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root/gliderproc/trunk/MATLAB/opnml/MEX/read_ucd_mex5.c

Revision 495 (checked in by cbc, 11 years ago)

Initial import of Stark code.

Line 
1 #include <math.h>
2 #include <stdio.h>
3 #include "mex.h"
4 #include "opnml_mex5_allocs.c"
5 #define BUFFER_SIZE 72
6
7 /************************************************************
8
9   ####     ##     #####  ######  #    #    ##     #   #
10  #    #   #  #      #    #       #    #   #  #     # #
11  #       #    #     #    #####   #    #  #    #     #
12  #  ###  ######     #    #       # ## #  ######     #
13  #    #  #    #     #    #       ##  ##  #    #     #
14   ####   #    #     #    ######  #    #  #    #     #
15
16 ************************************************************/
17
18
19 void mexFunction(int            nlhs,
20                  mxArray       *plhs[],
21                  int            nrhs,
22                  const mxArray *prhs[])
23 {
24
25 /* ---- read_ucd_mex will be called as :
26         [et,xt,yt,zt,data]=read_ucd(inpname);
27        
28         I/O argument count has already been checked in the calling
29         routine, read_ucd.  The input filename will have to be
30         checked here, though.
31                                              ------------------------ */
32
33    double *x, *y, *z, *dele, *data;
34    int nnd,nne,nnd_data,nne_data,nmodel_data,i,j,**ele;
35    int errflag,strlen,itrash,tcomp,ncomp,*ncompcomp;
36    char *inpname, *line, *cell_type;
37    FILE *fp=NULL, *fopen();
38    
39 /* ---- extract input filename from first pointer to RHS 
40                               --------------------------------------- */ 
41    strlen=mxGetN(prhs[0])+1;
42    inpname=mxCalloc(strlen,sizeof(char));
43    if (mxGetString(prhs[0],inpname,strlen)==1)
44       fprintf(stderr,"Input filename string extraction failed in READ_UCD_MEX.");
45      
46 /* ---- Open UCD filename ------------------------------------------- */
47    if (!(fp = fopen(inpname,"r"))){
48       fprintf(stderr,"Open of %s failed.\n",inpname);
49       /* Allocate the return matricies as empty [] */
50       plhs[0]=mxCreateDoubleMatrix(0,0,mxREAL);
51       plhs[1]=mxCreateDoubleMatrix(0,0,mxREAL);
52       plhs[2]=mxCreateDoubleMatrix(0,0,mxREAL);
53       plhs[3]=mxCreateDoubleMatrix(0,0,mxREAL);
54       plhs[4]=mxCreateDoubleMatrix(0,0,mxREAL);
55       return;
56    }
57
58 /* ---- Read until first line without leading character of "#" ------ */
59    line=mxCalloc(BUFFER_SIZE,sizeof(char));
60    fgets(line,BUFFER_SIZE,fp);   
61    while (!strncmp(line,"#",1))
62       fgets(line,BUFFER_SIZE,fp);
63
64 /* ---- "line" now contains 5 integers embedded in a string
65          They are:  nnd, nne, nnd_data, nne_data, nmodel_data ------- */
66    sscanf(line,"%d %d %d %d %d",&nnd,&nne,&nnd_data,&nne_data,&nmodel_data);
67
68 /* ---- Allocate space for x,y,z ------------------------------------ */
69    x= (double *) mxDvector(0,nnd-1);
70    y= (double *) mxDvector(0,nnd-1);
71    z= (double *) mxDvector(0,nnd-1);
72    
73    for(i=0;i<nnd;i++)
74       fscanf(fp,"%d %lf %lf %lf",&itrash,&x[i],&y[i],&z[i]);
75      
76 /* ---- Allocate space for **ele, the integer element array (nneX3)
77         and for the double MATLAB representation *dele
78         then  fill in the double* array  ---------------------------- */
79    cell_type=mxCalloc(3,sizeof(char));
80    dele = (double *)  mxDvector(0,3*nne-1);
81    ele= (int **) mxImatrix(0,nne-1,0,2);
82    
83    fgets(line,BUFFER_SIZE,fp);  /* Read NewLine at end of current line */
84    /* ---- Read next line and determine cell_type ------------------ */
85    fgets(line,BUFFER_SIZE,fp); 
86    get_token(&line,&itrash,"%d");
87    get_token(&line,&itrash,"%d");
88    get_token(&line,cell_type,"%s");
89    if (strncmp(cell_type,"tri",3)!=0){
90       fprintf(stderr,"READ_UCD can only interpret cell topologies of type \"TRI\".\n");
91       fprintf(stderr,"Did this UCD file come from TRANSECT or QUODTRANS???\n");
92       /* Allocate the return matricies as empty [] */
93       plhs[0]=mxCreateDoubleMatrix(0,0,mxREAL);
94       plhs[1]=mxCreateDoubleMatrix(0,0,mxREAL);
95       plhs[2]=mxCreateDoubleMatrix(0,0,mxREAL);
96       plhs[3]=mxCreateDoubleMatrix(0,0,mxREAL);
97       plhs[4]=mxCreateDoubleMatrix(0,0,mxREAL);
98       return;
99    }
100    
101    /* --- If we're here, break down the remaining data in the current line
102           and scan the rest of the cell lines from 1:nne-1
103                                         ----------------------------- */   
104    get_token(&line,&dele[0],"%lf");
105    get_token(&line,&dele[0+nne],"%lf");
106    get_token(&line,&dele[0+2*nne],"%lf");
107    
108    for(i=1;i<nne;i++)
109       fscanf(fp,"%d %d %s %lf %lf %lf",
110              &itrash,&itrash,cell_type,&dele[i],&dele[i+nne],&dele[i+2*nne]);
111
112    /* ---- The next line is the number of node-data components
113       and their dimensions     -------------------------------------- */
114    fgets(line,BUFFER_SIZE,fp);  /* Read NewLine at end of current line */
115    fgets(line,BUFFER_SIZE,fp);
116    get_token(&line,&ncomp,"%d");
117
118 /* In AVS-UCD format, the nodedata components can be either scalar or vector.
119    We will treat a vector, specified by &ncompcomp[i]=3, as three scalars and
120    returned to the MATLAB workspace as such.  Thus, a node data segment that
121    has compoments specified as (1 3 1) for (scalar vector scalar) will be
122    returned as (1 1 1 1 1) for (scalar scalar scalar scalar scalar).            */
123    
124    ncompcomp=(int*)mxIvector(0,ncomp);
125    tcomp=0;
126    for(i=0;i<ncomp;i++){
127       get_token(&line,&ncompcomp[i],"%d");
128       tcomp=tcomp+ncompcomp[i];
129    }
130          
131    
132    for(j=0;j<tcomp;j++)
133       fgets(line,BUFFER_SIZE,fp);  /* There are the data label lines, which we ignore */
134            
135    
136    /* ---- Scan in the node data lines as per NCOMP from above ------ */
137    data=(double *) mxDvector(0,tcomp*nnd-1);
138    for(i=0;i<nnd;i++){
139       fscanf(fp,"%d",&itrash);   /* Read the node number as trash */
140       for(j=0;j<tcomp;j++)
141          fscanf(fp,"%lf",&data[i+j*nnd]);     
142    }         
143              
144    plhs[0]=mxCreateDoubleMatrix(nne,3,mxREAL);
145    plhs[1]=mxCreateDoubleMatrix(nnd,1,mxREAL);
146    plhs[2]=mxCreateDoubleMatrix(nnd,1,mxREAL);
147    plhs[3]=mxCreateDoubleMatrix(nnd,1,mxREAL);
148    plhs[4]=mxCreateDoubleMatrix(nnd,tcomp,mxREAL);
149
150    mxSetPr(plhs[0],dele);
151    mxSetPr(plhs[1],x);
152    mxSetPr(plhs[2],y);
153    mxSetPr(plhs[3],z);
154    mxSetPr(plhs[4],data);
155    
156    fclose(fp);
157 /* No "frees" needed if arrays allocated with "mx" allocation routines */
158    return;
159 }
160 /*-----------------------------------------------------*
161  *                                                     *
162  *               ****  get_token  ****                 *
163  *                                                     *
164  * returns the next value in tline[] separated by a    *
165  * blank.                                              *
166  *-----------------------------------------------------*/
167
168 int get_token(char **tline, char *data,char  *control)
169 {
170
171   char *line, token[80], c;
172
173   int ntc;
174
175   c = 0;
176   line = *tline;
177
178   for (ntc = 0; c != '\n'; line++) {
179     if (((c  = *line) != ' ') && (c != '\n'))
180       token[ntc++] = c;
181     else if (ntc != 0) {
182       token[ntc] = '\0';
183       sscanf (token, control, data);
184       *tline = line;
185       break;
186       }
187     }
188
189   return (ntc);
190 }
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