049
3050 __ JumpIfSmi(base, &base_is_smi, Label::kNear);
3051 __ cmp(FieldOperand(base, HeapObject::kMapOffset),
3052 factory->heap_number_map());
3053 __ j(not_equal, &call_runtime);
3054
3055 __ movdbl(double_base, FieldOperand(base, HeapNumber::kValueOffset));
3056 __ jmp(&unpack_exponent, Label::kNear);
3057
3058 __ bind(&base_is_smi);
3059 __ SmiUntag(base);
3060 __ cvtsi2sd(double_base, base);
3061
3062 __ bind(&unpack_exponent);
3063 __ JumpIfNotSmi(exponent, &exponent_not_smi, Label::kNear);
3064 __ SmiUntag(exponent);
3065 __ jmp(&int_exponent);
3066
3067 __ bind(&exponent_not_smi);
3068 __ cmp(FieldOperand(exponent, HeapObject::kMapOffset),
3069 factory->heap_number_map());
3070 __ j(not_equal, &call_runtime);
3071 __ movdbl(double_exponent,
3072 FieldOperand(exponent, HeapNumber::kValueOffset));
3073 } else if (exponent_type_ == TAGGED) {
3074 __ JumpIfNotSmi(exponent, &exponent_not_smi, Label::kNear);
3075 __ SmiUntag(exponent);
3076 __ jmp(&int_exponent);
3077
3078 __ bind(&exponent_not_smi);
3079 __ movdbl(double_exponent,
3080 FieldOperand(exponent, HeapNumber::kValueOffset));
3081 }
3082
3083 if (exponent_type_ != INTEGER) {
3084 Label fast_power;
3085 // Detect integer exponents stored as double.
3086 __ cvttsd2si(exponent, Operand(double_exponent));
3087 // Skip to runtime if possibly NaN (indicated by the indefinite integer).
3088 __ cmp(exponent, Immediate(0x80000000u));
3089 __ j(equal, &call_runtime);
3090 __ cvtsi2sd(double_scratch, exponent);
3091 // Already ruled out NaNs for exponent.
3092 __ ucomisd(double_exponent, double_scratch);
3093 __ j(equal, &int_exponent);
3094
3095 if (exponent_type_ == ON_STACK) {
3096 // Detect square root case. Crankshaft detects constant +/-0.5 at
3097 // compile time and uses DoMathPowHalf instead. We then skip this check
3098 // for non-constant cases of +/-0.5 as these hardly occur.
3099 Label continue_sqrt, continue_rsqrt, not_plus_half;
3100 // Test for 0.5.
3101 // Load double_scratch with 0.5.
3102 __ mov(scratch, Immediate(0x3F000000u));
3103 __ movd(double_scratch, scratch);
3104 __ cvtss2sd(double_scratch, double_scratch);
3105 // Already ruled out NaNs for exponent.
3106 __ ucomisd(double_scratch, double_exponent);
3107 __ j(not_equal, &not_plus_half, Label::kNear);
3108
3109 // Calculates square root of base. Check for the special case of
3110 // Math.pow(-Infinity, 0.5) == Infinity (ECMA spec, 15.8.2.13).
3111 // According to IEEE-754, single-precision -Infinity has the highest
3112 // 9 bits set and the lowest 23 bits cleared.
3113 __ mov(scratch, 0xFF800000u);
3114 __ movd(double_scratch, scratch);
3115 __ cvtss2sd(double_scratch, double_scratch);
3116 __ ucomisd(double_base, double_scratch);
3117 // Comparing -Infinity with NaN results in "unordered", which sets the
3118 // zero flag as if both were equal. However, it also sets the carry flag.
3119 __ j(not_equal, &continue_sqrt, Label::kNear);
3120 __ j(carry, &continue_sqrt, Label::kNear);
3121
3122 // Set result to Infinity in the special case.
3123 __ xorps(double_result, double_result);
3124 __ subsd(double_result, double_scratch);
3125 __ jmp(&done);
3126
3127 __ bind(&continue_sqrt);
3128 // sqrtsd returns -0 when input is -0. ECMA spec requires +0.
3129 __ xorps(double_scratch, double_scratch);
3130 __ addsd(double_scratch, double_base); // Convert -0 to +0.
3131 __ sqrtsd(double_result, double_scratch);
3132 __ jmp(&done);
3133
3134 // Test for -0.5.
3135 __ bind(&not_plus_half);
3136 // Load double_exponent with -0.5 by substracting 1.
3137 __ subsd(double_scratch, double_result);
3138 // Already ruled out NaNs for exponent.
3139 __ ucomisd(double_scratch, double_exponent);
3140 __ j(not_equal, &fast_power, Label::kNear);
3141
3142 // Calculates reciprocal of square root of base. Check for the special
3143 // case of Math.pow(-Infinity, -0.5) == 0 (ECMA spec, 15.8.2.13).
3144 // According to IEEE-754, single-precision -Infinity has the highest
3145 // 9 bits set and the lowest 23 bits cleared.
3146 __ mov(scratch, 0xFF800000u);
3147 __ movd(double_scratch, scratch);
3148 __ cvtss2sd(double_scratch, double_scratch);
3149 __ ucomisd(double_base, double_scratch);
3150 // Comparing -Infinity with NaN results in "unordered", which sets the
3151 // zero flag as if both were equal. However, it also sets the carry flag.
3152 __ j(not_equal, &continue_rsqrt, Label::kNear);
3153 __ j(carry, &continue_rsqrt, Label::kNear);
3154
3155 // Set result to 0 in the special case.
3156 __ xorps(double_result, double_result);
3157 __ jmp(&done);
3158
3159 __ bind(&continue_rsqrt);
3160 // sqrtsd returns -0 when input is -0. ECMA spec requires +0.
3161 __ xorps(double_exponent, double_exponent);
3162 __ addsd(double_exponent, double_base); // Convert -0 to +0.
3163 __ sqrtsd(double_exponent, double_exponent);
3164 __ divsd(double_result, double_exponent);
3165 __ jmp(&done);
3166 }
3167
3168 // Using FPU instructions to calculate power.
3169 Label fast_power_failed;
3170 __ bind(&fast_power);
3171 __ fnclex(); // Clear flags to catch exceptions later.
3172 // Transfer (B)ase and (E)xponent onto the FPU register stack.
3173 __ sub(esp, Immediate(kDoubleSize));
3174 __ movdbl(Operand(esp, 0), double_exponent);
3175 __ fld_d(Operand(esp, 0)); // E
3176 __ movdbl(Operand(esp, 0), double_base);
3177 __ fld_d(Operand(esp, 0)); // B, E
3178
3179 // Exponent is in st(1) and base is in st(0)
3180 // B ^ E = (2^(E * log2(B)) - 1) + 1 = (2^X - 1) + 1 for X = E * log2(B)
3181 // FYL2X calculates st(1) * log2(st(0))
3182 __ fyl2x(); // X
3183 __ fld(0); // X, X
3184 __ frndint(); // rnd(X), X
3185 __ fsub(1); // rnd(X), X-rnd(X)
3186 __ fxch(1); // X - rnd(X), rnd(X)
3187 // F2XM1 calculates 2^st(0) - 1 for -1 < st(0) < 1
3188 __ f2xm1(); // 2^(X-rnd(X)) - 1, rnd(X)
3189 __ fld1(); // 1, 2^(X-rnd(X)) - 1, rnd(X)
3190 __ faddp(1); // 1, 2^(X-rnd(X)), rnd(X)
3191 // FSCALE calculates st(0) * 2^st(1)
3192 __ fscale(); // 2^X, rnd(X)
3193 __ fstp(1);
3194 // Bail out to runtime in case of exceptions in the status word.
3195 __ fnstsw_ax();
3196 __ test_b(eax, 0x5F); // We check for all but precision exception.
3197 __ j(not_zero, &fast_power_failed, Label::kNear);
3198 __ fstp_d(Operand(esp, 0));
3199 __ movdbl(double_result, Operand(esp, 0));
3200 __ add(esp, Immediate(kDoubleSize));
3201 __ jmp(&done);
3202
3203 __ bind(&fast_power_failed);
3204 __ fninit();
3205 __ add(esp, Immediate(kDoubleSize));
3206 __ jmp(&call_runtime);
3207 }
3208
3209 // Calculate power with integer exponent.
3210 __ bind(&int_exponent);
3211 const XMMRegister double_scratch2 = double_exponent;
3212 __ mov(scratch, exponent); // Back up exponent.
3213 __ movsd(double_scratch, double_base); // Back up base.
3214 __ movsd(double_scratch2, double_result); // Load double_exponent with 1.
kasperl@chromium.orga5551262010-12-07 12:49:48 +00003215
3216 // Get absolute value of exponent.
verwaest@chromium.org33e09c82012-10-10 17:07:22 +00003217 Label no_neg, while_true, while_false;
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00003218 __ test(scratch, scratch);
3219 __ j(positive, &no_neg, Label::kNear);
3220 __ neg(scratch);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00003221 __ bind(&no_neg);
3222
ulan@chromium.org56c14af2012-09-20 12:51:09 +00003223 __ j(zero, &while_false, Label::kNear);
3224 __ shr(scratch, 1);
3225 // Above condition means CF==0 && ZF==0. This means that the
3226 // bit that has been shifted out is 0 and the result is not 0.
3227 __ j(above, &while_true, Label::kNear);
3228 __ movsd(double_result, double_scratch);
3229 __ j(zero, &while_false, Label::kNear);
3230
kasperl@chromium.orga5551262010-12-07 12:49:48 +00003231 __ bind(&while_true);
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00003232 __ shr(scratch, 1);
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00003233 __ mulsd(double_scratch, double_scratch);
ulan@chromium.org56c14af2012-09-20 12:51:09 +00003234 __ j(above, &while_true, Label::kNear);
3235 __ mulsd(double_result, double_scratch);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00003236 __ j(not_zero, &while_true);
3237
ulan@chromium.org56c14af2012-09-20 12:51:09 +00003238 __ bind(&while_false);
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00003239 // scratch has the original value of the exponent - if the exponent is
3240 // negative, return 1/result.
3241 __ test(exponent, exponent);
3242 __ j(positive, &done);
3243 __ divsd(double_scratch2, double_result);
3244 __ movsd(double_result, double_scratch2);
3245 // Test whether result is zero. Bail out to check for subnormal result.
3246 // Due to subnormals, x^-y == (1/x)^y does not hold in all cases.
3247 __ xorps(double_scratch2, double_scratch2);
3248 __ ucomisd(double_scratch2, double_result); // Result cannot be NaN.
3249 // double_exponent aliased as double_scratch2 has already been overwritten
3250 // and may not have contained the exponent value in the first place when the
3251 // exponent is a smi. We reset it with exponent value before bailing out.
3252 __ j(not_equal, &done);
3253 __ cvtsi2sd(double_exponent, exponent);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00003254
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00003255 // Returning or bailing out.
3256 Counters* counters = masm->isolate()->counters();
3257 if (exponent_type_ == ON_STACK) {
3258 // The arguments are still on the stack.
3259 __ bind(&call_runtime);
3260 __ TailCallRuntime(Runtime::kMath_pow_cfunction, 2, 1);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00003261
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00003262 // The stub is called from non-optimized code, which expects the result
3263 // as heap number in exponent.
3264 __ bind(&done);
3265 __ AllocateHeapNumber(eax, scratch, base, &call_runtime);
3266 __ movdbl(FieldOperand(eax, HeapNumber::kValueOffset), double_result);
3267 __ IncrementCounter(counters->math_pow(), 1);
3268 __ ret(2 * kPointerSize);
3269 } else {
3270 __ bind(&call_runtime);
3271 {
3272 AllowExternalCallThatCantCauseGC scope(masm);
3273 __ PrepareCallCFunction(4, scratch);
3274 __ movdbl(Operand(esp, 0 * kDoubleSize), double_base);
3275 __ movdbl(Operand(esp, 1 * kDoubleSize), double_exponent);
3276 __ CallCFunction(
3277 ExternalReference::power_double_double_function(masm->isolate()), 4);
3278 }
3279 // Return value is in st(0) on ia32.
3280 // Store it into the (fixed) result register.
3281 __ sub(esp, Immediate(kDoubleSize));
3282 __ fstp_d(Operand(esp, 0));
3283 __ movdbl(double_result, Operand(esp, 0));
3284 __ add(esp, Immediate(kDoubleSize));
kasperl@chromium.orga5551262010-12-07 12:49:48 +00003285
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00003286 __ bind(&done);
3287 __ IncrementCounter(counters->math_pow(), 1);
3288 __ ret(0);
3289 }
kasperl@chromium.orga5551262010-12-07 12:49:48 +00003290}
3291
3292
ricow@chromium.org65fae842010-08-25 15:26:24 +00003293void ArgumentsAccessStub::GenerateReadElement(MacroAssembler* masm) {
3294 // The key is in edx and the parameter count is in eax.
3295
3296 // The displacement is used for skipping the frame pointer on the
3297 // stack. It is the offset of the last parameter (if any) relative
3298 // to the frame pointer.
3299 static const int kDisplacement = 1 * kPointerSize;
3300
3301 // Check that the key is a smi.
3302 Label slow;
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00003303 __ JumpIfNotSmi(edx, &slow, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003304
3305 // Check if the calling frame is an arguments adaptor frame.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00003306 Label adaptor;
ricow@chromium.org65fae842010-08-25 15:26:24 +00003307 __ mov(ebx, Operand(ebp, StandardFrameConstants::kCallerFPOffset));
3308 __ mov(ecx, Operand(ebx, StandardFrameConstants::kContextOffset));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003309 __ cmp(ecx, Immediate(Smi::FromInt(StackFrame::ARGUMENTS_ADAPTOR)));
karlklose@chromium.org83a47282011-05-11 11:54:09 +00003310 __ j(equal, &adaptor, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003311
3312 // Check index against formal parameters count limit passed in
3313 // through register eax. Use unsigned comparison to get negative
3314 // check for free.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003315 __ cmp(edx, eax);
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00003316 __ j(above_equal, &slow, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003317
3318 // Read the argument from the stack and return it.
3319 STATIC_ASSERT(kSmiTagSize == 1);
3320 STATIC_ASSERT(kSmiTag == 0); // Shifting code depends on these.
3321 __ lea(ebx, Operand(ebp, eax, times_2, 0));
3322 __ neg(edx);
3323 __ mov(eax, Operand(ebx, edx, times_2, kDisplacement));
3324 __ ret(0);
3325
3326 // Arguments adaptor case: Check index against actual arguments
3327 // limit found in the arguments adaptor frame. Use unsigned
3328 // comparison to get negative check for free.
3329 __ bind(&adaptor);
3330 __ mov(ecx, Operand(ebx, ArgumentsAdaptorFrameConstants::kLengthOffset));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003331 __ cmp(edx, ecx);
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00003332 __ j(above_equal, &slow, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003333
3334 // Read the argument from the stack and return it.
3335 STATIC_ASSERT(kSmiTagSize == 1);
3336 STATIC_ASSERT(kSmiTag == 0); // Shifting code depends on these.
3337 __ lea(ebx, Operand(ebx, ecx, times_2, 0));
3338 __ neg(edx);
3339 __ mov(eax, Operand(ebx, edx, times_2, kDisplacement));
3340 __ ret(0);
3341
3342 // Slow-case: Handle non-smi or out-of-bounds access to arguments
3343 // by calling the runtime system.
3344 __ bind(&slow);
3345 __ pop(ebx); // Return address.
3346 __ push(edx);
3347 __ push(ebx);
3348 __ TailCallRuntime(Runtime::kGetArgumentsProperty, 1, 1);
3349}
3350
3351
whesse@chromium.org7b260152011-06-20 15:33:18 +00003352void ArgumentsAccessStub::GenerateNewNonStrictSlow(MacroAssembler* masm) {
ricow@chromium.org65fae842010-08-25 15:26:24 +00003353 // esp[0] : return address
3354 // esp[4] : number of parameters
3355 // esp[8] : receiver displacement
whesse@chromium.org7b260152011-06-20 15:33:18 +00003356 // esp[12] : function
ricow@chromium.org65fae842010-08-25 15:26:24 +00003357
whesse@chromium.org7b260152011-06-20 15:33:18 +00003358 // Check if the calling frame is an arguments adaptor frame.
3359 Label runtime;
3360 __ mov(edx, Operand(ebp, StandardFrameConstants::kCallerFPOffset));
3361 __ mov(ecx, Operand(edx, StandardFrameConstants::kContextOffset));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003362 __ cmp(ecx, Immediate(Smi::FromInt(StackFrame::ARGUMENTS_ADAPTOR)));
whesse@chromium.org7b260152011-06-20 15:33:18 +00003363 __ j(not_equal, &runtime, Label::kNear);
3364
3365 // Patch the arguments.length and the parameters pointer.
3366 __ mov(ecx, Operand(edx, ArgumentsAdaptorFrameConstants::kLengthOffset));
3367 __ mov(Operand(esp, 1 * kPointerSize), ecx);
3368 __ lea(edx, Operand(edx, ecx, times_2,
3369 StandardFrameConstants::kCallerSPOffset));
3370 __ mov(Operand(esp, 2 * kPointerSize), edx);
3371
3372 __ bind(&runtime);
3373 __ TailCallRuntime(Runtime::kNewArgumentsFast, 3, 1);
3374}
3375
3376
3377void ArgumentsAccessStub::GenerateNewNonStrictFast(MacroAssembler* masm) {
3378 // esp[0] : return address
3379 // esp[4] : number of parameters (tagged)
3380 // esp[8] : receiver displacement
3381 // esp[12] : function
3382
3383 // ebx = parameter count (tagged)
3384 __ mov(ebx, Operand(esp, 1 * kPointerSize));
3385
3386 // Check if the calling frame is an arguments adaptor frame.
3387 // TODO(rossberg): Factor out some of the bits that are shared with the other
3388 // Generate* functions.
3389 Label runtime;
3390 Label adaptor_frame, try_allocate;
3391 __ mov(edx, Operand(ebp, StandardFrameConstants::kCallerFPOffset));
3392 __ mov(ecx, Operand(edx, StandardFrameConstants::kContextOffset));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003393 __ cmp(ecx, Immediate(Smi::FromInt(StackFrame::ARGUMENTS_ADAPTOR)));
whesse@chromium.org7b260152011-06-20 15:33:18 +00003394 __ j(equal, &adaptor_frame, Label::kNear);
3395
3396 // No adaptor, parameter count = argument count.
3397 __ mov(ecx, ebx);
3398 __ jmp(&try_allocate, Label::kNear);
3399
3400 // We have an adaptor frame. Patch the parameters pointer.
3401 __ bind(&adaptor_frame);
3402 __ mov(ecx, Operand(edx, ArgumentsAdaptorFrameConstants::kLengthOffset));
3403 __ lea(edx, Operand(edx, ecx, times_2,
3404 StandardFrameConstants::kCallerSPOffset));
3405 __ mov(Operand(esp, 2 * kPointerSize), edx);
3406
3407 // ebx = parameter count (tagged)
3408 // ecx = argument count (tagged)
3409 // esp[4] = parameter count (tagged)
3410 // esp[8] = address of receiver argument
3411 // Compute the mapped parameter count = min(ebx, ecx) in ebx.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003412 __ cmp(ebx, ecx);
whesse@chromium.org7b260152011-06-20 15:33:18 +00003413 __ j(less_equal, &try_allocate, Label::kNear);
3414 __ mov(ebx, ecx);
3415
3416 __ bind(&try_allocate);
3417
3418 // Save mapped parameter count.
3419 __ push(ebx);
3420
3421 // Compute the sizes of backing store, parameter map, and arguments object.
3422 // 1. Parameter map, has 2 extra words containing context and backing store.
3423 const int kParameterMapHeaderSize =
3424 FixedArray::kHeaderSize + 2 * kPointerSize;
3425 Label no_parameter_map;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003426 __ test(ebx, ebx);
whesse@chromium.org7b260152011-06-20 15:33:18 +00003427 __ j(zero, &no_parameter_map, Label::kNear);
3428 __ lea(ebx, Operand(ebx, times_2, kParameterMapHeaderSize));
3429 __ bind(&no_parameter_map);
3430
3431 // 2. Backing store.
3432 __ lea(ebx, Operand(ebx, ecx, times_2, FixedArray::kHeaderSize));
3433
3434 // 3. Arguments object.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003435 __ add(ebx, Immediate(Heap::kArgumentsObjectSize));
whesse@chromium.org7b260152011-06-20 15:33:18 +00003436
3437 // Do the allocation of all three objects in one go.
3438 __ AllocateInNewSpace(ebx, eax, edx, edi, &runtime, TAG_OBJECT);
3439
3440 // eax = address of new object(s) (tagged)
3441 // ecx = argument count (tagged)
3442 // esp[0] = mapped parameter count (tagged)
3443 // esp[8] = parameter count (tagged)
3444 // esp[12] = address of receiver argument
yangguo@chromium.org46839fb2012-08-28 09:06:19 +00003445 // Get the arguments boilerplate from the current native context into edi.
whesse@chromium.org7b260152011-06-20 15:33:18 +00003446 Label has_mapped_parameters, copy;
yangguo@chromium.org46839fb2012-08-28 09:06:19 +00003447 __ mov(edi, Operand(esi, Context::SlotOffset(Context::GLOBAL_OBJECT_INDEX)));
3448 __ mov(edi, FieldOperand(edi, GlobalObject::kNativeContextOffset));
whesse@chromium.org7b260152011-06-20 15:33:18 +00003449 __ mov(ebx, Operand(esp, 0 * kPointerSize));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003450 __ test(ebx, ebx);
whesse@chromium.org7b260152011-06-20 15:33:18 +00003451 __ j(not_zero, &has_mapped_parameters, Label::kNear);
3452 __ mov(edi, Operand(edi,
3453 Context::SlotOffset(Context::ARGUMENTS_BOILERPLATE_INDEX)));
3454 __ jmp(&copy, Label::kNear);
3455
3456 __ bind(&has_mapped_parameters);
3457 __ mov(edi, Operand(edi,
3458 Context::SlotOffset(Context::ALIASED_ARGUMENTS_BOILERPLATE_INDEX)));
3459 __ bind(&copy);
3460
3461 // eax = address of new object (tagged)
3462 // ebx = mapped parameter count (tagged)
3463 // ecx = argument count (tagged)
3464 // edi = address of boilerplate object (tagged)
3465 // esp[0] = mapped parameter count (tagged)
3466 // esp[8] = parameter count (tagged)
3467 // esp[12] = address of receiver argument
3468 // Copy the JS object part.
3469 for (int i = 0; i < JSObject::kHeaderSize; i += kPointerSize) {
3470 __ mov(edx, FieldOperand(edi, i));
3471 __ mov(FieldOperand(eax, i), edx);
3472 }
3473
erik.corry@gmail.comf2038fb2012-01-16 11:42:08 +00003474 // Set up the callee in-object property.
whesse@chromium.org7b260152011-06-20 15:33:18 +00003475 STATIC_ASSERT(Heap::kArgumentsCalleeIndex == 1);
3476 __ mov(edx, Operand(esp, 4 * kPointerSize));
3477 __ mov(FieldOperand(eax, JSObject::kHeaderSize +
3478 Heap::kArgumentsCalleeIndex * kPointerSize),
3479 edx);
3480
3481 // Use the length (smi tagged) and set that as an in-object property too.
3482 STATIC_ASSERT(Heap::kArgumentsLengthIndex == 0);
3483 __ mov(FieldOperand(eax, JSObject::kHeaderSize +
3484 Heap::kArgumentsLengthIndex * kPointerSize),
3485 ecx);
3486
erik.corry@gmail.comf2038fb2012-01-16 11:42:08 +00003487 // Set up the elements pointer in the allocated arguments object.
whesse@chromium.org7b260152011-06-20 15:33:18 +00003488 // If we allocated a parameter map, edi will point there, otherwise to the
3489 // backing store.
3490 __ lea(edi, Operand(eax, Heap::kArgumentsObjectSize));
3491 __ mov(FieldOperand(eax, JSObject::kElementsOffset), edi);
3492
3493 // eax = address of new object (tagged)
3494 // ebx = mapped parameter count (tagged)
3495 // ecx = argument count (tagged)
3496 // edi = address of parameter map or backing store (tagged)
3497 // esp[0] = mapped parameter count (tagged)
3498 // esp[8] = parameter count (tagged)
3499 // esp[12] = address of receiver argument
3500 // Free a register.
3501 __ push(eax);
3502
3503 // Initialize parameter map. If there are no mapped arguments, we're done.
3504 Label skip_parameter_map;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003505 __ test(ebx, ebx);
whesse@chromium.org7b260152011-06-20 15:33:18 +00003506 __ j(zero, &skip_parameter_map);
3507
3508 __ mov(FieldOperand(edi, FixedArray::kMapOffset),
3509 Immediate(FACTORY->non_strict_arguments_elements_map()));
3510 __ lea(eax, Operand(ebx, reinterpret_cast<intptr_t>(Smi::FromInt(2))));
3511 __ mov(FieldOperand(edi, FixedArray::kLengthOffset), eax);
3512 __ mov(FieldOperand(edi, FixedArray::kHeaderSize + 0 * kPointerSize), esi);
3513 __ lea(eax, Operand(edi, ebx, times_2, kParameterMapHeaderSize));
3514 __ mov(FieldOperand(edi, FixedArray::kHeaderSize + 1 * kPointerSize), eax);
3515
3516 // Copy the parameter slots and the holes in the arguments.
3517 // We need to fill in mapped_parameter_count slots. They index the context,
3518 // where parameters are stored in reverse order, at
3519 // MIN_CONTEXT_SLOTS .. MIN_CONTEXT_SLOTS+parameter_count-1
3520 // The mapped parameter thus need to get indices
3521 // MIN_CONTEXT_SLOTS+parameter_count-1 ..
3522 // MIN_CONTEXT_SLOTS+parameter_count-mapped_parameter_count
3523 // We loop from right to left.
3524 Label parameters_loop, parameters_test;
3525 __ push(ecx);
3526 __ mov(eax, Operand(esp, 2 * kPointerSize));
3527 __ mov(ebx, Immediate(Smi::FromInt(Context::MIN_CONTEXT_SLOTS)));
3528 __ add(ebx, Operand(esp, 4 * kPointerSize));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003529 __ sub(ebx, eax);
whesse@chromium.org7b260152011-06-20 15:33:18 +00003530 __ mov(ecx, FACTORY->the_hole_value());
3531 __ mov(edx, edi);
3532 __ lea(edi, Operand(edi, eax, times_2, kParameterMapHeaderSize));
3533 // eax = loop variable (tagged)
3534 // ebx = mapping index (tagged)
3535 // ecx = the hole value
3536 // edx = address of parameter map (tagged)
3537 // edi = address of backing store (tagged)
3538 // esp[0] = argument count (tagged)
3539 // esp[4] = address of new object (tagged)
3540 // esp[8] = mapped parameter count (tagged)
3541 // esp[16] = parameter count (tagged)
3542 // esp[20] = address of receiver argument
3543 __ jmp(&parameters_test, Label::kNear);
3544
3545 __ bind(&parameters_loop);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003546 __ sub(eax, Immediate(Smi::FromInt(1)));
whesse@chromium.org7b260152011-06-20 15:33:18 +00003547 __ mov(FieldOperand(edx, eax, times_2, kParameterMapHeaderSize), ebx);
3548 __ mov(FieldOperand(edi, eax, times_2, FixedArray::kHeaderSize), ecx);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003549 __ add(ebx, Immediate(Smi::FromInt(1)));
whesse@chromium.org7b260152011-06-20 15:33:18 +00003550 __ bind(&parameters_test);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003551 __ test(eax, eax);
whesse@chromium.org7b260152011-06-20 15:33:18 +00003552 __ j(not_zero, &parameters_loop, Label::kNear);
3553 __ pop(ecx);
3554
3555 __ bind(&skip_parameter_map);
3556
3557 // ecx = argument count (tagged)
3558 // edi = address of backing store (tagged)
3559 // esp[0] = address of new object (tagged)
3560 // esp[4] = mapped parameter count (tagged)
3561 // esp[12] = parameter count (tagged)
3562 // esp[16] = address of receiver argument
3563 // Copy arguments header and remaining slots (if there are any).
3564 __ mov(FieldOperand(edi, FixedArray::kMapOffset),
3565 Immediate(FACTORY->fixed_array_map()));
3566 __ mov(FieldOperand(edi, FixedArray::kLengthOffset), ecx);
3567
3568 Label arguments_loop, arguments_test;
3569 __ mov(ebx, Operand(esp, 1 * kPointerSize));
3570 __ mov(edx, Operand(esp, 4 * kPointerSize));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003571 __ sub(edx, ebx); // Is there a smarter way to do negative scaling?
3572 __ sub(edx, ebx);
whesse@chromium.org7b260152011-06-20 15:33:18 +00003573 __ jmp(&arguments_test, Label::kNear);
3574
3575 __ bind(&arguments_loop);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003576 __ sub(edx, Immediate(kPointerSize));
whesse@chromium.org7b260152011-06-20 15:33:18 +00003577 __ mov(eax, Operand(edx, 0));
3578 __ mov(FieldOperand(edi, ebx, times_2, FixedArray::kHeaderSize), eax);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003579 __ add(ebx, Immediate(Smi::FromInt(1)));
whesse@chromium.org7b260152011-06-20 15:33:18 +00003580
3581 __ bind(&arguments_test);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003582 __ cmp(ebx, ecx);
whesse@chromium.org7b260152011-06-20 15:33:18 +00003583 __ j(less, &arguments_loop, Label::kNear);
3584
3585 // Restore.
3586 __ pop(eax); // Address of arguments object.
3587 __ pop(ebx); // Parameter count.
3588
3589 // Return and remove the on-stack parameters.
3590 __ ret(3 * kPointerSize);
3591
3592 // Do the runtime call to allocate the arguments object.
3593 __ bind(&runtime);
3594 __ pop(eax); // Remove saved parameter count.
3595 __ mov(Operand(esp, 1 * kPointerSize), ecx); // Patch argument count.
danno@chromium.org72204d52012-10-31 10:02:10 +00003596 __ TailCallRuntime(Runtime::kNewArgumentsFast, 3, 1);
whesse@chromium.org7b260152011-06-20 15:33:18 +00003597}
3598
3599
3600void ArgumentsAccessStub::GenerateNewStrict(MacroAssembler* masm) {
3601 // esp[0] : return address
3602 // esp[4] : number of parameters
3603 // esp[8] : receiver displacement
3604 // esp[12] : function
ricow@chromium.org65fae842010-08-25 15:26:24 +00003605
3606 // Check if the calling frame is an arguments adaptor frame.
3607 Label adaptor_frame, try_allocate, runtime;
3608 __ mov(edx, Operand(ebp, StandardFrameConstants::kCallerFPOffset));
3609 __ mov(ecx, Operand(edx, StandardFrameConstants::kContextOffset));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003610 __ cmp(ecx, Immediate(Smi::FromInt(StackFrame::ARGUMENTS_ADAPTOR)));
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00003611 __ j(equal, &adaptor_frame, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003612
3613 // Get the length from the frame.
3614 __ mov(ecx, Operand(esp, 1 * kPointerSize));
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00003615 __ jmp(&try_allocate, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003616
3617 // Patch the arguments.length and the parameters pointer.
3618 __ bind(&adaptor_frame);
3619 __ mov(ecx, Operand(edx, ArgumentsAdaptorFrameConstants::kLengthOffset));
3620 __ mov(Operand(esp, 1 * kPointerSize), ecx);
whesse@chromium.org7b260152011-06-20 15:33:18 +00003621 __ lea(edx, Operand(edx, ecx, times_2,
3622 StandardFrameConstants::kCallerSPOffset));
ricow@chromium.org65fae842010-08-25 15:26:24 +00003623 __ mov(Operand(esp, 2 * kPointerSize), edx);
3624
3625 // Try the new space allocation. Start out with computing the size of
3626 // the arguments object and the elements array.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00003627 Label add_arguments_object;
ricow@chromium.org65fae842010-08-25 15:26:24 +00003628 __ bind(&try_allocate);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003629 __ test(ecx, ecx);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00003630 __ j(zero, &add_arguments_object, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003631 __ lea(ecx, Operand(ecx, times_2, FixedArray::kHeaderSize));
3632 __ bind(&add_arguments_object);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003633 __ add(ecx, Immediate(Heap::kArgumentsObjectSizeStrict));
ricow@chromium.org65fae842010-08-25 15:26:24 +00003634
3635 // Do the allocation of both objects in one go.
3636 __ AllocateInNewSpace(ecx, eax, edx, ebx, &runtime, TAG_OBJECT);
3637
yangguo@chromium.org46839fb2012-08-28 09:06:19 +00003638 // Get the arguments boilerplate from the current native context.
3639 __ mov(edi, Operand(esi, Context::SlotOffset(Context::GLOBAL_OBJECT_INDEX)));
3640 __ mov(edi, FieldOperand(edi, GlobalObject::kNativeContextOffset));
whesse@chromium.org7b260152011-06-20 15:33:18 +00003641 const int offset =
3642 Context::SlotOffset(Context::STRICT_MODE_ARGUMENTS_BOILERPLATE_INDEX);
3643 __ mov(edi, Operand(edi, offset));
ricow@chromium.org65fae842010-08-25 15:26:24 +00003644
3645 // Copy the JS object part.
3646 for (int i = 0; i < JSObject::kHeaderSize; i += kPointerSize) {
3647 __ mov(ebx, FieldOperand(edi, i));
3648 __ mov(FieldOperand(eax, i), ebx);
3649 }
3650
ricow@chromium.org65fae842010-08-25 15:26:24 +00003651 // Get the length (smi tagged) and set that as an in-object property too.
sgjesse@chromium.orgea88ce92011-03-23 11:19:56 +00003652 STATIC_ASSERT(Heap::kArgumentsLengthIndex == 0);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003653 __ mov(ecx, Operand(esp, 1 * kPointerSize));
sgjesse@chromium.orgea88ce92011-03-23 11:19:56 +00003654 __ mov(FieldOperand(eax, JSObject::kHeaderSize +
whesse@chromium.org7b260152011-06-20 15:33:18 +00003655 Heap::kArgumentsLengthIndex * kPointerSize),
sgjesse@chromium.orgea88ce92011-03-23 11:19:56 +00003656 ecx);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003657
3658 // If there are no actual arguments, we're done.
3659 Label done;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003660 __ test(ecx, ecx);
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00003661 __ j(zero, &done, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003662
3663 // Get the parameters pointer from the stack.
3664 __ mov(edx, Operand(esp, 2 * kPointerSize));
3665
erik.corry@gmail.comf2038fb2012-01-16 11:42:08 +00003666 // Set up the elements pointer in the allocated arguments object and
ricow@chromium.org65fae842010-08-25 15:26:24 +00003667 // initialize the header in the elements fixed array.
whesse@chromium.org7b260152011-06-20 15:33:18 +00003668 __ lea(edi, Operand(eax, Heap::kArgumentsObjectSizeStrict));
ricow@chromium.org65fae842010-08-25 15:26:24 +00003669 __ mov(FieldOperand(eax, JSObject::kElementsOffset), edi);
3670 __ mov(FieldOperand(edi, FixedArray::kMapOffset),
whesse@chromium.org7b260152011-06-20 15:33:18 +00003671 Immediate(FACTORY->fixed_array_map()));
sgjesse@chromium.orgea88ce92011-03-23 11:19:56 +00003672
ricow@chromium.org65fae842010-08-25 15:26:24 +00003673 __ mov(FieldOperand(edi, FixedArray::kLengthOffset), ecx);
3674 // Untag the length for the loop below.
3675 __ SmiUntag(ecx);
3676
3677 // Copy the fixed array slots.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00003678 Label loop;
ricow@chromium.org65fae842010-08-25 15:26:24 +00003679 __ bind(&loop);
3680 __ mov(ebx, Operand(edx, -1 * kPointerSize)); // Skip receiver.
3681 __ mov(FieldOperand(edi, FixedArray::kHeaderSize), ebx);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003682 __ add(edi, Immediate(kPointerSize));
3683 __ sub(edx, Immediate(kPointerSize));
ricow@chromium.org65fae842010-08-25 15:26:24 +00003684 __ dec(ecx);
3685 __ j(not_zero, &loop);
3686
3687 // Return and remove the on-stack parameters.
3688 __ bind(&done);
3689 __ ret(3 * kPointerSize);
3690
3691 // Do the runtime call to allocate the arguments object.
3692 __ bind(&runtime);
whesse@chromium.org7b260152011-06-20 15:33:18 +00003693 __ TailCallRuntime(Runtime::kNewStrictArgumentsFast, 3, 1);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003694}
3695
3696
3697void RegExpExecStub::Generate(MacroAssembler* masm) {
3698 // Just jump directly to runtime if native RegExp is not selected at compile
3699 // time or if regexp entry in generated code is turned off runtime switch or
3700 // at compilation.
3701#ifdef V8_INTERPRETED_REGEXP
3702 __ TailCallRuntime(Runtime::kRegExpExec, 4, 1);
3703#else // V8_INTERPRETED_REGEXP
ricow@chromium.org65fae842010-08-25 15:26:24 +00003704
3705 // Stack frame on entry.
3706 // esp[0]: return address
3707 // esp[4]: last_match_info (expected JSArray)
3708 // esp[8]: previous index
3709 // esp[12]: subject string
3710 // esp[16]: JSRegExp object
3711
3712 static const int kLastMatchInfoOffset = 1 * kPointerSize;
3713 static const int kPreviousIndexOffset = 2 * kPointerSize;
3714 static const int kSubjectOffset = 3 * kPointerSize;
3715 static const int kJSRegExpOffset = 4 * kPointerSize;
3716
3717 Label runtime, invoke_regexp;
3718
3719 // Ensure that a RegExp stack is allocated.
3720 ExternalReference address_of_regexp_stack_memory_address =
sgjesse@chromium.orgea88ce92011-03-23 11:19:56 +00003721 ExternalReference::address_of_regexp_stack_memory_address(
3722 masm->isolate());
ricow@chromium.org65fae842010-08-25 15:26:24 +00003723 ExternalReference address_of_regexp_stack_memory_size =
sgjesse@chromium.orgea88ce92011-03-23 11:19:56 +00003724 ExternalReference::address_of_regexp_stack_memory_size(masm->isolate());
ricow@chromium.org65fae842010-08-25 15:26:24 +00003725 __ mov(ebx, Operand::StaticVariable(address_of_regexp_stack_memory_size));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003726 __ test(ebx, ebx);
vegorov@chromium.org7304bca2011-05-16 12:14:13 +00003727 __ j(zero, &runtime);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003728
3729 // Check that the first argument is a JSRegExp object.
3730 __ mov(eax, Operand(esp, kJSRegExpOffset));
3731 STATIC_ASSERT(kSmiTag == 0);
whesse@chromium.org7b260152011-06-20 15:33:18 +00003732 __ JumpIfSmi(eax, &runtime);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003733 __ CmpObjectType(eax, JS_REGEXP_TYPE, ecx);
3734 __ j(not_equal, &runtime);
3735 // Check that the RegExp has been compiled (data contains a fixed array).
3736 __ mov(ecx, FieldOperand(eax, JSRegExp::kDataOffset));
3737 if (FLAG_debug_code) {
3738 __ test(ecx, Immediate(kSmiTagMask));
3739 __ Check(not_zero, "Unexpected type for RegExp data, FixedArray expected");
3740 __ CmpObjectType(ecx, FIXED_ARRAY_TYPE, ebx);
3741 __ Check(equal, "Unexpected type for RegExp data, FixedArray expected");
3742 }
3743
3744 // ecx: RegExp data (FixedArray)
3745 // Check the type of the RegExp. Only continue if type is JSRegExp::IRREGEXP.
3746 __ mov(ebx, FieldOperand(ecx, JSRegExp::kDataTagOffset));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003747 __ cmp(ebx, Immediate(Smi::FromInt(JSRegExp::IRREGEXP)));
ricow@chromium.org65fae842010-08-25 15:26:24 +00003748 __ j(not_equal, &runtime);
3749
3750 // ecx: RegExp data (FixedArray)
3751 // Check that the number of captures fit in the static offsets vector buffer.
3752 __ mov(edx, FieldOperand(ecx, JSRegExp::kIrregexpCaptureCountOffset));
3753 // Calculate number of capture registers (number_of_captures + 1) * 2. This
3754 // uses the asumption that smis are 2 * their untagged value.
3755 STATIC_ASSERT(kSmiTag == 0);
3756 STATIC_ASSERT(kSmiTagSize + kSmiShiftSize == 1);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003757 __ add(edx, Immediate(2)); // edx was a smi.
ricow@chromium.org65fae842010-08-25 15:26:24 +00003758 // Check that the static offsets vector buffer is large enough.
yangguo@chromium.org355cfd12012-08-29 15:32:24 +00003759 __ cmp(edx, Isolate::kJSRegexpStaticOffsetsVectorSize);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003760 __ j(above, &runtime);
3761
3762 // ecx: RegExp data (FixedArray)
3763 // edx: Number of capture registers
3764 // Check that the second argument is a string.
3765 __ mov(eax, Operand(esp, kSubjectOffset));
whesse@chromium.org7b260152011-06-20 15:33:18 +00003766 __ JumpIfSmi(eax, &runtime);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003767 Condition is_string = masm->IsObjectStringType(eax, ebx, ebx);
3768 __ j(NegateCondition(is_string), &runtime);
3769 // Get the length of the string to ebx.
3770 __ mov(ebx, FieldOperand(eax, String::kLengthOffset));
3771
3772 // ebx: Length of subject string as a smi
3773 // ecx: RegExp data (FixedArray)
3774 // edx: Number of capture registers
3775 // Check that the third argument is a positive smi less than the subject
3776 // string length. A negative value will be greater (unsigned comparison).
3777 __ mov(eax, Operand(esp, kPreviousIndexOffset));
whesse@chromium.org7b260152011-06-20 15:33:18 +00003778 __ JumpIfNotSmi(eax, &runtime);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003779 __ cmp(eax, ebx);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003780 __ j(above_equal, &runtime);
3781
3782 // ecx: RegExp data (FixedArray)
3783 // edx: Number of capture registers
3784 // Check that the fourth object is a JSArray object.
3785 __ mov(eax, Operand(esp, kLastMatchInfoOffset));
whesse@chromium.org7b260152011-06-20 15:33:18 +00003786 __ JumpIfSmi(eax, &runtime);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003787 __ CmpObjectType(eax, JS_ARRAY_TYPE, ebx);
3788 __ j(not_equal, &runtime);
3789 // Check that the JSArray is in fast case.
3790 __ mov(ebx, FieldOperand(eax, JSArray::kElementsOffset));
3791 __ mov(eax, FieldOperand(ebx, HeapObject::kMapOffset));
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00003792 Factory* factory = masm->isolate()->factory();
3793 __ cmp(eax, factory->fixed_array_map());
ricow@chromium.org65fae842010-08-25 15:26:24 +00003794 __ j(not_equal, &runtime);
3795 // Check that the last match info has space for the capture registers and the
3796 // additional information.
3797 __ mov(eax, FieldOperand(ebx, FixedArray::kLengthOffset));
3798 __ SmiUntag(eax);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003799 __ add(edx, Immediate(RegExpImpl::kLastMatchOverhead));
3800 __ cmp(edx, eax);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003801 __ j(greater, &runtime);
3802
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00003803 // Reset offset for possibly sliced string.
3804 __ Set(edi, Immediate(0));
ricow@chromium.org65fae842010-08-25 15:26:24 +00003805 // ecx: RegExp data (FixedArray)
3806 // Check the representation and encoding of the subject string.
3807 Label seq_ascii_string, seq_two_byte_string, check_code;
3808 __ mov(eax, Operand(esp, kSubjectOffset));
3809 __ mov(ebx, FieldOperand(eax, HeapObject::kMapOffset));
3810 __ movzx_b(ebx, FieldOperand(ebx, Map::kInstanceTypeOffset));
3811 // First check for flat two byte string.
mstarzinger@chromium.org1b3afd12011-11-29 14:28:56 +00003812 __ and_(ebx, kIsNotStringMask |
3813 kStringRepresentationMask |
3814 kStringEncodingMask |
3815 kShortExternalStringMask);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003816 STATIC_ASSERT((kStringTag | kSeqStringTag | kTwoByteStringTag) == 0);
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00003817 __ j(zero, &seq_two_byte_string, Label::kNear);
ulan@chromium.org2efb9002012-01-19 15:36:35 +00003818 // Any other flat string must be a flat ASCII string. None of the following
mstarzinger@chromium.org1b3afd12011-11-29 14:28:56 +00003819 // string type tests will succeed if subject is not a string or a short
3820 // external string.
3821 __ and_(ebx, Immediate(kIsNotStringMask |
3822 kStringRepresentationMask |
3823 kShortExternalStringMask));
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00003824 __ j(zero, &seq_ascii_string, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003825
mstarzinger@chromium.org1b3afd12011-11-29 14:28:56 +00003826 // ebx: whether subject is a string and if yes, its string representation
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00003827 // Check for flat cons string or sliced string.
ricow@chromium.org65fae842010-08-25 15:26:24 +00003828 // A flat cons string is a cons string where the second part is the empty
3829 // string. In that case the subject string is just the first part of the cons
3830 // string. Also in this case the first part of the cons string is known to be
3831 // a sequential string or an external string.
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00003832 // In the case of a sliced string its offset has to be taken into account.
mstarzinger@chromium.org1b3afd12011-11-29 14:28:56 +00003833 Label cons_string, external_string, check_encoding;
yangguo@chromium.org80c42ed2011-08-31 09:03:56 +00003834 STATIC_ASSERT(kConsStringTag < kExternalStringTag);
3835 STATIC_ASSERT(kSlicedStringTag > kExternalStringTag);
mstarzinger@chromium.org1b3afd12011-11-29 14:28:56 +00003836 STATIC_ASSERT(kIsNotStringMask > kExternalStringTag);
3837 STATIC_ASSERT(kShortExternalStringTag > kExternalStringTag);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003838 __ cmp(ebx, Immediate(kExternalStringTag));
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00003839 __ j(less, &cons_string);
mstarzinger@chromium.org1b3afd12011-11-29 14:28:56 +00003840 __ j(equal, &external_string);
3841
3842 // Catch non-string subject or short external string.
3843 STATIC_ASSERT(kNotStringTag != 0 && kShortExternalStringTag !=0);
3844 __ test(ebx, Immediate(kIsNotStringMask | kShortExternalStringTag));
3845 __ j(not_zero, &runtime);
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00003846
3847 // String is sliced.
3848 __ mov(edi, FieldOperand(eax, SlicedString::kOffsetOffset));
3849 __ mov(eax, FieldOperand(eax, SlicedString::kParentOffset));
3850 // edi: offset of sliced string, smi-tagged.
3851 // eax: parent string.
3852 __ jmp(&check_encoding, Label::kNear);
3853 // String is a cons string, check whether it is flat.
3854 __ bind(&cons_string);
3855 __ cmp(FieldOperand(eax, ConsString::kSecondOffset), factory->empty_string());
ricow@chromium.org65fae842010-08-25 15:26:24 +00003856 __ j(not_equal, &runtime);
3857 __ mov(eax, FieldOperand(eax, ConsString::kFirstOffset));
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00003858 __ bind(&check_encoding);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003859 __ mov(ebx, FieldOperand(eax, HeapObject::kMapOffset));
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00003860 // eax: first part of cons string or parent of sliced string.
3861 // ebx: map of first part of cons string or map of parent of sliced string.
3862 // Is first part of cons or parent of slice a flat two byte string?
ricow@chromium.org65fae842010-08-25 15:26:24 +00003863 __ test_b(FieldOperand(ebx, Map::kInstanceTypeOffset),
3864 kStringRepresentationMask | kStringEncodingMask);
3865 STATIC_ASSERT((kSeqStringTag | kTwoByteStringTag) == 0);
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00003866 __ j(zero, &seq_two_byte_string, Label::kNear);
ulan@chromium.org2efb9002012-01-19 15:36:35 +00003867 // Any other flat string must be sequential ASCII or external.
ricow@chromium.org65fae842010-08-25 15:26:24 +00003868 __ test_b(FieldOperand(ebx, Map::kInstanceTypeOffset),
3869 kStringRepresentationMask);
mstarzinger@chromium.org1b3afd12011-11-29 14:28:56 +00003870 __ j(not_zero, &external_string);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003871
3872 __ bind(&seq_ascii_string);
ulan@chromium.org2efb9002012-01-19 15:36:35 +00003873 // eax: subject string (flat ASCII)
ricow@chromium.org65fae842010-08-25 15:26:24 +00003874 // ecx: RegExp data (FixedArray)
3875 __ mov(edx, FieldOperand(ecx, JSRegExp::kDataAsciiCodeOffset));
ulan@chromium.org2efb9002012-01-19 15:36:35 +00003876 __ Set(ecx, Immediate(1)); // Type is ASCII.
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00003877 __ jmp(&check_code, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003878
3879 __ bind(&seq_two_byte_string);
3880 // eax: subject string (flat two byte)
3881 // ecx: RegExp data (FixedArray)
3882 __ mov(edx, FieldOperand(ecx, JSRegExp::kDataUC16CodeOffset));
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00003883 __ Set(ecx, Immediate(0)); // Type is two byte.
ricow@chromium.org65fae842010-08-25 15:26:24 +00003884
3885 __ bind(&check_code);
3886 // Check that the irregexp code has been generated for the actual string
3887 // encoding. If it has, the field contains a code object otherwise it contains
jkummerow@chromium.orgddda9e82011-07-06 11:27:02 +00003888 // a smi (code flushing support).
3889 __ JumpIfSmi(edx, &runtime);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003890
3891 // eax: subject string
3892 // edx: code
ulan@chromium.org2efb9002012-01-19 15:36:35 +00003893 // ecx: encoding of subject string (1 if ASCII, 0 if two_byte);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003894 // Load used arguments before starting to push arguments for call to native
3895 // RegExp code to avoid handling changing stack height.
3896 __ mov(ebx, Operand(esp, kPreviousIndexOffset));
3897 __ SmiUntag(ebx); // Previous index from smi.
3898
3899 // eax: subject string
3900 // ebx: previous index
3901 // edx: code
ulan@chromium.org2efb9002012-01-19 15:36:35 +00003902 // ecx: encoding of subject string (1 if ASCII 0 if two_byte);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003903 // All checks done. Now push arguments for native regexp code.
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00003904 Counters* counters = masm->isolate()->counters();
3905 __ IncrementCounter(counters->regexp_entry_native(), 1);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003906
sgjesse@chromium.orgea88ce92011-03-23 11:19:56 +00003907 // Isolates: note we add an additional parameter here (isolate pointer).
mstarzinger@chromium.org15613d02012-05-23 12:04:37 +00003908 static const int kRegExpExecuteArguments = 9;
kmillikin@chromium.org49edbdf2011-02-16 12:32:18 +00003909 __ EnterApiExitFrame(kRegExpExecuteArguments);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003910
mstarzinger@chromium.org15613d02012-05-23 12:04:37 +00003911 // Argument 9: Pass current isolate address.
3912 __ mov(Operand(esp, 8 * kPointerSize),
sgjesse@chromium.orgea88ce92011-03-23 11:19:56 +00003913 Immediate(ExternalReference::isolate_address()));
3914
mstarzinger@chromium.org15613d02012-05-23 12:04:37 +00003915 // Argument 8: Indicate that this is a direct call from JavaScript.
3916 __ mov(Operand(esp, 7 * kPointerSize), Immediate(1));
ricow@chromium.org65fae842010-08-25 15:26:24 +00003917
mstarzinger@chromium.org15613d02012-05-23 12:04:37 +00003918 // Argument 7: Start (high end) of backtracking stack memory area.
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00003919 __ mov(esi, Operand::StaticVariable(address_of_regexp_stack_memory_address));
3920 __ add(esi, Operand::StaticVariable(address_of_regexp_stack_memory_size));
mstarzinger@chromium.org15613d02012-05-23 12:04:37 +00003921 __ mov(Operand(esp, 6 * kPointerSize), esi);
3922
3923 // Argument 6: Set the number of capture registers to zero to force global
3924 // regexps to behave as non-global. This does not affect non-global regexps.
3925 __ mov(Operand(esp, 5 * kPointerSize), Immediate(0));
ricow@chromium.org65fae842010-08-25 15:26:24 +00003926
3927 // Argument 5: static offsets vector buffer.
3928 __ mov(Operand(esp, 4 * kPointerSize),
sgjesse@chromium.orgea88ce92011-03-23 11:19:56 +00003929 Immediate(ExternalReference::address_of_static_offsets_vector(
3930 masm->isolate())));
ricow@chromium.org65fae842010-08-25 15:26:24 +00003931
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00003932 // Argument 2: Previous index.
3933 __ mov(Operand(esp, 1 * kPointerSize), ebx);
3934
3935 // Argument 1: Original subject string.
3936 // The original subject is in the previous stack frame. Therefore we have to
3937 // use ebp, which points exactly to one pointer size below the previous esp.
3938 // (Because creating a new stack frame pushes the previous ebp onto the stack
3939 // and thereby moves up esp by one kPointerSize.)
3940 __ mov(esi, Operand(ebp, kSubjectOffset + kPointerSize));
3941 __ mov(Operand(esp, 0 * kPointerSize), esi);
3942
3943 // esi: original subject string
3944 // eax: underlying subject string
3945 // ebx: previous index
ulan@chromium.org2efb9002012-01-19 15:36:35 +00003946 // ecx: encoding of subject string (1 if ASCII 0 if two_byte);
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00003947 // edx: code
ricow@chromium.org65fae842010-08-25 15:26:24 +00003948 // Argument 4: End of string data
3949 // Argument 3: Start of string data
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00003950 // Prepare start and end index of the input.
3951 // Load the length from the original sliced string if that is the case.
3952 __ mov(esi, FieldOperand(esi, String::kLengthOffset));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003953 __ add(esi, edi); // Calculate input end wrt offset.
ricow@chromium.org65fae842010-08-25 15:26:24 +00003954 __ SmiUntag(edi);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003955 __ add(ebx, edi); // Calculate input start wrt offset.
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00003956
3957 // ebx: start index of the input string
3958 // esi: end index of the input string
3959 Label setup_two_byte, setup_rest;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003960 __ test(ecx, ecx);
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00003961 __ j(zero, &setup_two_byte, Label::kNear);
3962 __ SmiUntag(esi);
3963 __ lea(ecx, FieldOperand(eax, esi, times_1, SeqAsciiString::kHeaderSize));
ricow@chromium.org65fae842010-08-25 15:26:24 +00003964 __ mov(Operand(esp, 3 * kPointerSize), ecx); // Argument 4.
3965 __ lea(ecx, FieldOperand(eax, ebx, times_1, SeqAsciiString::kHeaderSize));
3966 __ mov(Operand(esp, 2 * kPointerSize), ecx); // Argument 3.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00003967 __ jmp(&setup_rest, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003968
3969 __ bind(&setup_two_byte);
3970 STATIC_ASSERT(kSmiTag == 0);
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00003971 STATIC_ASSERT(kSmiTagSize == 1); // esi is smi (powered by 2).
3972 __ lea(ecx, FieldOperand(eax, esi, times_1, SeqTwoByteString::kHeaderSize));
ricow@chromium.org65fae842010-08-25 15:26:24 +00003973 __ mov(Operand(esp, 3 * kPointerSize), ecx); // Argument 4.
3974 __ lea(ecx, FieldOperand(eax, ebx, times_2, SeqTwoByteString::kHeaderSize));
3975 __ mov(Operand(esp, 2 * kPointerSize), ecx); // Argument 3.
3976
3977 __ bind(&setup_rest);
3978
ricow@chromium.org65fae842010-08-25 15:26:24 +00003979 // Locate the code entry and call it.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00003980 __ add(edx, Immediate(Code::kHeaderSize - kHeapObjectTag));
3981 __ call(edx);
kmillikin@chromium.org49edbdf2011-02-16 12:32:18 +00003982
3983 // Drop arguments and come back to JS mode.
3984 __ LeaveApiExitFrame();
ricow@chromium.org65fae842010-08-25 15:26:24 +00003985
3986 // Check the result.
3987 Label success;
mstarzinger@chromium.org15613d02012-05-23 12:04:37 +00003988 __ cmp(eax, 1);
3989 // We expect exactly one result since we force the called regexp to behave
3990 // as non-global.
vegorov@chromium.org7304bca2011-05-16 12:14:13 +00003991 __ j(equal, &success);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003992 Label failure;
3993 __ cmp(eax, NativeRegExpMacroAssembler::FAILURE);
vegorov@chromium.org7304bca2011-05-16 12:14:13 +00003994 __ j(equal, &failure);
ricow@chromium.org65fae842010-08-25 15:26:24 +00003995 __ cmp(eax, NativeRegExpMacroAssembler::EXCEPTION);
3996 // If not exception it can only be retry. Handle that in the runtime system.
3997 __ j(not_equal, &runtime);
3998 // Result must now be exception. If there is no pending exception already a
3999 // stack overflow (on the backtrack stack) was detected in RegExp code but
4000 // haven't created the exception yet. Handle that in the runtime system.
4001 // TODO(592): Rerunning the RegExp to get the stack overflow exception.
kmillikin@chromium.org83e16822011-09-13 08:21:47 +00004002 ExternalReference pending_exception(Isolate::kPendingExceptionAddress,
sgjesse@chromium.orgea88ce92011-03-23 11:19:56 +00004003 masm->isolate());
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004004 __ mov(edx, Immediate(masm->isolate()->factory()->the_hole_value()));
kmillikin@chromium.org49edbdf2011-02-16 12:32:18 +00004005 __ mov(eax, Operand::StaticVariable(pending_exception));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004006 __ cmp(edx, eax);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004007 __ j(equal, &runtime);
kmillikin@chromium.org49edbdf2011-02-16 12:32:18 +00004008 // For exception, throw the exception again.
4009
4010 // Clear the pending exception variable.
4011 __ mov(Operand::StaticVariable(pending_exception), edx);
4012
4013 // Special handling of termination exceptions which are uncatchable
4014 // by javascript code.
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00004015 __ cmp(eax, factory->termination_exception());
kmillikin@chromium.org49edbdf2011-02-16 12:32:18 +00004016 Label throw_termination_exception;
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00004017 __ j(equal, &throw_termination_exception, Label::kNear);
kmillikin@chromium.org49edbdf2011-02-16 12:32:18 +00004018
4019 // Handle normal exception by following handler chain.
4020 __ Throw(eax);
4021
4022 __ bind(&throw_termination_exception);
ulan@chromium.org65a89c22012-02-14 11:46:07 +00004023 __ ThrowUncatchable(eax);
kmillikin@chromium.org49edbdf2011-02-16 12:32:18 +00004024
ricow@chromium.org65fae842010-08-25 15:26:24 +00004025 __ bind(&failure);
kmillikin@chromium.org49edbdf2011-02-16 12:32:18 +00004026 // For failure to match, return null.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004027 __ mov(eax, factory->null_value());
ricow@chromium.org65fae842010-08-25 15:26:24 +00004028 __ ret(4 * kPointerSize);
4029
4030 // Load RegExp data.
4031 __ bind(&success);
4032 __ mov(eax, Operand(esp, kJSRegExpOffset));
4033 __ mov(ecx, FieldOperand(eax, JSRegExp::kDataOffset));
4034 __ mov(edx, FieldOperand(ecx, JSRegExp::kIrregexpCaptureCountOffset));
4035 // Calculate number of capture registers (number_of_captures + 1) * 2.
4036 STATIC_ASSERT(kSmiTag == 0);
4037 STATIC_ASSERT(kSmiTagSize + kSmiShiftSize == 1);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004038 __ add(edx, Immediate(2)); // edx was a smi.
ricow@chromium.org65fae842010-08-25 15:26:24 +00004039
4040 // edx: Number of capture registers
4041 // Load last_match_info which is still known to be a fast case JSArray.
4042 __ mov(eax, Operand(esp, kLastMatchInfoOffset));
4043 __ mov(ebx, FieldOperand(eax, JSArray::kElementsOffset));
4044
4045 // ebx: last_match_info backing store (FixedArray)
4046 // edx: number of capture registers
4047 // Store the capture count.
4048 __ SmiTag(edx); // Number of capture registers to smi.
4049 __ mov(FieldOperand(ebx, RegExpImpl::kLastCaptureCountOffset), edx);
4050 __ SmiUntag(edx); // Number of capture registers back from smi.
4051 // Store last subject and last input.
4052 __ mov(eax, Operand(esp, kSubjectOffset));
4053 __ mov(FieldOperand(ebx, RegExpImpl::kLastSubjectOffset), eax);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004054 __ RecordWriteField(ebx,
4055 RegExpImpl::kLastSubjectOffset,
4056 eax,
4057 edi,
4058 kDontSaveFPRegs);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004059 __ mov(eax, Operand(esp, kSubjectOffset));
4060 __ mov(FieldOperand(ebx, RegExpImpl::kLastInputOffset), eax);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004061 __ RecordWriteField(ebx,
4062 RegExpImpl::kLastInputOffset,
4063 eax,
4064 edi,
4065 kDontSaveFPRegs);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004066
4067 // Get the static offsets vector filled by the native regexp code.
4068 ExternalReference address_of_static_offsets_vector =
sgjesse@chromium.orgea88ce92011-03-23 11:19:56 +00004069 ExternalReference::address_of_static_offsets_vector(masm->isolate());
ricow@chromium.org65fae842010-08-25 15:26:24 +00004070 __ mov(ecx, Immediate(address_of_static_offsets_vector));
4071
4072 // ebx: last_match_info backing store (FixedArray)
4073 // ecx: offsets vector
4074 // edx: number of capture registers
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004075 Label next_capture, done;
ricow@chromium.org65fae842010-08-25 15:26:24 +00004076 // Capture register counter starts from number of capture registers and
4077 // counts down until wraping after zero.
4078 __ bind(&next_capture);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004079 __ sub(edx, Immediate(1));
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004080 __ j(negative, &done, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004081 // Read the value from the static offsets vector buffer.
4082 __ mov(edi, Operand(ecx, edx, times_int_size, 0));
4083 __ SmiTag(edi);
4084 // Store the smi value in the last match info.
4085 __ mov(FieldOperand(ebx,
4086 edx,
4087 times_pointer_size,
4088 RegExpImpl::kFirstCaptureOffset),
4089 edi);
4090 __ jmp(&next_capture);
4091 __ bind(&done);
4092
4093 // Return last match info.
4094 __ mov(eax, Operand(esp, kLastMatchInfoOffset));
4095 __ ret(4 * kPointerSize);
4096
mstarzinger@chromium.org1b3afd12011-11-29 14:28:56 +00004097 // External string. Short external strings have already been ruled out.
4098 // eax: subject string (expected to be external)
4099 // ebx: scratch
4100 __ bind(&external_string);
4101 __ mov(ebx, FieldOperand(eax, HeapObject::kMapOffset));
4102 __ movzx_b(ebx, FieldOperand(ebx, Map::kInstanceTypeOffset));
4103 if (FLAG_debug_code) {
4104 // Assert that we do not have a cons or slice (indirect strings) here.
4105 // Sequential strings have already been ruled out.
4106 __ test_b(ebx, kIsIndirectStringMask);
4107 __ Assert(zero, "external string expected, but not found");
4108 }
4109 __ mov(eax, FieldOperand(eax, ExternalString::kResourceDataOffset));
4110 // Move the pointer so that offset-wise, it looks like a sequential string.
4111 STATIC_ASSERT(SeqTwoByteString::kHeaderSize == SeqAsciiString::kHeaderSize);
4112 __ sub(eax, Immediate(SeqTwoByteString::kHeaderSize - kHeapObjectTag));
4113 STATIC_ASSERT(kTwoByteStringTag == 0);
4114 __ test_b(ebx, kStringEncodingMask);
4115 __ j(not_zero, &seq_ascii_string);
4116 __ jmp(&seq_two_byte_string);
4117
ricow@chromium.org65fae842010-08-25 15:26:24 +00004118 // Do the runtime call to execute the regexp.
4119 __ bind(&runtime);
4120 __ TailCallRuntime(Runtime::kRegExpExec, 4, 1);
4121#endif // V8_INTERPRETED_REGEXP
4122}
4123
4124
kasperl@chromium.orga5551262010-12-07 12:49:48 +00004125void RegExpConstructResultStub::Generate(MacroAssembler* masm) {
4126 const int kMaxInlineLength = 100;
4127 Label slowcase;
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004128 Label done;
kasperl@chromium.orga5551262010-12-07 12:49:48 +00004129 __ mov(ebx, Operand(esp, kPointerSize * 3));
whesse@chromium.org7b260152011-06-20 15:33:18 +00004130 __ JumpIfNotSmi(ebx, &slowcase);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004131 __ cmp(ebx, Immediate(Smi::FromInt(kMaxInlineLength)));
kasperl@chromium.orga5551262010-12-07 12:49:48 +00004132 __ j(above, &slowcase);
4133 // Smi-tagging is equivalent to multiplying by 2.
4134 STATIC_ASSERT(kSmiTag == 0);
4135 STATIC_ASSERT(kSmiTagSize == 1);
4136 // Allocate RegExpResult followed by FixedArray with size in ebx.
4137 // JSArray: [Map][empty properties][Elements][Length-smi][index][input]
4138 // Elements: [Map][Length][..elements..]
4139 __ AllocateInNewSpace(JSRegExpResult::kSize + FixedArray::kHeaderSize,
4140 times_half_pointer_size,
4141 ebx, // In: Number of elements (times 2, being a smi)
4142 eax, // Out: Start of allocation (tagged).
4143 ecx, // Out: End of allocation.
4144 edx, // Scratch register
4145 &slowcase,
4146 TAG_OBJECT);
4147 // eax: Start of allocated area, object-tagged.
4148
4149 // Set JSArray map to global.regexp_result_map().
4150 // Set empty properties FixedArray.
4151 // Set elements to point to FixedArray allocated right after the JSArray.
4152 // Interleave operations for better latency.
yangguo@chromium.org46839fb2012-08-28 09:06:19 +00004153 __ mov(edx, ContextOperand(esi, Context::GLOBAL_OBJECT_INDEX));
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00004154 Factory* factory = masm->isolate()->factory();
4155 __ mov(ecx, Immediate(factory->empty_fixed_array()));
kasperl@chromium.orga5551262010-12-07 12:49:48 +00004156 __ lea(ebx, Operand(eax, JSRegExpResult::kSize));
yangguo@chromium.org46839fb2012-08-28 09:06:19 +00004157 __ mov(edx, FieldOperand(edx, GlobalObject::kNativeContextOffset));
kasperl@chromium.orga5551262010-12-07 12:49:48 +00004158 __ mov(FieldOperand(eax, JSObject::kElementsOffset), ebx);
4159 __ mov(FieldOperand(eax, JSObject::kPropertiesOffset), ecx);
4160 __ mov(edx, ContextOperand(edx, Context::REGEXP_RESULT_MAP_INDEX));
4161 __ mov(FieldOperand(eax, HeapObject::kMapOffset), edx);
4162
4163 // Set input, index and length fields from arguments.
4164 __ mov(ecx, Operand(esp, kPointerSize * 1));
4165 __ mov(FieldOperand(eax, JSRegExpResult::kInputOffset), ecx);
4166 __ mov(ecx, Operand(esp, kPointerSize * 2));
4167 __ mov(FieldOperand(eax, JSRegExpResult::kIndexOffset), ecx);
4168 __ mov(ecx, Operand(esp, kPointerSize * 3));
4169 __ mov(FieldOperand(eax, JSArray::kLengthOffset), ecx);
4170
4171 // Fill out the elements FixedArray.
4172 // eax: JSArray.
4173 // ebx: FixedArray.
4174 // ecx: Number of elements in array, as smi.
4175
4176 // Set map.
4177 __ mov(FieldOperand(ebx, HeapObject::kMapOffset),
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00004178 Immediate(factory->fixed_array_map()));
kasperl@chromium.orga5551262010-12-07 12:49:48 +00004179 // Set length.
4180 __ mov(FieldOperand(ebx, FixedArray::kLengthOffset), ecx);
ulan@chromium.org56c14af2012-09-20 12:51:09 +00004181 // Fill contents of fixed-array with undefined.
kasperl@chromium.orga5551262010-12-07 12:49:48 +00004182 __ SmiUntag(ecx);
ulan@chromium.org56c14af2012-09-20 12:51:09 +00004183 __ mov(edx, Immediate(factory->undefined_value()));
kasperl@chromium.orga5551262010-12-07 12:49:48 +00004184 __ lea(ebx, FieldOperand(ebx, FixedArray::kHeaderSize));
ulan@chromium.org56c14af2012-09-20 12:51:09 +00004185 // Fill fixed array elements with undefined.
kasperl@chromium.orga5551262010-12-07 12:49:48 +00004186 // eax: JSArray.
4187 // ecx: Number of elements to fill.
4188 // ebx: Start of elements in FixedArray.
ulan@chromium.org56c14af2012-09-20 12:51:09 +00004189 // edx: undefined.
kasperl@chromium.orga5551262010-12-07 12:49:48 +00004190 Label loop;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004191 __ test(ecx, ecx);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00004192 __ bind(&loop);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004193 __ j(less_equal, &done, Label::kNear); // Jump if ecx is negative or zero.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004194 __ sub(ecx, Immediate(1));
kasperl@chromium.orga5551262010-12-07 12:49:48 +00004195 __ mov(Operand(ebx, ecx, times_pointer_size, 0), edx);
4196 __ jmp(&loop);
4197
4198 __ bind(&done);
4199 __ ret(3 * kPointerSize);
4200
4201 __ bind(&slowcase);
4202 __ TailCallRuntime(Runtime::kRegExpConstructResult, 3, 1);
4203}
4204
4205
ricow@chromium.org65fae842010-08-25 15:26:24 +00004206void NumberToStringStub::GenerateLookupNumberStringCache(MacroAssembler* masm,
4207 Register object,
4208 Register result,
4209 Register scratch1,
4210 Register scratch2,
4211 bool object_is_smi,
4212 Label* not_found) {
4213 // Use of registers. Register result is used as a temporary.
4214 Register number_string_cache = result;
4215 Register mask = scratch1;
4216 Register scratch = scratch2;
4217
4218 // Load the number string cache.
erik.corry@gmail.com394dbcf2011-10-27 07:38:48 +00004219 ExternalReference roots_array_start =
4220 ExternalReference::roots_array_start(masm->isolate());
ricow@chromium.org65fae842010-08-25 15:26:24 +00004221 __ mov(scratch, Immediate(Heap::kNumberStringCacheRootIndex));
4222 __ mov(number_string_cache,
erik.corry@gmail.com394dbcf2011-10-27 07:38:48 +00004223 Operand::StaticArray(scratch, times_pointer_size, roots_array_start));
ricow@chromium.org65fae842010-08-25 15:26:24 +00004224 // Make the hash mask from the length of the number string cache. It
4225 // contains two elements (number and string) for each cache entry.
4226 __ mov(mask, FieldOperand(number_string_cache, FixedArray::kLengthOffset));
4227 __ shr(mask, kSmiTagSize + 1); // Untag length and divide it by two.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004228 __ sub(mask, Immediate(1)); // Make mask.
ricow@chromium.org65fae842010-08-25 15:26:24 +00004229
4230 // Calculate the entry in the number string cache. The hash value in the
4231 // number string cache for smis is just the smi value, and the hash for
4232 // doubles is the xor of the upper and lower words. See
4233 // Heap::GetNumberStringCache.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004234 Label smi_hash_calculated;
4235 Label load_result_from_cache;
ricow@chromium.org65fae842010-08-25 15:26:24 +00004236 if (object_is_smi) {
4237 __ mov(scratch, object);
4238 __ SmiUntag(scratch);
4239 } else {
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004240 Label not_smi;
ricow@chromium.org65fae842010-08-25 15:26:24 +00004241 STATIC_ASSERT(kSmiTag == 0);
whesse@chromium.org7b260152011-06-20 15:33:18 +00004242 __ JumpIfNotSmi(object, &not_smi, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004243 __ mov(scratch, object);
4244 __ SmiUntag(scratch);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004245 __ jmp(&smi_hash_calculated, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004246 __ bind(&not_smi);
4247 __ cmp(FieldOperand(object, HeapObject::kMapOffset),
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00004248 masm->isolate()->factory()->heap_number_map());
ricow@chromium.org65fae842010-08-25 15:26:24 +00004249 __ j(not_equal, not_found);
4250 STATIC_ASSERT(8 == kDoubleSize);
4251 __ mov(scratch, FieldOperand(object, HeapNumber::kValueOffset));
4252 __ xor_(scratch, FieldOperand(object, HeapNumber::kValueOffset + 4));
4253 // Object is heap number and hash is now in scratch. Calculate cache index.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004254 __ and_(scratch, mask);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004255 Register index = scratch;
4256 Register probe = mask;
4257 __ mov(probe,
4258 FieldOperand(number_string_cache,
4259 index,
4260 times_twice_pointer_size,
4261 FixedArray::kHeaderSize));
whesse@chromium.org7b260152011-06-20 15:33:18 +00004262 __ JumpIfSmi(probe, not_found);
kmillikin@chromium.orgc36ce6e2011-04-04 08:25:31 +00004263 if (CpuFeatures::IsSupported(SSE2)) {
ricow@chromium.org65fae842010-08-25 15:26:24 +00004264 CpuFeatures::Scope fscope(SSE2);
4265 __ movdbl(xmm0, FieldOperand(object, HeapNumber::kValueOffset));
4266 __ movdbl(xmm1, FieldOperand(probe, HeapNumber::kValueOffset));
4267 __ ucomisd(xmm0, xmm1);
4268 } else {
4269 __ fld_d(FieldOperand(object, HeapNumber::kValueOffset));
4270 __ fld_d(FieldOperand(probe, HeapNumber::kValueOffset));
4271 __ FCmp();
4272 }
4273 __ j(parity_even, not_found); // Bail out if NaN is involved.
4274 __ j(not_equal, not_found); // The cache did not contain this value.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004275 __ jmp(&load_result_from_cache, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004276 }
4277
4278 __ bind(&smi_hash_calculated);
4279 // Object is smi and hash is now in scratch. Calculate cache index.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004280 __ and_(scratch, mask);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004281 Register index = scratch;
4282 // Check if the entry is the smi we are looking for.
4283 __ cmp(object,
4284 FieldOperand(number_string_cache,
4285 index,
4286 times_twice_pointer_size,
4287 FixedArray::kHeaderSize));
4288 __ j(not_equal, not_found);
4289
4290 // Get the result from the cache.
4291 __ bind(&load_result_from_cache);
4292 __ mov(result,
4293 FieldOperand(number_string_cache,
4294 index,
4295 times_twice_pointer_size,
4296 FixedArray::kHeaderSize + kPointerSize));
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00004297 Counters* counters = masm->isolate()->counters();
4298 __ IncrementCounter(counters->number_to_string_native(), 1);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004299}
4300
4301
4302void NumberToStringStub::Generate(MacroAssembler* masm) {
4303 Label runtime;
4304
4305 __ mov(ebx, Operand(esp, kPointerSize));
4306
4307 // Generate code to lookup number in the number string cache.
4308 GenerateLookupNumberStringCache(masm, ebx, eax, ecx, edx, false, &runtime);
4309 __ ret(1 * kPointerSize);
4310
4311 __ bind(&runtime);
4312 // Handle number to string in the runtime system if not found in the cache.
4313 __ TailCallRuntime(Runtime::kNumberToStringSkipCache, 1, 1);
4314}
4315
4316
4317static int NegativeComparisonResult(Condition cc) {
4318 ASSERT(cc != equal);
4319 ASSERT((cc == less) || (cc == less_equal)
4320 || (cc == greater) || (cc == greater_equal));
4321 return (cc == greater || cc == greater_equal) ? LESS : GREATER;
4322}
4323
4324void CompareStub::Generate(MacroAssembler* masm) {
4325 ASSERT(lhs_.is(no_reg) && rhs_.is(no_reg));
4326
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00004327 Label check_unequal_objects;
ricow@chromium.org65fae842010-08-25 15:26:24 +00004328
erik.corry@gmail.comd88afa22010-09-15 12:33:05 +00004329 // Compare two smis if required.
4330 if (include_smi_compare_) {
4331 Label non_smi, smi_done;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004332 __ mov(ecx, edx);
4333 __ or_(ecx, eax);
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00004334 __ JumpIfNotSmi(ecx, &non_smi, Label::kNear);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004335 __ sub(edx, eax); // Return on the result of the subtraction.
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00004336 __ j(no_overflow, &smi_done, Label::kNear);
whesse@chromium.org4a5224e2010-10-20 12:37:07 +00004337 __ not_(edx); // Correct sign in case of overflow. edx is never 0 here.
erik.corry@gmail.comd88afa22010-09-15 12:33:05 +00004338 __ bind(&smi_done);
4339 __ mov(eax, edx);
4340 __ ret(0);
4341 __ bind(&non_smi);
4342 } else if (FLAG_debug_code) {
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004343 __ mov(ecx, edx);
4344 __ or_(ecx, eax);
erik.corry@gmail.comd88afa22010-09-15 12:33:05 +00004345 __ test(ecx, Immediate(kSmiTagMask));
4346 __ Assert(not_zero, "Unexpected smi operands.");
4347 }
4348
ricow@chromium.org65fae842010-08-25 15:26:24 +00004349 // NOTICE! This code is only reached after a smi-fast-case check, so
4350 // it is certain that at least one operand isn't a smi.
4351
4352 // Identical objects can be compared fast, but there are some tricky cases
4353 // for NaN and undefined.
4354 {
4355 Label not_identical;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004356 __ cmp(eax, edx);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004357 __ j(not_equal, &not_identical);
4358
4359 if (cc_ != equal) {
4360 // Check for undefined. undefined OP undefined is false even though
4361 // undefined == undefined.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004362 Label check_for_nan;
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00004363 __ cmp(edx, masm->isolate()->factory()->undefined_value());
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004364 __ j(not_equal, &check_for_nan, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004365 __ Set(eax, Immediate(Smi::FromInt(NegativeComparisonResult(cc_))));
4366 __ ret(0);
4367 __ bind(&check_for_nan);
4368 }
4369
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00004370 // Test for NaN. Sadly, we can't just compare to factory->nan_value(),
ricow@chromium.org65fae842010-08-25 15:26:24 +00004371 // so we do the second best thing - test it ourselves.
4372 // Note: if cc_ != equal, never_nan_nan_ is not used.
4373 if (never_nan_nan_ && (cc_ == equal)) {
4374 __ Set(eax, Immediate(Smi::FromInt(EQUAL)));
4375 __ ret(0);
4376 } else {
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004377 Label heap_number;
ricow@chromium.org65fae842010-08-25 15:26:24 +00004378 __ cmp(FieldOperand(edx, HeapObject::kMapOffset),
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00004379 Immediate(masm->isolate()->factory()->heap_number_map()));
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004380 __ j(equal, &heap_number, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004381 if (cc_ != equal) {
4382 // Call runtime on identical JSObjects. Otherwise return equal.
ricow@chromium.orgd2be9012011-06-01 06:00:58 +00004383 __ CmpObjectType(eax, FIRST_SPEC_OBJECT_TYPE, ecx);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004384 __ j(above_equal, &not_identical);
4385 }
4386 __ Set(eax, Immediate(Smi::FromInt(EQUAL)));
4387 __ ret(0);
4388
4389 __ bind(&heap_number);
4390 // It is a heap number, so return non-equal if it's NaN and equal if
4391 // it's not NaN.
4392 // The representation of NaN values has all exponent bits (52..62) set,
4393 // and not all mantissa bits (0..51) clear.
4394 // We only accept QNaNs, which have bit 51 set.
4395 // Read top bits of double representation (second word of value).
4396
4397 // Value is a QNaN if value & kQuietNaNMask == kQuietNaNMask, i.e.,
4398 // all bits in the mask are set. We only need to check the word
4399 // that contains the exponent and high bit of the mantissa.
4400 STATIC_ASSERT(((kQuietNaNHighBitsMask << 1) & 0x80000000u) != 0);
4401 __ mov(edx, FieldOperand(edx, HeapNumber::kExponentOffset));
lrn@chromium.org5d00b602011-01-05 09:51:43 +00004402 __ Set(eax, Immediate(0));
ricow@chromium.org65fae842010-08-25 15:26:24 +00004403 // Shift value and mask so kQuietNaNHighBitsMask applies to topmost
4404 // bits.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004405 __ add(edx, edx);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004406 __ cmp(edx, kQuietNaNHighBitsMask << 1);
4407 if (cc_ == equal) {
4408 STATIC_ASSERT(EQUAL != 1);
4409 __ setcc(above_equal, eax);
4410 __ ret(0);
4411 } else {
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004412 Label nan;
4413 __ j(above_equal, &nan, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004414 __ Set(eax, Immediate(Smi::FromInt(EQUAL)));
4415 __ ret(0);
4416 __ bind(&nan);
4417 __ Set(eax, Immediate(Smi::FromInt(NegativeComparisonResult(cc_))));
4418 __ ret(0);
4419 }
4420 }
4421
4422 __ bind(&not_identical);
4423 }
4424
4425 // Strict equality can quickly decide whether objects are equal.
4426 // Non-strict object equality is slower, so it is handled later in the stub.
4427 if (cc_ == equal && strict_) {
4428 Label slow; // Fallthrough label.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004429 Label not_smis;
ricow@chromium.org65fae842010-08-25 15:26:24 +00004430 // If we're doing a strict equality comparison, we don't have to do
4431 // type conversion, so we generate code to do fast comparison for objects
4432 // and oddballs. Non-smi numbers and strings still go through the usual
4433 // slow-case code.
4434 // If either is a Smi (we know that not both are), then they can only
4435 // be equal if the other is a HeapNumber. If so, use the slow case.
4436 STATIC_ASSERT(kSmiTag == 0);
4437 ASSERT_EQ(0, Smi::FromInt(0));
4438 __ mov(ecx, Immediate(kSmiTagMask));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004439 __ and_(ecx, eax);
4440 __ test(ecx, edx);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004441 __ j(not_zero, &not_smis, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004442 // One operand is a smi.
4443
4444 // Check whether the non-smi is a heap number.
4445 STATIC_ASSERT(kSmiTagMask == 1);
4446 // ecx still holds eax & kSmiTag, which is either zero or one.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004447 __ sub(ecx, Immediate(0x01));
ricow@chromium.org65fae842010-08-25 15:26:24 +00004448 __ mov(ebx, edx);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004449 __ xor_(ebx, eax);
4450 __ and_(ebx, ecx); // ebx holds either 0 or eax ^ edx.
4451 __ xor_(ebx, eax);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004452 // if eax was smi, ebx is now edx, else eax.
4453
4454 // Check if the non-smi operand is a heap number.
4455 __ cmp(FieldOperand(ebx, HeapObject::kMapOffset),
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00004456 Immediate(masm->isolate()->factory()->heap_number_map()));
ricow@chromium.org65fae842010-08-25 15:26:24 +00004457 // If heap number, handle it in the slow case.
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00004458 __ j(equal, &slow, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004459 // Return non-equal (ebx is not zero)
4460 __ mov(eax, ebx);
4461 __ ret(0);
4462
4463 __ bind(&not_smis);
4464 // If either operand is a JSObject or an oddball value, then they are not
4465 // equal since their pointers are different
4466 // There is no test for undetectability in strict equality.
4467
4468 // Get the type of the first operand.
4469 // If the first object is a JS object, we have done pointer comparison.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004470 Label first_non_object;
ricow@chromium.orgd2be9012011-06-01 06:00:58 +00004471 STATIC_ASSERT(LAST_TYPE == LAST_SPEC_OBJECT_TYPE);
4472 __ CmpObjectType(eax, FIRST_SPEC_OBJECT_TYPE, ecx);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004473 __ j(below, &first_non_object, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004474
4475 // Return non-zero (eax is not zero)
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004476 Label return_not_equal;
ricow@chromium.org65fae842010-08-25 15:26:24 +00004477 STATIC_ASSERT(kHeapObjectTag != 0);
4478 __ bind(&return_not_equal);
4479 __ ret(0);
4480
4481 __ bind(&first_non_object);
4482 // Check for oddballs: true, false, null, undefined.
4483 __ CmpInstanceType(ecx, ODDBALL_TYPE);
4484 __ j(equal, &return_not_equal);
4485
ricow@chromium.orgd2be9012011-06-01 06:00:58 +00004486 __ CmpObjectType(edx, FIRST_SPEC_OBJECT_TYPE, ecx);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004487 __ j(above_equal, &return_not_equal);
4488
4489 // Check for oddballs: true, false, null, undefined.
4490 __ CmpInstanceType(ecx, ODDBALL_TYPE);
4491 __ j(equal, &return_not_equal);
4492
4493 // Fall through to the general case.
4494 __ bind(&slow);
4495 }
4496
4497 // Generate the number comparison code.
4498 if (include_number_compare_) {
4499 Label non_number_comparison;
4500 Label unordered;
kmillikin@chromium.orgc36ce6e2011-04-04 08:25:31 +00004501 if (CpuFeatures::IsSupported(SSE2)) {
ricow@chromium.org65fae842010-08-25 15:26:24 +00004502 CpuFeatures::Scope use_sse2(SSE2);
4503 CpuFeatures::Scope use_cmov(CMOV);
4504
4505 FloatingPointHelper::LoadSSE2Operands(masm, &non_number_comparison);
4506 __ ucomisd(xmm0, xmm1);
4507
4508 // Don't base result on EFLAGS when a NaN is involved.
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00004509 __ j(parity_even, &unordered, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004510 // Return a result of -1, 0, or 1, based on EFLAGS.
4511 __ mov(eax, 0); // equal
4512 __ mov(ecx, Immediate(Smi::FromInt(1)));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004513 __ cmov(above, eax, ecx);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004514 __ mov(ecx, Immediate(Smi::FromInt(-1)));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004515 __ cmov(below, eax, ecx);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004516 __ ret(0);
4517 } else {
4518 FloatingPointHelper::CheckFloatOperands(
4519 masm, &non_number_comparison, ebx);
4520 FloatingPointHelper::LoadFloatOperand(masm, eax);
4521 FloatingPointHelper::LoadFloatOperand(masm, edx);
4522 __ FCmp();
4523
4524 // Don't base result on EFLAGS when a NaN is involved.
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00004525 __ j(parity_even, &unordered, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004526
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004527 Label below_label, above_label;
ricow@chromium.org65fae842010-08-25 15:26:24 +00004528 // Return a result of -1, 0, or 1, based on EFLAGS.
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00004529 __ j(below, &below_label, Label::kNear);
4530 __ j(above, &above_label, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004531
lrn@chromium.org5d00b602011-01-05 09:51:43 +00004532 __ Set(eax, Immediate(0));
ricow@chromium.org65fae842010-08-25 15:26:24 +00004533 __ ret(0);
4534
4535 __ bind(&below_label);
4536 __ mov(eax, Immediate(Smi::FromInt(-1)));
4537 __ ret(0);
4538
4539 __ bind(&above_label);
4540 __ mov(eax, Immediate(Smi::FromInt(1)));
4541 __ ret(0);
4542 }
4543
4544 // If one of the numbers was NaN, then the result is always false.
4545 // The cc is never not-equal.
4546 __ bind(&unordered);
4547 ASSERT(cc_ != not_equal);
4548 if (cc_ == less || cc_ == less_equal) {
4549 __ mov(eax, Immediate(Smi::FromInt(1)));
4550 } else {
4551 __ mov(eax, Immediate(Smi::FromInt(-1)));
4552 }
4553 __ ret(0);
4554
4555 // The number comparison code did not provide a valid result.
4556 __ bind(&non_number_comparison);
4557 }
4558
4559 // Fast negative check for symbol-to-symbol equality.
4560 Label check_for_strings;
4561 if (cc_ == equal) {
4562 BranchIfNonSymbol(masm, &check_for_strings, eax, ecx);
4563 BranchIfNonSymbol(masm, &check_for_strings, edx, ecx);
4564
4565 // We've already checked for object identity, so if both operands
4566 // are symbols they aren't equal. Register eax already holds a
4567 // non-zero value, which indicates not equal, so just return.
4568 __ ret(0);
4569 }
4570
4571 __ bind(&check_for_strings);
4572
4573 __ JumpIfNotBothSequentialAsciiStrings(edx, eax, ecx, ebx,
4574 &check_unequal_objects);
4575
ulan@chromium.org2efb9002012-01-19 15:36:35 +00004576 // Inline comparison of ASCII strings.
lrn@chromium.org1c092762011-05-09 09:42:16 +00004577 if (cc_ == equal) {
4578 StringCompareStub::GenerateFlatAsciiStringEquals(masm,
ricow@chromium.org65fae842010-08-25 15:26:24 +00004579 edx,
4580 eax,
4581 ecx,
lrn@chromium.org1c092762011-05-09 09:42:16 +00004582 ebx);
4583 } else {
4584 StringCompareStub::GenerateCompareFlatAsciiStrings(masm,
4585 edx,
4586 eax,
4587 ecx,
4588 ebx,
4589 edi);
4590 }
ricow@chromium.org65fae842010-08-25 15:26:24 +00004591#ifdef DEBUG
4592 __ Abort("Unexpected fall-through from string comparison");
4593#endif
4594
4595 __ bind(&check_unequal_objects);
4596 if (cc_ == equal && !strict_) {
4597 // Non-strict equality. Objects are unequal if
4598 // they are both JSObjects and not undetectable,
4599 // and their pointers are different.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004600 Label not_both_objects;
4601 Label return_unequal;
ricow@chromium.org65fae842010-08-25 15:26:24 +00004602 // At most one is a smi, so we can test for smi by adding the two.
4603 // A smi plus a heap object has the low bit set, a heap object plus
4604 // a heap object has the low bit clear.
4605 STATIC_ASSERT(kSmiTag == 0);
4606 STATIC_ASSERT(kSmiTagMask == 1);
4607 __ lea(ecx, Operand(eax, edx, times_1, 0));
4608 __ test(ecx, Immediate(kSmiTagMask));
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004609 __ j(not_zero, &not_both_objects, Label::kNear);
ricow@chromium.orgd2be9012011-06-01 06:00:58 +00004610 __ CmpObjectType(eax, FIRST_SPEC_OBJECT_TYPE, ecx);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004611 __ j(below, &not_both_objects, Label::kNear);
ricow@chromium.orgd2be9012011-06-01 06:00:58 +00004612 __ CmpObjectType(edx, FIRST_SPEC_OBJECT_TYPE, ebx);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004613 __ j(below, &not_both_objects, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004614 // We do not bail out after this point. Both are JSObjects, and
4615 // they are equal if and only if both are undetectable.
4616 // The and of the undetectable flags is 1 if and only if they are equal.
4617 __ test_b(FieldOperand(ecx, Map::kBitFieldOffset),
4618 1 << Map::kIsUndetectable);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004619 __ j(zero, &return_unequal, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004620 __ test_b(FieldOperand(ebx, Map::kBitFieldOffset),
4621 1 << Map::kIsUndetectable);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004622 __ j(zero, &return_unequal, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004623 // The objects are both undetectable, so they both compare as the value
4624 // undefined, and are equal.
4625 __ Set(eax, Immediate(EQUAL));
4626 __ bind(&return_unequal);
4627 // Return non-equal by returning the non-zero object pointer in eax,
4628 // or return equal if we fell through to here.
4629 __ ret(0); // rax, rdx were pushed
4630 __ bind(&not_both_objects);
4631 }
4632
4633 // Push arguments below the return address.
4634 __ pop(ecx);
4635 __ push(edx);
4636 __ push(eax);
4637
4638 // Figure out which native to call and setup the arguments.
4639 Builtins::JavaScript builtin;
4640 if (cc_ == equal) {
4641 builtin = strict_ ? Builtins::STRICT_EQUALS : Builtins::EQUALS;
4642 } else {
4643 builtin = Builtins::COMPARE;
4644 __ push(Immediate(Smi::FromInt(NegativeComparisonResult(cc_))));
4645 }
4646
4647 // Restore return address on the stack.
4648 __ push(ecx);
4649
4650 // Call the native; it returns -1 (less), 0 (equal), or 1 (greater)
4651 // tagged as a small integer.
4652 __ InvokeBuiltin(builtin, JUMP_FUNCTION);
4653}
4654
4655
4656void CompareStub::BranchIfNonSymbol(MacroAssembler* masm,
4657 Label* label,
4658 Register object,
4659 Register scratch) {
whesse@chromium.org7b260152011-06-20 15:33:18 +00004660 __ JumpIfSmi(object, label);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004661 __ mov(scratch, FieldOperand(object, HeapObject::kMapOffset));
4662 __ movzx_b(scratch, FieldOperand(scratch, Map::kInstanceTypeOffset));
4663 __ and_(scratch, kIsSymbolMask | kIsNotStringMask);
4664 __ cmp(scratch, kSymbolTag | kStringTag);
4665 __ j(not_equal, label);
4666}
4667
4668
4669void StackCheckStub::Generate(MacroAssembler* masm) {
whesse@chromium.org4a5224e2010-10-20 12:37:07 +00004670 __ TailCallRuntime(Runtime::kStackGuard, 0, 1);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004671}
4672
4673
yangguo@chromium.org56454712012-02-16 15:33:53 +00004674void InterruptStub::Generate(MacroAssembler* masm) {
4675 __ TailCallRuntime(Runtime::kInterrupt, 0, 1);
4676}
4677
4678
danno@chromium.orgfa458e42012-02-01 10:48:36 +00004679static void GenerateRecordCallTarget(MacroAssembler* masm) {
4680 // Cache the called function in a global property cell. Cache states
4681 // are uninitialized, monomorphic (indicated by a JSFunction), and
4682 // megamorphic.
4683 // ebx : cache cell for call target
4684 // edi : the function to call
4685 Isolate* isolate = masm->isolate();
4686 Label initialize, done;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004687
danno@chromium.orgfa458e42012-02-01 10:48:36 +00004688 // Load the cache state into ecx.
4689 __ mov(ecx, FieldOperand(ebx, JSGlobalPropertyCell::kValueOffset));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004690
danno@chromium.orgfa458e42012-02-01 10:48:36 +00004691 // A monomorphic cache hit or an already megamorphic state: invoke the
4692 // function without changing the state.
4693 __ cmp(ecx, edi);
4694 __ j(equal, &done, Label::kNear);
4695 __ cmp(ecx, Immediate(TypeFeedbackCells::MegamorphicSentinel(isolate)));
4696 __ j(equal, &done, Label::kNear);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004697
danno@chromium.orgfa458e42012-02-01 10:48:36 +00004698 // A monomorphic miss (i.e, here the cache is not uninitialized) goes
4699 // megamorphic.
4700 __ cmp(ecx, Immediate(TypeFeedbackCells::UninitializedSentinel(isolate)));
4701 __ j(equal, &initialize, Label::kNear);
4702 // MegamorphicSentinel is an immortal immovable object (undefined) so no
4703 // write-barrier is needed.
4704 __ mov(FieldOperand(ebx, JSGlobalPropertyCell::kValueOffset),
4705 Immediate(TypeFeedbackCells::MegamorphicSentinel(isolate)));
4706 __ jmp(&done, Label::kNear);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004707
danno@chromium.orgfa458e42012-02-01 10:48:36 +00004708 // An uninitialized cache is patched with the function.
4709 __ bind(&initialize);
4710 __ mov(FieldOperand(ebx, JSGlobalPropertyCell::kValueOffset), edi);
4711 // No need for a write barrier here - cells are rescanned.
4712
4713 __ bind(&done);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004714}
4715
4716
ricow@chromium.org65fae842010-08-25 15:26:24 +00004717void CallFunctionStub::Generate(MacroAssembler* masm) {
danno@chromium.orgfa458e42012-02-01 10:48:36 +00004718 // ebx : cache cell for call target
danno@chromium.orgc612e022011-11-10 11:38:15 +00004719 // edi : the function to call
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004720 Isolate* isolate = masm->isolate();
lrn@chromium.org34e60782011-09-15 07:25:40 +00004721 Label slow, non_function;
ricow@chromium.org65fae842010-08-25 15:26:24 +00004722
danno@chromium.org40cb8782011-05-25 07:58:50 +00004723 // The receiver might implicitly be the global object. This is
4724 // indicated by passing the hole as the receiver to the call
4725 // function stub.
4726 if (ReceiverMightBeImplicit()) {
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004727 Label receiver_ok;
ricow@chromium.org65fae842010-08-25 15:26:24 +00004728 // Get the receiver from the stack.
4729 // +1 ~ return address
ricow@chromium.org65fae842010-08-25 15:26:24 +00004730 __ mov(eax, Operand(esp, (argc_ + 1) * kPointerSize));
danno@chromium.org40cb8782011-05-25 07:58:50 +00004731 // Call as function is indicated with the hole.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004732 __ cmp(eax, isolate->factory()->the_hole_value());
4733 __ j(not_equal, &receiver_ok, Label::kNear);
danno@chromium.org40cb8782011-05-25 07:58:50 +00004734 // Patch the receiver on the stack with the global receiver object.
danno@chromium.orgfa458e42012-02-01 10:48:36 +00004735 __ mov(ecx, GlobalObjectOperand());
4736 __ mov(ecx, FieldOperand(ecx, GlobalObject::kGlobalReceiverOffset));
4737 __ mov(Operand(esp, (argc_ + 1) * kPointerSize), ecx);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004738 __ bind(&receiver_ok);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004739 }
4740
ricow@chromium.org65fae842010-08-25 15:26:24 +00004741 // Check that the function really is a JavaScript function.
lrn@chromium.org34e60782011-09-15 07:25:40 +00004742 __ JumpIfSmi(edi, &non_function);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004743 // Goto slow case if we do not have a function.
4744 __ CmpObjectType(edi, JS_FUNCTION_TYPE, ecx);
vegorov@chromium.org7304bca2011-05-16 12:14:13 +00004745 __ j(not_equal, &slow);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004746
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004747 if (RecordCallTarget()) {
danno@chromium.orgfa458e42012-02-01 10:48:36 +00004748 GenerateRecordCallTarget(masm);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004749 }
4750
ricow@chromium.org65fae842010-08-25 15:26:24 +00004751 // Fast-case: Just invoke the function.
4752 ParameterCount actual(argc_);
danno@chromium.org40cb8782011-05-25 07:58:50 +00004753
4754 if (ReceiverMightBeImplicit()) {
4755 Label call_as_function;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004756 __ cmp(eax, isolate->factory()->the_hole_value());
danno@chromium.org40cb8782011-05-25 07:58:50 +00004757 __ j(equal, &call_as_function);
ricow@chromium.orgd2be9012011-06-01 06:00:58 +00004758 __ InvokeFunction(edi,
4759 actual,
4760 JUMP_FUNCTION,
4761 NullCallWrapper(),
4762 CALL_AS_METHOD);
danno@chromium.org40cb8782011-05-25 07:58:50 +00004763 __ bind(&call_as_function);
4764 }
4765 __ InvokeFunction(edi,
4766 actual,
4767 JUMP_FUNCTION,
4768 NullCallWrapper(),
4769 CALL_AS_FUNCTION);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004770
4771 // Slow-case: Non-function called.
4772 __ bind(&slow);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004773 if (RecordCallTarget()) {
4774 // If there is a call target cache, mark it megamorphic in the
danno@chromium.orgfa458e42012-02-01 10:48:36 +00004775 // non-function case. MegamorphicSentinel is an immortal immovable
4776 // object (undefined) so no write barrier is needed.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004777 __ mov(FieldOperand(ebx, JSGlobalPropertyCell::kValueOffset),
danno@chromium.orgfa458e42012-02-01 10:48:36 +00004778 Immediate(TypeFeedbackCells::MegamorphicSentinel(isolate)));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004779 }
lrn@chromium.org34e60782011-09-15 07:25:40 +00004780 // Check for function proxy.
4781 __ CmpInstanceType(ecx, JS_FUNCTION_PROXY_TYPE);
4782 __ j(not_equal, &non_function);
4783 __ pop(ecx);
4784 __ push(edi); // put proxy as additional argument under return address
4785 __ push(ecx);
4786 __ Set(eax, Immediate(argc_ + 1));
4787 __ Set(ebx, Immediate(0));
4788 __ SetCallKind(ecx, CALL_AS_FUNCTION);
4789 __ GetBuiltinEntry(edx, Builtins::CALL_FUNCTION_PROXY);
4790 {
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004791 Handle<Code> adaptor = isolate->builtins()->ArgumentsAdaptorTrampoline();
lrn@chromium.org34e60782011-09-15 07:25:40 +00004792 __ jmp(adaptor, RelocInfo::CODE_TARGET);
4793 }
4794
ricow@chromium.org65fae842010-08-25 15:26:24 +00004795 // CALL_NON_FUNCTION expects the non-function callee as receiver (instead
4796 // of the original receiver from the call site).
lrn@chromium.org34e60782011-09-15 07:25:40 +00004797 __ bind(&non_function);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004798 __ mov(Operand(esp, (argc_ + 1) * kPointerSize), edi);
4799 __ Set(eax, Immediate(argc_));
4800 __ Set(ebx, Immediate(0));
lrn@chromium.org34e60782011-09-15 07:25:40 +00004801 __ SetCallKind(ecx, CALL_AS_METHOD);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004802 __ GetBuiltinEntry(edx, Builtins::CALL_NON_FUNCTION);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004803 Handle<Code> adaptor = isolate->builtins()->ArgumentsAdaptorTrampoline();
ricow@chromium.org65fae842010-08-25 15:26:24 +00004804 __ jmp(adaptor, RelocInfo::CODE_TARGET);
4805}
4806
4807
danno@chromium.orgfa458e42012-02-01 10:48:36 +00004808void CallConstructStub::Generate(MacroAssembler* masm) {
4809 // eax : number of arguments
4810 // ebx : cache cell for call target
4811 // edi : constructor function
4812 Label slow, non_function_call;
4813
4814 // Check that function is not a smi.
4815 __ JumpIfSmi(edi, &non_function_call);
4816 // Check that function is a JSFunction.
4817 __ CmpObjectType(edi, JS_FUNCTION_TYPE, ecx);
4818 __ j(not_equal, &slow);
4819
4820 if (RecordCallTarget()) {
4821 GenerateRecordCallTarget(masm);
4822 }
4823
4824 // Jump to the function-specific construct stub.
4825 __ mov(ebx, FieldOperand(edi, JSFunction::kSharedFunctionInfoOffset));
4826 __ mov(ebx, FieldOperand(ebx, SharedFunctionInfo::kConstructStubOffset));
4827 __ lea(ebx, FieldOperand(ebx, Code::kHeaderSize));
4828 __ jmp(ebx);
4829
4830 // edi: called object
4831 // eax: number of arguments
4832 // ecx: object map
4833 Label do_call;
4834 __ bind(&slow);
4835 __ CmpInstanceType(ecx, JS_FUNCTION_PROXY_TYPE);
4836 __ j(not_equal, &non_function_call);
4837 __ GetBuiltinEntry(edx, Builtins::CALL_FUNCTION_PROXY_AS_CONSTRUCTOR);
4838 __ jmp(&do_call);
4839
4840 __ bind(&non_function_call);
4841 __ GetBuiltinEntry(edx, Builtins::CALL_NON_FUNCTION_AS_CONSTRUCTOR);
4842 __ bind(&do_call);
4843 // Set expected number of arguments to zero (not changing eax).
4844 __ Set(ebx, Immediate(0));
4845 Handle<Code> arguments_adaptor =
4846 masm->isolate()->builtins()->ArgumentsAdaptorTrampoline();
4847 __ SetCallKind(ecx, CALL_AS_METHOD);
4848 __ jmp(arguments_adaptor, RelocInfo::CODE_TARGET);
4849}
4850
4851
danno@chromium.org4d3fe4e2011-03-10 10:14:28 +00004852bool CEntryStub::NeedsImmovableCode() {
4853 return false;
4854}
4855
4856
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004857bool CEntryStub::IsPregenerated() {
4858 return (!save_doubles_ || ISOLATE->fp_stubs_generated()) &&
4859 result_size_ == 1;
4860}
4861
4862
4863void CodeStub::GenerateStubsAheadOfTime() {
4864 CEntryStub::GenerateAheadOfTime();
4865 StoreBufferOverflowStub::GenerateFixedRegStubsAheadOfTime();
4866 // It is important that the store buffer overflow stubs are generated first.
4867 RecordWriteStub::GenerateFixedRegStubsAheadOfTime();
4868}
4869
4870
4871void CodeStub::GenerateFPStubs() {
4872 CEntryStub save_doubles(1, kSaveFPRegs);
4873 Handle<Code> code = save_doubles.GetCode();
4874 code->set_is_pregenerated(true);
4875 code->GetIsolate()->set_fp_stubs_generated(true);
4876}
4877
4878
4879void CEntryStub::GenerateAheadOfTime() {
4880 CEntryStub stub(1, kDontSaveFPRegs);
4881 Handle<Code> code = stub.GetCode();
4882 code->set_is_pregenerated(true);
4883}
4884
4885
ricow@chromium.org65fae842010-08-25 15:26:24 +00004886void CEntryStub::GenerateCore(MacroAssembler* masm,
4887 Label* throw_normal_exception,
4888 Label* throw_termination_exception,
4889 Label* throw_out_of_memory_exception,
4890 bool do_gc,
ager@chromium.org0ee099b2011-01-25 14:06:47 +00004891 bool always_allocate_scope) {
ricow@chromium.org65fae842010-08-25 15:26:24 +00004892 // eax: result parameter for PerformGC, if any
4893 // ebx: pointer to C function (C callee-saved)
4894 // ebp: frame pointer (restored after C call)
4895 // esp: stack pointer (restored after C call)
4896 // edi: number of arguments including receiver (C callee-saved)
4897 // esi: pointer to the first argument (C callee-saved)
4898
4899 // Result returned in eax, or eax+edx if result_size_ is 2.
4900
4901 // Check stack alignment.
4902 if (FLAG_debug_code) {
4903 __ CheckStackAlignment();
4904 }
4905
4906 if (do_gc) {
4907 // Pass failure code returned from last attempt as first argument to
4908 // PerformGC. No need to use PrepareCallCFunction/CallCFunction here as the
4909 // stack alignment is known to be correct. This function takes one argument
4910 // which is passed on the stack, and we know that the stack has been
4911 // prepared to pass at least one argument.
4912 __ mov(Operand(esp, 0 * kPointerSize), eax); // Result.
4913 __ call(FUNCTION_ADDR(Runtime::PerformGC), RelocInfo::RUNTIME_ENTRY);
4914 }
4915
4916 ExternalReference scope_depth =
sgjesse@chromium.orgea88ce92011-03-23 11:19:56 +00004917 ExternalReference::heap_always_allocate_scope_depth(masm->isolate());
ricow@chromium.org65fae842010-08-25 15:26:24 +00004918 if (always_allocate_scope) {
4919 __ inc(Operand::StaticVariable(scope_depth));
4920 }
4921
4922 // Call C function.
4923 __ mov(Operand(esp, 0 * kPointerSize), edi); // argc.
4924 __ mov(Operand(esp, 1 * kPointerSize), esi); // argv.
sgjesse@chromium.orgea88ce92011-03-23 11:19:56 +00004925 __ mov(Operand(esp, 2 * kPointerSize),
4926 Immediate(ExternalReference::isolate_address()));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004927 __ call(ebx);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004928 // Result is in eax or edx:eax - do not destroy these registers!
4929
4930 if (always_allocate_scope) {
4931 __ dec(Operand::StaticVariable(scope_depth));
4932 }
4933
4934 // Make sure we're not trying to return 'the hole' from the runtime
4935 // call as this may lead to crashes in the IC code later.
4936 if (FLAG_debug_code) {
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004937 Label okay;
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00004938 __ cmp(eax, masm->isolate()->factory()->the_hole_value());
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004939 __ j(not_equal, &okay, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004940 __ int3();
4941 __ bind(&okay);
4942 }
4943
4944 // Check for failure result.
4945 Label failure_returned;
4946 STATIC_ASSERT(((kFailureTag + 1) & kFailureTagMask) == 0);
4947 __ lea(ecx, Operand(eax, 1));
4948 // Lower 2 bits of ecx are 0 iff eax has failure tag.
4949 __ test(ecx, Immediate(kFailureTagMask));
vegorov@chromium.org7304bca2011-05-16 12:14:13 +00004950 __ j(zero, &failure_returned);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004951
sgjesse@chromium.orgea88ce92011-03-23 11:19:56 +00004952 ExternalReference pending_exception_address(
kmillikin@chromium.org83e16822011-09-13 08:21:47 +00004953 Isolate::kPendingExceptionAddress, masm->isolate());
erik.corry@gmail.comd91075f2011-02-10 07:45:38 +00004954
4955 // Check that there is no pending exception, otherwise we
4956 // should have returned some failure value.
4957 if (FLAG_debug_code) {
4958 __ push(edx);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004959 __ mov(edx, Immediate(masm->isolate()->factory()->the_hole_value()));
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004960 Label okay;
erik.corry@gmail.comd91075f2011-02-10 07:45:38 +00004961 __ cmp(edx, Operand::StaticVariable(pending_exception_address));
4962 // Cannot use check here as it attempts to generate call into runtime.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00004963 __ j(equal, &okay, Label::kNear);
erik.corry@gmail.comd91075f2011-02-10 07:45:38 +00004964 __ int3();
4965 __ bind(&okay);
4966 __ pop(edx);
4967 }
4968
ricow@chromium.org65fae842010-08-25 15:26:24 +00004969 // Exit the JavaScript to C++ exit frame.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004970 __ LeaveExitFrame(save_doubles_ == kSaveFPRegs);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004971 __ ret(0);
4972
4973 // Handling of failure.
4974 __ bind(&failure_returned);
4975
4976 Label retry;
4977 // If the returned exception is RETRY_AFTER_GC continue at retry label
4978 STATIC_ASSERT(Failure::RETRY_AFTER_GC == 0);
4979 __ test(eax, Immediate(((1 << kFailureTypeTagSize) - 1) << kFailureTagSize));
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00004980 __ j(zero, &retry, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00004981
4982 // Special handling of out of memory exceptions.
4983 __ cmp(eax, reinterpret_cast<int32_t>(Failure::OutOfMemoryException()));
4984 __ j(equal, throw_out_of_memory_exception);
4985
4986 // Retrieve the pending exception and clear the variable.
ricow@chromium.org65fae842010-08-25 15:26:24 +00004987 __ mov(eax, Operand::StaticVariable(pending_exception_address));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00004988 __ mov(edx, Immediate(masm->isolate()->factory()->the_hole_value()));
ricow@chromium.org65fae842010-08-25 15:26:24 +00004989 __ mov(Operand::StaticVariable(pending_exception_address), edx);
4990
4991 // Special handling of termination exceptions which are uncatchable
4992 // by javascript code.
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00004993 __ cmp(eax, masm->isolate()->factory()->termination_exception());
ricow@chromium.org65fae842010-08-25 15:26:24 +00004994 __ j(equal, throw_termination_exception);
4995
4996 // Handle normal exception.
4997 __ jmp(throw_normal_exception);
4998
4999 // Retry.
5000 __ bind(&retry);
5001}
5002
5003
ricow@chromium.org65fae842010-08-25 15:26:24 +00005004void CEntryStub::Generate(MacroAssembler* masm) {
5005 // eax: number of arguments including receiver
5006 // ebx: pointer to C function (C callee-saved)
5007 // ebp: frame pointer (restored after C call)
5008 // esp: stack pointer (restored after C call)
5009 // esi: current context (C callee-saved)
5010 // edi: JS function of the caller (C callee-saved)
5011
5012 // NOTE: Invocations of builtins may return failure objects instead
5013 // of a proper result. The builtin entry handles this by performing
5014 // a garbage collection and retrying the builtin (twice).
5015
5016 // Enter the exit frame that transitions from JavaScript to C++.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00005017 __ EnterExitFrame(save_doubles_ == kSaveFPRegs);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005018
5019 // eax: result parameter for PerformGC, if any (setup below)
5020 // ebx: pointer to builtin function (C callee-saved)
5021 // ebp: frame pointer (restored after C call)
5022 // esp: stack pointer (restored after C call)
5023 // edi: number of arguments including receiver (C callee-saved)
5024 // esi: argv pointer (C callee-saved)
5025
5026 Label throw_normal_exception;
5027 Label throw_termination_exception;
5028 Label throw_out_of_memory_exception;
5029
5030 // Call into the runtime system.
5031 GenerateCore(masm,
5032 &throw_normal_exception,
5033 &throw_termination_exception,
5034 &throw_out_of_memory_exception,
5035 false,
5036 false);
5037
5038 // Do space-specific GC and retry runtime call.
5039 GenerateCore(masm,
5040 &throw_normal_exception,
5041 &throw_termination_exception,
5042 &throw_out_of_memory_exception,
5043 true,
5044 false);
5045
5046 // Do full GC and retry runtime call one final time.
5047 Failure* failure = Failure::InternalError();
5048 __ mov(eax, Immediate(reinterpret_cast<int32_t>(failure)));
5049 GenerateCore(masm,
5050 &throw_normal_exception,
5051 &throw_termination_exception,
5052 &throw_out_of_memory_exception,
5053 true,
5054 true);
5055
5056 __ bind(&throw_out_of_memory_exception);
ulan@chromium.org65a89c22012-02-14 11:46:07 +00005057 // Set external caught exception to false.
5058 Isolate* isolate = masm->isolate();
5059 ExternalReference external_caught(Isolate::kExternalCaughtExceptionAddress,
5060 isolate);
5061 __ mov(Operand::StaticVariable(external_caught), Immediate(false));
5062
5063 // Set pending exception and eax to out of memory exception.
5064 ExternalReference pending_exception(Isolate::kPendingExceptionAddress,
5065 isolate);
5066 __ mov(eax, reinterpret_cast<int32_t>(Failure::OutOfMemoryException()));
5067 __ mov(Operand::StaticVariable(pending_exception), eax);
5068 // Fall through to the next label.
ricow@chromium.org65fae842010-08-25 15:26:24 +00005069
5070 __ bind(&throw_termination_exception);
ulan@chromium.org65a89c22012-02-14 11:46:07 +00005071 __ ThrowUncatchable(eax);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005072
5073 __ bind(&throw_normal_exception);
ulan@chromium.org65a89c22012-02-14 11:46:07 +00005074 __ Throw(eax);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005075}
5076
5077
5078void JSEntryStub::GenerateBody(MacroAssembler* masm, bool is_construct) {
jkummerow@chromium.org04e4f1e2011-11-14 13:36:17 +00005079 Label invoke, handler_entry, exit;
ricow@chromium.org65fae842010-08-25 15:26:24 +00005080 Label not_outermost_js, not_outermost_js_2;
ricow@chromium.org65fae842010-08-25 15:26:24 +00005081
erik.corry@gmail.comf2038fb2012-01-16 11:42:08 +00005082 // Set up frame.
ricow@chromium.org65fae842010-08-25 15:26:24 +00005083 __ push(ebp);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00005084 __ mov(ebp, esp);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005085
5086 // Push marker in two places.
5087 int marker = is_construct ? StackFrame::ENTRY_CONSTRUCT : StackFrame::ENTRY;
5088 __ push(Immediate(Smi::FromInt(marker))); // context slot
5089 __ push(Immediate(Smi::FromInt(marker))); // function slot
5090 // Save callee-saved registers (C calling conventions).
5091 __ push(edi);
5092 __ push(esi);
5093 __ push(ebx);
5094
5095 // Save copies of the top frame descriptor on the stack.
kmillikin@chromium.org83e16822011-09-13 08:21:47 +00005096 ExternalReference c_entry_fp(Isolate::kCEntryFPAddress, masm->isolate());
ricow@chromium.org65fae842010-08-25 15:26:24 +00005097 __ push(Operand::StaticVariable(c_entry_fp));
5098
ricow@chromium.org65fae842010-08-25 15:26:24 +00005099 // If this is the outermost JS call, set js_entry_sp value.
kmillikin@chromium.org83e16822011-09-13 08:21:47 +00005100 ExternalReference js_entry_sp(Isolate::kJSEntrySPAddress,
sgjesse@chromium.orgea88ce92011-03-23 11:19:56 +00005101 masm->isolate());
ricow@chromium.org65fae842010-08-25 15:26:24 +00005102 __ cmp(Operand::StaticVariable(js_entry_sp), Immediate(0));
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00005103 __ j(not_equal, &not_outermost_js, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005104 __ mov(Operand::StaticVariable(js_entry_sp), ebp);
kmillikin@chromium.orgc53e10d2011-05-18 09:12:58 +00005105 __ push(Immediate(Smi::FromInt(StackFrame::OUTERMOST_JSENTRY_FRAME)));
danno@chromium.org2c26cb12012-05-03 09:06:43 +00005106 __ jmp(&invoke, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005107 __ bind(&not_outermost_js);
kmillikin@chromium.orgc53e10d2011-05-18 09:12:58 +00005108 __ push(Immediate(Smi::FromInt(StackFrame::INNER_JSENTRY_FRAME)));
ricow@chromium.org65fae842010-08-25 15:26:24 +00005109
jkummerow@chromium.org04e4f1e2011-11-14 13:36:17 +00005110 // Jump to a faked try block that does the invoke, with a faked catch
5111 // block that sets the pending exception.
5112 __ jmp(&invoke);
5113 __ bind(&handler_entry);
5114 handler_offset_ = handler_entry.pos();
5115 // Caught exception: Store result (exception) in the pending exception
5116 // field in the JSEnv and return a failure sentinel.
kmillikin@chromium.org83e16822011-09-13 08:21:47 +00005117 ExternalReference pending_exception(Isolate::kPendingExceptionAddress,
sgjesse@chromium.orgea88ce92011-03-23 11:19:56 +00005118 masm->isolate());
ricow@chromium.org65fae842010-08-25 15:26:24 +00005119 __ mov(Operand::StaticVariable(pending_exception), eax);
5120 __ mov(eax, reinterpret_cast<int32_t>(Failure::Exception()));
5121 __ jmp(&exit);
5122
jkummerow@chromium.org04e4f1e2011-11-14 13:36:17 +00005123 // Invoke: Link this frame into the handler chain. There's only one
5124 // handler block in this code object, so its index is 0.
ricow@chromium.org65fae842010-08-25 15:26:24 +00005125 __ bind(&invoke);
yangguo@chromium.org78d1ad42012-02-09 13:53:47 +00005126 __ PushTryHandler(StackHandler::JS_ENTRY, 0);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005127
5128 // Clear any pending exceptions.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00005129 __ mov(edx, Immediate(masm->isolate()->factory()->the_hole_value()));
ricow@chromium.org65fae842010-08-25 15:26:24 +00005130 __ mov(Operand::StaticVariable(pending_exception), edx);
5131
5132 // Fake a receiver (NULL).
5133 __ push(Immediate(0)); // receiver
5134
jkummerow@chromium.org04e4f1e2011-11-14 13:36:17 +00005135 // Invoke the function by calling through JS entry trampoline builtin and
5136 // pop the faked function when we return. Notice that we cannot store a
5137 // reference to the trampoline code directly in this stub, because the
5138 // builtin stubs may not have been generated yet.
ricow@chromium.org65fae842010-08-25 15:26:24 +00005139 if (is_construct) {
jkummerow@chromium.org04e4f1e2011-11-14 13:36:17 +00005140 ExternalReference construct_entry(Builtins::kJSConstructEntryTrampoline,
5141 masm->isolate());
ricow@chromium.org65fae842010-08-25 15:26:24 +00005142 __ mov(edx, Immediate(construct_entry));
5143 } else {
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00005144 ExternalReference entry(Builtins::kJSEntryTrampoline,
sgjesse@chromium.orgea88ce92011-03-23 11:19:56 +00005145 masm->isolate());
ricow@chromium.org65fae842010-08-25 15:26:24 +00005146 __ mov(edx, Immediate(entry));
5147 }
5148 __ mov(edx, Operand(edx, 0)); // deref address
5149 __ lea(edx, FieldOperand(edx, Code::kHeaderSize));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00005150 __ call(edx);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005151
5152 // Unlink this frame from the handler chain.
kmillikin@chromium.orgc53e10d2011-05-18 09:12:58 +00005153 __ PopTryHandler();
ricow@chromium.org65fae842010-08-25 15:26:24 +00005154
kmillikin@chromium.orgc53e10d2011-05-18 09:12:58 +00005155 __ bind(&exit);
kmillikin@chromium.orgc53e10d2011-05-18 09:12:58 +00005156 // Check if the current stack frame is marked as the outermost JS frame.
5157 __ pop(ebx);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00005158 __ cmp(ebx, Immediate(Smi::FromInt(StackFrame::OUTERMOST_JSENTRY_FRAME)));
ricow@chromium.org65fae842010-08-25 15:26:24 +00005159 __ j(not_equal, &not_outermost_js_2);
5160 __ mov(Operand::StaticVariable(js_entry_sp), Immediate(0));
5161 __ bind(&not_outermost_js_2);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005162
5163 // Restore the top frame descriptor from the stack.
sgjesse@chromium.orgea88ce92011-03-23 11:19:56 +00005164 __ pop(Operand::StaticVariable(ExternalReference(
kmillikin@chromium.org83e16822011-09-13 08:21:47 +00005165 Isolate::kCEntryFPAddress,
sgjesse@chromium.orgea88ce92011-03-23 11:19:56 +00005166 masm->isolate())));
ricow@chromium.org65fae842010-08-25 15:26:24 +00005167
5168 // Restore callee-saved registers (C calling conventions).
5169 __ pop(ebx);
5170 __ pop(esi);
5171 __ pop(edi);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00005172 __ add(esp, Immediate(2 * kPointerSize)); // remove markers
ricow@chromium.org65fae842010-08-25 15:26:24 +00005173
5174 // Restore frame pointer and return.
5175 __ pop(ebp);
5176 __ ret(0);
5177}
5178
5179
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005180// Generate stub code for instanceof.
5181// This code can patch a call site inlined cache of the instance of check,
5182// which looks like this.
5183//
5184// 81 ff XX XX XX XX cmp edi, <the hole, patched to a map>
5185// 75 0a jne <some near label>
5186// b8 XX XX XX XX mov eax, <the hole, patched to either true or false>
5187//
5188// If call site patching is requested the stack will have the delta from the
5189// return address to the cmp instruction just below the return address. This
5190// also means that call site patching can only take place with arguments in
5191// registers. TOS looks like this when call site patching is requested
5192//
5193// esp[0] : return address
5194// esp[4] : delta from return address to cmp instruction
5195//
ricow@chromium.org65fae842010-08-25 15:26:24 +00005196void InstanceofStub::Generate(MacroAssembler* masm) {
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005197 // Call site inlining and patching implies arguments in registers.
5198 ASSERT(HasArgsInRegisters() || !HasCallSiteInlineCheck());
5199
ager@chromium.org5f0c45f2010-12-17 08:51:21 +00005200 // Fixed register usage throughout the stub.
5201 Register object = eax; // Object (lhs).
5202 Register map = ebx; // Map of the object.
5203 Register function = edx; // Function (rhs).
5204 Register prototype = edi; // Prototype of the function.
5205 Register scratch = ecx;
5206
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005207 // Constants describing the call site code to patch.
5208 static const int kDeltaToCmpImmediate = 2;
5209 static const int kDeltaToMov = 8;
5210 static const int kDeltaToMovImmediate = 9;
erik.corry@gmail.comf2038fb2012-01-16 11:42:08 +00005211 static const int8_t kCmpEdiOperandByte1 = BitCast<int8_t, uint8_t>(0x3b);
5212 static const int8_t kCmpEdiOperandByte2 = BitCast<int8_t, uint8_t>(0x3d);
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005213 static const int8_t kMovEaxImmediateByte = BitCast<int8_t, uint8_t>(0xb8);
5214
erik.corry@gmail.com394dbcf2011-10-27 07:38:48 +00005215 ExternalReference roots_array_start =
5216 ExternalReference::roots_array_start(masm->isolate());
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005217
5218 ASSERT_EQ(object.code(), InstanceofStub::left().code());
5219 ASSERT_EQ(function.code(), InstanceofStub::right().code());
5220
ager@chromium.org5f0c45f2010-12-17 08:51:21 +00005221 // Get the object and function - they are always both needed.
5222 Label slow, not_js_object;
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005223 if (!HasArgsInRegisters()) {
ager@chromium.org5f0c45f2010-12-17 08:51:21 +00005224 __ mov(object, Operand(esp, 2 * kPointerSize));
5225 __ mov(function, Operand(esp, 1 * kPointerSize));
5226 }
ricow@chromium.org65fae842010-08-25 15:26:24 +00005227
5228 // Check that the left hand is a JS object.
whesse@chromium.org7b260152011-06-20 15:33:18 +00005229 __ JumpIfSmi(object, &not_js_object);
ager@chromium.org5f0c45f2010-12-17 08:51:21 +00005230 __ IsObjectJSObjectType(object, map, scratch, &not_js_object);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005231
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005232 // If there is a call site cache don't look in the global cache, but do the
5233 // real lookup and update the call site cache.
5234 if (!HasCallSiteInlineCheck()) {
5235 // Look up the function and the map in the instanceof cache.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00005236 Label miss;
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005237 __ mov(scratch, Immediate(Heap::kInstanceofCacheFunctionRootIndex));
erik.corry@gmail.com394dbcf2011-10-27 07:38:48 +00005238 __ cmp(function, Operand::StaticArray(scratch,
5239 times_pointer_size,
5240 roots_array_start));
karlklose@chromium.org83a47282011-05-11 11:54:09 +00005241 __ j(not_equal, &miss, Label::kNear);
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005242 __ mov(scratch, Immediate(Heap::kInstanceofCacheMapRootIndex));
5243 __ cmp(map, Operand::StaticArray(
erik.corry@gmail.com394dbcf2011-10-27 07:38:48 +00005244 scratch, times_pointer_size, roots_array_start));
karlklose@chromium.org83a47282011-05-11 11:54:09 +00005245 __ j(not_equal, &miss, Label::kNear);
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005246 __ mov(scratch, Immediate(Heap::kInstanceofCacheAnswerRootIndex));
5247 __ mov(eax, Operand::StaticArray(
erik.corry@gmail.com394dbcf2011-10-27 07:38:48 +00005248 scratch, times_pointer_size, roots_array_start));
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005249 __ ret((HasArgsInRegisters() ? 0 : 2) * kPointerSize);
5250 __ bind(&miss);
5251 }
ricow@chromium.org65fae842010-08-25 15:26:24 +00005252
ager@chromium.org5f0c45f2010-12-17 08:51:21 +00005253 // Get the prototype of the function.
erik.corry@gmail.com394dbcf2011-10-27 07:38:48 +00005254 __ TryGetFunctionPrototype(function, prototype, scratch, &slow, true);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005255
5256 // Check that the function prototype is a JS object.
whesse@chromium.org7b260152011-06-20 15:33:18 +00005257 __ JumpIfSmi(prototype, &slow);
ager@chromium.org5f0c45f2010-12-17 08:51:21 +00005258 __ IsObjectJSObjectType(prototype, scratch, scratch, &slow);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005259
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005260 // Update the global instanceof or call site inlined cache with the current
5261 // map and function. The cached answer will be set when it is known below.
5262 if (!HasCallSiteInlineCheck()) {
ager@chromium.org5f0c45f2010-12-17 08:51:21 +00005263 __ mov(scratch, Immediate(Heap::kInstanceofCacheMapRootIndex));
erik.corry@gmail.com394dbcf2011-10-27 07:38:48 +00005264 __ mov(Operand::StaticArray(scratch, times_pointer_size, roots_array_start),
5265 map);
ager@chromium.org5f0c45f2010-12-17 08:51:21 +00005266 __ mov(scratch, Immediate(Heap::kInstanceofCacheFunctionRootIndex));
erik.corry@gmail.com394dbcf2011-10-27 07:38:48 +00005267 __ mov(Operand::StaticArray(scratch, times_pointer_size, roots_array_start),
ager@chromium.org5f0c45f2010-12-17 08:51:21 +00005268 function);
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005269 } else {
5270 // The constants for the code patching are based on no push instructions
5271 // at the call site.
5272 ASSERT(HasArgsInRegisters());
5273 // Get return address and delta to inlined map check.
5274 __ mov(scratch, Operand(esp, 0 * kPointerSize));
5275 __ sub(scratch, Operand(esp, 1 * kPointerSize));
5276 if (FLAG_debug_code) {
erik.corry@gmail.comf2038fb2012-01-16 11:42:08 +00005277 __ cmpb(Operand(scratch, 0), kCmpEdiOperandByte1);
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005278 __ Assert(equal, "InstanceofStub unexpected call site cache (cmp 1)");
erik.corry@gmail.comf2038fb2012-01-16 11:42:08 +00005279 __ cmpb(Operand(scratch, 1), kCmpEdiOperandByte2);
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005280 __ Assert(equal, "InstanceofStub unexpected call site cache (cmp 2)");
5281 }
erik.corry@gmail.comf2038fb2012-01-16 11:42:08 +00005282 __ mov(scratch, Operand(scratch, kDeltaToCmpImmediate));
5283 __ mov(Operand(scratch, 0), map);
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005284 }
ricow@chromium.org65fae842010-08-25 15:26:24 +00005285
ager@chromium.org5f0c45f2010-12-17 08:51:21 +00005286 // Loop through the prototype chain of the object looking for the function
5287 // prototype.
5288 __ mov(scratch, FieldOperand(map, Map::kPrototypeOffset));
karlklose@chromium.org83a47282011-05-11 11:54:09 +00005289 Label loop, is_instance, is_not_instance;
ricow@chromium.org65fae842010-08-25 15:26:24 +00005290 __ bind(&loop);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00005291 __ cmp(scratch, prototype);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00005292 __ j(equal, &is_instance, Label::kNear);
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00005293 Factory* factory = masm->isolate()->factory();
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00005294 __ cmp(scratch, Immediate(factory->null_value()));
karlklose@chromium.org83a47282011-05-11 11:54:09 +00005295 __ j(equal, &is_not_instance, Label::kNear);
ager@chromium.org5f0c45f2010-12-17 08:51:21 +00005296 __ mov(scratch, FieldOperand(scratch, HeapObject::kMapOffset));
5297 __ mov(scratch, FieldOperand(scratch, Map::kPrototypeOffset));
ricow@chromium.org65fae842010-08-25 15:26:24 +00005298 __ jmp(&loop);
5299
5300 __ bind(&is_instance);
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005301 if (!HasCallSiteInlineCheck()) {
5302 __ Set(eax, Immediate(0));
5303 __ mov(scratch, Immediate(Heap::kInstanceofCacheAnswerRootIndex));
5304 __ mov(Operand::StaticArray(scratch,
erik.corry@gmail.com394dbcf2011-10-27 07:38:48 +00005305 times_pointer_size, roots_array_start), eax);
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005306 } else {
5307 // Get return address and delta to inlined map check.
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00005308 __ mov(eax, factory->true_value());
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005309 __ mov(scratch, Operand(esp, 0 * kPointerSize));
5310 __ sub(scratch, Operand(esp, 1 * kPointerSize));
5311 if (FLAG_debug_code) {
5312 __ cmpb(Operand(scratch, kDeltaToMov), kMovEaxImmediateByte);
5313 __ Assert(equal, "InstanceofStub unexpected call site cache (mov)");
5314 }
5315 __ mov(Operand(scratch, kDeltaToMovImmediate), eax);
5316 if (!ReturnTrueFalseObject()) {
5317 __ Set(eax, Immediate(0));
5318 }
5319 }
5320 __ ret((HasArgsInRegisters() ? 0 : 2) * kPointerSize);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005321
5322 __ bind(&is_not_instance);
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005323 if (!HasCallSiteInlineCheck()) {
5324 __ Set(eax, Immediate(Smi::FromInt(1)));
5325 __ mov(scratch, Immediate(Heap::kInstanceofCacheAnswerRootIndex));
5326 __ mov(Operand::StaticArray(
erik.corry@gmail.com394dbcf2011-10-27 07:38:48 +00005327 scratch, times_pointer_size, roots_array_start), eax);
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005328 } else {
5329 // Get return address and delta to inlined map check.
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00005330 __ mov(eax, factory->false_value());
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005331 __ mov(scratch, Operand(esp, 0 * kPointerSize));
5332 __ sub(scratch, Operand(esp, 1 * kPointerSize));
5333 if (FLAG_debug_code) {
5334 __ cmpb(Operand(scratch, kDeltaToMov), kMovEaxImmediateByte);
5335 __ Assert(equal, "InstanceofStub unexpected call site cache (mov)");
5336 }
5337 __ mov(Operand(scratch, kDeltaToMovImmediate), eax);
5338 if (!ReturnTrueFalseObject()) {
5339 __ Set(eax, Immediate(Smi::FromInt(1)));
5340 }
5341 }
5342 __ ret((HasArgsInRegisters() ? 0 : 2) * kPointerSize);
ager@chromium.org5f0c45f2010-12-17 08:51:21 +00005343
5344 Label object_not_null, object_not_null_or_smi;
5345 __ bind(&not_js_object);
5346 // Before null, smi and string value checks, check that the rhs is a function
5347 // as for a non-function rhs an exception needs to be thrown.
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00005348 __ JumpIfSmi(function, &slow, Label::kNear);
ager@chromium.org5f0c45f2010-12-17 08:51:21 +00005349 __ CmpObjectType(function, JS_FUNCTION_TYPE, scratch);
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00005350 __ j(not_equal, &slow, Label::kNear);
ager@chromium.org5f0c45f2010-12-17 08:51:21 +00005351
5352 // Null is not instance of anything.
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00005353 __ cmp(object, factory->null_value());
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00005354 __ j(not_equal, &object_not_null, Label::kNear);
ager@chromium.org5f0c45f2010-12-17 08:51:21 +00005355 __ Set(eax, Immediate(Smi::FromInt(1)));
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005356 __ ret((HasArgsInRegisters() ? 0 : 2) * kPointerSize);
ager@chromium.org5f0c45f2010-12-17 08:51:21 +00005357
5358 __ bind(&object_not_null);
5359 // Smi values is not instance of anything.
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00005360 __ JumpIfNotSmi(object, &object_not_null_or_smi, Label::kNear);
ager@chromium.org5f0c45f2010-12-17 08:51:21 +00005361 __ Set(eax, Immediate(Smi::FromInt(1)));
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005362 __ ret((HasArgsInRegisters() ? 0 : 2) * kPointerSize);
ager@chromium.org5f0c45f2010-12-17 08:51:21 +00005363
5364 __ bind(&object_not_null_or_smi);
5365 // String values is not instance of anything.
5366 Condition is_string = masm->IsObjectStringType(object, scratch, scratch);
ricow@chromium.org4668a2c2011-08-29 10:41:00 +00005367 __ j(NegateCondition(is_string), &slow, Label::kNear);
ager@chromium.org5f0c45f2010-12-17 08:51:21 +00005368 __ Set(eax, Immediate(Smi::FromInt(1)));
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005369 __ ret((HasArgsInRegisters() ? 0 : 2) * kPointerSize);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005370
5371 // Slow-case: Go through the JavaScript implementation.
5372 __ bind(&slow);
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005373 if (!ReturnTrueFalseObject()) {
5374 // Tail call the builtin which returns 0 or 1.
5375 if (HasArgsInRegisters()) {
5376 // Push arguments below return address.
5377 __ pop(scratch);
5378 __ push(object);
5379 __ push(function);
5380 __ push(scratch);
5381 }
5382 __ InvokeBuiltin(Builtins::INSTANCE_OF, JUMP_FUNCTION);
5383 } else {
5384 // Call the builtin and convert 0/1 to true/false.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00005385 {
5386 FrameScope scope(masm, StackFrame::INTERNAL);
5387 __ push(object);
5388 __ push(function);
5389 __ InvokeBuiltin(Builtins::INSTANCE_OF, CALL_FUNCTION);
5390 }
karlklose@chromium.org83a47282011-05-11 11:54:09 +00005391 Label true_value, done;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00005392 __ test(eax, eax);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00005393 __ j(zero, &true_value, Label::kNear);
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00005394 __ mov(eax, factory->false_value());
karlklose@chromium.org83a47282011-05-11 11:54:09 +00005395 __ jmp(&done, Label::kNear);
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005396 __ bind(&true_value);
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00005397 __ mov(eax, factory->true_value());
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005398 __ bind(&done);
5399 __ ret((HasArgsInRegisters() ? 0 : 2) * kPointerSize);
ager@chromium.org5f0c45f2010-12-17 08:51:21 +00005400 }
ricow@chromium.org65fae842010-08-25 15:26:24 +00005401}
5402
5403
kmillikin@chromium.orgd2c22f02011-01-10 08:15:37 +00005404Register InstanceofStub::left() { return eax; }
5405
5406
5407Register InstanceofStub::right() { return edx; }
5408
5409
ricow@chromium.org65fae842010-08-25 15:26:24 +00005410int CompareStub::MinorKey() {
5411 // Encode the three parameters in a unique 16 bit value. To avoid duplicate
5412 // stubs the never NaN NaN condition is only taken into account if the
5413 // condition is equals.
5414 ASSERT(static_cast<unsigned>(cc_) < (1 << 12));
5415 ASSERT(lhs_.is(no_reg) && rhs_.is(no_reg));
5416 return ConditionField::encode(static_cast<unsigned>(cc_))
5417 | RegisterField::encode(false) // lhs_ and rhs_ are not used
5418 | StrictField::encode(strict_)
5419 | NeverNanNanField::encode(cc_ == equal ? never_nan_nan_ : false)
erik.corry@gmail.comd88afa22010-09-15 12:33:05 +00005420 | IncludeNumberCompareField::encode(include_number_compare_)
5421 | IncludeSmiCompareField::encode(include_smi_compare_);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005422}
5423
5424
5425// Unfortunately you have to run without snapshots to see most of these
5426// names in the profile since most compare stubs end up in the snapshot.
whesse@chromium.org030d38e2011-07-13 13:23:34 +00005427void CompareStub::PrintName(StringStream* stream) {
ricow@chromium.org65fae842010-08-25 15:26:24 +00005428 ASSERT(lhs_.is(no_reg) && rhs_.is(no_reg));
ricow@chromium.org65fae842010-08-25 15:26:24 +00005429 const char* cc_name;
5430 switch (cc_) {
5431 case less: cc_name = "LT"; break;
5432 case greater: cc_name = "GT"; break;
5433 case less_equal: cc_name = "LE"; break;
5434 case greater_equal: cc_name = "GE"; break;
5435 case equal: cc_name = "EQ"; break;
5436 case not_equal: cc_name = "NE"; break;
5437 default: cc_name = "UnknownCondition"; break;
5438 }
whesse@chromium.org030d38e2011-07-13 13:23:34 +00005439 bool is_equality = cc_ == equal || cc_ == not_equal;
5440 stream->Add("CompareStub_%s", cc_name);
5441 if (strict_ && is_equality) stream->Add("_STRICT");
5442 if (never_nan_nan_ && is_equality) stream->Add("_NO_NAN");
5443 if (!include_number_compare_) stream->Add("_NO_NUMBER");
5444 if (!include_smi_compare_) stream->Add("_NO_SMI");
ricow@chromium.org65fae842010-08-25 15:26:24 +00005445}
5446
5447
5448// -------------------------------------------------------------------------
5449// StringCharCodeAtGenerator
5450
5451void StringCharCodeAtGenerator::GenerateFast(MacroAssembler* masm) {
ricow@chromium.org65fae842010-08-25 15:26:24 +00005452 // If the receiver is a smi trigger the non-string case.
5453 STATIC_ASSERT(kSmiTag == 0);
whesse@chromium.org7b260152011-06-20 15:33:18 +00005454 __ JumpIfSmi(object_, receiver_not_string_);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005455
5456 // Fetch the instance type of the receiver into result register.
5457 __ mov(result_, FieldOperand(object_, HeapObject::kMapOffset));
5458 __ movzx_b(result_, FieldOperand(result_, Map::kInstanceTypeOffset));
5459 // If the receiver is not a string trigger the non-string case.
5460 __ test(result_, Immediate(kIsNotStringMask));
5461 __ j(not_zero, receiver_not_string_);
5462
5463 // If the index is non-smi trigger the non-smi case.
5464 STATIC_ASSERT(kSmiTag == 0);
whesse@chromium.org7b260152011-06-20 15:33:18 +00005465 __ JumpIfNotSmi(index_, &index_not_smi_);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005466 __ bind(&got_smi_index_);
5467
5468 // Check for index out of range.
danno@chromium.orgc612e022011-11-10 11:38:15 +00005469 __ cmp(index_, FieldOperand(object_, String::kLengthOffset));
ricow@chromium.org65fae842010-08-25 15:26:24 +00005470 __ j(above_equal, index_out_of_range_);
5471
danno@chromium.orgc612e022011-11-10 11:38:15 +00005472 __ SmiUntag(index_);
erikcorry0ad885c2011-11-21 13:51:57 +00005473
5474 Factory* factory = masm->isolate()->factory();
5475 StringCharLoadGenerator::Generate(
5476 masm, factory, object_, index_, result_, &call_runtime_);
5477
ricow@chromium.org65fae842010-08-25 15:26:24 +00005478 __ SmiTag(result_);
5479 __ bind(&exit_);
5480}
5481
5482
5483void StringCharCodeAtGenerator::GenerateSlow(
jkummerow@chromium.orgc3b37122011-11-07 10:14:12 +00005484 MacroAssembler* masm,
5485 const RuntimeCallHelper& call_helper) {
ricow@chromium.org65fae842010-08-25 15:26:24 +00005486 __ Abort("Unexpected fallthrough to CharCodeAt slow case");
5487
5488 // Index is not a smi.
5489 __ bind(&index_not_smi_);
5490 // If index is a heap number, try converting it to an integer.
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00005491 __ CheckMap(index_,
5492 masm->isolate()->factory()->heap_number_map(),
5493 index_not_number_,
kmillikin@chromium.orgc53e10d2011-05-18 09:12:58 +00005494 DONT_DO_SMI_CHECK);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005495 call_helper.BeforeCall(masm);
5496 __ push(object_);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005497 __ push(index_); // Consumed by runtime conversion function.
5498 if (index_flags_ == STRING_INDEX_IS_NUMBER) {
5499 __ CallRuntime(Runtime::kNumberToIntegerMapMinusZero, 1);
5500 } else {
5501 ASSERT(index_flags_ == STRING_INDEX_IS_ARRAY_INDEX);
5502 // NumberToSmi discards numbers that are not exact integers.
5503 __ CallRuntime(Runtime::kNumberToSmi, 1);
5504 }
danno@chromium.orgc612e022011-11-10 11:38:15 +00005505 if (!index_.is(eax)) {
ricow@chromium.org65fae842010-08-25 15:26:24 +00005506 // Save the conversion result before the pop instructions below
5507 // have a chance to overwrite it.
danno@chromium.orgc612e022011-11-10 11:38:15 +00005508 __ mov(index_, eax);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005509 }
ricow@chromium.org65fae842010-08-25 15:26:24 +00005510 __ pop(object_);
5511 // Reload the instance type.
5512 __ mov(result_, FieldOperand(object_, HeapObject::kMapOffset));
5513 __ movzx_b(result_, FieldOperand(result_, Map::kInstanceTypeOffset));
5514 call_helper.AfterCall(masm);
5515 // If index is still not a smi, it must be out of range.
5516 STATIC_ASSERT(kSmiTag == 0);
danno@chromium.orgc612e022011-11-10 11:38:15 +00005517 __ JumpIfNotSmi(index_, index_out_of_range_);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005518 // Otherwise, return to the fast path.
5519 __ jmp(&got_smi_index_);
5520
5521 // Call runtime. We get here when the receiver is a string and the
5522 // index is a number, but the code of getting the actual character
5523 // is too complex (e.g., when the string needs to be flattened).
5524 __ bind(&call_runtime_);
5525 call_helper.BeforeCall(masm);
5526 __ push(object_);
erikcorry0ad885c2011-11-21 13:51:57 +00005527 __ SmiTag(index_);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005528 __ push(index_);
5529 __ CallRuntime(Runtime::kStringCharCodeAt, 2);
5530 if (!result_.is(eax)) {
5531 __ mov(result_, eax);
5532 }
5533 call_helper.AfterCall(masm);
5534 __ jmp(&exit_);
5535
5536 __ Abort("Unexpected fallthrough from CharCodeAt slow case");
5537}
5538
5539
5540// -------------------------------------------------------------------------
5541// StringCharFromCodeGenerator
5542
5543void StringCharFromCodeGenerator::GenerateFast(MacroAssembler* masm) {
5544 // Fast case of Heap::LookupSingleCharacterStringFromCode.
5545 STATIC_ASSERT(kSmiTag == 0);
5546 STATIC_ASSERT(kSmiShiftSize == 0);
5547 ASSERT(IsPowerOf2(String::kMaxAsciiCharCode + 1));
5548 __ test(code_,
5549 Immediate(kSmiTagMask |
5550 ((~String::kMaxAsciiCharCode) << kSmiTagSize)));
vegorov@chromium.org7304bca2011-05-16 12:14:13 +00005551 __ j(not_zero, &slow_case_);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005552
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00005553 Factory* factory = masm->isolate()->factory();
5554 __ Set(result_, Immediate(factory->single_character_string_cache()));
ricow@chromium.org65fae842010-08-25 15:26:24 +00005555 STATIC_ASSERT(kSmiTag == 0);
5556 STATIC_ASSERT(kSmiTagSize == 1);
5557 STATIC_ASSERT(kSmiShiftSize == 0);
ulan@chromium.org2efb9002012-01-19 15:36:35 +00005558 // At this point code register contains smi tagged ASCII char code.
ricow@chromium.org65fae842010-08-25 15:26:24 +00005559 __ mov(result_, FieldOperand(result_,
5560 code_, times_half_pointer_size,
5561 FixedArray::kHeaderSize));
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00005562 __ cmp(result_, factory->undefined_value());
vegorov@chromium.org7304bca2011-05-16 12:14:13 +00005563 __ j(equal, &slow_case_);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005564 __ bind(&exit_);
5565}
5566
5567
5568void StringCharFromCodeGenerator::GenerateSlow(
jkummerow@chromium.orgc3b37122011-11-07 10:14:12 +00005569 MacroAssembler* masm,
5570 const RuntimeCallHelper& call_helper) {
ricow@chromium.org65fae842010-08-25 15:26:24 +00005571 __ Abort("Unexpected fallthrough to CharFromCode slow case");
5572
5573 __ bind(&slow_case_);
5574 call_helper.BeforeCall(masm);
5575 __ push(code_);
5576 __ CallRuntime(Runtime::kCharFromCode, 1);
5577 if (!result_.is(eax)) {
5578 __ mov(result_, eax);
5579 }
5580 call_helper.AfterCall(masm);
5581 __ jmp(&exit_);
5582
5583 __ Abort("Unexpected fallthrough from CharFromCode slow case");
5584}
5585
5586
5587// -------------------------------------------------------------------------
5588// StringCharAtGenerator
5589
5590void StringCharAtGenerator::GenerateFast(MacroAssembler* masm) {
5591 char_code_at_generator_.GenerateFast(masm);
5592 char_from_code_generator_.GenerateFast(masm);
5593}
5594
5595
5596void StringCharAtGenerator::GenerateSlow(
jkummerow@chromium.orgc3b37122011-11-07 10:14:12 +00005597 MacroAssembler* masm,
5598 const RuntimeCallHelper& call_helper) {
ricow@chromium.org65fae842010-08-25 15:26:24 +00005599 char_code_at_generator_.GenerateSlow(masm, call_helper);
5600 char_from_code_generator_.GenerateSlow(masm, call_helper);
5601}
5602
5603
5604void StringAddStub::Generate(MacroAssembler* masm) {
ricow@chromium.org7ad65222011-12-19 12:13:11 +00005605 Label call_runtime, call_builtin;
kmillikin@chromium.org3cdd9e12010-09-06 11:39:48 +00005606 Builtins::JavaScript builtin_id = Builtins::ADD;
ricow@chromium.org65fae842010-08-25 15:26:24 +00005607
5608 // Load the two arguments.
5609 __ mov(eax, Operand(esp, 2 * kPointerSize)); // First argument.
5610 __ mov(edx, Operand(esp, 1 * kPointerSize)); // Second argument.
5611
5612 // Make sure that both arguments are strings if not known in advance.
kmillikin@chromium.org3cdd9e12010-09-06 11:39:48 +00005613 if (flags_ == NO_STRING_ADD_FLAGS) {
ricow@chromium.org7ad65222011-12-19 12:13:11 +00005614 __ JumpIfSmi(eax, &call_runtime);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005615 __ CmpObjectType(eax, FIRST_NONSTRING_TYPE, ebx);
ricow@chromium.org7ad65222011-12-19 12:13:11 +00005616 __ j(above_equal, &call_runtime);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005617
5618 // First argument is a a string, test second.
ricow@chromium.org7ad65222011-12-19 12:13:11 +00005619 __ JumpIfSmi(edx, &call_runtime);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005620 __ CmpObjectType(edx, FIRST_NONSTRING_TYPE, ebx);
ricow@chromium.org7ad65222011-12-19 12:13:11 +00005621 __ j(above_equal, &call_runtime);
kmillikin@chromium.org3cdd9e12010-09-06 11:39:48 +00005622 } else {
5623 // Here at least one of the arguments is definitely a string.
5624 // We convert the one that is not known to be a string.
5625 if ((flags_ & NO_STRING_CHECK_LEFT_IN_STUB) == 0) {
5626 ASSERT((flags_ & NO_STRING_CHECK_RIGHT_IN_STUB) != 0);
5627 GenerateConvertArgument(masm, 2 * kPointerSize, eax, ebx, ecx, edi,
5628 &call_builtin);
5629 builtin_id = Builtins::STRING_ADD_RIGHT;
5630 } else if ((flags_ & NO_STRING_CHECK_RIGHT_IN_STUB) == 0) {
5631 ASSERT((flags_ & NO_STRING_CHECK_LEFT_IN_STUB) != 0);
5632 GenerateConvertArgument(masm, 1 * kPointerSize, edx, ebx, ecx, edi,
5633 &call_builtin);
5634 builtin_id = Builtins::STRING_ADD_LEFT;
5635 }
ricow@chromium.org65fae842010-08-25 15:26:24 +00005636 }
5637
5638 // Both arguments are strings.
5639 // eax: first string
5640 // edx: second string
5641 // Check if either of the strings are empty. In that case return the other.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00005642 Label second_not_zero_length, both_not_zero_length;
ricow@chromium.org65fae842010-08-25 15:26:24 +00005643 __ mov(ecx, FieldOperand(edx, String::kLengthOffset));
5644 STATIC_ASSERT(kSmiTag == 0);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00005645 __ test(ecx, ecx);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00005646 __ j(not_zero, &second_not_zero_length, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005647 // Second string is empty, result is first string which is already in eax.
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00005648 Counters* counters = masm->isolate()->counters();
5649 __ IncrementCounter(counters->string_add_native(), 1);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005650 __ ret(2 * kPointerSize);
5651 __ bind(&second_not_zero_length);
5652 __ mov(ebx, FieldOperand(eax, String::kLengthOffset));
5653 STATIC_ASSERT(kSmiTag == 0);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00005654 __ test(ebx, ebx);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00005655 __ j(not_zero, &both_not_zero_length, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005656 // First string is empty, result is second string which is in edx.
5657 __ mov(eax, edx);
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00005658 __ IncrementCounter(counters->string_add_native(), 1);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005659 __ ret(2 * kPointerSize);
5660
5661 // Both strings are non-empty.
5662 // eax: first string
5663 // ebx: length of first string as a smi
5664 // ecx: length of second string as a smi
5665 // edx: second string
5666 // Look at the length of the result of adding the two strings.
5667 Label string_add_flat_result, longer_than_two;
5668 __ bind(&both_not_zero_length);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00005669 __ add(ebx, ecx);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005670 STATIC_ASSERT(Smi::kMaxValue == String::kMaxLength);
5671 // Handle exceptionally long strings in the runtime system.
ricow@chromium.org7ad65222011-12-19 12:13:11 +00005672 __ j(overflow, &call_runtime);
ricow@chromium.orgbadaffc2011-03-17 12:15:27 +00005673 // Use the symbol table when adding two one character strings, as it
5674 // helps later optimizations to return a symbol here.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00005675 __ cmp(ebx, Immediate(Smi::FromInt(2)));
ricow@chromium.org65fae842010-08-25 15:26:24 +00005676 __ j(not_equal, &longer_than_two);
5677
ulan@chromium.org2efb9002012-01-19 15:36:35 +00005678 // Check that both strings are non-external ASCII strings.
ricow@chromium.org7ad65222011-12-19 12:13:11 +00005679 __ JumpIfNotBothSequentialAsciiStrings(eax, edx, ebx, ecx, &call_runtime);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005680
kmillikin@chromium.org3cdd9e12010-09-06 11:39:48 +00005681 // Get the two characters forming the new string.
ricow@chromium.org65fae842010-08-25 15:26:24 +00005682 __ movzx_b(ebx, FieldOperand(eax, SeqAsciiString::kHeaderSize));
5683 __ movzx_b(ecx, FieldOperand(edx, SeqAsciiString::kHeaderSize));
5684
5685 // Try to lookup two character string in symbol table. If it is not found
5686 // just allocate a new one.
kmillikin@chromium.org3cdd9e12010-09-06 11:39:48 +00005687 Label make_two_character_string, make_two_character_string_no_reload;
ricow@chromium.org65fae842010-08-25 15:26:24 +00005688 StringHelper::GenerateTwoCharacterSymbolTableProbe(
kmillikin@chromium.org3cdd9e12010-09-06 11:39:48 +00005689 masm, ebx, ecx, eax, edx, edi,
5690 &make_two_character_string_no_reload, &make_two_character_string);
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00005691 __ IncrementCounter(counters->string_add_native(), 1);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005692 __ ret(2 * kPointerSize);
5693
kmillikin@chromium.org3cdd9e12010-09-06 11:39:48 +00005694 // Allocate a two character string.
ricow@chromium.org65fae842010-08-25 15:26:24 +00005695 __ bind(&make_two_character_string);
kmillikin@chromium.org3cdd9e12010-09-06 11:39:48 +00005696 // Reload the arguments.
5697 __ mov(eax, Operand(esp, 2 * kPointerSize)); // First argument.
5698 __ mov(edx, Operand(esp, 1 * kPointerSize)); // Second argument.
5699 // Get the two characters forming the new string.
5700 __ movzx_b(ebx, FieldOperand(eax, SeqAsciiString::kHeaderSize));
5701 __ movzx_b(ecx, FieldOperand(edx, SeqAsciiString::kHeaderSize));
5702 __ bind(&make_two_character_string_no_reload);
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00005703 __ IncrementCounter(counters->string_add_make_two_char(), 1);
ricow@chromium.org7ad65222011-12-19 12:13:11 +00005704 __ AllocateAsciiString(eax, 2, edi, edx, &call_runtime);
kmillikin@chromium.org3cdd9e12010-09-06 11:39:48 +00005705 // Pack both characters in ebx.
5706 __ shl(ecx, kBitsPerByte);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00005707 __ or_(ebx, ecx);
kmillikin@chromium.org3cdd9e12010-09-06 11:39:48 +00005708 // Set the characters in the new string.
5709 __ mov_w(FieldOperand(eax, SeqAsciiString::kHeaderSize), ebx);
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00005710 __ IncrementCounter(counters->string_add_native(), 1);
kmillikin@chromium.org3cdd9e12010-09-06 11:39:48 +00005711 __ ret(2 * kPointerSize);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005712
5713 __ bind(&longer_than_two);
5714 // Check if resulting string will be flat.
ulan@chromium.org2efb9002012-01-19 15:36:35 +00005715 __ cmp(ebx, Immediate(Smi::FromInt(ConsString::kMinLength)));
ricow@chromium.org65fae842010-08-25 15:26:24 +00005716 __ j(below, &string_add_flat_result);
5717
5718 // If result is not supposed to be flat allocate a cons string object. If both
ulan@chromium.org2efb9002012-01-19 15:36:35 +00005719 // strings are ASCII the result is an ASCII cons string.
ricow@chromium.org65fae842010-08-25 15:26:24 +00005720 Label non_ascii, allocated, ascii_data;
5721 __ mov(edi, FieldOperand(eax, HeapObject::kMapOffset));
5722 __ movzx_b(ecx, FieldOperand(edi, Map::kInstanceTypeOffset));
5723 __ mov(edi, FieldOperand(edx, HeapObject::kMapOffset));
5724 __ movzx_b(edi, FieldOperand(edi, Map::kInstanceTypeOffset));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00005725 __ and_(ecx, edi);
fschneider@chromium.org1805e212011-09-05 10:49:12 +00005726 STATIC_ASSERT((kStringEncodingMask & kAsciiStringTag) != 0);
5727 STATIC_ASSERT((kStringEncodingMask & kTwoByteStringTag) == 0);
5728 __ test(ecx, Immediate(kStringEncodingMask));
ricow@chromium.org65fae842010-08-25 15:26:24 +00005729 __ j(zero, &non_ascii);
5730 __ bind(&ascii_data);
ulan@chromium.org2efb9002012-01-19 15:36:35 +00005731 // Allocate an ASCII cons string.
ricow@chromium.org7ad65222011-12-19 12:13:11 +00005732 __ AllocateAsciiConsString(ecx, edi, no_reg, &call_runtime);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005733 __ bind(&allocated);
5734 // Fill the fields of the cons string.
svenpanne@chromium.orgc859c4f2012-10-15 11:51:39 +00005735 __ AssertSmi(ebx);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005736 __ mov(FieldOperand(ecx, ConsString::kLengthOffset), ebx);
5737 __ mov(FieldOperand(ecx, ConsString::kHashFieldOffset),
5738 Immediate(String::kEmptyHashField));
5739 __ mov(FieldOperand(ecx, ConsString::kFirstOffset), eax);
5740 __ mov(FieldOperand(ecx, ConsString::kSecondOffset), edx);
5741 __ mov(eax, ecx);
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00005742 __ IncrementCounter(counters->string_add_native(), 1);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005743 __ ret(2 * kPointerSize);
5744 __ bind(&non_ascii);
5745 // At least one of the strings is two-byte. Check whether it happens
ulan@chromium.org2efb9002012-01-19 15:36:35 +00005746 // to contain only ASCII characters.
ricow@chromium.org65fae842010-08-25 15:26:24 +00005747 // ecx: first instance type AND second instance type.
5748 // edi: second instance type.
5749 __ test(ecx, Immediate(kAsciiDataHintMask));
5750 __ j(not_zero, &ascii_data);
5751 __ mov(ecx, FieldOperand(eax, HeapObject::kMapOffset));
5752 __ movzx_b(ecx, FieldOperand(ecx, Map::kInstanceTypeOffset));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00005753 __ xor_(edi, ecx);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005754 STATIC_ASSERT(kAsciiStringTag != 0 && kAsciiDataHintTag != 0);
5755 __ and_(edi, kAsciiStringTag | kAsciiDataHintTag);
5756 __ cmp(edi, kAsciiStringTag | kAsciiDataHintTag);
5757 __ j(equal, &ascii_data);
5758 // Allocate a two byte cons string.
ricow@chromium.org7ad65222011-12-19 12:13:11 +00005759 __ AllocateTwoByteConsString(ecx, edi, no_reg, &call_runtime);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005760 __ jmp(&allocated);
5761
ricow@chromium.org7ad65222011-12-19 12:13:11 +00005762 // We cannot encounter sliced strings or cons strings here since:
ulan@chromium.org2efb9002012-01-19 15:36:35 +00005763 STATIC_ASSERT(SlicedString::kMinLength >= ConsString::kMinLength);
ricow@chromium.org7ad65222011-12-19 12:13:11 +00005764 // Handle creating a flat result from either external or sequential strings.
5765 // Locate the first characters' locations.
ricow@chromium.org65fae842010-08-25 15:26:24 +00005766 // eax: first string
5767 // ebx: length of resulting flat string as a smi
5768 // edx: second string
ricow@chromium.org7ad65222011-12-19 12:13:11 +00005769 Label first_prepared, second_prepared;
5770 Label first_is_sequential, second_is_sequential;
ricow@chromium.org65fae842010-08-25 15:26:24 +00005771 __ bind(&string_add_flat_result);
5772 __ mov(ecx, FieldOperand(eax, HeapObject::kMapOffset));
5773 __ movzx_b(ecx, FieldOperand(ecx, Map::kInstanceTypeOffset));
ricow@chromium.org7ad65222011-12-19 12:13:11 +00005774 // ecx: instance type of first string
5775 STATIC_ASSERT(kSeqStringTag == 0);
5776 __ test_b(ecx, kStringRepresentationMask);
5777 __ j(zero, &first_is_sequential, Label::kNear);
5778 // Rule out short external string and load string resource.
5779 STATIC_ASSERT(kShortExternalStringTag != 0);
5780 __ test_b(ecx, kShortExternalStringMask);
5781 __ j(not_zero, &call_runtime);
5782 __ mov(eax, FieldOperand(eax, ExternalString::kResourceDataOffset));
5783 STATIC_ASSERT(SeqAsciiString::kHeaderSize == SeqTwoByteString::kHeaderSize);
5784 __ jmp(&first_prepared, Label::kNear);
5785 __ bind(&first_is_sequential);
5786 __ add(eax, Immediate(SeqAsciiString::kHeaderSize - kHeapObjectTag));
5787 __ bind(&first_prepared);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005788
ricow@chromium.org7ad65222011-12-19 12:13:11 +00005789 __ mov(edi, FieldOperand(edx, HeapObject::kMapOffset));
5790 __ movzx_b(edi, FieldOperand(edi, Map::kInstanceTypeOffset));
5791 // Check whether both strings have same encoding.
5792 // edi: instance type of second string
5793 __ xor_(ecx, edi);
5794 __ test_b(ecx, kStringEncodingMask);
5795 __ j(not_zero, &call_runtime);
5796 STATIC_ASSERT(kSeqStringTag == 0);
5797 __ test_b(edi, kStringRepresentationMask);
5798 __ j(zero, &second_is_sequential, Label::kNear);
5799 // Rule out short external string and load string resource.
5800 STATIC_ASSERT(kShortExternalStringTag != 0);
5801 __ test_b(edi, kShortExternalStringMask);
5802 __ j(not_zero, &call_runtime);
5803 __ mov(edx, FieldOperand(edx, ExternalString::kResourceDataOffset));
5804 STATIC_ASSERT(SeqAsciiString::kHeaderSize == SeqTwoByteString::kHeaderSize);
5805 __ jmp(&second_prepared, Label::kNear);
5806 __ bind(&second_is_sequential);
5807 __ add(edx, Immediate(SeqAsciiString::kHeaderSize - kHeapObjectTag));
5808 __ bind(&second_prepared);
5809
5810 // Push the addresses of both strings' first characters onto the stack.
5811 __ push(edx);
5812 __ push(eax);
5813
5814 Label non_ascii_string_add_flat_result, call_runtime_drop_two;
5815 // edi: instance type of second string
5816 // First string and second string have the same encoding.
5817 STATIC_ASSERT(kTwoByteStringTag == 0);
5818 __ test_b(edi, kStringEncodingMask);
5819 __ j(zero, &non_ascii_string_add_flat_result);
5820
ulan@chromium.org2efb9002012-01-19 15:36:35 +00005821 // Both strings are ASCII strings.
ricow@chromium.org65fae842010-08-25 15:26:24 +00005822 // ebx: length of resulting flat string as a smi
5823 __ SmiUntag(ebx);
ricow@chromium.org7ad65222011-12-19 12:13:11 +00005824 __ AllocateAsciiString(eax, ebx, ecx, edx, edi, &call_runtime_drop_two);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005825 // eax: result string
5826 __ mov(ecx, eax);
5827 // Locate first character of result.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00005828 __ add(ecx, Immediate(SeqAsciiString::kHeaderSize - kHeapObjectTag));
ricow@chromium.org7ad65222011-12-19 12:13:11 +00005829 // Load first argument's length and first character location. Account for
5830 // values currently on the stack when fetching arguments from it.
5831 __ mov(edx, Operand(esp, 4 * kPointerSize));
ricow@chromium.org65fae842010-08-25 15:26:24 +00005832 __ mov(edi, FieldOperand(edx, String::kLengthOffset));
5833 __ SmiUntag(edi);
ricow@chromium.org7ad65222011-12-19 12:13:11 +00005834 __ pop(edx);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005835 // eax: result string
5836 // ecx: first character of result
5837 // edx: first char of first argument
5838 // edi: length of first argument
5839 StringHelper::GenerateCopyCharacters(masm, ecx, edx, edi, ebx, true);
ricow@chromium.org7ad65222011-12-19 12:13:11 +00005840 // Load second argument's length and first character location. Account for
5841 // values currently on the stack when fetching arguments from it.
5842 __ mov(edx, Operand(esp, 2 * kPointerSize));
ricow@chromium.org65fae842010-08-25 15:26:24 +00005843 __ mov(edi, FieldOperand(edx, String::kLengthOffset));
5844 __ SmiUntag(edi);
ricow@chromium.org7ad65222011-12-19 12:13:11 +00005845 __ pop(edx);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005846 // eax: result string
5847 // ecx: next character of result
5848 // edx: first char of second argument
5849 // edi: length of second argument
5850 StringHelper::GenerateCopyCharacters(masm, ecx, edx, edi, ebx, true);
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00005851 __ IncrementCounter(counters->string_add_native(), 1);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005852 __ ret(2 * kPointerSize);
5853
5854 // Handle creating a flat two byte result.
5855 // eax: first string - known to be two byte
5856 // ebx: length of resulting flat string as a smi
5857 // edx: second string
5858 __ bind(&non_ascii_string_add_flat_result);
ricow@chromium.org7ad65222011-12-19 12:13:11 +00005859 // Both strings are two byte strings.
ricow@chromium.org65fae842010-08-25 15:26:24 +00005860 __ SmiUntag(ebx);
ricow@chromium.org7ad65222011-12-19 12:13:11 +00005861 __ AllocateTwoByteString(eax, ebx, ecx, edx, edi, &call_runtime_drop_two);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005862 // eax: result string
5863 __ mov(ecx, eax);
5864 // Locate first character of result.
ricow@chromium.org7ad65222011-12-19 12:13:11 +00005865 __ add(ecx, Immediate(SeqTwoByteString::kHeaderSize - kHeapObjectTag));
5866 // Load second argument's length and first character location. Account for
5867 // values currently on the stack when fetching arguments from it.
5868 __ mov(edx, Operand(esp, 4 * kPointerSize));
ricow@chromium.org65fae842010-08-25 15:26:24 +00005869 __ mov(edi, FieldOperand(edx, String::kLengthOffset));
5870 __ SmiUntag(edi);
ricow@chromium.org7ad65222011-12-19 12:13:11 +00005871 __ pop(edx);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005872 // eax: result string
5873 // ecx: first character of result
5874 // edx: first char of first argument
5875 // edi: length of first argument
5876 StringHelper::GenerateCopyCharacters(masm, ecx, edx, edi, ebx, false);
ricow@chromium.org7ad65222011-12-19 12:13:11 +00005877 // Load second argument's length and first character location. Account for
5878 // values currently on the stack when fetching arguments from it.
5879 __ mov(edx, Operand(esp, 2 * kPointerSize));
ricow@chromium.org65fae842010-08-25 15:26:24 +00005880 __ mov(edi, FieldOperand(edx, String::kLengthOffset));
5881 __ SmiUntag(edi);
ricow@chromium.org7ad65222011-12-19 12:13:11 +00005882 __ pop(edx);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005883 // eax: result string
5884 // ecx: next character of result
5885 // edx: first char of second argument
5886 // edi: length of second argument
5887 StringHelper::GenerateCopyCharacters(masm, ecx, edx, edi, ebx, false);
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00005888 __ IncrementCounter(counters->string_add_native(), 1);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005889 __ ret(2 * kPointerSize);
5890
ricow@chromium.org7ad65222011-12-19 12:13:11 +00005891 // Recover stack pointer before jumping to runtime.
5892 __ bind(&call_runtime_drop_two);
5893 __ Drop(2);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005894 // Just jump to runtime to add the two strings.
ricow@chromium.org7ad65222011-12-19 12:13:11 +00005895 __ bind(&call_runtime);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005896 __ TailCallRuntime(Runtime::kStringAdd, 2, 1);
kmillikin@chromium.org3cdd9e12010-09-06 11:39:48 +00005897
5898 if (call_builtin.is_linked()) {
5899 __ bind(&call_builtin);
5900 __ InvokeBuiltin(builtin_id, JUMP_FUNCTION);
5901 }
5902}
5903
5904
5905void StringAddStub::GenerateConvertArgument(MacroAssembler* masm,
5906 int stack_offset,
5907 Register arg,
5908 Register scratch1,
5909 Register scratch2,
5910 Register scratch3,
5911 Label* slow) {
5912 // First check if the argument is already a string.
5913 Label not_string, done;
whesse@chromium.org7b260152011-06-20 15:33:18 +00005914 __ JumpIfSmi(arg, &not_string);
kmillikin@chromium.org3cdd9e12010-09-06 11:39:48 +00005915 __ CmpObjectType(arg, FIRST_NONSTRING_TYPE, scratch1);
5916 __ j(below, &done);
5917
5918 // Check the number to string cache.
5919 Label not_cached;
5920 __ bind(&not_string);
5921 // Puts the cached result into scratch1.
5922 NumberToStringStub::GenerateLookupNumberStringCache(masm,
5923 arg,
5924 scratch1,
5925 scratch2,
5926 scratch3,
5927 false,
5928 &not_cached);
5929 __ mov(arg, scratch1);
5930 __ mov(Operand(esp, stack_offset), arg);
5931 __ jmp(&done);
5932
5933 // Check if the argument is a safe string wrapper.
5934 __ bind(&not_cached);
whesse@chromium.org7b260152011-06-20 15:33:18 +00005935 __ JumpIfSmi(arg, slow);
kmillikin@chromium.org3cdd9e12010-09-06 11:39:48 +00005936 __ CmpObjectType(arg, JS_VALUE_TYPE, scratch1); // map -> scratch1.
5937 __ j(not_equal, slow);
5938 __ test_b(FieldOperand(scratch1, Map::kBitField2Offset),
5939 1 << Map::kStringWrapperSafeForDefaultValueOf);
5940 __ j(zero, slow);
5941 __ mov(arg, FieldOperand(arg, JSValue::kValueOffset));
5942 __ mov(Operand(esp, stack_offset), arg);
5943
5944 __ bind(&done);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005945}
5946
5947
5948void StringHelper::GenerateCopyCharacters(MacroAssembler* masm,
5949 Register dest,
5950 Register src,
5951 Register count,
5952 Register scratch,
5953 bool ascii) {
karlklose@chromium.org83a47282011-05-11 11:54:09 +00005954 Label loop;
ricow@chromium.org65fae842010-08-25 15:26:24 +00005955 __ bind(&loop);
5956 // This loop just copies one character at a time, as it is only used for very
5957 // short strings.
5958 if (ascii) {
5959 __ mov_b(scratch, Operand(src, 0));
5960 __ mov_b(Operand(dest, 0), scratch);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00005961 __ add(src, Immediate(1));
5962 __ add(dest, Immediate(1));
ricow@chromium.org65fae842010-08-25 15:26:24 +00005963 } else {
5964 __ mov_w(scratch, Operand(src, 0));
5965 __ mov_w(Operand(dest, 0), scratch);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00005966 __ add(src, Immediate(2));
5967 __ add(dest, Immediate(2));
ricow@chromium.org65fae842010-08-25 15:26:24 +00005968 }
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00005969 __ sub(count, Immediate(1));
ricow@chromium.org65fae842010-08-25 15:26:24 +00005970 __ j(not_zero, &loop);
5971}
5972
5973
5974void StringHelper::GenerateCopyCharactersREP(MacroAssembler* masm,
5975 Register dest,
5976 Register src,
5977 Register count,
5978 Register scratch,
5979 bool ascii) {
5980 // Copy characters using rep movs of doublewords.
5981 // The destination is aligned on a 4 byte boundary because we are
5982 // copying to the beginning of a newly allocated string.
5983 ASSERT(dest.is(edi)); // rep movs destination
5984 ASSERT(src.is(esi)); // rep movs source
5985 ASSERT(count.is(ecx)); // rep movs count
5986 ASSERT(!scratch.is(dest));
5987 ASSERT(!scratch.is(src));
5988 ASSERT(!scratch.is(count));
5989
5990 // Nothing to do for zero characters.
5991 Label done;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00005992 __ test(count, count);
ricow@chromium.org65fae842010-08-25 15:26:24 +00005993 __ j(zero, &done);
5994
5995 // Make count the number of bytes to copy.
5996 if (!ascii) {
5997 __ shl(count, 1);
5998 }
5999
6000 // Don't enter the rep movs if there are less than 4 bytes to copy.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006001 Label last_bytes;
ricow@chromium.org65fae842010-08-25 15:26:24 +00006002 __ test(count, Immediate(~3));
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006003 __ j(zero, &last_bytes, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006004
6005 // Copy from edi to esi using rep movs instruction.
6006 __ mov(scratch, count);
6007 __ sar(count, 2); // Number of doublewords to copy.
6008 __ cld();
6009 __ rep_movs();
6010
6011 // Find number of bytes left.
6012 __ mov(count, scratch);
6013 __ and_(count, 3);
6014
6015 // Check if there are more bytes to copy.
6016 __ bind(&last_bytes);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006017 __ test(count, count);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006018 __ j(zero, &done);
6019
6020 // Copy remaining characters.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006021 Label loop;
ricow@chromium.org65fae842010-08-25 15:26:24 +00006022 __ bind(&loop);
6023 __ mov_b(scratch, Operand(src, 0));
6024 __ mov_b(Operand(dest, 0), scratch);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006025 __ add(src, Immediate(1));
6026 __ add(dest, Immediate(1));
6027 __ sub(count, Immediate(1));
ricow@chromium.org65fae842010-08-25 15:26:24 +00006028 __ j(not_zero, &loop);
6029
6030 __ bind(&done);
6031}
6032
6033
6034void StringHelper::GenerateTwoCharacterSymbolTableProbe(MacroAssembler* masm,
6035 Register c1,
6036 Register c2,
6037 Register scratch1,
6038 Register scratch2,
6039 Register scratch3,
kmillikin@chromium.org3cdd9e12010-09-06 11:39:48 +00006040 Label* not_probed,
ricow@chromium.org65fae842010-08-25 15:26:24 +00006041 Label* not_found) {
6042 // Register scratch3 is the general scratch register in this function.
6043 Register scratch = scratch3;
6044
6045 // Make sure that both characters are not digits as such strings has a
6046 // different hash algorithm. Don't try to look for these in the symbol table.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006047 Label not_array_index;
ricow@chromium.org65fae842010-08-25 15:26:24 +00006048 __ mov(scratch, c1);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006049 __ sub(scratch, Immediate(static_cast<int>('0')));
6050 __ cmp(scratch, Immediate(static_cast<int>('9' - '0')));
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006051 __ j(above, &not_array_index, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006052 __ mov(scratch, c2);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006053 __ sub(scratch, Immediate(static_cast<int>('0')));
6054 __ cmp(scratch, Immediate(static_cast<int>('9' - '0')));
kmillikin@chromium.org3cdd9e12010-09-06 11:39:48 +00006055 __ j(below_equal, not_probed);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006056
6057 __ bind(&not_array_index);
6058 // Calculate the two character string hash.
6059 Register hash = scratch1;
6060 GenerateHashInit(masm, hash, c1, scratch);
6061 GenerateHashAddCharacter(masm, hash, c2, scratch);
6062 GenerateHashGetHash(masm, hash, scratch);
6063
6064 // Collect the two characters in a register.
6065 Register chars = c1;
6066 __ shl(c2, kBitsPerByte);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006067 __ or_(chars, c2);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006068
6069 // chars: two character string, char 1 in byte 0 and char 2 in byte 1.
6070 // hash: hash of two character string.
6071
6072 // Load the symbol table.
6073 Register symbol_table = c2;
erik.corry@gmail.com394dbcf2011-10-27 07:38:48 +00006074 ExternalReference roots_array_start =
6075 ExternalReference::roots_array_start(masm->isolate());
ricow@chromium.org65fae842010-08-25 15:26:24 +00006076 __ mov(scratch, Immediate(Heap::kSymbolTableRootIndex));
6077 __ mov(symbol_table,
erik.corry@gmail.com394dbcf2011-10-27 07:38:48 +00006078 Operand::StaticArray(scratch, times_pointer_size, roots_array_start));
ricow@chromium.org65fae842010-08-25 15:26:24 +00006079
6080 // Calculate capacity mask from the symbol table capacity.
6081 Register mask = scratch2;
6082 __ mov(mask, FieldOperand(symbol_table, SymbolTable::kCapacityOffset));
6083 __ SmiUntag(mask);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006084 __ sub(mask, Immediate(1));
ricow@chromium.org65fae842010-08-25 15:26:24 +00006085
6086 // Registers
6087 // chars: two character string, char 1 in byte 0 and char 2 in byte 1.
6088 // hash: hash of two character string
6089 // symbol_table: symbol table
6090 // mask: capacity mask
6091 // scratch: -
6092
6093 // Perform a number of probes in the symbol table.
6094 static const int kProbes = 4;
6095 Label found_in_symbol_table;
6096 Label next_probe[kProbes], next_probe_pop_mask[kProbes];
danno@chromium.org2c456792011-11-11 12:00:53 +00006097 Register candidate = scratch; // Scratch register contains candidate.
ricow@chromium.org65fae842010-08-25 15:26:24 +00006098 for (int i = 0; i < kProbes; i++) {
6099 // Calculate entry in symbol table.
6100 __ mov(scratch, hash);
6101 if (i > 0) {
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006102 __ add(scratch, Immediate(SymbolTable::GetProbeOffset(i)));
ricow@chromium.org65fae842010-08-25 15:26:24 +00006103 }
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006104 __ and_(scratch, mask);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006105
6106 // Load the entry from the symbol table.
ricow@chromium.org65fae842010-08-25 15:26:24 +00006107 STATIC_ASSERT(SymbolTable::kEntrySize == 1);
6108 __ mov(candidate,
6109 FieldOperand(symbol_table,
6110 scratch,
6111 times_pointer_size,
6112 SymbolTable::kElementsStartOffset));
6113
6114 // If entry is undefined no string with this hash can be found.
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00006115 Factory* factory = masm->isolate()->factory();
6116 __ cmp(candidate, factory->undefined_value());
ricow@chromium.org65fae842010-08-25 15:26:24 +00006117 __ j(equal, not_found);
danno@chromium.org2c456792011-11-11 12:00:53 +00006118 __ cmp(candidate, factory->the_hole_value());
ricow@chromium.orgbadaffc2011-03-17 12:15:27 +00006119 __ j(equal, &next_probe[i]);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006120
6121 // If length is not 2 the string is not a candidate.
6122 __ cmp(FieldOperand(candidate, String::kLengthOffset),
6123 Immediate(Smi::FromInt(2)));
6124 __ j(not_equal, &next_probe[i]);
6125
6126 // As we are out of registers save the mask on the stack and use that
6127 // register as a temporary.
6128 __ push(mask);
6129 Register temp = mask;
6130
ulan@chromium.org2efb9002012-01-19 15:36:35 +00006131 // Check that the candidate is a non-external ASCII string.
ricow@chromium.org65fae842010-08-25 15:26:24 +00006132 __ mov(temp, FieldOperand(candidate, HeapObject::kMapOffset));
6133 __ movzx_b(temp, FieldOperand(temp, Map::kInstanceTypeOffset));
6134 __ JumpIfInstanceTypeIsNotSequentialAscii(
6135 temp, temp, &next_probe_pop_mask[i]);
6136
6137 // Check if the two characters match.
6138 __ mov(temp, FieldOperand(candidate, SeqAsciiString::kHeaderSize));
6139 __ and_(temp, 0x0000ffff);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006140 __ cmp(chars, temp);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006141 __ j(equal, &found_in_symbol_table);
6142 __ bind(&next_probe_pop_mask[i]);
6143 __ pop(mask);
6144 __ bind(&next_probe[i]);
6145 }
6146
6147 // No matching 2 character string found by probing.
6148 __ jmp(not_found);
6149
6150 // Scratch register contains result when we fall through to here.
danno@chromium.org2c456792011-11-11 12:00:53 +00006151 Register result = candidate;
ricow@chromium.org65fae842010-08-25 15:26:24 +00006152 __ bind(&found_in_symbol_table);
6153 __ pop(mask); // Pop saved mask from the stack.
6154 if (!result.is(eax)) {
6155 __ mov(eax, result);
6156 }
6157}
6158
6159
6160void StringHelper::GenerateHashInit(MacroAssembler* masm,
6161 Register hash,
6162 Register character,
6163 Register scratch) {
rossberg@chromium.orgfab14982012-01-05 15:02:15 +00006164 // hash = (seed + character) + ((seed + character) << 10);
6165 if (Serializer::enabled()) {
6166 ExternalReference roots_array_start =
6167 ExternalReference::roots_array_start(masm->isolate());
erik.corry@gmail.comf2038fb2012-01-16 11:42:08 +00006168 __ mov(scratch, Immediate(Heap::kHashSeedRootIndex));
rossberg@chromium.orgfab14982012-01-05 15:02:15 +00006169 __ mov(scratch, Operand::StaticArray(scratch,
6170 times_pointer_size,
6171 roots_array_start));
ulan@chromium.org2efb9002012-01-19 15:36:35 +00006172 __ SmiUntag(scratch);
rossberg@chromium.orgfab14982012-01-05 15:02:15 +00006173 __ add(scratch, character);
6174 __ mov(hash, scratch);
6175 __ shl(scratch, 10);
6176 __ add(hash, scratch);
6177 } else {
erik.corry@gmail.comf2038fb2012-01-16 11:42:08 +00006178 int32_t seed = masm->isolate()->heap()->HashSeed();
rossberg@chromium.orgfab14982012-01-05 15:02:15 +00006179 __ lea(scratch, Operand(character, seed));
6180 __ shl(scratch, 10);
6181 __ lea(hash, Operand(scratch, character, times_1, seed));
6182 }
ricow@chromium.org65fae842010-08-25 15:26:24 +00006183 // hash ^= hash >> 6;
6184 __ mov(scratch, hash);
danno@chromium.org2c456792011-11-11 12:00:53 +00006185 __ shr(scratch, 6);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006186 __ xor_(hash, scratch);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006187}
6188
6189
6190void StringHelper::GenerateHashAddCharacter(MacroAssembler* masm,
6191 Register hash,
6192 Register character,
6193 Register scratch) {
6194 // hash += character;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006195 __ add(hash, character);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006196 // hash += hash << 10;
6197 __ mov(scratch, hash);
6198 __ shl(scratch, 10);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006199 __ add(hash, scratch);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006200 // hash ^= hash >> 6;
6201 __ mov(scratch, hash);
danno@chromium.org2c456792011-11-11 12:00:53 +00006202 __ shr(scratch, 6);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006203 __ xor_(hash, scratch);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006204}
6205
6206
6207void StringHelper::GenerateHashGetHash(MacroAssembler* masm,
6208 Register hash,
6209 Register scratch) {
6210 // hash += hash << 3;
6211 __ mov(scratch, hash);
6212 __ shl(scratch, 3);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006213 __ add(hash, scratch);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006214 // hash ^= hash >> 11;
6215 __ mov(scratch, hash);
danno@chromium.org2c456792011-11-11 12:00:53 +00006216 __ shr(scratch, 11);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006217 __ xor_(hash, scratch);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006218 // hash += hash << 15;
6219 __ mov(scratch, hash);
6220 __ shl(scratch, 15);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006221 __ add(hash, scratch);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006222
erik.corry@gmail.comf2038fb2012-01-16 11:42:08 +00006223 __ and_(hash, String::kHashBitMask);
danno@chromium.org2c456792011-11-11 12:00:53 +00006224
ricow@chromium.org65fae842010-08-25 15:26:24 +00006225 // if (hash == 0) hash = 27;
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006226 Label hash_not_zero;
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006227 __ j(not_zero, &hash_not_zero, Label::kNear);
erik.corry@gmail.comf2038fb2012-01-16 11:42:08 +00006228 __ mov(hash, Immediate(StringHasher::kZeroHash));
ricow@chromium.org65fae842010-08-25 15:26:24 +00006229 __ bind(&hash_not_zero);
6230}
6231
6232
6233void SubStringStub::Generate(MacroAssembler* masm) {
6234 Label runtime;
6235
6236 // Stack frame on entry.
6237 // esp[0]: return address
6238 // esp[4]: to
6239 // esp[8]: from
6240 // esp[12]: string
6241
6242 // Make sure first argument is a string.
6243 __ mov(eax, Operand(esp, 3 * kPointerSize));
6244 STATIC_ASSERT(kSmiTag == 0);
whesse@chromium.org7b260152011-06-20 15:33:18 +00006245 __ JumpIfSmi(eax, &runtime);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006246 Condition is_string = masm->IsObjectStringType(eax, ebx, ebx);
6247 __ j(NegateCondition(is_string), &runtime);
6248
6249 // eax: string
6250 // ebx: instance type
6251
6252 // Calculate length of sub string using the smi values.
ricow@chromium.org65fae842010-08-25 15:26:24 +00006253 __ mov(ecx, Operand(esp, 1 * kPointerSize)); // To index.
whesse@chromium.org7b260152011-06-20 15:33:18 +00006254 __ JumpIfNotSmi(ecx, &runtime);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006255 __ mov(edx, Operand(esp, 2 * kPointerSize)); // From index.
whesse@chromium.org7b260152011-06-20 15:33:18 +00006256 __ JumpIfNotSmi(edx, &runtime);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006257 __ sub(ecx, edx);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006258 __ cmp(ecx, FieldOperand(eax, String::kLengthOffset));
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00006259 Label not_original_string;
erik.corry@gmail.comed49e962012-04-17 11:57:53 +00006260 // Shorter than original string's length: an actual substring.
6261 __ j(below, &not_original_string, Label::kNear);
6262 // Longer than original string's length or negative: unsafe arguments.
6263 __ j(above, &runtime);
6264 // Return original string.
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00006265 Counters* counters = masm->isolate()->counters();
6266 __ IncrementCounter(counters->sub_string_native(), 1);
6267 __ ret(3 * kPointerSize);
6268 __ bind(&not_original_string);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006269
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00006270 // eax: string
6271 // ebx: instance type
6272 // ecx: sub string length (smi)
6273 // edx: from index (smi)
6274 // Deal with different string types: update the index if necessary
6275 // and put the underlying string into edi.
6276 Label underlying_unpacked, sliced_string, seq_or_external_string;
6277 // If the string is not indirect, it can only be sequential or external.
6278 STATIC_ASSERT(kIsIndirectStringMask == (kSlicedStringTag & kConsStringTag));
6279 STATIC_ASSERT(kIsIndirectStringMask != 0);
6280 __ test(ebx, Immediate(kIsIndirectStringMask));
6281 __ j(zero, &seq_or_external_string, Label::kNear);
6282
6283 Factory* factory = masm->isolate()->factory();
6284 __ test(ebx, Immediate(kSlicedNotConsMask));
6285 __ j(not_zero, &sliced_string, Label::kNear);
6286 // Cons string. Check whether it is flat, then fetch first part.
6287 // Flat cons strings have an empty second part.
6288 __ cmp(FieldOperand(eax, ConsString::kSecondOffset),
6289 factory->empty_string());
6290 __ j(not_equal, &runtime);
6291 __ mov(edi, FieldOperand(eax, ConsString::kFirstOffset));
6292 // Update instance type.
6293 __ mov(ebx, FieldOperand(edi, HeapObject::kMapOffset));
6294 __ movzx_b(ebx, FieldOperand(ebx, Map::kInstanceTypeOffset));
6295 __ jmp(&underlying_unpacked, Label::kNear);
6296
6297 __ bind(&sliced_string);
6298 // Sliced string. Fetch parent and adjust start index by offset.
6299 __ add(edx, FieldOperand(eax, SlicedString::kOffsetOffset));
6300 __ mov(edi, FieldOperand(eax, SlicedString::kParentOffset));
6301 // Update instance type.
6302 __ mov(ebx, FieldOperand(edi, HeapObject::kMapOffset));
6303 __ movzx_b(ebx, FieldOperand(ebx, Map::kInstanceTypeOffset));
6304 __ jmp(&underlying_unpacked, Label::kNear);
6305
6306 __ bind(&seq_or_external_string);
6307 // Sequential or external string. Just move string to the expected register.
6308 __ mov(edi, eax);
6309
6310 __ bind(&underlying_unpacked);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006311
yangguo@chromium.org80c42ed2011-08-31 09:03:56 +00006312 if (FLAG_string_slices) {
6313 Label copy_routine;
yangguo@chromium.org80c42ed2011-08-31 09:03:56 +00006314 // edi: underlying subject string
ricow@chromium.org7ad65222011-12-19 12:13:11 +00006315 // ebx: instance type of underlying subject string
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00006316 // edx: adjusted start index (smi)
6317 // ecx: length (smi)
6318 __ cmp(ecx, Immediate(Smi::FromInt(SlicedString::kMinLength)));
6319 // Short slice. Copy instead of slicing.
6320 __ j(less, &copy_routine);
yangguo@chromium.org80c42ed2011-08-31 09:03:56 +00006321 // Allocate new sliced string. At this point we do not reload the instance
6322 // type including the string encoding because we simply rely on the info
6323 // provided by the original string. It does not matter if the original
6324 // string's encoding is wrong because we always have to recheck encoding of
6325 // the newly created string's parent anyways due to externalized strings.
6326 Label two_byte_slice, set_slice_header;
fschneider@chromium.org1805e212011-09-05 10:49:12 +00006327 STATIC_ASSERT((kStringEncodingMask & kAsciiStringTag) != 0);
6328 STATIC_ASSERT((kStringEncodingMask & kTwoByteStringTag) == 0);
6329 __ test(ebx, Immediate(kStringEncodingMask));
yangguo@chromium.org80c42ed2011-08-31 09:03:56 +00006330 __ j(zero, &two_byte_slice, Label::kNear);
6331 __ AllocateAsciiSlicedString(eax, ebx, no_reg, &runtime);
6332 __ jmp(&set_slice_header, Label::kNear);
6333 __ bind(&two_byte_slice);
fschneider@chromium.org1805e212011-09-05 10:49:12 +00006334 __ AllocateTwoByteSlicedString(eax, ebx, no_reg, &runtime);
yangguo@chromium.org80c42ed2011-08-31 09:03:56 +00006335 __ bind(&set_slice_header);
yangguo@chromium.org80c42ed2011-08-31 09:03:56 +00006336 __ mov(FieldOperand(eax, SlicedString::kLengthOffset), ecx);
yangguo@chromium.org80c42ed2011-08-31 09:03:56 +00006337 __ mov(FieldOperand(eax, SlicedString::kHashFieldOffset),
6338 Immediate(String::kEmptyHashField));
erik.corry@gmail.combbceb572012-03-09 10:52:05 +00006339 __ mov(FieldOperand(eax, SlicedString::kParentOffset), edi);
6340 __ mov(FieldOperand(eax, SlicedString::kOffsetOffset), edx);
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00006341 __ IncrementCounter(counters->sub_string_native(), 1);
6342 __ ret(3 * kPointerSize);
yangguo@chromium.org80c42ed2011-08-31 09:03:56 +00006343
6344 __ bind(&copy_routine);
yangguo@chromium.org80c42ed2011-08-31 09:03:56 +00006345 }
6346
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00006347 // edi: underlying subject string
ricow@chromium.org7ad65222011-12-19 12:13:11 +00006348 // ebx: instance type of underlying subject string
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00006349 // edx: adjusted start index (smi)
6350 // ecx: length (smi)
6351 // The subject string can only be external or sequential string of either
6352 // encoding at this point.
6353 Label two_byte_sequential, runtime_drop_two, sequential_string;
6354 STATIC_ASSERT(kExternalStringTag != 0);
6355 STATIC_ASSERT(kSeqStringTag == 0);
6356 __ test_b(ebx, kExternalStringTag);
6357 __ j(zero, &sequential_string);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006358
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00006359 // Handle external string.
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00006360 // Rule out short external strings.
6361 STATIC_CHECK(kShortExternalStringTag != 0);
6362 __ test_b(ebx, kShortExternalStringMask);
6363 __ j(not_zero, &runtime);
6364 __ mov(edi, FieldOperand(edi, ExternalString::kResourceDataOffset));
6365 // Move the pointer so that offset-wise, it looks like a sequential string.
6366 STATIC_ASSERT(SeqTwoByteString::kHeaderSize == SeqAsciiString::kHeaderSize);
6367 __ sub(edi, Immediate(SeqTwoByteString::kHeaderSize - kHeapObjectTag));
6368
6369 __ bind(&sequential_string);
6370 // Stash away (adjusted) index and (underlying) string.
6371 __ push(edx);
6372 __ push(edi);
6373 __ SmiUntag(ecx);
6374 STATIC_ASSERT((kAsciiStringTag & kStringEncodingMask) != 0);
6375 __ test_b(ebx, kStringEncodingMask);
6376 __ j(zero, &two_byte_sequential);
6377
ulan@chromium.org2efb9002012-01-19 15:36:35 +00006378 // Sequential ASCII string. Allocate the result.
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00006379 __ AllocateAsciiString(eax, ecx, ebx, edx, edi, &runtime_drop_two);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006380
6381 // eax: result string
6382 // ecx: result string length
6383 __ mov(edx, esi); // esi used by following code.
6384 // Locate first character of result.
6385 __ mov(edi, eax);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006386 __ add(edi, Immediate(SeqAsciiString::kHeaderSize - kHeapObjectTag));
ricow@chromium.org65fae842010-08-25 15:26:24 +00006387 // Load string argument and locate character of sub string start.
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00006388 __ pop(esi);
6389 __ pop(ebx);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006390 __ SmiUntag(ebx);
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00006391 __ lea(esi, FieldOperand(esi, ebx, times_1, SeqAsciiString::kHeaderSize));
ricow@chromium.org65fae842010-08-25 15:26:24 +00006392
6393 // eax: result string
6394 // ecx: result length
6395 // edx: original value of esi
6396 // edi: first character of result
6397 // esi: character of sub string start
6398 StringHelper::GenerateCopyCharactersREP(masm, edi, esi, ecx, ebx, true);
6399 __ mov(esi, edx); // Restore esi.
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00006400 __ IncrementCounter(counters->sub_string_native(), 1);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006401 __ ret(3 * kPointerSize);
6402
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00006403 __ bind(&two_byte_sequential);
6404 // Sequential two-byte string. Allocate the result.
6405 __ AllocateTwoByteString(eax, ecx, ebx, edx, edi, &runtime_drop_two);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006406
6407 // eax: result string
6408 // ecx: result string length
6409 __ mov(edx, esi); // esi used by following code.
6410 // Locate first character of result.
6411 __ mov(edi, eax);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006412 __ add(edi,
ricow@chromium.org65fae842010-08-25 15:26:24 +00006413 Immediate(SeqTwoByteString::kHeaderSize - kHeapObjectTag));
6414 // Load string argument and locate character of sub string start.
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00006415 __ pop(esi);
6416 __ pop(ebx);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006417 // As from is a smi it is 2 times the value which matches the size of a two
6418 // byte character.
6419 STATIC_ASSERT(kSmiTag == 0);
6420 STATIC_ASSERT(kSmiTagSize + kSmiShiftSize == 1);
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00006421 __ lea(esi, FieldOperand(esi, ebx, times_1, SeqTwoByteString::kHeaderSize));
ricow@chromium.org65fae842010-08-25 15:26:24 +00006422
6423 // eax: result string
6424 // ecx: result length
6425 // edx: original value of esi
6426 // edi: first character of result
6427 // esi: character of sub string start
6428 StringHelper::GenerateCopyCharactersREP(masm, edi, esi, ecx, ebx, false);
6429 __ mov(esi, edx); // Restore esi.
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00006430 __ IncrementCounter(counters->sub_string_native(), 1);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006431 __ ret(3 * kPointerSize);
6432
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00006433 // Drop pushed values on the stack before tail call.
6434 __ bind(&runtime_drop_two);
6435 __ Drop(2);
6436
ricow@chromium.org65fae842010-08-25 15:26:24 +00006437 // Just jump to runtime to create the sub string.
6438 __ bind(&runtime);
6439 __ TailCallRuntime(Runtime::kSubString, 3, 1);
6440}
6441
6442
lrn@chromium.org1c092762011-05-09 09:42:16 +00006443void StringCompareStub::GenerateFlatAsciiStringEquals(MacroAssembler* masm,
6444 Register left,
6445 Register right,
6446 Register scratch1,
6447 Register scratch2) {
6448 Register length = scratch1;
6449
6450 // Compare lengths.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006451 Label strings_not_equal, check_zero_length;
lrn@chromium.org1c092762011-05-09 09:42:16 +00006452 __ mov(length, FieldOperand(left, String::kLengthOffset));
6453 __ cmp(length, FieldOperand(right, String::kLengthOffset));
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006454 __ j(equal, &check_zero_length, Label::kNear);
lrn@chromium.org1c092762011-05-09 09:42:16 +00006455 __ bind(&strings_not_equal);
6456 __ Set(eax, Immediate(Smi::FromInt(NOT_EQUAL)));
6457 __ ret(0);
6458
6459 // Check if the length is zero.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006460 Label compare_chars;
lrn@chromium.org1c092762011-05-09 09:42:16 +00006461 __ bind(&check_zero_length);
6462 STATIC_ASSERT(kSmiTag == 0);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006463 __ test(length, length);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006464 __ j(not_zero, &compare_chars, Label::kNear);
lrn@chromium.org1c092762011-05-09 09:42:16 +00006465 __ Set(eax, Immediate(Smi::FromInt(EQUAL)));
6466 __ ret(0);
6467
6468 // Compare characters.
6469 __ bind(&compare_chars);
6470 GenerateAsciiCharsCompareLoop(masm, left, right, length, scratch2,
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006471 &strings_not_equal, Label::kNear);
lrn@chromium.org1c092762011-05-09 09:42:16 +00006472
6473 // Characters are equal.
6474 __ Set(eax, Immediate(Smi::FromInt(EQUAL)));
6475 __ ret(0);
6476}
6477
6478
ricow@chromium.org65fae842010-08-25 15:26:24 +00006479void StringCompareStub::GenerateCompareFlatAsciiStrings(MacroAssembler* masm,
6480 Register left,
6481 Register right,
6482 Register scratch1,
6483 Register scratch2,
6484 Register scratch3) {
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00006485 Counters* counters = masm->isolate()->counters();
6486 __ IncrementCounter(counters->string_compare_native(), 1);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006487
6488 // Find minimum length.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006489 Label left_shorter;
ricow@chromium.org65fae842010-08-25 15:26:24 +00006490 __ mov(scratch1, FieldOperand(left, String::kLengthOffset));
6491 __ mov(scratch3, scratch1);
6492 __ sub(scratch3, FieldOperand(right, String::kLengthOffset));
6493
6494 Register length_delta = scratch3;
6495
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006496 __ j(less_equal, &left_shorter, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006497 // Right string is shorter. Change scratch1 to be length of right string.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006498 __ sub(scratch1, length_delta);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006499 __ bind(&left_shorter);
6500
6501 Register min_length = scratch1;
6502
6503 // If either length is zero, just compare lengths.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006504 Label compare_lengths;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006505 __ test(min_length, min_length);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006506 __ j(zero, &compare_lengths, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006507
lrn@chromium.org1c092762011-05-09 09:42:16 +00006508 // Compare characters.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006509 Label result_not_equal;
lrn@chromium.org1c092762011-05-09 09:42:16 +00006510 GenerateAsciiCharsCompareLoop(masm, left, right, min_length, scratch2,
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006511 &result_not_equal, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006512
6513 // Compare lengths - strings up to min-length are equal.
6514 __ bind(&compare_lengths);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006515 __ test(length_delta, length_delta);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006516 __ j(not_zero, &result_not_equal, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006517
6518 // Result is EQUAL.
6519 STATIC_ASSERT(EQUAL == 0);
6520 STATIC_ASSERT(kSmiTag == 0);
6521 __ Set(eax, Immediate(Smi::FromInt(EQUAL)));
6522 __ ret(0);
6523
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006524 Label result_greater;
ricow@chromium.org65fae842010-08-25 15:26:24 +00006525 __ bind(&result_not_equal);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006526 __ j(greater, &result_greater, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006527
6528 // Result is LESS.
6529 __ Set(eax, Immediate(Smi::FromInt(LESS)));
6530 __ ret(0);
6531
6532 // Result is GREATER.
6533 __ bind(&result_greater);
6534 __ Set(eax, Immediate(Smi::FromInt(GREATER)));
6535 __ ret(0);
6536}
6537
6538
lrn@chromium.org1c092762011-05-09 09:42:16 +00006539void StringCompareStub::GenerateAsciiCharsCompareLoop(
6540 MacroAssembler* masm,
6541 Register left,
6542 Register right,
6543 Register length,
6544 Register scratch,
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006545 Label* chars_not_equal,
6546 Label::Distance chars_not_equal_near) {
lrn@chromium.org1c092762011-05-09 09:42:16 +00006547 // Change index to run from -length to -1 by adding length to string
6548 // start. This means that loop ends when index reaches zero, which
6549 // doesn't need an additional compare.
6550 __ SmiUntag(length);
6551 __ lea(left,
6552 FieldOperand(left, length, times_1, SeqAsciiString::kHeaderSize));
6553 __ lea(right,
6554 FieldOperand(right, length, times_1, SeqAsciiString::kHeaderSize));
6555 __ neg(length);
6556 Register index = length; // index = -length;
6557
6558 // Compare loop.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006559 Label loop;
lrn@chromium.org1c092762011-05-09 09:42:16 +00006560 __ bind(&loop);
6561 __ mov_b(scratch, Operand(left, index, times_1, 0));
6562 __ cmpb(scratch, Operand(right, index, times_1, 0));
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006563 __ j(not_equal, chars_not_equal, chars_not_equal_near);
svenpanne@chromium.org4efbdb12012-03-12 08:18:42 +00006564 __ inc(index);
lrn@chromium.org1c092762011-05-09 09:42:16 +00006565 __ j(not_zero, &loop);
6566}
6567
6568
ricow@chromium.org65fae842010-08-25 15:26:24 +00006569void StringCompareStub::Generate(MacroAssembler* masm) {
6570 Label runtime;
6571
6572 // Stack frame on entry.
6573 // esp[0]: return address
6574 // esp[4]: right string
6575 // esp[8]: left string
6576
6577 __ mov(edx, Operand(esp, 2 * kPointerSize)); // left
6578 __ mov(eax, Operand(esp, 1 * kPointerSize)); // right
6579
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006580 Label not_same;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006581 __ cmp(edx, eax);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006582 __ j(not_equal, &not_same, Label::kNear);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006583 STATIC_ASSERT(EQUAL == 0);
6584 STATIC_ASSERT(kSmiTag == 0);
6585 __ Set(eax, Immediate(Smi::FromInt(EQUAL)));
fschneider@chromium.org7979bbb2011-03-28 10:47:03 +00006586 __ IncrementCounter(masm->isolate()->counters()->string_compare_native(), 1);
ricow@chromium.org65fae842010-08-25 15:26:24 +00006587 __ ret(2 * kPointerSize);
6588
6589 __ bind(&not_same);
6590
ulan@chromium.org2efb9002012-01-19 15:36:35 +00006591 // Check that both objects are sequential ASCII strings.
ricow@chromium.org65fae842010-08-25 15:26:24 +00006592 __ JumpIfNotBothSequentialAsciiStrings(edx, eax, ecx, ebx, &runtime);
6593
ulan@chromium.org2efb9002012-01-19 15:36:35 +00006594 // Compare flat ASCII strings.
ricow@chromium.org65fae842010-08-25 15:26:24 +00006595 // Drop arguments from the stack.
6596 __ pop(ecx);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006597 __ add(esp, Immediate(2 * kPointerSize));
ricow@chromium.org65fae842010-08-25 15:26:24 +00006598 __ push(ecx);
6599 GenerateCompareFlatAsciiStrings(masm, edx, eax, ecx, ebx, edi);
6600
6601 // Call the runtime; it returns -1 (less), 0 (equal), or 1 (greater)
6602 // tagged as a small integer.
6603 __ bind(&runtime);
6604 __ TailCallRuntime(Runtime::kStringCompare, 2, 1);
6605}
6606
kasperl@chromium.orga5551262010-12-07 12:49:48 +00006607
kasperl@chromium.orga5551262010-12-07 12:49:48 +00006608void ICCompareStub::GenerateSmis(MacroAssembler* masm) {
6609 ASSERT(state_ == CompareIC::SMIS);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006610 Label miss;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006611 __ mov(ecx, edx);
6612 __ or_(ecx, eax);
whesse@chromium.org7b260152011-06-20 15:33:18 +00006613 __ JumpIfNotSmi(ecx, &miss, Label::kNear);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00006614
6615 if (GetCondition() == equal) {
6616 // For equality we do not care about the sign of the result.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006617 __ sub(eax, edx);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00006618 } else {
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006619 Label done;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006620 __ sub(edx, eax);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006621 __ j(no_overflow, &done, Label::kNear);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00006622 // Correct sign of result in case of overflow.
6623 __ not_(edx);
6624 __ bind(&done);
6625 __ mov(eax, edx);
6626 }
6627 __ ret(0);
6628
6629 __ bind(&miss);
6630 GenerateMiss(masm);
6631}
6632
6633
6634void ICCompareStub::GenerateHeapNumbers(MacroAssembler* masm) {
6635 ASSERT(state_ == CompareIC::HEAP_NUMBERS);
6636
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006637 Label generic_stub;
ulan@chromium.org9a21ec42012-03-06 08:42:24 +00006638 Label unordered, maybe_undefined1, maybe_undefined2;
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006639 Label miss;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006640 __ mov(ecx, edx);
6641 __ and_(ecx, eax);
whesse@chromium.org7b260152011-06-20 15:33:18 +00006642 __ JumpIfSmi(ecx, &generic_stub, Label::kNear);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00006643
6644 __ CmpObjectType(eax, HEAP_NUMBER_TYPE, ecx);
ulan@chromium.org9a21ec42012-03-06 08:42:24 +00006645 __ j(not_equal, &maybe_undefined1, Label::kNear);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00006646 __ CmpObjectType(edx, HEAP_NUMBER_TYPE, ecx);
ulan@chromium.org9a21ec42012-03-06 08:42:24 +00006647 __ j(not_equal, &maybe_undefined2, Label::kNear);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00006648
6649 // Inlining the double comparison and falling back to the general compare
6650 // stub if NaN is involved or SS2 or CMOV is unsupported.
kmillikin@chromium.orgc36ce6e2011-04-04 08:25:31 +00006651 if (CpuFeatures::IsSupported(SSE2) && CpuFeatures::IsSupported(CMOV)) {
kasperl@chromium.orga5551262010-12-07 12:49:48 +00006652 CpuFeatures::Scope scope1(SSE2);
6653 CpuFeatures::Scope scope2(CMOV);
6654
6655 // Load left and right operand
6656 __ movdbl(xmm0, FieldOperand(edx, HeapNumber::kValueOffset));
6657 __ movdbl(xmm1, FieldOperand(eax, HeapNumber::kValueOffset));
6658
6659 // Compare operands
6660 __ ucomisd(xmm0, xmm1);
6661
6662 // Don't base result on EFLAGS when a NaN is involved.
vegorov@chromium.org7304bca2011-05-16 12:14:13 +00006663 __ j(parity_even, &unordered, Label::kNear);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00006664
6665 // Return a result of -1, 0, or 1, based on EFLAGS.
6666 // Performing mov, because xor would destroy the flag register.
6667 __ mov(eax, 0); // equal
6668 __ mov(ecx, Immediate(Smi::FromInt(1)));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006669 __ cmov(above, eax, ecx);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00006670 __ mov(ecx, Immediate(Smi::FromInt(-1)));
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006671 __ cmov(below, eax, ecx);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00006672 __ ret(0);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00006673 }
6674
ulan@chromium.org9a21ec42012-03-06 08:42:24 +00006675 __ bind(&unordered);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00006676 CompareStub stub(GetCondition(), strict(), NO_COMPARE_FLAGS);
6677 __ bind(&generic_stub);
6678 __ jmp(stub.GetCode(), RelocInfo::CODE_TARGET);
6679
ulan@chromium.org9a21ec42012-03-06 08:42:24 +00006680 __ bind(&maybe_undefined1);
6681 if (Token::IsOrderedRelationalCompareOp(op_)) {
6682 __ cmp(eax, Immediate(masm->isolate()->factory()->undefined_value()));
6683 __ j(not_equal, &miss);
6684 __ CmpObjectType(edx, HEAP_NUMBER_TYPE, ecx);
6685 __ j(not_equal, &maybe_undefined2, Label::kNear);
6686 __ jmp(&unordered);
6687 }
6688
6689 __ bind(&maybe_undefined2);
6690 if (Token::IsOrderedRelationalCompareOp(op_)) {
6691 __ cmp(edx, Immediate(masm->isolate()->factory()->undefined_value()));
6692 __ j(equal, &unordered);
6693 }
6694
kasperl@chromium.orga5551262010-12-07 12:49:48 +00006695 __ bind(&miss);
6696 GenerateMiss(masm);
6697}
6698
6699
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006700void ICCompareStub::GenerateSymbols(MacroAssembler* masm) {
6701 ASSERT(state_ == CompareIC::SYMBOLS);
6702 ASSERT(GetCondition() == equal);
6703
6704 // Registers containing left and right operands respectively.
6705 Register left = edx;
6706 Register right = eax;
6707 Register tmp1 = ecx;
6708 Register tmp2 = ebx;
6709
6710 // Check that both operands are heap objects.
6711 Label miss;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006712 __ mov(tmp1, left);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006713 STATIC_ASSERT(kSmiTag == 0);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006714 __ and_(tmp1, right);
whesse@chromium.org7b260152011-06-20 15:33:18 +00006715 __ JumpIfSmi(tmp1, &miss, Label::kNear);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006716
6717 // Check that both operands are symbols.
6718 __ mov(tmp1, FieldOperand(left, HeapObject::kMapOffset));
6719 __ mov(tmp2, FieldOperand(right, HeapObject::kMapOffset));
6720 __ movzx_b(tmp1, FieldOperand(tmp1, Map::kInstanceTypeOffset));
6721 __ movzx_b(tmp2, FieldOperand(tmp2, Map::kInstanceTypeOffset));
6722 STATIC_ASSERT(kSymbolTag != 0);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006723 __ and_(tmp1, tmp2);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006724 __ test(tmp1, Immediate(kIsSymbolMask));
6725 __ j(zero, &miss, Label::kNear);
6726
6727 // Symbols are compared by identity.
6728 Label done;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006729 __ cmp(left, right);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006730 // Make sure eax is non-zero. At this point input operands are
6731 // guaranteed to be non-zero.
6732 ASSERT(right.is(eax));
6733 __ j(not_equal, &done, Label::kNear);
6734 STATIC_ASSERT(EQUAL == 0);
6735 STATIC_ASSERT(kSmiTag == 0);
6736 __ Set(eax, Immediate(Smi::FromInt(EQUAL)));
6737 __ bind(&done);
6738 __ ret(0);
6739
6740 __ bind(&miss);
6741 GenerateMiss(masm);
6742}
6743
6744
lrn@chromium.org1c092762011-05-09 09:42:16 +00006745void ICCompareStub::GenerateStrings(MacroAssembler* masm) {
6746 ASSERT(state_ == CompareIC::STRINGS);
lrn@chromium.org1c092762011-05-09 09:42:16 +00006747 Label miss;
6748
svenpanne@chromium.org4efbdb12012-03-12 08:18:42 +00006749 bool equality = Token::IsEqualityOp(op_);
6750
lrn@chromium.org1c092762011-05-09 09:42:16 +00006751 // Registers containing left and right operands respectively.
6752 Register left = edx;
6753 Register right = eax;
6754 Register tmp1 = ecx;
6755 Register tmp2 = ebx;
6756 Register tmp3 = edi;
6757
6758 // Check that both operands are heap objects.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006759 __ mov(tmp1, left);
lrn@chromium.org1c092762011-05-09 09:42:16 +00006760 STATIC_ASSERT(kSmiTag == 0);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006761 __ and_(tmp1, right);
whesse@chromium.org7b260152011-06-20 15:33:18 +00006762 __ JumpIfSmi(tmp1, &miss);
lrn@chromium.org1c092762011-05-09 09:42:16 +00006763
6764 // Check that both operands are strings. This leaves the instance
6765 // types loaded in tmp1 and tmp2.
6766 __ mov(tmp1, FieldOperand(left, HeapObject::kMapOffset));
6767 __ mov(tmp2, FieldOperand(right, HeapObject::kMapOffset));
6768 __ movzx_b(tmp1, FieldOperand(tmp1, Map::kInstanceTypeOffset));
6769 __ movzx_b(tmp2, FieldOperand(tmp2, Map::kInstanceTypeOffset));
6770 __ mov(tmp3, tmp1);
6771 STATIC_ASSERT(kNotStringTag != 0);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006772 __ or_(tmp3, tmp2);
lrn@chromium.org1c092762011-05-09 09:42:16 +00006773 __ test(tmp3, Immediate(kIsNotStringMask));
6774 __ j(not_zero, &miss);
6775
6776 // Fast check for identical strings.
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006777 Label not_same;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006778 __ cmp(left, right);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006779 __ j(not_equal, &not_same, Label::kNear);
lrn@chromium.org1c092762011-05-09 09:42:16 +00006780 STATIC_ASSERT(EQUAL == 0);
6781 STATIC_ASSERT(kSmiTag == 0);
6782 __ Set(eax, Immediate(Smi::FromInt(EQUAL)));
6783 __ ret(0);
6784
6785 // Handle not identical strings.
6786 __ bind(&not_same);
6787
6788 // Check that both strings are symbols. If they are, we're done
svenpanne@chromium.org4efbdb12012-03-12 08:18:42 +00006789 // because we already know they are not identical. But in the case of
6790 // non-equality compare, we still need to determine the order.
6791 if (equality) {
6792 Label do_compare;
6793 STATIC_ASSERT(kSymbolTag != 0);
6794 __ and_(tmp1, tmp2);
6795 __ test(tmp1, Immediate(kIsSymbolMask));
6796 __ j(zero, &do_compare, Label::kNear);
6797 // Make sure eax is non-zero. At this point input operands are
6798 // guaranteed to be non-zero.
6799 ASSERT(right.is(eax));
6800 __ ret(0);
6801 __ bind(&do_compare);
6802 }
lrn@chromium.org1c092762011-05-09 09:42:16 +00006803
6804 // Check that both strings are sequential ASCII.
6805 Label runtime;
lrn@chromium.org1c092762011-05-09 09:42:16 +00006806 __ JumpIfNotBothSequentialAsciiStrings(left, right, tmp1, tmp2, &runtime);
6807
6808 // Compare flat ASCII strings. Returns when done.
svenpanne@chromium.org4efbdb12012-03-12 08:18:42 +00006809 if (equality) {
6810 StringCompareStub::GenerateFlatAsciiStringEquals(
6811 masm, left, right, tmp1, tmp2);
6812 } else {
6813 StringCompareStub::GenerateCompareFlatAsciiStrings(
6814 masm, left, right, tmp1, tmp2, tmp3);
6815 }
lrn@chromium.org1c092762011-05-09 09:42:16 +00006816
6817 // Handle more complex cases in runtime.
6818 __ bind(&runtime);
6819 __ pop(tmp1); // Return address.
6820 __ push(left);
6821 __ push(right);
6822 __ push(tmp1);
svenpanne@chromium.org4efbdb12012-03-12 08:18:42 +00006823 if (equality) {
6824 __ TailCallRuntime(Runtime::kStringEquals, 2, 1);
6825 } else {
6826 __ TailCallRuntime(Runtime::kStringCompare, 2, 1);
6827 }
lrn@chromium.org1c092762011-05-09 09:42:16 +00006828
6829 __ bind(&miss);
6830 GenerateMiss(masm);
6831}
6832
6833
kasperl@chromium.orga5551262010-12-07 12:49:48 +00006834void ICCompareStub::GenerateObjects(MacroAssembler* masm) {
6835 ASSERT(state_ == CompareIC::OBJECTS);
karlklose@chromium.org83a47282011-05-11 11:54:09 +00006836 Label miss;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006837 __ mov(ecx, edx);
6838 __ and_(ecx, eax);
whesse@chromium.org7b260152011-06-20 15:33:18 +00006839 __ JumpIfSmi(ecx, &miss, Label::kNear);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00006840
6841 __ CmpObjectType(eax, JS_OBJECT_TYPE, ecx);
vegorov@chromium.org7304bca2011-05-16 12:14:13 +00006842 __ j(not_equal, &miss, Label::kNear);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00006843 __ CmpObjectType(edx, JS_OBJECT_TYPE, ecx);
vegorov@chromium.org7304bca2011-05-16 12:14:13 +00006844 __ j(not_equal, &miss, Label::kNear);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00006845
6846 ASSERT(GetCondition() == equal);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006847 __ sub(eax, edx);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00006848 __ ret(0);
6849
6850 __ bind(&miss);
6851 GenerateMiss(masm);
6852}
6853
6854
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00006855void ICCompareStub::GenerateKnownObjects(MacroAssembler* masm) {
6856 Label miss;
6857 __ mov(ecx, edx);
6858 __ and_(ecx, eax);
6859 __ JumpIfSmi(ecx, &miss, Label::kNear);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00006860
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00006861 __ mov(ecx, FieldOperand(eax, HeapObject::kMapOffset));
6862 __ mov(ebx, FieldOperand(edx, HeapObject::kMapOffset));
6863 __ cmp(ecx, known_map_);
6864 __ j(not_equal, &miss, Label::kNear);
6865 __ cmp(ebx, known_map_);
6866 __ j(not_equal, &miss, Label::kNear);
6867
6868 __ sub(eax, edx);
6869 __ ret(0);
6870
6871 __ bind(&miss);
6872 GenerateMiss(masm);
6873}
6874
6875
6876void ICCompareStub::GenerateMiss(MacroAssembler* masm) {
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006877 {
6878 // Call the runtime system in a fresh internal frame.
6879 ExternalReference miss = ExternalReference(IC_Utility(IC::kCompareIC_Miss),
6880 masm->isolate());
6881 FrameScope scope(masm, StackFrame::INTERNAL);
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00006882 __ push(edx); // Preserve edx and eax.
6883 __ push(eax);
6884 __ push(edx); // And also use them as the arguments.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006885 __ push(eax);
6886 __ push(Immediate(Smi::FromInt(op_)));
6887 __ CallExternalReference(miss, 3);
ricow@chromium.org64e3a4b2011-12-13 08:07:27 +00006888 // Compute the entry point of the rewritten stub.
6889 __ lea(edi, FieldOperand(eax, Code::kHeaderSize));
6890 __ pop(eax);
6891 __ pop(edx);
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006892 }
kasperl@chromium.orga5551262010-12-07 12:49:48 +00006893
kasperl@chromium.orga5551262010-12-07 12:49:48 +00006894 // Do a tail call to the rewritten stub.
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006895 __ jmp(edi);
kasperl@chromium.orga5551262010-12-07 12:49:48 +00006896}
6897
6898
lrn@chromium.org1c092762011-05-09 09:42:16 +00006899// Helper function used to check that the dictionary doesn't contain
6900// the property. This function may return false negatives, so miss_label
6901// must always call a backup property check that is complete.
6902// This function is safe to call if the receiver has fast properties.
6903// Name must be a symbol and receiver must be a heap object.
erik.corry@gmail.com394dbcf2011-10-27 07:38:48 +00006904void StringDictionaryLookupStub::GenerateNegativeLookup(MacroAssembler* masm,
6905 Label* miss,
6906 Label* done,
6907 Register properties,
6908 Handle<String> name,
6909 Register r0) {
6910 ASSERT(name->IsSymbol());
6911
6912 // If names of slots in range from 1 to kProbes - 1 for the hash value are
6913 // not equal to the name and kProbes-th slot is not used (its name is the
6914 // undefined value), it guarantees the hash table doesn't contain the
6915 // property. It's true even if some slots represent deleted properties
ulan@chromium.org967e2702012-02-28 09:49:15 +00006916 // (their names are the hole value).
erik.corry@gmail.com394dbcf2011-10-27 07:38:48 +00006917 for (int i = 0; i < kInlinedProbes; i++) {
6918 // Compute the masked index: (hash + i + i * i) & mask.
6919 Register index = r0;
6920 // Capacity is smi 2^n.
6921 __ mov(index, FieldOperand(properties, kCapacityOffset));
6922 __ dec(index);
6923 __ and_(index,
6924 Immediate(Smi::FromInt(name->Hash() +
6925 StringDictionary::GetProbeOffset(i))));
6926
6927 // Scale the index by multiplying by the entry size.
6928 ASSERT(StringDictionary::kEntrySize == 3);
6929 __ lea(index, Operand(index, index, times_2, 0)); // index *= 3.
6930 Register entity_name = r0;
6931 // Having undefined at this place means the name is not contained.
6932 ASSERT_EQ(kSmiTagSize, 1);
6933 __ mov(entity_name, Operand(properties, index, times_half_pointer_size,
6934 kElementsStartOffset - kHeapObjectTag));
6935 __ cmp(entity_name, masm->isolate()->factory()->undefined_value());
6936 __ j(equal, done);
6937
6938 // Stop if found the property.
6939 __ cmp(entity_name, Handle<String>(name));
6940 __ j(equal, miss);
6941
ulan@chromium.org967e2702012-02-28 09:49:15 +00006942 Label the_hole;
6943 // Check for the hole and skip.
6944 __ cmp(entity_name, masm->isolate()->factory()->the_hole_value());
6945 __ j(equal, &the_hole, Label::kNear);
6946
erik.corry@gmail.com394dbcf2011-10-27 07:38:48 +00006947 // Check if the entry name is not a symbol.
6948 __ mov(entity_name, FieldOperand(entity_name, HeapObject::kMapOffset));
6949 __ test_b(FieldOperand(entity_name, Map::kInstanceTypeOffset),
6950 kIsSymbolMask);
6951 __ j(zero, miss);
ulan@chromium.org967e2702012-02-28 09:49:15 +00006952 __ bind(&the_hole);
erik.corry@gmail.com394dbcf2011-10-27 07:38:48 +00006953 }
6954
6955 StringDictionaryLookupStub stub(properties,
6956 r0,
6957 r0,
6958 StringDictionaryLookupStub::NEGATIVE_LOOKUP);
6959 __ push(Immediate(Handle<Object>(name)));
6960 __ push(Immediate(name->Hash()));
6961 __ CallStub(&stub);
6962 __ test(r0, r0);
6963 __ j(not_zero, miss);
6964 __ jmp(done);
6965}
6966
6967
lrn@chromium.org1c092762011-05-09 09:42:16 +00006968// Probe the string dictionary in the |elements| register. Jump to the
6969// |done| label if a property with the given name is found leaving the
6970// index into the dictionary in |r0|. Jump to the |miss| label
6971// otherwise.
6972void StringDictionaryLookupStub::GeneratePositiveLookup(MacroAssembler* masm,
6973 Label* miss,
6974 Label* done,
6975 Register elements,
6976 Register name,
6977 Register r0,
6978 Register r1) {
erik.corry@gmail.com6e28b562011-10-27 14:20:17 +00006979 ASSERT(!elements.is(r0));
6980 ASSERT(!elements.is(r1));
6981 ASSERT(!name.is(r0));
6982 ASSERT(!name.is(r1));
6983
svenpanne@chromium.orgc859c4f2012-10-15 11:51:39 +00006984 __ AssertString(name);
lrn@chromium.org1c092762011-05-09 09:42:16 +00006985
6986 __ mov(r1, FieldOperand(elements, kCapacityOffset));
6987 __ shr(r1, kSmiTagSize); // convert smi to int
6988 __ dec(r1);
6989
6990 // Generate an unrolled loop that performs a few probes before
6991 // giving up. Measurements done on Gmail indicate that 2 probes
6992 // cover ~93% of loads from dictionaries.
6993 for (int i = 0; i < kInlinedProbes; i++) {
6994 // Compute the masked index: (hash + i + i * i) & mask.
6995 __ mov(r0, FieldOperand(name, String::kHashFieldOffset));
6996 __ shr(r0, String::kHashShift);
6997 if (i > 0) {
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00006998 __ add(r0, Immediate(StringDictionary::GetProbeOffset(i)));
lrn@chromium.org1c092762011-05-09 09:42:16 +00006999 }
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00007000 __ and_(r0, r1);
lrn@chromium.org1c092762011-05-09 09:42:16 +00007001
7002 // Scale the index by multiplying by the entry size.
7003 ASSERT(StringDictionary::kEntrySize == 3);
7004 __ lea(r0, Operand(r0, r0, times_2, 0)); // r0 = r0 * 3
7005
7006 // Check if the key is identical to the name.
7007 __ cmp(name, Operand(elements,
7008 r0,
7009 times_4,
7010 kElementsStartOffset - kHeapObjectTag));
vegorov@chromium.org7304bca2011-05-16 12:14:13 +00007011 __ j(equal, done);
lrn@chromium.org1c092762011-05-09 09:42:16 +00007012 }
7013
7014 StringDictionaryLookupStub stub(elements,
7015 r1,
7016 r0,
7017 POSITIVE_LOOKUP);
7018 __ push(name);
7019 __ mov(r0, FieldOperand(name, String::kHashFieldOffset));
7020 __ shr(r0, String::kHashShift);
7021 __ push(r0);
7022 __ CallStub(&stub);
7023
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00007024 __ test(r1, r1);
lrn@chromium.org1c092762011-05-09 09:42:16 +00007025 __ j(zero, miss);
7026 __ jmp(done);
7027}
7028
7029
7030void StringDictionaryLookupStub::Generate(MacroAssembler* masm) {
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00007031 // This stub overrides SometimesSetsUpAFrame() to return false. That means
7032 // we cannot call anything that could cause a GC from this stub.
lrn@chromium.org1c092762011-05-09 09:42:16 +00007033 // Stack frame on entry:
7034 // esp[0 * kPointerSize]: return address.
7035 // esp[1 * kPointerSize]: key's hash.
7036 // esp[2 * kPointerSize]: key.
7037 // Registers:
7038 // dictionary_: StringDictionary to probe.
7039 // result_: used as scratch.
7040 // index_: will hold an index of entry if lookup is successful.
7041 // might alias with result_.
7042 // Returns:
7043 // result_ is zero if lookup failed, non zero otherwise.
7044
7045 Label in_dictionary, maybe_in_dictionary, not_in_dictionary;
7046
7047 Register scratch = result_;
7048
7049 __ mov(scratch, FieldOperand(dictionary_, kCapacityOffset));
7050 __ dec(scratch);
7051 __ SmiUntag(scratch);
7052 __ push(scratch);
7053
7054 // If names of slots in range from 1 to kProbes - 1 for the hash value are
7055 // not equal to the name and kProbes-th slot is not used (its name is the
7056 // undefined value), it guarantees the hash table doesn't contain the
7057 // property. It's true even if some slots represent deleted properties
7058 // (their names are the null value).
7059 for (int i = kInlinedProbes; i < kTotalProbes; i++) {
7060 // Compute the masked index: (hash + i + i * i) & mask.
7061 __ mov(scratch, Operand(esp, 2 * kPointerSize));
7062 if (i > 0) {
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00007063 __ add(scratch, Immediate(StringDictionary::GetProbeOffset(i)));
lrn@chromium.org1c092762011-05-09 09:42:16 +00007064 }
7065 __ and_(scratch, Operand(esp, 0));
7066
7067 // Scale the index by multiplying by the entry size.
7068 ASSERT(StringDictionary::kEntrySize == 3);
7069 __ lea(index_, Operand(scratch, scratch, times_2, 0)); // index *= 3.
7070
7071 // Having undefined at this place means the name is not contained.
7072 ASSERT_EQ(kSmiTagSize, 1);
7073 __ mov(scratch, Operand(dictionary_,
7074 index_,
7075 times_pointer_size,
7076 kElementsStartOffset - kHeapObjectTag));
7077 __ cmp(scratch, masm->isolate()->factory()->undefined_value());
7078 __ j(equal, &not_in_dictionary);
7079
7080 // Stop if found the property.
7081 __ cmp(scratch, Operand(esp, 3 * kPointerSize));
7082 __ j(equal, &in_dictionary);
7083
7084 if (i != kTotalProbes - 1 && mode_ == NEGATIVE_LOOKUP) {
7085 // If we hit a non symbol key during negative lookup
7086 // we have to bailout as this key might be equal to the
7087 // key we are looking for.
7088
7089 // Check if the entry name is not a symbol.
7090 __ mov(scratch, FieldOperand(scratch, HeapObject::kMapOffset));
7091 __ test_b(FieldOperand(scratch, Map::kInstanceTypeOffset),
7092 kIsSymbolMask);
7093 __ j(zero, &maybe_in_dictionary);
7094 }
7095 }
7096
7097 __ bind(&maybe_in_dictionary);
7098 // If we are doing negative lookup then probing failure should be
7099 // treated as a lookup success. For positive lookup probing failure
7100 // should be treated as lookup failure.
7101 if (mode_ == POSITIVE_LOOKUP) {
7102 __ mov(result_, Immediate(0));
7103 __ Drop(1);
7104 __ ret(2 * kPointerSize);
7105 }
7106
7107 __ bind(&in_dictionary);
7108 __ mov(result_, Immediate(1));
7109 __ Drop(1);
7110 __ ret(2 * kPointerSize);
7111
7112 __ bind(&not_in_dictionary);
7113 __ mov(result_, Immediate(0));
7114 __ Drop(1);
7115 __ ret(2 * kPointerSize);
7116}
7117
7118
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00007119struct AheadOfTimeWriteBarrierStubList {
7120 Register object, value, address;
7121 RememberedSetAction action;
7122};
7123
7124
jkummerow@chromium.org1456e702012-03-30 08:38:13 +00007125#define REG(Name) { kRegister_ ## Name ## _Code }
7126
7127static const AheadOfTimeWriteBarrierStubList kAheadOfTime[] = {
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00007128 // Used in RegExpExecStub.
jkummerow@chromium.org1456e702012-03-30 08:38:13 +00007129 { REG(ebx), REG(eax), REG(edi), EMIT_REMEMBERED_SET },
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00007130 // Used in CompileArrayPushCall.
jkummerow@chromium.org1456e702012-03-30 08:38:13 +00007131 { REG(ebx), REG(ecx), REG(edx), EMIT_REMEMBERED_SET },
7132 { REG(ebx), REG(edi), REG(edx), OMIT_REMEMBERED_SET },
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00007133 // Used in CompileStoreGlobal and CallFunctionStub.
jkummerow@chromium.org1456e702012-03-30 08:38:13 +00007134 { REG(ebx), REG(ecx), REG(edx), OMIT_REMEMBERED_SET },
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00007135 // Used in StoreStubCompiler::CompileStoreField and
7136 // KeyedStoreStubCompiler::CompileStoreField via GenerateStoreField.
jkummerow@chromium.org1456e702012-03-30 08:38:13 +00007137 { REG(edx), REG(ecx), REG(ebx), EMIT_REMEMBERED_SET },
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00007138 // GenerateStoreField calls the stub with two different permutations of
7139 // registers. This is the second.
jkummerow@chromium.org1456e702012-03-30 08:38:13 +00007140 { REG(ebx), REG(ecx), REG(edx), EMIT_REMEMBERED_SET },
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00007141 // StoreIC::GenerateNormal via GenerateDictionaryStore
jkummerow@chromium.org1456e702012-03-30 08:38:13 +00007142 { REG(ebx), REG(edi), REG(edx), EMIT_REMEMBERED_SET },
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00007143 // KeyedStoreIC::GenerateGeneric.
jkummerow@chromium.org1456e702012-03-30 08:38:13 +00007144 { REG(ebx), REG(edx), REG(ecx), EMIT_REMEMBERED_SET},
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00007145 // KeyedStoreStubCompiler::GenerateStoreFastElement.
jkummerow@chromium.org1456e702012-03-30 08:38:13 +00007146 { REG(edi), REG(ebx), REG(ecx), EMIT_REMEMBERED_SET},
7147 { REG(edx), REG(edi), REG(ebx), EMIT_REMEMBERED_SET},
svenpanne@chromium.org830d30c2012-05-29 13:20:14 +00007148 // ElementsTransitionGenerator::GenerateMapChangeElementTransition
7149 // and ElementsTransitionGenerator::GenerateSmiToDouble
erik.corry@gmail.com394dbcf2011-10-27 07:38:48 +00007150 // and ElementsTransitionGenerator::GenerateDoubleToObject
jkummerow@chromium.org1456e702012-03-30 08:38:13 +00007151 { REG(edx), REG(ebx), REG(edi), EMIT_REMEMBERED_SET},
7152 { REG(edx), REG(ebx), REG(edi), OMIT_REMEMBERED_SET},
erik.corry@gmail.com394dbcf2011-10-27 07:38:48 +00007153 // ElementsTransitionGenerator::GenerateDoubleToObject
jkummerow@chromium.org1456e702012-03-30 08:38:13 +00007154 { REG(eax), REG(edx), REG(esi), EMIT_REMEMBERED_SET},
7155 { REG(edx), REG(eax), REG(edi), EMIT_REMEMBERED_SET},
jkummerow@chromium.orgc3b37122011-11-07 10:14:12 +00007156 // StoreArrayLiteralElementStub::Generate
jkummerow@chromium.org1456e702012-03-30 08:38:13 +00007157 { REG(ebx), REG(eax), REG(ecx), EMIT_REMEMBERED_SET},
yangguo@chromium.org5a11aaf2012-06-20 11:29:00 +00007158 // FastNewClosureStub
7159 { REG(ecx), REG(edx), REG(ebx), EMIT_REMEMBERED_SET},
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00007160 // Null termination.
jkummerow@chromium.org1456e702012-03-30 08:38:13 +00007161 { REG(no_reg), REG(no_reg), REG(no_reg), EMIT_REMEMBERED_SET}
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00007162};
7163
jkummerow@chromium.org1456e702012-03-30 08:38:13 +00007164#undef REG
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00007165
7166bool RecordWriteStub::IsPregenerated() {
jkummerow@chromium.org1456e702012-03-30 08:38:13 +00007167 for (const AheadOfTimeWriteBarrierStubList* entry = kAheadOfTime;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00007168 !entry->object.is(no_reg);
7169 entry++) {
7170 if (object_.is(entry->object) &&
7171 value_.is(entry->value) &&
7172 address_.is(entry->address) &&
7173 remembered_set_action_ == entry->action &&
7174 save_fp_regs_mode_ == kDontSaveFPRegs) {
7175 return true;
7176 }
7177 }
7178 return false;
7179}
7180
7181
7182void StoreBufferOverflowStub::GenerateFixedRegStubsAheadOfTime() {
7183 StoreBufferOverflowStub stub1(kDontSaveFPRegs);
7184 stub1.GetCode()->set_is_pregenerated(true);
7185
7186 CpuFeatures::TryForceFeatureScope scope(SSE2);
7187 if (CpuFeatures::IsSupported(SSE2)) {
7188 StoreBufferOverflowStub stub2(kSaveFPRegs);
7189 stub2.GetCode()->set_is_pregenerated(true);
7190 }
7191}
7192
7193
7194void RecordWriteStub::GenerateFixedRegStubsAheadOfTime() {
jkummerow@chromium.org1456e702012-03-30 08:38:13 +00007195 for (const AheadOfTimeWriteBarrierStubList* entry = kAheadOfTime;
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00007196 !entry->object.is(no_reg);
7197 entry++) {
7198 RecordWriteStub stub(entry->object,
7199 entry->value,
7200 entry->address,
7201 entry->action,
7202 kDontSaveFPRegs);
7203 stub.GetCode()->set_is_pregenerated(true);
7204 }
7205}
7206
7207
verwaest@chromium.org33e09c82012-10-10 17:07:22 +00007208bool CodeStub::CanUseFPRegisters() {
7209 return CpuFeatures::IsSupported(SSE2);
7210}
7211
7212
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00007213// Takes the input in 3 registers: address_ value_ and object_. A pointer to
7214// the value has just been written into the object, now this stub makes sure
7215// we keep the GC informed. The word in the object where the value has been
7216// written is in the address register.
7217void RecordWriteStub::Generate(MacroAssembler* masm) {
7218 Label skip_to_incremental_noncompacting;
7219 Label skip_to_incremental_compacting;
7220
7221 // The first two instructions are generated with labels so as to get the
7222 // offset fixed up correctly by the bind(Label*) call. We patch it back and
7223 // forth between a compare instructions (a nop in this position) and the
7224 // real branch when we start and stop incremental heap marking.
7225 __ jmp(&skip_to_incremental_noncompacting, Label::kNear);
7226 __ jmp(&skip_to_incremental_compacting, Label::kFar);
7227
7228 if (remembered_set_action_ == EMIT_REMEMBERED_SET) {
7229 __ RememberedSetHelper(object_,
7230 address_,
7231 value_,
7232 save_fp_regs_mode_,
7233 MacroAssembler::kReturnAtEnd);
7234 } else {
7235 __ ret(0);
7236 }
7237
7238 __ bind(&skip_to_incremental_noncompacting);
7239 GenerateIncremental(masm, INCREMENTAL);
7240
7241 __ bind(&skip_to_incremental_compacting);
7242 GenerateIncremental(masm, INCREMENTAL_COMPACTION);
7243
7244 // Initial mode of the stub is expected to be STORE_BUFFER_ONLY.
7245 // Will be checked in IncrementalMarking::ActivateGeneratedStub.
7246 masm->set_byte_at(0, kTwoByteNopInstruction);
7247 masm->set_byte_at(2, kFiveByteNopInstruction);
7248}
7249
7250
7251void RecordWriteStub::GenerateIncremental(MacroAssembler* masm, Mode mode) {
7252 regs_.Save(masm);
7253
7254 if (remembered_set_action_ == EMIT_REMEMBERED_SET) {
7255 Label dont_need_remembered_set;
7256
7257 __ mov(regs_.scratch0(), Operand(regs_.address(), 0));
7258 __ JumpIfNotInNewSpace(regs_.scratch0(), // Value.
7259 regs_.scratch0(),
7260 &dont_need_remembered_set);
7261
7262 __ CheckPageFlag(regs_.object(),
7263 regs_.scratch0(),
7264 1 << MemoryChunk::SCAN_ON_SCAVENGE,
7265 not_zero,
7266 &dont_need_remembered_set);
7267
7268 // First notify the incremental marker if necessary, then update the
7269 // remembered set.
7270 CheckNeedsToInformIncrementalMarker(
7271 masm,
7272 kUpdateRememberedSetOnNoNeedToInformIncrementalMarker,
7273 mode);
7274 InformIncrementalMarker(masm, mode);
7275 regs_.Restore(masm);
7276 __ RememberedSetHelper(object_,
7277 address_,
7278 value_,
7279 save_fp_regs_mode_,
7280 MacroAssembler::kReturnAtEnd);
7281
7282 __ bind(&dont_need_remembered_set);
7283 }
7284
7285 CheckNeedsToInformIncrementalMarker(
7286 masm,
7287 kReturnOnNoNeedToInformIncrementalMarker,
7288 mode);
7289 InformIncrementalMarker(masm, mode);
7290 regs_.Restore(masm);
7291 __ ret(0);
7292}
7293
7294
7295void RecordWriteStub::InformIncrementalMarker(MacroAssembler* masm, Mode mode) {
7296 regs_.SaveCallerSaveRegisters(masm, save_fp_regs_mode_);
7297 int argument_count = 3;
7298 __ PrepareCallCFunction(argument_count, regs_.scratch0());
7299 __ mov(Operand(esp, 0 * kPointerSize), regs_.object());
7300 if (mode == INCREMENTAL_COMPACTION) {
7301 __ mov(Operand(esp, 1 * kPointerSize), regs_.address()); // Slot.
7302 } else {
7303 ASSERT(mode == INCREMENTAL);
7304 __ mov(regs_.scratch0(), Operand(regs_.address(), 0));
7305 __ mov(Operand(esp, 1 * kPointerSize), regs_.scratch0()); // Value.
7306 }
7307 __ mov(Operand(esp, 2 * kPointerSize),
7308 Immediate(ExternalReference::isolate_address()));
7309
7310 AllowExternalCallThatCantCauseGC scope(masm);
7311 if (mode == INCREMENTAL_COMPACTION) {
7312 __ CallCFunction(
7313 ExternalReference::incremental_evacuation_record_write_function(
7314 masm->isolate()),
7315 argument_count);
7316 } else {
7317 ASSERT(mode == INCREMENTAL);
7318 __ CallCFunction(
7319 ExternalReference::incremental_marking_record_write_function(
7320 masm->isolate()),
7321 argument_count);
7322 }
7323 regs_.RestoreCallerSaveRegisters(masm, save_fp_regs_mode_);
7324}
7325
7326
7327void RecordWriteStub::CheckNeedsToInformIncrementalMarker(
7328 MacroAssembler* masm,
7329 OnNoNeedToInformIncrementalMarker on_no_need,
7330 Mode mode) {
7331 Label object_is_black, need_incremental, need_incremental_pop_object;
7332
verwaest@chromium.org33e09c82012-10-10 17:07:22 +00007333 __ mov(regs_.scratch0(), Immediate(~Page::kPageAlignmentMask));
7334 __ and_(regs_.scratch0(), regs_.object());
7335 __ mov(regs_.scratch1(),
7336 Operand(regs_.scratch0(),
7337 MemoryChunk::kWriteBarrierCounterOffset));
7338 __ sub(regs_.scratch1(), Immediate(1));
7339 __ mov(Operand(regs_.scratch0(),
7340 MemoryChunk::kWriteBarrierCounterOffset),
7341 regs_.scratch1());
7342 __ j(negative, &need_incremental);
7343
erik.corry@gmail.comc3b670f2011-10-05 21:44:48 +00007344 // Let's look at the color of the object: If it is not black we don't have
7345 // to inform the incremental marker.
7346 __ JumpIfBlack(regs_.object(),
7347 regs_.scratch0(),
7348 regs_.scratch1(),
7349 &object_is_black,
7350 Label::kNear);
7351
7352 regs_.Restore(masm);
7353 if (on_no_need == kUpdateRememberedSetOnNoNeedToInformIncrementalMarker) {
7354 __ RememberedSetHelper(object_,
7355 address_,
7356 value_,
7357 save_fp_regs_mode_,
7358 MacroAssembler::kReturnAtEnd);
7359 } else {
7360 __ ret(0);
7361 }
7362
7363 __ bind(&object_is_black);
7364
7365 // Get the value from the slot.
7366 __ mov(regs_.scratch0(), Operand(regs_.address(), 0));
7367
7368 if (mode == INCREMENTAL_COMPACTION) {
7369 Label ensure_not_white;
7370
7371 __ CheckPageFlag(regs_.scratch0(), // Contains value.
7372 regs_.scratch1(), // Scratch.
7373 MemoryChunk::kEvacuationCandidateMask,
7374 zero,
7375 &ensure_not_white,
7376 Label::kNear);
7377
7378 __ CheckPageFlag(regs_.object(),
7379 regs_.scratch1(), // Scratch.
7380 MemoryChunk::kSkipEvacuationSlotsRecordingMask,
7381 not_zero,
7382 &ensure_not_white,
7383 Label::kNear);
7384
7385 __ jmp(&need_incremental);
7386
7387 __ bind(&ensure_not_white);
7388 }
7389
7390 // We need an extra register for this, so we push the object register
7391 // temporarily.
7392 __ push(regs_.object());
7393 __ EnsureNotWhite(regs_.scratch0(), // The value.
7394 regs_.scratch1(), // Scratch.
7395 regs_.object(), // Scratch.
7396 &need_incremental_pop_object,
7397 Label::kNear);
7398 __ pop(regs_.object());
7399
7400 regs_.Restore(masm);
7401 if (on_no_need == kUpdateRememberedSetOnNoNeedToInformIncrementalMarker) {
7402 __ RememberedSetHelper(object_,
7403 address_,
7404 value_,
7405 save_fp_regs_mode_,
7406 MacroAssembler::kReturnAtEnd);
7407 } else {
7408 __ ret(0);
7409 }
7410
7411 __ bind(&need_incremental_pop_object);
7412 __ pop(regs_.object());
7413
7414 __ bind(&need_incremental);
7415
7416 // Fall through when we need to inform the incremental marker.
7417}
7418
jkummerow@chromium.orgc3b37122011-11-07 10:14:12 +00007419
7420void StoreArrayLiteralElementStub::Generate(MacroAssembler* masm) {
7421 // ----------- S t a t e -------------
7422 // -- eax : element value to store
7423 // -- ebx : array literal
7424 // -- edi : map of array literal
7425 // -- ecx : element index as smi
7426 // -- edx : array literal index in function
7427 // -- esp[0] : return address
7428 // -----------------------------------
7429
7430 Label element_done;
7431 Label double_elements;
7432 Label smi_element;
7433 Label slow_elements;
7434 Label slow_elements_from_double;
7435 Label fast_elements;
7436
jkummerow@chromium.org04e4f1e2011-11-14 13:36:17 +00007437 __ CheckFastElements(edi, &double_elements);
jkummerow@chromium.orgc3b37122011-11-07 10:14:12 +00007438
svenpanne@chromium.org830d30c2012-05-29 13:20:14 +00007439 // Check for FAST_*_SMI_ELEMENTS or FAST_*_ELEMENTS elements
jkummerow@chromium.org04e4f1e2011-11-14 13:36:17 +00007440 __ JumpIfSmi(eax, &smi_element);
svenpanne@chromium.org830d30c2012-05-29 13:20:14 +00007441 __ CheckFastSmiElements(edi, &fast_elements, Label::kNear);
jkummerow@chromium.orgc3b37122011-11-07 10:14:12 +00007442
jkummerow@chromium.org04e4f1e2011-11-14 13:36:17 +00007443 // Store into the array literal requires a elements transition. Call into
7444 // the runtime.
jkummerow@chromium.orgc3b37122011-11-07 10:14:12 +00007445
7446 __ bind(&slow_elements);
7447 __ pop(edi); // Pop return address and remember to put back later for tail
7448 // call.
7449 __ push(ebx);
7450 __ push(ecx);
7451 __ push(eax);
7452 __ mov(ebx, Operand(ebp, JavaScriptFrameConstants::kFunctionOffset));
7453 __ push(FieldOperand(ebx, JSFunction::kLiteralsOffset));
7454 __ push(edx);
7455 __ push(edi); // Return return address so that tail call returns to right
7456 // place.
7457 __ TailCallRuntime(Runtime::kStoreArrayLiteralElement, 5, 1);
7458
jkummerow@chromium.org04e4f1e2011-11-14 13:36:17 +00007459 __ bind(&slow_elements_from_double);
7460 __ pop(edx);
7461 __ jmp(&slow_elements);
jkummerow@chromium.orgc3b37122011-11-07 10:14:12 +00007462
svenpanne@chromium.org830d30c2012-05-29 13:20:14 +00007463 // Array literal has ElementsKind of FAST_*_ELEMENTS and value is an object.
jkummerow@chromium.org04e4f1e2011-11-14 13:36:17 +00007464 __ bind(&fast_elements);
7465 __ mov(ebx, FieldOperand(ebx, JSObject::kElementsOffset));
7466 __ lea(ecx, FieldOperand(ebx, ecx, times_half_pointer_size,
7467 FixedArrayBase::kHeaderSize));
7468 __ mov(Operand(ecx, 0), eax);
7469 // Update the write barrier for the array store.
7470 __ RecordWrite(ebx, ecx, eax,
7471 kDontSaveFPRegs,
7472 EMIT_REMEMBERED_SET,
7473 OMIT_SMI_CHECK);
7474 __ ret(0);
jkummerow@chromium.orgc3b37122011-11-07 10:14:12 +00007475
svenpanne@chromium.org830d30c2012-05-29 13:20:14 +00007476 // Array literal has ElementsKind of FAST_*_SMI_ELEMENTS or FAST_*_ELEMENTS,
7477 // and value is Smi.
jkummerow@chromium.org04e4f1e2011-11-14 13:36:17 +00007478 __ bind(&smi_element);
7479 __ mov(ebx, FieldOperand(ebx, JSObject::kElementsOffset));
7480 __ mov(FieldOperand(ebx, ecx, times_half_pointer_size,
7481 FixedArrayBase::kHeaderSize), eax);
7482 __ ret(0);
jkummerow@chromium.orgc3b37122011-11-07 10:14:12 +00007483
svenpanne@chromium.org830d30c2012-05-29 13:20:14 +00007484 // Array literal has ElementsKind of FAST_*_DOUBLE_ELEMENTS.
jkummerow@chromium.org04e4f1e2011-11-14 13:36:17 +00007485 __ bind(&double_elements);
jkummerow@chromium.orgc3b37122011-11-07 10:14:12 +00007486
jkummerow@chromium.org04e4f1e2011-11-14 13:36:17 +00007487 __ push(edx);
7488 __ mov(edx, FieldOperand(ebx, JSObject::kElementsOffset));
7489 __ StoreNumberToDoubleElements(eax,
7490 edx,
7491 ecx,
7492 edi,
7493 xmm0,
7494 &slow_elements_from_double,
7495 false);
7496 __ pop(edx);
7497 __ ret(0);
jkummerow@chromium.orgc3b37122011-11-07 10:14:12 +00007498}
7499
verwaest@chromium.org753aee42012-07-17 16:15:42 +00007500
7501void ProfileEntryHookStub::MaybeCallEntryHook(MacroAssembler* masm) {
7502 if (entry_hook_ != NULL) {
7503 ProfileEntryHookStub stub;
7504 masm->CallStub(&stub);
7505 }
7506}
7507
7508
7509void ProfileEntryHookStub::Generate(MacroAssembler* masm) {
7510 // Ecx is the only volatile register we must save.
7511 __ push(ecx);
7512
7513 // Calculate and push the original stack pointer.
7514 __ lea(eax, Operand(esp, kPointerSize));
7515 __ push(eax);
7516
7517 // Calculate and push the function address.
7518 __ mov(eax, Operand(eax, 0));
7519 __ sub(eax, Immediate(Assembler::kCallInstructionLength));
7520 __ push(eax);
7521
7522 // Call the entry hook.
7523 int32_t hook_location = reinterpret_cast<int32_t>(&entry_hook_);
7524 __ call(Operand(hook_location, RelocInfo::NONE));
7525 __ add(esp, Immediate(2 * kPointerSize));
7526
7527 // Restore ecx.
7528 __ pop(ecx);
7529 __ ret(0);
7530}
7531
ricow@chromium.org65fae842010-08-25 15:26:24 +00007532#undef __
7533
7534} } // namespace v8::internal
7535
7536#endif // V8_TARGET_ARCH_IA32