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root/radiance/ray/src/rt/RpictSimulManager.cpp
Revision: 2.3
Committed: Sun Aug 18 17:24:48 2024 UTC (8 months, 2 weeks ago) by greg
Branch: MAIN
Changes since 2.2: +19 -14 lines
Log Message:
perf(rxpict): Improved adaptive sampling at bottom of frame

File Contents

# Content
1 #ifndef lint
2 static const char RCSid[] = "$Id: RpictSimulManager.cpp,v 2.2 2024/08/18 00:37:13 greg Exp $";
3 #endif
4 /*
5 * RpictSimulManager.cpp
6 *
7 * Rpict simulation manager implementation
8 *
9 * Created by Greg Ward on 07/11/2024.
10 */
11
12 #include <ctype.h>
13 #include "platform.h"
14 #include "RpictSimulManager.h"
15 #include "depthcodec.h"
16 #include "random.h"
17
18 /************* Imported globals from rxpmain.c *************/
19
20 extern VIEW ourview; /* viewing parameters */
21 extern int hres, vres; /* current image resolution */
22
23 extern int psample; /* pixel sample size */
24 extern double maxdiff; /* max. sample difference */
25 extern double dstrpix; /* square pixel distribution */
26
27 extern double mblur; /* motion blur parameter */
28
29 extern double dblur; /* depth-of-field blur parameter */
30
31 // Assign a pixel value (& depth) from rendered ray value
32 bool
33 PixelAccess::SetPixel(int x, int y, const RAY *rp)
34 {
35 if (!rp) return false;
36
37 COLOR col;
38 float zv = 0; // get depth if needed
39 if (DepthType())
40 zv = raydistance(rp);
41
42 switch (ColorSpace()) {
43 case RDTscolor: // keeping rendered spectrum?
44 case RDTscolr:
45 return SetPixel(x, y, rp->rcol, zv);
46 case RDTrgb:
47 case RDTrgbe:
48 case RDTxyz:
49 case RDTxyze:
50 scolor_out(col, primp, rp->rcol);
51 return SetPixel(x, y, col, zv);
52 default:
53 error(INTERNAL, "botched color space type in SetPixel()");
54 }
55 return false;
56 }
57
58 // Set color space after non-empty initialization
59 bool
60 PixelAccess::SetColorSpace(RenderDataType cs, RGBPRIMP pr)
61 {
62 if (!dtyp) return false;
63
64 if (!(cs = RDTcolorT(cs)))
65 cs = RDTcolorT(dtyp);
66 else if (RDTcommonE(cs) ^ RDTcommonE(dtyp))
67 return false;
68
69 if (NCSAMP == 3) {
70 if (cs == RDTscolr) cs = RDTrgbe;
71 else if (cs == RDTscolor) cs = RDTrgb;
72 }
73 switch (cs) {
74 case RDTxyze:
75 case RDTxyz:
76 primp = xyzprims;
77 break;
78 case RDTrgbe:
79 case RDTrgb:
80 primp = pr ? pr : stdprims;
81 break;
82 case RDTscolr:
83 case RDTscolor:
84 primp = NULL;
85 break;
86 default:
87 error(INTERNAL, "botched color space type in SetColorSpace()");
88 }
89 dtyp = RDTnewCT(dtyp, cs);
90 return true;
91 }
92
93 /*
94 * Set up rendering frame (call after octree loaded)
95 * Overall dimensions may be adjusted for view,
96 * optional pixel aspect ratio and tile grid
97 * Increments frameNo if >0
98 */
99 bool
100 RpictSimulManager::NewFrame(const VIEW &v, int xydim[2], double *ap, const int *tgrid)
101 {
102 double pasp = 1.;
103
104 if (!xydim) return false;
105 if (!ap) ap = &pasp;
106 pvw = vw; // save previous view for motion blur
107 vw = v;
108 const char * verr = setview(&vw);
109 if (verr) {
110 error(WARNING, verr);
111 vw = pvw;
112 return false;
113 }
114 const double va = viewaspect(&vw);
115 normaspect(va, ap, &xydim[0], &xydim[1]);
116 // set up tiling?
117 if (tgrid && (tgrid[0] > 0) & (tgrid[1] > 0) & (tgrid[0]*tgrid[1] > 1)) {
118 if ((8*tgrid[0] >= xydim[0]) | (8*tgrid[1] >= xydim[1])) {
119 error(WARNING, "Excessive tiling for image size");
120 return false;
121 }
122 xydim[0] -= xydim[0] % (tgsize[0] = tgrid[0]);
123 xydim[1] -= xydim[1] % (tgsize[1] = tgrid[1]);
124 *ap = va * xydim[0] / xydim[1];
125 } else
126 tgsize[0] = tgsize[1] = 1;
127
128 if (vw.vaft > FTINY) rtFlags |= RTlimDist;
129 else rtFlags &= ~RTlimDist;
130 hvres[0] = xydim[0]; hvres[1] = xydim[1];
131 thvres[0] = hvres[0]/tgsize[0]; // presumed tile width
132 thvres[1] = hvres[1]/tgsize[1]; // ...and height
133 frameNo += (frameNo > 0); // caller may override after
134 return true;
135 }
136
137 // Call-back for rendered pixel
138 int
139 RpictSimulManager::RtCall(RAY *r, void *cd)
140 {
141 RpictSimulManager * rsp = (RpictSimulManager *)cd;
142 const int ty = (r->rno-1) / rsp->TWidth();
143 const int tx = r->rno-1 - (RNUMBER)ty*rsp->TWidth();
144
145 if (ty >= rsp->THeight()) {
146 error(INTERNAL, "bad pixel calculation position in RtCall()");
147 return -1;
148 }
149 if (!rsp->doneMap.TestAndSet(tx, ty)) {
150 error(WARNING, "duplicate pixel calculation");
151 return 0;
152 }
153 return rsp->pacc.SetPixel(tx, ty, r);
154 }
155
156 // Set up the specified tile (or entire image if NULL)
157 bool
158 RpictSimulManager::SetTile(const int ti[2])
159 {
160 tvw = vw; ptvw = pvw;
161
162 if (ti) {
163 if ((ti[0] < 0) | (ti[0] >= tgsize[0]) |
164 (ti[1] < 0) | (ti[1] >= tgsize[1])) {
165 error(INTERNAL, "illegal tile specification in SetTile()");
166 return false;
167 }
168 const char * verr = cropview(&tvw,
169 (double)ti[0]/tgsize[0],
170 (double)ti[1]/tgsize[1],
171 (ti[0]+1.)/tgsize[0],
172 (ti[1]+1.)/tgsize[1]);
173 if (verr) {
174 sprintf(errmsg, "crop failure @ tile (%d,%d)/(%d,%d): %s",
175 ti[0], ti[1], tgsize[0], tgsize[1], verr);
176 error(USER, errmsg);
177 return false;
178 } // previous tile view for blur
179 if (!ptvw.type | (mblur <= FTINY) ||
180 cropview(&ptvw, (double)ti[0]/tgsize[0],
181 (double)ti[1]/tgsize[1],
182 (ti[0]+1.)/tgsize[0],
183 (ti[1]+1.)/tgsize[1]))
184 ptvw.type = 0;
185
186 } else if ((tgsize[0] > 1) | (tgsize[1] > 1)) {
187 error(INTERNAL, "missing tile specification in SetTile()");
188 return false;
189 }
190 return doneMap.NewBitMap(TWidth(), THeight());
191 }
192
193 #define pixjitter() (.5+dstrpix*(.5-frandom()))
194
195 // Send the indicated pixel to ray tracer
196 bool
197 RpictSimulManager::ComputePixel(int x, int y)
198 {
199 static const SCOLOR scBlack = {0};
200 int i;
201 FVECT rodir[2];
202 double hpos = (x+pixjitter())/TWidth();
203 double vpos = (y+pixjitter())/THeight();
204 double dlim = viewray(rodir[0], rodir[1], &tvw, hpos, vpos);
205 if (dlim < -FTINY) { // off view?
206 pacc.SetPixel(x, y, scBlack);
207 doneMap.Set(x, y);
208 return true;
209 }
210 if (ptvw.type) { // add motion blur if requested
211 FVECT rorg2, rdir2;
212 double dlim2 = viewray(rorg2, rdir2, &ptvw, hpos, vpos);
213 if (dlim2 >= -FTINY) {
214 const double d = mblur*(.5-frandom());
215 dlim = (1.-d)*dlim + d*dlim2;
216 for (i = 3; i--; ) {
217 rodir[0][i] = (1.-d)*rodir[0][i] + d*rorg2[i];
218 rodir[1][i] = (1.-d)*rodir[1][i] + d*rdir2[i];
219 }
220 if (normalize(rodir[1]) == 0)
221 return false;
222 }
223 }
224 // depth-of-field blur if any
225 if (!jitteraperture(rodir[0], rodir[1], &tvw, dblur))
226 return false;
227 // include aft clipping distance?
228 for (i = (dlim > FTINY)*3; i--; )
229 rodir[1][i] *= dlim;
230
231 return EnqueueRay(rodir[0], rodir[1], (RNUMBER)y*TWidth()+x+1);
232 }
233
234 // Check if neighbor differences are below pixel sampling threshold
235 bool
236 RpictSimulManager::BelowSampThresh(int x, int y, const int noff[4][2]) const
237 {
238 SCOLOR pval[4];
239 float dist[4];
240 int i, j;
241
242 for (i = 4; i--; ) { // get pixels from tile store
243 int px = x + noff[i][0];
244 int py = y + noff[i][1];
245 if (!doneMap.Check(px, py) ||
246 !pacc.GetPixel(px, py, pval[i], &dist[i]))
247 return false;
248 }
249 const bool spectr = (pacc.NC() > 3);
250 for (i = 4; --i; ) // do pairwise comparisons
251 for (j = i; j--; ) {
252 if (pacc.DepthType() &&
253 (dist[i] - dist[j] > maxdiff*dist[j]) |
254 (dist[j] - dist[i] > maxdiff*dist[i]))
255 return false;
256 if (spectr ? sbigsdiff(pval[i], pval[j], maxdiff) :
257 bigdiff(pval[i], pval[j], maxdiff))
258 return false;
259 }
260 return true; // linear interpolation OK
261 }
262
263 // Fill an interior square patch with interpolated values
264 void
265 RpictSimulManager::FillSquare(const int x, const int y, const int noff[4][2])
266 {
267 SCOLOR pval[4];
268 float dist[4];
269 int i, j;
270 // assumes 4 corners are valid!
271 for (i = 4; i--; )
272 pacc.GetPixel(x+noff[i][0], y+noff[i][1], pval[i], &dist[i]);
273
274 i = abs(noff[1][0]-noff[0][0]);
275 j = abs(noff[1][1]-noff[0][1]); // i==j for diamond fill
276 const int slen = (i > j) ? i : j;
277 const bool spectr = (pacc.NC() > 3);
278 for (i = slen+1 + (i==j)*slen; i--; ) {
279 const double c1 = (i>slen ? i-slen-.5 : (double)i)/slen;
280 for (j = slen + (i<=slen); j--; ) {
281 const double c2 = (j + (i>slen)*.5)/slen;
282 const int px = int(x + (1.-c1)*(1.-c2)*noff[0][0] +
283 c1*(1.-c2)*noff[1][0] +
284 (1.-c1)*c2*noff[2][0] +
285 c1*c2*noff[3][0] + .5);
286 const int py = int(y + (1.-c1)*(1.-c2)*noff[0][1] +
287 c1*(1.-c2)*noff[1][1] +
288 (1.-c1)*c2*noff[2][1] +
289 c1*c2*noff[3][1] + .5);
290 if (!doneMap.TestAndSet(px, py))
291 continue;
292 float zval = 0;
293 if (pacc.DepthType())
294 zval = (1.-c1)*(1.-c2)*dist[0] + c1*(1.-c2)*dist[1] +
295 (1.-c1)*c2*dist[2] + c1*c2*dist[3];
296 if (spectr) { // XXX assumes pacc.NC() == NCSAMP
297 SCOLOR ipval, tpval;
298 copyscolor(ipval, pval[0]);
299 scalescolor(ipval, (1.-c1)*(1.-c2));
300 copyscolor(tpval, pval[1]);
301 scalescolor(tpval, c1*(1.-c2));
302 saddscolor(ipval, tpval);
303 copyscolor(tpval, pval[2]);
304 scalescolor(tpval, (1.-c1)*c2);
305 saddscolor(ipval, tpval);
306 copyscolor(tpval, pval[3]);
307 scalescolor(tpval, c1*c2);
308 saddscolor(ipval, tpval);
309 pacc.SetPixel(px, py, ipval, zval);
310 } else { // tristimulus interpolation
311 COLOR ipval, tpval;
312 copycolor(ipval, pval[0]);
313 scalecolor(ipval, (1.-c1)*(1.-c2));
314 copycolor(tpval, pval[1]);
315 scalecolor(tpval, c1*(1.-c2));
316 addcolor(ipval, tpval);
317 copycolor(tpval, pval[2]);
318 scalecolor(tpval, (1.-c1)*c2);
319 addcolor(ipval, tpval);
320 copycolor(tpval, pval[3]);
321 scalecolor(tpval, c1*c2);
322 addcolor(ipval, tpval);
323 pacc.SetPixel(px, py, ipval, zval);
324 }
325 }
326 }
327 }
328
329 // helper function to set up quincunx sampling
330 static void
331 SetQuincunx(ABitMap2 *bmp2, int noff[4][2], const int spc, const bool odd)
332 {
333 for (int y = 0; y < bmp2->Height(); y += spc>>1)
334 for (int x = (odd^(y&1))*(spc>>1); x < bmp2->Width(); x += spc)
335 bmp2->Set(x, y);
336 // order neighbors CCW
337 if (odd) {
338 noff[0][0] = spc>>1; noff[0][1] = 0;
339 noff[1][0] = 0; noff[1][1] = spc>>1;
340 noff[2][0] = -(spc>>1); noff[2][1] = 0;
341 noff[3][0] = 0; noff[3][1] = -(spc>>1);
342 } else {
343 noff[0][0] = spc>>1; noff[0][1] = spc>>1;
344 noff[1][0] = -(spc>>1); noff[1][1] = spc>>1;
345 noff[2][0] = -(spc>>1); noff[2][1] = -(spc>>1);
346 noff[3][0] = spc>>1; noff[3][1] = -(spc>>1);
347 }
348 }
349
350 // Render (or finish rendering) current tile
351 bool
352 RpictSimulManager::RenderRect()
353 {
354 if (!tvw.type || !Ready()) {
355 error(INTERNAL, "need octree and view for RenderRect()");
356 return false;
357 }
358 ABitMap2 doneSamples = doneMap;
359 int sp2 = ceil(log2((TWidth()>THeight() ? TWidth() : THeight()) - 1.));
360 int layer = 0;
361 int x, y;
362 // fprintf(stderr, "Rendering %dx%d tile with psample=%d, maxdiff=%.3f ...\n",
363 // TWidth(), THeight(), psample, maxdiff);
364 while (sp2 > 0) {
365 ABitMap2 sampMap(TWidth(), THeight());
366 int noff[4][2];
367 if ((prCB != NULL) & (barPix == NULL))
368 (*prCB)(100.*doneMap.SumTotal()/doneMap.Width()/doneMap.Height());
369 SetQuincunx(&sampMap, noff, 1<<sp2, layer&1);
370 sampMap -= doneSamples; // avoid resampling pixels
371 // Are we into adaptive sampling realm?
372 if (noff[0][0]*noff[0][0] + noff[0][1]*noff[0][1] < psample*psample) {
373 if (FlushQueue() < 0) // need results to check thresholds
374 return false;
375 ABitMap2 fillMap = sampMap;
376 for (x = y = 0; sampMap.Find(&x, &y); x++)
377 if (BelowSampThresh(x, y, noff))
378 sampMap.Reset(x, y);
379 // spread sampling to neighbors...
380 const ABitMap2 origSampMap = sampMap;
381 for (x = 4; x--; ) {
382 ABitMap2 stamp = origSampMap;
383 stamp.Shift(noff[x][0], noff[x][1]);
384 sampMap |= stamp;
385 } // ...but don't resample what's done
386 sampMap -= doneSamples;
387 // interpolate smooth regions
388 fillMap -= sampMap;
389 for (x = y = 0; fillMap.Find(&x, &y); x++)
390 FillSquare(x, y, noff);
391 doneSamples |= doneMap;
392 } // compute required ray samples
393 for (x = y = 0; sampMap.Find(&x, &y); x++)
394 if (!ComputePixel(x, y))
395 return false;
396 doneSamples |= sampMap; // samples now done or at least queued
397 // fprintf(stderr, "Sampled %ld pixels at (sp2,layer)=(%d,%d)\n",
398 // (long)sampMap.SumTotal(), sp2, layer);
399 // fprintf(stderr, "\t%ld pixels (%.3f%%) completed (+%ld in process)\n",
400 // (long)doneMap.SumTotal(), 100.*doneMap.SumTotal()/doneMap.Width()/doneMap.Height(),
401 // (long)(doneSamples.SumTotal()-doneMap.SumTotal()));
402 sp2 -= layer++ & 1; // next denser sampling
403 }
404 if (FlushQueue() < 0) // make sure we got everyone
405 return false;
406 x = y = 0;
407 if (doneMap.Find(&x, &y, false)) {
408 sprintf(errmsg, "missed %ld tile pixels, e.g. (%d,%d)",
409 (long)doneMap.Width()*doneMap.Height() -
410 doneMap.SumTotal(), x, y);
411 error(WARNING, errmsg);
412 }
413 if ((prCB != NULL) & (barPix == NULL))
414 (*prCB)(100.);
415 return true;
416 }
417
418 /*
419 * Render the specified tile in frame
420 * Tile pixels are contiguous unless ystride != 0
421 * Tiles numbered from upper-left at (0,0)
422 * Pixel type influenced by this->prims assignment
423 */
424 bool
425 RpictSimulManager::RenderTile(COLORV *rp, int ystride, float *zp, const int *tile)
426 {
427 if (!rp | (GetWidth() <= 0) | (GetHeight() <= 0) | !vw.type)
428 return false;
429 if (!ystride) // contiguous rows?
430 ystride = TWidth();
431 pacc.Init(rp, ystride, zp);
432 if (prims == xyzprims)
433 pacc.SetColorSpace(RDTxyz);
434 else if (prims)
435 pacc.SetColorSpace(RDTrgb, prims);
436
437 return SetTile(tile) && RenderRect();
438 }
439
440 // Same but store as common-exponent COLR or SCOLR
441 bool
442 RpictSimulManager::RenderTile(COLRV *bp, int ystride, float *zp, const int *tile)
443 {
444 if (!bp | (GetWidth() <= 0) | (GetHeight() <= 0) | !vw.type)
445 return false;
446 if (!ystride) // contiguous rows?
447 ystride = TWidth();
448 pacc.Init(bp, ystride, zp);
449 if (prims == xyzprims)
450 pacc.SetColorSpace(RDTxyze);
451 else if (prims)
452 pacc.SetColorSpace(RDTrgbe, prims);
453
454 return SetTile(tile) && RenderRect();
455 }
456
457 // Same but also use 16-bit encoded depth buffer
458 bool
459 RpictSimulManager::RenderTile(COLRV *bp, int ystride, short *dp, const int *tile)
460 {
461 if (!bp | (GetWidth() <= 0) | (GetHeight() <= 0) | !vw.type)
462 return false;
463 if (!ystride) // contiguous rows?
464 ystride = TWidth();
465 pacc.Init(bp, ystride, dp);
466 if (prims == xyzprims)
467 pacc.SetColorSpace(RDTxyze);
468 else if (prims)
469 pacc.SetColorSpace(RDTrgbe, prims);
470
471 return SetTile(tile) && RenderRect();
472 }
473
474 // Allocate a new render bar
475 void
476 RpictSimulManager::NewBar(int ht)
477 {
478 delete [] barPix;
479 delete [] barDepth;
480 if (ht > GetHeight()) ht = GetHeight();
481 if ((ht <= 0) | (GetWidth() <= 0)) {
482 doneMap.NewBitMap(0,0);
483 pacc.Init();
484 barPix = NULL; barDepth = NULL;
485 return;
486 }
487 thvres[0] = GetWidth();
488 thvres[1] = ht;
489 const int NC = prims ? 3 : NCSAMP;
490 barPix = new COLORV [ht*thvres[0]*NC];
491 barDepth = new float [ht*thvres[0]];
492 pacc.Init(barPix + (ht-1)*thvres[0]*NC,
493 -thvres[0], barDepth + (ht-1)*thvres[0]);
494 if (prims == xyzprims)
495 pacc.SetColorSpace(RDTxyz);
496 else if (prims)
497 pacc.SetColorSpace(RDTrgb, prims);
498
499 doneMap.NewBitMap(TWidth(), THeight());
500 }
501
502 // Shift render bar area the specified amount down the frame
503 bool
504 RpictSimulManager::LowerBar(int v, int ytop)
505 {
506 if (!barPix | !barDepth | (v > THeight()) | !tvw.type)
507 return false;
508 if (v <= 0) return !v;
509 if ((ytop -= v) <= 0)
510 return true;
511 tvw.voff -= double(v)/THeight();
512 ptvw.voff -= double(v)/THeight();
513 if (v == THeight()) {
514 doneMap.ClearBitMap();
515 return true;
516 }
517 const int NC = pacc.NC();
518 doneMap.Shift(0, v, false); // lift finished pixel samples
519 memmove(barPix, barPix + NC*TWidth()*v,
520 sizeof(COLORV)*NC*TWidth()*(THeight()-v));
521 memmove(barDepth, barDepth + TWidth()*v,
522 sizeof(float)*TWidth()*(THeight()-v));
523 if (ytop < THeight()) { // mark what we won't do as finished
524 doneMap.ClearRect(0, 0, TWidth(), THeight()-ytop, true);
525 memset(barPix, 0, sizeof(COLORV)*NC*TWidth()*(THeight()-ytop));
526 memset(barDepth, 0, sizeof(float)*TWidth()*(THeight()-ytop));
527 }
528 return true;
529 }
530
531 // Continue rendering from the specified position
532 bool
533 RpictSimulManager::RenderBelow(int ytop, const int vstep, FILE *pfp, const int dt, FILE *dfp)
534 {
535 if (ytop <= 0)
536 return true;
537 ptvw = pvw; // set starting bar's view
538 tvw = vw;
539 const char * verr = cropview(&tvw, 0., double(ytop-THeight())/GetHeight(),
540 1., double(ytop)/GetHeight());
541 if (verr) {
542 sprintf(errmsg, "illegal render bar below y=%d: %s", ytop, verr);
543 error(INTERNAL, errmsg);
544 return false;
545 }
546 if (!ptvw.type | (mblur <= FTINY) ||
547 cropview(&ptvw, 0., double(ytop-THeight())/GetHeight(),
548 1., double(ytop)/GetHeight()))
549 ptvw.type = 0;
550 // set up spectral sampling
551 if (setspectrsamp(CNDX, WLPART) <= 0) {
552 error(USER, "unsupported spectral sampling");
553 return false;
554 }
555 COLORV ** parr = NULL; // set up tiny source drawing
556 float ** zarr = NULL;
557 if (!ptvw.type && directvis && dblur <= FTINY) {
558 parr = new COLORV * [THeight()];
559 zarr = new float * [THeight()];
560 for (int n = THeight(); n-- > 0; ) {
561 parr[THeight()-1-n] = barPix + pacc.NC()*TWidth()*n;
562 zarr[THeight()-1-n] = barDepth + TWidth()*n;
563 }
564 ourview = vw; hres = GetWidth(); vres = GetHeight();
565 init_drawsources(psample);
566 }
567 int lastOut = ytop; // render down frame
568 while (ytop > 0) {
569 // fprintf(stderr, "At y=%d, source drawing %s...\n", ytop, parr ? "ON" : "OFF");
570 if (prCB)
571 (*prCB)(100.*(GetHeight()-ytop)/GetHeight());
572 if (!RenderRect()) // render this bar
573 return false;
574 int nlines = lastOut - ytop + THeight();
575 if (nlines > ytop)
576 nlines = ytop;
577 else if (parr) // drawing sources?
578 drawsources(parr, prims, zarr,
579 0, hres, lastOut-nlines, nlines);
580
581 if (dfp) { // write out depth scanlines?
582 const float * dp = barDepth + TWidth()*(ytop-lastOut);
583 if (RDTdepthT(dt) == RDTdshort) {
584 for (int n = TWidth()*nlines; n-- > 0; dp++)
585 if (putint(depth2code(*dp, pacc.refDepth), 2, dfp) == EOF)
586 error(SYSTEM, "cannot write 16-bit depth buffer");
587 } else if (putbinary(dp, sizeof(float), TWidth()*nlines, dfp)
588 != TWidth()*nlines)
589 error(SYSTEM, "cannot write raw depth buffer");
590 }
591 COLORV * bpos = barPix + pacc.NC()*TWidth()*(ytop-lastOut);
592 while (nlines-- > 0) { // write pixel scanlines
593 switch (RDTcolorT(dt)) {
594 case RDTrgbe:
595 case RDTxyze:
596 if (fwritescan((COLOR *)bpos, TWidth(), pfp) < 0)
597 error(SYSTEM, "cannot write RGBE/XYZE output");
598 break;
599 case RDTscolr:
600 if (fwritesscan(bpos, pacc.NC(), TWidth(), pfp) < 0)
601 error(SYSTEM, "cannot write SCOLOR output");
602 break;
603 case RDTrgb:
604 case RDTxyz:
605 case RDTscolor:
606 if (putbinary(bpos, sizeof(COLORV)*pacc.NC(), TWidth(), pfp)
607 != TWidth())
608 error(SYSTEM, "cannot write SCOLOR output");
609 break;
610 default:
611 error(INTERNAL, "botched output color type in RenderBelow()");
612 break;
613 }
614 bpos += pacc.NC()*TWidth();
615 --lastOut;
616 } // flush each scan bar
617 if (fflush(pfp) == EOF || (dfp && fflush(dfp) == EOF))
618 error(SYSTEM, "output write error");
619 // advance down the frame
620 if (lastOut > 0 && !LowerBar(vstep, ytop))
621 return false;
622 ytop -= vstep;
623 }
624 delete [] parr;
625 delete [] zarr;
626 if (prCB)
627 (*prCB)(100.);
628 return true;
629 }
630
631 /*
632 * Render and write a frame to the named file
633 * Include any header lines set prior to call
634 * Picture file must not already exist
635 * Write pixels to stdout if !pfname
636 * Write depth to a command if dfname[0]=='!'
637 */
638 RenderDataType
639 RpictSimulManager::RenderFrame(const char *pfname, RenderDataType dt, const char *dfname)
640 {
641 int fd = 1;
642 FILE * pfp = NULL;
643 FILE * dfp = NULL;
644
645 if (!RDTcolorT(dt))
646 error(INTERNAL, "botched color output type in RenderFrame()");
647 if (NCSAMP == 3) {
648 if (RDTcolorT(dt) == RDTscolr)
649 dt = RDTnewCT(dt, prims==xyzprims ? RDTxyze : RDTrgbe);
650 else if (RDTcolorT(dt) == RDTscolor)
651 dt = RDTnewCT(dt, prims==xyzprims ? RDTxyz : RDTrgb);
652 }
653 if (!RDTdepthT(dt) ^ !dfname)
654 error(INTERNAL, "depth output requires file name and type in RenderFrame()");
655 if (pfname) { // open picture output file
656 if (pfname[0] == '!') {
657 error(INTERNAL, "writing picture to a command not supported");
658 return RDTnone;
659 }
660 fd = open(pfname, O_WRONLY|O_CREAT|O_EXCL, 0666);
661 }
662 if (fd < 0) {
663 if ((frameNo <= 0) | (errno != EEXIST)) {
664 sprintf(errmsg, "cannot open picture file '%s'", pfname);
665 error(SYSTEM, errmsg);
666 }
667 return RDTnone; // expected in parallel sequence
668 }
669 if (fd == 1)
670 pfp = stdout;
671 else if (!(pfp = fdopen(fd, "w")))
672 error(SYSTEM, "failure calling fdopen()");
673 SET_FILE_BINARY(pfp); // write picture header
674 if ((pfp != stdout) | (frameNo <= 1)) {
675 newheader("RADIANCE", pfp);
676 fputs(GetHeader(), pfp);
677 }
678 fputs(VIEWSTR, pfp); fprintview(&vw, pfp); fputc('\n', pfp);
679 if (frameNo > 0)
680 fprintf(pfp, "FRAME=%d\n", frameNo);
681 double pasp = viewaspect(&vw) * GetWidth() / GetHeight();
682 if ((0.99 > pasp) | (pasp > 1.01))
683 fputaspect(pasp, pfp);
684 fputnow(pfp);
685 switch (RDTcolorT(dt)) { // set primaries and picture format
686 case RDTrgbe:
687 if (!prims | (prims == xyzprims)) prims = stdprims;
688 fputprims(prims, pfp);
689 fputformat(COLRFMT, pfp);
690 break;
691 case RDTxyze:
692 prims = xyzprims;
693 fputformat(CIEFMT, pfp);
694 break;
695 case RDTscolr:
696 prims = NULL;
697 fputwlsplit(WLPART, pfp);
698 fputncomp(NCSAMP, pfp);
699 fputformat(SPECFMT, pfp);
700 break;
701 case RDTrgb:
702 if (!prims | (prims == xyzprims)) prims = stdprims;
703 fputprims(prims, pfp);
704 fputncomp(3, pfp);
705 fputendian(pfp);
706 fputformat("float", pfp);
707 break;
708 case RDTxyz:
709 prims = xyzprims;
710 fputprims(prims, pfp);
711 fputncomp(3, pfp);
712 fputendian(pfp);
713 fputformat("float", pfp);
714 break;
715 case RDTscolor:
716 prims = NULL;
717 fputwlsplit(WLPART, pfp);
718 fputncomp(NCSAMP, pfp);
719 fputendian(pfp);
720 fputformat("float", pfp);
721 break;
722 default:;
723 }
724 fputc('\n', pfp); // end picture header
725 fprtresolu(GetWidth(), GetHeight(), pfp);
726 if (dfname) {
727 if (dfname[0] == '!')
728 dfp = popen(dfname+1, "w");
729 else
730 dfp = fopen(dfname, "w");
731 if (!dfp) {
732 sprintf(errmsg, "cannot open depth output '%s'", dfname);
733 error(SYSTEM, errmsg);
734 return RDTnone;
735 }
736 SET_FILE_BINARY(dfp);
737 }
738 if (RDTdepthT(dt) == RDTdshort) { // write header for 16-bit depth?
739 newheader("RADIANCE", dfp);
740 fputs(GetHeader(), dfp);
741 fputs(VIEWSTR, dfp); fprintview(&vw, dfp); fputc('\n', dfp);
742 fputs(DEPTHSTR, dfp); fputs(dunit, dfp); fputc('\n', dfp);
743 fputformat(DEPTH16FMT, dfp);
744 fputc('\n', dfp); // end-of-info
745 fprtresolu(GetWidth(), GetHeight(), dfp);
746 }
747 const int bheight = (psample > 1) ? int(2*psample+.99) : 4;
748 const int vstep = bheight >> (psample > 1);
749
750 NewBar(bheight); // render frame if we can
751 if (!RenderBelow(GetHeight(), vstep, pfp, dt, dfp)) {
752 fclose(pfp);
753 if (dfp) (dfname[0] == '!') ? pclose(dfp) : fclose(dfp);
754 Cleanup();
755 return RDTnone;
756 }
757 NewBar(); // clean up and return
758 if (pfp != stdout)
759 fclose(pfp);
760 if (dfp) {
761 if (dfname[0] == '!') {
762 int status = pclose(dfp);
763 if (status) {
764 sprintf(errmsg, "depth output (%s) error status: %d",
765 dfname, status);
766 error(USER, errmsg);
767 return RDTnone;
768 }
769 } else
770 fclose(dfp);
771 }
772 return dt;
773 }
774
775 // passed struct for header line callback
776 struct HeaderInfo {
777 char fmt[MAXFMTLEN];
778 char depth_unit[32];
779 int ncomp;
780 RGBPRIMS prims;
781 VIEW vw;
782 bool gotWL;
783 bool gotprims;
784 bool gotview;
785 bool endianMatch;
786
787 HeaderInfo() {
788 strcpy(fmt, "MISSING");
789 depth_unit[0] = '\0';
790 ncomp = 3;
791 vw = stdview;
792 gotWL = false;
793 gotprims = false;
794 gotview = false;
795 endianMatch = true;
796 }
797 };
798
799 // helper function checks header line and records req. info.
800 static int
801 head_check(char *s, void *p)
802 {
803 HeaderInfo * hp = (HeaderInfo *)p;
804 int rval;
805
806 if (isncomp(s)) {
807 hp->ncomp = ncompval(s);
808 return 1;
809 }
810 if (iswlsplit(s)) {
811 hp->gotWL = wlsplitval(WLPART, s);
812 return 1;
813 }
814 if (isprims(s)) {
815 hp->gotprims = primsval(hp->prims, s);
816 return 1;
817 }
818 if (isview(s)) {
819 hp->gotview |= (sscanview(&hp->vw, s) > 0);
820 return 1;
821 }
822 if (!strncmp(s, DEPTHSTR, LDEPTHSTR)) {
823 strlcpy(hp->depth_unit, s+LDEPTHSTR, sizeof(hp->depth_unit));
824 char * cp = hp->depth_unit;
825 while (*cp) cp++;
826 while (cp > hp->depth_unit && isspace(cp[-1])) cp--;
827 *cp = '\0';
828 return 1;
829 }
830 if ((rval = isbigendian(s)) >= 0) {
831 hp->endianMatch = (rval == nativebigendian());
832 return 1;
833 }
834 if (formatval(hp->fmt, s))
835 return 1;
836 return 0;
837 }
838
839 // Resume partially finished rendering
840 // Picture file must exist
841 RenderDataType
842 RpictSimulManager::ResumeFrame(const char *pfname, const char *dfname)
843 {
844 if (!pfname || pfname[0] == '!')
845 return RDTnone;
846
847 RenderDataType dt = RDTnone;
848 FILE * dfp = NULL;
849 FILE * pfp = fopen(pfname, "r+");
850 if (!pfp) {
851 sprintf(errmsg, "cannot reopen output picture '%s'", pfname);
852 error(SYSTEM, errmsg);
853 return RDTnone;
854 }
855 SET_FILE_BINARY(pfp);
856 HeaderInfo hinfo; // read header information & dimensions
857 RESOLU res;
858 if (getheader(pfp, head_check, &hinfo) < 0) {
859 fclose(pfp);
860 return RDTnone;
861 }
862 if (!fgetsresolu(&res, pfp) || res.rt != PIXSTANDARD) {
863 sprintf(errmsg, "missing/bad resolution for '%s'", pfname);
864 error(USER, errmsg);
865 fclose(pfp);
866 return RDTnone;
867 }
868 if (!hinfo.gotview) {
869 sprintf(errmsg, "missing view for '%s'", pfname);
870 error(USER, errmsg);
871 fclose(pfp);
872 return RDTnone;
873 }
874 if (hinfo.ncomp < 3) {
875 sprintf(errmsg, "bad # components (%d) in '%s'", hinfo.ncomp, pfname);
876 error(USER, errmsg);
877 fclose(pfp);
878 return RDTnone;
879 }
880 int bytesPer = 0; // complicated part to set rendering/output space
881 if (!strcmp(hinfo.fmt, COLRFMT)) {
882 prims = hinfo.prims;
883 int n = 8*hinfo.gotprims;
884 while (n--)
885 if (!FABSEQ(hinfo.prims[0][n], stdprims[0][n]))
886 break;
887 if (n < 0)
888 prims = stdprims;
889 dt = RDTnewCT(dt, RDTrgbe);
890 } else if (!strcmp(hinfo.fmt, CIEFMT)) {
891 prims = xyzprims;
892 dt = RDTnewCT(dt, RDTxyze);
893 } else if (!strcmp(hinfo.fmt, SPECFMT)) {
894 if ((hinfo.ncomp <= 3) | (hinfo.ncomp > MAXCSAMP)) {
895 sprintf(errmsg, "incompatible sample count (%d) in '%s'",
896 hinfo.ncomp, pfname);
897 error(USER, errmsg);
898 fclose(pfp);
899 return RDTnone;
900 }
901 NCSAMP = hinfo.ncomp; // overrides global setting
902 prims = NULL;
903 dt = RDTnewCT(dt, RDTscolr);
904 bytesPer = hinfo.ncomp + 1; // XXX assumes no compression
905 } else if (!strcmp(hinfo.fmt, "float")) {
906 if (!hinfo.endianMatch) {
907 sprintf(errmsg, "incompatible byte ordering in '%s'", pfname);
908 error(USER, errmsg);
909 fclose(pfp);
910 return RDTnone;
911 }
912 if (hinfo.ncomp == 3) {
913 prims = hinfo.prims; // custom primaries?
914 int n = 8*hinfo.gotprims;
915 while (n--)
916 if (!FABSEQ(hinfo.prims[0][n], stdprims[0][n]))
917 break;
918 if (n < 0) // standard primaries?
919 prims = stdprims;
920 else if (hinfo.gotprims) { // or check if XYZ
921 for (n = 8; n--; )
922 if (!FABSEQ(prims[0][n], xyzprims[0][n]))
923 break;
924 if (n < 0)
925 prims = xyzprims;
926 }
927 if (prims == xyzprims)
928 dt = RDTnewCT(dt, RDTxyz);
929 else
930 dt = RDTnewCT(dt, RDTrgb);
931 } else {
932 NCSAMP = hinfo.ncomp; // overrides global setting
933 prims = NULL;
934 dt = RDTnewCT(dt, RDTscolor);
935 }
936 bytesPer = sizeof(float)*hinfo.ncomp;
937 } else {
938 sprintf(errmsg, "unknown format (%s) for '%s'", hinfo.fmt, pfname);
939 error(USER, errmsg);
940 fclose(pfp);
941 return RDTnone;
942 }
943 vw.type = 0; // set up new (unreferenced) frame
944 frameNo = 0;
945 int hvdim[2] = {res.xr, res.yr};
946 double noAdj = 0;
947 if (!NewFrame(hinfo.vw, hvdim, &noAdj) ||
948 (hvdim[0] != res.xr) | (hvdim[1] != res.yr)) {
949 fclose(pfp);
950 return RDTnone;
951 }
952 long dataStart = ftell(pfp); // picture starting point
953 if (dataStart < 0) {
954 sprintf(errmsg, "cannot seek on '%s'", pfname);
955 error(SYSTEM, errmsg);
956 fclose(pfp);
957 return RDTnone;
958 }
959 long doneScans = 0;
960 if (bytesPer) { // fixed-width records?
961 fseek(pfp, 0, SEEK_END);
962 long dataEnd = ftell(pfp);
963 doneScans = (dataEnd - dataStart)/(bytesPer*GetWidth());
964 if (dataEnd-dataStart > bytesPer*GetWidth()*doneScans)
965 fseek(pfp, dataStart + bytesPer*GetWidth()*doneScans, SEEK_SET);
966 } else { // else get compressed scanlines
967 COLR * scan = (COLR *)tempbuffer(sizeof(COLR)*GetWidth());
968 while (freadcolrs(scan, GetWidth(), pfp) >= 0)
969 ++doneScans;
970 if (!feof(pfp)) {
971 sprintf(errmsg, "error reading compressed scanline from '%s'", pfname);
972 error(USER, errmsg);
973 fclose(pfp);
974 return RDTnone;
975 }
976 }
977 if (doneScans >= GetHeight()) { // nothing left to do?
978 sprintf(errmsg, "output file '%s' is already complete", pfname);
979 error(WARNING, errmsg);
980 fclose(pfp);
981 return dt;
982 }
983 if (!doneScans) {
984 sprintf(errmsg, "restarting empty frame '%s'", pfname);
985 error(WARNING, errmsg);
986 }
987 if (dfname) { // append depth file, too?
988 if (dfname[0] == '!') {
989 error(USER, "depth data cannot be reloaded from command");
990 fclose(pfp);
991 return RDTnone;
992 }
993 dfp = fopen(dfname, "a");
994 if (!dfp) {
995 sprintf(errmsg, "cannot reopen depth file '%s'", dfname);
996 error(SYSTEM, errmsg);
997 fclose(pfp);
998 return RDTnone;
999 }
1000 SET_FILE_BINARY(dfp);
1001 const long dflen = ftell(dfp);
1002 if (dflen != sizeof(float)*GetWidth()*doneScans) {
1003 fclose(dfp);
1004 dfp = fopen(dfname, "r+");
1005 if (!dfp) return RDTnone; // WTH?
1006 SET_FILE_BINARY(dfp);
1007 }
1008 if (dflen < sizeof(float)*GetWidth()*doneScans) {
1009 HeaderInfo dinfo;
1010 if (getheader(dfp, head_check, &dinfo) < 0)
1011 sprintf(errmsg, "bad header in encoded depth file '%s'",
1012 dfname);
1013 else if (strcmp(dinfo.fmt, DEPTH16FMT))
1014 sprintf(errmsg, "wrong format (%s) for depth file '%s'",
1015 dinfo.fmt, dfname);
1016 else if (!SetReferenceDepth(dinfo.depth_unit))
1017 sprintf(errmsg, "bad/missing reference depth (%s) in '%s'",
1018 dinfo.depth_unit, dfname);
1019 else if (!fscnresolu(hvdim, hvdim+1, dfp) ||
1020 (hvdim[0] != GetWidth()) | (hvdim[1] != GetHeight()))
1021 sprintf(errmsg, "bad/mismatched resolution in '%s'",
1022 dfname);
1023 else
1024 errmsg[0] = '\0';
1025
1026 if (errmsg[0]) {
1027 error(USER, errmsg);
1028 fclose(dfp);
1029 fclose(pfp);
1030 return RDTnone;
1031 }
1032 const long dStart = ftell(dfp);
1033 if (dflen-dStart < 2*GetWidth()*doneScans) {
1034 sprintf(errmsg, "missing %ld depths in '%s'",
1035 (long)GetWidth()*doneScans - (dflen-dStart)/2,
1036 dfname);
1037 error(WARNING, errmsg);
1038 }
1039 fseek(dfp, dStart + 2*GetWidth()*doneScans, SEEK_SET);
1040 dt = RDTnewDT(dt, RDTdshort);
1041 } else {
1042 if (dflen > sizeof(float)*GetWidth()*doneScans)
1043 fseek(dfp, sizeof(float)*GetWidth()*doneScans, SEEK_SET);
1044 dt = RDTnewDT(dt, RDTdfloat);
1045 }
1046 }
1047 int bheight = (psample > 1) ? int(2*psample+.99) : 4;
1048 if (bheight > GetHeight()-doneScans)
1049 bheight = GetHeight()-doneScans;
1050 int vstep = bheight >> (psample > 1);
1051 vstep += !vstep;
1052
1053 NewBar(bheight); // render remainder if we can
1054 if (!RenderBelow(GetHeight()-doneScans, vstep, pfp, dt, dfp)) {
1055 fclose(pfp);
1056 if (dfp) fclose(dfp);
1057 Cleanup();
1058 return RDTnone;
1059 }
1060 NewBar(); // close up and return success
1061 fclose(pfp);
1062 if (dfp) fclose(dfp);
1063 return dt;
1064 }