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Chris Lattner14999342004-01-10 19:07:06 +00001//===-- Writer.cpp - Library for writing LLVM bytecode files --------------===//
Misha Brukman23c6d2c2005-04-21 21:48:46 +00002//
John Criswellb576c942003-10-20 19:43:21 +00003// The LLVM Compiler Infrastructure
4//
5// This file was developed by the LLVM research group and is distributed under
6// the University of Illinois Open Source License. See LICENSE.TXT for details.
Misha Brukman23c6d2c2005-04-21 21:48:46 +00007//
John Criswellb576c942003-10-20 19:43:21 +00008//===----------------------------------------------------------------------===//
Chris Lattner00950542001-06-06 20:29:01 +00009//
10// This library implements the functionality defined in llvm/Bytecode/Writer.h
11//
Chris Lattner00950542001-06-06 20:29:01 +000012// Note that this file uses an unusual technique of outputting all the bytecode
Reid Spencerad89bd62004-07-25 18:07:36 +000013// to a vector of unsigned char, then copies the vector to an ostream. The
Chris Lattner00950542001-06-06 20:29:01 +000014// reason for this is that we must do "seeking" in the stream to do back-
15// patching, and some very important ostreams that we want to support (like
16// pipes) do not support seeking. :( :( :(
17//
Chris Lattner00950542001-06-06 20:29:01 +000018//===----------------------------------------------------------------------===//
19
20#include "WriterInternals.h"
Chris Lattner635cd932002-07-23 19:56:44 +000021#include "llvm/Bytecode/WriteBytecodePass.h"
Chris Lattnerdee199f2005-05-06 22:34:01 +000022#include "llvm/CallingConv.h"
Chris Lattner83bb3d22004-01-14 23:36:54 +000023#include "llvm/Constants.h"
24#include "llvm/DerivedTypes.h"
Chris Lattner3bc5a602006-01-25 23:08:15 +000025#include "llvm/InlineAsm.h"
Reid Spencerad89bd62004-07-25 18:07:36 +000026#include "llvm/Instructions.h"
Chris Lattner00950542001-06-06 20:29:01 +000027#include "llvm/Module.h"
Chris Lattner00950542001-06-06 20:29:01 +000028#include "llvm/SymbolTable.h"
Reid Spencerad89bd62004-07-25 18:07:36 +000029#include "llvm/Support/GetElementPtrTypeIterator.h"
Reid Spencer17f52c52004-11-06 23:17:23 +000030#include "llvm/Support/Compressor.h"
Jim Laskeycb6682f2005-08-17 19:34:49 +000031#include "llvm/Support/MathExtras.h"
Reid Spencer551ccae2004-09-01 22:55:40 +000032#include "llvm/ADT/STLExtras.h"
33#include "llvm/ADT/Statistic.h"
Chris Lattner32abce62004-01-10 19:10:01 +000034#include <cstring>
Chris Lattner00950542001-06-06 20:29:01 +000035#include <algorithm>
Chris Lattner44f549b2004-01-10 18:49:43 +000036using namespace llvm;
Brian Gaeked0fde302003-11-11 22:41:34 +000037
Reid Spencer38d54be2004-08-17 07:45:14 +000038/// This value needs to be incremented every time the bytecode format changes
39/// so that the reader can distinguish which format of the bytecode file has
40/// been written.
41/// @brief The bytecode version number
Chris Lattnera79e7cc2004-10-16 18:18:16 +000042const unsigned BCVersionNum = 5;
Reid Spencer38d54be2004-08-17 07:45:14 +000043
Chris Lattner635cd932002-07-23 19:56:44 +000044static RegisterPass<WriteBytecodePass> X("emitbytecode", "Bytecode Writer");
45
Misha Brukman23c6d2c2005-04-21 21:48:46 +000046static Statistic<>
Chris Lattnera92f6962002-10-01 22:38:41 +000047BytesWritten("bytecodewriter", "Number of bytecode bytes written");
Chris Lattner635cd932002-07-23 19:56:44 +000048
Reid Spencerad89bd62004-07-25 18:07:36 +000049//===----------------------------------------------------------------------===//
50//=== Output Primitives ===//
51//===----------------------------------------------------------------------===//
52
53// output - If a position is specified, it must be in the valid portion of the
Misha Brukman23c6d2c2005-04-21 21:48:46 +000054// string... note that this should be inlined always so only the relevant IF
Reid Spencerad89bd62004-07-25 18:07:36 +000055// body should be included.
56inline void BytecodeWriter::output(unsigned i, int pos) {
57 if (pos == -1) { // Be endian clean, little endian is our friend
Misha Brukman23c6d2c2005-04-21 21:48:46 +000058 Out.push_back((unsigned char)i);
Reid Spencerad89bd62004-07-25 18:07:36 +000059 Out.push_back((unsigned char)(i >> 8));
60 Out.push_back((unsigned char)(i >> 16));
61 Out.push_back((unsigned char)(i >> 24));
62 } else {
63 Out[pos ] = (unsigned char)i;
64 Out[pos+1] = (unsigned char)(i >> 8);
65 Out[pos+2] = (unsigned char)(i >> 16);
66 Out[pos+3] = (unsigned char)(i >> 24);
67 }
68}
69
70inline void BytecodeWriter::output(int i) {
71 output((unsigned)i);
72}
73
74/// output_vbr - Output an unsigned value, by using the least number of bytes
75/// possible. This is useful because many of our "infinite" values are really
76/// very small most of the time; but can be large a few times.
Misha Brukman23c6d2c2005-04-21 21:48:46 +000077/// Data format used: If you read a byte with the high bit set, use the low
78/// seven bits as data and then read another byte.
Reid Spencerad89bd62004-07-25 18:07:36 +000079inline void BytecodeWriter::output_vbr(uint64_t i) {
80 while (1) {
81 if (i < 0x80) { // done?
82 Out.push_back((unsigned char)i); // We know the high bit is clear...
83 return;
84 }
Misha Brukman23c6d2c2005-04-21 21:48:46 +000085
Reid Spencerad89bd62004-07-25 18:07:36 +000086 // Nope, we are bigger than a character, output the next 7 bits and set the
87 // high bit to say that there is more coming...
88 Out.push_back(0x80 | ((unsigned char)i & 0x7F));
89 i >>= 7; // Shift out 7 bits now...
90 }
91}
92
93inline void BytecodeWriter::output_vbr(unsigned i) {
94 while (1) {
95 if (i < 0x80) { // done?
96 Out.push_back((unsigned char)i); // We know the high bit is clear...
97 return;
98 }
Misha Brukman23c6d2c2005-04-21 21:48:46 +000099
Reid Spencerad89bd62004-07-25 18:07:36 +0000100 // Nope, we are bigger than a character, output the next 7 bits and set the
101 // high bit to say that there is more coming...
102 Out.push_back(0x80 | ((unsigned char)i & 0x7F));
103 i >>= 7; // Shift out 7 bits now...
104 }
105}
106
107inline void BytecodeWriter::output_typeid(unsigned i) {
108 if (i <= 0x00FFFFFF)
109 this->output_vbr(i);
110 else {
111 this->output_vbr(0x00FFFFFF);
112 this->output_vbr(i);
113 }
114}
115
116inline void BytecodeWriter::output_vbr(int64_t i) {
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000117 if (i < 0)
Reid Spencerad89bd62004-07-25 18:07:36 +0000118 output_vbr(((uint64_t)(-i) << 1) | 1); // Set low order sign bit...
119 else
120 output_vbr((uint64_t)i << 1); // Low order bit is clear.
121}
122
123
124inline void BytecodeWriter::output_vbr(int i) {
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000125 if (i < 0)
Reid Spencerad89bd62004-07-25 18:07:36 +0000126 output_vbr(((unsigned)(-i) << 1) | 1); // Set low order sign bit...
127 else
128 output_vbr((unsigned)i << 1); // Low order bit is clear.
129}
130
Reid Spencer38d54be2004-08-17 07:45:14 +0000131inline void BytecodeWriter::output(const std::string &s) {
Reid Spencerad89bd62004-07-25 18:07:36 +0000132 unsigned Len = s.length();
133 output_vbr(Len ); // Strings may have an arbitrary length...
134 Out.insert(Out.end(), s.begin(), s.end());
Reid Spencerad89bd62004-07-25 18:07:36 +0000135}
136
137inline void BytecodeWriter::output_data(const void *Ptr, const void *End) {
138 Out.insert(Out.end(), (const unsigned char*)Ptr, (const unsigned char*)End);
139}
140
141inline void BytecodeWriter::output_float(float& FloatVal) {
142 /// FIXME: This isn't optimal, it has size problems on some platforms
143 /// where FP is not IEEE.
Jim Laskeycb6682f2005-08-17 19:34:49 +0000144 uint32_t i = FloatToBits(FloatVal);
145 Out.push_back( static_cast<unsigned char>( (i & 0xFF )));
146 Out.push_back( static_cast<unsigned char>( (i >> 8) & 0xFF));
147 Out.push_back( static_cast<unsigned char>( (i >> 16) & 0xFF));
148 Out.push_back( static_cast<unsigned char>( (i >> 24) & 0xFF));
Reid Spencerad89bd62004-07-25 18:07:36 +0000149}
150
151inline void BytecodeWriter::output_double(double& DoubleVal) {
152 /// FIXME: This isn't optimal, it has size problems on some platforms
153 /// where FP is not IEEE.
Jim Laskeycb6682f2005-08-17 19:34:49 +0000154 uint64_t i = DoubleToBits(DoubleVal);
155 Out.push_back( static_cast<unsigned char>( (i & 0xFF )));
156 Out.push_back( static_cast<unsigned char>( (i >> 8) & 0xFF));
157 Out.push_back( static_cast<unsigned char>( (i >> 16) & 0xFF));
158 Out.push_back( static_cast<unsigned char>( (i >> 24) & 0xFF));
159 Out.push_back( static_cast<unsigned char>( (i >> 32) & 0xFF));
160 Out.push_back( static_cast<unsigned char>( (i >> 40) & 0xFF));
161 Out.push_back( static_cast<unsigned char>( (i >> 48) & 0xFF));
162 Out.push_back( static_cast<unsigned char>( (i >> 56) & 0xFF));
Reid Spencerad89bd62004-07-25 18:07:36 +0000163}
164
Chris Lattnerc76ea432005-11-12 18:34:09 +0000165inline BytecodeBlock::BytecodeBlock(unsigned ID, BytecodeWriter &w,
166 bool elideIfEmpty, bool hasLongFormat)
Reid Spencerad89bd62004-07-25 18:07:36 +0000167 : Id(ID), Writer(w), ElideIfEmpty(elideIfEmpty), HasLongFormat(hasLongFormat){
168
169 if (HasLongFormat) {
170 w.output(ID);
171 w.output(0U); // For length in long format
172 } else {
173 w.output(0U); /// Place holder for ID and length for this block
174 }
175 Loc = w.size();
176}
177
Chris Lattnerb0bf6642004-10-14 01:35:17 +0000178inline BytecodeBlock::~BytecodeBlock() { // Do backpatch when block goes out
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000179 // of scope...
Reid Spencerad89bd62004-07-25 18:07:36 +0000180 if (Loc == Writer.size() && ElideIfEmpty) {
181 // If the block is empty, and we are allowed to, do not emit the block at
182 // all!
183 Writer.resize(Writer.size()-(HasLongFormat?8:4));
184 return;
185 }
186
Reid Spencerad89bd62004-07-25 18:07:36 +0000187 if (HasLongFormat)
188 Writer.output(unsigned(Writer.size()-Loc), int(Loc-4));
189 else
190 Writer.output(unsigned(Writer.size()-Loc) << 5 | (Id & 0x1F), int(Loc-4));
Reid Spencerad89bd62004-07-25 18:07:36 +0000191}
192
193//===----------------------------------------------------------------------===//
194//=== Constant Output ===//
195//===----------------------------------------------------------------------===//
196
197void BytecodeWriter::outputType(const Type *T) {
198 output_vbr((unsigned)T->getTypeID());
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000199
Reid Spencerad89bd62004-07-25 18:07:36 +0000200 // That's all there is to handling primitive types...
201 if (T->isPrimitiveType()) {
202 return; // We might do this if we alias a prim type: %x = type int
203 }
204
205 switch (T->getTypeID()) { // Handle derived types now.
206 case Type::FunctionTyID: {
207 const FunctionType *MT = cast<FunctionType>(T);
208 int Slot = Table.getSlot(MT->getReturnType());
209 assert(Slot != -1 && "Type used but not available!!");
210 output_typeid((unsigned)Slot);
211
212 // Output the number of arguments to function (+1 if varargs):
213 output_vbr((unsigned)MT->getNumParams()+MT->isVarArg());
214
215 // Output all of the arguments...
216 FunctionType::param_iterator I = MT->param_begin();
217 for (; I != MT->param_end(); ++I) {
218 Slot = Table.getSlot(*I);
219 assert(Slot != -1 && "Type used but not available!!");
220 output_typeid((unsigned)Slot);
221 }
222
223 // Terminate list with VoidTy if we are a varargs function...
224 if (MT->isVarArg())
225 output_typeid((unsigned)Type::VoidTyID);
226 break;
227 }
228
229 case Type::ArrayTyID: {
230 const ArrayType *AT = cast<ArrayType>(T);
231 int Slot = Table.getSlot(AT->getElementType());
232 assert(Slot != -1 && "Type used but not available!!");
233 output_typeid((unsigned)Slot);
Reid Spencerad89bd62004-07-25 18:07:36 +0000234 output_vbr(AT->getNumElements());
235 break;
236 }
237
Brian Gaeke715c90b2004-08-20 06:00:58 +0000238 case Type::PackedTyID: {
239 const PackedType *PT = cast<PackedType>(T);
240 int Slot = Table.getSlot(PT->getElementType());
241 assert(Slot != -1 && "Type used but not available!!");
242 output_typeid((unsigned)Slot);
243 output_vbr(PT->getNumElements());
244 break;
245 }
246
247
Reid Spencerad89bd62004-07-25 18:07:36 +0000248 case Type::StructTyID: {
249 const StructType *ST = cast<StructType>(T);
250
251 // Output all of the element types...
252 for (StructType::element_iterator I = ST->element_begin(),
253 E = ST->element_end(); I != E; ++I) {
254 int Slot = Table.getSlot(*I);
255 assert(Slot != -1 && "Type used but not available!!");
256 output_typeid((unsigned)Slot);
257 }
258
259 // Terminate list with VoidTy
260 output_typeid((unsigned)Type::VoidTyID);
261 break;
262 }
263
264 case Type::PointerTyID: {
265 const PointerType *PT = cast<PointerType>(T);
266 int Slot = Table.getSlot(PT->getElementType());
267 assert(Slot != -1 && "Type used but not available!!");
268 output_typeid((unsigned)Slot);
269 break;
270 }
271
Chris Lattnerb0bf6642004-10-14 01:35:17 +0000272 case Type::OpaqueTyID:
Reid Spencerad89bd62004-07-25 18:07:36 +0000273 // No need to emit anything, just the count of opaque types is enough.
274 break;
Reid Spencerad89bd62004-07-25 18:07:36 +0000275
Reid Spencerad89bd62004-07-25 18:07:36 +0000276 default:
277 std::cerr << __FILE__ << ":" << __LINE__ << ": Don't know how to serialize"
278 << " Type '" << T->getDescription() << "'\n";
279 break;
280 }
281}
282
283void BytecodeWriter::outputConstant(const Constant *CPV) {
284 assert((CPV->getType()->isPrimitiveType() || !CPV->isNullValue()) &&
285 "Shouldn't output null constants!");
286
287 // We must check for a ConstantExpr before switching by type because
288 // a ConstantExpr can be of any type, and has no explicit value.
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000289 //
Reid Spencerad89bd62004-07-25 18:07:36 +0000290 if (const ConstantExpr *CE = dyn_cast<ConstantExpr>(CPV)) {
291 // FIXME: Encoding of constant exprs could be much more compact!
292 assert(CE->getNumOperands() > 0 && "ConstantExpr with 0 operands");
Chris Lattner129baf62004-12-04 21:28:47 +0000293 assert(CE->getNumOperands() != 1 || CE->getOpcode() == Instruction::Cast);
Chris Lattnera79e7cc2004-10-16 18:18:16 +0000294 output_vbr(1+CE->getNumOperands()); // flags as an expr
Reid Spencerad89bd62004-07-25 18:07:36 +0000295 output_vbr(CE->getOpcode()); // flags as an expr
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000296
Reid Spencerad89bd62004-07-25 18:07:36 +0000297 for (User::const_op_iterator OI = CE->op_begin(); OI != CE->op_end(); ++OI){
298 int Slot = Table.getSlot(*OI);
299 assert(Slot != -1 && "Unknown constant used in ConstantExpr!!");
300 output_vbr((unsigned)Slot);
301 Slot = Table.getSlot((*OI)->getType());
302 output_typeid((unsigned)Slot);
303 }
304 return;
Chris Lattnera79e7cc2004-10-16 18:18:16 +0000305 } else if (isa<UndefValue>(CPV)) {
306 output_vbr(1U); // 1 -> UndefValue constant.
307 return;
Reid Spencerad89bd62004-07-25 18:07:36 +0000308 } else {
309 output_vbr(0U); // flag as not a ConstantExpr
310 }
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000311
Reid Spencerad89bd62004-07-25 18:07:36 +0000312 switch (CPV->getType()->getTypeID()) {
313 case Type::BoolTyID: // Boolean Types
314 if (cast<ConstantBool>(CPV)->getValue())
315 output_vbr(1U);
316 else
317 output_vbr(0U);
318 break;
319
320 case Type::UByteTyID: // Unsigned integer types...
321 case Type::UShortTyID:
322 case Type::UIntTyID:
323 case Type::ULongTyID:
324 output_vbr(cast<ConstantUInt>(CPV)->getValue());
325 break;
326
327 case Type::SByteTyID: // Signed integer types...
328 case Type::ShortTyID:
329 case Type::IntTyID:
330 case Type::LongTyID:
331 output_vbr(cast<ConstantSInt>(CPV)->getValue());
332 break;
333
334 case Type::ArrayTyID: {
335 const ConstantArray *CPA = cast<ConstantArray>(CPV);
336 assert(!CPA->isString() && "Constant strings should be handled specially!");
337
Alkis Evlogimenos15876bb2004-08-04 08:44:43 +0000338 for (unsigned i = 0, e = CPA->getNumOperands(); i != e; ++i) {
Reid Spencerad89bd62004-07-25 18:07:36 +0000339 int Slot = Table.getSlot(CPA->getOperand(i));
340 assert(Slot != -1 && "Constant used but not available!!");
341 output_vbr((unsigned)Slot);
342 }
343 break;
344 }
345
Brian Gaeke715c90b2004-08-20 06:00:58 +0000346 case Type::PackedTyID: {
347 const ConstantPacked *CP = cast<ConstantPacked>(CPV);
348
349 for (unsigned i = 0, e = CP->getNumOperands(); i != e; ++i) {
350 int Slot = Table.getSlot(CP->getOperand(i));
351 assert(Slot != -1 && "Constant used but not available!!");
352 output_vbr((unsigned)Slot);
353 }
354 break;
355 }
356
Reid Spencerad89bd62004-07-25 18:07:36 +0000357 case Type::StructTyID: {
358 const ConstantStruct *CPS = cast<ConstantStruct>(CPV);
Reid Spencerad89bd62004-07-25 18:07:36 +0000359
Alkis Evlogimenos15876bb2004-08-04 08:44:43 +0000360 for (unsigned i = 0, e = CPS->getNumOperands(); i != e; ++i) {
361 int Slot = Table.getSlot(CPS->getOperand(i));
Reid Spencerad89bd62004-07-25 18:07:36 +0000362 assert(Slot != -1 && "Constant used but not available!!");
363 output_vbr((unsigned)Slot);
364 }
365 break;
366 }
367
368 case Type::PointerTyID:
369 assert(0 && "No non-null, non-constant-expr constants allowed!");
370 abort();
371
372 case Type::FloatTyID: { // Floating point types...
373 float Tmp = (float)cast<ConstantFP>(CPV)->getValue();
374 output_float(Tmp);
375 break;
376 }
377 case Type::DoubleTyID: {
378 double Tmp = cast<ConstantFP>(CPV)->getValue();
379 output_double(Tmp);
380 break;
381 }
382
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000383 case Type::VoidTyID:
Reid Spencerad89bd62004-07-25 18:07:36 +0000384 case Type::LabelTyID:
385 default:
386 std::cerr << __FILE__ << ":" << __LINE__ << ": Don't know how to serialize"
387 << " type '" << *CPV->getType() << "'\n";
388 break;
389 }
390 return;
391}
392
Chris Lattner3bc5a602006-01-25 23:08:15 +0000393/// outputInlineAsm - InlineAsm's get emitted to the constant pool, so they can
394/// be shared by multiple uses.
395void BytecodeWriter::outputInlineAsm(const InlineAsm *IA) {
396 // Output a marker, so we know when we have one one parsing the constant pool.
397 // Note that this encoding is 5 bytes: not very efficient for a marker. Since
398 // unique inline asms are rare, this should hardly matter.
399 output_vbr(~0U);
400
401 output(IA->getAsmString());
402 output(IA->getConstraintString());
403 output_vbr(unsigned(IA->hasSideEffects()));
404}
405
Reid Spencerad89bd62004-07-25 18:07:36 +0000406void BytecodeWriter::outputConstantStrings() {
407 SlotCalculator::string_iterator I = Table.string_begin();
408 SlotCalculator::string_iterator E = Table.string_end();
409 if (I == E) return; // No strings to emit
410
411 // If we have != 0 strings to emit, output them now. Strings are emitted into
412 // the 'void' type plane.
413 output_vbr(unsigned(E-I));
414 output_typeid(Type::VoidTyID);
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000415
Reid Spencerad89bd62004-07-25 18:07:36 +0000416 // Emit all of the strings.
417 for (I = Table.string_begin(); I != E; ++I) {
418 const ConstantArray *Str = *I;
419 int Slot = Table.getSlot(Str->getType());
420 assert(Slot != -1 && "Constant string of unknown type?");
421 output_typeid((unsigned)Slot);
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000422
Reid Spencerad89bd62004-07-25 18:07:36 +0000423 // Now that we emitted the type (which indicates the size of the string),
424 // emit all of the characters.
425 std::string Val = Str->getAsString();
426 output_data(Val.c_str(), Val.c_str()+Val.size());
427 }
428}
429
430//===----------------------------------------------------------------------===//
431//=== Instruction Output ===//
432//===----------------------------------------------------------------------===//
Reid Spencerad89bd62004-07-25 18:07:36 +0000433
Chris Lattnerda895d62005-02-27 06:18:25 +0000434// outputInstructionFormat0 - Output those weird instructions that have a large
Chris Lattnerdee199f2005-05-06 22:34:01 +0000435// number of operands or have large operands themselves.
Reid Spencerad89bd62004-07-25 18:07:36 +0000436//
437// Format: [opcode] [type] [numargs] [arg0] [arg1] ... [arg<numargs-1>]
438//
Chris Lattnerf9d71782004-10-14 01:46:07 +0000439void BytecodeWriter::outputInstructionFormat0(const Instruction *I,
440 unsigned Opcode,
441 const SlotCalculator &Table,
442 unsigned Type) {
Reid Spencerad89bd62004-07-25 18:07:36 +0000443 // Opcode must have top two bits clear...
444 output_vbr(Opcode << 2); // Instruction Opcode ID
445 output_typeid(Type); // Result type
446
447 unsigned NumArgs = I->getNumOperands();
Andrew Lenharth558bc882005-06-18 18:34:52 +0000448 output_vbr(NumArgs + (isa<CastInst>(I) ||
Chris Lattnerdee199f2005-05-06 22:34:01 +0000449 isa<VAArgInst>(I) || Opcode == 56 || Opcode == 58));
Reid Spencerad89bd62004-07-25 18:07:36 +0000450
451 if (!isa<GetElementPtrInst>(&I)) {
452 for (unsigned i = 0; i < NumArgs; ++i) {
453 int Slot = Table.getSlot(I->getOperand(i));
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000454 assert(Slot >= 0 && "No slot number for value!?!?");
Reid Spencerad89bd62004-07-25 18:07:36 +0000455 output_vbr((unsigned)Slot);
456 }
457
458 if (isa<CastInst>(I) || isa<VAArgInst>(I)) {
459 int Slot = Table.getSlot(I->getType());
460 assert(Slot != -1 && "Cast return type unknown?");
461 output_typeid((unsigned)Slot);
Chris Lattnerdee199f2005-05-06 22:34:01 +0000462 } else if (Opcode == 56) { // Invoke escape sequence
463 output_vbr(cast<InvokeInst>(I)->getCallingConv());
464 } else if (Opcode == 58) { // Call escape sequence
465 output_vbr((cast<CallInst>(I)->getCallingConv() << 1) |
Jeff Cohen39cef602005-05-07 02:44:04 +0000466 unsigned(cast<CallInst>(I)->isTailCall()));
Reid Spencerad89bd62004-07-25 18:07:36 +0000467 }
Reid Spencerad89bd62004-07-25 18:07:36 +0000468 } else {
469 int Slot = Table.getSlot(I->getOperand(0));
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000470 assert(Slot >= 0 && "No slot number for value!?!?");
Reid Spencerad89bd62004-07-25 18:07:36 +0000471 output_vbr(unsigned(Slot));
472
473 // We need to encode the type of sequential type indices into their slot #
474 unsigned Idx = 1;
475 for (gep_type_iterator TI = gep_type_begin(I), E = gep_type_end(I);
476 Idx != NumArgs; ++TI, ++Idx) {
477 Slot = Table.getSlot(I->getOperand(Idx));
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000478 assert(Slot >= 0 && "No slot number for value!?!?");
479
Reid Spencerad89bd62004-07-25 18:07:36 +0000480 if (isa<SequentialType>(*TI)) {
481 unsigned IdxId;
482 switch (I->getOperand(Idx)->getType()->getTypeID()) {
483 default: assert(0 && "Unknown index type!");
484 case Type::UIntTyID: IdxId = 0; break;
485 case Type::IntTyID: IdxId = 1; break;
486 case Type::ULongTyID: IdxId = 2; break;
487 case Type::LongTyID: IdxId = 3; break;
488 }
489 Slot = (Slot << 2) | IdxId;
490 }
491 output_vbr(unsigned(Slot));
492 }
493 }
Reid Spencerad89bd62004-07-25 18:07:36 +0000494}
495
496
497// outputInstrVarArgsCall - Output the absurdly annoying varargs function calls.
498// This are more annoying than most because the signature of the call does not
499// tell us anything about the types of the arguments in the varargs portion.
500// Because of this, we encode (as type 0) all of the argument types explicitly
501// before the argument value. This really sucks, but you shouldn't be using
502// varargs functions in your code! *death to printf*!
503//
504// Format: [opcode] [type] [numargs] [arg0] [arg1] ... [arg<numargs-1>]
505//
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000506void BytecodeWriter::outputInstrVarArgsCall(const Instruction *I,
507 unsigned Opcode,
508 const SlotCalculator &Table,
509 unsigned Type) {
Reid Spencerad89bd62004-07-25 18:07:36 +0000510 assert(isa<CallInst>(I) || isa<InvokeInst>(I));
511 // Opcode must have top two bits clear...
512 output_vbr(Opcode << 2); // Instruction Opcode ID
513 output_typeid(Type); // Result type (varargs type)
514
515 const PointerType *PTy = cast<PointerType>(I->getOperand(0)->getType());
516 const FunctionType *FTy = cast<FunctionType>(PTy->getElementType());
517 unsigned NumParams = FTy->getNumParams();
518
519 unsigned NumFixedOperands;
520 if (isa<CallInst>(I)) {
521 // Output an operand for the callee and each fixed argument, then two for
522 // each variable argument.
523 NumFixedOperands = 1+NumParams;
524 } else {
525 assert(isa<InvokeInst>(I) && "Not call or invoke??");
526 // Output an operand for the callee and destinations, then two for each
527 // variable argument.
528 NumFixedOperands = 3+NumParams;
529 }
Chris Lattnera65371e2006-05-26 18:42:34 +0000530 output_vbr(2 * I->getNumOperands()-NumFixedOperands +
531 unsigned(Opcode == 56 || Opcode == 58));
Reid Spencerad89bd62004-07-25 18:07:36 +0000532
533 // The type for the function has already been emitted in the type field of the
534 // instruction. Just emit the slot # now.
535 for (unsigned i = 0; i != NumFixedOperands; ++i) {
536 int Slot = Table.getSlot(I->getOperand(i));
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000537 assert(Slot >= 0 && "No slot number for value!?!?");
Reid Spencerad89bd62004-07-25 18:07:36 +0000538 output_vbr((unsigned)Slot);
539 }
540
541 for (unsigned i = NumFixedOperands, e = I->getNumOperands(); i != e; ++i) {
542 // Output Arg Type ID
543 int Slot = Table.getSlot(I->getOperand(i)->getType());
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000544 assert(Slot >= 0 && "No slot number for value!?!?");
Reid Spencerad89bd62004-07-25 18:07:36 +0000545 output_typeid((unsigned)Slot);
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000546
Reid Spencerad89bd62004-07-25 18:07:36 +0000547 // Output arg ID itself
548 Slot = Table.getSlot(I->getOperand(i));
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000549 assert(Slot >= 0 && "No slot number for value!?!?");
Reid Spencerad89bd62004-07-25 18:07:36 +0000550 output_vbr((unsigned)Slot);
551 }
Chris Lattnera65371e2006-05-26 18:42:34 +0000552
553 // If this is the escape sequence for call, emit the tailcall/cc info.
554 if (Opcode == 58) {
555 const CallInst *CI = cast<CallInst>(I);
556 output_vbr((CI->getCallingConv() << 1) | unsigned(CI->isTailCall()));
557 } else if (Opcode == 56) { // Invoke escape sequence.
558 output_vbr(cast<InvokeInst>(I)->getCallingConv());
559 }
Reid Spencerad89bd62004-07-25 18:07:36 +0000560}
561
562
563// outputInstructionFormat1 - Output one operand instructions, knowing that no
564// operand index is >= 2^12.
565//
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000566inline void BytecodeWriter::outputInstructionFormat1(const Instruction *I,
567 unsigned Opcode,
568 unsigned *Slots,
569 unsigned Type) {
Reid Spencerad89bd62004-07-25 18:07:36 +0000570 // bits Instruction format:
571 // --------------------------
572 // 01-00: Opcode type, fixed to 1.
573 // 07-02: Opcode
574 // 19-08: Resulting type plane
575 // 31-20: Operand #1 (if set to (2^12-1), then zero operands)
576 //
Chris Lattnerf9d71782004-10-14 01:46:07 +0000577 output(1 | (Opcode << 2) | (Type << 8) | (Slots[0] << 20));
Reid Spencerad89bd62004-07-25 18:07:36 +0000578}
579
580
581// outputInstructionFormat2 - Output two operand instructions, knowing that no
582// operand index is >= 2^8.
583//
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000584inline void BytecodeWriter::outputInstructionFormat2(const Instruction *I,
585 unsigned Opcode,
586 unsigned *Slots,
587 unsigned Type) {
Reid Spencerad89bd62004-07-25 18:07:36 +0000588 // bits Instruction format:
589 // --------------------------
590 // 01-00: Opcode type, fixed to 2.
591 // 07-02: Opcode
592 // 15-08: Resulting type plane
593 // 23-16: Operand #1
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000594 // 31-24: Operand #2
Reid Spencerad89bd62004-07-25 18:07:36 +0000595 //
Chris Lattnerf9d71782004-10-14 01:46:07 +0000596 output(2 | (Opcode << 2) | (Type << 8) | (Slots[0] << 16) | (Slots[1] << 24));
Reid Spencerad89bd62004-07-25 18:07:36 +0000597}
598
599
600// outputInstructionFormat3 - Output three operand instructions, knowing that no
601// operand index is >= 2^6.
602//
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000603inline void BytecodeWriter::outputInstructionFormat3(const Instruction *I,
Reid Spencerad89bd62004-07-25 18:07:36 +0000604 unsigned Opcode,
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000605 unsigned *Slots,
606 unsigned Type) {
Reid Spencerad89bd62004-07-25 18:07:36 +0000607 // bits Instruction format:
608 // --------------------------
609 // 01-00: Opcode type, fixed to 3.
610 // 07-02: Opcode
611 // 13-08: Resulting type plane
612 // 19-14: Operand #1
613 // 25-20: Operand #2
614 // 31-26: Operand #3
615 //
Chris Lattnerf9d71782004-10-14 01:46:07 +0000616 output(3 | (Opcode << 2) | (Type << 8) |
Chris Lattner84d1ced2004-10-14 01:57:28 +0000617 (Slots[0] << 14) | (Slots[1] << 20) | (Slots[2] << 26));
Reid Spencerad89bd62004-07-25 18:07:36 +0000618}
619
620void BytecodeWriter::outputInstruction(const Instruction &I) {
Chris Lattnerbfed9242005-05-13 23:35:47 +0000621 assert(I.getOpcode() < 56 && "Opcode too big???");
Reid Spencerad89bd62004-07-25 18:07:36 +0000622 unsigned Opcode = I.getOpcode();
623 unsigned NumOperands = I.getNumOperands();
624
Chris Lattner38287bd2005-05-06 06:13:34 +0000625 // Encode 'tail call' as 61, 'volatile load' as 62, and 'volatile store' as
626 // 63.
Chris Lattnerdee199f2005-05-06 22:34:01 +0000627 if (const CallInst *CI = dyn_cast<CallInst>(&I)) {
628 if (CI->getCallingConv() == CallingConv::C) {
629 if (CI->isTailCall())
630 Opcode = 61; // CCC + Tail Call
631 else
632 ; // Opcode = Instruction::Call
633 } else if (CI->getCallingConv() == CallingConv::Fast) {
634 if (CI->isTailCall())
635 Opcode = 59; // FastCC + TailCall
636 else
637 Opcode = 60; // FastCC + Not Tail Call
638 } else {
639 Opcode = 58; // Call escape sequence.
640 }
641 } else if (const InvokeInst *II = dyn_cast<InvokeInst>(&I)) {
642 if (II->getCallingConv() == CallingConv::Fast)
643 Opcode = 57; // FastCC invoke.
644 else if (II->getCallingConv() != CallingConv::C)
645 Opcode = 56; // Invoke escape sequence.
Jeff Cohen00b168892005-07-27 06:12:32 +0000646
Chris Lattnerdee199f2005-05-06 22:34:01 +0000647 } else if (isa<LoadInst>(I) && cast<LoadInst>(I).isVolatile()) {
Reid Spencerad89bd62004-07-25 18:07:36 +0000648 Opcode = 62;
Chris Lattnerdee199f2005-05-06 22:34:01 +0000649 } else if (isa<StoreInst>(I) && cast<StoreInst>(I).isVolatile()) {
Reid Spencerad89bd62004-07-25 18:07:36 +0000650 Opcode = 63;
Chris Lattnerdee199f2005-05-06 22:34:01 +0000651 }
Reid Spencerad89bd62004-07-25 18:07:36 +0000652
653 // Figure out which type to encode with the instruction. Typically we want
654 // the type of the first parameter, as opposed to the type of the instruction
655 // (for example, with setcc, we always know it returns bool, but the type of
656 // the first param is actually interesting). But if we have no arguments
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000657 // we take the type of the instruction itself.
Reid Spencerad89bd62004-07-25 18:07:36 +0000658 //
659 const Type *Ty;
660 switch (I.getOpcode()) {
661 case Instruction::Select:
662 case Instruction::Malloc:
663 case Instruction::Alloca:
664 Ty = I.getType(); // These ALWAYS want to encode the return type
665 break;
666 case Instruction::Store:
667 Ty = I.getOperand(1)->getType(); // Encode the pointer type...
668 assert(isa<PointerType>(Ty) && "Store to nonpointer type!?!?");
669 break;
670 default: // Otherwise use the default behavior...
671 Ty = NumOperands ? I.getOperand(0)->getType() : I.getType();
672 break;
673 }
674
675 unsigned Type;
676 int Slot = Table.getSlot(Ty);
677 assert(Slot != -1 && "Type not available!!?!");
678 Type = (unsigned)Slot;
679
680 // Varargs calls and invokes are encoded entirely different from any other
681 // instructions.
682 if (const CallInst *CI = dyn_cast<CallInst>(&I)){
683 const PointerType *Ty =cast<PointerType>(CI->getCalledValue()->getType());
684 if (cast<FunctionType>(Ty->getElementType())->isVarArg()) {
685 outputInstrVarArgsCall(CI, Opcode, Table, Type);
686 return;
687 }
688 } else if (const InvokeInst *II = dyn_cast<InvokeInst>(&I)) {
689 const PointerType *Ty =cast<PointerType>(II->getCalledValue()->getType());
690 if (cast<FunctionType>(Ty->getElementType())->isVarArg()) {
691 outputInstrVarArgsCall(II, Opcode, Table, Type);
692 return;
693 }
694 }
695
696 if (NumOperands <= 3) {
697 // Make sure that we take the type number into consideration. We don't want
698 // to overflow the field size for the instruction format we select.
699 //
700 unsigned MaxOpSlot = Type;
701 unsigned Slots[3]; Slots[0] = (1 << 12)-1; // Marker to signify 0 operands
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000702
Reid Spencerad89bd62004-07-25 18:07:36 +0000703 for (unsigned i = 0; i != NumOperands; ++i) {
704 int slot = Table.getSlot(I.getOperand(i));
705 assert(slot != -1 && "Broken bytecode!");
706 if (unsigned(slot) > MaxOpSlot) MaxOpSlot = unsigned(slot);
707 Slots[i] = unsigned(slot);
708 }
709
710 // Handle the special cases for various instructions...
711 if (isa<CastInst>(I) || isa<VAArgInst>(I)) {
712 // Cast has to encode the destination type as the second argument in the
713 // packet, or else we won't know what type to cast to!
714 Slots[1] = Table.getSlot(I.getType());
715 assert(Slots[1] != ~0U && "Cast return type unknown?");
716 if (Slots[1] > MaxOpSlot) MaxOpSlot = Slots[1];
717 NumOperands++;
Chris Lattner42ba6b42005-11-05 22:08:14 +0000718 } else if (const AllocationInst *AI = dyn_cast<AllocationInst>(&I)) {
719 assert(NumOperands == 1 && "Bogus allocation!");
720 if (AI->getAlignment()) {
721 Slots[1] = Log2_32(AI->getAlignment())+1;
722 if (Slots[1] > MaxOpSlot) MaxOpSlot = Slots[1];
723 NumOperands = 2;
724 }
Reid Spencerad89bd62004-07-25 18:07:36 +0000725 } else if (const GetElementPtrInst *GEP = dyn_cast<GetElementPtrInst>(&I)) {
726 // We need to encode the type of sequential type indices into their slot #
727 unsigned Idx = 1;
728 for (gep_type_iterator I = gep_type_begin(GEP), E = gep_type_end(GEP);
729 I != E; ++I, ++Idx)
730 if (isa<SequentialType>(*I)) {
731 unsigned IdxId;
732 switch (GEP->getOperand(Idx)->getType()->getTypeID()) {
733 default: assert(0 && "Unknown index type!");
734 case Type::UIntTyID: IdxId = 0; break;
735 case Type::IntTyID: IdxId = 1; break;
736 case Type::ULongTyID: IdxId = 2; break;
737 case Type::LongTyID: IdxId = 3; break;
738 }
739 Slots[Idx] = (Slots[Idx] << 2) | IdxId;
740 if (Slots[Idx] > MaxOpSlot) MaxOpSlot = Slots[Idx];
741 }
Chris Lattnerdee199f2005-05-06 22:34:01 +0000742 } else if (Opcode == 58) {
743 // If this is the escape sequence for call, emit the tailcall/cc info.
744 const CallInst &CI = cast<CallInst>(I);
745 ++NumOperands;
Chris Lattnerebf8e6c2006-05-19 21:57:37 +0000746 if (NumOperands <= 3) {
747 Slots[NumOperands-1] =
748 (CI.getCallingConv() << 1)|unsigned(CI.isTailCall());
Chris Lattnerdee199f2005-05-06 22:34:01 +0000749 if (Slots[NumOperands-1] > MaxOpSlot)
750 MaxOpSlot = Slots[NumOperands-1];
751 }
752 } else if (Opcode == 56) {
753 // Invoke escape seq has at least 4 operands to encode.
754 ++NumOperands;
Reid Spencerad89bd62004-07-25 18:07:36 +0000755 }
756
757 // Decide which instruction encoding to use. This is determined primarily
758 // by the number of operands, and secondarily by whether or not the max
759 // operand will fit into the instruction encoding. More operands == fewer
760 // bits per operand.
761 //
762 switch (NumOperands) {
763 case 0:
764 case 1:
765 if (MaxOpSlot < (1 << 12)-1) { // -1 because we use 4095 to indicate 0 ops
766 outputInstructionFormat1(&I, Opcode, Slots, Type);
767 return;
768 }
769 break;
770
771 case 2:
772 if (MaxOpSlot < (1 << 8)) {
773 outputInstructionFormat2(&I, Opcode, Slots, Type);
774 return;
775 }
776 break;
777
778 case 3:
779 if (MaxOpSlot < (1 << 6)) {
780 outputInstructionFormat3(&I, Opcode, Slots, Type);
781 return;
782 }
783 break;
784 default:
785 break;
786 }
787 }
788
789 // If we weren't handled before here, we either have a large number of
790 // operands or a large operand index that we are referring to.
791 outputInstructionFormat0(&I, Opcode, Table, Type);
792}
793
794//===----------------------------------------------------------------------===//
795//=== Block Output ===//
796//===----------------------------------------------------------------------===//
797
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000798BytecodeWriter::BytecodeWriter(std::vector<unsigned char> &o, const Module *M)
Reid Spencer798ff642004-05-26 07:37:11 +0000799 : Out(o), Table(M) {
Chris Lattner00950542001-06-06 20:29:01 +0000800
Chris Lattner83bb3d22004-01-14 23:36:54 +0000801 // Emit the signature...
802 static const unsigned char *Sig = (const unsigned char*)"llvm";
Reid Spencerad89bd62004-07-25 18:07:36 +0000803 output_data(Sig, Sig+4);
Chris Lattner00950542001-06-06 20:29:01 +0000804
805 // Emit the top level CLASS block.
Reid Spencerad89bd62004-07-25 18:07:36 +0000806 BytecodeBlock ModuleBlock(BytecodeFormat::ModuleBlockID, *this, false, true);
Chris Lattner00950542001-06-06 20:29:01 +0000807
Chris Lattnerd445c6b2003-08-24 13:47:36 +0000808 bool isBigEndian = M->getEndianness() == Module::BigEndian;
809 bool hasLongPointers = M->getPointerSize() == Module::Pointer64;
810 bool hasNoEndianness = M->getEndianness() == Module::AnyEndianness;
811 bool hasNoPointerSize = M->getPointerSize() == Module::AnyPointerSize;
Chris Lattner186a1f72003-03-19 20:56:46 +0000812
Chris Lattnera79e7cc2004-10-16 18:18:16 +0000813 // Output the version identifier and other information.
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000814 unsigned Version = (BCVersionNum << 4) |
Reid Spencer38d54be2004-08-17 07:45:14 +0000815 (unsigned)isBigEndian | (hasLongPointers << 1) |
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000816 (hasNoEndianness << 2) |
Reid Spencer38d54be2004-08-17 07:45:14 +0000817 (hasNoPointerSize << 3);
Reid Spencerad89bd62004-07-25 18:07:36 +0000818 output_vbr(Version);
Chris Lattner00950542001-06-06 20:29:01 +0000819
Reid Spencercb3595c2004-07-04 11:45:47 +0000820 // The Global type plane comes first
Chris Lattner186a1f72003-03-19 20:56:46 +0000821 {
Reid Spencerad89bd62004-07-25 18:07:36 +0000822 BytecodeBlock CPool(BytecodeFormat::GlobalTypePlaneBlockID, *this );
Reid Spencercb3595c2004-07-04 11:45:47 +0000823 outputTypes(Type::FirstDerivedTyID);
Chris Lattner186a1f72003-03-19 20:56:46 +0000824 }
Chris Lattner00950542001-06-06 20:29:01 +0000825
Chris Lattner186a1f72003-03-19 20:56:46 +0000826 // The ModuleInfoBlock follows directly after the type information
Chris Lattnere8fdde12001-09-07 16:39:41 +0000827 outputModuleInfoBlock(M);
828
Chris Lattner186a1f72003-03-19 20:56:46 +0000829 // Output module level constants, used for global variable initializers
830 outputConstants(false);
831
Chris Lattnerb5794002002-04-07 22:49:37 +0000832 // Do the whole module now! Process each function at a time...
Chris Lattner0b12b5f2002-06-25 16:13:21 +0000833 for (Module::const_iterator I = M->begin(), E = M->end(); I != E; ++I)
Chris Lattner186a1f72003-03-19 20:56:46 +0000834 outputFunction(I);
Chris Lattnere8fdde12001-09-07 16:39:41 +0000835
836 // If needed, output the symbol table for the module...
Chris Lattner6e6026b2002-11-20 18:36:02 +0000837 outputSymbolTable(M->getSymbolTable());
Chris Lattner00950542001-06-06 20:29:01 +0000838}
839
Chris Lattnerf9d71782004-10-14 01:46:07 +0000840void BytecodeWriter::outputTypes(unsigned TypeNum) {
Reid Spencercb3595c2004-07-04 11:45:47 +0000841 // Write the type plane for types first because earlier planes (e.g. for a
842 // primitive type like float) may have constants constructed using types
843 // coming later (e.g., via getelementptr from a pointer type). The type
844 // plane is needed before types can be fwd or bkwd referenced.
845 const std::vector<const Type*>& Types = Table.getTypes();
846 assert(!Types.empty() && "No types at all?");
847 assert(TypeNum <= Types.size() && "Invalid TypeNo index");
848
849 unsigned NumEntries = Types.size() - TypeNum;
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000850
Reid Spencercb3595c2004-07-04 11:45:47 +0000851 // Output type header: [num entries]
Reid Spencerad89bd62004-07-25 18:07:36 +0000852 output_vbr(NumEntries);
Reid Spencercb3595c2004-07-04 11:45:47 +0000853
854 for (unsigned i = TypeNum; i < TypeNum+NumEntries; ++i)
855 outputType(Types[i]);
856}
857
Vikram S. Advea7dac3d2002-07-14 23:07:51 +0000858// Helper function for outputConstants().
859// Writes out all the constants in the plane Plane starting at entry StartNo.
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000860//
Vikram S. Advea7dac3d2002-07-14 23:07:51 +0000861void BytecodeWriter::outputConstantsInPlane(const std::vector<const Value*>
862 &Plane, unsigned StartNo) {
863 unsigned ValNo = StartNo;
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000864
Chris Lattner83bb3d22004-01-14 23:36:54 +0000865 // Scan through and ignore function arguments, global values, and constant
866 // strings.
867 for (; ValNo < Plane.size() &&
868 (isa<Argument>(Plane[ValNo]) || isa<GlobalValue>(Plane[ValNo]) ||
869 (isa<ConstantArray>(Plane[ValNo]) &&
870 cast<ConstantArray>(Plane[ValNo])->isString())); ValNo++)
Vikram S. Advea7dac3d2002-07-14 23:07:51 +0000871 /*empty*/;
872
873 unsigned NC = ValNo; // Number of constants
Chris Lattner3bc5a602006-01-25 23:08:15 +0000874 for (; NC < Plane.size() && (isa<Constant>(Plane[NC]) ||
875 isa<InlineAsm>(Plane[NC])); NC++)
Vikram S. Advea7dac3d2002-07-14 23:07:51 +0000876 /*empty*/;
877 NC -= ValNo; // Convert from index into count
878 if (NC == 0) return; // Skip empty type planes...
879
Chris Lattnerd6942d72004-01-14 16:54:21 +0000880 // FIXME: Most slabs only have 1 or 2 entries! We should encode this much
881 // more compactly.
882
Vikram S. Advea7dac3d2002-07-14 23:07:51 +0000883 // Output type header: [num entries][type id number]
884 //
Reid Spencerad89bd62004-07-25 18:07:36 +0000885 output_vbr(NC);
Vikram S. Advea7dac3d2002-07-14 23:07:51 +0000886
887 // Output the Type ID Number...
Alkis Evlogimenos60596382003-10-17 02:02:40 +0000888 int Slot = Table.getSlot(Plane.front()->getType());
Vikram S. Advea7dac3d2002-07-14 23:07:51 +0000889 assert (Slot != -1 && "Type in constant pool but not in function!!");
Reid Spencerad89bd62004-07-25 18:07:36 +0000890 output_typeid((unsigned)Slot);
Vikram S. Advea7dac3d2002-07-14 23:07:51 +0000891
Vikram S. Advea7dac3d2002-07-14 23:07:51 +0000892 for (unsigned i = ValNo; i < ValNo+NC; ++i) {
893 const Value *V = Plane[i];
Chris Lattner3bc5a602006-01-25 23:08:15 +0000894 if (const Constant *C = dyn_cast<Constant>(V))
Reid Spencere0125b62004-07-18 00:16:21 +0000895 outputConstant(C);
Chris Lattner3bc5a602006-01-25 23:08:15 +0000896 else
897 outputInlineAsm(cast<InlineAsm>(V));
Vikram S. Advea7dac3d2002-07-14 23:07:51 +0000898 }
899}
900
Chris Lattner9e60d8d2005-05-05 22:21:19 +0000901static inline bool hasNullValue(const Type *Ty) {
902 return Ty != Type::LabelTy && Ty != Type::VoidTy && !isa<OpaqueType>(Ty);
Chris Lattner80b97342004-01-17 23:25:43 +0000903}
904
Chris Lattner79df7c02002-03-26 18:01:55 +0000905void BytecodeWriter::outputConstants(bool isFunction) {
Reid Spencerad89bd62004-07-25 18:07:36 +0000906 BytecodeBlock CPool(BytecodeFormat::ConstantPoolBlockID, *this,
Chris Lattner0baa0af2004-01-15 21:06:57 +0000907 true /* Elide block if empty */);
Chris Lattner00950542001-06-06 20:29:01 +0000908
909 unsigned NumPlanes = Table.getNumPlanes();
Chris Lattnerf69315b2003-05-22 18:35:38 +0000910
Reid Spencere0125b62004-07-18 00:16:21 +0000911 if (isFunction)
912 // Output the type plane before any constants!
Chris Lattnera79e7cc2004-10-16 18:18:16 +0000913 outputTypes(Table.getModuleTypeLevel());
Reid Spencere0125b62004-07-18 00:16:21 +0000914 else
Chris Lattnerf9d71782004-10-14 01:46:07 +0000915 // Output module-level string constants before any other constants.
Chris Lattner83bb3d22004-01-14 23:36:54 +0000916 outputConstantStrings();
917
Reid Spencercb3595c2004-07-04 11:45:47 +0000918 for (unsigned pno = 0; pno != NumPlanes; pno++) {
919 const std::vector<const Value*> &Plane = Table.getPlane(pno);
920 if (!Plane.empty()) { // Skip empty type planes...
921 unsigned ValNo = 0;
922 if (isFunction) // Don't re-emit module constants
Reid Spencer0852c802004-07-04 11:46:15 +0000923 ValNo += Table.getModuleLevel(pno);
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000924
Chris Lattner9e60d8d2005-05-05 22:21:19 +0000925 if (hasNullValue(Plane[0]->getType())) {
Reid Spencer0852c802004-07-04 11:46:15 +0000926 // Skip zero initializer
927 if (ValNo == 0)
928 ValNo = 1;
Chris Lattnerf69315b2003-05-22 18:35:38 +0000929 }
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000930
Reid Spencercb3595c2004-07-04 11:45:47 +0000931 // Write out constants in the plane
932 outputConstantsInPlane(Plane, ValNo);
Chris Lattnerf69315b2003-05-22 18:35:38 +0000933 }
Reid Spencercb3595c2004-07-04 11:45:47 +0000934 }
Chris Lattner00950542001-06-06 20:29:01 +0000935}
936
Chris Lattner6b252422003-10-16 18:28:50 +0000937static unsigned getEncodedLinkage(const GlobalValue *GV) {
938 switch (GV->getLinkage()) {
939 default: assert(0 && "Invalid linkage!");
940 case GlobalValue::ExternalLinkage: return 0;
Chris Lattner6b252422003-10-16 18:28:50 +0000941 case GlobalValue::WeakLinkage: return 1;
942 case GlobalValue::AppendingLinkage: return 2;
943 case GlobalValue::InternalLinkage: return 3;
Chris Lattner22482a12003-10-18 06:30:21 +0000944 case GlobalValue::LinkOnceLinkage: return 4;
Chris Lattner6b252422003-10-16 18:28:50 +0000945 }
946}
947
Chris Lattner00950542001-06-06 20:29:01 +0000948void BytecodeWriter::outputModuleInfoBlock(const Module *M) {
Reid Spencerad89bd62004-07-25 18:07:36 +0000949 BytecodeBlock ModuleInfoBlock(BytecodeFormat::ModuleGlobalInfoBlockID, *this);
Misha Brukman23c6d2c2005-04-21 21:48:46 +0000950
Chris Lattner404cddf2005-11-12 01:33:40 +0000951 // Give numbers to sections as we encounter them.
952 unsigned SectionIDCounter = 0;
953 std::vector<std::string> SectionNames;
954 std::map<std::string, unsigned> SectionID;
955
Chris Lattner70cc3392001-09-10 07:58:01 +0000956 // Output the types for the global variables in the module...
Chris Lattner28caccf2005-05-06 20:27:03 +0000957 for (Module::const_global_iterator I = M->global_begin(),
Chris Lattner8eb52dd2005-11-06 07:11:04 +0000958 End = M->global_end(); I != End; ++I) {
Alkis Evlogimenos60596382003-10-17 02:02:40 +0000959 int Slot = Table.getSlot(I->getType());
Chris Lattner70cc3392001-09-10 07:58:01 +0000960 assert(Slot != -1 && "Module global vars is broken!");
Chris Lattnerd70684f2001-09-18 04:01:05 +0000961
Chris Lattner8eb52dd2005-11-06 07:11:04 +0000962 assert((I->hasInitializer() || !I->hasInternalLinkage()) &&
963 "Global must have an initializer or have external linkage!");
964
Chris Lattner22482a12003-10-18 06:30:21 +0000965 // Fields: bit0 = isConstant, bit1 = hasInitializer, bit2-4=Linkage,
Chris Lattner8eb52dd2005-11-06 07:11:04 +0000966 // bit5+ = Slot # for type.
Chris Lattner404cddf2005-11-12 01:33:40 +0000967 bool HasExtensionWord = (I->getAlignment() != 0) || I->hasSection();
Chris Lattner8eb52dd2005-11-06 07:11:04 +0000968
969 // If we need to use the extension byte, set linkage=3(internal) and
970 // initializer = 0 (impossible!).
971 if (!HasExtensionWord) {
972 unsigned oSlot = ((unsigned)Slot << 5) | (getEncodedLinkage(I) << 2) |
973 (I->hasInitializer() << 1) | (unsigned)I->isConstant();
974 output_vbr(oSlot);
975 } else {
976 unsigned oSlot = ((unsigned)Slot << 5) | (3 << 2) |
977 (0 << 1) | (unsigned)I->isConstant();
978 output_vbr(oSlot);
979
980 // The extension word has this format: bit 0 = has initializer, bit 1-3 =
Chris Lattner404cddf2005-11-12 01:33:40 +0000981 // linkage, bit 4-8 = alignment (log2), bit 9 = has SectionID,
982 // bits 10+ = future use.
Jeff Cohenba0ffcc2005-11-12 01:01:50 +0000983 unsigned ExtWord = (unsigned)I->hasInitializer() |
984 (getEncodedLinkage(I) << 1) |
Chris Lattner404cddf2005-11-12 01:33:40 +0000985 ((Log2_32(I->getAlignment())+1) << 4) |
986 ((unsigned)I->hasSection() << 9);
Chris Lattner8eb52dd2005-11-06 07:11:04 +0000987 output_vbr(ExtWord);
Chris Lattner404cddf2005-11-12 01:33:40 +0000988 if (I->hasSection()) {
989 // Give section names unique ID's.
990 unsigned &Entry = SectionID[I->getSection()];
991 if (Entry == 0) {
992 Entry = ++SectionIDCounter;
993 SectionNames.push_back(I->getSection());
994 }
995 output_vbr(Entry);
996 }
Chris Lattner8eb52dd2005-11-06 07:11:04 +0000997 }
Chris Lattnerd70684f2001-09-18 04:01:05 +0000998
Chris Lattner1b98c5c2001-10-13 06:48:38 +0000999 // If we have an initializer, output it now.
Chris Lattner0b12b5f2002-06-25 16:13:21 +00001000 if (I->hasInitializer()) {
Alkis Evlogimenos60596382003-10-17 02:02:40 +00001001 Slot = Table.getSlot((Value*)I->getInitializer());
Chris Lattnerd70684f2001-09-18 04:01:05 +00001002 assert(Slot != -1 && "No slot for global var initializer!");
Reid Spencerad89bd62004-07-25 18:07:36 +00001003 output_vbr((unsigned)Slot);
Chris Lattnerd70684f2001-09-18 04:01:05 +00001004 }
Chris Lattner70cc3392001-09-10 07:58:01 +00001005 }
Reid Spencerad89bd62004-07-25 18:07:36 +00001006 output_typeid((unsigned)Table.getSlot(Type::VoidTy));
Chris Lattner70cc3392001-09-10 07:58:01 +00001007
Chris Lattnera79e7cc2004-10-16 18:18:16 +00001008 // Output the types of the functions in this module.
Chris Lattner7fc9fe32001-06-27 23:41:11 +00001009 for (Module::const_iterator I = M->begin(), End = M->end(); I != End; ++I) {
Alkis Evlogimenos60596382003-10-17 02:02:40 +00001010 int Slot = Table.getSlot(I->getType());
Chris Lattnera79e7cc2004-10-16 18:18:16 +00001011 assert(Slot != -1 && "Module slot calculator is broken!");
Chris Lattner00950542001-06-06 20:29:01 +00001012 assert(Slot >= Type::FirstDerivedTyID && "Derived type not in range!");
Chris Lattnere73bd452005-11-06 07:43:39 +00001013 assert(((Slot << 6) >> 6) == Slot && "Slot # too big!");
Chris Lattner54b369e2005-11-06 07:46:13 +00001014 unsigned CC = I->getCallingConv()+1;
1015 unsigned ID = (Slot << 5) | (CC & 15);
Chris Lattner479ffeb2005-05-06 20:42:57 +00001016
Chris Lattnerd6e431f2004-11-15 22:39:49 +00001017 if (I->isExternal()) // If external, we don't have an FunctionInfo block.
1018 ID |= 1 << 4;
Chris Lattnere73bd452005-11-06 07:43:39 +00001019
Chris Lattner404cddf2005-11-12 01:33:40 +00001020 if (I->getAlignment() || I->hasSection() || (CC & ~15) != 0)
Chris Lattnere73bd452005-11-06 07:43:39 +00001021 ID |= 1 << 31; // Do we need an extension word?
1022
Chris Lattnera79e7cc2004-10-16 18:18:16 +00001023 output_vbr(ID);
Chris Lattnere73bd452005-11-06 07:43:39 +00001024
1025 if (ID & (1 << 31)) {
1026 // Extension byte: bits 0-4 = alignment, bits 5-9 = top nibble of calling
Chris Lattner404cddf2005-11-12 01:33:40 +00001027 // convention, bit 10 = hasSectionID.
1028 ID = (Log2_32(I->getAlignment())+1) | ((CC >> 4) << 5) |
1029 (I->hasSection() << 10);
Chris Lattnere73bd452005-11-06 07:43:39 +00001030 output_vbr(ID);
Chris Lattner404cddf2005-11-12 01:33:40 +00001031
1032 // Give section names unique ID's.
1033 if (I->hasSection()) {
1034 unsigned &Entry = SectionID[I->getSection()];
1035 if (Entry == 0) {
1036 Entry = ++SectionIDCounter;
1037 SectionNames.push_back(I->getSection());
1038 }
1039 output_vbr(Entry);
1040 }
Chris Lattnere73bd452005-11-06 07:43:39 +00001041 }
Chris Lattner00950542001-06-06 20:29:01 +00001042 }
Chris Lattnera79e7cc2004-10-16 18:18:16 +00001043 output_vbr((unsigned)Table.getSlot(Type::VoidTy) << 5);
Reid Spencerad89bd62004-07-25 18:07:36 +00001044
Chris Lattnera79e7cc2004-10-16 18:18:16 +00001045 // Emit the list of dependent libraries for the Module.
Reid Spencer5ac88122004-07-25 21:32:02 +00001046 Module::lib_iterator LI = M->lib_begin();
1047 Module::lib_iterator LE = M->lib_end();
Chris Lattnera79e7cc2004-10-16 18:18:16 +00001048 output_vbr(unsigned(LE - LI)); // Emit the number of dependent libraries.
1049 for (; LI != LE; ++LI)
Reid Spencer38d54be2004-08-17 07:45:14 +00001050 output(*LI);
Reid Spencerad89bd62004-07-25 18:07:36 +00001051
1052 // Output the target triple from the module
Reid Spencer38d54be2004-08-17 07:45:14 +00001053 output(M->getTargetTriple());
Chris Lattner404cddf2005-11-12 01:33:40 +00001054
1055 // Emit the table of section names.
1056 output_vbr((unsigned)SectionNames.size());
1057 for (unsigned i = 0, e = SectionNames.size(); i != e; ++i)
1058 output(SectionNames[i]);
Chris Lattner7e6db762006-01-23 23:43:17 +00001059
1060 // Output the inline asm string.
Chris Lattner66316012006-01-24 04:14:29 +00001061 output(M->getModuleInlineAsm());
Chris Lattner00950542001-06-06 20:29:01 +00001062}
1063
Chris Lattnercf3e67f2004-01-18 21:08:52 +00001064void BytecodeWriter::outputInstructions(const Function *F) {
Reid Spencerad89bd62004-07-25 18:07:36 +00001065 BytecodeBlock ILBlock(BytecodeFormat::InstructionListBlockID, *this);
Chris Lattnercf3e67f2004-01-18 21:08:52 +00001066 for (Function::const_iterator BB = F->begin(), E = F->end(); BB != E; ++BB)
1067 for (BasicBlock::const_iterator I = BB->begin(), E = BB->end(); I!=E; ++I)
1068 outputInstruction(*I);
Chris Lattnercf3e67f2004-01-18 21:08:52 +00001069}
1070
Chris Lattner186a1f72003-03-19 20:56:46 +00001071void BytecodeWriter::outputFunction(const Function *F) {
Chris Lattnerfd7f8fe2004-11-15 21:56:33 +00001072 // If this is an external function, there is nothing else to emit!
1073 if (F->isExternal()) return;
1074
Chris Lattnerd6e431f2004-11-15 22:39:49 +00001075 BytecodeBlock FunctionBlock(BytecodeFormat::FunctionBlockID, *this);
1076 output_vbr(getEncodedLinkage(F));
1077
Chris Lattnercf3e67f2004-01-18 21:08:52 +00001078 // Get slot information about the function...
1079 Table.incorporateFunction(F);
1080
1081 if (Table.getCompactionTable().empty()) {
1082 // Output information about the constants in the function if the compaction
1083 // table is not being used.
Chris Lattnere8fdde12001-09-07 16:39:41 +00001084 outputConstants(true);
Chris Lattnercf3e67f2004-01-18 21:08:52 +00001085 } else {
1086 // Otherwise, emit the compaction table.
1087 outputCompactionTable();
Chris Lattnere8fdde12001-09-07 16:39:41 +00001088 }
Misha Brukman23c6d2c2005-04-21 21:48:46 +00001089
Chris Lattnercf3e67f2004-01-18 21:08:52 +00001090 // Output all of the instructions in the body of the function
1091 outputInstructions(F);
Misha Brukman23c6d2c2005-04-21 21:48:46 +00001092
Chris Lattnercf3e67f2004-01-18 21:08:52 +00001093 // If needed, output the symbol table for the function...
1094 outputSymbolTable(F->getSymbolTable());
Misha Brukman23c6d2c2005-04-21 21:48:46 +00001095
Chris Lattnercf3e67f2004-01-18 21:08:52 +00001096 Table.purgeFunction();
1097}
1098
1099void BytecodeWriter::outputCompactionTablePlane(unsigned PlaneNo,
1100 const std::vector<const Value*> &Plane,
1101 unsigned StartNo) {
1102 unsigned End = Table.getModuleLevel(PlaneNo);
Chris Lattner52f86d62004-01-20 00:54:06 +00001103 if (Plane.empty() || StartNo == End || End == 0) return; // Nothing to emit
Chris Lattnercf3e67f2004-01-18 21:08:52 +00001104 assert(StartNo < End && "Cannot emit negative range!");
1105 assert(StartNo < Plane.size() && End <= Plane.size());
1106
Chris Lattnercf3e67f2004-01-18 21:08:52 +00001107 // Do not emit the null initializer!
Reid Spencercb3595c2004-07-04 11:45:47 +00001108 ++StartNo;
Chris Lattnercf3e67f2004-01-18 21:08:52 +00001109
Chris Lattner24102432004-01-18 22:35:34 +00001110 // Figure out which encoding to use. By far the most common case we have is
1111 // to emit 0-2 entries in a compaction table plane.
1112 switch (End-StartNo) {
1113 case 0: // Avoid emitting two vbr's if possible.
1114 case 1:
1115 case 2:
Reid Spencerad89bd62004-07-25 18:07:36 +00001116 output_vbr((PlaneNo << 2) | End-StartNo);
Chris Lattner24102432004-01-18 22:35:34 +00001117 break;
1118 default:
1119 // Output the number of things.
Reid Spencerad89bd62004-07-25 18:07:36 +00001120 output_vbr((unsigned(End-StartNo) << 2) | 3);
1121 output_typeid(PlaneNo); // Emit the type plane this is
Chris Lattner24102432004-01-18 22:35:34 +00001122 break;
1123 }
1124
Chris Lattnercf3e67f2004-01-18 21:08:52 +00001125 for (unsigned i = StartNo; i != End; ++i)
Reid Spencerad89bd62004-07-25 18:07:36 +00001126 output_vbr(Table.getGlobalSlot(Plane[i]));
Chris Lattnercf3e67f2004-01-18 21:08:52 +00001127}
1128
Reid Spencercb3595c2004-07-04 11:45:47 +00001129void BytecodeWriter::outputCompactionTypes(unsigned StartNo) {
1130 // Get the compaction type table from the slot calculator
1131 const std::vector<const Type*> &CTypes = Table.getCompactionTypes();
1132
1133 // The compaction types may have been uncompactified back to the
1134 // global types. If so, we just write an empty table
1135 if (CTypes.size() == 0 ) {
Reid Spencerad89bd62004-07-25 18:07:36 +00001136 output_vbr(0U);
Reid Spencercb3595c2004-07-04 11:45:47 +00001137 return;
1138 }
1139
1140 assert(CTypes.size() >= StartNo && "Invalid compaction types start index");
1141
1142 // Determine how many types to write
1143 unsigned NumTypes = CTypes.size() - StartNo;
1144
1145 // Output the number of types.
Reid Spencerad89bd62004-07-25 18:07:36 +00001146 output_vbr(NumTypes);
Reid Spencercb3595c2004-07-04 11:45:47 +00001147
1148 for (unsigned i = StartNo; i < StartNo+NumTypes; ++i)
Reid Spencerad89bd62004-07-25 18:07:36 +00001149 output_typeid(Table.getGlobalSlot(CTypes[i]));
Reid Spencercb3595c2004-07-04 11:45:47 +00001150}
1151
Chris Lattnercf3e67f2004-01-18 21:08:52 +00001152void BytecodeWriter::outputCompactionTable() {
Reid Spencer0033c182004-08-27 00:38:44 +00001153 // Avoid writing the compaction table at all if there is no content.
1154 if (Table.getCompactionTypes().size() >= Type::FirstDerivedTyID ||
1155 (!Table.CompactionTableIsEmpty())) {
Misha Brukman23c6d2c2005-04-21 21:48:46 +00001156 BytecodeBlock CTB(BytecodeFormat::CompactionTableBlockID, *this,
Reid Spencer0033c182004-08-27 00:38:44 +00001157 true/*ElideIfEmpty*/);
Chris Lattnerf9d71782004-10-14 01:46:07 +00001158 const std::vector<std::vector<const Value*> > &CT =
1159 Table.getCompactionTable();
Misha Brukman23c6d2c2005-04-21 21:48:46 +00001160
Reid Spencer0033c182004-08-27 00:38:44 +00001161 // First things first, emit the type compaction table if there is one.
1162 outputCompactionTypes(Type::FirstDerivedTyID);
Chris Lattnercf3e67f2004-01-18 21:08:52 +00001163
Reid Spencer0033c182004-08-27 00:38:44 +00001164 for (unsigned i = 0, e = CT.size(); i != e; ++i)
1165 outputCompactionTablePlane(i, CT[i], 0);
1166 }
Chris Lattner00950542001-06-06 20:29:01 +00001167}
1168
Chris Lattner00950542001-06-06 20:29:01 +00001169void BytecodeWriter::outputSymbolTable(const SymbolTable &MST) {
Chris Lattner737d3cd2004-01-10 19:56:59 +00001170 // Do not output the Bytecode block for an empty symbol table, it just wastes
1171 // space!
Chris Lattnerf9d71782004-10-14 01:46:07 +00001172 if (MST.isEmpty()) return;
Chris Lattner737d3cd2004-01-10 19:56:59 +00001173
Reid Spencerad89bd62004-07-25 18:07:36 +00001174 BytecodeBlock SymTabBlock(BytecodeFormat::SymbolTableBlockID, *this,
Chris Lattnerf9d71782004-10-14 01:46:07 +00001175 true/*ElideIfEmpty*/);
Chris Lattner00950542001-06-06 20:29:01 +00001176
Misha Brukman23c6d2c2005-04-21 21:48:46 +00001177 // Write the number of types
Reid Spencerad89bd62004-07-25 18:07:36 +00001178 output_vbr(MST.num_types());
Reid Spencer250c4182004-08-17 02:59:02 +00001179
1180 // Write each of the types
Reid Spencer94f2df22004-05-25 17:29:59 +00001181 for (SymbolTable::type_const_iterator TI = MST.type_begin(),
1182 TE = MST.type_end(); TI != TE; ++TI ) {
Reid Spencer250c4182004-08-17 02:59:02 +00001183 // Symtab entry:[def slot #][name]
Reid Spencerad89bd62004-07-25 18:07:36 +00001184 output_typeid((unsigned)Table.getSlot(TI->second));
Misha Brukman23c6d2c2005-04-21 21:48:46 +00001185 output(TI->first);
Reid Spencer94f2df22004-05-25 17:29:59 +00001186 }
1187
1188 // Now do each of the type planes in order.
Misha Brukman23c6d2c2005-04-21 21:48:46 +00001189 for (SymbolTable::plane_const_iterator PI = MST.plane_begin(),
Reid Spencer94f2df22004-05-25 17:29:59 +00001190 PE = MST.plane_end(); PI != PE; ++PI) {
1191 SymbolTable::value_const_iterator I = MST.value_begin(PI->first);
1192 SymbolTable::value_const_iterator End = MST.value_end(PI->first);
Chris Lattner00950542001-06-06 20:29:01 +00001193 int Slot;
Misha Brukman23c6d2c2005-04-21 21:48:46 +00001194
Chris Lattner00950542001-06-06 20:29:01 +00001195 if (I == End) continue; // Don't mess with an absent type...
1196
Reid Spencer250c4182004-08-17 02:59:02 +00001197 // Write the number of values in this plane
Chris Lattner001d16a2005-03-07 02:59:36 +00001198 output_vbr((unsigned)PI->second.size());
Chris Lattner00950542001-06-06 20:29:01 +00001199
Reid Spencer250c4182004-08-17 02:59:02 +00001200 // Write the slot number of the type for this plane
Reid Spencer94f2df22004-05-25 17:29:59 +00001201 Slot = Table.getSlot(PI->first);
Chris Lattner00950542001-06-06 20:29:01 +00001202 assert(Slot != -1 && "Type in symtab, but not in table!");
Reid Spencerad89bd62004-07-25 18:07:36 +00001203 output_typeid((unsigned)Slot);
Chris Lattner00950542001-06-06 20:29:01 +00001204
Reid Spencer250c4182004-08-17 02:59:02 +00001205 // Write each of the values in this plane
Chris Lattner7fc9fe32001-06-27 23:41:11 +00001206 for (; I != End; ++I) {
Chris Lattner00950542001-06-06 20:29:01 +00001207 // Symtab entry: [def slot #][name]
Alkis Evlogimenos60596382003-10-17 02:02:40 +00001208 Slot = Table.getSlot(I->second);
Chris Lattnere8fdde12001-09-07 16:39:41 +00001209 assert(Slot != -1 && "Value in symtab but has no slot number!!");
Reid Spencerad89bd62004-07-25 18:07:36 +00001210 output_vbr((unsigned)Slot);
Reid Spencer38d54be2004-08-17 07:45:14 +00001211 output(I->first);
Chris Lattner00950542001-06-06 20:29:01 +00001212 }
1213 }
1214}
1215
Reid Spencer17f52c52004-11-06 23:17:23 +00001216void llvm::WriteBytecodeToFile(const Module *M, std::ostream &Out,
1217 bool compress ) {
Reid Spencerad89bd62004-07-25 18:07:36 +00001218 assert(M && "You can't write a null module!!");
Chris Lattner00950542001-06-06 20:29:01 +00001219
Reid Spencer17f52c52004-11-06 23:17:23 +00001220 // Create a vector of unsigned char for the bytecode output. We
1221 // reserve 256KBytes of space in the vector so that we avoid doing
1222 // lots of little allocations. 256KBytes is sufficient for a large
1223 // proportion of the bytecode files we will encounter. Larger files
1224 // will be automatically doubled in size as needed (std::vector
1225 // behavior).
Reid Spencerad89bd62004-07-25 18:07:36 +00001226 std::vector<unsigned char> Buffer;
Reid Spencer17f52c52004-11-06 23:17:23 +00001227 Buffer.reserve(256 * 1024);
Chris Lattner00950542001-06-06 20:29:01 +00001228
Reid Spencer17f52c52004-11-06 23:17:23 +00001229 // The BytecodeWriter populates Buffer for us.
Reid Spencerad89bd62004-07-25 18:07:36 +00001230 BytecodeWriter BCW(Buffer, M);
Chris Lattner00950542001-06-06 20:29:01 +00001231
Reid Spencer17f52c52004-11-06 23:17:23 +00001232 // Keep track of how much we've written
Chris Lattnerce6ef112002-07-26 18:40:14 +00001233 BytesWritten += Buffer.size();
1234
Reid Spencer17f52c52004-11-06 23:17:23 +00001235 // Determine start and end points of the Buffer
Reid Spencer83296f52004-11-07 18:17:38 +00001236 const unsigned char *FirstByte = &Buffer.front();
Reid Spencer17f52c52004-11-06 23:17:23 +00001237
1238 // If we're supposed to compress this mess ...
1239 if (compress) {
1240
1241 // We signal compression by using an alternate magic number for the
Reid Spencer83296f52004-11-07 18:17:38 +00001242 // file. The compressed bytecode file's magic number is "llvc" instead
Misha Brukman23c6d2c2005-04-21 21:48:46 +00001243 // of "llvm".
Reid Spencer83296f52004-11-07 18:17:38 +00001244 char compressed_magic[4];
1245 compressed_magic[0] = 'l';
1246 compressed_magic[1] = 'l';
1247 compressed_magic[2] = 'v';
1248 compressed_magic[3] = 'c';
Reid Spencer17f52c52004-11-06 23:17:23 +00001249
Reid Spencer83296f52004-11-07 18:17:38 +00001250 Out.write(compressed_magic,4);
Reid Spencer17f52c52004-11-06 23:17:23 +00001251
Reid Spencera70d84d2004-11-14 22:01:41 +00001252 // Compress everything after the magic number (which we altered)
1253 uint64_t zipSize = Compressor::compressToStream(
Reid Spencer17f52c52004-11-06 23:17:23 +00001254 (char*)(FirstByte+4), // Skip the magic number
1255 Buffer.size()-4, // Skip the magic number
Reid Spencer84472d62004-11-25 19:38:05 +00001256 Out // Where to write compressed data
Reid Spencer17f52c52004-11-06 23:17:23 +00001257 );
1258
Reid Spencer17f52c52004-11-06 23:17:23 +00001259 } else {
1260
1261 // We're not compressing, so just write the entire block.
Reid Spencer83296f52004-11-07 18:17:38 +00001262 Out.write((char*)FirstByte, Buffer.size());
Chris Lattnere8fdde12001-09-07 16:39:41 +00001263 }
Reid Spencer17f52c52004-11-06 23:17:23 +00001264
1265 // make sure it hits disk now
Chris Lattner00950542001-06-06 20:29:01 +00001266 Out.flush();
1267}
Reid Spencere0125b62004-07-18 00:16:21 +00001268