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Dan Gohmanf17a25c2007-07-18 16:29:46 +00001/*===-- Lexer.l - Scanner for llvm assembly files --------------*- C++ -*--===//
2//
3// 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.
7//
8//===----------------------------------------------------------------------===//
9//
10// This file implements the flex scanner for LLVM assembly languages files.
11//
12//===----------------------------------------------------------------------===*/
13
14%option prefix="llvmAsm"
15%option yylineno
16%option nostdinit
17%option never-interactive
18%option batch
19%option noyywrap
20%option nodefault
21%option 8bit
22%option outfile="Lexer.cpp"
23%option ecs
24%option noreject
25%option noyymore
26
27%{
28#include "ParserInternals.h"
29#include "llvm/Module.h"
30#include "llvm/Support/MathExtras.h"
31#include <list>
32#include "llvmAsmParser.h"
33#include <cctype>
34#include <cstdlib>
35
36void set_scan_file(FILE * F){
37 yy_switch_to_buffer(yy_create_buffer( F, YY_BUF_SIZE ) );
38}
39void set_scan_string (const char * str) {
40 yy_scan_string (str);
41}
42
43// Construct a token value for a non-obsolete token
44#define RET_TOK(type, Enum, sym) \
45 llvmAsmlval.type = Instruction::Enum; \
46 return sym
47
48// Construct a token value for an obsolete token
49#define RET_TY(CTYPE, SYM) \
50 llvmAsmlval.PrimType = CTYPE;\
51 return SYM
52
53namespace llvm {
54
55// TODO: All of the static identifiers are figured out by the lexer,
56// these should be hashed to reduce the lexer size
57
58
59// atoull - Convert an ascii string of decimal digits into the unsigned long
60// long representation... this does not have to do input error checking,
61// because we know that the input will be matched by a suitable regex...
62//
63static uint64_t atoull(const char *Buffer) {
64 uint64_t Result = 0;
65 for (; *Buffer; Buffer++) {
66 uint64_t OldRes = Result;
67 Result *= 10;
68 Result += *Buffer-'0';
69 if (Result < OldRes) // Uh, oh, overflow detected!!!
70 GenerateError("constant bigger than 64 bits detected!");
71 }
72 return Result;
73}
74
75static uint64_t HexIntToVal(const char *Buffer) {
76 uint64_t Result = 0;
77 for (; *Buffer; ++Buffer) {
78 uint64_t OldRes = Result;
79 Result *= 16;
80 char C = *Buffer;
81 if (C >= '0' && C <= '9')
82 Result += C-'0';
83 else if (C >= 'A' && C <= 'F')
84 Result += C-'A'+10;
85 else if (C >= 'a' && C <= 'f')
86 Result += C-'a'+10;
87
88 if (Result < OldRes) // Uh, oh, overflow detected!!!
89 GenerateError("constant bigger than 64 bits detected!");
90 }
91 return Result;
92}
93
94
95// HexToFP - Convert the ascii string in hexidecimal format to the floating
96// point representation of it.
97//
98static double HexToFP(const char *Buffer) {
99 return BitsToDouble(HexIntToVal(Buffer)); // Cast Hex constant to double
100}
101
102
103// UnEscapeLexed - Run through the specified buffer and change \xx codes to the
104// appropriate character.
105char *UnEscapeLexed(char *Buffer, char* EndBuffer) {
106 char *BOut = Buffer;
107 for (char *BIn = Buffer; *BIn; ) {
108 if (BIn[0] == '\\') {
109 if (BIn < EndBuffer-1 && BIn[1] == '\\') {
110 *BOut++ = '\\'; // Two \ becomes one
111 BIn += 2;
112 } else if (BIn < EndBuffer-2 && isxdigit(BIn[1]) && isxdigit(BIn[2])) {
113 char Tmp = BIn[3]; BIn[3] = 0; // Terminate string
114 *BOut = (char)strtol(BIn+1, 0, 16); // Convert to number
115 BIn[3] = Tmp; // Restore character
116 BIn += 3; // Skip over handled chars
117 ++BOut;
118 } else {
119 *BOut++ = *BIn++;
120 }
121 } else {
122 *BOut++ = *BIn++;
123 }
124 }
125 return BOut;
126}
127
128} // End llvm namespace
129
130using namespace llvm;
131
132#define YY_NEVER_INTERACTIVE 1
133%}
134
135
136
137/* Comments start with a ; and go till end of line */
138Comment ;.*
139
140/* Local Values and Type identifiers start with a % sign */
141LocalVarName %[-a-zA-Z$._][-a-zA-Z$._0-9]*
142
143/* Global Value identifiers start with an @ sign */
144GlobalVarName @[-a-zA-Z$._][-a-zA-Z$._0-9]*
145
146/* Label identifiers end with a colon */
147Label [-a-zA-Z$._0-9]+:
148QuoteLabel \"[^\"]+\":
149
150/* Quoted names can contain any character except " and \ */
151StringConstant \"[^\"]*\"
152AtStringConstant @\"[^\"]*\"
153PctStringConstant %\"[^\"]*\"
154
155/* LocalVarID/GlobalVarID: match an unnamed local variable slot ID. */
156LocalVarID %[0-9]+
157GlobalVarID @[0-9]+
158
159/* Integer types are specified with i and a bitwidth */
160IntegerType i[0-9]+
161
162/* E[PN]Integer: match positive and negative literal integer values. */
163PInteger [0-9]+
164NInteger -[0-9]+
165
166/* FPConstant - A Floating point constant.
167 */
168FPConstant [-+]?[0-9]+[.][0-9]*([eE][-+]?[0-9]+)?
169
170/* HexFPConstant - Floating point constant represented in IEEE format as a
171 * hexadecimal number for when exponential notation is not precise enough.
172 */
173HexFPConstant 0x[0-9A-Fa-f]+
174
175/* HexIntConstant - Hexadecimal constant generated by the CFE to avoid forcing
176 * it to deal with 64 bit numbers.
177 */
178HexIntConstant [us]0x[0-9A-Fa-f]+
179
180%%
181
182{Comment} { /* Ignore comments for now */ }
183
184begin { return BEGINTOK; }
185end { return ENDTOK; }
186true { return TRUETOK; }
187false { return FALSETOK; }
188declare { return DECLARE; }
189define { return DEFINE; }
190global { return GLOBAL; }
191constant { return CONSTANT; }
192internal { return INTERNAL; }
193linkonce { return LINKONCE; }
194weak { return WEAK; }
195appending { return APPENDING; }
196dllimport { return DLLIMPORT; }
197dllexport { return DLLEXPORT; }
198hidden { return HIDDEN; }
199protected { return PROTECTED; }
200extern_weak { return EXTERN_WEAK; }
201external { return EXTERNAL; }
202thread_local { return THREAD_LOCAL; }
203zeroinitializer { return ZEROINITIALIZER; }
204\.\.\. { return DOTDOTDOT; }
205undef { return UNDEF; }
206null { return NULL_TOK; }
207to { return TO; }
208tail { return TAIL; }
209target { return TARGET; }
210triple { return TRIPLE; }
211deplibs { return DEPLIBS; }
212datalayout { return DATALAYOUT; }
213volatile { return VOLATILE; }
214align { return ALIGN; }
215section { return SECTION; }
216alias { return ALIAS; }
217module { return MODULE; }
218asm { return ASM_TOK; }
219sideeffect { return SIDEEFFECT; }
220
221cc { return CC_TOK; }
222ccc { return CCC_TOK; }
223fastcc { return FASTCC_TOK; }
224coldcc { return COLDCC_TOK; }
225x86_stdcallcc { return X86_STDCALLCC_TOK; }
226x86_fastcallcc { return X86_FASTCALLCC_TOK; }
227
Reid Spencerf234bed2007-07-19 23:13:04 +0000228signext { return SIGNEXT; }
229zeroext { return ZEROEXT; }
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000230inreg { return INREG; }
231sret { return SRET; }
232nounwind { return NOUNWIND; }
233noreturn { return NORETURN; }
234noalias { return NOALIAS; }
235byval { return BYVAL; }
236
237void { RET_TY(Type::VoidTy, VOID); }
238float { RET_TY(Type::FloatTy, FLOAT); }
239double { RET_TY(Type::DoubleTy,DOUBLE);}
240label { RET_TY(Type::LabelTy, LABEL); }
241type { return TYPE; }
242opaque { return OPAQUE; }
243{IntegerType} { uint64_t NumBits = atoull(yytext+1);
244 if (NumBits < IntegerType::MIN_INT_BITS ||
245 NumBits > IntegerType::MAX_INT_BITS)
246 GenerateError("Bitwidth for integer type out of range!");
247 const Type* Ty = IntegerType::get(NumBits);
248 RET_TY(Ty, INTTYPE);
249 }
250
251add { RET_TOK(BinaryOpVal, Add, ADD); }
252sub { RET_TOK(BinaryOpVal, Sub, SUB); }
253mul { RET_TOK(BinaryOpVal, Mul, MUL); }
254udiv { RET_TOK(BinaryOpVal, UDiv, UDIV); }
255sdiv { RET_TOK(BinaryOpVal, SDiv, SDIV); }
256fdiv { RET_TOK(BinaryOpVal, FDiv, FDIV); }
257urem { RET_TOK(BinaryOpVal, URem, UREM); }
258srem { RET_TOK(BinaryOpVal, SRem, SREM); }
259frem { RET_TOK(BinaryOpVal, FRem, FREM); }
260shl { RET_TOK(BinaryOpVal, Shl, SHL); }
261lshr { RET_TOK(BinaryOpVal, LShr, LSHR); }
262ashr { RET_TOK(BinaryOpVal, AShr, ASHR); }
263and { RET_TOK(BinaryOpVal, And, AND); }
264or { RET_TOK(BinaryOpVal, Or , OR ); }
265xor { RET_TOK(BinaryOpVal, Xor, XOR); }
266icmp { RET_TOK(OtherOpVal, ICmp, ICMP); }
267fcmp { RET_TOK(OtherOpVal, FCmp, FCMP); }
268
269eq { return EQ; }
270ne { return NE; }
271slt { return SLT; }
272sgt { return SGT; }
273sle { return SLE; }
274sge { return SGE; }
275ult { return ULT; }
276ugt { return UGT; }
277ule { return ULE; }
278uge { return UGE; }
279oeq { return OEQ; }
280one { return ONE; }
281olt { return OLT; }
282ogt { return OGT; }
283ole { return OLE; }
284oge { return OGE; }
285ord { return ORD; }
286uno { return UNO; }
287ueq { return UEQ; }
288une { return UNE; }
289
290phi { RET_TOK(OtherOpVal, PHI, PHI_TOK); }
291call { RET_TOK(OtherOpVal, Call, CALL); }
292trunc { RET_TOK(CastOpVal, Trunc, TRUNC); }
293zext { RET_TOK(CastOpVal, ZExt, ZEXT); }
294sext { RET_TOK(CastOpVal, SExt, SEXT); }
295fptrunc { RET_TOK(CastOpVal, FPTrunc, FPTRUNC); }
296fpext { RET_TOK(CastOpVal, FPExt, FPEXT); }
297uitofp { RET_TOK(CastOpVal, UIToFP, UITOFP); }
298sitofp { RET_TOK(CastOpVal, SIToFP, SITOFP); }
299fptoui { RET_TOK(CastOpVal, FPToUI, FPTOUI); }
300fptosi { RET_TOK(CastOpVal, FPToSI, FPTOSI); }
301inttoptr { RET_TOK(CastOpVal, IntToPtr, INTTOPTR); }
302ptrtoint { RET_TOK(CastOpVal, PtrToInt, PTRTOINT); }
303bitcast { RET_TOK(CastOpVal, BitCast, BITCAST); }
304select { RET_TOK(OtherOpVal, Select, SELECT); }
305va_arg { RET_TOK(OtherOpVal, VAArg , VAARG); }
306ret { RET_TOK(TermOpVal, Ret, RET); }
307br { RET_TOK(TermOpVal, Br, BR); }
308switch { RET_TOK(TermOpVal, Switch, SWITCH); }
309invoke { RET_TOK(TermOpVal, Invoke, INVOKE); }
310unwind { RET_TOK(TermOpVal, Unwind, UNWIND); }
311unreachable { RET_TOK(TermOpVal, Unreachable, UNREACHABLE); }
312
313malloc { RET_TOK(MemOpVal, Malloc, MALLOC); }
314alloca { RET_TOK(MemOpVal, Alloca, ALLOCA); }
315free { RET_TOK(MemOpVal, Free, FREE); }
316load { RET_TOK(MemOpVal, Load, LOAD); }
317store { RET_TOK(MemOpVal, Store, STORE); }
318getelementptr { RET_TOK(MemOpVal, GetElementPtr, GETELEMENTPTR); }
319
320extractelement { RET_TOK(OtherOpVal, ExtractElement, EXTRACTELEMENT); }
321insertelement { RET_TOK(OtherOpVal, InsertElement, INSERTELEMENT); }
322shufflevector { RET_TOK(OtherOpVal, ShuffleVector, SHUFFLEVECTOR); }
323
324
325{LocalVarName} {
326 llvmAsmlval.StrVal = new std::string(yytext+1); // Skip %
327 return LOCALVAR;
328 }
329{GlobalVarName} {
330 llvmAsmlval.StrVal = new std::string(yytext+1); // Skip @
331 return GLOBALVAR;
332 }
333{Label} {
334 yytext[yyleng-1] = 0; // nuke colon
335 llvmAsmlval.StrVal = new std::string(yytext);
336 return LABELSTR;
337 }
338{QuoteLabel} {
339 yytext[yyleng-2] = 0; // nuke colon, end quote
340 const char* EndChar = UnEscapeLexed(yytext+1, yytext+yyleng);
341 llvmAsmlval.StrVal =
342 new std::string(yytext+1, EndChar - yytext - 1);
343 return LABELSTR;
344 }
345
346{StringConstant} { yytext[yyleng-1] = 0; // nuke end quote
347 const char* EndChar = UnEscapeLexed(yytext+1, yytext+yyleng);
348 llvmAsmlval.StrVal =
349 new std::string(yytext+1, EndChar - yytext - 1);
350 return STRINGCONSTANT;
351 }
352{AtStringConstant} {
353 yytext[yyleng-1] = 0; // nuke end quote
354 const char* EndChar =
355 UnEscapeLexed(yytext+2, yytext+yyleng);
356 llvmAsmlval.StrVal =
357 new std::string(yytext+2, EndChar - yytext - 2);
358 return ATSTRINGCONSTANT;
359 }
360{PctStringConstant} {
361 yytext[yyleng-1] = 0; // nuke end quote
362 const char* EndChar =
363 UnEscapeLexed(yytext+2, yytext+yyleng);
364 llvmAsmlval.StrVal =
365 new std::string(yytext+2, EndChar - yytext - 2);
366 return PCTSTRINGCONSTANT;
367 }
368{PInteger} {
369 uint32_t numBits = ((yyleng * 64) / 19) + 1;
370 APInt Tmp(numBits, yytext, yyleng, 10);
371 uint32_t activeBits = Tmp.getActiveBits();
372 if (activeBits > 0 && activeBits < numBits)
373 Tmp.trunc(activeBits);
374 if (Tmp.getBitWidth() > 64) {
375 llvmAsmlval.APIntVal = new APInt(Tmp);
376 return EUAPINTVAL;
377 } else {
378 llvmAsmlval.UInt64Val = Tmp.getZExtValue();
379 return EUINT64VAL;
380 }
381 }
382{NInteger} {
383 uint32_t numBits = (((yyleng-1) * 64) / 19) + 2;
384 APInt Tmp(numBits, yytext, yyleng, 10);
385 uint32_t minBits = Tmp.getMinSignedBits();
386 if (minBits > 0 && minBits < numBits)
387 Tmp.trunc(minBits);
388 if (Tmp.getBitWidth() > 64) {
389 llvmAsmlval.APIntVal = new APInt(Tmp);
390 return ESAPINTVAL;
391 } else {
392 llvmAsmlval.SInt64Val = Tmp.getSExtValue();
393 return ESINT64VAL;
394 }
395 }
396
397{HexIntConstant} { int len = yyleng - 3;
398 uint32_t bits = len * 4;
399 APInt Tmp(bits, yytext+3, len, 16);
400 uint32_t activeBits = Tmp.getActiveBits();
401 if (activeBits > 0 && activeBits < bits)
402 Tmp.trunc(activeBits);
403 if (Tmp.getBitWidth() > 64) {
404 llvmAsmlval.APIntVal = new APInt(Tmp);
405 return yytext[0] == 's' ? ESAPINTVAL : EUAPINTVAL;
406 } else if (yytext[0] == 's') {
407 llvmAsmlval.SInt64Val = Tmp.getSExtValue();
408 return ESINT64VAL;
409 } else {
410 llvmAsmlval.UInt64Val = Tmp.getZExtValue();
411 return EUINT64VAL;
412 }
413 }
414
415{LocalVarID} {
416 uint64_t Val = atoull(yytext+1);
417 if ((unsigned)Val != Val)
418 GenerateError("Invalid value number (too large)!");
419 llvmAsmlval.UIntVal = unsigned(Val);
420 return LOCALVAL_ID;
421 }
422{GlobalVarID} {
423 uint64_t Val = atoull(yytext+1);
424 if ((unsigned)Val != Val)
425 GenerateError("Invalid value number (too large)!");
426 llvmAsmlval.UIntVal = unsigned(Val);
427 return GLOBALVAL_ID;
428 }
429
430{FPConstant} { llvmAsmlval.FPVal = atof(yytext); return FPVAL; }
431{HexFPConstant} { llvmAsmlval.FPVal = HexToFP(yytext); return FPVAL; }
432
433<<EOF>> {
434 /* Make sure to free the internal buffers for flex when we are
435 * done reading our input!
436 */
437 yy_delete_buffer(YY_CURRENT_BUFFER);
438 return EOF;
439 }
440
441[ \r\t\n] { /* Ignore whitespace */ }
442. { return yytext[0]; }
443
444%%