blob: 9c883ad5e36b0c2f6e9de532c334bc162ac177ae [file] [log] [blame]
Ben Murdochb8a8cc12014-11-26 15:28:44 +00001// Copyright 2014 the V8 project authors. All rights reserved.
2// Use of this source code is governed by a BSD-style license that can be
3// found in the LICENSE file.
4
5#include "src/v8.h"
6
7#include "src/ic/ic.h"
8#include "src/ic/ic-state.h"
9
10namespace v8 {
11namespace internal {
12
Emily Bernierd0a1eb72015-03-24 16:35:39 -040013// static
Ben Murdochb8a8cc12014-11-26 15:28:44 +000014void ICUtility::Clear(Isolate* isolate, Address address,
15 ConstantPoolArray* constant_pool) {
16 IC::Clear(isolate, address, constant_pool);
17}
18
19
20CallICState::CallICState(ExtraICState extra_ic_state)
21 : argc_(ArgcBits::decode(extra_ic_state)),
22 call_type_(CallTypeBits::decode(extra_ic_state)) {}
23
24
25ExtraICState CallICState::GetExtraICState() const {
26 ExtraICState extra_ic_state =
27 ArgcBits::encode(argc_) | CallTypeBits::encode(call_type_);
28 return extra_ic_state;
29}
30
31
Emily Bernierd0a1eb72015-03-24 16:35:39 -040032std::ostream& operator<<(std::ostream& os, const CallICState& s) {
Ben Murdochb8a8cc12014-11-26 15:28:44 +000033 return os << "(args(" << s.arg_count() << "), "
34 << (s.call_type() == CallICState::METHOD ? "METHOD" : "FUNCTION")
35 << ", ";
36}
37
38
39BinaryOpICState::BinaryOpICState(Isolate* isolate, ExtraICState extra_ic_state)
40 : isolate_(isolate) {
41 op_ =
42 static_cast<Token::Value>(FIRST_TOKEN + OpField::decode(extra_ic_state));
43 mode_ = OverwriteModeField::decode(extra_ic_state);
44 fixed_right_arg_ =
45 Maybe<int>(HasFixedRightArgField::decode(extra_ic_state),
46 1 << FixedRightArgValueField::decode(extra_ic_state));
47 left_kind_ = LeftKindField::decode(extra_ic_state);
48 if (fixed_right_arg_.has_value) {
49 right_kind_ = Smi::IsValid(fixed_right_arg_.value) ? SMI : INT32;
50 } else {
51 right_kind_ = RightKindField::decode(extra_ic_state);
52 }
53 result_kind_ = ResultKindField::decode(extra_ic_state);
54 DCHECK_LE(FIRST_TOKEN, op_);
55 DCHECK_LE(op_, LAST_TOKEN);
56}
57
58
59ExtraICState BinaryOpICState::GetExtraICState() const {
60 ExtraICState extra_ic_state =
61 OpField::encode(op_ - FIRST_TOKEN) | OverwriteModeField::encode(mode_) |
62 LeftKindField::encode(left_kind_) |
63 ResultKindField::encode(result_kind_) |
64 HasFixedRightArgField::encode(fixed_right_arg_.has_value);
65 if (fixed_right_arg_.has_value) {
66 extra_ic_state = FixedRightArgValueField::update(
67 extra_ic_state, WhichPowerOf2(fixed_right_arg_.value));
68 } else {
69 extra_ic_state = RightKindField::update(extra_ic_state, right_kind_);
70 }
71 return extra_ic_state;
72}
73
74
75// static
76void BinaryOpICState::GenerateAheadOfTime(
77 Isolate* isolate, void (*Generate)(Isolate*, const BinaryOpICState&)) {
78// TODO(olivf) We should investigate why adding stubs to the snapshot is so
79// expensive at runtime. When solved we should be able to add most binops to
80// the snapshot instead of hand-picking them.
81// Generated list of commonly used stubs
82#define GENERATE(op, left_kind, right_kind, result_kind, mode) \
83 do { \
84 BinaryOpICState state(isolate, op, mode); \
85 state.left_kind_ = left_kind; \
86 state.fixed_right_arg_.has_value = false; \
87 state.right_kind_ = right_kind; \
88 state.result_kind_ = result_kind; \
89 Generate(isolate, state); \
90 } while (false)
91 GENERATE(Token::ADD, INT32, INT32, INT32, NO_OVERWRITE);
92 GENERATE(Token::ADD, INT32, INT32, INT32, OVERWRITE_LEFT);
93 GENERATE(Token::ADD, INT32, INT32, NUMBER, NO_OVERWRITE);
94 GENERATE(Token::ADD, INT32, INT32, NUMBER, OVERWRITE_LEFT);
95 GENERATE(Token::ADD, INT32, NUMBER, NUMBER, NO_OVERWRITE);
96 GENERATE(Token::ADD, INT32, NUMBER, NUMBER, OVERWRITE_LEFT);
97 GENERATE(Token::ADD, INT32, NUMBER, NUMBER, OVERWRITE_RIGHT);
98 GENERATE(Token::ADD, INT32, SMI, INT32, NO_OVERWRITE);
99 GENERATE(Token::ADD, INT32, SMI, INT32, OVERWRITE_LEFT);
100 GENERATE(Token::ADD, INT32, SMI, INT32, OVERWRITE_RIGHT);
101 GENERATE(Token::ADD, NUMBER, INT32, NUMBER, NO_OVERWRITE);
102 GENERATE(Token::ADD, NUMBER, INT32, NUMBER, OVERWRITE_LEFT);
103 GENERATE(Token::ADD, NUMBER, INT32, NUMBER, OVERWRITE_RIGHT);
104 GENERATE(Token::ADD, NUMBER, NUMBER, NUMBER, NO_OVERWRITE);
105 GENERATE(Token::ADD, NUMBER, NUMBER, NUMBER, OVERWRITE_LEFT);
106 GENERATE(Token::ADD, NUMBER, NUMBER, NUMBER, OVERWRITE_RIGHT);
107 GENERATE(Token::ADD, NUMBER, SMI, NUMBER, NO_OVERWRITE);
108 GENERATE(Token::ADD, NUMBER, SMI, NUMBER, OVERWRITE_LEFT);
109 GENERATE(Token::ADD, NUMBER, SMI, NUMBER, OVERWRITE_RIGHT);
110 GENERATE(Token::ADD, SMI, INT32, INT32, NO_OVERWRITE);
111 GENERATE(Token::ADD, SMI, INT32, INT32, OVERWRITE_LEFT);
112 GENERATE(Token::ADD, SMI, INT32, NUMBER, NO_OVERWRITE);
113 GENERATE(Token::ADD, SMI, NUMBER, NUMBER, NO_OVERWRITE);
114 GENERATE(Token::ADD, SMI, NUMBER, NUMBER, OVERWRITE_LEFT);
115 GENERATE(Token::ADD, SMI, NUMBER, NUMBER, OVERWRITE_RIGHT);
116 GENERATE(Token::ADD, SMI, SMI, INT32, OVERWRITE_LEFT);
117 GENERATE(Token::ADD, SMI, SMI, SMI, OVERWRITE_RIGHT);
118 GENERATE(Token::BIT_AND, INT32, INT32, INT32, NO_OVERWRITE);
119 GENERATE(Token::BIT_AND, INT32, INT32, INT32, OVERWRITE_LEFT);
120 GENERATE(Token::BIT_AND, INT32, INT32, INT32, OVERWRITE_RIGHT);
121 GENERATE(Token::BIT_AND, INT32, INT32, SMI, NO_OVERWRITE);
122 GENERATE(Token::BIT_AND, INT32, INT32, SMI, OVERWRITE_RIGHT);
123 GENERATE(Token::BIT_AND, INT32, SMI, INT32, NO_OVERWRITE);
124 GENERATE(Token::BIT_AND, INT32, SMI, INT32, OVERWRITE_RIGHT);
125 GENERATE(Token::BIT_AND, INT32, SMI, SMI, NO_OVERWRITE);
126 GENERATE(Token::BIT_AND, INT32, SMI, SMI, OVERWRITE_LEFT);
127 GENERATE(Token::BIT_AND, INT32, SMI, SMI, OVERWRITE_RIGHT);
128 GENERATE(Token::BIT_AND, NUMBER, INT32, INT32, OVERWRITE_RIGHT);
129 GENERATE(Token::BIT_AND, NUMBER, SMI, SMI, NO_OVERWRITE);
130 GENERATE(Token::BIT_AND, NUMBER, SMI, SMI, OVERWRITE_RIGHT);
131 GENERATE(Token::BIT_AND, SMI, INT32, INT32, NO_OVERWRITE);
132 GENERATE(Token::BIT_AND, SMI, INT32, SMI, OVERWRITE_RIGHT);
133 GENERATE(Token::BIT_AND, SMI, NUMBER, SMI, OVERWRITE_RIGHT);
134 GENERATE(Token::BIT_AND, SMI, SMI, SMI, NO_OVERWRITE);
135 GENERATE(Token::BIT_AND, SMI, SMI, SMI, OVERWRITE_LEFT);
136 GENERATE(Token::BIT_AND, SMI, SMI, SMI, OVERWRITE_RIGHT);
137 GENERATE(Token::BIT_OR, INT32, INT32, INT32, OVERWRITE_LEFT);
138 GENERATE(Token::BIT_OR, INT32, INT32, INT32, OVERWRITE_RIGHT);
139 GENERATE(Token::BIT_OR, INT32, INT32, SMI, OVERWRITE_LEFT);
140 GENERATE(Token::BIT_OR, INT32, SMI, INT32, NO_OVERWRITE);
141 GENERATE(Token::BIT_OR, INT32, SMI, INT32, OVERWRITE_LEFT);
142 GENERATE(Token::BIT_OR, INT32, SMI, INT32, OVERWRITE_RIGHT);
143 GENERATE(Token::BIT_OR, INT32, SMI, SMI, NO_OVERWRITE);
144 GENERATE(Token::BIT_OR, INT32, SMI, SMI, OVERWRITE_RIGHT);
145 GENERATE(Token::BIT_OR, NUMBER, SMI, INT32, NO_OVERWRITE);
146 GENERATE(Token::BIT_OR, NUMBER, SMI, INT32, OVERWRITE_LEFT);
147 GENERATE(Token::BIT_OR, NUMBER, SMI, INT32, OVERWRITE_RIGHT);
148 GENERATE(Token::BIT_OR, NUMBER, SMI, SMI, NO_OVERWRITE);
149 GENERATE(Token::BIT_OR, NUMBER, SMI, SMI, OVERWRITE_LEFT);
150 GENERATE(Token::BIT_OR, SMI, INT32, INT32, OVERWRITE_LEFT);
151 GENERATE(Token::BIT_OR, SMI, INT32, INT32, OVERWRITE_RIGHT);
152 GENERATE(Token::BIT_OR, SMI, INT32, SMI, OVERWRITE_RIGHT);
153 GENERATE(Token::BIT_OR, SMI, SMI, SMI, OVERWRITE_LEFT);
154 GENERATE(Token::BIT_OR, SMI, SMI, SMI, OVERWRITE_RIGHT);
155 GENERATE(Token::BIT_XOR, INT32, INT32, INT32, NO_OVERWRITE);
156 GENERATE(Token::BIT_XOR, INT32, INT32, INT32, OVERWRITE_LEFT);
157 GENERATE(Token::BIT_XOR, INT32, INT32, INT32, OVERWRITE_RIGHT);
158 GENERATE(Token::BIT_XOR, INT32, INT32, SMI, NO_OVERWRITE);
159 GENERATE(Token::BIT_XOR, INT32, INT32, SMI, OVERWRITE_LEFT);
160 GENERATE(Token::BIT_XOR, INT32, NUMBER, SMI, NO_OVERWRITE);
161 GENERATE(Token::BIT_XOR, INT32, SMI, INT32, NO_OVERWRITE);
162 GENERATE(Token::BIT_XOR, INT32, SMI, INT32, OVERWRITE_LEFT);
163 GENERATE(Token::BIT_XOR, INT32, SMI, INT32, OVERWRITE_RIGHT);
164 GENERATE(Token::BIT_XOR, NUMBER, INT32, INT32, NO_OVERWRITE);
165 GENERATE(Token::BIT_XOR, NUMBER, SMI, INT32, NO_OVERWRITE);
166 GENERATE(Token::BIT_XOR, NUMBER, SMI, SMI, NO_OVERWRITE);
167 GENERATE(Token::BIT_XOR, SMI, INT32, INT32, NO_OVERWRITE);
168 GENERATE(Token::BIT_XOR, SMI, INT32, INT32, OVERWRITE_LEFT);
169 GENERATE(Token::BIT_XOR, SMI, INT32, SMI, OVERWRITE_LEFT);
170 GENERATE(Token::BIT_XOR, SMI, SMI, SMI, NO_OVERWRITE);
171 GENERATE(Token::BIT_XOR, SMI, SMI, SMI, OVERWRITE_LEFT);
172 GENERATE(Token::BIT_XOR, SMI, SMI, SMI, OVERWRITE_RIGHT);
173 GENERATE(Token::DIV, INT32, INT32, INT32, NO_OVERWRITE);
174 GENERATE(Token::DIV, INT32, INT32, NUMBER, NO_OVERWRITE);
175 GENERATE(Token::DIV, INT32, NUMBER, NUMBER, NO_OVERWRITE);
176 GENERATE(Token::DIV, INT32, NUMBER, NUMBER, OVERWRITE_LEFT);
177 GENERATE(Token::DIV, INT32, SMI, INT32, NO_OVERWRITE);
178 GENERATE(Token::DIV, INT32, SMI, NUMBER, NO_OVERWRITE);
179 GENERATE(Token::DIV, NUMBER, INT32, NUMBER, NO_OVERWRITE);
180 GENERATE(Token::DIV, NUMBER, INT32, NUMBER, OVERWRITE_LEFT);
181 GENERATE(Token::DIV, NUMBER, NUMBER, NUMBER, NO_OVERWRITE);
182 GENERATE(Token::DIV, NUMBER, NUMBER, NUMBER, OVERWRITE_LEFT);
183 GENERATE(Token::DIV, NUMBER, NUMBER, NUMBER, OVERWRITE_RIGHT);
184 GENERATE(Token::DIV, NUMBER, SMI, NUMBER, NO_OVERWRITE);
185 GENERATE(Token::DIV, NUMBER, SMI, NUMBER, OVERWRITE_LEFT);
186 GENERATE(Token::DIV, SMI, INT32, INT32, NO_OVERWRITE);
187 GENERATE(Token::DIV, SMI, INT32, NUMBER, NO_OVERWRITE);
188 GENERATE(Token::DIV, SMI, INT32, NUMBER, OVERWRITE_LEFT);
189 GENERATE(Token::DIV, SMI, NUMBER, NUMBER, NO_OVERWRITE);
190 GENERATE(Token::DIV, SMI, NUMBER, NUMBER, OVERWRITE_LEFT);
191 GENERATE(Token::DIV, SMI, NUMBER, NUMBER, OVERWRITE_RIGHT);
192 GENERATE(Token::DIV, SMI, SMI, NUMBER, NO_OVERWRITE);
193 GENERATE(Token::DIV, SMI, SMI, NUMBER, OVERWRITE_LEFT);
194 GENERATE(Token::DIV, SMI, SMI, NUMBER, OVERWRITE_RIGHT);
195 GENERATE(Token::DIV, SMI, SMI, SMI, NO_OVERWRITE);
196 GENERATE(Token::DIV, SMI, SMI, SMI, OVERWRITE_LEFT);
197 GENERATE(Token::DIV, SMI, SMI, SMI, OVERWRITE_RIGHT);
198 GENERATE(Token::MOD, NUMBER, SMI, NUMBER, OVERWRITE_LEFT);
199 GENERATE(Token::MOD, SMI, SMI, SMI, NO_OVERWRITE);
200 GENERATE(Token::MOD, SMI, SMI, SMI, OVERWRITE_LEFT);
201 GENERATE(Token::MUL, INT32, INT32, INT32, NO_OVERWRITE);
202 GENERATE(Token::MUL, INT32, INT32, NUMBER, NO_OVERWRITE);
203 GENERATE(Token::MUL, INT32, NUMBER, NUMBER, NO_OVERWRITE);
204 GENERATE(Token::MUL, INT32, NUMBER, NUMBER, OVERWRITE_LEFT);
205 GENERATE(Token::MUL, INT32, SMI, INT32, NO_OVERWRITE);
206 GENERATE(Token::MUL, INT32, SMI, INT32, OVERWRITE_LEFT);
207 GENERATE(Token::MUL, INT32, SMI, NUMBER, NO_OVERWRITE);
208 GENERATE(Token::MUL, NUMBER, INT32, NUMBER, NO_OVERWRITE);
209 GENERATE(Token::MUL, NUMBER, INT32, NUMBER, OVERWRITE_LEFT);
210 GENERATE(Token::MUL, NUMBER, INT32, NUMBER, OVERWRITE_RIGHT);
211 GENERATE(Token::MUL, NUMBER, NUMBER, NUMBER, NO_OVERWRITE);
212 GENERATE(Token::MUL, NUMBER, NUMBER, NUMBER, OVERWRITE_LEFT);
213 GENERATE(Token::MUL, NUMBER, SMI, NUMBER, NO_OVERWRITE);
214 GENERATE(Token::MUL, NUMBER, SMI, NUMBER, OVERWRITE_LEFT);
215 GENERATE(Token::MUL, NUMBER, SMI, NUMBER, OVERWRITE_RIGHT);
216 GENERATE(Token::MUL, SMI, INT32, INT32, NO_OVERWRITE);
217 GENERATE(Token::MUL, SMI, INT32, INT32, OVERWRITE_LEFT);
218 GENERATE(Token::MUL, SMI, INT32, NUMBER, NO_OVERWRITE);
219 GENERATE(Token::MUL, SMI, NUMBER, NUMBER, NO_OVERWRITE);
220 GENERATE(Token::MUL, SMI, NUMBER, NUMBER, OVERWRITE_LEFT);
221 GENERATE(Token::MUL, SMI, NUMBER, NUMBER, OVERWRITE_RIGHT);
222 GENERATE(Token::MUL, SMI, SMI, INT32, NO_OVERWRITE);
223 GENERATE(Token::MUL, SMI, SMI, NUMBER, NO_OVERWRITE);
224 GENERATE(Token::MUL, SMI, SMI, NUMBER, OVERWRITE_LEFT);
225 GENERATE(Token::MUL, SMI, SMI, SMI, NO_OVERWRITE);
226 GENERATE(Token::MUL, SMI, SMI, SMI, OVERWRITE_LEFT);
227 GENERATE(Token::MUL, SMI, SMI, SMI, OVERWRITE_RIGHT);
228 GENERATE(Token::SAR, INT32, SMI, INT32, OVERWRITE_RIGHT);
229 GENERATE(Token::SAR, INT32, SMI, SMI, NO_OVERWRITE);
230 GENERATE(Token::SAR, INT32, SMI, SMI, OVERWRITE_RIGHT);
231 GENERATE(Token::SAR, NUMBER, SMI, SMI, NO_OVERWRITE);
232 GENERATE(Token::SAR, NUMBER, SMI, SMI, OVERWRITE_RIGHT);
233 GENERATE(Token::SAR, SMI, SMI, SMI, OVERWRITE_LEFT);
234 GENERATE(Token::SAR, SMI, SMI, SMI, OVERWRITE_RIGHT);
235 GENERATE(Token::SHL, INT32, SMI, INT32, NO_OVERWRITE);
236 GENERATE(Token::SHL, INT32, SMI, INT32, OVERWRITE_RIGHT);
237 GENERATE(Token::SHL, INT32, SMI, SMI, NO_OVERWRITE);
238 GENERATE(Token::SHL, INT32, SMI, SMI, OVERWRITE_RIGHT);
239 GENERATE(Token::SHL, NUMBER, SMI, SMI, OVERWRITE_RIGHT);
240 GENERATE(Token::SHL, SMI, SMI, INT32, NO_OVERWRITE);
241 GENERATE(Token::SHL, SMI, SMI, INT32, OVERWRITE_LEFT);
242 GENERATE(Token::SHL, SMI, SMI, INT32, OVERWRITE_RIGHT);
243 GENERATE(Token::SHL, SMI, SMI, SMI, NO_OVERWRITE);
244 GENERATE(Token::SHL, SMI, SMI, SMI, OVERWRITE_LEFT);
245 GENERATE(Token::SHL, SMI, SMI, SMI, OVERWRITE_RIGHT);
246 GENERATE(Token::SHR, INT32, SMI, SMI, NO_OVERWRITE);
247 GENERATE(Token::SHR, INT32, SMI, SMI, OVERWRITE_LEFT);
248 GENERATE(Token::SHR, INT32, SMI, SMI, OVERWRITE_RIGHT);
249 GENERATE(Token::SHR, NUMBER, SMI, SMI, NO_OVERWRITE);
250 GENERATE(Token::SHR, NUMBER, SMI, SMI, OVERWRITE_LEFT);
251 GENERATE(Token::SHR, NUMBER, SMI, INT32, OVERWRITE_RIGHT);
252 GENERATE(Token::SHR, SMI, SMI, SMI, NO_OVERWRITE);
253 GENERATE(Token::SHR, SMI, SMI, SMI, OVERWRITE_LEFT);
254 GENERATE(Token::SHR, SMI, SMI, SMI, OVERWRITE_RIGHT);
255 GENERATE(Token::SUB, INT32, INT32, INT32, NO_OVERWRITE);
256 GENERATE(Token::SUB, INT32, INT32, INT32, OVERWRITE_LEFT);
257 GENERATE(Token::SUB, INT32, NUMBER, NUMBER, NO_OVERWRITE);
258 GENERATE(Token::SUB, INT32, NUMBER, NUMBER, OVERWRITE_RIGHT);
259 GENERATE(Token::SUB, INT32, SMI, INT32, OVERWRITE_LEFT);
260 GENERATE(Token::SUB, INT32, SMI, INT32, OVERWRITE_RIGHT);
261 GENERATE(Token::SUB, NUMBER, INT32, NUMBER, NO_OVERWRITE);
262 GENERATE(Token::SUB, NUMBER, INT32, NUMBER, OVERWRITE_LEFT);
263 GENERATE(Token::SUB, NUMBER, NUMBER, NUMBER, NO_OVERWRITE);
264 GENERATE(Token::SUB, NUMBER, NUMBER, NUMBER, OVERWRITE_LEFT);
265 GENERATE(Token::SUB, NUMBER, NUMBER, NUMBER, OVERWRITE_RIGHT);
266 GENERATE(Token::SUB, NUMBER, SMI, NUMBER, NO_OVERWRITE);
267 GENERATE(Token::SUB, NUMBER, SMI, NUMBER, OVERWRITE_LEFT);
268 GENERATE(Token::SUB, NUMBER, SMI, NUMBER, OVERWRITE_RIGHT);
269 GENERATE(Token::SUB, SMI, INT32, INT32, NO_OVERWRITE);
270 GENERATE(Token::SUB, SMI, NUMBER, NUMBER, NO_OVERWRITE);
271 GENERATE(Token::SUB, SMI, NUMBER, NUMBER, OVERWRITE_LEFT);
272 GENERATE(Token::SUB, SMI, NUMBER, NUMBER, OVERWRITE_RIGHT);
273 GENERATE(Token::SUB, SMI, SMI, SMI, NO_OVERWRITE);
274 GENERATE(Token::SUB, SMI, SMI, SMI, OVERWRITE_LEFT);
275 GENERATE(Token::SUB, SMI, SMI, SMI, OVERWRITE_RIGHT);
276#undef GENERATE
277#define GENERATE(op, left_kind, fixed_right_arg_value, result_kind, mode) \
278 do { \
279 BinaryOpICState state(isolate, op, mode); \
280 state.left_kind_ = left_kind; \
281 state.fixed_right_arg_.has_value = true; \
282 state.fixed_right_arg_.value = fixed_right_arg_value; \
283 state.right_kind_ = SMI; \
284 state.result_kind_ = result_kind; \
285 Generate(isolate, state); \
286 } while (false)
287 GENERATE(Token::MOD, SMI, 2, SMI, NO_OVERWRITE);
288 GENERATE(Token::MOD, SMI, 4, SMI, NO_OVERWRITE);
289 GENERATE(Token::MOD, SMI, 4, SMI, OVERWRITE_LEFT);
290 GENERATE(Token::MOD, SMI, 8, SMI, NO_OVERWRITE);
291 GENERATE(Token::MOD, SMI, 16, SMI, OVERWRITE_LEFT);
292 GENERATE(Token::MOD, SMI, 32, SMI, NO_OVERWRITE);
293 GENERATE(Token::MOD, SMI, 2048, SMI, NO_OVERWRITE);
294#undef GENERATE
295}
296
297
298Type* BinaryOpICState::GetResultType(Zone* zone) const {
299 Kind result_kind = result_kind_;
300 if (HasSideEffects()) {
301 result_kind = NONE;
302 } else if (result_kind == GENERIC && op_ == Token::ADD) {
303 return Type::Union(Type::Number(zone), Type::String(zone), zone);
304 } else if (result_kind == NUMBER && op_ == Token::SHR) {
305 return Type::Unsigned32(zone);
306 }
307 DCHECK_NE(GENERIC, result_kind);
308 return KindToType(result_kind, zone);
309}
310
311
Emily Bernierd0a1eb72015-03-24 16:35:39 -0400312std::ostream& operator<<(std::ostream& os, const BinaryOpICState& s) {
Ben Murdochb8a8cc12014-11-26 15:28:44 +0000313 os << "(" << Token::Name(s.op_);
314 if (s.mode_ == OVERWRITE_LEFT)
315 os << "_ReuseLeft";
316 else if (s.mode_ == OVERWRITE_RIGHT)
317 os << "_ReuseRight";
318 if (s.CouldCreateAllocationMementos()) os << "_CreateAllocationMementos";
319 os << ":" << BinaryOpICState::KindToString(s.left_kind_) << "*";
320 if (s.fixed_right_arg_.has_value) {
321 os << s.fixed_right_arg_.value;
322 } else {
323 os << BinaryOpICState::KindToString(s.right_kind_);
324 }
325 return os << "->" << BinaryOpICState::KindToString(s.result_kind_) << ")";
326}
327
328
329void BinaryOpICState::Update(Handle<Object> left, Handle<Object> right,
330 Handle<Object> result) {
331 ExtraICState old_extra_ic_state = GetExtraICState();
332
333 left_kind_ = UpdateKind(left, left_kind_);
334 right_kind_ = UpdateKind(right, right_kind_);
335
336 int32_t fixed_right_arg_value = 0;
337 bool has_fixed_right_arg =
338 op_ == Token::MOD && right->ToInt32(&fixed_right_arg_value) &&
339 fixed_right_arg_value > 0 &&
340 base::bits::IsPowerOfTwo32(fixed_right_arg_value) &&
341 FixedRightArgValueField::is_valid(WhichPowerOf2(fixed_right_arg_value)) &&
342 (left_kind_ == SMI || left_kind_ == INT32) &&
343 (result_kind_ == NONE || !fixed_right_arg_.has_value);
344 fixed_right_arg_ = Maybe<int32_t>(has_fixed_right_arg, fixed_right_arg_value);
345
346 result_kind_ = UpdateKind(result, result_kind_);
347
348 if (!Token::IsTruncatingBinaryOp(op_)) {
349 Kind input_kind = Max(left_kind_, right_kind_);
350 if (result_kind_ < input_kind && input_kind <= NUMBER) {
351 result_kind_ = input_kind;
352 }
353 }
354
355 // We don't want to distinguish INT32 and NUMBER for string add (because
356 // NumberToString can't make use of this anyway).
357 if (left_kind_ == STRING && right_kind_ == INT32) {
358 DCHECK_EQ(STRING, result_kind_);
359 DCHECK_EQ(Token::ADD, op_);
360 right_kind_ = NUMBER;
361 } else if (right_kind_ == STRING && left_kind_ == INT32) {
362 DCHECK_EQ(STRING, result_kind_);
363 DCHECK_EQ(Token::ADD, op_);
364 left_kind_ = NUMBER;
365 }
366
367 // Reset overwrite mode unless we can actually make use of it, or may be able
368 // to make use of it at some point in the future.
369 if ((mode_ == OVERWRITE_LEFT && left_kind_ > NUMBER) ||
370 (mode_ == OVERWRITE_RIGHT && right_kind_ > NUMBER) ||
371 result_kind_ > NUMBER) {
372 mode_ = NO_OVERWRITE;
373 }
374
375 if (old_extra_ic_state == GetExtraICState()) {
376 // Tagged operations can lead to non-truncating HChanges
377 if (left->IsUndefined() || left->IsBoolean()) {
378 left_kind_ = GENERIC;
379 } else {
380 DCHECK(right->IsUndefined() || right->IsBoolean());
381 right_kind_ = GENERIC;
382 }
383 }
384}
385
386
387BinaryOpICState::Kind BinaryOpICState::UpdateKind(Handle<Object> object,
388 Kind kind) const {
389 Kind new_kind = GENERIC;
390 bool is_truncating = Token::IsTruncatingBinaryOp(op());
391 if (object->IsBoolean() && is_truncating) {
392 // Booleans will be automatically truncated by HChange.
393 new_kind = INT32;
394 } else if (object->IsUndefined()) {
395 // Undefined will be automatically truncated by HChange.
396 new_kind = is_truncating ? INT32 : NUMBER;
397 } else if (object->IsSmi()) {
398 new_kind = SMI;
399 } else if (object->IsHeapNumber()) {
400 double value = Handle<HeapNumber>::cast(object)->value();
401 new_kind = IsInt32Double(value) ? INT32 : NUMBER;
402 } else if (object->IsString() && op() == Token::ADD) {
403 new_kind = STRING;
404 }
405 if (new_kind == INT32 && SmiValuesAre32Bits()) {
406 new_kind = NUMBER;
407 }
408 if (kind != NONE && ((new_kind <= NUMBER && kind > NUMBER) ||
409 (new_kind > NUMBER && kind <= NUMBER))) {
410 new_kind = GENERIC;
411 }
412 return Max(kind, new_kind);
413}
414
415
416// static
417const char* BinaryOpICState::KindToString(Kind kind) {
418 switch (kind) {
419 case NONE:
420 return "None";
421 case SMI:
422 return "Smi";
423 case INT32:
424 return "Int32";
425 case NUMBER:
426 return "Number";
427 case STRING:
428 return "String";
429 case GENERIC:
430 return "Generic";
431 }
432 UNREACHABLE();
433 return NULL;
434}
435
436
437// static
438Type* BinaryOpICState::KindToType(Kind kind, Zone* zone) {
439 switch (kind) {
440 case NONE:
441 return Type::None(zone);
442 case SMI:
443 return Type::SignedSmall(zone);
444 case INT32:
445 return Type::Signed32(zone);
446 case NUMBER:
447 return Type::Number(zone);
448 case STRING:
449 return Type::String(zone);
450 case GENERIC:
451 return Type::Any(zone);
452 }
453 UNREACHABLE();
454 return NULL;
455}
456
457
458const char* CompareICState::GetStateName(State state) {
459 switch (state) {
460 case UNINITIALIZED:
461 return "UNINITIALIZED";
462 case SMI:
463 return "SMI";
464 case NUMBER:
465 return "NUMBER";
466 case INTERNALIZED_STRING:
467 return "INTERNALIZED_STRING";
468 case STRING:
469 return "STRING";
470 case UNIQUE_NAME:
471 return "UNIQUE_NAME";
472 case OBJECT:
473 return "OBJECT";
474 case KNOWN_OBJECT:
475 return "KNOWN_OBJECT";
476 case GENERIC:
477 return "GENERIC";
478 }
479 UNREACHABLE();
480 return NULL;
481}
482
483
484Type* CompareICState::StateToType(Zone* zone, State state, Handle<Map> map) {
485 switch (state) {
486 case UNINITIALIZED:
487 return Type::None(zone);
488 case SMI:
489 return Type::SignedSmall(zone);
490 case NUMBER:
491 return Type::Number(zone);
492 case STRING:
493 return Type::String(zone);
494 case INTERNALIZED_STRING:
495 return Type::InternalizedString(zone);
496 case UNIQUE_NAME:
497 return Type::UniqueName(zone);
498 case OBJECT:
499 return Type::Receiver(zone);
500 case KNOWN_OBJECT:
501 return map.is_null() ? Type::Receiver(zone) : Type::Class(map, zone);
502 case GENERIC:
503 return Type::Any(zone);
504 }
505 UNREACHABLE();
506 return NULL;
507}
508
509
510CompareICState::State CompareICState::NewInputState(State old_state,
511 Handle<Object> value) {
512 switch (old_state) {
513 case UNINITIALIZED:
514 if (value->IsSmi()) return SMI;
515 if (value->IsHeapNumber()) return NUMBER;
516 if (value->IsInternalizedString()) return INTERNALIZED_STRING;
517 if (value->IsString()) return STRING;
518 if (value->IsSymbol()) return UNIQUE_NAME;
519 if (value->IsJSObject()) return OBJECT;
520 break;
521 case SMI:
522 if (value->IsSmi()) return SMI;
523 if (value->IsHeapNumber()) return NUMBER;
524 break;
525 case NUMBER:
526 if (value->IsNumber()) return NUMBER;
527 break;
528 case INTERNALIZED_STRING:
529 if (value->IsInternalizedString()) return INTERNALIZED_STRING;
530 if (value->IsString()) return STRING;
531 if (value->IsSymbol()) return UNIQUE_NAME;
532 break;
533 case STRING:
534 if (value->IsString()) return STRING;
535 break;
536 case UNIQUE_NAME:
537 if (value->IsUniqueName()) return UNIQUE_NAME;
538 break;
539 case OBJECT:
540 if (value->IsJSObject()) return OBJECT;
541 break;
542 case GENERIC:
543 break;
544 case KNOWN_OBJECT:
545 UNREACHABLE();
546 break;
547 }
548 return GENERIC;
549}
550
551
552// static
553CompareICState::State CompareICState::TargetState(
554 State old_state, State old_left, State old_right, Token::Value op,
555 bool has_inlined_smi_code, Handle<Object> x, Handle<Object> y) {
556 switch (old_state) {
557 case UNINITIALIZED:
558 if (x->IsSmi() && y->IsSmi()) return SMI;
559 if (x->IsNumber() && y->IsNumber()) return NUMBER;
560 if (Token::IsOrderedRelationalCompareOp(op)) {
561 // Ordered comparisons treat undefined as NaN, so the
562 // NUMBER stub will do the right thing.
563 if ((x->IsNumber() && y->IsUndefined()) ||
564 (y->IsNumber() && x->IsUndefined())) {
565 return NUMBER;
566 }
567 }
568 if (x->IsInternalizedString() && y->IsInternalizedString()) {
569 // We compare internalized strings as plain ones if we need to determine
570 // the order in a non-equality compare.
571 return Token::IsEqualityOp(op) ? INTERNALIZED_STRING : STRING;
572 }
573 if (x->IsString() && y->IsString()) return STRING;
574 if (!Token::IsEqualityOp(op)) return GENERIC;
575 if (x->IsUniqueName() && y->IsUniqueName()) return UNIQUE_NAME;
576 if (x->IsJSObject() && y->IsJSObject()) {
577 if (Handle<JSObject>::cast(x)->map() ==
578 Handle<JSObject>::cast(y)->map()) {
579 return KNOWN_OBJECT;
580 } else {
581 return OBJECT;
582 }
583 }
584 return GENERIC;
585 case SMI:
586 return x->IsNumber() && y->IsNumber() ? NUMBER : GENERIC;
587 case INTERNALIZED_STRING:
588 DCHECK(Token::IsEqualityOp(op));
589 if (x->IsString() && y->IsString()) return STRING;
590 if (x->IsUniqueName() && y->IsUniqueName()) return UNIQUE_NAME;
591 return GENERIC;
592 case NUMBER:
593 // If the failure was due to one side changing from smi to heap number,
594 // then keep the state (if other changed at the same time, we will get
595 // a second miss and then go to generic).
596 if (old_left == SMI && x->IsHeapNumber()) return NUMBER;
597 if (old_right == SMI && y->IsHeapNumber()) return NUMBER;
598 return GENERIC;
599 case KNOWN_OBJECT:
600 DCHECK(Token::IsEqualityOp(op));
601 if (x->IsJSObject() && y->IsJSObject()) {
602 return OBJECT;
603 }
604 return GENERIC;
605 case STRING:
606 case UNIQUE_NAME:
607 case OBJECT:
608 case GENERIC:
609 return GENERIC;
610 }
611 UNREACHABLE();
612 return GENERIC; // Make the compiler happy.
613}
614}
615} // namespace v8::internal