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root/radiance/ray/src/rt/colortab.c
Revision: 1.15
Committed: Wed Nov 7 17:16:58 1990 UTC (33 years, 5 months ago) by greg
Content type: text/plain
Branch: MAIN
Changes since 1.14: +6 -6 lines
Log Message:
minor fixes to gamma correction

File Contents

# Content
1 /* Copyright (c) 1989 Regents of the University of California */
2
3 #ifndef lint
4 static char SCCSid[] = "$SunId$ LBL";
5 #endif
6
7 /*
8 * colortab.c - allocate and control dynamic color table.
9 *
10 * We start off with a uniform partition of color space.
11 * As pixels are sent to the frame buffer, a histogram is built.
12 * When a new color table is requested, the histogram is used
13 * to make a pseudo-optimal partition, after which the
14 * histogram is cleared. This algorithm
15 * performs only as well as the next drawing's color
16 * distribution is correlated to the last.
17 */
18
19 #include "standard.h"
20
21 #include "color.h"
22 /* histogram resolution */
23 #define NRED 24
24 #define NGRN 32
25 #define NBLU 16
26 #define HMAX NGRN
27 /* minimum box count for adaptive partition */
28 #define MINSAMP 7
29 /* maximum distance^2 before color reassign */
30 #define MAXDST2 12
31 /* map a color */
32 #define map_col(c,p) clrmap[p][ colval(c,p)<1. ? \
33 (int)(colval(c,p)*256.) : 255 ]
34 /* color partition tree */
35 #define CNODE short
36 #define set_branch(p,c) ((c)<<2|(p))
37 #define set_pval(pv) ((pv)<<2|3)
38 #define is_branch(cn) (((cn)&3)!=3)
39 #define is_pval(cn) (((cn)&3)==3)
40 #define part(cn) ((cn)>>2)
41 #define prim(cn) ((cn)&3)
42 #define pval(cn) ((cn)>>2)
43 /* our color table */
44 static struct tabent {
45 long sum[3]; /* sum of colors using this entry */
46 int n; /* number of colors */
47 BYTE ent[3]; /* current table value */
48 } *clrtab = NULL;
49 /* color cube partition */
50 static CNODE *ctree = NULL;
51 /* our color correction map */
52 static BYTE clrmap[3][256];
53 /* histogram of colors used */
54 static unsigned short histo[NRED][NGRN][NBLU];
55 /* initial color cube boundary */
56 static int CLRCUBE[3][2] = {0,NRED,0,NGRN,0,NBLU};
57
58
59 int
60 new_ctab(ncolors) /* start new color table with max ncolors */
61 int ncolors;
62 {
63 int treesize;
64
65 if (ncolors < 1)
66 return(0);
67 /* free old tables */
68 if (clrtab != NULL)
69 free((char *)clrtab);
70 if (ctree != NULL)
71 free((char *)ctree);
72 /* get new tables */
73 for (treesize = 1; treesize < ncolors; treesize <<= 1)
74 ;
75 treesize <<= 1;
76 clrtab = (struct tabent *)calloc(ncolors, sizeof(struct tabent));
77 ctree = (CNODE *)malloc(treesize*sizeof(CNODE));
78 if (clrtab == NULL || ctree == NULL)
79 return(0);
80 /* partition color space */
81 cut(ctree, 0, CLRCUBE, 0, ncolors);
82 /* clear histogram */
83 bzero((char *)histo, sizeof(histo));
84 /* return number of colors used */
85 return(ncolors);
86 }
87
88
89 int
90 get_pixel(col, set_pixel) /* get pixel for color */
91 COLOR col;
92 int (*set_pixel)();
93 {
94 extern char errmsg[];
95 int r, g, b;
96 int cv[3];
97 register CNODE *tp;
98 register int h;
99 /* map color */
100 r = map_col(col,RED);
101 g = map_col(col,GRN);
102 b = map_col(col,BLU);
103 /* reduce resolution */
104 cv[RED] = (r*NRED)>>8;
105 cv[GRN] = (g*NGRN)>>8;
106 cv[BLU] = (b*NBLU)>>8;
107 /* add to histogram */
108 histo[cv[RED]][cv[GRN]][cv[BLU]]++;
109 /* find pixel in tree */
110 for (tp = ctree, h = 0; is_branch(*tp); h++)
111 if (cv[prim(*tp)] < part(*tp))
112 tp += 1<<h; /* left branch */
113 else
114 tp += 1<<(h+1); /* right branch */
115 h = pval(*tp);
116 /* add to color table */
117 clrtab[h].sum[RED] += r;
118 clrtab[h].sum[GRN] += g;
119 clrtab[h].sum[BLU] += b;
120 clrtab[h].n++;
121 /* recompute average */
122 r = clrtab[h].sum[RED] / clrtab[h].n;
123 g = clrtab[h].sum[GRN] / clrtab[h].n;
124 b = clrtab[h].sum[BLU] / clrtab[h].n;
125 /* check for movement */
126 if (clrtab[h].n == 1 ||
127 (r-clrtab[h].ent[RED])*(r-clrtab[h].ent[RED]) +
128 (g-clrtab[h].ent[GRN])*(g-clrtab[h].ent[GRN]) +
129 (b-clrtab[h].ent[BLU])*(b-clrtab[h].ent[BLU]) > MAXDST2) {
130 clrtab[h].ent[RED] = r;
131 clrtab[h].ent[GRN] = g; /* reassign pixel */
132 clrtab[h].ent[BLU] = b;
133 #ifdef DEBUG
134 sprintf(errmsg, "pixel %d = (%d,%d,%d) (%d refs)\n",
135 h, r, g, b, clrtab[h].n);
136 eputs(errmsg);
137 #endif
138 (*set_pixel)(h, r, g, b);
139 }
140 return(h); /* return pixel value */
141 }
142
143
144 make_gmap(gam) /* make gamma correction map */
145 double gam;
146 {
147 extern double pow();
148 register int i;
149
150 for (i = 0; i < 256; i++)
151 clrmap[RED][i] =
152 clrmap[GRN][i] =
153 clrmap[BLU][i] = 256.0 * pow((i+0.5)/256.0, 1.0/gam);
154 }
155
156
157 set_cmap(rmap, gmap, bmap) /* set custom color correction map */
158 BYTE *rmap, *gmap, *bmap;
159 {
160 bcopy((char *)rmap, (char *)clrmap[RED], 256);
161 bcopy((char *)gmap, (char *)clrmap[GRN], 256);
162 bcopy((char *)bmap, (char *)clrmap[BLU], 256);
163 }
164
165
166 map_color(rgb, col) /* map a color to a byte triplet */
167 BYTE rgb[3];
168 COLOR col;
169 {
170 rgb[RED] = map_col(col,RED);
171 rgb[GRN] = map_col(col,GRN);
172 rgb[BLU] = map_col(col,BLU);
173 }
174
175
176 static
177 cut(tree, level, box, c0, c1) /* partition color space */
178 register CNODE *tree;
179 int level;
180 register int box[3][2];
181 int c0, c1;
182 {
183 int kb[3][2];
184
185 if (c1-c0 <= 1) { /* assign pixel */
186 *tree = set_pval(c0);
187 return;
188 }
189 /* split box */
190 *tree = split(box);
191 bcopy((char *)box, (char *)kb, sizeof(kb));
192 /* do left (lesser) branch */
193 kb[prim(*tree)][1] = part(*tree);
194 cut(tree+(1<<level), level+1, kb, c0, (c0+c1)>>1);
195 /* do right branch */
196 kb[prim(*tree)][0] = part(*tree);
197 kb[prim(*tree)][1] = box[prim(*tree)][1];
198 cut(tree+(1<<(level+1)), level+1, kb, (c0+c1)>>1, c1);
199 }
200
201
202 static int
203 split(box) /* find median cut for box */
204 register int box[3][2];
205 {
206 #define c0 r
207 register int r, g, b;
208 int pri;
209 int t[HMAX], med;
210 /* find dominant axis */
211 pri = RED;
212 if (box[GRN][1]-box[GRN][0] > box[pri][1]-box[pri][0])
213 pri = GRN;
214 if (box[BLU][1]-box[BLU][0] > box[pri][1]-box[pri][0])
215 pri = BLU;
216 /* sum histogram over box */
217 med = 0;
218 switch (pri) {
219 case RED:
220 for (r = box[RED][0]; r < box[RED][1]; r++) {
221 t[r] = 0;
222 for (g = box[GRN][0]; g < box[GRN][1]; g++)
223 for (b = box[BLU][0]; b < box[BLU][1]; b++)
224 t[r] += histo[r][g][b];
225 med += t[r];
226 }
227 break;
228 case GRN:
229 for (g = box[GRN][0]; g < box[GRN][1]; g++) {
230 t[g] = 0;
231 for (b = box[BLU][0]; b < box[BLU][1]; b++)
232 for (r = box[RED][0]; r < box[RED][1]; r++)
233 t[g] += histo[r][g][b];
234 med += t[g];
235 }
236 break;
237 case BLU:
238 for (b = box[BLU][0]; b < box[BLU][1]; b++) {
239 t[b] = 0;
240 for (r = box[RED][0]; r < box[RED][1]; r++)
241 for (g = box[GRN][0]; g < box[GRN][1]; g++)
242 t[b] += histo[r][g][b];
243 med += t[b];
244 }
245 break;
246 }
247 if (med < MINSAMP) /* if too sparse, split at midpoint */
248 return(set_branch(pri,(box[pri][0]+box[pri][1])>>1));
249 /* find median position */
250 med >>= 1;
251 for (c0 = box[pri][0]; med > 0; c0++)
252 med -= t[c0];
253 if (c0 > (box[pri][0]+box[pri][1])>>1) /* if past the midpoint */
254 c0--; /* part left of median */
255 return(set_branch(pri,c0));
256 #undef c0
257 }