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root/radiance/ray/src/rt/raycalls.c
Revision: 2.27
Committed: Thu Feb 2 18:45:23 2023 UTC (15 months, 1 week ago) by greg
Content type: text/plain
Branch: MAIN
Changes since 2.26: +21 -15 lines
Log Message:
refactor: made "castonly" variable accessible outside rtrace

File Contents

# User Rev Content
1 greg 2.1 #ifndef lint
2 greg 2.27 static const char RCSid[] = "$Id: raycalls.c,v 2.26 2023/01/24 21:54:49 greg Exp $";
3 greg 2.1 #endif
4     /*
5     * raycalls.c - interface for running Radiance rendering as a library
6     *
7     * External symbols declared in ray.h
8     */
9    
10 greg 2.2 #include "copyright.h"
11 greg 2.1
12     /*
13     * These routines are designed to aid the programmer who wishes
14     * to call Radiance as a library. Unfortunately, the system was
15     * not originally intended to be run this way, and there are some
16     * awkward limitations to contend with. The most irritating
17     * perhaps is that the global variables and functions do not have
18     * a prefix, and the symbols are a bit generic. This results in a
19     * serious invasion of the calling application's name-space, and
20     * you may need to rename either some Radiance routines or some
21     * of your routines to avoid conflicts. Another limitation is
22     * that the global variables are not gathered together into any
23     * sort of context, so it is impossible to simultaneously run
24     * this library on multiple scenes or in multiple threads.
25     * You get one scene and one thread, and if you want more, you
26 greg 2.10 * will have to go with the process model defined in raypcalls.c.
27     * Finally, unrecoverable errors result in a call to the application-
28     * defined function quit(). The usual thing to do is to call exit().
29 greg 2.1 * You might want to do something else instead, like
30     * call setjmp()/longjmp() to bring you back to the calling
31     * function for recovery. You may also wish to define your own
32     * wputs(s) and eputs(s) functions to output warning and error
33     * messages, respectively.
34     *
35     * With those caveats, we have attempted to make the interface
36     * as simple as we can. Global variables and their defaults
37     * are defined below, and including "ray.h" declares these
38     * along with all the routines you are likely to need. First,
39     * assign the global variable progname to your argv[0], then
40     * change the rendering parameters as you like. If you have a set
41     * of option arguments you are working from, the getrenderopt(ac,av)
42     * call should be very useful. Before tracing any rays, you
43     * must read in the octree with a call to ray_init(oct).
44     * Passing NULL for the file name causes ray_init() to read
45     * the octree from the standard input -- rarely a good idea.
46     * However, one may read an octree from a program (such as
47     * oconv) by preceding a shell command by a '!' character.
48     *
49     * To trace a ray, define a RAY object myRay and assign:
50     *
51     * myRay.rorg = ( ray origin point )
52     * myRay.rdir = ( normalized ray direction )
53     * myRay.rmax = ( maximum length, or zero for no limit )
54     *
55     * If you are rendering from a VIEW structure, this can be
56     * accomplished with a single call for the ray at (x,y):
57     *
58     * myRay.rmax = viewray(myRay.rorg, myRay.rdir, &myView, x, y);
59     *
60     * Then, trace the primary ray with:
61     *
62     * ray_trace(&myRay);
63     *
64     * The resulting contents of myRay should provide you with
65     * more than enough information about what the ray hit,
66     * the computed value, etc. For further clues of how to
67     * compute irradiance, how to get callbacks on the evaluated
68     * ray tree, etc., see the contents of rtrace.c. See
69     * also the rpmain.c, rtmain.c, and rvmain.c modules
70     * to learn more how rendering options are processed.
71     *
72     * When you are done, you may call ray_done(1) to clean
73     * up memory used by Radiance. It doesn't free everything,
74     * but it makes a valiant effort. If you call ray_done(0),
75     * it leaves data that is likely to be reused, including
76     * loaded data files and fonts. The library may be
77     * restarted at any point by calling ray_init() on a new
78     * octree.
79     *
80 greg 2.3 * The call ray_save(rp) fills a parameter structure
81 greg 2.1 * with the current global parameter settings, which may be
82     * restored at any time with a call to ray_restore(rp).
83     * This buffer contains no linked information, and thus
84     * may be passed between processes using write() and
85     * read() calls, so long as byte order is maintained.
86     * Calling ray_restore(NULL) restores the original
87     * default parameters, which is also retrievable with
88     * the call ray_defaults(rp). (These should be the
89     * same as the defaults for rtrace.)
90     */
91    
92 schorsch 2.4 #include <string.h>
93 greg 2.14 #include <time.h>
94 schorsch 2.4
95 greg 2.1 #include "ray.h"
96     #include "source.h"
97 greg 2.19 #include "bsdf.h"
98 greg 2.1 #include "ambient.h"
99     #include "otypes.h"
100     #include "random.h"
101     #include "data.h"
102     #include "font.h"
103 greg 2.21 #include "pmapray.h"
104 greg 2.1
105     char *progname = "unknown_app"; /* caller sets to argv[0] */
106    
107     char *octname; /* octree name we are given */
108    
109     char *shm_boundary = NULL; /* boundary of shared memory */
110    
111     CUBE thescene; /* our scene */
112     OBJECT nsceneobjs; /* number of objects in our scene */
113    
114     int dimlist[MAXDIM]; /* sampling dimensions */
115     int ndims = 0; /* number of sampling dimensions */
116     int samplendx = 0; /* index for this sample */
117    
118     void (*trace)() = NULL; /* trace call */
119    
120 greg 2.6 void (*addobjnotify[8])() = {ambnotify, NULL};
121 greg 2.1
122 greg 2.27 int castonly = 0; /* only doing ray-casting? */
123    
124 greg 2.1 int do_irrad = 0; /* compute irradiance? */
125    
126 greg 2.24 int rand_samp = 1; /* pure Monte Carlo sampling? */
127 greg 2.13
128 greg 2.1 double dstrsrc = 0.0; /* square source distribution */
129 greg 2.8 double shadthresh = .03; /* shadow threshold */
130     double shadcert = .75; /* shadow certainty */
131 greg 2.1 int directrelay = 2; /* number of source relays */
132     int vspretest = 512; /* virtual source pretest density */
133     int directvis = 1; /* sources visible? */
134     double srcsizerat = .2; /* maximum ratio source size/dist. */
135    
136     COLOR cextinction = BLKCOLOR; /* global extinction coefficient */
137     COLOR salbedo = BLKCOLOR; /* global scattering albedo */
138     double seccg = 0.; /* global scattering eccentricity */
139     double ssampdist = 0.; /* scatter sampling distance */
140    
141     double specthresh = .15; /* specular sampling threshold */
142     double specjitter = 1.; /* specular sampling jitter */
143    
144     int backvis = 1; /* back face visibility */
145    
146 greg 2.24 int maxdepth = -10; /* maximum recursion depth */
147 greg 2.26 double minweight = 1e-4; /* minimum ray weight */
148 greg 2.1
149     char *ambfile = NULL; /* ambient file name */
150     COLOR ambval = BLKCOLOR; /* ambient value */
151     int ambvwt = 0; /* initial weight for ambient value */
152 greg 2.8 double ambacc = 0.1; /* ambient accuracy */
153     int ambres = 256; /* ambient resolution */
154     int ambdiv = 1024; /* ambient divisions */
155     int ambssamp = 512; /* ambient super-samples */
156 greg 2.1 int ambounce = 0; /* ambient bounces */
157     char *amblist[AMBLLEN+1]; /* ambient include/exclude list */
158     int ambincl = -1; /* include == 1, exclude == 0 */
159    
160    
161 greg 2.25 static void
162     reset_random(void) /* re-initialize random number generator */
163     {
164     if (rand_samp) {
165     srandom((long)time(0));
166     initurand(0);
167     } else {
168     srandom(0L);
169     initurand(2048);
170     }
171     }
172    
173    
174 greg 2.17 void
175 schorsch 2.9 ray_init( /* initialize ray-tracing calculation */
176     char *otnm
177     )
178 greg 2.1 {
179     if (nobjects > 0) /* free old scene data */
180     ray_done(0);
181     /* initialize object types */
182     if (ofun[OBJ_SPHERE].funp == o_default)
183     initotypes();
184     /* initialize urand */
185 greg 2.25 reset_random();
186 greg 2.27
187     octname = savqstr(otnm); /* read scene octree */
188     readoct(octname, ~(IO_FILES|IO_INFO), &thescene, NULL);
189 greg 2.1 nsceneobjs = nobjects;
190 greg 2.27
191     if (!castonly) { /* any actual ray traversal to do? */
192    
193     ray_init_pmap(); /* PMAP: set up & load photon maps */
194    
195     marksources(); /* find and mark sources */
196    
197     setambient(); /* initialize ambient calculation */
198     } else
199     distantsources(); /* else mark only distant sources */
200 greg 2.1 }
201    
202 greg 2.25
203 greg 2.17 void
204 schorsch 2.9 ray_trace( /* trace a primary ray */
205     RAY *r
206     )
207 greg 2.1 {
208 greg 2.11 rayorigin(r, PRIMARY, NULL, NULL);
209 greg 2.16 samplendx++;
210 greg 2.1 rayvalue(r); /* assumes origin and direction are set */
211     }
212    
213    
214 greg 2.17 void
215 schorsch 2.9 ray_done( /* free ray-tracing data */
216     int freall
217     )
218 greg 2.1 {
219     retainfonts = 1;
220     ambdone();
221     ambnotify(OVOID);
222     freesources();
223     freeobjects(0, nobjects);
224     donesets();
225     octdone();
226     thescene.cutree = EMPTY;
227     octname = NULL;
228 greg 2.19 retainfonts = 0;
229 greg 2.1 if (freall) {
230     freefont(NULL);
231     freedata(NULL);
232 greg 2.19 SDfreeCache(NULL);
233 greg 2.1 initurand(0);
234     }
235     if (nobjects > 0) {
236 schorsch 2.9 sprintf(errmsg, "%ld objects left after call to ray_done()",
237 greg 2.18 (long)nobjects);
238 greg 2.1 error(WARNING, errmsg);
239     }
240 greg 2.21
241     ray_done_pmap();
242 greg 2.1 }
243    
244    
245 greg 2.17 void
246 schorsch 2.9 ray_save( /* save current parameter settings */
247     RAYPARAMS *rp
248     )
249 greg 2.1 {
250     int i, ndx;
251    
252     if (rp == NULL)
253     return;
254     rp->do_irrad = do_irrad;
255 greg 2.24 rp->rand_samp = rand_samp;
256 greg 2.1 rp->dstrsrc = dstrsrc;
257     rp->shadthresh = shadthresh;
258     rp->shadcert = shadcert;
259     rp->directrelay = directrelay;
260     rp->vspretest = vspretest;
261     rp->directvis = directvis;
262     rp->srcsizerat = srcsizerat;
263     copycolor(rp->cextinction, cextinction);
264     copycolor(rp->salbedo, salbedo);
265     rp->seccg = seccg;
266     rp->ssampdist = ssampdist;
267     rp->specthresh = specthresh;
268     rp->specjitter = specjitter;
269     rp->backvis = backvis;
270     rp->maxdepth = maxdepth;
271     rp->minweight = minweight;
272     if (ambfile != NULL)
273     strncpy(rp->ambfile, ambfile, sizeof(rp->ambfile)-1);
274 greg 2.24 else
275     memset(rp->ambfile, '\0', sizeof(rp->ambfile));
276     copycolor(rp->ambval, ambval);
277 greg 2.1 rp->ambvwt = ambvwt;
278     rp->ambacc = ambacc;
279     rp->ambres = ambres;
280     rp->ambdiv = ambdiv;
281     rp->ambssamp = ambssamp;
282     rp->ambounce = ambounce;
283     rp->ambincl = ambincl;
284 schorsch 2.4 memset(rp->amblval, '\0', sizeof(rp->amblval));
285 greg 2.1 ndx = 0;
286     for (i = 0; i < AMBLLEN && amblist[i] != NULL; i++) {
287     int len = strlen(amblist[i]);
288     if (ndx+len >= sizeof(rp->amblval))
289     break;
290     strcpy(rp->amblval+ndx, amblist[i]);
291 greg 2.23 rp->amblndx[i] = ndx;
292 greg 2.1 ndx += len+1;
293     }
294     while (i <= AMBLLEN)
295     rp->amblndx[i++] = -1;
296 greg 2.21
297     /* PMAP: save photon mapping params */
298     ray_save_pmap(rp);
299 greg 2.1 }
300    
301    
302 greg 2.17 void
303 schorsch 2.9 ray_restore( /* restore parameter settings */
304     RAYPARAMS *rp
305     )
306 greg 2.1 {
307 greg 2.25 int i;
308 greg 2.1
309     if (rp == NULL) { /* restore defaults */
310     RAYPARAMS dflt;
311     ray_defaults(&dflt);
312     ray_restore(&dflt);
313     return;
314     }
315     /* restore saved settings */
316     do_irrad = rp->do_irrad;
317 greg 2.25 if (!rand_samp != !rp->rand_samp) {
318     rand_samp = rp->rand_samp;
319     reset_random();
320     }
321 greg 2.1 dstrsrc = rp->dstrsrc;
322     shadthresh = rp->shadthresh;
323     shadcert = rp->shadcert;
324     directrelay = rp->directrelay;
325     vspretest = rp->vspretest;
326     directvis = rp->directvis;
327     srcsizerat = rp->srcsizerat;
328     copycolor(cextinction, rp->cextinction);
329     copycolor(salbedo, rp->salbedo);
330     seccg = rp->seccg;
331     ssampdist = rp->ssampdist;
332     specthresh = rp->specthresh;
333     specjitter = rp->specjitter;
334     backvis = rp->backvis;
335     maxdepth = rp->maxdepth;
336     minweight = rp->minweight;
337     copycolor(ambval, rp->ambval);
338     ambvwt = rp->ambvwt;
339     ambdiv = rp->ambdiv;
340     ambssamp = rp->ambssamp;
341     ambounce = rp->ambounce;
342 greg 2.25 /* a bit dangerous if not static */
343 greg 2.1 for (i = 0; rp->amblndx[i] >= 0; i++)
344     amblist[i] = rp->amblval + rp->amblndx[i];
345     while (i <= AMBLLEN)
346     amblist[i++] = NULL;
347     ambincl = rp->ambincl;
348     /* update ambient calculation */
349     ambnotify(OVOID);
350     if (thescene.cutree != EMPTY) {
351     int newamb = (ambfile == NULL) ? rp->ambfile[0] :
352     strcmp(ambfile, rp->ambfile) ;
353    
354     if (amblist[0] != NULL)
355     for (i = 0; i < nobjects; i++)
356     ambnotify(i);
357    
358     ambfile = (rp->ambfile[0]) ? rp->ambfile : (char *)NULL;
359     if (newamb) {
360     ambres = rp->ambres;
361     ambacc = rp->ambacc;
362     setambient();
363     } else {
364     setambres(rp->ambres);
365     setambacc(rp->ambacc);
366     }
367     } else {
368     ambfile = (rp->ambfile[0]) ? rp->ambfile : (char *)NULL;
369     ambres = rp->ambres;
370     ambacc = rp->ambacc;
371     }
372 greg 2.21
373     /* PMAP: restore photon mapping params */
374     ray_restore_pmap(rp);
375 greg 2.1 }
376    
377    
378 greg 2.17 void
379 schorsch 2.9 ray_defaults( /* get default parameter values */
380     RAYPARAMS *rp
381     )
382 greg 2.1 {
383     int i;
384    
385     if (rp == NULL)
386     return;
387    
388     rp->do_irrad = 0;
389 greg 2.24 rp->rand_samp = 1;
390 greg 2.1 rp->dstrsrc = 0.0;
391 greg 2.27 rp->shadthresh = 0.03;
392     rp->shadcert = 0.75;
393 greg 2.1 rp->directrelay = 2;
394     rp->vspretest = 512;
395     rp->directvis = 1;
396     rp->srcsizerat = .2;
397     setcolor(rp->cextinction, 0., 0., 0.);
398     setcolor(rp->salbedo, 0., 0., 0.);
399     rp->seccg = 0.;
400     rp->ssampdist = 0.;
401 greg 2.27 rp->specthresh = 0.15;
402 greg 2.1 rp->specjitter = 1.;
403     rp->backvis = 1;
404 greg 2.24 rp->maxdepth = -10;
405 greg 2.27 rp->minweight = 1e-4;
406 greg 2.24 memset(rp->ambfile, '\0', sizeof(rp->ambfile));
407 greg 2.1 setcolor(rp->ambval, 0., 0., 0.);
408     rp->ambvwt = 0;
409 greg 2.7 rp->ambres = 256;
410 greg 2.27 rp->ambacc = 0.1;
411 greg 2.7 rp->ambdiv = 1024;
412     rp->ambssamp = 512;
413 greg 2.1 rp->ambounce = 0;
414     rp->ambincl = -1;
415 schorsch 2.4 memset(rp->amblval, '\0', sizeof(rp->amblval));
416 greg 2.1 for (i = AMBLLEN+1; i--; )
417     rp->amblndx[i] = -1;
418 greg 2.22
419     /* PMAP: restore photon mapping defaults */
420     ray_defaults_pmap(rp);
421 greg 2.1 }