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Chris Lattnerd6b65252001-10-24 01:15:12 +00001//===- Reader.cpp - Code to read bytecode files ---------------------------===//
Misha Brukman8a96c532005-04-21 21:44:41 +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 Brukman8a96c532005-04-21 21:44:41 +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/Reader.h
11//
Misha Brukman8a96c532005-04-21 21:44:41 +000012// Note that this library should be as fast as possible, reentrant, and
Chris Lattner00950542001-06-06 20:29:01 +000013// threadsafe!!
14//
Chris Lattner00950542001-06-06 20:29:01 +000015// TODO: Allow passing in an option to ignore the symbol table
16//
Chris Lattnerd6b65252001-10-24 01:15:12 +000017//===----------------------------------------------------------------------===//
Chris Lattner00950542001-06-06 20:29:01 +000018
Reid Spencer060d25d2004-06-29 23:29:38 +000019#include "Reader.h"
20#include "llvm/Bytecode/BytecodeHandler.h"
21#include "llvm/BasicBlock.h"
Chris Lattnerdee199f2005-05-06 22:34:01 +000022#include "llvm/CallingConv.h"
Reid Spencer060d25d2004-06-29 23:29:38 +000023#include "llvm/Constants.h"
Reid Spencer04cde2c2004-07-04 11:33:49 +000024#include "llvm/Instructions.h"
25#include "llvm/SymbolTable.h"
Chris Lattner00950542001-06-06 20:29:01 +000026#include "llvm/Bytecode/Format.h"
Chris Lattnerdee199f2005-05-06 22:34:01 +000027#include "llvm/Config/alloca.h"
Reid Spencer060d25d2004-06-29 23:29:38 +000028#include "llvm/Support/GetElementPtrTypeIterator.h"
Reid Spencer17f52c52004-11-06 23:17:23 +000029#include "llvm/Support/Compressor.h"
Reid Spencer551ccae2004-09-01 22:55:40 +000030#include "llvm/ADT/StringExtras.h"
Reid Spencer060d25d2004-06-29 23:29:38 +000031#include <sstream>
Alkis Evlogimenos20aa4742004-09-03 18:19:51 +000032#include <algorithm>
Chris Lattner29b789b2003-11-19 17:27:18 +000033using namespace llvm;
Brian Gaeked0fde302003-11-11 22:41:34 +000034
Reid Spencer46b002c2004-07-11 17:28:43 +000035namespace {
Chris Lattnercad28bd2005-01-29 00:36:19 +000036 /// @brief A class for maintaining the slot number definition
37 /// as a placeholder for the actual definition for forward constants defs.
38 class ConstantPlaceHolder : public ConstantExpr {
39 ConstantPlaceHolder(); // DO NOT IMPLEMENT
40 void operator=(const ConstantPlaceHolder &); // DO NOT IMPLEMENT
41 public:
Chris Lattner61323322005-01-31 01:11:13 +000042 Use Op;
Misha Brukman8a96c532005-04-21 21:44:41 +000043 ConstantPlaceHolder(const Type *Ty)
Chris Lattner61323322005-01-31 01:11:13 +000044 : ConstantExpr(Ty, Instruction::UserOp1, &Op, 1),
45 Op(UndefValue::get(Type::IntTy), this) {
46 }
Chris Lattnercad28bd2005-01-29 00:36:19 +000047 };
Reid Spencer46b002c2004-07-11 17:28:43 +000048}
Reid Spencer060d25d2004-06-29 23:29:38 +000049
Reid Spencer24399722004-07-09 22:21:33 +000050// Provide some details on error
51inline void BytecodeReader::error(std::string err) {
52 err += " (Vers=" ;
53 err += itostr(RevisionNum) ;
54 err += ", Pos=" ;
55 err += itostr(At-MemStart);
56 err += ")";
57 throw err;
58}
59
Reid Spencer060d25d2004-06-29 23:29:38 +000060//===----------------------------------------------------------------------===//
61// Bytecode Reading Methods
62//===----------------------------------------------------------------------===//
63
Reid Spencer04cde2c2004-07-04 11:33:49 +000064/// Determine if the current block being read contains any more data.
Reid Spencer060d25d2004-06-29 23:29:38 +000065inline bool BytecodeReader::moreInBlock() {
66 return At < BlockEnd;
Chris Lattner00950542001-06-06 20:29:01 +000067}
68
Reid Spencer04cde2c2004-07-04 11:33:49 +000069/// Throw an error if we've read past the end of the current block
Reid Spencer060d25d2004-06-29 23:29:38 +000070inline void BytecodeReader::checkPastBlockEnd(const char * block_name) {
Reid Spencer46b002c2004-07-11 17:28:43 +000071 if (At > BlockEnd)
Chris Lattnera79e7cc2004-10-16 18:18:16 +000072 error(std::string("Attempt to read past the end of ") + block_name +
73 " block.");
Reid Spencer060d25d2004-06-29 23:29:38 +000074}
Chris Lattner36392bc2003-10-08 21:18:57 +000075
Reid Spencer04cde2c2004-07-04 11:33:49 +000076/// Align the buffer position to a 32 bit boundary
Reid Spencer060d25d2004-06-29 23:29:38 +000077inline void BytecodeReader::align32() {
Reid Spencer38d54be2004-08-17 07:45:14 +000078 if (hasAlignment) {
79 BufPtr Save = At;
80 At = (const unsigned char *)((unsigned long)(At+3) & (~3UL));
Misha Brukman8a96c532005-04-21 21:44:41 +000081 if (At > Save)
Reid Spencer38d54be2004-08-17 07:45:14 +000082 if (Handler) Handler->handleAlignment(At - Save);
Misha Brukman8a96c532005-04-21 21:44:41 +000083 if (At > BlockEnd)
Reid Spencer38d54be2004-08-17 07:45:14 +000084 error("Ran out of data while aligning!");
85 }
Reid Spencer060d25d2004-06-29 23:29:38 +000086}
87
Reid Spencer04cde2c2004-07-04 11:33:49 +000088/// Read a whole unsigned integer
Reid Spencer060d25d2004-06-29 23:29:38 +000089inline unsigned BytecodeReader::read_uint() {
Misha Brukman8a96c532005-04-21 21:44:41 +000090 if (At+4 > BlockEnd)
Reid Spencer24399722004-07-09 22:21:33 +000091 error("Ran out of data reading uint!");
Reid Spencer060d25d2004-06-29 23:29:38 +000092 At += 4;
93 return At[-4] | (At[-3] << 8) | (At[-2] << 16) | (At[-1] << 24);
94}
95
Reid Spencer04cde2c2004-07-04 11:33:49 +000096/// Read a variable-bit-rate encoded unsigned integer
Reid Spencer060d25d2004-06-29 23:29:38 +000097inline unsigned BytecodeReader::read_vbr_uint() {
98 unsigned Shift = 0;
99 unsigned Result = 0;
100 BufPtr Save = At;
Misha Brukman8a96c532005-04-21 21:44:41 +0000101
Reid Spencer060d25d2004-06-29 23:29:38 +0000102 do {
Misha Brukman8a96c532005-04-21 21:44:41 +0000103 if (At == BlockEnd)
Reid Spencer24399722004-07-09 22:21:33 +0000104 error("Ran out of data reading vbr_uint!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000105 Result |= (unsigned)((*At++) & 0x7F) << Shift;
106 Shift += 7;
107 } while (At[-1] & 0x80);
Reid Spencer04cde2c2004-07-04 11:33:49 +0000108 if (Handler) Handler->handleVBR32(At-Save);
Reid Spencer060d25d2004-06-29 23:29:38 +0000109 return Result;
110}
111
Reid Spencer04cde2c2004-07-04 11:33:49 +0000112/// Read a variable-bit-rate encoded unsigned 64-bit integer.
Reid Spencer060d25d2004-06-29 23:29:38 +0000113inline uint64_t BytecodeReader::read_vbr_uint64() {
114 unsigned Shift = 0;
115 uint64_t Result = 0;
116 BufPtr Save = At;
Misha Brukman8a96c532005-04-21 21:44:41 +0000117
Reid Spencer060d25d2004-06-29 23:29:38 +0000118 do {
Misha Brukman8a96c532005-04-21 21:44:41 +0000119 if (At == BlockEnd)
Reid Spencer24399722004-07-09 22:21:33 +0000120 error("Ran out of data reading vbr_uint64!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000121 Result |= (uint64_t)((*At++) & 0x7F) << Shift;
122 Shift += 7;
123 } while (At[-1] & 0x80);
Reid Spencer04cde2c2004-07-04 11:33:49 +0000124 if (Handler) Handler->handleVBR64(At-Save);
Reid Spencer060d25d2004-06-29 23:29:38 +0000125 return Result;
126}
127
Reid Spencer04cde2c2004-07-04 11:33:49 +0000128/// Read a variable-bit-rate encoded signed 64-bit integer.
Reid Spencer060d25d2004-06-29 23:29:38 +0000129inline int64_t BytecodeReader::read_vbr_int64() {
130 uint64_t R = read_vbr_uint64();
131 if (R & 1) {
132 if (R != 1)
133 return -(int64_t)(R >> 1);
134 else // There is no such thing as -0 with integers. "-0" really means
135 // 0x8000000000000000.
136 return 1LL << 63;
137 } else
138 return (int64_t)(R >> 1);
139}
140
Reid Spencer04cde2c2004-07-04 11:33:49 +0000141/// Read a pascal-style string (length followed by text)
Reid Spencer060d25d2004-06-29 23:29:38 +0000142inline std::string BytecodeReader::read_str() {
143 unsigned Size = read_vbr_uint();
144 const unsigned char *OldAt = At;
145 At += Size;
146 if (At > BlockEnd) // Size invalid?
Reid Spencer24399722004-07-09 22:21:33 +0000147 error("Ran out of data reading a string!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000148 return std::string((char*)OldAt, Size);
149}
150
Reid Spencer04cde2c2004-07-04 11:33:49 +0000151/// Read an arbitrary block of data
Reid Spencer060d25d2004-06-29 23:29:38 +0000152inline void BytecodeReader::read_data(void *Ptr, void *End) {
153 unsigned char *Start = (unsigned char *)Ptr;
154 unsigned Amount = (unsigned char *)End - Start;
Misha Brukman8a96c532005-04-21 21:44:41 +0000155 if (At+Amount > BlockEnd)
Reid Spencer24399722004-07-09 22:21:33 +0000156 error("Ran out of data!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000157 std::copy(At, At+Amount, Start);
158 At += Amount;
159}
160
Reid Spencer46b002c2004-07-11 17:28:43 +0000161/// Read a float value in little-endian order
162inline void BytecodeReader::read_float(float& FloatVal) {
Reid Spencerada16182004-07-25 21:36:26 +0000163 /// FIXME: This isn't optimal, it has size problems on some platforms
164 /// where FP is not IEEE.
165 union {
166 float f;
167 uint32_t i;
168 } FloatUnion;
169 FloatUnion.i = At[0] | (At[1] << 8) | (At[2] << 16) | (At[3] << 24);
170 At+=sizeof(uint32_t);
171 FloatVal = FloatUnion.f;
Reid Spencer46b002c2004-07-11 17:28:43 +0000172}
173
174/// Read a double value in little-endian order
175inline void BytecodeReader::read_double(double& DoubleVal) {
Reid Spencerada16182004-07-25 21:36:26 +0000176 /// FIXME: This isn't optimal, it has size problems on some platforms
177 /// where FP is not IEEE.
178 union {
179 double d;
180 uint64_t i;
181 } DoubleUnion;
Misha Brukman8a96c532005-04-21 21:44:41 +0000182 DoubleUnion.i = (uint64_t(At[0]) << 0) | (uint64_t(At[1]) << 8) |
Chris Lattner1d785162004-07-25 23:15:44 +0000183 (uint64_t(At[2]) << 16) | (uint64_t(At[3]) << 24) |
Misha Brukman8a96c532005-04-21 21:44:41 +0000184 (uint64_t(At[4]) << 32) | (uint64_t(At[5]) << 40) |
Reid Spencerada16182004-07-25 21:36:26 +0000185 (uint64_t(At[6]) << 48) | (uint64_t(At[7]) << 56);
186 At+=sizeof(uint64_t);
187 DoubleVal = DoubleUnion.d;
Reid Spencer46b002c2004-07-11 17:28:43 +0000188}
189
Reid Spencer04cde2c2004-07-04 11:33:49 +0000190/// Read a block header and obtain its type and size
Reid Spencer060d25d2004-06-29 23:29:38 +0000191inline void BytecodeReader::read_block(unsigned &Type, unsigned &Size) {
Reid Spencerad89bd62004-07-25 18:07:36 +0000192 if ( hasLongBlockHeaders ) {
193 Type = read_uint();
194 Size = read_uint();
195 switch (Type) {
Misha Brukman8a96c532005-04-21 21:44:41 +0000196 case BytecodeFormat::Reserved_DoNotUse :
Reid Spencerad89bd62004-07-25 18:07:36 +0000197 error("Reserved_DoNotUse used as Module Type?");
Reid Spencer5b472d92004-08-21 20:49:23 +0000198 Type = BytecodeFormat::ModuleBlockID; break;
Misha Brukman8a96c532005-04-21 21:44:41 +0000199 case BytecodeFormat::Module:
Reid Spencerad89bd62004-07-25 18:07:36 +0000200 Type = BytecodeFormat::ModuleBlockID; break;
201 case BytecodeFormat::Function:
202 Type = BytecodeFormat::FunctionBlockID; break;
203 case BytecodeFormat::ConstantPool:
204 Type = BytecodeFormat::ConstantPoolBlockID; break;
205 case BytecodeFormat::SymbolTable:
206 Type = BytecodeFormat::SymbolTableBlockID; break;
207 case BytecodeFormat::ModuleGlobalInfo:
208 Type = BytecodeFormat::ModuleGlobalInfoBlockID; break;
209 case BytecodeFormat::GlobalTypePlane:
210 Type = BytecodeFormat::GlobalTypePlaneBlockID; break;
211 case BytecodeFormat::InstructionList:
212 Type = BytecodeFormat::InstructionListBlockID; break;
213 case BytecodeFormat::CompactionTable:
214 Type = BytecodeFormat::CompactionTableBlockID; break;
215 case BytecodeFormat::BasicBlock:
216 /// This block type isn't used after version 1.1. However, we have to
217 /// still allow the value in case this is an old bc format file.
218 /// We just let its value creep thru.
219 break;
220 default:
Reid Spencer5b472d92004-08-21 20:49:23 +0000221 error("Invalid block id found: " + utostr(Type));
Reid Spencerad89bd62004-07-25 18:07:36 +0000222 break;
223 }
224 } else {
225 Size = read_uint();
226 Type = Size & 0x1F; // mask low order five bits
227 Size >>= 5; // get rid of five low order bits, leaving high 27
228 }
Reid Spencer060d25d2004-06-29 23:29:38 +0000229 BlockStart = At;
Reid Spencer46b002c2004-07-11 17:28:43 +0000230 if (At + Size > BlockEnd)
Reid Spencer24399722004-07-09 22:21:33 +0000231 error("Attempt to size a block past end of memory");
Reid Spencer060d25d2004-06-29 23:29:38 +0000232 BlockEnd = At + Size;
Reid Spencer46b002c2004-07-11 17:28:43 +0000233 if (Handler) Handler->handleBlock(Type, BlockStart, Size);
Reid Spencer04cde2c2004-07-04 11:33:49 +0000234}
235
236
237/// In LLVM 1.2 and before, Types were derived from Value and so they were
238/// written as part of the type planes along with any other Value. In LLVM
239/// 1.3 this changed so that Type does not derive from Value. Consequently,
240/// the BytecodeReader's containers for Values can't contain Types because
241/// there's no inheritance relationship. This means that the "Type Type"
Misha Brukman8a96c532005-04-21 21:44:41 +0000242/// plane is defunct along with the Type::TypeTyID TypeID. In LLVM 1.3
243/// whenever a bytecode construct must have both types and values together,
Reid Spencer04cde2c2004-07-04 11:33:49 +0000244/// the types are always read/written first and then the Values. Furthermore
245/// since Type::TypeTyID no longer exists, its value (12) now corresponds to
246/// Type::LabelTyID. In order to overcome this we must "sanitize" all the
247/// type TypeIDs we encounter. For LLVM 1.3 bytecode files, there's no change.
248/// For LLVM 1.2 and before, this function will decrement the type id by
249/// one to account for the missing Type::TypeTyID enumerator if the value is
250/// larger than 12 (Type::LabelTyID). If the value is exactly 12, then this
251/// function returns true, otherwise false. This helps detect situations
252/// where the pre 1.3 bytecode is indicating that what follows is a type.
Misha Brukman8a96c532005-04-21 21:44:41 +0000253/// @returns true iff type id corresponds to pre 1.3 "type type"
Reid Spencer46b002c2004-07-11 17:28:43 +0000254inline bool BytecodeReader::sanitizeTypeId(unsigned &TypeId) {
255 if (hasTypeDerivedFromValue) { /// do nothing if 1.3 or later
256 if (TypeId == Type::LabelTyID) {
Reid Spencer04cde2c2004-07-04 11:33:49 +0000257 TypeId = Type::VoidTyID; // sanitize it
258 return true; // indicate we got TypeTyID in pre 1.3 bytecode
Reid Spencer46b002c2004-07-11 17:28:43 +0000259 } else if (TypeId > Type::LabelTyID)
Reid Spencer04cde2c2004-07-04 11:33:49 +0000260 --TypeId; // shift all planes down because type type plane is missing
261 }
262 return false;
263}
264
265/// Reads a vbr uint to read in a type id and does the necessary
266/// conversion on it by calling sanitizeTypeId.
267/// @returns true iff \p TypeId read corresponds to a pre 1.3 "type type"
268/// @see sanitizeTypeId
269inline bool BytecodeReader::read_typeid(unsigned &TypeId) {
270 TypeId = read_vbr_uint();
Reid Spencerad89bd62004-07-25 18:07:36 +0000271 if ( !has32BitTypes )
272 if ( TypeId == 0x00FFFFFF )
273 TypeId = read_vbr_uint();
Reid Spencer04cde2c2004-07-04 11:33:49 +0000274 return sanitizeTypeId(TypeId);
Reid Spencer060d25d2004-06-29 23:29:38 +0000275}
276
277//===----------------------------------------------------------------------===//
278// IR Lookup Methods
279//===----------------------------------------------------------------------===//
280
Reid Spencer04cde2c2004-07-04 11:33:49 +0000281/// Determine if a type id has an implicit null value
Reid Spencer46b002c2004-07-11 17:28:43 +0000282inline bool BytecodeReader::hasImplicitNull(unsigned TyID) {
Reid Spencer060d25d2004-06-29 23:29:38 +0000283 if (!hasExplicitPrimitiveZeros)
Reid Spencer04cde2c2004-07-04 11:33:49 +0000284 return TyID != Type::LabelTyID && TyID != Type::VoidTyID;
Reid Spencer060d25d2004-06-29 23:29:38 +0000285 return TyID >= Type::FirstDerivedTyID;
286}
287
Reid Spencer04cde2c2004-07-04 11:33:49 +0000288/// Obtain a type given a typeid and account for things like compaction tables,
289/// function level vs module level, and the offsetting for the primitive types.
Reid Spencer060d25d2004-06-29 23:29:38 +0000290const Type *BytecodeReader::getType(unsigned ID) {
Chris Lattner89e02532004-01-18 21:08:15 +0000291 if (ID < Type::FirstDerivedTyID)
Chris Lattnerf70c22b2004-06-17 18:19:28 +0000292 if (const Type *T = Type::getPrimitiveType((Type::TypeID)ID))
Chris Lattner927b1852003-10-09 20:22:47 +0000293 return T; // Asked for a primitive type...
Chris Lattner36392bc2003-10-08 21:18:57 +0000294
295 // Otherwise, derived types need offset...
Chris Lattner89e02532004-01-18 21:08:15 +0000296 ID -= Type::FirstDerivedTyID;
297
Reid Spencer060d25d2004-06-29 23:29:38 +0000298 if (!CompactionTypes.empty()) {
299 if (ID >= CompactionTypes.size())
Reid Spencer24399722004-07-09 22:21:33 +0000300 error("Type ID out of range for compaction table!");
Chris Lattner45b5dd22004-08-03 23:41:28 +0000301 return CompactionTypes[ID].first;
Chris Lattner89e02532004-01-18 21:08:15 +0000302 }
Chris Lattner36392bc2003-10-08 21:18:57 +0000303
304 // Is it a module-level type?
Reid Spencer46b002c2004-07-11 17:28:43 +0000305 if (ID < ModuleTypes.size())
306 return ModuleTypes[ID].get();
Chris Lattner36392bc2003-10-08 21:18:57 +0000307
Reid Spencer46b002c2004-07-11 17:28:43 +0000308 // Nope, is it a function-level type?
309 ID -= ModuleTypes.size();
310 if (ID < FunctionTypes.size())
311 return FunctionTypes[ID].get();
Chris Lattner36392bc2003-10-08 21:18:57 +0000312
Reid Spencer46b002c2004-07-11 17:28:43 +0000313 error("Illegal type reference!");
314 return Type::VoidTy;
Chris Lattner00950542001-06-06 20:29:01 +0000315}
316
Reid Spencer04cde2c2004-07-04 11:33:49 +0000317/// Get a sanitized type id. This just makes sure that the \p ID
318/// is both sanitized and not the "type type" of pre-1.3 bytecode.
319/// @see sanitizeTypeId
320inline const Type* BytecodeReader::getSanitizedType(unsigned& ID) {
Reid Spencer46b002c2004-07-11 17:28:43 +0000321 if (sanitizeTypeId(ID))
Reid Spencer24399722004-07-09 22:21:33 +0000322 error("Invalid type id encountered");
Reid Spencer04cde2c2004-07-04 11:33:49 +0000323 return getType(ID);
324}
325
326/// This method just saves some coding. It uses read_typeid to read
Reid Spencer24399722004-07-09 22:21:33 +0000327/// in a sanitized type id, errors that its not the type type, and
Reid Spencer04cde2c2004-07-04 11:33:49 +0000328/// then calls getType to return the type value.
329inline const Type* BytecodeReader::readSanitizedType() {
330 unsigned ID;
Reid Spencer46b002c2004-07-11 17:28:43 +0000331 if (read_typeid(ID))
332 error("Invalid type id encountered");
Reid Spencer04cde2c2004-07-04 11:33:49 +0000333 return getType(ID);
334}
335
336/// Get the slot number associated with a type accounting for primitive
337/// types, compaction tables, and function level vs module level.
Reid Spencer060d25d2004-06-29 23:29:38 +0000338unsigned BytecodeReader::getTypeSlot(const Type *Ty) {
339 if (Ty->isPrimitiveType())
340 return Ty->getTypeID();
341
342 // Scan the compaction table for the type if needed.
343 if (!CompactionTypes.empty()) {
Chris Lattner45b5dd22004-08-03 23:41:28 +0000344 for (unsigned i = 0, e = CompactionTypes.size(); i != e; ++i)
345 if (CompactionTypes[i].first == Ty)
Misha Brukman8a96c532005-04-21 21:44:41 +0000346 return Type::FirstDerivedTyID + i;
Reid Spencer060d25d2004-06-29 23:29:38 +0000347
Chris Lattner45b5dd22004-08-03 23:41:28 +0000348 error("Couldn't find type specified in compaction table!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000349 }
350
351 // Check the function level types first...
Chris Lattnera79e7cc2004-10-16 18:18:16 +0000352 TypeListTy::iterator I = std::find(FunctionTypes.begin(),
353 FunctionTypes.end(), Ty);
Reid Spencer060d25d2004-06-29 23:29:38 +0000354
355 if (I != FunctionTypes.end())
Misha Brukman8a96c532005-04-21 21:44:41 +0000356 return Type::FirstDerivedTyID + ModuleTypes.size() +
Reid Spencer46b002c2004-07-11 17:28:43 +0000357 (&*I - &FunctionTypes[0]);
Reid Spencer060d25d2004-06-29 23:29:38 +0000358
359 // Check the module level types now...
Reid Spencer2da5c3d2004-09-15 17:06:42 +0000360 I = std::find(ModuleTypes.begin(), ModuleTypes.end(), Ty);
Reid Spencer060d25d2004-06-29 23:29:38 +0000361 if (I == ModuleTypes.end())
Reid Spencer24399722004-07-09 22:21:33 +0000362 error("Didn't find type in ModuleTypes.");
Reid Spencer060d25d2004-06-29 23:29:38 +0000363 return Type::FirstDerivedTyID + (&*I - &ModuleTypes[0]);
Chris Lattner80b97342004-01-17 23:25:43 +0000364}
365
Reid Spencer04cde2c2004-07-04 11:33:49 +0000366/// This is just like getType, but when a compaction table is in use, it is
367/// ignored. It also ignores function level types.
368/// @see getType
Reid Spencer060d25d2004-06-29 23:29:38 +0000369const Type *BytecodeReader::getGlobalTableType(unsigned Slot) {
370 if (Slot < Type::FirstDerivedTyID) {
371 const Type *Ty = Type::getPrimitiveType((Type::TypeID)Slot);
Reid Spencer46b002c2004-07-11 17:28:43 +0000372 if (!Ty)
Reid Spencer24399722004-07-09 22:21:33 +0000373 error("Not a primitive type ID?");
Reid Spencer060d25d2004-06-29 23:29:38 +0000374 return Ty;
375 }
376 Slot -= Type::FirstDerivedTyID;
377 if (Slot >= ModuleTypes.size())
Reid Spencer24399722004-07-09 22:21:33 +0000378 error("Illegal compaction table type reference!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000379 return ModuleTypes[Slot];
Chris Lattner52e20b02003-03-19 20:54:26 +0000380}
381
Reid Spencer04cde2c2004-07-04 11:33:49 +0000382/// This is just like getTypeSlot, but when a compaction table is in use, it
383/// is ignored. It also ignores function level types.
Reid Spencer060d25d2004-06-29 23:29:38 +0000384unsigned BytecodeReader::getGlobalTableTypeSlot(const Type *Ty) {
385 if (Ty->isPrimitiveType())
386 return Ty->getTypeID();
Reid Spencer2da5c3d2004-09-15 17:06:42 +0000387 TypeListTy::iterator I = std::find(ModuleTypes.begin(),
Reid Spencer04cde2c2004-07-04 11:33:49 +0000388 ModuleTypes.end(), Ty);
Reid Spencer060d25d2004-06-29 23:29:38 +0000389 if (I == ModuleTypes.end())
Reid Spencer24399722004-07-09 22:21:33 +0000390 error("Didn't find type in ModuleTypes.");
Reid Spencer060d25d2004-06-29 23:29:38 +0000391 return Type::FirstDerivedTyID + (&*I - &ModuleTypes[0]);
392}
393
Misha Brukman8a96c532005-04-21 21:44:41 +0000394/// Retrieve a value of a given type and slot number, possibly creating
395/// it if it doesn't already exist.
Reid Spencer060d25d2004-06-29 23:29:38 +0000396Value * BytecodeReader::getValue(unsigned type, unsigned oNum, bool Create) {
Chris Lattner4ee8ef22003-10-08 22:52:54 +0000397 assert(type != Type::LabelTyID && "getValue() cannot get blocks!");
Chris Lattner00950542001-06-06 20:29:01 +0000398 unsigned Num = oNum;
Chris Lattner00950542001-06-06 20:29:01 +0000399
Chris Lattner89e02532004-01-18 21:08:15 +0000400 // If there is a compaction table active, it defines the low-level numbers.
401 // If not, the module values define the low-level numbers.
Reid Spencer060d25d2004-06-29 23:29:38 +0000402 if (CompactionValues.size() > type && !CompactionValues[type].empty()) {
403 if (Num < CompactionValues[type].size())
404 return CompactionValues[type][Num];
405 Num -= CompactionValues[type].size();
Chris Lattner89e02532004-01-18 21:08:15 +0000406 } else {
Reid Spencer060d25d2004-06-29 23:29:38 +0000407 // By default, the global type id is the type id passed in
Chris Lattner52f86d62004-01-20 00:54:06 +0000408 unsigned GlobalTyID = type;
Reid Spencer060d25d2004-06-29 23:29:38 +0000409
Chris Lattner45b5dd22004-08-03 23:41:28 +0000410 // If the type plane was compactified, figure out the global type ID by
411 // adding the derived type ids and the distance.
412 if (!CompactionTypes.empty() && type >= Type::FirstDerivedTyID)
413 GlobalTyID = CompactionTypes[type-Type::FirstDerivedTyID].second;
Chris Lattner00950542001-06-06 20:29:01 +0000414
Reid Spencer060d25d2004-06-29 23:29:38 +0000415 if (hasImplicitNull(GlobalTyID)) {
Chris Lattneraba5ff52005-05-05 20:57:00 +0000416 const Type *Ty = getType(type);
417 if (!isa<OpaqueType>(Ty)) {
418 if (Num == 0)
419 return Constant::getNullValue(Ty);
420 --Num;
421 }
Chris Lattner89e02532004-01-18 21:08:15 +0000422 }
423
Chris Lattner52f86d62004-01-20 00:54:06 +0000424 if (GlobalTyID < ModuleValues.size() && ModuleValues[GlobalTyID]) {
425 if (Num < ModuleValues[GlobalTyID]->size())
Reid Spencer04cde2c2004-07-04 11:33:49 +0000426 return ModuleValues[GlobalTyID]->getOperand(Num);
Chris Lattner52f86d62004-01-20 00:54:06 +0000427 Num -= ModuleValues[GlobalTyID]->size();
Chris Lattner89e02532004-01-18 21:08:15 +0000428 }
Chris Lattner52e20b02003-03-19 20:54:26 +0000429 }
430
Misha Brukman8a96c532005-04-21 21:44:41 +0000431 if (FunctionValues.size() > type &&
432 FunctionValues[type] &&
Reid Spencer060d25d2004-06-29 23:29:38 +0000433 Num < FunctionValues[type]->size())
434 return FunctionValues[type]->getOperand(Num);
Chris Lattner00950542001-06-06 20:29:01 +0000435
Chris Lattner74734132002-08-17 22:01:27 +0000436 if (!Create) return 0; // Do not create a placeholder?
Chris Lattner00950542001-06-06 20:29:01 +0000437
Reid Spencer551ccae2004-09-01 22:55:40 +0000438 // Did we already create a place holder?
Chris Lattner8eb10ce2003-10-09 06:05:40 +0000439 std::pair<unsigned,unsigned> KeyValue(type, oNum);
Reid Spencer060d25d2004-06-29 23:29:38 +0000440 ForwardReferenceMap::iterator I = ForwardReferences.lower_bound(KeyValue);
Chris Lattner8eb10ce2003-10-09 06:05:40 +0000441 if (I != ForwardReferences.end() && I->first == KeyValue)
442 return I->second; // We have already created this placeholder
443
Reid Spencer551ccae2004-09-01 22:55:40 +0000444 // If the type exists (it should)
445 if (const Type* Ty = getType(type)) {
446 // Create the place holder
447 Value *Val = new Argument(Ty);
448 ForwardReferences.insert(I, std::make_pair(KeyValue, Val));
449 return Val;
450 }
451 throw "Can't create placeholder for value of type slot #" + utostr(type);
Chris Lattner00950542001-06-06 20:29:01 +0000452}
453
Misha Brukman8a96c532005-04-21 21:44:41 +0000454/// This is just like getValue, but when a compaction table is in use, it
455/// is ignored. Also, no forward references or other fancy features are
Reid Spencer04cde2c2004-07-04 11:33:49 +0000456/// supported.
Chris Lattner2c6c14d2004-08-04 00:19:23 +0000457Value* BytecodeReader::getGlobalTableValue(unsigned TyID, unsigned SlotNo) {
458 if (SlotNo == 0)
459 return Constant::getNullValue(getType(TyID));
460
461 if (!CompactionTypes.empty() && TyID >= Type::FirstDerivedTyID) {
462 TyID -= Type::FirstDerivedTyID;
463 if (TyID >= CompactionTypes.size())
464 error("Type ID out of range for compaction table!");
465 TyID = CompactionTypes[TyID].second;
Reid Spencer060d25d2004-06-29 23:29:38 +0000466 }
467
Chris Lattner2c6c14d2004-08-04 00:19:23 +0000468 --SlotNo;
469
Reid Spencer060d25d2004-06-29 23:29:38 +0000470 if (TyID >= ModuleValues.size() || ModuleValues[TyID] == 0 ||
471 SlotNo >= ModuleValues[TyID]->size()) {
Chris Lattner2c6c14d2004-08-04 00:19:23 +0000472 if (TyID >= ModuleValues.size() || ModuleValues[TyID] == 0)
473 error("Corrupt compaction table entry!"
Misha Brukman8a96c532005-04-21 21:44:41 +0000474 + utostr(TyID) + ", " + utostr(SlotNo) + ": "
Chris Lattner2c6c14d2004-08-04 00:19:23 +0000475 + utostr(ModuleValues.size()));
Misha Brukman8a96c532005-04-21 21:44:41 +0000476 else
Chris Lattner2c6c14d2004-08-04 00:19:23 +0000477 error("Corrupt compaction table entry!"
Misha Brukman8a96c532005-04-21 21:44:41 +0000478 + utostr(TyID) + ", " + utostr(SlotNo) + ": "
Chris Lattner2c6c14d2004-08-04 00:19:23 +0000479 + utostr(ModuleValues.size()) + ", "
Reid Spencer9a7e0c52004-08-04 22:56:46 +0000480 + utohexstr(reinterpret_cast<uint64_t>(((void*)ModuleValues[TyID])))
481 + ", "
Chris Lattner2c6c14d2004-08-04 00:19:23 +0000482 + utostr(ModuleValues[TyID]->size()));
Reid Spencer060d25d2004-06-29 23:29:38 +0000483 }
484 return ModuleValues[TyID]->getOperand(SlotNo);
485}
486
Reid Spencer04cde2c2004-07-04 11:33:49 +0000487/// Just like getValue, except that it returns a null pointer
488/// only on error. It always returns a constant (meaning that if the value is
489/// defined, but is not a constant, that is an error). If the specified
Misha Brukman8a96c532005-04-21 21:44:41 +0000490/// constant hasn't been parsed yet, a placeholder is defined and used.
Reid Spencer04cde2c2004-07-04 11:33:49 +0000491/// Later, after the real value is parsed, the placeholder is eliminated.
Reid Spencer060d25d2004-06-29 23:29:38 +0000492Constant* BytecodeReader::getConstantValue(unsigned TypeSlot, unsigned Slot) {
493 if (Value *V = getValue(TypeSlot, Slot, false))
494 if (Constant *C = dyn_cast<Constant>(V))
495 return C; // If we already have the value parsed, just return it
Reid Spencer060d25d2004-06-29 23:29:38 +0000496 else
Misha Brukman8a96c532005-04-21 21:44:41 +0000497 error("Value for slot " + utostr(Slot) +
Reid Spencera86037e2004-07-18 00:12:03 +0000498 " is expected to be a constant!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000499
Chris Lattner389bd042004-12-09 06:19:44 +0000500 std::pair<unsigned, unsigned> Key(TypeSlot, Slot);
Reid Spencer060d25d2004-06-29 23:29:38 +0000501 ConstantRefsType::iterator I = ConstantFwdRefs.lower_bound(Key);
502
503 if (I != ConstantFwdRefs.end() && I->first == Key) {
504 return I->second;
505 } else {
506 // Create a placeholder for the constant reference and
507 // keep track of the fact that we have a forward ref to recycle it
Chris Lattner389bd042004-12-09 06:19:44 +0000508 Constant *C = new ConstantPlaceHolder(getType(TypeSlot));
Misha Brukman8a96c532005-04-21 21:44:41 +0000509
Reid Spencer060d25d2004-06-29 23:29:38 +0000510 // Keep track of the fact that we have a forward ref to recycle it
511 ConstantFwdRefs.insert(I, std::make_pair(Key, C));
512 return C;
513 }
514}
515
516//===----------------------------------------------------------------------===//
517// IR Construction Methods
518//===----------------------------------------------------------------------===//
519
Reid Spencer04cde2c2004-07-04 11:33:49 +0000520/// As values are created, they are inserted into the appropriate place
521/// with this method. The ValueTable argument must be one of ModuleValues
522/// or FunctionValues data members of this class.
Misha Brukman8a96c532005-04-21 21:44:41 +0000523unsigned BytecodeReader::insertValue(Value *Val, unsigned type,
Reid Spencer46b002c2004-07-11 17:28:43 +0000524 ValueTable &ValueTab) {
Reid Spencer060d25d2004-06-29 23:29:38 +0000525 assert((!isa<Constant>(Val) || !cast<Constant>(Val)->isNullValue()) ||
Reid Spencer04cde2c2004-07-04 11:33:49 +0000526 !hasImplicitNull(type) &&
527 "Cannot read null values from bytecode!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000528
529 if (ValueTab.size() <= type)
530 ValueTab.resize(type+1);
531
532 if (!ValueTab[type]) ValueTab[type] = new ValueList();
533
534 ValueTab[type]->push_back(Val);
535
Chris Lattneraba5ff52005-05-05 20:57:00 +0000536 bool HasOffset = hasImplicitNull(type) && !isa<OpaqueType>(Val->getType());
Reid Spencer060d25d2004-06-29 23:29:38 +0000537 return ValueTab[type]->size()-1 + HasOffset;
538}
539
Reid Spencer04cde2c2004-07-04 11:33:49 +0000540/// Insert the arguments of a function as new values in the reader.
Reid Spencer46b002c2004-07-11 17:28:43 +0000541void BytecodeReader::insertArguments(Function* F) {
Reid Spencer060d25d2004-06-29 23:29:38 +0000542 const FunctionType *FT = F->getFunctionType();
Chris Lattnere4d5c442005-03-15 04:54:21 +0000543 Function::arg_iterator AI = F->arg_begin();
Reid Spencer060d25d2004-06-29 23:29:38 +0000544 for (FunctionType::param_iterator It = FT->param_begin();
545 It != FT->param_end(); ++It, ++AI)
546 insertValue(AI, getTypeSlot(AI->getType()), FunctionValues);
547}
548
549//===----------------------------------------------------------------------===//
550// Bytecode Parsing Methods
551//===----------------------------------------------------------------------===//
552
Reid Spencer04cde2c2004-07-04 11:33:49 +0000553/// This method parses a single instruction. The instruction is
554/// inserted at the end of the \p BB provided. The arguments of
Misha Brukman44666b12004-09-28 16:57:46 +0000555/// the instruction are provided in the \p Oprnds vector.
Reid Spencer060d25d2004-06-29 23:29:38 +0000556void BytecodeReader::ParseInstruction(std::vector<unsigned> &Oprnds,
Reid Spencer46b002c2004-07-11 17:28:43 +0000557 BasicBlock* BB) {
Reid Spencer060d25d2004-06-29 23:29:38 +0000558 BufPtr SaveAt = At;
559
560 // Clear instruction data
561 Oprnds.clear();
562 unsigned iType = 0;
563 unsigned Opcode = 0;
564 unsigned Op = read_uint();
565
566 // bits Instruction format: Common to all formats
567 // --------------------------
568 // 01-00: Opcode type, fixed to 1.
569 // 07-02: Opcode
570 Opcode = (Op >> 2) & 63;
571 Oprnds.resize((Op >> 0) & 03);
572
573 // Extract the operands
574 switch (Oprnds.size()) {
575 case 1:
576 // bits Instruction format:
577 // --------------------------
578 // 19-08: Resulting type plane
579 // 31-20: Operand #1 (if set to (2^12-1), then zero operands)
580 //
581 iType = (Op >> 8) & 4095;
582 Oprnds[0] = (Op >> 20) & 4095;
583 if (Oprnds[0] == 4095) // Handle special encoding for 0 operands...
584 Oprnds.resize(0);
585 break;
586 case 2:
587 // bits Instruction format:
588 // --------------------------
589 // 15-08: Resulting type plane
590 // 23-16: Operand #1
Misha Brukman8a96c532005-04-21 21:44:41 +0000591 // 31-24: Operand #2
Reid Spencer060d25d2004-06-29 23:29:38 +0000592 //
593 iType = (Op >> 8) & 255;
594 Oprnds[0] = (Op >> 16) & 255;
595 Oprnds[1] = (Op >> 24) & 255;
596 break;
597 case 3:
598 // bits Instruction format:
599 // --------------------------
600 // 13-08: Resulting type plane
601 // 19-14: Operand #1
602 // 25-20: Operand #2
603 // 31-26: Operand #3
604 //
605 iType = (Op >> 8) & 63;
606 Oprnds[0] = (Op >> 14) & 63;
607 Oprnds[1] = (Op >> 20) & 63;
608 Oprnds[2] = (Op >> 26) & 63;
609 break;
610 case 0:
611 At -= 4; // Hrm, try this again...
612 Opcode = read_vbr_uint();
613 Opcode >>= 2;
614 iType = read_vbr_uint();
615
616 unsigned NumOprnds = read_vbr_uint();
617 Oprnds.resize(NumOprnds);
618
619 if (NumOprnds == 0)
Reid Spencer24399722004-07-09 22:21:33 +0000620 error("Zero-argument instruction found; this is invalid.");
Reid Spencer060d25d2004-06-29 23:29:38 +0000621
622 for (unsigned i = 0; i != NumOprnds; ++i)
623 Oprnds[i] = read_vbr_uint();
624 align32();
625 break;
626 }
627
Reid Spencer04cde2c2004-07-04 11:33:49 +0000628 const Type *InstTy = getSanitizedType(iType);
Reid Spencer060d25d2004-06-29 23:29:38 +0000629
Reid Spencer46b002c2004-07-11 17:28:43 +0000630 // We have enough info to inform the handler now.
Reid Spencer04cde2c2004-07-04 11:33:49 +0000631 if (Handler) Handler->handleInstruction(Opcode, InstTy, Oprnds, At-SaveAt);
Reid Spencer060d25d2004-06-29 23:29:38 +0000632
633 // Declare the resulting instruction we'll build.
634 Instruction *Result = 0;
635
Chris Lattnera79e7cc2004-10-16 18:18:16 +0000636 // If this is a bytecode format that did not include the unreachable
637 // instruction, bump up all opcodes numbers to make space.
638 if (hasNoUnreachableInst) {
639 if (Opcode >= Instruction::Unreachable &&
640 Opcode < 62) {
641 ++Opcode;
642 }
643 }
644
Reid Spencer060d25d2004-06-29 23:29:38 +0000645 // Handle binary operators
646 if (Opcode >= Instruction::BinaryOpsBegin &&
647 Opcode < Instruction::BinaryOpsEnd && Oprnds.size() == 2)
648 Result = BinaryOperator::create((Instruction::BinaryOps)Opcode,
649 getValue(iType, Oprnds[0]),
650 getValue(iType, Oprnds[1]));
651
652 switch (Opcode) {
Misha Brukman8a96c532005-04-21 21:44:41 +0000653 default:
654 if (Result == 0)
Reid Spencer24399722004-07-09 22:21:33 +0000655 error("Illegal instruction read!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000656 break;
657 case Instruction::VAArg:
Misha Brukman8a96c532005-04-21 21:44:41 +0000658 Result = new VAArgInst(getValue(iType, Oprnds[0]),
Reid Spencer46b002c2004-07-11 17:28:43 +0000659 getSanitizedType(Oprnds[1]));
Reid Spencer060d25d2004-06-29 23:29:38 +0000660 break;
661 case Instruction::VANext:
Misha Brukman8a96c532005-04-21 21:44:41 +0000662 Result = new VANextInst(getValue(iType, Oprnds[0]),
Reid Spencer46b002c2004-07-11 17:28:43 +0000663 getSanitizedType(Oprnds[1]));
Reid Spencer060d25d2004-06-29 23:29:38 +0000664 break;
665 case Instruction::Cast:
Misha Brukman8a96c532005-04-21 21:44:41 +0000666 Result = new CastInst(getValue(iType, Oprnds[0]),
Reid Spencer46b002c2004-07-11 17:28:43 +0000667 getSanitizedType(Oprnds[1]));
Reid Spencer060d25d2004-06-29 23:29:38 +0000668 break;
669 case Instruction::Select:
670 Result = new SelectInst(getValue(Type::BoolTyID, Oprnds[0]),
671 getValue(iType, Oprnds[1]),
672 getValue(iType, Oprnds[2]));
673 break;
674 case Instruction::PHI: {
675 if (Oprnds.size() == 0 || (Oprnds.size() & 1))
Reid Spencer24399722004-07-09 22:21:33 +0000676 error("Invalid phi node encountered!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000677
678 PHINode *PN = new PHINode(InstTy);
Chris Lattnercad28bd2005-01-29 00:36:19 +0000679 PN->reserveOperandSpace(Oprnds.size());
Reid Spencer060d25d2004-06-29 23:29:38 +0000680 for (unsigned i = 0, e = Oprnds.size(); i != e; i += 2)
681 PN->addIncoming(getValue(iType, Oprnds[i]), getBasicBlock(Oprnds[i+1]));
682 Result = PN;
683 break;
684 }
685
686 case Instruction::Shl:
687 case Instruction::Shr:
688 Result = new ShiftInst((Instruction::OtherOps)Opcode,
689 getValue(iType, Oprnds[0]),
690 getValue(Type::UByteTyID, Oprnds[1]));
691 break;
692 case Instruction::Ret:
693 if (Oprnds.size() == 0)
694 Result = new ReturnInst();
695 else if (Oprnds.size() == 1)
696 Result = new ReturnInst(getValue(iType, Oprnds[0]));
697 else
Reid Spencer24399722004-07-09 22:21:33 +0000698 error("Unrecognized instruction!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000699 break;
700
701 case Instruction::Br:
702 if (Oprnds.size() == 1)
703 Result = new BranchInst(getBasicBlock(Oprnds[0]));
704 else if (Oprnds.size() == 3)
Misha Brukman8a96c532005-04-21 21:44:41 +0000705 Result = new BranchInst(getBasicBlock(Oprnds[0]),
Reid Spencer04cde2c2004-07-04 11:33:49 +0000706 getBasicBlock(Oprnds[1]), getValue(Type::BoolTyID , Oprnds[2]));
Reid Spencer060d25d2004-06-29 23:29:38 +0000707 else
Reid Spencer24399722004-07-09 22:21:33 +0000708 error("Invalid number of operands for a 'br' instruction!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000709 break;
710 case Instruction::Switch: {
711 if (Oprnds.size() & 1)
Reid Spencer24399722004-07-09 22:21:33 +0000712 error("Switch statement with odd number of arguments!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000713
714 SwitchInst *I = new SwitchInst(getValue(iType, Oprnds[0]),
Chris Lattnercad28bd2005-01-29 00:36:19 +0000715 getBasicBlock(Oprnds[1]),
716 Oprnds.size()/2-1);
Reid Spencer060d25d2004-06-29 23:29:38 +0000717 for (unsigned i = 2, e = Oprnds.size(); i != e; i += 2)
Chris Lattner7e618232005-02-24 05:26:04 +0000718 I->addCase(cast<ConstantInt>(getValue(iType, Oprnds[i])),
Reid Spencer060d25d2004-06-29 23:29:38 +0000719 getBasicBlock(Oprnds[i+1]));
720 Result = I;
721 break;
722 }
723
Chris Lattnerdee199f2005-05-06 22:34:01 +0000724 case 58: // Call with extra operand for calling conv
725 case 59: // tail call, Fast CC
726 case 60: // normal call, Fast CC
727 case 61: // tail call, C Calling Conv
728 case Instruction::Call: { // Normal Call, C Calling Convention
Reid Spencer060d25d2004-06-29 23:29:38 +0000729 if (Oprnds.size() == 0)
Reid Spencer24399722004-07-09 22:21:33 +0000730 error("Invalid call instruction encountered!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000731
732 Value *F = getValue(iType, Oprnds[0]);
733
Chris Lattnerdee199f2005-05-06 22:34:01 +0000734 unsigned CallingConv = CallingConv::C;
735 bool isTailCall = false;
736
737 if (Opcode == 61 || Opcode == 59)
738 isTailCall = true;
739
Reid Spencer060d25d2004-06-29 23:29:38 +0000740 // Check to make sure we have a pointer to function type
741 const PointerType *PTy = dyn_cast<PointerType>(F->getType());
Reid Spencer24399722004-07-09 22:21:33 +0000742 if (PTy == 0) error("Call to non function pointer value!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000743 const FunctionType *FTy = dyn_cast<FunctionType>(PTy->getElementType());
Reid Spencer24399722004-07-09 22:21:33 +0000744 if (FTy == 0) error("Call to non function pointer value!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000745
746 std::vector<Value *> Params;
747 if (!FTy->isVarArg()) {
748 FunctionType::param_iterator It = FTy->param_begin();
749
Chris Lattnerdee199f2005-05-06 22:34:01 +0000750 if (Opcode == 58) {
751 isTailCall = Oprnds.back() & 1;
752 CallingConv = Oprnds.back() >> 1;
753 Oprnds.pop_back();
754 } else if (Opcode == 59 || Opcode == 60)
755 CallingConv = CallingConv::Fast;
756
Reid Spencer060d25d2004-06-29 23:29:38 +0000757 for (unsigned i = 1, e = Oprnds.size(); i != e; ++i) {
758 if (It == FTy->param_end())
Reid Spencer24399722004-07-09 22:21:33 +0000759 error("Invalid call instruction!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000760 Params.push_back(getValue(getTypeSlot(*It++), Oprnds[i]));
761 }
762 if (It != FTy->param_end())
Reid Spencer24399722004-07-09 22:21:33 +0000763 error("Invalid call instruction!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000764 } else {
765 Oprnds.erase(Oprnds.begin(), Oprnds.begin()+1);
766
767 unsigned FirstVariableOperand;
768 if (Oprnds.size() < FTy->getNumParams())
Reid Spencer24399722004-07-09 22:21:33 +0000769 error("Call instruction missing operands!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000770
771 // Read all of the fixed arguments
772 for (unsigned i = 0, e = FTy->getNumParams(); i != e; ++i)
773 Params.push_back(getValue(getTypeSlot(FTy->getParamType(i)),Oprnds[i]));
Misha Brukman8a96c532005-04-21 21:44:41 +0000774
Reid Spencer060d25d2004-06-29 23:29:38 +0000775 FirstVariableOperand = FTy->getNumParams();
776
Misha Brukman8a96c532005-04-21 21:44:41 +0000777 if ((Oprnds.size()-FirstVariableOperand) & 1)
Chris Lattner4a242b32004-10-14 01:39:18 +0000778 error("Invalid call instruction!"); // Must be pairs of type/value
Misha Brukman8a96c532005-04-21 21:44:41 +0000779
780 for (unsigned i = FirstVariableOperand, e = Oprnds.size();
Reid Spencer04cde2c2004-07-04 11:33:49 +0000781 i != e; i += 2)
Reid Spencer060d25d2004-06-29 23:29:38 +0000782 Params.push_back(getValue(Oprnds[i], Oprnds[i+1]));
783 }
784
785 Result = new CallInst(F, Params);
Chris Lattnerdee199f2005-05-06 22:34:01 +0000786 if (isTailCall) cast<CallInst>(Result)->setTailCall();
787 if (CallingConv) cast<CallInst>(Result)->setCallingConv(CallingConv);
Reid Spencer060d25d2004-06-29 23:29:38 +0000788 break;
789 }
Chris Lattnerdee199f2005-05-06 22:34:01 +0000790 case 56: // Invoke with encoded CC
791 case 57: // Invoke Fast CC
792 case Instruction::Invoke: { // Invoke C CC
Misha Brukman8a96c532005-04-21 21:44:41 +0000793 if (Oprnds.size() < 3)
Reid Spencer24399722004-07-09 22:21:33 +0000794 error("Invalid invoke instruction!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000795 Value *F = getValue(iType, Oprnds[0]);
796
797 // Check to make sure we have a pointer to function type
798 const PointerType *PTy = dyn_cast<PointerType>(F->getType());
Misha Brukman8a96c532005-04-21 21:44:41 +0000799 if (PTy == 0)
Reid Spencer24399722004-07-09 22:21:33 +0000800 error("Invoke to non function pointer value!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000801 const FunctionType *FTy = dyn_cast<FunctionType>(PTy->getElementType());
Misha Brukman8a96c532005-04-21 21:44:41 +0000802 if (FTy == 0)
Reid Spencer24399722004-07-09 22:21:33 +0000803 error("Invoke to non function pointer value!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000804
805 std::vector<Value *> Params;
806 BasicBlock *Normal, *Except;
Chris Lattnerdee199f2005-05-06 22:34:01 +0000807 unsigned CallingConv = CallingConv::C;
808
809 if (Opcode == 57)
810 CallingConv = CallingConv::Fast;
811 else if (Opcode == 56) {
812 CallingConv = Oprnds.back();
813 Oprnds.pop_back();
814 }
Reid Spencer060d25d2004-06-29 23:29:38 +0000815
816 if (!FTy->isVarArg()) {
817 Normal = getBasicBlock(Oprnds[1]);
818 Except = getBasicBlock(Oprnds[2]);
819
820 FunctionType::param_iterator It = FTy->param_begin();
821 for (unsigned i = 3, e = Oprnds.size(); i != e; ++i) {
822 if (It == FTy->param_end())
Reid Spencer24399722004-07-09 22:21:33 +0000823 error("Invalid invoke instruction!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000824 Params.push_back(getValue(getTypeSlot(*It++), Oprnds[i]));
825 }
826 if (It != FTy->param_end())
Reid Spencer24399722004-07-09 22:21:33 +0000827 error("Invalid invoke instruction!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000828 } else {
829 Oprnds.erase(Oprnds.begin(), Oprnds.begin()+1);
830
831 Normal = getBasicBlock(Oprnds[0]);
832 Except = getBasicBlock(Oprnds[1]);
Misha Brukman8a96c532005-04-21 21:44:41 +0000833
Reid Spencer060d25d2004-06-29 23:29:38 +0000834 unsigned FirstVariableArgument = FTy->getNumParams()+2;
835 for (unsigned i = 2; i != FirstVariableArgument; ++i)
836 Params.push_back(getValue(getTypeSlot(FTy->getParamType(i-2)),
837 Oprnds[i]));
Misha Brukman8a96c532005-04-21 21:44:41 +0000838
Reid Spencer060d25d2004-06-29 23:29:38 +0000839 if (Oprnds.size()-FirstVariableArgument & 1) // Must be type/value pairs
Reid Spencer24399722004-07-09 22:21:33 +0000840 error("Invalid invoke instruction!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000841
842 for (unsigned i = FirstVariableArgument; i < Oprnds.size(); i += 2)
843 Params.push_back(getValue(Oprnds[i], Oprnds[i+1]));
844 }
845
846 Result = new InvokeInst(F, Normal, Except, Params);
Chris Lattnerdee199f2005-05-06 22:34:01 +0000847 if (CallingConv) cast<InvokeInst>(Result)->setCallingConv(CallingConv);
Reid Spencer060d25d2004-06-29 23:29:38 +0000848 break;
849 }
850 case Instruction::Malloc:
Misha Brukman8a96c532005-04-21 21:44:41 +0000851 if (Oprnds.size() > 2)
Reid Spencer24399722004-07-09 22:21:33 +0000852 error("Invalid malloc instruction!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000853 if (!isa<PointerType>(InstTy))
Reid Spencer24399722004-07-09 22:21:33 +0000854 error("Invalid malloc instruction!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000855
856 Result = new MallocInst(cast<PointerType>(InstTy)->getElementType(),
857 Oprnds.size() ? getValue(Type::UIntTyID,
858 Oprnds[0]) : 0);
859 break;
860
861 case Instruction::Alloca:
Misha Brukman8a96c532005-04-21 21:44:41 +0000862 if (Oprnds.size() > 2)
Reid Spencer24399722004-07-09 22:21:33 +0000863 error("Invalid alloca instruction!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000864 if (!isa<PointerType>(InstTy))
Reid Spencer24399722004-07-09 22:21:33 +0000865 error("Invalid alloca instruction!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000866
867 Result = new AllocaInst(cast<PointerType>(InstTy)->getElementType(),
Misha Brukman8a96c532005-04-21 21:44:41 +0000868 Oprnds.size() ? getValue(Type::UIntTyID,
Reid Spencer04cde2c2004-07-04 11:33:49 +0000869 Oprnds[0]) :0);
Reid Spencer060d25d2004-06-29 23:29:38 +0000870 break;
871 case Instruction::Free:
872 if (!isa<PointerType>(InstTy))
Reid Spencer24399722004-07-09 22:21:33 +0000873 error("Invalid free instruction!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000874 Result = new FreeInst(getValue(iType, Oprnds[0]));
875 break;
876 case Instruction::GetElementPtr: {
877 if (Oprnds.size() == 0 || !isa<PointerType>(InstTy))
Reid Spencer24399722004-07-09 22:21:33 +0000878 error("Invalid getelementptr instruction!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000879
880 std::vector<Value*> Idx;
881
882 const Type *NextTy = InstTy;
883 for (unsigned i = 1, e = Oprnds.size(); i != e; ++i) {
884 const CompositeType *TopTy = dyn_cast_or_null<CompositeType>(NextTy);
Misha Brukman8a96c532005-04-21 21:44:41 +0000885 if (!TopTy)
886 error("Invalid getelementptr instruction!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000887
888 unsigned ValIdx = Oprnds[i];
889 unsigned IdxTy = 0;
890 if (!hasRestrictedGEPTypes) {
891 // Struct indices are always uints, sequential type indices can be any
892 // of the 32 or 64-bit integer types. The actual choice of type is
893 // encoded in the low two bits of the slot number.
894 if (isa<StructType>(TopTy))
895 IdxTy = Type::UIntTyID;
896 else {
897 switch (ValIdx & 3) {
898 default:
899 case 0: IdxTy = Type::UIntTyID; break;
900 case 1: IdxTy = Type::IntTyID; break;
901 case 2: IdxTy = Type::ULongTyID; break;
902 case 3: IdxTy = Type::LongTyID; break;
903 }
904 ValIdx >>= 2;
905 }
906 } else {
907 IdxTy = isa<StructType>(TopTy) ? Type::UByteTyID : Type::LongTyID;
908 }
909
910 Idx.push_back(getValue(IdxTy, ValIdx));
911
912 // Convert ubyte struct indices into uint struct indices.
913 if (isa<StructType>(TopTy) && hasRestrictedGEPTypes)
914 if (ConstantUInt *C = dyn_cast<ConstantUInt>(Idx.back()))
915 Idx[Idx.size()-1] = ConstantExpr::getCast(C, Type::UIntTy);
916
917 NextTy = GetElementPtrInst::getIndexedType(InstTy, Idx, true);
918 }
919
920 Result = new GetElementPtrInst(getValue(iType, Oprnds[0]), Idx);
921 break;
922 }
923
924 case 62: // volatile load
925 case Instruction::Load:
926 if (Oprnds.size() != 1 || !isa<PointerType>(InstTy))
Reid Spencer24399722004-07-09 22:21:33 +0000927 error("Invalid load instruction!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000928 Result = new LoadInst(getValue(iType, Oprnds[0]), "", Opcode == 62);
929 break;
930
Misha Brukman8a96c532005-04-21 21:44:41 +0000931 case 63: // volatile store
Reid Spencer060d25d2004-06-29 23:29:38 +0000932 case Instruction::Store: {
933 if (!isa<PointerType>(InstTy) || Oprnds.size() != 2)
Reid Spencer24399722004-07-09 22:21:33 +0000934 error("Invalid store instruction!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000935
936 Value *Ptr = getValue(iType, Oprnds[1]);
937 const Type *ValTy = cast<PointerType>(Ptr->getType())->getElementType();
938 Result = new StoreInst(getValue(getTypeSlot(ValTy), Oprnds[0]), Ptr,
939 Opcode == 63);
940 break;
941 }
942 case Instruction::Unwind:
Chris Lattnera79e7cc2004-10-16 18:18:16 +0000943 if (Oprnds.size() != 0) error("Invalid unwind instruction!");
Reid Spencer060d25d2004-06-29 23:29:38 +0000944 Result = new UnwindInst();
945 break;
Chris Lattnera79e7cc2004-10-16 18:18:16 +0000946 case Instruction::Unreachable:
947 if (Oprnds.size() != 0) error("Invalid unreachable instruction!");
948 Result = new UnreachableInst();
949 break;
Misha Brukman8a96c532005-04-21 21:44:41 +0000950 } // end switch(Opcode)
Reid Spencer060d25d2004-06-29 23:29:38 +0000951
952 unsigned TypeSlot;
953 if (Result->getType() == InstTy)
954 TypeSlot = iType;
955 else
956 TypeSlot = getTypeSlot(Result->getType());
957
958 insertValue(Result, TypeSlot, FunctionValues);
959 BB->getInstList().push_back(Result);
960}
961
Reid Spencer04cde2c2004-07-04 11:33:49 +0000962/// Get a particular numbered basic block, which might be a forward reference.
963/// This works together with ParseBasicBlock to handle these forward references
Chris Lattner4a242b32004-10-14 01:39:18 +0000964/// in a clean manner. This function is used when constructing phi, br, switch,
965/// and other instructions that reference basic blocks. Blocks are numbered
Reid Spencer04cde2c2004-07-04 11:33:49 +0000966/// sequentially as they appear in the function.
Reid Spencer060d25d2004-06-29 23:29:38 +0000967BasicBlock *BytecodeReader::getBasicBlock(unsigned ID) {
Chris Lattner4ee8ef22003-10-08 22:52:54 +0000968 // Make sure there is room in the table...
969 if (ParsedBasicBlocks.size() <= ID) ParsedBasicBlocks.resize(ID+1);
970
971 // First check to see if this is a backwards reference, i.e., ParseBasicBlock
972 // has already created this block, or if the forward reference has already
973 // been created.
974 if (ParsedBasicBlocks[ID])
975 return ParsedBasicBlocks[ID];
976
977 // Otherwise, the basic block has not yet been created. Do so and add it to
978 // the ParsedBasicBlocks list.
979 return ParsedBasicBlocks[ID] = new BasicBlock();
980}
981
Misha Brukman8a96c532005-04-21 21:44:41 +0000982/// In LLVM 1.0 bytecode files, we used to output one basicblock at a time.
Reid Spencer04cde2c2004-07-04 11:33:49 +0000983/// This method reads in one of the basicblock packets. This method is not used
984/// for bytecode files after LLVM 1.0
985/// @returns The basic block constructed.
Reid Spencer46b002c2004-07-11 17:28:43 +0000986BasicBlock *BytecodeReader::ParseBasicBlock(unsigned BlockNo) {
987 if (Handler) Handler->handleBasicBlockBegin(BlockNo);
Reid Spencer060d25d2004-06-29 23:29:38 +0000988
989 BasicBlock *BB = 0;
990
Chris Lattner4ee8ef22003-10-08 22:52:54 +0000991 if (ParsedBasicBlocks.size() == BlockNo)
992 ParsedBasicBlocks.push_back(BB = new BasicBlock());
993 else if (ParsedBasicBlocks[BlockNo] == 0)
994 BB = ParsedBasicBlocks[BlockNo] = new BasicBlock();
995 else
996 BB = ParsedBasicBlocks[BlockNo];
Chris Lattner00950542001-06-06 20:29:01 +0000997
Reid Spencer060d25d2004-06-29 23:29:38 +0000998 std::vector<unsigned> Operands;
Reid Spencer46b002c2004-07-11 17:28:43 +0000999 while (moreInBlock())
Reid Spencer060d25d2004-06-29 23:29:38 +00001000 ParseInstruction(Operands, BB);
Chris Lattner00950542001-06-06 20:29:01 +00001001
Reid Spencer46b002c2004-07-11 17:28:43 +00001002 if (Handler) Handler->handleBasicBlockEnd(BlockNo);
Misha Brukman12c29d12003-09-22 23:38:23 +00001003 return BB;
Chris Lattner00950542001-06-06 20:29:01 +00001004}
1005
Reid Spencer04cde2c2004-07-04 11:33:49 +00001006/// Parse all of the BasicBlock's & Instruction's in the body of a function.
Misha Brukman8a96c532005-04-21 21:44:41 +00001007/// In post 1.0 bytecode files, we no longer emit basic block individually,
Reid Spencer04cde2c2004-07-04 11:33:49 +00001008/// in order to avoid per-basic-block overhead.
1009/// @returns Rhe number of basic blocks encountered.
Reid Spencer060d25d2004-06-29 23:29:38 +00001010unsigned BytecodeReader::ParseInstructionList(Function* F) {
Chris Lattner8d1dbd22003-12-01 07:05:31 +00001011 unsigned BlockNo = 0;
1012 std::vector<unsigned> Args;
1013
Reid Spencer46b002c2004-07-11 17:28:43 +00001014 while (moreInBlock()) {
1015 if (Handler) Handler->handleBasicBlockBegin(BlockNo);
Chris Lattner8d1dbd22003-12-01 07:05:31 +00001016 BasicBlock *BB;
1017 if (ParsedBasicBlocks.size() == BlockNo)
1018 ParsedBasicBlocks.push_back(BB = new BasicBlock());
1019 else if (ParsedBasicBlocks[BlockNo] == 0)
1020 BB = ParsedBasicBlocks[BlockNo] = new BasicBlock();
1021 else
1022 BB = ParsedBasicBlocks[BlockNo];
1023 ++BlockNo;
1024 F->getBasicBlockList().push_back(BB);
1025
1026 // Read instructions into this basic block until we get to a terminator
Reid Spencer46b002c2004-07-11 17:28:43 +00001027 while (moreInBlock() && !BB->getTerminator())
Reid Spencer060d25d2004-06-29 23:29:38 +00001028 ParseInstruction(Args, BB);
Chris Lattner8d1dbd22003-12-01 07:05:31 +00001029
1030 if (!BB->getTerminator())
Reid Spencer24399722004-07-09 22:21:33 +00001031 error("Non-terminated basic block found!");
Reid Spencer5c15fe52004-07-05 00:57:50 +00001032
Reid Spencer46b002c2004-07-11 17:28:43 +00001033 if (Handler) Handler->handleBasicBlockEnd(BlockNo-1);
Chris Lattner8d1dbd22003-12-01 07:05:31 +00001034 }
1035
1036 return BlockNo;
1037}
1038
Reid Spencer04cde2c2004-07-04 11:33:49 +00001039/// Parse a symbol table. This works for both module level and function
1040/// level symbol tables. For function level symbol tables, the CurrentFunction
1041/// parameter must be non-zero and the ST parameter must correspond to
1042/// CurrentFunction's symbol table. For Module level symbol tables, the
1043/// CurrentFunction argument must be zero.
Reid Spencer060d25d2004-06-29 23:29:38 +00001044void BytecodeReader::ParseSymbolTable(Function *CurrentFunction,
Reid Spencer04cde2c2004-07-04 11:33:49 +00001045 SymbolTable *ST) {
1046 if (Handler) Handler->handleSymbolTableBegin(CurrentFunction,ST);
Reid Spencer060d25d2004-06-29 23:29:38 +00001047
Chris Lattner39cacce2003-10-10 05:43:47 +00001048 // Allow efficient basic block lookup by number.
1049 std::vector<BasicBlock*> BBMap;
1050 if (CurrentFunction)
1051 for (Function::iterator I = CurrentFunction->begin(),
1052 E = CurrentFunction->end(); I != E; ++I)
1053 BBMap.push_back(I);
1054
Reid Spencer04cde2c2004-07-04 11:33:49 +00001055 /// In LLVM 1.3 we write types separately from values so
1056 /// The types are always first in the symbol table. This is
1057 /// because Type no longer derives from Value.
Reid Spencer46b002c2004-07-11 17:28:43 +00001058 if (!hasTypeDerivedFromValue) {
Reid Spencer04cde2c2004-07-04 11:33:49 +00001059 // Symtab block header: [num entries]
1060 unsigned NumEntries = read_vbr_uint();
Reid Spencer46b002c2004-07-11 17:28:43 +00001061 for (unsigned i = 0; i < NumEntries; ++i) {
Reid Spencer04cde2c2004-07-04 11:33:49 +00001062 // Symtab entry: [def slot #][name]
1063 unsigned slot = read_vbr_uint();
1064 std::string Name = read_str();
1065 const Type* T = getType(slot);
1066 ST->insert(Name, T);
1067 }
1068 }
1069
Reid Spencer46b002c2004-07-11 17:28:43 +00001070 while (moreInBlock()) {
Chris Lattner00950542001-06-06 20:29:01 +00001071 // Symtab block header: [num entries][type id number]
Reid Spencer060d25d2004-06-29 23:29:38 +00001072 unsigned NumEntries = read_vbr_uint();
Reid Spencer04cde2c2004-07-04 11:33:49 +00001073 unsigned Typ = 0;
1074 bool isTypeType = read_typeid(Typ);
Chris Lattner00950542001-06-06 20:29:01 +00001075 const Type *Ty = getType(Typ);
Chris Lattner1d670cc2001-09-07 16:37:43 +00001076
Chris Lattner7dc3a2e2003-10-13 14:57:53 +00001077 for (unsigned i = 0; i != NumEntries; ++i) {
Chris Lattner00950542001-06-06 20:29:01 +00001078 // Symtab entry: [def slot #][name]
Reid Spencer060d25d2004-06-29 23:29:38 +00001079 unsigned slot = read_vbr_uint();
1080 std::string Name = read_str();
Chris Lattner00950542001-06-06 20:29:01 +00001081
Reid Spencer04cde2c2004-07-04 11:33:49 +00001082 // if we're reading a pre 1.3 bytecode file and the type plane
1083 // is the "type type", handle it here
Reid Spencer46b002c2004-07-11 17:28:43 +00001084 if (isTypeType) {
1085 const Type* T = getType(slot);
1086 if (T == 0)
1087 error("Failed type look-up for name '" + Name + "'");
1088 ST->insert(Name, T);
1089 continue; // code below must be short circuited
Chris Lattner39cacce2003-10-10 05:43:47 +00001090 } else {
Reid Spencer46b002c2004-07-11 17:28:43 +00001091 Value *V = 0;
1092 if (Typ == Type::LabelTyID) {
1093 if (slot < BBMap.size())
1094 V = BBMap[slot];
1095 } else {
1096 V = getValue(Typ, slot, false); // Find mapping...
1097 }
1098 if (V == 0)
1099 error("Failed value look-up for name '" + Name + "'");
Chris Lattner7acff252005-03-05 19:05:20 +00001100 V->setName(Name);
Chris Lattner39cacce2003-10-10 05:43:47 +00001101 }
Chris Lattner00950542001-06-06 20:29:01 +00001102 }
1103 }
Reid Spencer060d25d2004-06-29 23:29:38 +00001104 checkPastBlockEnd("Symbol Table");
Reid Spencer04cde2c2004-07-04 11:33:49 +00001105 if (Handler) Handler->handleSymbolTableEnd();
Chris Lattner00950542001-06-06 20:29:01 +00001106}
1107
Misha Brukman8a96c532005-04-21 21:44:41 +00001108/// Read in the types portion of a compaction table.
Reid Spencer46b002c2004-07-11 17:28:43 +00001109void BytecodeReader::ParseCompactionTypes(unsigned NumEntries) {
Reid Spencer04cde2c2004-07-04 11:33:49 +00001110 for (unsigned i = 0; i != NumEntries; ++i) {
1111 unsigned TypeSlot = 0;
Reid Spencer46b002c2004-07-11 17:28:43 +00001112 if (read_typeid(TypeSlot))
Reid Spencer24399722004-07-09 22:21:33 +00001113 error("Invalid type in compaction table: type type");
Reid Spencer04cde2c2004-07-04 11:33:49 +00001114 const Type *Typ = getGlobalTableType(TypeSlot);
Chris Lattner45b5dd22004-08-03 23:41:28 +00001115 CompactionTypes.push_back(std::make_pair(Typ, TypeSlot));
Reid Spencer46b002c2004-07-11 17:28:43 +00001116 if (Handler) Handler->handleCompactionTableType(i, TypeSlot, Typ);
Reid Spencer04cde2c2004-07-04 11:33:49 +00001117 }
1118}
1119
1120/// Parse a compaction table.
Reid Spencer060d25d2004-06-29 23:29:38 +00001121void BytecodeReader::ParseCompactionTable() {
1122
Reid Spencer46b002c2004-07-11 17:28:43 +00001123 // Notify handler that we're beginning a compaction table.
Reid Spencer04cde2c2004-07-04 11:33:49 +00001124 if (Handler) Handler->handleCompactionTableBegin();
1125
Misha Brukman8a96c532005-04-21 21:44:41 +00001126 // In LLVM 1.3 Type no longer derives from Value. So,
Reid Spencer46b002c2004-07-11 17:28:43 +00001127 // we always write them first in the compaction table
1128 // because they can't occupy a "type plane" where the
1129 // Values reside.
1130 if (! hasTypeDerivedFromValue) {
Reid Spencer04cde2c2004-07-04 11:33:49 +00001131 unsigned NumEntries = read_vbr_uint();
Reid Spencer46b002c2004-07-11 17:28:43 +00001132 ParseCompactionTypes(NumEntries);
Reid Spencer04cde2c2004-07-04 11:33:49 +00001133 }
Reid Spencer060d25d2004-06-29 23:29:38 +00001134
Reid Spencer46b002c2004-07-11 17:28:43 +00001135 // Compaction tables live in separate blocks so we have to loop
1136 // until we've read the whole thing.
1137 while (moreInBlock()) {
1138 // Read the number of Value* entries in the compaction table
Reid Spencer060d25d2004-06-29 23:29:38 +00001139 unsigned NumEntries = read_vbr_uint();
Reid Spencer04cde2c2004-07-04 11:33:49 +00001140 unsigned Ty = 0;
1141 unsigned isTypeType = false;
Reid Spencer060d25d2004-06-29 23:29:38 +00001142
Reid Spencer46b002c2004-07-11 17:28:43 +00001143 // Decode the type from value read in. Most compaction table
1144 // planes will have one or two entries in them. If that's the
1145 // case then the length is encoded in the bottom two bits and
1146 // the higher bits encode the type. This saves another VBR value.
Reid Spencer060d25d2004-06-29 23:29:38 +00001147 if ((NumEntries & 3) == 3) {
Reid Spencer46b002c2004-07-11 17:28:43 +00001148 // In this case, both low-order bits are set (value 3). This
1149 // is a signal that the typeid follows.
Reid Spencer060d25d2004-06-29 23:29:38 +00001150 NumEntries >>= 2;
Reid Spencer04cde2c2004-07-04 11:33:49 +00001151 isTypeType = read_typeid(Ty);
Reid Spencer060d25d2004-06-29 23:29:38 +00001152 } else {
Reid Spencer46b002c2004-07-11 17:28:43 +00001153 // In this case, the low-order bits specify the number of entries
1154 // and the high order bits specify the type.
Reid Spencer060d25d2004-06-29 23:29:38 +00001155 Ty = NumEntries >> 2;
Reid Spencer04cde2c2004-07-04 11:33:49 +00001156 isTypeType = sanitizeTypeId(Ty);
Reid Spencer060d25d2004-06-29 23:29:38 +00001157 NumEntries &= 3;
1158 }
1159
Reid Spencer04cde2c2004-07-04 11:33:49 +00001160 // if we're reading a pre 1.3 bytecode file and the type plane
1161 // is the "type type", handle it here
Reid Spencer46b002c2004-07-11 17:28:43 +00001162 if (isTypeType) {
Reid Spencer04cde2c2004-07-04 11:33:49 +00001163 ParseCompactionTypes(NumEntries);
Reid Spencer060d25d2004-06-29 23:29:38 +00001164 } else {
Chris Lattner2c6c14d2004-08-04 00:19:23 +00001165 // Make sure we have enough room for the plane.
Reid Spencer04cde2c2004-07-04 11:33:49 +00001166 if (Ty >= CompactionValues.size())
Reid Spencer46b002c2004-07-11 17:28:43 +00001167 CompactionValues.resize(Ty+1);
Reid Spencer04cde2c2004-07-04 11:33:49 +00001168
Chris Lattner2c6c14d2004-08-04 00:19:23 +00001169 // Make sure the plane is empty or we have some kind of error.
Reid Spencer04cde2c2004-07-04 11:33:49 +00001170 if (!CompactionValues[Ty].empty())
Reid Spencer46b002c2004-07-11 17:28:43 +00001171 error("Compaction table plane contains multiple entries!");
Reid Spencer04cde2c2004-07-04 11:33:49 +00001172
Chris Lattner2c6c14d2004-08-04 00:19:23 +00001173 // Notify handler about the plane.
Reid Spencer46b002c2004-07-11 17:28:43 +00001174 if (Handler) Handler->handleCompactionTablePlane(Ty, NumEntries);
Reid Spencer04cde2c2004-07-04 11:33:49 +00001175
Chris Lattner2c6c14d2004-08-04 00:19:23 +00001176 // Push the implicit zero.
1177 CompactionValues[Ty].push_back(Constant::getNullValue(getType(Ty)));
Reid Spencer46b002c2004-07-11 17:28:43 +00001178
1179 // Read in each of the entries, put them in the compaction table
1180 // and notify the handler that we have a new compaction table value.
Reid Spencer060d25d2004-06-29 23:29:38 +00001181 for (unsigned i = 0; i != NumEntries; ++i) {
Reid Spencer46b002c2004-07-11 17:28:43 +00001182 unsigned ValSlot = read_vbr_uint();
Chris Lattner2c6c14d2004-08-04 00:19:23 +00001183 Value *V = getGlobalTableValue(Ty, ValSlot);
Reid Spencer46b002c2004-07-11 17:28:43 +00001184 CompactionValues[Ty].push_back(V);
Chris Lattner2c6c14d2004-08-04 00:19:23 +00001185 if (Handler) Handler->handleCompactionTableValue(i, Ty, ValSlot);
Reid Spencer060d25d2004-06-29 23:29:38 +00001186 }
1187 }
1188 }
Reid Spencer46b002c2004-07-11 17:28:43 +00001189 // Notify handler that the compaction table is done.
Reid Spencer04cde2c2004-07-04 11:33:49 +00001190 if (Handler) Handler->handleCompactionTableEnd();
Reid Spencer060d25d2004-06-29 23:29:38 +00001191}
Misha Brukman8a96c532005-04-21 21:44:41 +00001192
Reid Spencer46b002c2004-07-11 17:28:43 +00001193// Parse a single type. The typeid is read in first. If its a primitive type
1194// then nothing else needs to be read, we know how to instantiate it. If its
Misha Brukman8a96c532005-04-21 21:44:41 +00001195// a derived type, then additional data is read to fill out the type
Reid Spencer46b002c2004-07-11 17:28:43 +00001196// definition.
1197const Type *BytecodeReader::ParseType() {
Reid Spencer04cde2c2004-07-04 11:33:49 +00001198 unsigned PrimType = 0;
Reid Spencer46b002c2004-07-11 17:28:43 +00001199 if (read_typeid(PrimType))
Reid Spencer24399722004-07-09 22:21:33 +00001200 error("Invalid type (type type) in type constants!");
Reid Spencer060d25d2004-06-29 23:29:38 +00001201
1202 const Type *Result = 0;
1203 if ((Result = Type::getPrimitiveType((Type::TypeID)PrimType)))
1204 return Result;
Misha Brukman8a96c532005-04-21 21:44:41 +00001205
Reid Spencer060d25d2004-06-29 23:29:38 +00001206 switch (PrimType) {
1207 case Type::FunctionTyID: {
Reid Spencer04cde2c2004-07-04 11:33:49 +00001208 const Type *RetType = readSanitizedType();
Reid Spencer060d25d2004-06-29 23:29:38 +00001209
1210 unsigned NumParams = read_vbr_uint();
1211
1212 std::vector<const Type*> Params;
Misha Brukman8a96c532005-04-21 21:44:41 +00001213 while (NumParams--)
Reid Spencer04cde2c2004-07-04 11:33:49 +00001214 Params.push_back(readSanitizedType());
Reid Spencer060d25d2004-06-29 23:29:38 +00001215
1216 bool isVarArg = Params.size() && Params.back() == Type::VoidTy;
1217 if (isVarArg) Params.pop_back();
1218
1219 Result = FunctionType::get(RetType, Params, isVarArg);
1220 break;
1221 }
1222 case Type::ArrayTyID: {
Reid Spencer04cde2c2004-07-04 11:33:49 +00001223 const Type *ElementType = readSanitizedType();
Reid Spencer060d25d2004-06-29 23:29:38 +00001224 unsigned NumElements = read_vbr_uint();
Reid Spencer060d25d2004-06-29 23:29:38 +00001225 Result = ArrayType::get(ElementType, NumElements);
1226 break;
1227 }
Brian Gaeke715c90b2004-08-20 06:00:58 +00001228 case Type::PackedTyID: {
1229 const Type *ElementType = readSanitizedType();
1230 unsigned NumElements = read_vbr_uint();
1231 Result = PackedType::get(ElementType, NumElements);
1232 break;
1233 }
Reid Spencer060d25d2004-06-29 23:29:38 +00001234 case Type::StructTyID: {
1235 std::vector<const Type*> Elements;
Reid Spencer04cde2c2004-07-04 11:33:49 +00001236 unsigned Typ = 0;
Reid Spencer46b002c2004-07-11 17:28:43 +00001237 if (read_typeid(Typ))
Reid Spencer24399722004-07-09 22:21:33 +00001238 error("Invalid element type (type type) for structure!");
1239
Reid Spencer060d25d2004-06-29 23:29:38 +00001240 while (Typ) { // List is terminated by void/0 typeid
1241 Elements.push_back(getType(Typ));
Reid Spencer46b002c2004-07-11 17:28:43 +00001242 if (read_typeid(Typ))
1243 error("Invalid element type (type type) for structure!");
Reid Spencer060d25d2004-06-29 23:29:38 +00001244 }
1245
1246 Result = StructType::get(Elements);
1247 break;
1248 }
1249 case Type::PointerTyID: {
Reid Spencer04cde2c2004-07-04 11:33:49 +00001250 Result = PointerType::get(readSanitizedType());
Reid Spencer060d25d2004-06-29 23:29:38 +00001251 break;
1252 }
1253
1254 case Type::OpaqueTyID: {
1255 Result = OpaqueType::get();
1256 break;
1257 }
1258
1259 default:
Reid Spencer24399722004-07-09 22:21:33 +00001260 error("Don't know how to deserialize primitive type " + utostr(PrimType));
Reid Spencer060d25d2004-06-29 23:29:38 +00001261 break;
1262 }
Reid Spencer46b002c2004-07-11 17:28:43 +00001263 if (Handler) Handler->handleType(Result);
Reid Spencer060d25d2004-06-29 23:29:38 +00001264 return Result;
1265}
1266
Reid Spencer5b472d92004-08-21 20:49:23 +00001267// ParseTypes - We have to use this weird code to handle recursive
Reid Spencer060d25d2004-06-29 23:29:38 +00001268// types. We know that recursive types will only reference the current slab of
1269// values in the type plane, but they can forward reference types before they
1270// have been read. For example, Type #0 might be '{ Ty#1 }' and Type #1 might
1271// be 'Ty#0*'. When reading Type #0, type number one doesn't exist. To fix
1272// this ugly problem, we pessimistically insert an opaque type for each type we
1273// are about to read. This means that forward references will resolve to
1274// something and when we reread the type later, we can replace the opaque type
1275// with a new resolved concrete type.
1276//
Reid Spencer46b002c2004-07-11 17:28:43 +00001277void BytecodeReader::ParseTypes(TypeListTy &Tab, unsigned NumEntries){
Reid Spencer060d25d2004-06-29 23:29:38 +00001278 assert(Tab.size() == 0 && "should not have read type constants in before!");
1279
1280 // Insert a bunch of opaque types to be resolved later...
1281 Tab.reserve(NumEntries);
1282 for (unsigned i = 0; i != NumEntries; ++i)
1283 Tab.push_back(OpaqueType::get());
1284
Misha Brukman8a96c532005-04-21 21:44:41 +00001285 if (Handler)
Reid Spencer5b472d92004-08-21 20:49:23 +00001286 Handler->handleTypeList(NumEntries);
1287
Reid Spencer060d25d2004-06-29 23:29:38 +00001288 // Loop through reading all of the types. Forward types will make use of the
1289 // opaque types just inserted.
1290 //
1291 for (unsigned i = 0; i != NumEntries; ++i) {
Reid Spencer46b002c2004-07-11 17:28:43 +00001292 const Type* NewTy = ParseType();
Reid Spencer04cde2c2004-07-04 11:33:49 +00001293 const Type* OldTy = Tab[i].get();
Misha Brukman8a96c532005-04-21 21:44:41 +00001294 if (NewTy == 0)
Reid Spencer24399722004-07-09 22:21:33 +00001295 error("Couldn't parse type!");
Reid Spencer060d25d2004-06-29 23:29:38 +00001296
Misha Brukman8a96c532005-04-21 21:44:41 +00001297 // Don't directly push the new type on the Tab. Instead we want to replace
Reid Spencer060d25d2004-06-29 23:29:38 +00001298 // the opaque type we previously inserted with the new concrete value. This
1299 // approach helps with forward references to types. The refinement from the
1300 // abstract (opaque) type to the new type causes all uses of the abstract
1301 // type to use the concrete type (NewTy). This will also cause the opaque
1302 // type to be deleted.
1303 cast<DerivedType>(const_cast<Type*>(OldTy))->refineAbstractTypeTo(NewTy);
1304
1305 // This should have replaced the old opaque type with the new type in the
1306 // value table... or with a preexisting type that was already in the system.
1307 // Let's just make sure it did.
1308 assert(Tab[i] != OldTy && "refineAbstractType didn't work!");
1309 }
1310}
1311
Reid Spencer04cde2c2004-07-04 11:33:49 +00001312/// Parse a single constant value
Reid Spencer46b002c2004-07-11 17:28:43 +00001313Constant *BytecodeReader::ParseConstantValue(unsigned TypeID) {
Reid Spencer060d25d2004-06-29 23:29:38 +00001314 // We must check for a ConstantExpr before switching by type because
1315 // a ConstantExpr can be of any type, and has no explicit value.
Misha Brukman8a96c532005-04-21 21:44:41 +00001316 //
Reid Spencer060d25d2004-06-29 23:29:38 +00001317 // 0 if not expr; numArgs if is expr
1318 unsigned isExprNumArgs = read_vbr_uint();
Chris Lattnera79e7cc2004-10-16 18:18:16 +00001319
Reid Spencer060d25d2004-06-29 23:29:38 +00001320 if (isExprNumArgs) {
Chris Lattnera79e7cc2004-10-16 18:18:16 +00001321 // 'undef' is encoded with 'exprnumargs' == 1.
1322 if (!hasNoUndefValue)
1323 if (--isExprNumArgs == 0)
1324 return UndefValue::get(getType(TypeID));
Misha Brukman8a96c532005-04-21 21:44:41 +00001325
Reid Spencer060d25d2004-06-29 23:29:38 +00001326 // FIXME: Encoding of constant exprs could be much more compact!
1327 std::vector<Constant*> ArgVec;
1328 ArgVec.reserve(isExprNumArgs);
1329 unsigned Opcode = read_vbr_uint();
Chris Lattnera79e7cc2004-10-16 18:18:16 +00001330
1331 // Bytecode files before LLVM 1.4 need have a missing terminator inst.
1332 if (hasNoUnreachableInst) Opcode++;
Misha Brukman8a96c532005-04-21 21:44:41 +00001333
Reid Spencer060d25d2004-06-29 23:29:38 +00001334 // Read the slot number and types of each of the arguments
1335 for (unsigned i = 0; i != isExprNumArgs; ++i) {
1336 unsigned ArgValSlot = read_vbr_uint();
Reid Spencer04cde2c2004-07-04 11:33:49 +00001337 unsigned ArgTypeSlot = 0;
Reid Spencer46b002c2004-07-11 17:28:43 +00001338 if (read_typeid(ArgTypeSlot))
1339 error("Invalid argument type (type type) for constant value");
Misha Brukman8a96c532005-04-21 21:44:41 +00001340
Reid Spencer060d25d2004-06-29 23:29:38 +00001341 // Get the arg value from its slot if it exists, otherwise a placeholder
1342 ArgVec.push_back(getConstantValue(ArgTypeSlot, ArgValSlot));
1343 }
Misha Brukman8a96c532005-04-21 21:44:41 +00001344
Reid Spencer060d25d2004-06-29 23:29:38 +00001345 // Construct a ConstantExpr of the appropriate kind
1346 if (isExprNumArgs == 1) { // All one-operand expressions
Reid Spencer46b002c2004-07-11 17:28:43 +00001347 if (Opcode != Instruction::Cast)
Chris Lattner02dce162004-12-04 05:28:27 +00001348 error("Only cast instruction has one argument for ConstantExpr");
Reid Spencer46b002c2004-07-11 17:28:43 +00001349
Reid Spencer060d25d2004-06-29 23:29:38 +00001350 Constant* Result = ConstantExpr::getCast(ArgVec[0], getType(TypeID));
Reid Spencer04cde2c2004-07-04 11:33:49 +00001351 if (Handler) Handler->handleConstantExpression(Opcode, ArgVec, Result);
Reid Spencer060d25d2004-06-29 23:29:38 +00001352 return Result;
1353 } else if (Opcode == Instruction::GetElementPtr) { // GetElementPtr
1354 std::vector<Constant*> IdxList(ArgVec.begin()+1, ArgVec.end());
1355
1356 if (hasRestrictedGEPTypes) {
1357 const Type *BaseTy = ArgVec[0]->getType();
1358 generic_gep_type_iterator<std::vector<Constant*>::iterator>
1359 GTI = gep_type_begin(BaseTy, IdxList.begin(), IdxList.end()),
1360 E = gep_type_end(BaseTy, IdxList.begin(), IdxList.end());
1361 for (unsigned i = 0; GTI != E; ++GTI, ++i)
1362 if (isa<StructType>(*GTI)) {
1363 if (IdxList[i]->getType() != Type::UByteTy)
Reid Spencer24399722004-07-09 22:21:33 +00001364 error("Invalid index for getelementptr!");
Reid Spencer060d25d2004-06-29 23:29:38 +00001365 IdxList[i] = ConstantExpr::getCast(IdxList[i], Type::UIntTy);
1366 }
1367 }
1368
1369 Constant* Result = ConstantExpr::getGetElementPtr(ArgVec[0], IdxList);
Reid Spencer04cde2c2004-07-04 11:33:49 +00001370 if (Handler) Handler->handleConstantExpression(Opcode, ArgVec, Result);
Reid Spencer060d25d2004-06-29 23:29:38 +00001371 return Result;
1372 } else if (Opcode == Instruction::Select) {
Reid Spencer46b002c2004-07-11 17:28:43 +00001373 if (ArgVec.size() != 3)
1374 error("Select instruction must have three arguments.");
Misha Brukman8a96c532005-04-21 21:44:41 +00001375 Constant* Result = ConstantExpr::getSelect(ArgVec[0], ArgVec[1],
Reid Spencer04cde2c2004-07-04 11:33:49 +00001376 ArgVec[2]);
1377 if (Handler) Handler->handleConstantExpression(Opcode, ArgVec, Result);
Reid Spencer060d25d2004-06-29 23:29:38 +00001378 return Result;
1379 } else { // All other 2-operand expressions
1380 Constant* Result = ConstantExpr::get(Opcode, ArgVec[0], ArgVec[1]);
Reid Spencer04cde2c2004-07-04 11:33:49 +00001381 if (Handler) Handler->handleConstantExpression(Opcode, ArgVec, Result);
Reid Spencer060d25d2004-06-29 23:29:38 +00001382 return Result;
1383 }
1384 }
Misha Brukman8a96c532005-04-21 21:44:41 +00001385
Reid Spencer060d25d2004-06-29 23:29:38 +00001386 // Ok, not an ConstantExpr. We now know how to read the given type...
1387 const Type *Ty = getType(TypeID);
1388 switch (Ty->getTypeID()) {
1389 case Type::BoolTyID: {
1390 unsigned Val = read_vbr_uint();
Misha Brukman8a96c532005-04-21 21:44:41 +00001391 if (Val != 0 && Val != 1)
Reid Spencer24399722004-07-09 22:21:33 +00001392 error("Invalid boolean value read.");
Reid Spencer060d25d2004-06-29 23:29:38 +00001393 Constant* Result = ConstantBool::get(Val == 1);
Reid Spencer04cde2c2004-07-04 11:33:49 +00001394 if (Handler) Handler->handleConstantValue(Result);
Reid Spencer060d25d2004-06-29 23:29:38 +00001395 return Result;
1396 }
1397
1398 case Type::UByteTyID: // Unsigned integer types...
1399 case Type::UShortTyID:
1400 case Type::UIntTyID: {
1401 unsigned Val = read_vbr_uint();
Misha Brukman8a96c532005-04-21 21:44:41 +00001402 if (!ConstantUInt::isValueValidForType(Ty, Val))
Reid Spencer24399722004-07-09 22:21:33 +00001403 error("Invalid unsigned byte/short/int read.");
Reid Spencer060d25d2004-06-29 23:29:38 +00001404 Constant* Result = ConstantUInt::get(Ty, Val);
Reid Spencer04cde2c2004-07-04 11:33:49 +00001405 if (Handler) Handler->handleConstantValue(Result);
Reid Spencer060d25d2004-06-29 23:29:38 +00001406 return Result;
1407 }
1408
1409 case Type::ULongTyID: {
1410 Constant* Result = ConstantUInt::get(Ty, read_vbr_uint64());
Reid Spencer04cde2c2004-07-04 11:33:49 +00001411 if (Handler) Handler->handleConstantValue(Result);
Reid Spencer060d25d2004-06-29 23:29:38 +00001412 return Result;
1413 }
1414
1415 case Type::SByteTyID: // Signed integer types...
1416 case Type::ShortTyID:
1417 case Type::IntTyID: {
1418 case Type::LongTyID:
1419 int64_t Val = read_vbr_int64();
Misha Brukman8a96c532005-04-21 21:44:41 +00001420 if (!ConstantSInt::isValueValidForType(Ty, Val))
Reid Spencer24399722004-07-09 22:21:33 +00001421 error("Invalid signed byte/short/int/long read.");
Reid Spencer060d25d2004-06-29 23:29:38 +00001422 Constant* Result = ConstantSInt::get(Ty, Val);
Reid Spencer04cde2c2004-07-04 11:33:49 +00001423 if (Handler) Handler->handleConstantValue(Result);
Reid Spencer060d25d2004-06-29 23:29:38 +00001424 return Result;
1425 }
1426
1427 case Type::FloatTyID: {
Reid Spencer46b002c2004-07-11 17:28:43 +00001428 float Val;
1429 read_float(Val);
1430 Constant* Result = ConstantFP::get(Ty, Val);
Reid Spencer04cde2c2004-07-04 11:33:49 +00001431 if (Handler) Handler->handleConstantValue(Result);
Reid Spencer060d25d2004-06-29 23:29:38 +00001432 return Result;
1433 }
1434
1435 case Type::DoubleTyID: {
1436 double Val;
Reid Spencer46b002c2004-07-11 17:28:43 +00001437 read_double(Val);
Reid Spencer060d25d2004-06-29 23:29:38 +00001438 Constant* Result = ConstantFP::get(Ty, Val);
Reid Spencer04cde2c2004-07-04 11:33:49 +00001439 if (Handler) Handler->handleConstantValue(Result);
Reid Spencer060d25d2004-06-29 23:29:38 +00001440 return Result;
1441 }
1442
Reid Spencer060d25d2004-06-29 23:29:38 +00001443 case Type::ArrayTyID: {
1444 const ArrayType *AT = cast<ArrayType>(Ty);
1445 unsigned NumElements = AT->getNumElements();
1446 unsigned TypeSlot = getTypeSlot(AT->getElementType());
1447 std::vector<Constant*> Elements;
1448 Elements.reserve(NumElements);
1449 while (NumElements--) // Read all of the elements of the constant.
1450 Elements.push_back(getConstantValue(TypeSlot,
1451 read_vbr_uint()));
1452 Constant* Result = ConstantArray::get(AT, Elements);
Reid Spencer04cde2c2004-07-04 11:33:49 +00001453 if (Handler) Handler->handleConstantArray(AT, Elements, TypeSlot, Result);
Reid Spencer060d25d2004-06-29 23:29:38 +00001454 return Result;
1455 }
1456
1457 case Type::StructTyID: {
1458 const StructType *ST = cast<StructType>(Ty);
1459
1460 std::vector<Constant *> Elements;
1461 Elements.reserve(ST->getNumElements());
1462 for (unsigned i = 0; i != ST->getNumElements(); ++i)
1463 Elements.push_back(getConstantValue(ST->getElementType(i),
1464 read_vbr_uint()));
1465
1466 Constant* Result = ConstantStruct::get(ST, Elements);
Reid Spencer04cde2c2004-07-04 11:33:49 +00001467 if (Handler) Handler->handleConstantStruct(ST, Elements, Result);
Reid Spencer060d25d2004-06-29 23:29:38 +00001468 return Result;
Misha Brukman8a96c532005-04-21 21:44:41 +00001469 }
Reid Spencer060d25d2004-06-29 23:29:38 +00001470
Brian Gaeke715c90b2004-08-20 06:00:58 +00001471 case Type::PackedTyID: {
1472 const PackedType *PT = cast<PackedType>(Ty);
1473 unsigned NumElements = PT->getNumElements();
1474 unsigned TypeSlot = getTypeSlot(PT->getElementType());
1475 std::vector<Constant*> Elements;
1476 Elements.reserve(NumElements);
1477 while (NumElements--) // Read all of the elements of the constant.
1478 Elements.push_back(getConstantValue(TypeSlot,
1479 read_vbr_uint()));
1480 Constant* Result = ConstantPacked::get(PT, Elements);
1481 if (Handler) Handler->handleConstantPacked(PT, Elements, TypeSlot, Result);
1482 return Result;
1483 }
1484
Chris Lattner638c3812004-11-19 16:24:05 +00001485 case Type::PointerTyID: { // ConstantPointerRef value (backwards compat).
Reid Spencer060d25d2004-06-29 23:29:38 +00001486 const PointerType *PT = cast<PointerType>(Ty);
1487 unsigned Slot = read_vbr_uint();
Misha Brukman8a96c532005-04-21 21:44:41 +00001488
Reid Spencer060d25d2004-06-29 23:29:38 +00001489 // Check to see if we have already read this global variable...
1490 Value *Val = getValue(TypeID, Slot, false);
Reid Spencer060d25d2004-06-29 23:29:38 +00001491 if (Val) {
Chris Lattnerbcb11cf2004-07-27 02:34:49 +00001492 GlobalValue *GV = dyn_cast<GlobalValue>(Val);
1493 if (!GV) error("GlobalValue not in ValueTable!");
1494 if (Handler) Handler->handleConstantPointer(PT, Slot, GV);
1495 return GV;
Reid Spencer060d25d2004-06-29 23:29:38 +00001496 } else {
Reid Spencer24399722004-07-09 22:21:33 +00001497 error("Forward references are not allowed here.");
Reid Spencer060d25d2004-06-29 23:29:38 +00001498 }
Reid Spencer060d25d2004-06-29 23:29:38 +00001499 }
1500
1501 default:
Reid Spencer24399722004-07-09 22:21:33 +00001502 error("Don't know how to deserialize constant value of type '" +
Reid Spencer060d25d2004-06-29 23:29:38 +00001503 Ty->getDescription());
1504 break;
1505 }
Reid Spencer24399722004-07-09 22:21:33 +00001506 return 0;
Reid Spencer060d25d2004-06-29 23:29:38 +00001507}
1508
Misha Brukman8a96c532005-04-21 21:44:41 +00001509/// Resolve references for constants. This function resolves the forward
1510/// referenced constants in the ConstantFwdRefs map. It uses the
Reid Spencer04cde2c2004-07-04 11:33:49 +00001511/// replaceAllUsesWith method of Value class to substitute the placeholder
1512/// instance with the actual instance.
Chris Lattner389bd042004-12-09 06:19:44 +00001513void BytecodeReader::ResolveReferencesToConstant(Constant *NewV, unsigned Typ,
1514 unsigned Slot) {
Chris Lattner29b789b2003-11-19 17:27:18 +00001515 ConstantRefsType::iterator I =
Chris Lattner389bd042004-12-09 06:19:44 +00001516 ConstantFwdRefs.find(std::make_pair(Typ, Slot));
Chris Lattner29b789b2003-11-19 17:27:18 +00001517 if (I == ConstantFwdRefs.end()) return; // Never forward referenced?
Chris Lattner00950542001-06-06 20:29:01 +00001518
Chris Lattner29b789b2003-11-19 17:27:18 +00001519 Value *PH = I->second; // Get the placeholder...
1520 PH->replaceAllUsesWith(NewV);
1521 delete PH; // Delete the old placeholder
1522 ConstantFwdRefs.erase(I); // Remove the map entry for it
Vikram S. Advec1e4a812002-07-14 23:04:18 +00001523}
1524
Reid Spencer04cde2c2004-07-04 11:33:49 +00001525/// Parse the constant strings section.
Reid Spencer060d25d2004-06-29 23:29:38 +00001526void BytecodeReader::ParseStringConstants(unsigned NumEntries, ValueTable &Tab){
1527 for (; NumEntries; --NumEntries) {
Reid Spencer04cde2c2004-07-04 11:33:49 +00001528 unsigned Typ = 0;
Reid Spencer46b002c2004-07-11 17:28:43 +00001529 if (read_typeid(Typ))
Reid Spencer24399722004-07-09 22:21:33 +00001530 error("Invalid type (type type) for string constant");
Reid Spencer060d25d2004-06-29 23:29:38 +00001531 const Type *Ty = getType(Typ);
1532 if (!isa<ArrayType>(Ty))
Reid Spencer24399722004-07-09 22:21:33 +00001533 error("String constant data invalid!");
Misha Brukman8a96c532005-04-21 21:44:41 +00001534
Reid Spencer060d25d2004-06-29 23:29:38 +00001535 const ArrayType *ATy = cast<ArrayType>(Ty);
1536 if (ATy->getElementType() != Type::SByteTy &&
1537 ATy->getElementType() != Type::UByteTy)
Reid Spencer24399722004-07-09 22:21:33 +00001538 error("String constant data invalid!");
Misha Brukman8a96c532005-04-21 21:44:41 +00001539
Reid Spencer060d25d2004-06-29 23:29:38 +00001540 // Read character data. The type tells us how long the string is.
Misha Brukman8a96c532005-04-21 21:44:41 +00001541 char *Data = reinterpret_cast<char *>(alloca(ATy->getNumElements()));
Reid Spencer060d25d2004-06-29 23:29:38 +00001542 read_data(Data, Data+ATy->getNumElements());
Chris Lattner52e20b02003-03-19 20:54:26 +00001543
Reid Spencer060d25d2004-06-29 23:29:38 +00001544 std::vector<Constant*> Elements(ATy->getNumElements());
1545 if (ATy->getElementType() == Type::SByteTy)
1546 for (unsigned i = 0, e = ATy->getNumElements(); i != e; ++i)
1547 Elements[i] = ConstantSInt::get(Type::SByteTy, (signed char)Data[i]);
1548 else
1549 for (unsigned i = 0, e = ATy->getNumElements(); i != e; ++i)
1550 Elements[i] = ConstantUInt::get(Type::UByteTy, (unsigned char)Data[i]);
Misha Brukman12c29d12003-09-22 23:38:23 +00001551
Reid Spencer060d25d2004-06-29 23:29:38 +00001552 // Create the constant, inserting it as needed.
1553 Constant *C = ConstantArray::get(ATy, Elements);
1554 unsigned Slot = insertValue(C, Typ, Tab);
Chris Lattner389bd042004-12-09 06:19:44 +00001555 ResolveReferencesToConstant(C, Typ, Slot);
Reid Spencer04cde2c2004-07-04 11:33:49 +00001556 if (Handler) Handler->handleConstantString(cast<ConstantArray>(C));
Reid Spencer060d25d2004-06-29 23:29:38 +00001557 }
Misha Brukman12c29d12003-09-22 23:38:23 +00001558}
1559
Reid Spencer04cde2c2004-07-04 11:33:49 +00001560/// Parse the constant pool.
Misha Brukman8a96c532005-04-21 21:44:41 +00001561void BytecodeReader::ParseConstantPool(ValueTable &Tab,
Reid Spencer04cde2c2004-07-04 11:33:49 +00001562 TypeListTy &TypeTab,
Reid Spencer46b002c2004-07-11 17:28:43 +00001563 bool isFunction) {
Reid Spencer04cde2c2004-07-04 11:33:49 +00001564 if (Handler) Handler->handleGlobalConstantsBegin();
1565
1566 /// In LLVM 1.3 Type does not derive from Value so the types
1567 /// do not occupy a plane. Consequently, we read the types
1568 /// first in the constant pool.
Reid Spencer46b002c2004-07-11 17:28:43 +00001569 if (isFunction && !hasTypeDerivedFromValue) {
Reid Spencer04cde2c2004-07-04 11:33:49 +00001570 unsigned NumEntries = read_vbr_uint();
Reid Spencer46b002c2004-07-11 17:28:43 +00001571 ParseTypes(TypeTab, NumEntries);
Reid Spencer04cde2c2004-07-04 11:33:49 +00001572 }
1573
Reid Spencer46b002c2004-07-11 17:28:43 +00001574 while (moreInBlock()) {
Reid Spencer060d25d2004-06-29 23:29:38 +00001575 unsigned NumEntries = read_vbr_uint();
Reid Spencer04cde2c2004-07-04 11:33:49 +00001576 unsigned Typ = 0;
1577 bool isTypeType = read_typeid(Typ);
1578
1579 /// In LLVM 1.2 and before, Types were written to the
1580 /// bytecode file in the "Type Type" plane (#12).
1581 /// In 1.3 plane 12 is now the label plane. Handle this here.
Reid Spencer46b002c2004-07-11 17:28:43 +00001582 if (isTypeType) {
1583 ParseTypes(TypeTab, NumEntries);
Reid Spencer060d25d2004-06-29 23:29:38 +00001584 } else if (Typ == Type::VoidTyID) {
Reid Spencer04cde2c2004-07-04 11:33:49 +00001585 /// Use of Type::VoidTyID is a misnomer. It actually means
1586 /// that the following plane is constant strings
Reid Spencer060d25d2004-06-29 23:29:38 +00001587 assert(&Tab == &ModuleValues && "Cannot read strings in functions!");
1588 ParseStringConstants(NumEntries, Tab);
1589 } else {
1590 for (unsigned i = 0; i < NumEntries; ++i) {
1591 Constant *C = ParseConstantValue(Typ);
1592 assert(C && "ParseConstantValue returned NULL!");
1593 unsigned Slot = insertValue(C, Typ, Tab);
Chris Lattner29b789b2003-11-19 17:27:18 +00001594
Reid Spencer060d25d2004-06-29 23:29:38 +00001595 // If we are reading a function constant table, make sure that we adjust
1596 // the slot number to be the real global constant number.
1597 //
1598 if (&Tab != &ModuleValues && Typ < ModuleValues.size() &&
1599 ModuleValues[Typ])
1600 Slot += ModuleValues[Typ]->size();
Chris Lattner389bd042004-12-09 06:19:44 +00001601 ResolveReferencesToConstant(C, Typ, Slot);
Reid Spencer060d25d2004-06-29 23:29:38 +00001602 }
1603 }
1604 }
Chris Lattner02dce162004-12-04 05:28:27 +00001605
1606 // After we have finished parsing the constant pool, we had better not have
1607 // any dangling references left.
Reid Spencer3c391272004-12-04 22:19:53 +00001608 if (!ConstantFwdRefs.empty()) {
Reid Spencer3c391272004-12-04 22:19:53 +00001609 ConstantRefsType::const_iterator I = ConstantFwdRefs.begin();
Reid Spencer3c391272004-12-04 22:19:53 +00001610 Constant* missingConst = I->second;
Misha Brukman8a96c532005-04-21 21:44:41 +00001611 error(utostr(ConstantFwdRefs.size()) +
1612 " unresolved constant reference exist. First one is '" +
1613 missingConst->getName() + "' of type '" +
Chris Lattner389bd042004-12-09 06:19:44 +00001614 missingConst->getType()->getDescription() + "'.");
Reid Spencer3c391272004-12-04 22:19:53 +00001615 }
Chris Lattner02dce162004-12-04 05:28:27 +00001616
Reid Spencer060d25d2004-06-29 23:29:38 +00001617 checkPastBlockEnd("Constant Pool");
Reid Spencer04cde2c2004-07-04 11:33:49 +00001618 if (Handler) Handler->handleGlobalConstantsEnd();
Reid Spencer060d25d2004-06-29 23:29:38 +00001619}
Chris Lattner00950542001-06-06 20:29:01 +00001620
Reid Spencer04cde2c2004-07-04 11:33:49 +00001621/// Parse the contents of a function. Note that this function can be
1622/// called lazily by materializeFunction
1623/// @see materializeFunction
Reid Spencer46b002c2004-07-11 17:28:43 +00001624void BytecodeReader::ParseFunctionBody(Function* F) {
Reid Spencer060d25d2004-06-29 23:29:38 +00001625
1626 unsigned FuncSize = BlockEnd - At;
Chris Lattnere3869c82003-04-16 21:16:05 +00001627 GlobalValue::LinkageTypes Linkage = GlobalValue::ExternalLinkage;
1628
Reid Spencer060d25d2004-06-29 23:29:38 +00001629 unsigned LinkageType = read_vbr_uint();
Chris Lattnerc08912f2004-01-14 16:44:44 +00001630 switch (LinkageType) {
1631 case 0: Linkage = GlobalValue::ExternalLinkage; break;
1632 case 1: Linkage = GlobalValue::WeakLinkage; break;
1633 case 2: Linkage = GlobalValue::AppendingLinkage; break;
1634 case 3: Linkage = GlobalValue::InternalLinkage; break;
1635 case 4: Linkage = GlobalValue::LinkOnceLinkage; break;
Reid Spencer060d25d2004-06-29 23:29:38 +00001636 default:
Reid Spencer24399722004-07-09 22:21:33 +00001637 error("Invalid linkage type for Function.");
Reid Spencer060d25d2004-06-29 23:29:38 +00001638 Linkage = GlobalValue::InternalLinkage;
1639 break;
Chris Lattnere3869c82003-04-16 21:16:05 +00001640 }
Chris Lattnerd23b1d32001-11-26 18:56:10 +00001641
Reid Spencer46b002c2004-07-11 17:28:43 +00001642 F->setLinkage(Linkage);
Reid Spencer04cde2c2004-07-04 11:33:49 +00001643 if (Handler) Handler->handleFunctionBegin(F,FuncSize);
Chris Lattner00950542001-06-06 20:29:01 +00001644
Chris Lattner4ee8ef22003-10-08 22:52:54 +00001645 // Keep track of how many basic blocks we have read in...
1646 unsigned BlockNum = 0;
Chris Lattner89e02532004-01-18 21:08:15 +00001647 bool InsertedArguments = false;
Chris Lattner4ee8ef22003-10-08 22:52:54 +00001648
Reid Spencer060d25d2004-06-29 23:29:38 +00001649 BufPtr MyEnd = BlockEnd;
Reid Spencer46b002c2004-07-11 17:28:43 +00001650 while (At < MyEnd) {
Chris Lattner00950542001-06-06 20:29:01 +00001651 unsigned Type, Size;
Reid Spencer060d25d2004-06-29 23:29:38 +00001652 BufPtr OldAt = At;
1653 read_block(Type, Size);
Chris Lattner00950542001-06-06 20:29:01 +00001654
1655 switch (Type) {
Reid Spencerad89bd62004-07-25 18:07:36 +00001656 case BytecodeFormat::ConstantPoolBlockID:
Chris Lattner89e02532004-01-18 21:08:15 +00001657 if (!InsertedArguments) {
1658 // Insert arguments into the value table before we parse the first basic
1659 // block in the function, but after we potentially read in the
1660 // compaction table.
Reid Spencer04cde2c2004-07-04 11:33:49 +00001661 insertArguments(F);
Chris Lattner89e02532004-01-18 21:08:15 +00001662 InsertedArguments = true;
1663 }
1664
Reid Spencer04cde2c2004-07-04 11:33:49 +00001665 ParseConstantPool(FunctionValues, FunctionTypes, true);
Chris Lattner00950542001-06-06 20:29:01 +00001666 break;
1667
Reid Spencerad89bd62004-07-25 18:07:36 +00001668 case BytecodeFormat::CompactionTableBlockID:
Reid Spencer060d25d2004-06-29 23:29:38 +00001669 ParseCompactionTable();
Chris Lattner89e02532004-01-18 21:08:15 +00001670 break;
1671
Chris Lattner00950542001-06-06 20:29:01 +00001672 case BytecodeFormat::BasicBlock: {
Chris Lattner89e02532004-01-18 21:08:15 +00001673 if (!InsertedArguments) {
1674 // Insert arguments into the value table before we parse the first basic
1675 // block in the function, but after we potentially read in the
1676 // compaction table.
Reid Spencer04cde2c2004-07-04 11:33:49 +00001677 insertArguments(F);
Chris Lattner89e02532004-01-18 21:08:15 +00001678 InsertedArguments = true;
1679 }
1680
Reid Spencer060d25d2004-06-29 23:29:38 +00001681 BasicBlock *BB = ParseBasicBlock(BlockNum++);
Chris Lattner4ee8ef22003-10-08 22:52:54 +00001682 F->getBasicBlockList().push_back(BB);
Chris Lattner00950542001-06-06 20:29:01 +00001683 break;
1684 }
1685
Reid Spencerad89bd62004-07-25 18:07:36 +00001686 case BytecodeFormat::InstructionListBlockID: {
Chris Lattner89e02532004-01-18 21:08:15 +00001687 // Insert arguments into the value table before we parse the instruction
1688 // list for the function, but after we potentially read in the compaction
1689 // table.
1690 if (!InsertedArguments) {
Reid Spencer04cde2c2004-07-04 11:33:49 +00001691 insertArguments(F);
Chris Lattner89e02532004-01-18 21:08:15 +00001692 InsertedArguments = true;
1693 }
1694
Misha Brukman8a96c532005-04-21 21:44:41 +00001695 if (BlockNum)
Reid Spencer24399722004-07-09 22:21:33 +00001696 error("Already parsed basic blocks!");
Reid Spencer060d25d2004-06-29 23:29:38 +00001697 BlockNum = ParseInstructionList(F);
Chris Lattner8d1dbd22003-12-01 07:05:31 +00001698 break;
1699 }
1700
Reid Spencerad89bd62004-07-25 18:07:36 +00001701 case BytecodeFormat::SymbolTableBlockID:
Reid Spencer060d25d2004-06-29 23:29:38 +00001702 ParseSymbolTable(F, &F->getSymbolTable());
Chris Lattner00950542001-06-06 20:29:01 +00001703 break;
1704
1705 default:
Reid Spencer060d25d2004-06-29 23:29:38 +00001706 At += Size;
Misha Brukman8a96c532005-04-21 21:44:41 +00001707 if (OldAt > At)
Reid Spencer24399722004-07-09 22:21:33 +00001708 error("Wrapped around reading bytecode.");
Chris Lattner00950542001-06-06 20:29:01 +00001709 break;
1710 }
Reid Spencer060d25d2004-06-29 23:29:38 +00001711 BlockEnd = MyEnd;
Chris Lattner1d670cc2001-09-07 16:37:43 +00001712
Misha Brukman12c29d12003-09-22 23:38:23 +00001713 // Malformed bc file if read past end of block.
Reid Spencer060d25d2004-06-29 23:29:38 +00001714 align32();
Chris Lattner00950542001-06-06 20:29:01 +00001715 }
1716
Chris Lattner4ee8ef22003-10-08 22:52:54 +00001717 // Make sure there were no references to non-existant basic blocks.
1718 if (BlockNum != ParsedBasicBlocks.size())
Reid Spencer24399722004-07-09 22:21:33 +00001719 error("Illegal basic block operand reference");
Reid Spencer060d25d2004-06-29 23:29:38 +00001720
Chris Lattner4ee8ef22003-10-08 22:52:54 +00001721 ParsedBasicBlocks.clear();
1722
Chris Lattner97330cf2003-10-09 23:10:14 +00001723 // Resolve forward references. Replace any uses of a forward reference value
1724 // with the real value.
Chris Lattner8eb10ce2003-10-09 06:05:40 +00001725 while (!ForwardReferences.empty()) {
Chris Lattnerc4d69162004-12-09 04:51:50 +00001726 std::map<std::pair<unsigned,unsigned>, Value*>::iterator
1727 I = ForwardReferences.begin();
1728 Value *V = getValue(I->first.first, I->first.second, false);
Chris Lattner8eb10ce2003-10-09 06:05:40 +00001729 Value *PlaceHolder = I->second;
Chris Lattnerc4d69162004-12-09 04:51:50 +00001730 PlaceHolder->replaceAllUsesWith(V);
Chris Lattner8eb10ce2003-10-09 06:05:40 +00001731 ForwardReferences.erase(I);
Chris Lattner8eb10ce2003-10-09 06:05:40 +00001732 delete PlaceHolder;
Chris Lattner6e448022003-10-08 21:51:46 +00001733 }
Chris Lattner00950542001-06-06 20:29:01 +00001734
Misha Brukman12c29d12003-09-22 23:38:23 +00001735 // Clear out function-level types...
Reid Spencer060d25d2004-06-29 23:29:38 +00001736 FunctionTypes.clear();
1737 CompactionTypes.clear();
1738 CompactionValues.clear();
1739 freeTable(FunctionValues);
1740
Reid Spencer04cde2c2004-07-04 11:33:49 +00001741 if (Handler) Handler->handleFunctionEnd(F);
Chris Lattner00950542001-06-06 20:29:01 +00001742}
1743
Reid Spencer04cde2c2004-07-04 11:33:49 +00001744/// This function parses LLVM functions lazily. It obtains the type of the
1745/// function and records where the body of the function is in the bytecode
Misha Brukman8a96c532005-04-21 21:44:41 +00001746/// buffer. The caller can then use the ParseNextFunction and
Reid Spencer04cde2c2004-07-04 11:33:49 +00001747/// ParseAllFunctionBodies to get handler events for the functions.
Reid Spencer060d25d2004-06-29 23:29:38 +00001748void BytecodeReader::ParseFunctionLazily() {
1749 if (FunctionSignatureList.empty())
Reid Spencer24399722004-07-09 22:21:33 +00001750 error("FunctionSignatureList empty!");
Chris Lattner89e02532004-01-18 21:08:15 +00001751
Reid Spencer060d25d2004-06-29 23:29:38 +00001752 Function *Func = FunctionSignatureList.back();
1753 FunctionSignatureList.pop_back();
Chris Lattner24102432004-01-18 22:35:34 +00001754
Reid Spencer060d25d2004-06-29 23:29:38 +00001755 // Save the information for future reading of the function
1756 LazyFunctionLoadMap[Func] = LazyFunctionInfo(BlockStart, BlockEnd);
Chris Lattner89e02532004-01-18 21:08:15 +00001757
Misha Brukmana3e6ad62004-11-14 21:02:55 +00001758 // This function has a body but it's not loaded so it appears `External'.
1759 // Mark it as a `Ghost' instead to notify the users that it has a body.
1760 Func->setLinkage(GlobalValue::GhostLinkage);
1761
Reid Spencer060d25d2004-06-29 23:29:38 +00001762 // Pretend we've `parsed' this function
1763 At = BlockEnd;
1764}
Chris Lattner89e02532004-01-18 21:08:15 +00001765
Misha Brukman8a96c532005-04-21 21:44:41 +00001766/// The ParserFunction method lazily parses one function. Use this method to
1767/// casue the parser to parse a specific function in the module. Note that
1768/// this will remove the function from what is to be included by
Reid Spencer04cde2c2004-07-04 11:33:49 +00001769/// ParseAllFunctionBodies.
1770/// @see ParseAllFunctionBodies
1771/// @see ParseBytecode
Reid Spencer060d25d2004-06-29 23:29:38 +00001772void BytecodeReader::ParseFunction(Function* Func) {
1773 // Find {start, end} pointers and slot in the map. If not there, we're done.
1774 LazyFunctionMap::iterator Fi = LazyFunctionLoadMap.find(Func);
Chris Lattner89e02532004-01-18 21:08:15 +00001775
Reid Spencer060d25d2004-06-29 23:29:38 +00001776 // Make sure we found it
Reid Spencer46b002c2004-07-11 17:28:43 +00001777 if (Fi == LazyFunctionLoadMap.end()) {
Reid Spencer24399722004-07-09 22:21:33 +00001778 error("Unrecognized function of type " + Func->getType()->getDescription());
Reid Spencer060d25d2004-06-29 23:29:38 +00001779 return;
Chris Lattner89e02532004-01-18 21:08:15 +00001780 }
1781
Reid Spencer060d25d2004-06-29 23:29:38 +00001782 BlockStart = At = Fi->second.Buf;
1783 BlockEnd = Fi->second.EndBuf;
Reid Spencer24399722004-07-09 22:21:33 +00001784 assert(Fi->first == Func && "Found wrong function?");
Reid Spencer060d25d2004-06-29 23:29:38 +00001785
1786 LazyFunctionLoadMap.erase(Fi);
1787
Reid Spencer46b002c2004-07-11 17:28:43 +00001788 this->ParseFunctionBody(Func);
Chris Lattner89e02532004-01-18 21:08:15 +00001789}
1790
Reid Spencer04cde2c2004-07-04 11:33:49 +00001791/// The ParseAllFunctionBodies method parses through all the previously
1792/// unparsed functions in the bytecode file. If you want to completely parse
1793/// a bytecode file, this method should be called after Parsebytecode because
1794/// Parsebytecode only records the locations in the bytecode file of where
1795/// the function definitions are located. This function uses that information
1796/// to materialize the functions.
1797/// @see ParseBytecode
Reid Spencer060d25d2004-06-29 23:29:38 +00001798void BytecodeReader::ParseAllFunctionBodies() {
1799 LazyFunctionMap::iterator Fi = LazyFunctionLoadMap.begin();
1800 LazyFunctionMap::iterator Fe = LazyFunctionLoadMap.end();
Chris Lattner89e02532004-01-18 21:08:15 +00001801
Reid Spencer46b002c2004-07-11 17:28:43 +00001802 while (Fi != Fe) {
Reid Spencer060d25d2004-06-29 23:29:38 +00001803 Function* Func = Fi->first;
1804 BlockStart = At = Fi->second.Buf;
1805 BlockEnd = Fi->second.EndBuf;
Chris Lattnerb52f1c22005-02-13 17:48:18 +00001806 ParseFunctionBody(Func);
Reid Spencer060d25d2004-06-29 23:29:38 +00001807 ++Fi;
1808 }
Chris Lattnerb52f1c22005-02-13 17:48:18 +00001809 LazyFunctionLoadMap.clear();
Reid Spencer060d25d2004-06-29 23:29:38 +00001810}
Chris Lattner89e02532004-01-18 21:08:15 +00001811
Reid Spencer04cde2c2004-07-04 11:33:49 +00001812/// Parse the global type list
Reid Spencer060d25d2004-06-29 23:29:38 +00001813void BytecodeReader::ParseGlobalTypes() {
Reid Spencer04cde2c2004-07-04 11:33:49 +00001814 // Read the number of types
1815 unsigned NumEntries = read_vbr_uint();
Reid Spencer011bed52004-07-09 21:13:53 +00001816
1817 // Ignore the type plane identifier for types if the bc file is pre 1.3
1818 if (hasTypeDerivedFromValue)
1819 read_vbr_uint();
1820
Reid Spencer46b002c2004-07-11 17:28:43 +00001821 ParseTypes(ModuleTypes, NumEntries);
Reid Spencer060d25d2004-06-29 23:29:38 +00001822}
1823
Reid Spencer04cde2c2004-07-04 11:33:49 +00001824/// Parse the Global info (types, global vars, constants)
Reid Spencer060d25d2004-06-29 23:29:38 +00001825void BytecodeReader::ParseModuleGlobalInfo() {
1826
Reid Spencer04cde2c2004-07-04 11:33:49 +00001827 if (Handler) Handler->handleModuleGlobalsBegin();
Chris Lattner00950542001-06-06 20:29:01 +00001828
Chris Lattner70cc3392001-09-10 07:58:01 +00001829 // Read global variables...
Reid Spencer060d25d2004-06-29 23:29:38 +00001830 unsigned VarType = read_vbr_uint();
Chris Lattner70cc3392001-09-10 07:58:01 +00001831 while (VarType != Type::VoidTyID) { // List is terminated by Void
Chris Lattner9dd87702004-04-03 23:43:42 +00001832 // VarType Fields: bit0 = isConstant, bit1 = hasInitializer, bit2,3,4 =
1833 // Linkage, bit4+ = slot#
1834 unsigned SlotNo = VarType >> 5;
Reid Spencer46b002c2004-07-11 17:28:43 +00001835 if (sanitizeTypeId(SlotNo))
Reid Spencer24399722004-07-09 22:21:33 +00001836 error("Invalid type (type type) for global var!");
Chris Lattner9dd87702004-04-03 23:43:42 +00001837 unsigned LinkageID = (VarType >> 2) & 7;
Reid Spencer060d25d2004-06-29 23:29:38 +00001838 bool isConstant = VarType & 1;
1839 bool hasInitializer = VarType & 2;
Chris Lattnere3869c82003-04-16 21:16:05 +00001840 GlobalValue::LinkageTypes Linkage;
1841
Chris Lattnerc08912f2004-01-14 16:44:44 +00001842 switch (LinkageID) {
Chris Lattnerc08912f2004-01-14 16:44:44 +00001843 case 0: Linkage = GlobalValue::ExternalLinkage; break;
1844 case 1: Linkage = GlobalValue::WeakLinkage; break;
1845 case 2: Linkage = GlobalValue::AppendingLinkage; break;
1846 case 3: Linkage = GlobalValue::InternalLinkage; break;
1847 case 4: Linkage = GlobalValue::LinkOnceLinkage; break;
Misha Brukman8a96c532005-04-21 21:44:41 +00001848 default:
Reid Spencer24399722004-07-09 22:21:33 +00001849 error("Unknown linkage type: " + utostr(LinkageID));
Reid Spencer060d25d2004-06-29 23:29:38 +00001850 Linkage = GlobalValue::InternalLinkage;
1851 break;
Chris Lattnere3869c82003-04-16 21:16:05 +00001852 }
1853
1854 const Type *Ty = getType(SlotNo);
Reid Spencer46b002c2004-07-11 17:28:43 +00001855 if (!Ty) {
Reid Spencer24399722004-07-09 22:21:33 +00001856 error("Global has no type! SlotNo=" + utostr(SlotNo));
Reid Spencer060d25d2004-06-29 23:29:38 +00001857 }
1858
Reid Spencer46b002c2004-07-11 17:28:43 +00001859 if (!isa<PointerType>(Ty)) {
Reid Spencer24399722004-07-09 22:21:33 +00001860 error("Global not a pointer type! Ty= " + Ty->getDescription());
Reid Spencer060d25d2004-06-29 23:29:38 +00001861 }
Chris Lattner70cc3392001-09-10 07:58:01 +00001862
Chris Lattner52e20b02003-03-19 20:54:26 +00001863 const Type *ElTy = cast<PointerType>(Ty)->getElementType();
Chris Lattnerd70684f2001-09-18 04:01:05 +00001864
Chris Lattner70cc3392001-09-10 07:58:01 +00001865 // Create the global variable...
Reid Spencer060d25d2004-06-29 23:29:38 +00001866 GlobalVariable *GV = new GlobalVariable(ElTy, isConstant, Linkage,
Chris Lattner52e20b02003-03-19 20:54:26 +00001867 0, "", TheModule);
Chris Lattner29b789b2003-11-19 17:27:18 +00001868 insertValue(GV, SlotNo, ModuleValues);
Chris Lattner05950c32001-10-13 06:47:01 +00001869
Reid Spencer060d25d2004-06-29 23:29:38 +00001870 unsigned initSlot = 0;
Misha Brukman8a96c532005-04-21 21:44:41 +00001871 if (hasInitializer) {
Reid Spencer060d25d2004-06-29 23:29:38 +00001872 initSlot = read_vbr_uint();
1873 GlobalInits.push_back(std::make_pair(GV, initSlot));
1874 }
1875
1876 // Notify handler about the global value.
Chris Lattner4a242b32004-10-14 01:39:18 +00001877 if (Handler)
1878 Handler->handleGlobalVariable(ElTy, isConstant, Linkage, SlotNo,initSlot);
Reid Spencer060d25d2004-06-29 23:29:38 +00001879
1880 // Get next item
1881 VarType = read_vbr_uint();
Chris Lattner70cc3392001-09-10 07:58:01 +00001882 }
1883
Chris Lattner52e20b02003-03-19 20:54:26 +00001884 // Read the function objects for all of the functions that are coming
Chris Lattnera79e7cc2004-10-16 18:18:16 +00001885 unsigned FnSignature = read_vbr_uint();
Reid Spencer24399722004-07-09 22:21:33 +00001886
Chris Lattnera79e7cc2004-10-16 18:18:16 +00001887 if (hasNoFlagsForFunctions)
1888 FnSignature = (FnSignature << 5) + 1;
1889
1890 // List is terminated by VoidTy.
1891 while ((FnSignature >> 5) != Type::VoidTyID) {
1892 const Type *Ty = getType(FnSignature >> 5);
Chris Lattner927b1852003-10-09 20:22:47 +00001893 if (!isa<PointerType>(Ty) ||
Reid Spencer060d25d2004-06-29 23:29:38 +00001894 !isa<FunctionType>(cast<PointerType>(Ty)->getElementType())) {
Misha Brukman8a96c532005-04-21 21:44:41 +00001895 error("Function not a pointer to function type! Ty = " +
Reid Spencer46b002c2004-07-11 17:28:43 +00001896 Ty->getDescription());
Reid Spencer060d25d2004-06-29 23:29:38 +00001897 }
Chris Lattner8cdc6b72002-10-23 00:51:54 +00001898
Chris Lattner2a7b6ba2003-03-06 17:15:19 +00001899 // We create functions by passing the underlying FunctionType to create...
Misha Brukman8a96c532005-04-21 21:44:41 +00001900 const FunctionType* FTy =
Reid Spencer060d25d2004-06-29 23:29:38 +00001901 cast<FunctionType>(cast<PointerType>(Ty)->getElementType());
Chris Lattner00950542001-06-06 20:29:01 +00001902
Chris Lattnera79e7cc2004-10-16 18:18:16 +00001903
Chris Lattner18549c22004-11-15 21:43:03 +00001904 // Insert the place holder.
Misha Brukman8a96c532005-04-21 21:44:41 +00001905 Function* Func = new Function(FTy, GlobalValue::ExternalLinkage,
Reid Spencer04cde2c2004-07-04 11:33:49 +00001906 "", TheModule);
Chris Lattnera79e7cc2004-10-16 18:18:16 +00001907 insertValue(Func, FnSignature >> 5, ModuleValues);
1908
1909 // Flags are not used yet.
Chris Lattner97fbc502004-11-15 22:38:52 +00001910 unsigned Flags = FnSignature & 31;
Chris Lattner00950542001-06-06 20:29:01 +00001911
Chris Lattner97fbc502004-11-15 22:38:52 +00001912 // Save this for later so we know type of lazily instantiated functions.
1913 // Note that known-external functions do not have FunctionInfo blocks, so we
1914 // do not add them to the FunctionSignatureList.
1915 if ((Flags & (1 << 4)) == 0)
1916 FunctionSignatureList.push_back(Func);
Chris Lattner52e20b02003-03-19 20:54:26 +00001917
Chris Lattner479ffeb2005-05-06 20:42:57 +00001918 // Look at the low bits. If there is a calling conv here, apply it,
1919 // read it as a vbr.
1920 Flags &= 15;
1921 if (Flags)
1922 Func->setCallingConv(Flags-1);
1923 else
1924 Func->setCallingConv(read_vbr_uint());
1925
Reid Spencer04cde2c2004-07-04 11:33:49 +00001926 if (Handler) Handler->handleFunctionDeclaration(Func);
Reid Spencer060d25d2004-06-29 23:29:38 +00001927
Chris Lattnera79e7cc2004-10-16 18:18:16 +00001928 // Get the next function signature.
1929 FnSignature = read_vbr_uint();
1930 if (hasNoFlagsForFunctions)
1931 FnSignature = (FnSignature << 5) + 1;
Chris Lattner00950542001-06-06 20:29:01 +00001932 }
1933
Misha Brukman8a96c532005-04-21 21:44:41 +00001934 // Now that the function signature list is set up, reverse it so that we can
Chris Lattner74734132002-08-17 22:01:27 +00001935 // remove elements efficiently from the back of the vector.
1936 std::reverse(FunctionSignatureList.begin(), FunctionSignatureList.end());
Chris Lattner00950542001-06-06 20:29:01 +00001937
Reid Spencerad89bd62004-07-25 18:07:36 +00001938 // If this bytecode format has dependent library information in it ..
1939 if (!hasNoDependentLibraries) {
1940 // Read in the number of dependent library items that follow
1941 unsigned num_dep_libs = read_vbr_uint();
1942 std::string dep_lib;
1943 while( num_dep_libs-- ) {
1944 dep_lib = read_str();
Reid Spencerada16182004-07-25 21:36:26 +00001945 TheModule->addLibrary(dep_lib);
Reid Spencer5b472d92004-08-21 20:49:23 +00001946 if (Handler)
1947 Handler->handleDependentLibrary(dep_lib);
Reid Spencerad89bd62004-07-25 18:07:36 +00001948 }
1949
Reid Spencer5b472d92004-08-21 20:49:23 +00001950
Reid Spencerad89bd62004-07-25 18:07:36 +00001951 // Read target triple and place into the module
1952 std::string triple = read_str();
1953 TheModule->setTargetTriple(triple);
Reid Spencer5b472d92004-08-21 20:49:23 +00001954 if (Handler)
1955 Handler->handleTargetTriple(triple);
Reid Spencerad89bd62004-07-25 18:07:36 +00001956 }
1957
1958 if (hasInconsistentModuleGlobalInfo)
1959 align32();
1960
Chris Lattner00950542001-06-06 20:29:01 +00001961 // This is for future proofing... in the future extra fields may be added that
1962 // we don't understand, so we transparently ignore them.
1963 //
Reid Spencer060d25d2004-06-29 23:29:38 +00001964 At = BlockEnd;
1965
Reid Spencer04cde2c2004-07-04 11:33:49 +00001966 if (Handler) Handler->handleModuleGlobalsEnd();
Chris Lattner00950542001-06-06 20:29:01 +00001967}
1968
Reid Spencer04cde2c2004-07-04 11:33:49 +00001969/// Parse the version information and decode it by setting flags on the
1970/// Reader that enable backward compatibility of the reader.
Reid Spencer060d25d2004-06-29 23:29:38 +00001971void BytecodeReader::ParseVersionInfo() {
1972 unsigned Version = read_vbr_uint();
Chris Lattner036b8aa2003-03-06 17:55:45 +00001973
1974 // Unpack version number: low four bits are for flags, top bits = version
Chris Lattnerd445c6b2003-08-24 13:47:36 +00001975 Module::Endianness Endianness;
1976 Module::PointerSize PointerSize;
1977 Endianness = (Version & 1) ? Module::BigEndian : Module::LittleEndian;
1978 PointerSize = (Version & 2) ? Module::Pointer64 : Module::Pointer32;
1979
1980 bool hasNoEndianness = Version & 4;
1981 bool hasNoPointerSize = Version & 8;
Misha Brukman8a96c532005-04-21 21:44:41 +00001982
Chris Lattnerd445c6b2003-08-24 13:47:36 +00001983 RevisionNum = Version >> 4;
Chris Lattnere3869c82003-04-16 21:16:05 +00001984
1985 // Default values for the current bytecode version
Chris Lattner44d0eeb2004-01-15 17:55:01 +00001986 hasInconsistentModuleGlobalInfo = false;
Chris Lattner80b97342004-01-17 23:25:43 +00001987 hasExplicitPrimitiveZeros = false;
Chris Lattner5fa428f2004-04-05 01:27:26 +00001988 hasRestrictedGEPTypes = false;
Reid Spencer04cde2c2004-07-04 11:33:49 +00001989 hasTypeDerivedFromValue = false;
Reid Spencerad89bd62004-07-25 18:07:36 +00001990 hasLongBlockHeaders = false;
Reid Spencerad89bd62004-07-25 18:07:36 +00001991 has32BitTypes = false;
1992 hasNoDependentLibraries = false;
Reid Spencer38d54be2004-08-17 07:45:14 +00001993 hasAlignment = false;
Chris Lattnera79e7cc2004-10-16 18:18:16 +00001994 hasNoUndefValue = false;
1995 hasNoFlagsForFunctions = false;
1996 hasNoUnreachableInst = false;
Chris Lattner036b8aa2003-03-06 17:55:45 +00001997
1998 switch (RevisionNum) {
Reid Spencer5b472d92004-08-21 20:49:23 +00001999 case 0: // LLVM 1.0, 1.1 (Released)
Chris Lattner9e893e82004-01-14 23:35:21 +00002000 // Base LLVM 1.0 bytecode format.
Chris Lattner44d0eeb2004-01-15 17:55:01 +00002001 hasInconsistentModuleGlobalInfo = true;
Chris Lattner80b97342004-01-17 23:25:43 +00002002 hasExplicitPrimitiveZeros = true;
Reid Spencer04cde2c2004-07-04 11:33:49 +00002003
Chris Lattner80b97342004-01-17 23:25:43 +00002004 // FALL THROUGH
Reid Spencer5b472d92004-08-21 20:49:23 +00002005
2006 case 1: // LLVM 1.2 (Released)
Chris Lattner9e893e82004-01-14 23:35:21 +00002007 // LLVM 1.2 added explicit support for emitting strings efficiently.
Chris Lattner44d0eeb2004-01-15 17:55:01 +00002008
2009 // Also, it fixed the problem where the size of the ModuleGlobalInfo block
2010 // included the size for the alignment at the end, where the rest of the
2011 // blocks did not.
Chris Lattner5fa428f2004-04-05 01:27:26 +00002012
2013 // LLVM 1.2 and before required that GEP indices be ubyte constants for
2014 // structures and longs for sequential types.
2015 hasRestrictedGEPTypes = true;
2016
Reid Spencer04cde2c2004-07-04 11:33:49 +00002017 // LLVM 1.2 and before had the Type class derive from Value class. This
2018 // changed in release 1.3 and consequently LLVM 1.3 bytecode files are
Misha Brukman8a96c532005-04-21 21:44:41 +00002019 // written differently because Types can no longer be part of the
Reid Spencer04cde2c2004-07-04 11:33:49 +00002020 // type planes for Values.
2021 hasTypeDerivedFromValue = true;
2022
Chris Lattner5fa428f2004-04-05 01:27:26 +00002023 // FALL THROUGH
Misha Brukman8a96c532005-04-21 21:44:41 +00002024
Reid Spencer5b472d92004-08-21 20:49:23 +00002025 case 2: // 1.2.5 (Not Released)
Reid Spencerad89bd62004-07-25 18:07:36 +00002026
Reid Spencer5b472d92004-08-21 20:49:23 +00002027 // LLVM 1.2 and earlier had two-word block headers. This is a bit wasteful,
Chris Lattner4a242b32004-10-14 01:39:18 +00002028 // especially for small files where the 8 bytes per block is a large
2029 // fraction of the total block size. In LLVM 1.3, the block type and length
2030 // are compressed into a single 32-bit unsigned integer. 27 bits for length,
2031 // 5 bits for block type.
Reid Spencerad89bd62004-07-25 18:07:36 +00002032 hasLongBlockHeaders = true;
2033
Reid Spencer5b472d92004-08-21 20:49:23 +00002034 // LLVM 1.2 and earlier wrote type slot numbers as vbr_uint32. In LLVM 1.3
Chris Lattner4a242b32004-10-14 01:39:18 +00002035 // this has been reduced to vbr_uint24. It shouldn't make much difference
2036 // since we haven't run into a module with > 24 million types, but for
2037 // safety the 24-bit restriction has been enforced in 1.3 to free some bits
2038 // in various places and to ensure consistency.
Reid Spencerad89bd62004-07-25 18:07:36 +00002039 has32BitTypes = true;
2040
Misha Brukman8a96c532005-04-21 21:44:41 +00002041 // LLVM 1.2 and earlier did not provide a target triple nor a list of
Reid Spencer5b472d92004-08-21 20:49:23 +00002042 // libraries on which the bytecode is dependent. LLVM 1.3 provides these
2043 // features, for use in future versions of LLVM.
Reid Spencerad89bd62004-07-25 18:07:36 +00002044 hasNoDependentLibraries = true;
2045
2046 // FALL THROUGH
Reid Spencer5b472d92004-08-21 20:49:23 +00002047
2048 case 3: // LLVM 1.3 (Released)
2049 // LLVM 1.3 and earlier caused alignment bytes to be written on some block
Misha Brukman8a96c532005-04-21 21:44:41 +00002050 // boundaries and at the end of some strings. In extreme cases (e.g. lots
Reid Spencer5b472d92004-08-21 20:49:23 +00002051 // of GEP references to a constant array), this can increase the file size
2052 // by 30% or more. In version 1.4 alignment is done away with completely.
Reid Spencer38d54be2004-08-17 07:45:14 +00002053 hasAlignment = true;
2054
2055 // FALL THROUGH
Misha Brukman8a96c532005-04-21 21:44:41 +00002056
Reid Spencer5b472d92004-08-21 20:49:23 +00002057 case 4: // 1.3.1 (Not Released)
Chris Lattnera79e7cc2004-10-16 18:18:16 +00002058 // In version 4, we did not support the 'undef' constant.
2059 hasNoUndefValue = true;
2060
2061 // In version 4 and above, we did not include space for flags for functions
2062 // in the module info block.
2063 hasNoFlagsForFunctions = true;
2064
2065 // In version 4 and above, we did not include the 'unreachable' instruction
2066 // in the opcode numbering in the bytecode file.
2067 hasNoUnreachableInst = true;
Chris Lattner2e7ec122004-10-16 18:56:02 +00002068 break;
Chris Lattnera79e7cc2004-10-16 18:18:16 +00002069
2070 // FALL THROUGH
2071
Chris Lattnerdee199f2005-05-06 22:34:01 +00002072 case 5: // 1.4 (Released)
Chris Lattnera79e7cc2004-10-16 18:18:16 +00002073 break;
2074
Chris Lattner036b8aa2003-03-06 17:55:45 +00002075 default:
Reid Spencer24399722004-07-09 22:21:33 +00002076 error("Unknown bytecode version number: " + itostr(RevisionNum));
Chris Lattner036b8aa2003-03-06 17:55:45 +00002077 }
2078
Chris Lattnerd445c6b2003-08-24 13:47:36 +00002079 if (hasNoEndianness) Endianness = Module::AnyEndianness;
2080 if (hasNoPointerSize) PointerSize = Module::AnyPointerSize;
Chris Lattner76e38962003-04-22 18:15:10 +00002081
Brian Gaekefe2102b2004-07-14 20:33:13 +00002082 TheModule->setEndianness(Endianness);
2083 TheModule->setPointerSize(PointerSize);
2084
Reid Spencer46b002c2004-07-11 17:28:43 +00002085 if (Handler) Handler->handleVersionInfo(RevisionNum, Endianness, PointerSize);
Chris Lattner036b8aa2003-03-06 17:55:45 +00002086}
2087
Reid Spencer04cde2c2004-07-04 11:33:49 +00002088/// Parse a whole module.
Reid Spencer060d25d2004-06-29 23:29:38 +00002089void BytecodeReader::ParseModule() {
Chris Lattner00950542001-06-06 20:29:01 +00002090 unsigned Type, Size;
Chris Lattner00950542001-06-06 20:29:01 +00002091
Reid Spencer060d25d2004-06-29 23:29:38 +00002092 FunctionSignatureList.clear(); // Just in case...
Chris Lattner00950542001-06-06 20:29:01 +00002093
2094 // Read into instance variables...
Reid Spencer060d25d2004-06-29 23:29:38 +00002095 ParseVersionInfo();
Reid Spencerad89bd62004-07-25 18:07:36 +00002096 align32();
Chris Lattner00950542001-06-06 20:29:01 +00002097
Reid Spencer060d25d2004-06-29 23:29:38 +00002098 bool SeenModuleGlobalInfo = false;
2099 bool SeenGlobalTypePlane = false;
2100 BufPtr MyEnd = BlockEnd;
2101 while (At < MyEnd) {
2102 BufPtr OldAt = At;
2103 read_block(Type, Size);
2104
Chris Lattner00950542001-06-06 20:29:01 +00002105 switch (Type) {
Reid Spencer060d25d2004-06-29 23:29:38 +00002106
Reid Spencerad89bd62004-07-25 18:07:36 +00002107 case BytecodeFormat::GlobalTypePlaneBlockID:
Reid Spencer46b002c2004-07-11 17:28:43 +00002108 if (SeenGlobalTypePlane)
Reid Spencer24399722004-07-09 22:21:33 +00002109 error("Two GlobalTypePlane Blocks Encountered!");
Reid Spencer060d25d2004-06-29 23:29:38 +00002110
Reid Spencer5b472d92004-08-21 20:49:23 +00002111 if (Size > 0)
2112 ParseGlobalTypes();
Reid Spencer060d25d2004-06-29 23:29:38 +00002113 SeenGlobalTypePlane = true;
Chris Lattner52e20b02003-03-19 20:54:26 +00002114 break;
2115
Misha Brukman8a96c532005-04-21 21:44:41 +00002116 case BytecodeFormat::ModuleGlobalInfoBlockID:
Reid Spencer46b002c2004-07-11 17:28:43 +00002117 if (SeenModuleGlobalInfo)
Reid Spencer24399722004-07-09 22:21:33 +00002118 error("Two ModuleGlobalInfo Blocks Encountered!");
Reid Spencer060d25d2004-06-29 23:29:38 +00002119 ParseModuleGlobalInfo();
2120 SeenModuleGlobalInfo = true;
Chris Lattner52e20b02003-03-19 20:54:26 +00002121 break;
2122
Reid Spencerad89bd62004-07-25 18:07:36 +00002123 case BytecodeFormat::ConstantPoolBlockID:
Reid Spencer04cde2c2004-07-04 11:33:49 +00002124 ParseConstantPool(ModuleValues, ModuleTypes,false);
Chris Lattner00950542001-06-06 20:29:01 +00002125 break;
2126
Reid Spencerad89bd62004-07-25 18:07:36 +00002127 case BytecodeFormat::FunctionBlockID:
Reid Spencer060d25d2004-06-29 23:29:38 +00002128 ParseFunctionLazily();
Chris Lattner00950542001-06-06 20:29:01 +00002129 break;
Chris Lattner00950542001-06-06 20:29:01 +00002130
Reid Spencerad89bd62004-07-25 18:07:36 +00002131 case BytecodeFormat::SymbolTableBlockID:
Reid Spencer060d25d2004-06-29 23:29:38 +00002132 ParseSymbolTable(0, &TheModule->getSymbolTable());
Chris Lattner00950542001-06-06 20:29:01 +00002133 break;
Reid Spencer060d25d2004-06-29 23:29:38 +00002134
Chris Lattner00950542001-06-06 20:29:01 +00002135 default:
Reid Spencer060d25d2004-06-29 23:29:38 +00002136 At += Size;
2137 if (OldAt > At) {
Reid Spencer46b002c2004-07-11 17:28:43 +00002138 error("Unexpected Block of Type #" + utostr(Type) + " encountered!");
Reid Spencer060d25d2004-06-29 23:29:38 +00002139 }
Chris Lattner00950542001-06-06 20:29:01 +00002140 break;
2141 }
Reid Spencer060d25d2004-06-29 23:29:38 +00002142 BlockEnd = MyEnd;
2143 align32();
Chris Lattner00950542001-06-06 20:29:01 +00002144 }
2145
Chris Lattner52e20b02003-03-19 20:54:26 +00002146 // After the module constant pool has been read, we can safely initialize
2147 // global variables...
2148 while (!GlobalInits.empty()) {
2149 GlobalVariable *GV = GlobalInits.back().first;
2150 unsigned Slot = GlobalInits.back().second;
2151 GlobalInits.pop_back();
2152
2153 // Look up the initializer value...
Chris Lattner29b789b2003-11-19 17:27:18 +00002154 // FIXME: Preserve this type ID!
Reid Spencer060d25d2004-06-29 23:29:38 +00002155
2156 const llvm::PointerType* GVType = GV->getType();
2157 unsigned TypeSlot = getTypeSlot(GVType->getElementType());
Chris Lattner93361992004-01-15 18:45:25 +00002158 if (Constant *CV = getConstantValue(TypeSlot, Slot)) {
Misha Brukman8a96c532005-04-21 21:44:41 +00002159 if (GV->hasInitializer())
Reid Spencer24399722004-07-09 22:21:33 +00002160 error("Global *already* has an initializer?!");
Reid Spencer04cde2c2004-07-04 11:33:49 +00002161 if (Handler) Handler->handleGlobalInitializer(GV,CV);
Chris Lattner93361992004-01-15 18:45:25 +00002162 GV->setInitializer(CV);
Chris Lattner52e20b02003-03-19 20:54:26 +00002163 } else
Reid Spencer24399722004-07-09 22:21:33 +00002164 error("Cannot find initializer value.");
Chris Lattner52e20b02003-03-19 20:54:26 +00002165 }
2166
Chris Lattneraba5ff52005-05-05 20:57:00 +00002167 if (!ConstantFwdRefs.empty())
2168 error("Use of undefined constants in a module");
2169
Reid Spencer060d25d2004-06-29 23:29:38 +00002170 /// Make sure we pulled them all out. If we didn't then there's a declaration
2171 /// but a missing body. That's not allowed.
Misha Brukman12c29d12003-09-22 23:38:23 +00002172 if (!FunctionSignatureList.empty())
Reid Spencer24399722004-07-09 22:21:33 +00002173 error("Function declared, but bytecode stream ended before definition");
Chris Lattner00950542001-06-06 20:29:01 +00002174}
2175
Reid Spencer04cde2c2004-07-04 11:33:49 +00002176/// This function completely parses a bytecode buffer given by the \p Buf
2177/// and \p Length parameters.
Misha Brukman8a96c532005-04-21 21:44:41 +00002178void BytecodeReader::ParseBytecode(BufPtr Buf, unsigned Length,
Reid Spencer5b472d92004-08-21 20:49:23 +00002179 const std::string &ModuleID) {
Misha Brukmane0dd0d42003-09-23 16:15:29 +00002180
Reid Spencer060d25d2004-06-29 23:29:38 +00002181 try {
Chris Lattner3af4b4f2004-11-30 16:58:18 +00002182 RevisionNum = 0;
Reid Spencer060d25d2004-06-29 23:29:38 +00002183 At = MemStart = BlockStart = Buf;
2184 MemEnd = BlockEnd = Buf + Length;
Misha Brukmane0dd0d42003-09-23 16:15:29 +00002185
Reid Spencer060d25d2004-06-29 23:29:38 +00002186 // Create the module
2187 TheModule = new Module(ModuleID);
Chris Lattner00950542001-06-06 20:29:01 +00002188
Reid Spencer04cde2c2004-07-04 11:33:49 +00002189 if (Handler) Handler->handleStart(TheModule, Length);
Reid Spencer060d25d2004-06-29 23:29:38 +00002190
Reid Spencerf0c977c2004-11-07 18:20:55 +00002191 // Read the four bytes of the signature.
2192 unsigned Sig = read_uint();
Reid Spencer17f52c52004-11-06 23:17:23 +00002193
Reid Spencerf0c977c2004-11-07 18:20:55 +00002194 // If this is a compressed file
2195 if (Sig == ('l' | ('l' << 8) | ('v' << 16) | ('c' << 24))) {
Reid Spencer17f52c52004-11-06 23:17:23 +00002196
Reid Spencerf0c977c2004-11-07 18:20:55 +00002197 // Invoke the decompression of the bytecode. Note that we have to skip the
2198 // file's magic number which is not part of the compressed block. Hence,
Reid Spencer61aaf2e2004-11-14 21:59:21 +00002199 // the Buf+4 and Length-4. The result goes into decompressedBlock, a data
2200 // member for retention until BytecodeReader is destructed.
2201 unsigned decompressedLength = Compressor::decompressToNewBuffer(
2202 (char*)Buf+4,Length-4,decompressedBlock);
Reid Spencerf0c977c2004-11-07 18:20:55 +00002203
2204 // We must adjust the buffer pointers used by the bytecode reader to point
Reid Spencer61aaf2e2004-11-14 21:59:21 +00002205 // into the new decompressed block. After decompression, the
2206 // decompressedBlock will point to a contiguous memory area that has
Reid Spencerf0c977c2004-11-07 18:20:55 +00002207 // the decompressed data.
Reid Spencer61aaf2e2004-11-14 21:59:21 +00002208 At = MemStart = BlockStart = Buf = (BufPtr) decompressedBlock;
Reid Spencerf0c977c2004-11-07 18:20:55 +00002209 MemEnd = BlockEnd = Buf + decompressedLength;
Reid Spencer17f52c52004-11-06 23:17:23 +00002210
Reid Spencerf0c977c2004-11-07 18:20:55 +00002211 // else if this isn't a regular (uncompressed) bytecode file, then its
2212 // and error, generate that now.
2213 } else if (Sig != ('l' | ('l' << 8) | ('v' << 16) | ('m' << 24))) {
2214 error("Invalid bytecode signature: " + utohexstr(Sig));
Reid Spencer060d25d2004-06-29 23:29:38 +00002215 }
2216
Reid Spencer060d25d2004-06-29 23:29:38 +00002217 // Tell the handler we're starting a module
Reid Spencer04cde2c2004-07-04 11:33:49 +00002218 if (Handler) Handler->handleModuleBegin(ModuleID);
Reid Spencer060d25d2004-06-29 23:29:38 +00002219
Reid Spencerad89bd62004-07-25 18:07:36 +00002220 // Get the module block and size and verify. This is handled specially
2221 // because the module block/size is always written in long format. Other
2222 // blocks are written in short format so the read_block method is used.
Reid Spencer060d25d2004-06-29 23:29:38 +00002223 unsigned Type, Size;
Reid Spencerad89bd62004-07-25 18:07:36 +00002224 Type = read_uint();
2225 Size = read_uint();
2226 if (Type != BytecodeFormat::ModuleBlockID) {
Misha Brukman8a96c532005-04-21 21:44:41 +00002227 error("Expected Module Block! Type:" + utostr(Type) + ", Size:"
Reid Spencer46b002c2004-07-11 17:28:43 +00002228 + utostr(Size));
Reid Spencer060d25d2004-06-29 23:29:38 +00002229 }
Chris Lattner56bc8942004-09-27 16:59:06 +00002230
2231 // It looks like the darwin ranlib program is broken, and adds trailing
2232 // garbage to the end of some bytecode files. This hack allows the bc
2233 // reader to ignore trailing garbage on bytecode files.
2234 if (At + Size < MemEnd)
2235 MemEnd = BlockEnd = At+Size;
2236
2237 if (At + Size != MemEnd)
Reid Spencer24399722004-07-09 22:21:33 +00002238 error("Invalid Top Level Block Length! Type:" + utostr(Type)
Reid Spencer46b002c2004-07-11 17:28:43 +00002239 + ", Size:" + utostr(Size));
Reid Spencer060d25d2004-06-29 23:29:38 +00002240
2241 // Parse the module contents
2242 this->ParseModule();
2243
Reid Spencer060d25d2004-06-29 23:29:38 +00002244 // Check for missing functions
Reid Spencer46b002c2004-07-11 17:28:43 +00002245 if (hasFunctions())
Reid Spencer24399722004-07-09 22:21:33 +00002246 error("Function expected, but bytecode stream ended!");
Reid Spencer060d25d2004-06-29 23:29:38 +00002247
Reid Spencer5c15fe52004-07-05 00:57:50 +00002248 // Tell the handler we're done with the module
Misha Brukman8a96c532005-04-21 21:44:41 +00002249 if (Handler)
Reid Spencer5c15fe52004-07-05 00:57:50 +00002250 Handler->handleModuleEnd(ModuleID);
2251
2252 // Tell the handler we're finished the parse
Reid Spencer04cde2c2004-07-04 11:33:49 +00002253 if (Handler) Handler->handleFinish();
Reid Spencer060d25d2004-06-29 23:29:38 +00002254
Reid Spencer46b002c2004-07-11 17:28:43 +00002255 } catch (std::string& errstr) {
Reid Spencer04cde2c2004-07-04 11:33:49 +00002256 if (Handler) Handler->handleError(errstr);
Reid Spencer060d25d2004-06-29 23:29:38 +00002257 freeState();
Chris Lattner2a7b6ba2003-03-06 17:15:19 +00002258 delete TheModule;
2259 TheModule = 0;
Chris Lattner3bdad692004-11-15 21:55:33 +00002260 if (decompressedBlock != 0 ) {
Reid Spencer61aaf2e2004-11-14 21:59:21 +00002261 ::free(decompressedBlock);
Chris Lattner3bdad692004-11-15 21:55:33 +00002262 decompressedBlock = 0;
2263 }
Chris Lattnerb0b7c0d2003-09-26 14:44:52 +00002264 throw;
Reid Spencer060d25d2004-06-29 23:29:38 +00002265 } catch (...) {
2266 std::string msg("Unknown Exception Occurred");
Reid Spencer04cde2c2004-07-04 11:33:49 +00002267 if (Handler) Handler->handleError(msg);
Reid Spencer060d25d2004-06-29 23:29:38 +00002268 freeState();
2269 delete TheModule;
2270 TheModule = 0;
Chris Lattner3bdad692004-11-15 21:55:33 +00002271 if (decompressedBlock != 0) {
Reid Spencer61aaf2e2004-11-14 21:59:21 +00002272 ::free(decompressedBlock);
Chris Lattner3bdad692004-11-15 21:55:33 +00002273 decompressedBlock = 0;
2274 }
Reid Spencer060d25d2004-06-29 23:29:38 +00002275 throw msg;
Chris Lattner2a7b6ba2003-03-06 17:15:19 +00002276 }
Chris Lattner00950542001-06-06 20:29:01 +00002277}
Reid Spencer060d25d2004-06-29 23:29:38 +00002278
2279//===----------------------------------------------------------------------===//
2280//=== Default Implementations of Handler Methods
2281//===----------------------------------------------------------------------===//
2282
2283BytecodeHandler::~BytecodeHandler() {}
Reid Spencer060d25d2004-06-29 23:29:38 +00002284