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root/radiance/ray/src/cv/mgflib/parser.h
Revision: 1.26
Committed: Wed Nov 8 09:40:26 1995 UTC (28 years, 5 months ago) by greg
Content type: text/plain
Branch: MAIN
Changes since 1.25: +2 -1 lines
Log Message:
added check for input line exceeding MG_MAXLINE

File Contents

# Content
1 /* Copyright (c) 1995 Regents of the University of California */
2
3 /* SCCSid "$SunId$ LBL" */
4
5 /*
6 * Header file for MGF interpreter
7 */
8
9 /* must include stdio.h before us */
10
11 #define MG_VMAJOR 1 /* major version number */
12 #define MG_VMINOR 0 /* minor version number */
13
14 /* Entities (list is only appended, never modified) */
15 #define MG_E_COMMENT 0 /* # */
16 #define MG_E_COLOR 1 /* c */
17 #define MG_E_CCT 2 /* cct */
18 #define MG_E_CONE 3 /* cone */
19 #define MG_E_CMIX 4 /* cmix */
20 #define MG_E_CSPEC 5 /* cspec */
21 #define MG_E_CXY 6 /* cxy */
22 #define MG_E_CYL 7 /* cyl */
23 #define MG_E_ED 8 /* ed */
24 #define MG_E_FACE 9 /* f */
25 #define MG_E_INCLUDE 10 /* i */
26 #define MG_E_IES 11 /* ies */
27 #define MG_E_IR 12 /* ir */
28 #define MG_E_MATERIAL 13 /* m */
29 #define MG_E_NORMAL 14 /* n */
30 #define MG_E_OBJECT 15 /* o */
31 #define MG_E_POINT 16 /* p */
32 #define MG_E_PRISM 17 /* prism */
33 #define MG_E_RD 18 /* rd */
34 #define MG_E_RING 19 /* ring */
35 #define MG_E_RS 20 /* rs */
36 #define MG_E_SIDES 21 /* sides */
37 #define MG_E_SPH 22 /* sph */
38 #define MG_E_TD 23 /* td */
39 #define MG_E_TORUS 24 /* torus */
40 #define MG_E_TS 25 /* ts */
41 #define MG_E_VERTEX 26 /* v */
42 #define MG_E_XF 27 /* xf */
43 /* end of Version 1 entities */
44
45 #define MG_NENTITIES 28 /* total # entities */
46
47 #define MG_NELIST {28} /* entity count for version 1 and up */
48
49 #define MG_NAMELIST {"#","c","cct","cone","cmix","cspec","cxy","cyl","ed",\
50 "f","i","ies","ir","m","n","o","p","prism","rd",\
51 "ring","rs","sides","sph","td","torus","ts","v","xf"}
52
53 #define MG_MAXELEN 6
54
55 extern char mg_ename[MG_NENTITIES][MG_MAXELEN];
56
57 /* Handler routines for each entity and unknown ones */
58 #ifdef NOPROTO
59 extern int (*mg_ehand[MG_NENTITIES])();
60 extern int (*mg_uhand)();
61 extern int mg_defuhand();
62 #else
63 extern int (*mg_ehand[MG_NENTITIES])(int argc, char **argv);
64 extern int (*mg_uhand)(int argc, char **argv);
65 extern int mg_defuhand(int, char **);
66 #endif
67
68 extern unsigned mg_nunknown; /* count of unknown entities */
69
70 /* Error codes */
71 #define MG_OK 0 /* normal return value */
72 #define MG_EUNK 1 /* unknown entity */
73 #define MG_EARGC 2 /* wrong number of arguments */
74 #define MG_ETYPE 3 /* argument type error */
75 #define MG_EILL 4 /* illegal argument value */
76 #define MG_EUNDEF 5 /* undefined reference */
77 #define MG_ENOFILE 6 /* cannot open input file */
78 #define MG_EINCL 7 /* error in included file */
79 #define MG_EMEM 8 /* out of memory */
80 #define MG_ESEEK 9 /* file seek error */
81 #define MG_EBADMAT 10 /* bad material specification */
82 #define MG_ELINE 11 /* input line too long */
83
84 #define MG_NERRS 12
85
86 extern char *mg_err[MG_NERRS]; /* list of error messages */
87
88 /*
89 * The general process for running the parser is to fill in the mg_ehand
90 * array with handlers for each entity you know how to handle.
91 * Then, call mg_init to fill in the rest. This function will report
92 * an error and quit if you try to support an inconsistent set of entities.
93 * For each file you want to parse, call mg_load with the file name.
94 * To read from standard input, use NULL as the file name.
95 * For additional control over error reporting and file management,
96 * use mg_open, mg_read, mg_parse and mg_close instead of mg_load.
97 * To pass an entity of your own construction to the parser, use
98 * the mg_handle function rather than the mg_ehand routines directly.
99 * (The first argument to mg_handle is the entity #, or -1.)
100 * To free any data structures and clear the parser, use mg_clear.
101 * If there is an error, mg_load, mg_open, mg_parse, mg_handle and
102 * mg_fgoto will return an error from the list above. In addition,
103 * mg_load will report the error to stderr. The mg_read routine
104 * returns 0 when the end of file has been reached.
105 */
106
107 #define MG_MAXLINE 4096 /* maximum input line length */
108 #define MG_MAXARGC (MG_MAXLINE/4) /* maximum argument count */
109
110 typedef struct mg_fctxt {
111 char fname[96]; /* file name */
112 FILE *fp; /* stream pointer */
113 int fid; /* unique file context id */
114 char inpline[MG_MAXLINE]; /* input line */
115 int lineno; /* line number */
116 struct mg_fctxt *prev; /* previous context */
117 } MG_FCTXT;
118
119 typedef struct {
120 int fid; /* file this position is for */
121 int lineno; /* line number in file */
122 long offset; /* offset from beginning */
123 } MG_FPOS;
124
125 extern MG_FCTXT *mg_file; /* current file context */
126
127 #ifdef NOPROTO
128 extern void mg_init(); /* fill in mg_ehand array */
129 extern int mg_load(); /* parse a file */
130 extern int mg_open(); /* open new input file */
131 extern int mg_read(); /* read next line */
132 extern int mg_parse(); /* parse current line */
133 extern void mg_fgetpos(); /* get position on input file */
134 extern int mg_fgoto(); /* go to position on input file */
135 extern void mg_close(); /* close input file */
136 extern void mg_clear(); /* clear parser */
137 extern int mg_handle(); /* handle an entity */
138 #else
139 extern void mg_init(void); /* fill in mg_ehand array */
140 extern int mg_load(char *); /* parse a file */
141 extern int mg_open(MG_FCTXT *, char *); /* open new input file */
142 extern int mg_read(void); /* read next line */
143 extern int mg_parse(void); /* parse current line */
144 extern void mg_fgetpos(MG_FPOS *); /* get position on input file */
145 extern int mg_fgoto(MG_FPOS *); /* go to position on input file */
146 extern void mg_close(void); /* close input file */
147 extern void mg_clear(void); /* clear parser */
148 extern int mg_handle(int, int, char **); /* handle an entity */
149 #endif
150
151 #ifndef MG_NQCD
152 #define MG_NQCD 5 /* default number of divisions */
153 #endif
154
155 extern int mg_nqcdivs; /* divisions per quarter circle */
156
157 /*
158 * The following library routines are included for your convenience:
159 */
160
161 #ifdef NOPROTO
162 extern int mg_entity(); /* get entity number from its name */
163 extern int isint(); /* non-zero if integer format */
164 extern int isflt(); /* non-zero if floating point format */
165 extern int isname(); /* non-zero if legal identifier name */
166 #else
167 extern int mg_entity(char *); /* get entity number from its name */
168 extern int isint(char *); /* non-zero if integer format */
169 extern int isflt(char *); /* non-zero if floating point format */
170 extern int isname(char *); /* non-zero if legal identifier name */
171 #endif
172
173 /************************************************************************
174 * Definitions for 3-d vector manipulation functions
175 */
176
177 #ifdef SMLFLT
178 #define FLOAT float
179 #define FTINY (1e-3)
180 #else
181 #define FLOAT double
182 #define FTINY (1e-6)
183 #endif
184 #define FHUGE (1e10)
185
186 typedef FLOAT FVECT[3];
187
188 #define VCOPY(v1,v2) ((v1)[0]=(v2)[0],(v1)[1]=(v2)[1],(v1)[2]=(v2)[2])
189 #define DOT(v1,v2) ((v1)[0]*(v2)[0]+(v1)[1]*(v2)[1]+(v1)[2]*(v2)[2])
190 #define VSUM(vr,v1,v2,f) ((vr)[0]=(v1)[0]+(f)*(v2)[0], \
191 (vr)[1]=(v1)[1]+(f)*(v2)[1], \
192 (vr)[2]=(v1)[2]+(f)*(v2)[2])
193
194 #define is0vect(v) (DOT(v,v) <= FTINY*FTINY)
195
196 #define round0(x) if (x <= FTINY && x >= -FTINY) x = 0
197
198 #ifdef NOPROTO
199 extern double normalize(); /* normalize a vector */
200 #else
201 extern double normalize(FVECT); /* normalize a vector */
202 #endif
203
204 /************************************************************************
205 * Definitions for context handling routines
206 * (materials, colors, vectors)
207 */
208
209 #define C_CMINWL 380 /* minimum wavelength */
210 #define C_CMAXWL 780 /* maximum wavelength */
211 #define C_CNSS 41 /* number of spectral samples */
212 #define C_CWLI ((C_CMAXWL-C_CMINWL)/(C_CNSS-1))
213 #define C_CMAXV 10000 /* nominal maximum sample value */
214 #define C_CLPWM (683./C_CMAXV) /* peak lumens/watt multiplier */
215
216 #define C_CSSPEC 01 /* flag if spectrum is set */
217 #define C_CDSPEC 02 /* flag if defined w/ spectrum */
218 #define C_CSXY 04 /* flag if xy is set */
219 #define C_CDXY 010 /* flag if defined w/ xy */
220 #define C_CSEFF 020 /* flag if efficacy set */
221
222 typedef struct {
223 int clock; /* incremented each change */
224 short flags; /* what's been set */
225 short ssamp[C_CNSS]; /* spectral samples, min wl to max */
226 long ssum; /* straight sum of spectral values */
227 float cx, cy; /* xy chromaticity value */
228 float eff; /* efficacy (lumens/watt) */
229 } C_COLOR;
230
231 #define C_DEFCOLOR { 1, C_CDXY|C_CSXY|C_CSSPEC|C_CSEFF,\
232 {C_CMAXV,C_CMAXV,C_CMAXV,C_CMAXV,C_CMAXV,\
233 C_CMAXV,C_CMAXV,C_CMAXV,C_CMAXV,C_CMAXV,C_CMAXV,\
234 C_CMAXV,C_CMAXV,C_CMAXV,C_CMAXV,C_CMAXV,C_CMAXV,\
235 C_CMAXV,C_CMAXV,C_CMAXV,C_CMAXV,C_CMAXV,C_CMAXV,\
236 C_CMAXV,C_CMAXV,C_CMAXV,C_CMAXV,C_CMAXV,C_CMAXV,\
237 C_CMAXV,C_CMAXV,C_CMAXV,C_CMAXV,C_CMAXV,C_CMAXV,\
238 C_CMAXV,C_CMAXV,C_CMAXV,C_CMAXV,C_CMAXV,C_CMAXV},\
239 (long)C_CNSS*C_CMAXV, 1./3., 1./3., 178.006 }
240
241 #define c_cval(c,l) ((double)(c)->ssamp[((l)-C_MINWL)/C_CWLI] / (c)->ssum)
242
243 #define C_1SIDEDTHICK 0.005 /* assumed thickness of 1-sided mat. */
244
245 typedef struct {
246 int clock; /* incremented each change -- resettable */
247 int sided; /* 1 if surface is 1-sided, 0 for 2-sided */
248 float nr, ni; /* index of refraction, real and imaginary */
249 float rd; /* diffuse reflectance */
250 C_COLOR rd_c; /* diffuse reflectance color */
251 float td; /* diffuse transmittance */
252 C_COLOR td_c; /* diffuse transmittance color */
253 float ed; /* diffuse emittance */
254 C_COLOR ed_c; /* diffuse emittance color */
255 float rs; /* specular reflectance */
256 C_COLOR rs_c; /* specular reflectance color */
257 float rs_a; /* specular reflectance roughness */
258 float ts; /* specular transmittance */
259 C_COLOR ts_c; /* specular transmittance color */
260 float ts_a; /* specular transmittance roughness */
261 } C_MATERIAL; /* material context */
262
263 typedef struct {
264 int clock; /* incremented each change -- resettable */
265 FVECT p, n; /* point and normal */
266 } C_VERTEX; /* vertex context */
267
268 #define C_DEFMATERIAL {1,0,1.,0.,0.,C_DEFCOLOR,0.,C_DEFCOLOR,0.,C_DEFCOLOR,\
269 0.,C_DEFCOLOR,0.,0.,C_DEFCOLOR,0.}
270 #define C_DEFVERTEX {1,{0.,0.,0.},{0.,0.,0.}}
271
272 extern C_COLOR *c_ccolor; /* the current color */
273 extern char *c_ccname; /* current color name */
274 extern C_MATERIAL *c_cmaterial; /* the current material */
275 extern char *c_cmname; /* current material name */
276 extern C_VERTEX *c_cvertex; /* the current vertex */
277 extern char *c_cvname; /* current vertex name */
278
279 #ifdef NOPROTO
280 extern int c_hcolor(); /* handle color entity */
281 extern int c_hmaterial(); /* handle material entity */
282 extern int c_hvertex(); /* handle vertex entity */
283 extern void c_clearall(); /* clear context tables */
284 extern C_MATERIAL *c_getmaterial(); /* get a named material */
285 extern C_VERTEX *c_getvert(); /* get a named vertex */
286 extern C_COLOR *c_getcolor(); /* get a named color */
287 extern void c_ccvt(); /* fix color representation */
288 extern int c_isgrey(); /* check if color is grey */
289 #else
290 extern int c_hcolor(int, char **); /* handle color entity */
291 extern int c_hmaterial(int, char **); /* handle material entity */
292 extern int c_hvertex(int, char **); /* handle vertex entity */
293 extern void c_clearall(void); /* clear context tables */
294 extern C_MATERIAL *c_getmaterial(char *); /* get a named material */
295 extern C_VERTEX *c_getvert(char *); /* get a named vertex */
296 extern C_COLOR *c_getcolor(char *); /* get a named color */
297 extern void c_ccvt(C_COLOR *, int); /* fix color representation */
298 extern int c_isgrey(C_COLOR *); /* check if color is grey */
299 #endif
300
301 /*************************************************************************
302 * Definitions for hierarchical object name handler
303 */
304
305 extern int obj_nnames; /* depth of name hierarchy */
306 extern char **obj_name; /* names in hierarchy */
307
308 #ifdef NOPROTO
309 extern int obj_handler(); /* handle an object entity */
310 extern void obj_clear(); /* clear object stack */
311 #else
312 extern int obj_handler(int, char **); /* handle an object entity */
313 extern void obj_clear(void); /* clear object stack */
314 #endif
315
316 /**************************************************************************
317 * Definitions for hierarchical transformation handler
318 */
319
320 typedef FLOAT MAT4[4][4];
321
322 #ifdef BSD
323 #define copymat4(m4a,m4b) bcopy((char *)m4b,(char *)m4a,sizeof(MAT4))
324 #else
325 #define copymat4(m4a,m4b) (void)memcpy((char *)m4a,(char *)m4b,sizeof(MAT4))
326 #endif
327
328 #define MAT4IDENT { {1.,0.,0.,0.}, {0.,1.,0.,0.}, \
329 {0.,0.,1.,0.}, {0.,0.,0.,1.} }
330
331 extern MAT4 m4ident;
332
333 #define setident4(m4) copymat4(m4, m4ident)
334
335 /* regular transformation */
336 typedef struct {
337 MAT4 xfm; /* transform matrix */
338 FLOAT sca; /* scalefactor */
339 } XF;
340
341 #define identxf(xp) (void)(setident4((xp)->xfm),(xp)->sca=1.0)
342
343 #define XF_MAXDIM 8 /* maximum array dimensions */
344
345 struct xf_array {
346 MG_FPOS spos; /* starting position on input */
347 int ndim; /* number of array dimensions */
348 struct {
349 short i, n; /* current count and maximum */
350 char arg[8]; /* string argument value */
351 } aarg[XF_MAXDIM];
352 };
353
354 typedef struct xf_spec {
355 long xid; /* unique transform id */
356 short xac; /* context argument count */
357 short rev; /* boolean true if vertices reversed */
358 XF xf; /* cumulative transformation */
359 struct xf_array *xarr; /* transformation array pointer */
360 struct xf_spec *prev; /* previous transformation context */
361 } XF_SPEC; /* followed by argument buffer */
362
363 extern XF_SPEC *xf_context; /* current transform context */
364 extern char **xf_argend; /* last transform argument */
365
366 #define xf_ac(xf) ((xf)->xac)
367 #define xf_av(xf) (xf_argend - (xf)->xac)
368
369 #define xf_argc (xf_context==NULL ? 0 : xf_ac(xf_context))
370 #define xf_argv xf_av(xf_context)
371
372 /*
373 * The transformation handler should do most of the work that needs
374 * doing. Just pass it any xf entities, then use the associated
375 * functions to transform and translate points, transform vectors
376 * (without translation), rotate vectors (without scaling) and scale
377 * values appropriately.
378 *
379 * The routines xf_xfmpoint, xf_xfmvect and xf_rotvect take two
380 * 3-D vectors (which may be identical), transforms the second and
381 * puts the result into the first.
382 */
383
384 #ifdef NOPROTO
385
386 extern int xf_handler(); /* handle xf entity */
387 extern void xf_xfmpoint(); /* transform point */
388 extern void xf_xfmvect(); /* transform vector */
389 extern void xf_rotvect(); /* rotate vector */
390 extern double xf_scale(); /* scale a value */
391 extern void xf_clear(); /* clear xf stack */
392
393 /* The following are support routines you probably won't call directly */
394
395 extern void multmat4(); /* m4a = m4b X m4c */
396 extern void multv3(); /* v3a = v3b X m4 (vectors) */
397 extern void multp3(); /* p3a = p3b X m4 (points) */
398 extern int xf(); /* interpret transform spec. */
399
400 #else
401
402 extern int xf_handler(int, char **); /* handle xf entity */
403 extern void xf_xfmpoint(FVECT, FVECT); /* transform point */
404 extern void xf_xfmvect(FVECT, FVECT); /* transform vector */
405 extern void xf_rotvect(FVECT, FVECT); /* rotate vector */
406 extern double xf_scale(double); /* scale a value */
407 extern void xf_clear(void); /* clear xf stack */
408
409 /* The following are support routines you probably won't call directly */
410
411 extern void multmat4(MAT4, MAT4, MAT4); /* m4a = m4b X m4c */
412 extern void multv3(FVECT, FVECT, MAT4); /* v3a = v3b X m4 (vectors) */
413 extern void multp3(FVECT, FVECT, MAT4); /* p3a = p3b X m4 (points) */
414 extern int xf(XF *, int, char **); /* interpret transform spec. */
415
416 #endif
417
418 /************************************************************************
419 * Miscellaneous definitions
420 */
421
422 #ifdef M_PI
423 #define PI M_PI
424 #else
425 #define PI 3.14159265358979323846
426 #endif
427
428 #ifdef DCL_ATOF
429 extern double atof();
430 #endif
431
432 #ifndef MEM_PTR
433 #define MEM_PTR void *
434 #endif
435
436 extern MEM_PTR malloc();
437 extern MEM_PTR calloc();
438 extern MEM_PTR realloc();
439 extern void free();