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root/radiance/ray/src/cv/bsdfrep.h
Revision: 2.15
Committed: Sat Mar 8 18:16:49 2014 UTC (10 years, 1 month ago) by greg
Content type: text/plain
Branch: MAIN
Changes since 2.14: +7 -4 lines
Log Message:
Added neighborhood difference to distance metric for better lobe shaping

File Contents

# User Rev Content
1 greg 2.15 /* RCSid $Id: bsdfrep.h,v 2.14 2014/03/08 06:37:59 greg Exp $ */
2 greg 2.1 /*
3     * Definitions for BSDF representation used to interpolate measured data.
4     *
5     * G. Ward
6     */
7    
8     #include "bsdf.h"
9    
10     #define DEBUG 1
11    
12     #ifndef GRIDRES
13 greg 2.10 #define GRIDRES (1<<8) /* grid resolution per side */
14 greg 2.1 #endif
15     /* convert to/from coded radians */
16     #define ANG2R(r) (int)((r)*((1<<16)/M_PI))
17     #define R2ANG(c) (((c)+.5)*(M_PI/(1<<16)))
18    
19 greg 2.15 typedef union {
20     struct {
21     float v; /* DSF sum */
22     unsigned int n; /* number of values in sum */
23     } sum; /* sum for averaging */
24     float val[2]; /* comparison values */
25 greg 2.1 } GRIDVAL; /* grid value */
26    
27     typedef struct {
28     float peak; /* lobe value at peak */
29     unsigned short crad; /* radius (coded angle) */
30     unsigned char gx, gy; /* grid position */
31     } RBFVAL; /* radial basis function value */
32    
33     struct s_rbfnode; /* forward declaration of RBF struct */
34    
35     typedef struct s_migration {
36     struct s_migration *next; /* next in global edge list */
37     struct s_rbfnode *rbfv[2]; /* from,to vertex */
38     struct s_migration *enxt[2]; /* next from,to sibling */
39     float mtx[1]; /* matrix (extends struct) */
40     } MIGRATION; /* migration link (winged edge structure) */
41    
42     typedef struct s_rbfnode {
43     int ord; /* ordinal position in list */
44     struct s_rbfnode *next; /* next in global RBF list */
45     MIGRATION *ejl; /* edge list for this vertex */
46     FVECT invec; /* incident vector direction */
47     double vtotal; /* volume for normalization */
48     int nrbf; /* number of RBFs */
49     RBFVAL rbfa[1]; /* RBF array (extends struct) */
50     } RBFNODE; /* RBF representation of DSF @ 1 incidence */
51    
52     /* symmetry operations */
53     #define MIRROR_X 1 /* mirror(ed) x-coordinate */
54     #define MIRROR_Y 2 /* mirror(ed) y-coordinate */
55    
56     /* represented incident quadrants */
57     #define INP_QUAD1 1 /* 0-90 degree quadrant */
58     #define INP_QUAD2 2 /* 90-180 degree quadrant */
59     #define INP_QUAD3 4 /* 180-270 degree quadrant */
60     #define INP_QUAD4 8 /* 270-360 degree quadrant */
61    
62 greg 2.11 /* name and manufacturer if known */
63     extern char bsdf_name[];
64     extern char bsdf_manuf[];
65 greg 2.5 /* active grid resolution */
66     extern int grid_res;
67 greg 2.3 /* coverage/symmetry using INP_QUAD? flags */
68 greg 2.1 extern int inp_coverage;
69    
70     /* all incident angles in-plane so far? */
71     extern int single_plane_incident;
72    
73     /* input/output orientations */
74     extern int input_orient;
75     extern int output_orient;
76    
77 greg 2.7 /* log BSDF histogram */
78     #define HISTLEN 256
79     #define BSDF2BIG (1./M_PI)
80     #define BSDF2SML 1e-8
81     #define HISTLNR 17.2759509 /* log(BSDF2BIG/BSDF2SML) */
82 greg 2.9 extern unsigned long bsdf_hist[HISTLEN];
83 greg 2.7 #define histndx(v) (int)(log((v)*(1./BSDF2SML))*(HISTLEN/HISTLNR))
84     #define histval(i) (exp(((i)+.5)*(HISTLNR/HISTLEN))*BSDF2SML)
85    
86     /* BSDF value for boundary regions */
87     extern double bsdf_min;
88    
89 greg 2.1 /* processed incident DSF measurements */
90     extern RBFNODE *dsf_list;
91    
92     /* RBF-linking matrices (edges) */
93     extern MIGRATION *mig_list;
94    
95 greg 2.3 #define mtx_nrows(m) (m)->rbfv[0]->nrbf
96     #define mtx_ncols(m) (m)->rbfv[1]->nrbf
97 greg 2.2 #define mtx_coef(m,i,j) (m)->mtx[(i)*mtx_ncols(m) + (j)]
98 greg 2.1 #define is_src(rbf,m) ((rbf) == (m)->rbfv[0])
99     #define is_dest(rbf,m) ((rbf) == (m)->rbfv[1])
100     #define nextedge(rbf,m) (m)->enxt[is_dest(rbf,m)]
101     #define opp_rbf(rbf,m) (m)->rbfv[is_src(rbf,m)]
102    
103     #define round(v) (int)((v) + .5 - ((v) < -.5))
104    
105 greg 2.2 #define BSDFREP_FMT "BSDF_RBFmesh"
106 greg 2.1
107     /* global argv[0] */
108     extern char *progname;
109    
110     /* get theta value in degrees [0,180) range */
111 greg 2.13 #define get_theta180(v) ((180./M_PI)*Acos((v)[2]))
112 greg 2.1 /* get phi value in degrees, [0,360) range */
113 greg 2.4 #define get_phi360(v) ((180./M_PI)*atan2((v)[1],(v)[0]) + 360.*((v)[1]<0))
114 greg 2.1
115     /* our loaded grid for this incident angle */
116     extern double theta_in_deg, phi_in_deg;
117     extern GRIDVAL dsf_grid[GRIDRES][GRIDRES];
118    
119     /* Register new input direction */
120     extern int new_input_direction(double new_theta, double new_phi);
121    
122     #define new_input_vector(v)\
123     new_input_direction(get_theta180(v),get_phi360(v))
124    
125     /* Apply symmetry to the given vector based on distribution */
126     extern int use_symmetry(FVECT vec);
127    
128     /* Reverse symmetry based on what was done before */
129     extern void rev_symmetry(FVECT vec, int sym);
130    
131     /* Reverse symmetry for an RBF distribution */
132     extern void rev_rbf_symmetry(RBFNODE *rbf, int sym);
133    
134 greg 2.6 /* Rotate RBF to correspond to given incident vector */
135     extern void rotate_rbf(RBFNODE *rbf, const FVECT invec);
136    
137 greg 2.1 /* Compute volume associated with Gaussian lobe */
138     extern double rbf_volume(const RBFVAL *rbfp);
139    
140     /* Compute outgoing vector from grid position */
141     extern void ovec_from_pos(FVECT vec, int xpos, int ypos);
142    
143     /* Compute grid position from normalized input/output vector */
144     extern void pos_from_vec(int pos[2], const FVECT vec);
145    
146     /* Evaluate RBF for DSF at the given normalized outgoing direction */
147     extern double eval_rbfrep(const RBFNODE *rp, const FVECT outvec);
148    
149     /* Insert a new directional scattering function in our global list */
150     extern int insert_dsf(RBFNODE *newrbf);
151    
152     /* Get the DSF indicated by its ordinal position */
153     extern RBFNODE * get_dsf(int ord);
154    
155     /* Get triangle surface orientation (unnormalized) */
156     extern void tri_orient(FVECT vres, const FVECT v1,
157     const FVECT v2, const FVECT v3);
158    
159     /* Determine if vertex order is reversed (inward normal) */
160     extern int is_rev_tri(const FVECT v1,
161     const FVECT v2, const FVECT v3);
162    
163     /* Find vertices completing triangles on either side of the given edge */
164     extern int get_triangles(RBFNODE *rbfv[2], const MIGRATION *mig);
165    
166 greg 2.3 /* Clear our BSDF representation and free memory */
167     extern void clear_bsdf_rep(void);
168    
169 greg 2.1 /* Write our BSDF mesh interpolant out to the given binary stream */
170     extern void save_bsdf_rep(FILE *ofp);
171    
172     /* Read a BSDF mesh interpolant from the given binary stream */
173     extern int load_bsdf_rep(FILE *ifp);
174    
175     /* Start new DSF input grid */
176     extern void new_bsdf_data(double new_theta, double new_phi);
177    
178     /* Add BSDF data point */
179     extern void add_bsdf_data(double theta_out, double phi_out,
180     double val, int isDSF);
181    
182     /* Count up filled nodes and build RBF representation from current grid */
183     extern RBFNODE * make_rbfrep(void);
184    
185     /* Build our triangle mesh from recorded RBFs */
186     extern void build_mesh(void);
187    
188     /* Find edge(s) for interpolating the given vector, applying symmetry */
189     extern int get_interp(MIGRATION *miga[3], FVECT invec);
190    
191 greg 2.12 /* Advect and allocate new RBF along edge (internal call) */
192     extern RBFNODE * e_advect_rbf(const MIGRATION *mig,
193     const FVECT invec, int lobe_lim);
194    
195 greg 2.1 /* Partially advect between recorded incident angles and allocate new RBF */
196 greg 2.8 extern RBFNODE * advect_rbf(const FVECT invec, int lobe_lim);