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root/radiance/ray/src/rt/ray.h
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Comparing ray/src/rt/ray.h (file contents):
Revision 2.25 by greg, Tue Apr 19 01:15:06 2005 UTC vs.
Revision 2.46 by greg, Fri Sep 23 21:53:34 2022 UTC

# Line 9 | Line 9
9   #include  "octree.h"
10   #include  "object.h"
11   #include  "color.h"
12 + #include  "pmapparm.h"
13  
14   #ifdef __cplusplus
15   extern "C" {
16   #endif
17  
18 + #ifndef RNUMBER
19 + #define RNUMBER         unsigned long   /* ray counter (>= sizeof pointer) */
20 + #endif
21 +
22   #define  MAXDIM         32      /* maximum number of dimensions */
23  
24                                  /* ray type flags */
# Line 28 | Line 33 | extern "C" {
33                                  /* reflected ray types */
34   #define  RAYREFL        (SHADOW|REFLECTED|AMBIENT|SPECULAR)
35  
36 + /* Arrange so double's come first for optimal alignment */
37 + /* Pointers and long's come second for 64-bit mode */
38 + /* Int's next (unknown length), then floats, followed by short's & char's */
39   typedef struct ray {
32        unsigned long  rno;     /* unique ray number */
33        int     rlvl;           /* number of reflections for this ray */
34        float   rweight;        /* cumulative weight (for termination) */
35        COLOR   rcoef;          /* contribution coefficient w.r.t. parent */
36        short   rtype;          /* ray type */
37        short   crtype;         /* cumulative ray type */
38        const struct ray  *parent;      /* ray this originated from */
40          FVECT   rorg;           /* origin of ray */
41          FVECT   rdir;           /* normalized direction of ray */
42 <        double  rmax;           /* maximum distance (aft clipping plane) */
43 <        int     rsrc;           /* source we're aiming for */
42 >        RREAL   rmax;           /* maximum distance (aft clipping plane) */
43 >        RREAL   rot;            /* distance to object */
44 >        FVECT   rop;            /* intersection point */
45 >        FVECT   ron;            /* intersection surface normal */
46 >        RREAL   rod;            /* -DOT(rdir, ron) */
47 >        RREAL   uv[2];          /* local coordinates */
48 >        FVECT   pert;           /* surface normal perturbation */
49 >        RREAL   rmt;            /* returned mirrored ray length */
50 >        RREAL   rxt;            /* returned unmirrored ray length */
51 >        const struct ray  *parent;      /* ray this originated from */
52          OBJECT  *clipset;       /* set of objects currently clipped */
53          OBJECT  *newcset;       /* next clipset, used for transmission */
54 +        void    (*revf)(struct ray *);  /* ray evaluation function */
55          void    (*hitf)(OBJECT *, struct ray *);        /* custom hit test */
46        OBJECT  robj;           /* intersected object number */
56          OBJREC  *ro;            /* intersected object (one with material) */
48        double  rot;            /* distance to object */
49        FVECT   rop;            /* intersection point */
50        FVECT   ron;            /* intersection surface normal */
51        double  rod;            /* -DOT(rdir, ron) */
57          FULLXF  *rox;           /* object transformation */
58 <        RREAL   uv[2];          /* local coordinates */
59 <        FVECT   pert;           /* surface normal perturbation */
58 >        int     *slights;       /* list of lights to test for scattering */
59 >        RNUMBER rno;            /* unique ray number */
60 >        OBJECT  robj;           /* intersected object number */
61 >        int     rsrc;           /* source we're aiming for */
62 >        float   rweight;        /* cumulative weight (for termination) */
63 >        float   gecc;           /* scattering eccentricity coefficient */
64 >        COLOR   rcoef;          /* contribution coefficient w.r.t. parent */
65          COLOR   pcol;           /* pattern color */
66 +        COLOR   mcol;           /* mirrored color contribution */
67          COLOR   rcol;           /* returned radiance value */
57        double  rt;             /* returned effective ray length */
68          COLOR   cext;           /* medium extinction coefficient */
69          COLOR   albedo;         /* medium scattering albedo */
70 <        float   gecc;           /* scattering eccentricity coefficient */
71 <        int     *slights;       /* list of lights to test for scattering */
70 >        short   rflips;         /* surface orientation has been reversed */
71 >        short   rlvl;           /* number of reflections for this ray */
72 >        short   rtype;          /* ray type */
73 >        short   crtype;         /* cumulative ray type */
74   }  RAY;
75  
76 + #define  rayvalue(r)    (*(r)->revf)(r)
77 +
78 + #define  raydistance(r) (bright((r)->mcol) > 0.5*bright((r)->rcol) ? \
79 +                                (r)->rmt : (r)->rxt)
80 +
81 + #define  rayreorient(r) if ((r)->rflips & 1) flipsurface(r); else
82 +
83   extern char  VersionID[];       /* Radiance version ID string */
84  
85   extern CUBE     thescene;       /* our scene */
86   extern OBJECT   nsceneobjs;     /* number of objects in our scene */
87  
88 < extern unsigned long    raynum; /* next ray ID */
89 < extern unsigned long    nrays;  /* total rays traced so far */
88 > extern RNUMBER  raynum;         /* next ray ID */
89 > extern RNUMBER  nrays;          /* total rays traced so far */
90  
91   extern OBJREC  Lamb;            /* a Lambertian surface */
92   extern OBJREC  Aftplane;        /* aft clipping object */
# Line 78 | Line 97 | extern int     dimlist[];      /* dimension list for distributi
97   extern int      ndims;          /* number of dimensions so far */
98   extern int      samplendx;      /* index for this sample */
99  
81 extern int      ray_savesiz;    /* size of parameter save buffer */
82
100   extern int      do_irrad;       /* compute irradiance? */
101  
102 + extern int      rand_samp;      /* pure Monte Carlo sampling? */
103 +
104   extern double   dstrsrc;        /* square source distribution */
105   extern double   shadthresh;     /* shadow threshold */
106   extern double   shadcert;       /* shadow testing certainty */
# Line 124 | Line 143 | extern int     ray_pnidle;     /* number of idle processes */
143  
144   typedef struct {                /* rendering parameter holder */
145          int     do_irrad;
146 +        int     rand_samp;
147          double  dstrsrc;
148          double  shadthresh;
149          double  shadcert;
# Line 151 | Line 171 | typedef struct {               /* rendering parameter holder */
171          int     ambincl;
172          short   amblndx[AMBLLEN+1];
173          char    amblval[AMBLLEN*AMBWORD];
174 +        
175 +        /* PMAP: photon mapping parameters */
176 +        PhotonMapParams pmapParams [NUM_PMAP_TYPES];
177   } RAYPARAMS;
178  
179   #define rpambmod(p,i)   ( (i)>=AMBLLEN||(p)->amblndx[i]<0 ? \
# Line 161 | Line 184 | extern void    headclean(void);
184   extern void     openheader(void);
185   extern void     dupheader(void);
186                                          /* defined in persist.c */
187 < extern void persistfile(char *pfn);
187 > extern void     persistfile(char *pfn);
188   extern void     pfdetach(void);
189   extern void     pfclean(void);
190   extern void     pflock(int lf);
# Line 182 | Line 205 | extern void    ray_restore(RAYPARAMS *rp);
205   extern void     ray_defaults(RAYPARAMS *rp);
206                                          /* defined in raypcalls.c */
207   extern void     ray_pinit(char *otnm, int nproc);
208 < extern void     ray_psend(RAY *r);
208 > extern int      ray_psend(RAY *r);
209   extern int      ray_pqueue(RAY *r);
210   extern int      ray_presult(RAY *r, int poll);
211   extern void     ray_pdone(int freall);
212   extern void     ray_popen(int nadd);
213   extern void     ray_pclose(int nsub);
214 +                                        /* defined in ray_fifo.c */
215 + extern int      (*ray_fifo_out)(RAY *r);
216 + extern int      ray_fifo_in(RAY *r);
217 + extern int      ray_fifo_flush(void);
218                                          /* defined in raytrace.c */
219   extern int      rayorigin(RAY *r, int rt, const RAY *ro, const COLOR rc);
220   extern void     rayclear(RAY *r);
221 < extern void     rayvalue(RAY *r);
221 > extern void     raytrace(RAY *r);
222 > extern int      rayreject(OBJREC *o, RAY *r, double t);
223   extern void     rayhit(OBJECT *oset, RAY *r);
224   extern void     raycont(RAY *r);
225   extern void     raytrans(RAY *r);
226 + extern int      raytirrad(OBJREC *m, RAY *r);
227   extern int      rayshade(RAY *r, int mod);
228   extern void     rayparticipate(RAY *r);
229   extern void     raytexture(RAY *r, OBJECT mod);
230   extern int      raymixture(RAY *r, OBJECT fore, OBJECT back, double coef);
231 < extern void     raycontrib(COLOR rc, const RAY *r, int flags);
231 > extern void     raycontrib(RREAL rc[3], const RAY *r, int flags);
232   extern double   raydist(const RAY *r, int flags);
233   extern double   raynormal(FVECT norm, RAY *r);
234   extern void     newrayxf(RAY *r);
# Line 211 | Line 240 | extern void    print_rdefaults(void);
240                                          /* defined in srcdraw.c */
241   extern void     drawsources(COLOR *pic[], float *zbf[],
242                          int x0, int xsiz, int y0, int ysiz);
243 < extern void init_drawsources(int rad);
243 > extern void     init_drawsources(int rad);
244                                          /* defined in rt/initotypes.c */
245 < extern void initotypes(void);
245 > extern void     initotypes(void);
246                                          /* module main procedures */
247 < extern void     rtrace(char *fname);
248 < extern char * formstr(int  f);
247 > extern void     rtrace(char *fname, int nproc);
248 > extern char     *formstr(int  f);
249   extern void     rview(void);
250   extern void     rpict(int seq, char *pout, char *zout, char *prvr);
251  
252 + #ifdef __FAST_MATH__
253 + #define checknorm(vn)   (void)normalize(vn)
254 + #else
255 + #define checknorm(vn)
256 + #endif
257  
258   #ifdef __cplusplus
259   }

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