BsLexerFX.l 16 KB

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  1. %{
  2. #include "BsParserFX.h"
  3. #define YY_USER_ACTION yylloc->first_column = yycolumn + 1; yylloc->first_line = yylineno + 1; yycolumn += (int)yyleng; yylloc->filename = getCurrentFilename(yyextra);
  4. #define YY_USER_INIT yylineno = 0; yycolumn = 0;
  5. %}
  6. %option yylineno reentrant noyywrap nounistd never-interactive warn nodefault bison-bridge bison-locations
  7. %option outfile="BsLexerFX.c" header-file="BsLexerFX.h"
  8. %option extra-type="struct tagParseState *"
  9. INTEGER -?[0-9][0-9]*
  10. INTEGER_16 0[xX][0-9a-fA-F]+
  11. FLOAT [0-9]+\.[0-9]+([eE][+-]?[0-9]+)?[fF]?
  12. STRING \"[^"\n]*\"
  13. IDENTIFIER [_a-zA-Z][_a-zA-Z0-9]*
  14. WS [ \r\n\t]*
  15. SPACE [ \t]
  16. SINGLEWS [ \r\n\t]
  17. ENDLINE [\r\n]
  18. COMMENT \/\/[^\n]*
  19. DEFINE_EXPR [^\r\n]*
  20. /* Start conditions */
  21. %x INCLUDE
  22. %x CODEBLOCK_HEADER
  23. %x CODEBLOCK_EQUALS
  24. %x CODEBLOCK
  25. %x CODEBLOCK_END
  26. %x DEFINE_COND
  27. %x DEFINE_COND_EXPR
  28. %x UNDEF_COND
  29. %x CONDITIONAL_IF
  30. %x CONDITIONAL_IFN
  31. %x CONDITIONAL_ELIF
  32. %x CONDITIONAL_IGNORE
  33. %%
  34. {WS} { /* Skip blank */ }
  35. {INTEGER} { yylval->intValue = atoi(yytext); return TOKEN_INTEGER; }
  36. {INTEGER_16} { yylval->intValue = (int)strtol(yytext, 0, 0); return TOKEN_INTEGER; }
  37. {FLOAT} { yylval->floatValue = (float)atof(yytext); return TOKEN_FLOAT; }
  38. {STRING} { yylval->strValue = mmalloc_strdup(yyextra->memContext, yytext); return TOKEN_STRING; }
  39. true { yylval->intValue = 1; return TOKEN_BOOLEAN; }
  40. false { yylval->intValue = 0; return TOKEN_BOOLEAN; }
  41. /* Value types */
  42. int { yylval->intValue = PT_Int; return TOKEN_INTTYPE; }
  43. int2 { yylval->intValue = PT_Int2; return TOKEN_INT2TYPE; }
  44. int3 { yylval->intValue = PT_Int3; return TOKEN_INT3TYPE; }
  45. int4 { yylval->intValue = PT_Int4; return TOKEN_INT4TYPE; }
  46. float { yylval->intValue = PT_Float; return TOKEN_FLOATTYPE; }
  47. float2 { yylval->intValue = PT_Float2; return TOKEN_FLOAT2TYPE; }
  48. float3 { yylval->intValue = PT_Float3; return TOKEN_FLOAT3TYPE; }
  49. float4 { yylval->intValue = PT_Float4; return TOKEN_FLOAT4TYPE; }
  50. color { yylval->intValue = PT_Color; return TOKEN_COLORTYPE; }
  51. mat2x2 { yylval->intValue = PT_Mat2x2; return TOKEN_MAT2x2TYPE; }
  52. mat2x3 { yylval->intValue = PT_Mat2x3; return TOKEN_MAT2x3TYPE; }
  53. mat2x4 { yylval->intValue = PT_Mat2x4; return TOKEN_MAT2x4TYPE; }
  54. mat3x2 { yylval->intValue = PT_Mat3x2; return TOKEN_MAT3x2TYPE; }
  55. mat3x3 { yylval->intValue = PT_Mat3x3; return TOKEN_MAT3x3TYPE; }
  56. mat3x4 { yylval->intValue = PT_Mat3x4; return TOKEN_MAT3x4TYPE; }
  57. mat4x2 { yylval->intValue = PT_Mat4x2; return TOKEN_MAT4x2TYPE; }
  58. mat4x3 { yylval->intValue = PT_Mat4x3; return TOKEN_MAT4x3TYPE; }
  59. mat4x4 { yylval->intValue = PT_Mat4x4; return TOKEN_MAT4x4TYPE; }
  60. Sampler1D { yylval->intValue = PT_Sampler1D; return TOKEN_SAMPLER1D; }
  61. Sampler2D { yylval->intValue = PT_Sampler2D; return TOKEN_SAMPLER2D; }
  62. Sampler3D { yylval->intValue = PT_Sampler3D; return TOKEN_SAMPLER3D; }
  63. SamplerCUBE { yylval->intValue = PT_SamplerCUBE; return TOKEN_SAMPLERCUBE; }
  64. Sampler2DMS { yylval->intValue = PT_Sampler2DMS; return TOKEN_SAMPLER2DMS; }
  65. Texture1D { yylval->intValue = PT_Texture1D; return TOKEN_TEXTURE1D; }
  66. Texture2D { yylval->intValue = PT_Texture2D; return TOKEN_TEXTURE2D; }
  67. Texture3D { yylval->intValue = PT_Texture3D; return TOKEN_TEXTURE3D; }
  68. TextureCUBE { yylval->intValue = PT_TextureCUBE; return TOKEN_TEXTURECUBE; }
  69. Texture2DMS { yylval->intValue = PT_Texture2DMS; return TOKEN_TEXTURE2DMS; }
  70. ByteBuffer { yylval->intValue = PT_ByteBuffer; return TOKEN_BYTEBUFFER; }
  71. StructBuffer { yylval->intValue = PT_StructBuffer; return TOKEN_STRUCTBUFFER; }
  72. TypedBufferRW { yylval->intValue = PT_TypedBufferRW; return TOKEN_RWTYPEDBUFFER; }
  73. ByteBufferRW { yylval->intValue = PT_ByteBufferRW; return TOKEN_RWBYTEBUFFER; }
  74. StructBufferRW { yylval->intValue = PT_StructBufferRW; return TOKEN_RWSTRUCTBUFFER; }
  75. AppendBuffer { yylval->intValue = PT_AppendBuffer; return TOKEN_RWAPPENDBUFFER; }
  76. ConsumeBuffer { yylval->intValue = PT_ConsumeBuffer; return TOKEN_RWCONSUMEBUFFER; }
  77. Block { return TOKEN_PARAMSBLOCK; }
  78. /* Shader keywords */
  79. Separable { return TOKEN_SEPARABLE; }
  80. Sort { return TOKEN_SORT; }
  81. Priority { return TOKEN_PRIORITY; }
  82. Transparent { return TOKEN_TRANSPARENT; }
  83. Technique { return TOKEN_TECHNIQUE; }
  84. Parameters { return TOKEN_PARAMETERS; }
  85. Blocks { return TOKEN_BLOCKS; }
  86. /* Technique keywords */
  87. Renderer { return TOKEN_RENDERER; }
  88. Language { return TOKEN_LANGUAGE; }
  89. Pass { return TOKEN_PASS; }
  90. /* Pass keywords */
  91. StencilRef { return TOKEN_STENCILREF; }
  92. /* Rasterizer state keywords */
  93. Fill { return TOKEN_FILLMODE; }
  94. Cull { return TOKEN_CULLMODE; }
  95. DepthBias { return TOKEN_DEPTHBIAS; }
  96. ScaledDepthBias { return TOKEN_SDEPTHBIAS; }
  97. DepthClip { return TOKEN_DEPTHCLIP; }
  98. Scissor { return TOKEN_SCISSOR; }
  99. Multisample { return TOKEN_MULTISAMPLE; }
  100. AALine { return TOKEN_AALINE; }
  101. /* Depth-stencil state keywords */
  102. DepthRead { return TOKEN_DEPTHREAD; }
  103. DepthWrite { return TOKEN_DEPTHWRITE; }
  104. CompareFunc { return TOKEN_COMPAREFUNC; }
  105. Stencil { return TOKEN_STENCIL; }
  106. StencilReadMask { return TOKEN_STENCILREADMASK; }
  107. StencilWriteMask { return TOKEN_STENCILWRITEMASK; }
  108. StencilOpFront { return TOKEN_STENCILOPFRONT; }
  109. StencilOpBack { return TOKEN_STENCILOPBACK; }
  110. Fail { return TOKEN_FAIL; }
  111. ZFail { return TOKEN_ZFAIL; }
  112. /* Blend state keywords */
  113. AlphaToCoverage { return TOKEN_ALPHATOCOVERAGE; }
  114. IndependantBlend { return TOKEN_INDEPENDANTBLEND; }
  115. Target { return TOKEN_TARGET; }
  116. Index { return TOKEN_INDEX; }
  117. Blend { return TOKEN_BLEND; }
  118. Color { return TOKEN_COLOR; }
  119. Alpha { return TOKEN_ALPHA; }
  120. WriteMask { return TOKEN_WRITEMASK; }
  121. Source { return TOKEN_SOURCE; }
  122. Dest { return TOKEN_DEST; }
  123. Op { return TOKEN_OP; }
  124. /* Sampler state keywords */
  125. AddressMode { return TOKEN_ADDRMODE; }
  126. MinFilter { return TOKEN_MINFILTER; }
  127. MagFilter { return TOKEN_MAGFILTER; }
  128. MipFilter { return TOKEN_MIPFILTER; }
  129. MaxAniso { return TOKEN_MAXANISO; }
  130. MipmapBias { return TOKEN_MIPBIAS; }
  131. MipMin { return TOKEN_MIPMIN; }
  132. MipMax { return TOKEN_MIPMAX; }
  133. BorderColor { return TOKEN_BORDERCOLOR; }
  134. U { return TOKEN_U; }
  135. V { return TOKEN_V; }
  136. W { return TOKEN_W; }
  137. /* Qualifiers */
  138. auto { return TOKEN_AUTO; }
  139. alias { return TOKEN_ALIAS; }
  140. shared { return TOKEN_SHARED; }
  141. usage { return TOKEN_USAGE; }
  142. /* State values */
  143. WIRE { yylval->intValue = FMV_Wire; return TOKEN_FILLMODEVALUE; }
  144. SOLID { yylval->intValue = FMV_Solid; return TOKEN_FILLMODEVALUE; }
  145. NOCULL { yylval->intValue = CMV_None; return TOKEN_CULLMODEVALUE; }
  146. CW { yylval->intValue = CMV_CW; return TOKEN_CULLMODEVALUE; }
  147. CCW { yylval->intValue = CMV_CCW; return TOKEN_CULLMODEVALUE; }
  148. FAIL { yylval->intValue = CFV_Fail; return TOKEN_COMPFUNCVALUE; }
  149. PASS { yylval->intValue = CFV_Pass; return TOKEN_COMPFUNCVALUE; }
  150. LT { yylval->intValue = CFV_LT; return TOKEN_COMPFUNCVALUE; }
  151. LTE { yylval->intValue = CFV_LTE; return TOKEN_COMPFUNCVALUE; }
  152. EQ { yylval->intValue = CFV_EQ; return TOKEN_COMPFUNCVALUE; }
  153. NEQ { yylval->intValue = CFV_NEQ; return TOKEN_COMPFUNCVALUE; }
  154. GTE { yylval->intValue = CFV_GTE; return TOKEN_COMPFUNCVALUE; }
  155. GT { yylval->intValue = CFV_GT; return TOKEN_COMPFUNCVALUE; }
  156. KEEP { yylval->intValue = OV_Keep; return TOKEN_OPVALUE; }
  157. ZERO { yylval->intValue = OV_Zero; return TOKEN_OPVALUE; }
  158. REPLACE { yylval->intValue = OV_Replace; return TOKEN_OPVALUE; }
  159. INC { yylval->intValue = OV_Incr; return TOKEN_OPVALUE; }
  160. DEC { yylval->intValue = OV_Decr; return TOKEN_OPVALUE; }
  161. INCWRAP { yylval->intValue = OV_IncrWrap; return TOKEN_OPVALUE; }
  162. DECWRAP { yylval->intValue = OV_DecrWrap; return TOKEN_OPVALUE; }
  163. INV { yylval->intValue = OV_Invert; return TOKEN_OPVALUE; }
  164. ONE { yylval->intValue = OV_One; return TOKEN_OPVALUE; }
  165. DSTRGB { yylval->intValue = OV_DestColor; return TOKEN_OPVALUE; }
  166. SRCRGB { yylval->intValue = OV_SrcColor; return TOKEN_OPVALUE; }
  167. DSTIRGB { yylval->intValue = OV_InvDestColor; return TOKEN_OPVALUE; }
  168. SRCIRGB { yylval->intValue = OV_InvSrcColor; return TOKEN_OPVALUE; }
  169. DSTA { yylval->intValue = OV_DestAlpha; return TOKEN_OPVALUE; }
  170. SRCA { yylval->intValue = OV_SrcAlpha; return TOKEN_OPVALUE; }
  171. DSTIA { yylval->intValue = OV_InvDestAlpha; return TOKEN_OPVALUE; }
  172. SRCIA { yylval->intValue = OV_InvSrcAlpha; return TOKEN_OPVALUE; }
  173. ADD { yylval->intValue = BOV_Add; return TOKEN_BLENDOPVALUE; }
  174. SUB { yylval->intValue = BOV_Subtract; return TOKEN_BLENDOPVALUE; }
  175. RSUB { yylval->intValue = BOV_RevSubtract; return TOKEN_BLENDOPVALUE; }
  176. MIN { yylval->intValue = BOV_Min; return TOKEN_BLENDOPVALUE; }
  177. MAX { yylval->intValue = BOV_Max; return TOKEN_BLENDOPVALUE; }
  178. NOCOLOR { yylval->intValue = 0x0; return TOKEN_COLORMASK; }
  179. R { yylval->intValue = 0x1; return TOKEN_COLORMASK; }
  180. G { yylval->intValue = 0x2; return TOKEN_COLORMASK; }
  181. B { yylval->intValue = 0x4; return TOKEN_COLORMASK; }
  182. A { yylval->intValue = 0x8; return TOKEN_COLORMASK; }
  183. RG { yylval->intValue = 0x3; return TOKEN_COLORMASK; }
  184. RB { yylval->intValue = 0x5; return TOKEN_COLORMASK; }
  185. RA { yylval->intValue = 0x9; return TOKEN_COLORMASK; }
  186. GB { yylval->intValue = 0x6; return TOKEN_COLORMASK; }
  187. GA { yylval->intValue = 0xA; return TOKEN_COLORMASK; }
  188. BA { yylval->intValue = 0xC; return TOKEN_COLORMASK; }
  189. RGB { yylval->intValue = 0x7; return TOKEN_COLORMASK; }
  190. RGA { yylval->intValue = 0xB; return TOKEN_COLORMASK; }
  191. RBA { yylval->intValue = 0xD; return TOKEN_COLORMASK; }
  192. GBA { yylval->intValue = 0xE; return TOKEN_COLORMASK; }
  193. RGBA { yylval->intValue = 0xF; return TOKEN_COLORMASK; }
  194. WRAP { yylval->intValue = AMV_Wrap; return TOKEN_ADDRMODEVALUE; }
  195. MIRROR { yylval->intValue = AMV_Mirror; return TOKEN_ADDRMODEVALUE; }
  196. CLAMP { yylval->intValue = AMV_Clamp; return TOKEN_ADDRMODEVALUE; }
  197. BORDER { yylval->intValue = AMV_Border; return TOKEN_ADDRMODEVALUE; }
  198. NOFILTER { yylval->intValue = FV_None; return TOKEN_FILTERVALUE; }
  199. POINT { yylval->intValue = FV_Point; return TOKEN_FILTERVALUE; }
  200. LINEAR { yylval->intValue = FV_Linear; return TOKEN_FILTERVALUE; }
  201. ANISO { yylval->intValue = FV_Anisotropic; return TOKEN_FILTERVALUE; }
  202. POINTC { yylval->intValue = FV_PointCmp; return TOKEN_FILTERVALUE; }
  203. LINEARC { yylval->intValue = FV_LinearCmp; return TOKEN_FILTERVALUE; }
  204. ANISOC { yylval->intValue = FV_AnisotropicCmp; return TOKEN_FILTERVALUE; }
  205. STATIC { yylval->intValue = BUV_Static; return TOKEN_BUFFERUSAGE; }
  206. DYNAMIC { yylval->intValue = BUV_Dynamic; return TOKEN_BUFFERUSAGE; }
  207. FRONTTOBACK { yylval->intValue = QST_FrontToBack; return TOKEN_QUEUETYPE; }
  208. BACKTOFRONT { yylval->intValue = QST_BackToFront; return TOKEN_QUEUETYPE; }
  209. NOSORT { yylval->intValue = QST_None; return TOKEN_QUEUETYPE; }
  210. /* Preprocessor */
  211. #include { BEGIN(INCLUDE); }
  212. <INCLUDE>{WS} { /* Skip blank */ }
  213. <INCLUDE>{STRING} {
  214. int size = 0;
  215. char* includeBuffer = includePush(yyextra, yytext, yylineno, yycolumn, &size);
  216. if(!includeBuffer)
  217. yyterminate();
  218. YY_BUFFER_STATE currentBuffer = YY_CURRENT_BUFFER;
  219. YY_BUFFER_STATE newBuffer = yy_scan_buffer(includeBuffer, size, yyscanner);
  220. yy_switch_to_buffer(currentBuffer, yyscanner);
  221. yypush_buffer_state(newBuffer, yyscanner);
  222. yylineno = 0;
  223. yycolumn = 0;
  224. BEGIN(INITIAL);
  225. }
  226. <INCLUDE>. { return yytext[0]; }
  227. <<EOF>> {
  228. if(!yyextra->includeStack)
  229. yyterminate();
  230. yypop_buffer_state(yyscanner);
  231. includePop(yyextra);
  232. }
  233. #define { BEGIN(DEFINE_COND); }
  234. <DEFINE_COND>{SPACE} { /* Skip blank */ }
  235. <DEFINE_COND>{IDENTIFIER} { addDefine(yyextra, yytext); BEGIN(DEFINE_COND_EXPR); }
  236. <DEFINE_COND>{ENDLINE} { BEGIN(INITIAL); }
  237. <DEFINE_COND>. { return yytext[0]; }
  238. <DEFINE_COND_EXPR>{DEFINE_EXPR} { addDefineExpr(yyextra, yytext); BEGIN(INITIAL); }
  239. <DEFINE_COND_EXPR>{ENDLINE} { BEGIN(INITIAL); }
  240. #undef { BEGIN(UNDEF_COND); }
  241. <UNDEF_COND>{WS} { /* Skip blank */ }
  242. <UNDEF_COND>{IDENTIFIER} { removeDefine(yyextra, yytext); BEGIN(INITIAL); }
  243. <UNDEF_COND>. { return yytext[0]; }
  244. #ifdef { BEGIN(CONDITIONAL_IF); }
  245. <CONDITIONAL_IF>{WS} { /* Skip blank */ }
  246. <CONDITIONAL_IF>{IDENTIFIER} {
  247. int isEnabled = pushConditional(yyextra, hasDefine(yyextra, yytext));
  248. if(!isEnabled)
  249. BEGIN(CONDITIONAL_IGNORE);
  250. else
  251. BEGIN(INITIAL);
  252. }
  253. <CONDITIONAL_IF>. { return yytext[0]; }
  254. #ifndef { BEGIN(CONDITIONAL_IFN); }
  255. <CONDITIONAL_IFN>{WS} { /* Skip blank */ }
  256. <CONDITIONAL_IFN>{IDENTIFIER} {
  257. int isEnabled = pushConditional(yyextra, !hasDefine(yyextra, yytext));
  258. if(!isEnabled)
  259. BEGIN(CONDITIONAL_IGNORE);
  260. else
  261. BEGIN(INITIAL);
  262. }
  263. <CONDITIONAL_IFN>. { return yytext[0]; }
  264. #else { BEGIN(CONDITIONAL_IGNORE); }
  265. #elif { BEGIN(CONDITIONAL_IGNORE); }
  266. #endif { popConditional(yyextra); }
  267. <CONDITIONAL_IGNORE>{WS} { /* Skip */ }
  268. <CONDITIONAL_IGNORE>#ifdef { pushConditional(yyextra, 0); }
  269. <CONDITIONAL_IGNORE>#ifndef { pushConditional(yyextra, 0); }
  270. <CONDITIONAL_IGNORE>#else {
  271. if(switchConditional(yyextra))
  272. BEGIN(INITIAL);
  273. }
  274. <CONDITIONAL_IGNORE>#elif { BEGIN(CONDITIONAL_ELIF); }
  275. <CONDITIONAL_IGNORE>#endif {
  276. if(popConditional(yyextra))
  277. BEGIN(INITIAL);
  278. }
  279. <CONDITIONAL_IGNORE>. { /* Skip */ }
  280. <CONDITIONAL_ELIF>{WS} { /* Skip blank */ }
  281. <CONDITIONAL_ELIF>{IDENTIFIER} {
  282. int isEnabled = setConditional(yyextra, hasDefine(yyextra, yytext));
  283. if(!isEnabled)
  284. BEGIN(CONDITIONAL_IGNORE);
  285. else
  286. BEGIN(INITIAL);
  287. }
  288. <CONDITIONAL_ELIF>. { return yytext[0]; }
  289. /* Code blocks */
  290. Vertex { BEGIN(CODEBLOCK_HEADER); return TOKEN_VERTEX; }
  291. Fragment { BEGIN(CODEBLOCK_HEADER); return TOKEN_FRAGMENT; }
  292. Geometry { BEGIN(CODEBLOCK_HEADER); return TOKEN_GEOMETRY; }
  293. Hull { BEGIN(CODEBLOCK_HEADER); return TOKEN_HULL; }
  294. Domain { BEGIN(CODEBLOCK_HEADER); return TOKEN_DOMAIN; }
  295. Compute { BEGIN(CODEBLOCK_HEADER); return TOKEN_COMPUTE; }
  296. Common { BEGIN(CODEBLOCK_HEADER); return TOKEN_COMMON; }
  297. /* Track when the code block begins, insert all code block characters into our own buffer, record a sequential index */
  298. /* of all code blocks in the text, and track bracket open/closed state so we know when we're done with the code block. */
  299. /* And finally output a sequential code block index to the parser (it shouldn't be aware of anything else in the block). */
  300. <CODEBLOCK_HEADER>= { BEGIN(CODEBLOCK_EQUALS); return yytext[0]; }
  301. <CODEBLOCK_HEADER>{WS} { /* Skip blank */ }
  302. <CODEBLOCK_HEADER>. { return yytext[0]; }
  303. <CODEBLOCK_EQUALS>\{ { BEGIN(CODEBLOCK); beginCodeBlock(yyextra); yyextra->numOpenBrackets = 1; return yytext[0]; }
  304. <CODEBLOCK_EQUALS>{WS} { /* Skip blank */ }
  305. <CODEBLOCK_EQUALS>. { return yytext[0]; }
  306. <CODEBLOCK>\{ { yyextra->numOpenBrackets++; appendCodeBlock(yyextra, yytext, 1); }
  307. <CODEBLOCK>\} {
  308. yyextra->numOpenBrackets--;
  309. if(yyextra->numOpenBrackets == 0)
  310. {
  311. BEGIN(CODEBLOCK_END);
  312. unput('0');
  313. }
  314. else
  315. appendCodeBlock(yyextra, yytext, 1);
  316. }
  317. <CODEBLOCK>.|{SINGLEWS} { appendCodeBlock(yyextra, yytext, 1); }
  318. /* Logic for manually inserting "Index = codeBlockIndex;". We insert arbitrary numbers which allows us to sequentially */
  319. /* output all the tokens we need. We use only single-character values so we don't override anything in the text buffer */
  320. /* (since the starting value was also a single character "{"). */
  321. <CODEBLOCK_END>0 { unput('1'); return TOKEN_INDEX; }
  322. <CODEBLOCK_END>1 { unput('2'); return '='; }
  323. <CODEBLOCK_END>2 { yylval->intValue = getCodeBlockIndex(yyextra); unput('3'); return TOKEN_INTEGER; }
  324. <CODEBLOCK_END>3 { unput('4'); return ';'; }
  325. <CODEBLOCK_END>4 { BEGIN(INITIAL); return '}'; }
  326. <CODEBLOCK_END>.|{WS} { /* Never reached */ }
  327. /* Catch all rules */
  328. {COMMENT} { }
  329. {IDENTIFIER} { yylval->strValue = mmalloc_strdup(yyextra->memContext, yytext); return TOKEN_IDENTIFIER; }
  330. . { return yytext[0]; }
  331. %%