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root/radiance/ray/src/rt/m_mirror.c
Revision: 2.17
Committed: Tue Feb 24 19:39:26 2015 UTC (9 years, 2 months ago) by greg
Content type: text/plain
Branch: MAIN
Changes since 2.16: +7 -1 lines
Log Message:
Initial check-in of photon map addition by Roland Schregle

File Contents

# User Rev Content
1 greg 1.1 #ifndef lint
2 greg 2.17 static const char RCSid[] = "$Id: m_mirror.c,v 1.2 2014/09/24 09:14:46 taschreg Exp taschreg $";
3 greg 1.1 #endif
4     /*
5     * Routines for mirror material supporting virtual light sources
6     */
7    
8 greg 2.9 #include "copyright.h"
9 greg 2.8
10 greg 1.1 #include "ray.h"
11     #include "otypes.h"
12 schorsch 2.10 #include "rtotypes.h"
13 greg 1.1 #include "source.h"
14 greg 2.17 #include "pmapmat.h"
15 greg 1.1
16     /*
17     * The real arguments for MAT_MIRROR are simply:
18     *
19     * 3 rrefl grefl brefl
20     *
21     * Additionally, the user may specify a single string argument
22     * which is interpreted as the name of the material to use
23     * instead of the mirror if the ray being considered is not
24     * part of the direct calculation.
25     */
26    
27 schorsch 2.10 static int mir_proj(MAT4 pm, OBJREC *o, SRCREC *s, int n);
28     static void mirrorproj(MAT4 m, FVECT nv, double offs);
29 greg 2.8
30 greg 1.1 VSMATERIAL mirror_vs = {mir_proj, 1};
31    
32    
33 greg 2.16 int
34 schorsch 2.10 m_mirror( /* shade mirrored ray */
35 greg 2.16 OBJREC *m,
36     RAY *r
37 schorsch 2.10 )
38 greg 1.1 {
39     COLOR mcolor;
40     RAY nr;
41 greg 2.6 int rpure = 1;
42 greg 2.16 int i;
43 greg 2.17
44     /* PMAP: skip specular refl via ambient bounce if already accounted for
45     * in photon map */
46     if (ambRayInPmap(r))
47     return(1);
48 greg 1.1 /* check arguments */
49     if (m->oargs.nfargs != 3 || m->oargs.nsargs > 1)
50     objerror(m, USER, "bad number of arguments");
51 greg 1.3 /* check for substitute material */
52 greg 2.14 /* but avoid double-counting */
53     if (m->oargs.nsargs > 0 && !(r->crtype & (AMBIENT|SPECULAR)) &&
54 greg 1.3 (r->rsrc < 0 || source[r->rsrc].so != r->ro)) {
55 greg 2.4 if (!strcmp(m->oargs.sarg[0], VOIDID)) {
56     raytrans(r);
57     return(1);
58     }
59 gwlarson 2.7 return(rayshade(r, lastmod(objndx(m), m->oargs.sarg[0])));
60 greg 1.1 }
61 greg 1.3 /* check for bad source ray */
62     if (r->rsrc >= 0 && source[r->rsrc].so != r->ro)
63 greg 2.3 return(1);
64 greg 1.3
65 greg 2.15 if (r->rod < 0.) { /* back is black */
66     if (!backvis)
67     raytrans(r); /* unless back visibility is off */
68 greg 2.3 return(1);
69 greg 2.15 }
70 greg 1.1 /* get modifiers */
71     raytexture(r, m->omod);
72     /* assign material color */
73     setcolor(mcolor, m->oargs.farg[0],
74     m->oargs.farg[1],
75     m->oargs.farg[2]);
76     multcolor(mcolor, r->pcol);
77     /* compute reflected ray */
78     if (r->rsrc >= 0) { /* relayed light source */
79 greg 2.11 rayorigin(&nr, REFLECTED, r, mcolor);
80 greg 1.1 /* ignore textures */
81     for (i = 0; i < 3; i++)
82     nr.rdir[i] = r->rdir[i] + 2.*r->rod*r->ron[i];
83     /* source we're aiming for next */
84 greg 1.2 nr.rsrc = source[r->rsrc].sa.sv.sn;
85 greg 1.1 } else { /* ordinary reflection */
86     FVECT pnorm;
87     double pdot;
88    
89 greg 2.11 if (rayorigin(&nr, REFLECTED, r, mcolor) < 0)
90 greg 2.3 return(1);
91 greg 2.16 if (!(r->crtype & AMBIENT) &&
92     DOT(r->pert,r->pert) > FTINY*FTINY) {
93 greg 2.6 pdot = raynormal(pnorm, r); /* use textures */
94     for (i = 0; i < 3; i++)
95     nr.rdir[i] = r->rdir[i] + 2.*pdot*pnorm[i];
96     rpure = 0;
97     }
98 greg 2.2 /* check for penetration */
99 greg 2.6 if (rpure || DOT(nr.rdir, r->ron) <= FTINY)
100 greg 2.2 for (i = 0; i < 3; i++)
101     nr.rdir[i] = r->rdir[i] + 2.*r->rod*r->ron[i];
102 greg 1.1 }
103 greg 2.13 checknorm(nr.rdir);
104 greg 1.1 rayvalue(&nr);
105 greg 2.11 multcolor(nr.rcol, nr.rcoef);
106 greg 1.1 addcolor(r->rcol, nr.rcol);
107 greg 2.6 if (rpure && r->ro != NULL && isflat(r->ro->otype))
108     r->rt = r->rot + nr.rt;
109 greg 2.3 return(1);
110 greg 1.1 }
111    
112    
113 greg 2.8 static int
114 schorsch 2.10 mir_proj( /* compute a mirror's projection */
115     MAT4 pm,
116 greg 2.16 OBJREC *o,
117 schorsch 2.10 SRCREC *s,
118     int n
119     )
120 greg 1.1 {
121 greg 2.12 double corr = 1.;
122 greg 2.5 FVECT nv, sc;
123 greg 2.12 double od, offs;
124     int i;
125 greg 1.1 /* get surface normal and offset */
126 greg 2.12 offs = od = getplaneq(nv, o);
127     if (s->sflags & SDISTANT)
128     offs = 0.;
129     /* check for extreme point behind */
130     if (s->sflags & SCIR) {
131     if (s->sflags & (SFLAT|SDISTANT))
132     corr = 1.12837917; /* correct setflatss() */
133     else
134     corr = 1.0/0.7236; /* correct sphsetsrc() */
135     }
136 greg 2.5 VCOPY(sc, s->sloc);
137     for (i = s->sflags & SFLAT ? SV : SW; i >= 0; i--)
138 greg 2.12 if (DOT(nv, s->ss[i]) > offs)
139     VSUM(sc, sc, s->ss[i], corr);
140 greg 2.5 else
141 greg 2.12 VSUM(sc, sc, s->ss[i], -corr);
142     if (DOT(sc, nv) <= offs+FTINY)
143 greg 1.1 return(0);
144     /* everything OK -- compute projection */
145     mirrorproj(pm, nv, od);
146     return(1);
147     }
148    
149    
150 schorsch 2.10 static void
151     mirrorproj( /* get mirror projection for surface */
152 greg 2.16 MAT4 m,
153 schorsch 2.10 FVECT nv,
154     double offs
155     )
156 greg 1.1 {
157 greg 2.16 int i, j;
158 greg 1.1 /* assign matrix */
159     setident4(m);
160 greg 1.2 for (j = 0; j < 3; j++) {
161     for (i = 0; i < 3; i++)
162 greg 1.1 m[i][j] -= 2.*nv[i]*nv[j];
163     m[3][j] = 2.*offs*nv[j];
164 greg 1.2 }
165 greg 1.1 }