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Chris Lattner2f7c9632001-06-06 20:29:01 +00001/*===-- Lexer.l - Scanner for llvm assembly files ----------------*- C++ -*--=//
2//
3// This file implements the flex scanner for LLVM assembly languages files.
4//
5//===------------------------------------------------------------------------=*/
6
7%option prefix="llvmAsm"
8%option yylineno
9%option nostdinit
10%option never-interactive
11%option batch
12%option noyywrap
13%option nodefault
14%option 8bit
15%option outfile="Lexer.cpp"
16%option ecs
17%option noreject
18%option noyymore
19
20%{
21#include "ParserInternals.h"
Chris Lattner2f7c9632001-06-06 20:29:01 +000022#include <list>
23#include "llvmAsmParser.h"
Chris Lattner26e50dc2001-07-28 17:48:55 +000024#include <ctype.h>
25#include <stdlib.h>
Chris Lattner2f7c9632001-06-06 20:29:01 +000026
27#define RET_TOK(type, Enum, sym) \
28 llvmAsmlval.type = Instruction::Enum; return sym
29
30
31// TODO: All of the static identifiers are figured out by the lexer,
Chris Lattner47af30c2001-09-07 16:32:43 +000032// these should be hashed to reduce the lexer size
Chris Lattner2f7c9632001-06-06 20:29:01 +000033
34
35// atoull - Convert an ascii string of decimal digits into the unsigned long
36// long representation... this does not have to do input error checking,
37// because we know that the input will be matched by a suitable regex...
38//
Chris Lattner1b343742002-04-07 08:10:41 +000039static uint64_t atoull(const char *Buffer) {
Chris Lattner2f7c9632001-06-06 20:29:01 +000040 uint64_t Result = 0;
41 for (; *Buffer; Buffer++) {
42 uint64_t OldRes = Result;
43 Result *= 10;
44 Result += *Buffer-'0';
Chris Lattner1b343742002-04-07 08:10:41 +000045 if (Result < OldRes) // Uh, oh, overflow detected!!!
Chris Lattner2f7c9632001-06-06 20:29:01 +000046 ThrowException("constant bigger than 64 bits detected!");
Chris Lattner2f7c9632001-06-06 20:29:01 +000047 }
48 return Result;
49}
50
Chris Lattner1b343742002-04-07 08:10:41 +000051// HexToFP - Convert the ascii string in hexidecimal format to the floating
52// point representation of it.
53//
54static double HexToFP(const char *Buffer) {
55 uint64_t Result = 0;
56 for (; *Buffer; ++Buffer) {
57 uint64_t OldRes = Result;
58 Result *= 16;
59 char C = *Buffer;
60 if (C >= '0' && C <= '9')
61 Result += C-'0';
62 else if (C >= 'A' && C <= 'F')
63 Result += C-'A'+10;
64 else if (C >= 'a' && C <= 'f')
65 Result += C-'a'+10;
66
67 if (Result < OldRes) // Uh, oh, overflow detected!!!
68 ThrowException("constant bigger than 64 bits detected!");
69 }
70
71 assert(sizeof(double) == sizeof(Result) &&
72 "Data sizes incompatible on this target!");
73 void *ProxyPointer = &Result; // Break TBAA correctly
74 cerr << "VALUE: " << *(double*)ProxyPointer << "\n";
75 return *(double*)ProxyPointer; // Cast Hex constant to double
76}
77
Chris Lattner2f7c9632001-06-06 20:29:01 +000078
Chris Lattner26e50dc2001-07-28 17:48:55 +000079// UnEscapeLexed - Run through the specified buffer and change \xx codes to the
80// appropriate character. If AllowNull is set to false, a \00 value will cause
81// an exception to be thrown.
82//
83// If AllowNull is set to true, the return value of the function points to the
84// last character of the string in memory.
85//
86char *UnEscapeLexed(char *Buffer, bool AllowNull = false) {
87 char *BOut = Buffer;
88 for (char *BIn = Buffer; *BIn; ) {
89 if (BIn[0] == '\\' && isxdigit(BIn[1]) && isxdigit(BIn[2])) {
90 char Tmp = BIn[3]; BIn[3] = 0; // Terminate string
91 *BOut = strtol(BIn+1, 0, 16); // Convert to number
92 if (!AllowNull && !*BOut)
93 ThrowException("String literal cannot accept \\00 escape!");
94
95 BIn[3] = Tmp; // Restore character
96 BIn += 3; // Skip over handled chars
97 ++BOut;
98 } else {
99 *BOut++ = *BIn++;
100 }
101 }
102
103 return BOut;
104}
105
Chris Lattner2f7c9632001-06-06 20:29:01 +0000106#define YY_NEVER_INTERACTIVE 1
107%}
108
109
110
111/* Comments start with a ; and go till end of line */
112Comment ;.*
113
Chris Lattner17f729e2001-07-15 06:35:53 +0000114/* Variable(Value) identifiers start with a % sign */
Chris Lattner1366b302001-12-04 04:31:30 +0000115VarID %[-a-zA-Z$._][-a-zA-Z$._0-9]*
Chris Lattner2f7c9632001-06-06 20:29:01 +0000116
117/* Label identifiers end with a colon */
Chris Lattner1366b302001-12-04 04:31:30 +0000118Label [-a-zA-Z$._0-9]+:
Chris Lattner2f7c9632001-06-06 20:29:01 +0000119
120/* Quoted names can contain any character except " and \ */
121StringConstant \"[^\"]+\"
122
123
124/* [PN]Integer: match positive and negative literal integer values that
125 * are preceeded by a '%' character. These represent unnamed variable slots.
126 */
127EPInteger %[0-9]+
128ENInteger %-[0-9]+
129
130
131/* E[PN]Integer: match positive and negative literal integer values */
132PInteger [0-9]+
133NInteger -[0-9]+
134
Chris Lattner212f70d2001-07-15 00:17:01 +0000135/* FPConstant - A Floating point constant.
Chris Lattner1b343742002-04-07 08:10:41 +0000136 */
Chris Lattner50f68ac2001-11-01 22:06:08 +0000137FPConstant [-+]?[0-9]+[.][0-9]*([eE][-+]?[0-9]+)?
Chris Lattner212f70d2001-07-15 00:17:01 +0000138
Chris Lattner1b343742002-04-07 08:10:41 +0000139/* HexFPConstant - Floating point constant represented in IEEE format as a
140 * hexadecimal number for when exponential notation is not precise enough.
141 */
142HexFPConstant 0x[0-9A-Fa-f]+
Chris Lattner2f7c9632001-06-06 20:29:01 +0000143%%
144
145{Comment} { /* Ignore comments for now */ }
146
147begin { return BEGINTOK; }
148end { return END; }
149true { return TRUE; }
150false { return FALSE; }
151declare { return DECLARE; }
Chris Lattnerda975502001-09-10 07:58:01 +0000152global { return GLOBAL; }
Chris Lattner7fb14f52001-09-18 04:00:54 +0000153constant { return CONSTANT; }
Chris Lattner571a6b02001-10-03 01:49:25 +0000154const { return CONST; }
Chris Lattner841d8b92001-11-26 18:54:16 +0000155internal { return INTERNAL; }
Chris Lattner7fb14f52001-09-18 04:00:54 +0000156uninitialized { return UNINIT; }
Chris Lattner2f7c9632001-06-06 20:29:01 +0000157implementation { return IMPLEMENTATION; }
Chris Lattner42b5a8a2001-07-25 22:47:46 +0000158\.\.\. { return DOTDOTDOT; }
Chris Lattner26e50dc2001-07-28 17:48:55 +0000159string { return STRING; }
Chris Lattnerfbdec252001-09-30 22:46:54 +0000160null { return NULL_TOK; }
Chris Lattner3d4b2902001-10-13 06:37:14 +0000161to { return TO; }
162except { return EXCEPT; }
Chris Lattner2f7c9632001-06-06 20:29:01 +0000163
Chris Lattner47af30c2001-09-07 16:32:43 +0000164void { llvmAsmlval.PrimType = Type::VoidTy ; return VOID; }
165bool { llvmAsmlval.PrimType = Type::BoolTy ; return BOOL; }
166sbyte { llvmAsmlval.PrimType = Type::SByteTy ; return SBYTE; }
167ubyte { llvmAsmlval.PrimType = Type::UByteTy ; return UBYTE; }
168short { llvmAsmlval.PrimType = Type::ShortTy ; return SHORT; }
169ushort { llvmAsmlval.PrimType = Type::UShortTy; return USHORT; }
170int { llvmAsmlval.PrimType = Type::IntTy ; return INT; }
171uint { llvmAsmlval.PrimType = Type::UIntTy ; return UINT; }
172long { llvmAsmlval.PrimType = Type::LongTy ; return LONG; }
173ulong { llvmAsmlval.PrimType = Type::ULongTy ; return ULONG; }
174float { llvmAsmlval.PrimType = Type::FloatTy ; return FLOAT; }
175double { llvmAsmlval.PrimType = Type::DoubleTy; return DOUBLE; }
Chris Lattner47af30c2001-09-07 16:32:43 +0000176type { llvmAsmlval.PrimType = Type::TypeTy ; return TYPE; }
Chris Lattner47af30c2001-09-07 16:32:43 +0000177label { llvmAsmlval.PrimType = Type::LabelTy ; return LABEL; }
Chris Lattnerf269b9d2002-04-04 19:22:17 +0000178opaque { return OPAQUE; }
Chris Lattner2f7c9632001-06-06 20:29:01 +0000179
Chris Lattnerd8bebcd2001-07-08 21:10:27 +0000180
Chris Lattner2f7c9632001-06-06 20:29:01 +0000181not { RET_TOK(UnaryOpVal, Not, NOT); }
182
Chris Lattner2f7c9632001-06-06 20:29:01 +0000183add { RET_TOK(BinaryOpVal, Add, ADD); }
184sub { RET_TOK(BinaryOpVal, Sub, SUB); }
185mul { RET_TOK(BinaryOpVal, Mul, MUL); }
186div { RET_TOK(BinaryOpVal, Div, DIV); }
187rem { RET_TOK(BinaryOpVal, Rem, REM); }
Chris Lattnerc27b1d72001-10-20 09:32:59 +0000188and { RET_TOK(BinaryOpVal, And, AND); }
189or { RET_TOK(BinaryOpVal, Or , OR ); }
190xor { RET_TOK(BinaryOpVal, Xor, XOR); }
Chris Lattner2f7c9632001-06-06 20:29:01 +0000191setne { RET_TOK(BinaryOpVal, SetNE, SETNE); }
192seteq { RET_TOK(BinaryOpVal, SetEQ, SETEQ); }
193setlt { RET_TOK(BinaryOpVal, SetLT, SETLT); }
194setgt { RET_TOK(BinaryOpVal, SetGT, SETGT); }
195setle { RET_TOK(BinaryOpVal, SetLE, SETLE); }
196setge { RET_TOK(BinaryOpVal, SetGE, SETGE); }
197
Chris Lattnerd8bebcd2001-07-08 21:10:27 +0000198phi { RET_TOK(OtherOpVal, PHINode, PHI); }
199call { RET_TOK(OtherOpVal, Call, CALL); }
200cast { RET_TOK(OtherOpVal, Cast, CAST); }
201shl { RET_TOK(OtherOpVal, Shl, SHL); }
202shr { RET_TOK(OtherOpVal, Shr, SHR); }
203
Chris Lattner2f7c9632001-06-06 20:29:01 +0000204ret { RET_TOK(TermOpVal, Ret, RET); }
205br { RET_TOK(TermOpVal, Br, BR); }
206switch { RET_TOK(TermOpVal, Switch, SWITCH); }
Chris Lattner3d4b2902001-10-13 06:37:14 +0000207invoke { RET_TOK(TermOpVal, Invoke, INVOKE); }
Chris Lattner2f7c9632001-06-06 20:29:01 +0000208
209
210malloc { RET_TOK(MemOpVal, Malloc, MALLOC); }
211alloca { RET_TOK(MemOpVal, Alloca, ALLOCA); }
212free { RET_TOK(MemOpVal, Free, FREE); }
213load { RET_TOK(MemOpVal, Load, LOAD); }
214store { RET_TOK(MemOpVal, Store, STORE); }
Chris Lattner62ecb4a2001-07-08 23:22:50 +0000215getelementptr { RET_TOK(MemOpVal, GetElementPtr, GETELEMENTPTR); }
Chris Lattner2f7c9632001-06-06 20:29:01 +0000216
217
Chris Lattner26e50dc2001-07-28 17:48:55 +0000218{VarID} {
219 UnEscapeLexed(yytext+1);
220 llvmAsmlval.StrVal = strdup(yytext+1); // Skip %
221 return VAR_ID;
222 }
223{Label} {
Chris Lattner2f7c9632001-06-06 20:29:01 +0000224 yytext[strlen(yytext)-1] = 0; // nuke colon
Chris Lattner26e50dc2001-07-28 17:48:55 +0000225 UnEscapeLexed(yytext);
226 llvmAsmlval.StrVal = strdup(yytext);
Chris Lattner2f7c9632001-06-06 20:29:01 +0000227 return LABELSTR;
228 }
229
Chris Lattner26e50dc2001-07-28 17:48:55 +0000230{StringConstant} { // Note that we cannot unescape a string constant here! The
231 // string constant might contain a \00 which would not be
232 // understood by the string stuff. It is valid to make a
233 // [sbyte] c"Hello World\00" constant, for example.
234 //
Chris Lattner2f7c9632001-06-06 20:29:01 +0000235 yytext[strlen(yytext)-1] = 0; // nuke end quote
Chris Lattner26e50dc2001-07-28 17:48:55 +0000236 llvmAsmlval.StrVal = strdup(yytext+1); // Nuke start quote
Chris Lattner2f7c9632001-06-06 20:29:01 +0000237 return STRINGCONSTANT;
Chris Lattner26e50dc2001-07-28 17:48:55 +0000238 }
Chris Lattner2f7c9632001-06-06 20:29:01 +0000239
240
241{PInteger} { llvmAsmlval.UInt64Val = atoull(yytext); return EUINT64VAL; }
242{NInteger} {
243 uint64_t Val = atoull(yytext+1);
244 // +1: we have bigger negative range
245 if (Val > (uint64_t)INT64_MAX+1)
246 ThrowException("Constant too large for signed 64 bits!");
247 llvmAsmlval.SInt64Val = -Val;
248 return ESINT64VAL;
249 }
250
251
252{EPInteger} { llvmAsmlval.UIntVal = atoull(yytext+1); return UINTVAL; }
253{ENInteger} {
254 uint64_t Val = atoull(yytext+2);
255 // +1: we have bigger negative range
256 if (Val > (uint64_t)INT32_MAX+1)
257 ThrowException("Constant too large for signed 32 bits!");
258 llvmAsmlval.SIntVal = -Val;
259 return SINTVAL;
260 }
261
Chris Lattner212f70d2001-07-15 00:17:01 +0000262{FPConstant} { llvmAsmlval.FPVal = atof(yytext); return FPVAL; }
Chris Lattner1b343742002-04-07 08:10:41 +0000263{HexFPConstant} { llvmAsmlval.FPVal = HexToFP(yytext); return FPVAL; }
Chris Lattner2f7c9632001-06-06 20:29:01 +0000264
265[ \t\n] { /* Ignore whitespace */ }
Chris Lattner47af30c2001-09-07 16:32:43 +0000266. { return yytext[0]; }
Chris Lattner2f7c9632001-06-06 20:29:01 +0000267
268%%