fixed some corner cases in drawing code to get the same results as before with way...
[rrdtool.git] / src / rrd_graph.c
1 /****************************************************************************
2  * RRDtool 1.2.10  Copyright by Tobi Oetiker, 1997-2005
3  ****************************************************************************
4  * rrd__graph.c  produce graphs from data in rrdfiles
5  ****************************************************************************/
6
7
8 #include <sys/stat.h>
9
10 #include "rrd_tool.h"
11
12 #if defined(_WIN32) && !defined(__CYGWIN__) && !defined(__CYGWIN32__)
13 #include <io.h>
14 #include <fcntl.h>
15 #endif
16
17 #ifdef HAVE_TIME_H
18 #include <time.h>
19 #endif
20
21 #ifdef HAVE_LOCALE_H
22 #include <locale.h>
23 #endif
24
25 #include "rrd_graph.h"
26
27 /* some constant definitions */
28
29
30
31 #ifndef RRD_DEFAULT_FONT
32 /* there is special code later to pick Cour.ttf when running on windows */
33 #define RRD_DEFAULT_FONT "DejaVuSansMono-Roman.ttf"
34 #endif
35
36 text_prop_t text_prop[] = {   
37      { 8.0, RRD_DEFAULT_FONT }, /* default */
38      { 9.0, RRD_DEFAULT_FONT }, /* title */
39      { 7.0,  RRD_DEFAULT_FONT }, /* axis */
40      { 8.0, RRD_DEFAULT_FONT }, /* unit */
41      { 8.0, RRD_DEFAULT_FONT }  /* legend */
42 };
43
44 xlab_t xlab[] = {
45     {0,        TMT_SECOND,30, TMT_MINUTE,5,  TMT_MINUTE,5,         0,"%H:%M"},
46     {2,        TMT_MINUTE,1,  TMT_MINUTE,5,  TMT_MINUTE,5,         0,"%H:%M"},
47     {5,        TMT_MINUTE,2,  TMT_MINUTE,10, TMT_MINUTE,10,        0,"%H:%M"},
48     {10,       TMT_MINUTE,5,  TMT_MINUTE,20, TMT_MINUTE,20,        0,"%H:%M"},
49     {30,       TMT_MINUTE,10, TMT_HOUR,1,    TMT_HOUR,1,           0,"%H:%M"},
50     {60,       TMT_MINUTE,30, TMT_HOUR,2,    TMT_HOUR,2,           0,"%H:%M"},
51     {180,      TMT_HOUR,1,    TMT_HOUR,6,    TMT_HOUR,6,           0,"%H:%M"},
52     /*{300,      TMT_HOUR,3,    TMT_HOUR,12,   TMT_HOUR,12,    12*3600,"%a %p"},  this looks silly*/
53     {600,      TMT_HOUR,6,    TMT_DAY,1,     TMT_DAY,1,      24*3600,"%a"},
54     {1800,     TMT_HOUR,12,   TMT_DAY,1,     TMT_DAY,2,      24*3600,"%a"},
55     {3600,     TMT_DAY,1,     TMT_WEEK,1,     TMT_WEEK,1,    7*24*3600,"Week %V"},
56     {3*3600,   TMT_WEEK,1,      TMT_MONTH,1,     TMT_WEEK,2,    7*24*3600,"Week %V"},
57     {6*3600,   TMT_MONTH,1,   TMT_MONTH,1,   TMT_MONTH,1, 30*24*3600,"%b"},
58     {48*3600,  TMT_MONTH,1,   TMT_MONTH,3,   TMT_MONTH,3, 30*24*3600,"%b"},
59     {10*24*3600, TMT_YEAR,1,  TMT_YEAR,1,    TMT_YEAR,1, 365*24*3600,"%y"},
60     {-1,TMT_MONTH,0,TMT_MONTH,0,TMT_MONTH,0,0,""}
61 };
62
63 /* sensible logarithmic y label intervals ...
64    the first element of each row defines the possible starting points on the
65    y axis ... the other specify the */
66
67 double yloglab[][12]= {{ 1e9, 1,  0,  0,  0,   0,  0,  0,  0,  0,  0,  0 },
68                        {  1e3, 1,  0,  0,  0,   0,  0,  0,  0,  0,  0,  0 },
69                        {  1e1, 1,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0 },
70                        /* {  1e1, 1,  5,  0,  0,  0,  0,  0,  0,  0,  0,  0 }, */
71                        {  1e1, 1,  2.5,  5,  7.5,  0,  0,  0,  0,  0,  0,  0 },
72                        {  1e1, 1,  2,  4,  6,  8,  0,  0,  0,  0,  0,  0 },
73                        {  1e1, 1,  2,  3,  4,  5,  6,  7,  8,  9,  0,  0 },
74                        {  0,   0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0 }};
75
76 /* sensible y label intervals ...*/
77
78 ylab_t ylab[]= {
79     {0.1, {1,2, 5,10}},
80     {0.2, {1,5,10,20}},
81     {0.5, {1,2, 4,10}},
82     {1.0,   {1,2, 5,10}},
83     {2.0,   {1,5,10,20}},
84     {5.0,   {1,2, 4,10}},
85     {10.0,  {1,2, 5,10}},
86     {20.0,  {1,5,10,20}},
87     {50.0,  {1,2, 4,10}},
88     {100.0, {1,2, 5,10}},
89     {200.0, {1,5,10,20}},
90     {500.0, {1,2, 4,10}},
91     {0.0,   {0,0,0,0}}};
92
93
94 gfx_color_t graph_col[] =   /* default colors */
95 {    0xFFFFFFFF,   /* canvas     */
96      0xF0F0F0FF,   /* background */
97      0xD0D0D0FF,   /* shade A    */
98      0xA0A0A0FF,   /* shade B    */
99      0x90909080,   /* grid       */
100      0xE0505080,   /* major grid */
101      0x000000FF,   /* font       */ 
102      0x802020FF,   /* arrow      */
103      0x202020FF,   /* axis       */
104      0x000000FF    /* frame      */ 
105 };     
106
107
108 /* #define DEBUG */
109
110 #ifdef DEBUG
111 # define DPRINT(x)    (void)(printf x, printf("\n"))
112 #else
113 # define DPRINT(x)
114 #endif
115
116
117 /* initialize with xtr(im,0); */
118 int
119 xtr(image_desc_t *im,time_t mytime){
120     static double pixie;
121     if (mytime==0){
122         pixie = (double) im->xsize / (double)(im->end - im->start);
123         return im->xorigin;
124     }
125     return (int)((double)im->xorigin 
126                  + pixie * ( mytime - im->start ) );
127 }
128
129 /* translate data values into y coordinates */
130 double
131 ytr(image_desc_t *im, double value){
132     static double pixie;
133     double yval;
134     if (isnan(value)){
135       if(!im->logarithmic)
136         pixie = (double) im->ysize / (im->maxval - im->minval);
137       else 
138         pixie = (double) im->ysize / (log10(im->maxval) - log10(im->minval));
139       yval = im->yorigin;
140     } else if(!im->logarithmic) {
141       yval = im->yorigin - pixie * (value - im->minval);
142     } else {
143       if (value < im->minval) {
144         yval = im->yorigin;
145       } else {
146         yval = im->yorigin - pixie * (log10(value) - log10(im->minval));
147       }
148     }
149     /* make sure we don't return anything too unreasonable. GD lib can
150        get terribly slow when drawing lines outside its scope. This is 
151        especially problematic in connection with the rigid option */
152     if (! im->rigid) {
153       /* keep yval as-is */
154     } else if (yval > im->yorigin) {
155       yval = im->yorigin +0.00001;
156     } else if (yval < im->yorigin - im->ysize){
157       yval = im->yorigin - im->ysize - 0.00001;
158     } 
159     return yval;
160 }
161
162
163
164 /* conversion function for symbolic entry names */
165
166
167 #define conv_if(VV,VVV) \
168    if (strcmp(#VV, string) == 0) return VVV ;
169
170 enum gf_en gf_conv(char *string){
171     
172     conv_if(PRINT,GF_PRINT)
173     conv_if(GPRINT,GF_GPRINT)
174     conv_if(COMMENT,GF_COMMENT)
175     conv_if(HRULE,GF_HRULE)
176     conv_if(VRULE,GF_VRULE)
177     conv_if(LINE,GF_LINE)
178     conv_if(AREA,GF_AREA)
179     conv_if(STACK,GF_STACK)
180     conv_if(TICK,GF_TICK)
181     conv_if(DEF,GF_DEF)
182     conv_if(CDEF,GF_CDEF)
183     conv_if(VDEF,GF_VDEF)
184 #ifdef WITH_PIECHART
185     conv_if(PART,GF_PART)
186 #endif
187     conv_if(XPORT,GF_XPORT)
188     conv_if(SHIFT,GF_SHIFT)
189     
190     return (-1);
191 }
192
193 enum gfx_if_en if_conv(char *string){
194     
195     conv_if(PNG,IF_PNG)
196     conv_if(SVG,IF_SVG)
197     conv_if(EPS,IF_EPS)
198     conv_if(PDF,IF_PDF)
199
200     return (-1);
201 }
202
203 enum tmt_en tmt_conv(char *string){
204
205     conv_if(SECOND,TMT_SECOND)
206     conv_if(MINUTE,TMT_MINUTE)
207     conv_if(HOUR,TMT_HOUR)
208     conv_if(DAY,TMT_DAY)
209     conv_if(WEEK,TMT_WEEK)
210     conv_if(MONTH,TMT_MONTH)
211     conv_if(YEAR,TMT_YEAR)
212     return (-1);
213 }
214
215 enum grc_en grc_conv(char *string){
216
217     conv_if(BACK,GRC_BACK)
218     conv_if(CANVAS,GRC_CANVAS)
219     conv_if(SHADEA,GRC_SHADEA)
220     conv_if(SHADEB,GRC_SHADEB)
221     conv_if(GRID,GRC_GRID)
222     conv_if(MGRID,GRC_MGRID)
223     conv_if(FONT,GRC_FONT)
224     conv_if(ARROW,GRC_ARROW)
225     conv_if(AXIS,GRC_AXIS)
226     conv_if(FRAME,GRC_FRAME)
227
228     return -1;  
229 }
230
231 enum text_prop_en text_prop_conv(char *string){
232       
233     conv_if(DEFAULT,TEXT_PROP_DEFAULT)
234     conv_if(TITLE,TEXT_PROP_TITLE)
235     conv_if(AXIS,TEXT_PROP_AXIS)
236     conv_if(UNIT,TEXT_PROP_UNIT)
237     conv_if(LEGEND,TEXT_PROP_LEGEND)
238     return -1;
239 }
240
241
242 #undef conv_if
243
244 int
245 im_free(image_desc_t *im)
246 {
247     unsigned long       i,ii;
248
249     if (im == NULL) return 0;
250     for(i=0;i<(unsigned)im->gdes_c;i++){
251       if (im->gdes[i].data_first){
252         /* careful here, because a single pointer can occur several times */
253           free (im->gdes[i].data);
254           if (im->gdes[i].ds_namv){
255               for (ii=0;ii<im->gdes[i].ds_cnt;ii++)
256                   free(im->gdes[i].ds_namv[ii]);
257               free(im->gdes[i].ds_namv);
258           }
259       }
260       free (im->gdes[i].p_data);
261       free (im->gdes[i].rpnp);
262     }
263     free(im->gdes);
264     gfx_destroy(im->canvas);
265     return 0;
266 }
267
268 /* find SI magnitude symbol for the given number*/
269 void
270 auto_scale(
271            image_desc_t *im,   /* image description */
272            double *value,
273            char **symb_ptr,
274            double *magfact
275            )
276 {
277         
278     char *symbol[] = {"a", /* 10e-18 Atto */
279                       "f", /* 10e-15 Femto */
280                       "p", /* 10e-12 Pico */
281                       "n", /* 10e-9  Nano */
282                       "u", /* 10e-6  Micro */
283                       "m", /* 10e-3  Milli */
284                       " ", /* Base */
285                       "k", /* 10e3   Kilo */
286                       "M", /* 10e6   Mega */
287                       "G", /* 10e9   Giga */
288                       "T", /* 10e12  Tera */
289                       "P", /* 10e15  Peta */
290                       "E"};/* 10e18  Exa */
291
292     int symbcenter = 6;
293     int sindex;  
294
295     if (*value == 0.0 || isnan(*value) ) {
296         sindex = 0;
297         *magfact = 1.0;
298     } else {
299         sindex = floor(log(fabs(*value))/log((double)im->base)); 
300         *magfact = pow((double)im->base, (double)sindex);
301         (*value) /= (*magfact);
302     }
303     if ( sindex <= symbcenter && sindex >= -symbcenter) {
304         (*symb_ptr) = symbol[sindex+symbcenter];
305     }
306     else {
307         (*symb_ptr) = "?";
308     }
309 }
310
311
312 /* find SI magnitude symbol for the numbers on the y-axis*/
313 void 
314 si_unit(
315     image_desc_t *im   /* image description */
316 )
317 {
318
319     char symbol[] = {'a', /* 10e-18 Atto */ 
320                      'f', /* 10e-15 Femto */
321                      'p', /* 10e-12 Pico */
322                      'n', /* 10e-9  Nano */
323                      'u', /* 10e-6  Micro */
324                      'm', /* 10e-3  Milli */
325                      ' ', /* Base */
326                      'k', /* 10e3   Kilo */
327                      'M', /* 10e6   Mega */
328                      'G', /* 10e9   Giga */
329                      'T', /* 10e12  Tera */
330                      'P', /* 10e15  Peta */
331                      'E'};/* 10e18  Exa */
332
333     int   symbcenter = 6;
334     double digits,viewdigits=0;  
335     
336     digits = floor( log( max( fabs(im->minval),fabs(im->maxval)))/log((double)im->base)); 
337
338     if (im->unitsexponent != 9999) {
339         /* unitsexponent = 9, 6, 3, 0, -3, -6, -9, etc */
340         viewdigits = floor(im->unitsexponent / 3);
341     } else {
342         viewdigits = digits;
343     }
344
345     im->magfact = pow((double)im->base , digits);
346     
347 #ifdef DEBUG
348     printf("digits %6.3f  im->magfact %6.3f\n",digits,im->magfact);
349 #endif
350
351     im->viewfactor = im->magfact / pow((double)im->base , viewdigits);
352
353     if ( ((viewdigits+symbcenter) < sizeof(symbol)) &&
354                     ((viewdigits+symbcenter) >= 0) )
355         im->symbol = symbol[(int)viewdigits+symbcenter];
356     else
357         im->symbol = '?';
358  }
359
360 /*  move min and max values around to become sensible */
361
362 void 
363 expand_range(image_desc_t *im)
364 {
365     double sensiblevalues[] ={1000.0,900.0,800.0,750.0,700.0,
366                               600.0,500.0,400.0,300.0,250.0,
367                               200.0,125.0,100.0,90.0,80.0,
368                               75.0,70.0,60.0,50.0,40.0,30.0,
369                               25.0,20.0,10.0,9.0,8.0,
370                               7.0,6.0,5.0,4.0,3.5,3.0,
371                               2.5,2.0,1.8,1.5,1.2,1.0,
372                               0.8,0.7,0.6,0.5,0.4,0.3,0.2,0.1,0.0,-1};
373     
374     double scaled_min,scaled_max;  
375     double adj;
376     int i;
377     
378
379     
380 #ifdef DEBUG
381     printf("Min: %6.2f Max: %6.2f MagFactor: %6.2f\n",
382            im->minval,im->maxval,im->magfact);
383 #endif
384
385     if (isnan(im->ygridstep)){
386         if(im->extra_flags & ALTAUTOSCALE) {
387             /* measure the amplitude of the function. Make sure that
388                graph boundaries are slightly higher then max/min vals
389                so we can see amplitude on the graph */
390               double delt, fact;
391
392               delt = im->maxval - im->minval;
393               adj = delt * 0.1;
394               fact = 2.0 * pow(10.0,
395                     floor(log10(max(fabs(im->minval), fabs(im->maxval))/im->magfact)) - 2);
396               if (delt < fact) {
397                 adj = (fact - delt) * 0.55;
398 #ifdef DEBUG
399               printf("Min: %6.2f Max: %6.2f delt: %6.2f fact: %6.2f adj: %6.2f\n", im->minval, im->maxval, delt, fact, adj);
400 #endif
401               }
402               im->minval -= adj;
403               im->maxval += adj;
404         }
405         else if(im->extra_flags & ALTAUTOSCALE_MAX) {
406             /* measure the amplitude of the function. Make sure that
407                graph boundaries are slightly higher than max vals
408                so we can see amplitude on the graph */
409               adj = (im->maxval - im->minval) * 0.1;
410               im->maxval += adj;
411         }
412         else {
413             scaled_min = im->minval / im->magfact;
414             scaled_max = im->maxval / im->magfact;
415             
416             for (i=1; sensiblevalues[i] > 0; i++){
417                 if (sensiblevalues[i-1]>=scaled_min &&
418                     sensiblevalues[i]<=scaled_min)      
419                     im->minval = sensiblevalues[i]*(im->magfact);
420                 
421                 if (-sensiblevalues[i-1]<=scaled_min &&
422                 -sensiblevalues[i]>=scaled_min)
423                     im->minval = -sensiblevalues[i-1]*(im->magfact);
424                 
425                 if (sensiblevalues[i-1] >= scaled_max &&
426                     sensiblevalues[i] <= scaled_max)
427                     im->maxval = sensiblevalues[i-1]*(im->magfact);
428                 
429                 if (-sensiblevalues[i-1]<=scaled_max &&
430                     -sensiblevalues[i] >=scaled_max)
431                     im->maxval = -sensiblevalues[i]*(im->magfact);
432             }
433         }
434     } else {
435         /* adjust min and max to the grid definition if there is one */
436         im->minval = (double)im->ylabfact * im->ygridstep * 
437             floor(im->minval / ((double)im->ylabfact * im->ygridstep));
438         im->maxval = (double)im->ylabfact * im->ygridstep * 
439             ceil(im->maxval /( (double)im->ylabfact * im->ygridstep));
440     }
441     
442 #ifdef DEBUG
443     fprintf(stderr,"SCALED Min: %6.2f Max: %6.2f Factor: %6.2f\n",
444            im->minval,im->maxval,im->magfact);
445 #endif
446 }
447
448 void
449 apply_gridfit(image_desc_t *im)
450 {
451   if (isnan(im->minval) || isnan(im->maxval))
452     return;
453   ytr(im,DNAN);
454   if (im->logarithmic) {
455     double ya, yb, ypix, ypixfrac;
456     double log10_range = log10(im->maxval) - log10(im->minval);
457     ya = pow((double)10, floor(log10(im->minval)));
458     while (ya < im->minval)
459       ya *= 10;
460     if (ya > im->maxval)
461       return; /* don't have y=10^x gridline */
462     yb = ya * 10;
463     if (yb <= im->maxval) {
464       /* we have at least 2 y=10^x gridlines.
465          Make sure distance between them in pixels
466          are an integer by expanding im->maxval */
467       double y_pixel_delta = ytr(im, ya) - ytr(im, yb);
468       double factor = y_pixel_delta / floor(y_pixel_delta);
469       double new_log10_range = factor * log10_range;
470       double new_ymax_log10 = log10(im->minval) + new_log10_range;
471       im->maxval = pow(10, new_ymax_log10);
472       ytr(im, DNAN); /* reset precalc */
473       log10_range = log10(im->maxval) - log10(im->minval);
474     }
475     /* make sure first y=10^x gridline is located on 
476        integer pixel position by moving scale slightly 
477        downwards (sub-pixel movement) */
478     ypix = ytr(im, ya) + im->ysize; /* add im->ysize so it always is positive */
479     ypixfrac = ypix - floor(ypix);
480     if (ypixfrac > 0 && ypixfrac < 1) {
481       double yfrac = ypixfrac / im->ysize;
482       im->minval = pow(10, log10(im->minval) - yfrac * log10_range);
483       im->maxval = pow(10, log10(im->maxval) - yfrac * log10_range);
484       ytr(im, DNAN); /* reset precalc */
485     }
486   } else {
487     /* Make sure we have an integer pixel distance between
488        each minor gridline */
489     double ypos1 = ytr(im, im->minval);
490     double ypos2 = ytr(im, im->minval + im->ygrid_scale.gridstep);
491     double y_pixel_delta = ypos1 - ypos2;
492     double factor = y_pixel_delta / floor(y_pixel_delta);
493     double new_range = factor * (im->maxval - im->minval);
494     double gridstep = im->ygrid_scale.gridstep;
495     double minor_y, minor_y_px, minor_y_px_frac;
496     im->maxval = im->minval + new_range;
497     ytr(im, DNAN); /* reset precalc */
498     /* make sure first minor gridline is on integer pixel y coord */
499     minor_y = gridstep * floor(im->minval / gridstep);
500     while (minor_y < im->minval)
501       minor_y += gridstep;
502     minor_y_px = ytr(im, minor_y) + im->ysize; /* ensure > 0 by adding ysize */
503     minor_y_px_frac = minor_y_px - floor(minor_y_px);
504     if (minor_y_px_frac > 0 && minor_y_px_frac < 1) {
505       double yfrac = minor_y_px_frac / im->ysize;
506       double range = im->maxval - im->minval;
507       im->minval = im->minval - yfrac * range;
508       im->maxval = im->maxval - yfrac * range;
509       ytr(im, DNAN); /* reset precalc */
510     }
511     calc_horizontal_grid(im); /* recalc with changed im->maxval */
512   }
513 }
514
515 /* reduce data reimplementation by Alex */
516
517 void
518 reduce_data(
519     enum cf_en     cf,         /* which consolidation function ?*/
520     unsigned long  cur_step,   /* step the data currently is in */
521     time_t         *start,     /* start, end and step as requested ... */
522     time_t         *end,       /* ... by the application will be   ... */
523     unsigned long  *step,      /* ... adjusted to represent reality    */
524     unsigned long  *ds_cnt,    /* number of data sources in file */
525     rrd_value_t    **data)     /* two dimensional array containing the data */
526 {
527     int i,reduce_factor = ceil((double)(*step) / (double)cur_step);
528     unsigned long col,dst_row,row_cnt,start_offset,end_offset,skiprows=0;
529     rrd_value_t    *srcptr,*dstptr;
530
531     (*step) = cur_step*reduce_factor; /* set new step size for reduced data */
532     dstptr = *data;
533     srcptr = *data;
534     row_cnt = ((*end)-(*start))/cur_step;
535
536 #ifdef DEBUG
537 #define DEBUG_REDUCE
538 #endif
539 #ifdef DEBUG_REDUCE
540 printf("Reducing %lu rows with factor %i time %lu to %lu, step %lu\n",
541                         row_cnt,reduce_factor,*start,*end,cur_step);
542 for (col=0;col<row_cnt;col++) {
543     printf("time %10lu: ",*start+(col+1)*cur_step);
544     for (i=0;i<*ds_cnt;i++)
545         printf(" %8.2e",srcptr[*ds_cnt*col+i]);
546     printf("\n");
547 }
548 #endif
549
550     /* We have to combine [reduce_factor] rows of the source
551     ** into one row for the destination.  Doing this we also
552     ** need to take care to combine the correct rows.  First
553     ** alter the start and end time so that they are multiples
554     ** of the new step time.  We cannot reduce the amount of
555     ** time so we have to move the end towards the future and
556     ** the start towards the past.
557     */
558     end_offset = (*end) % (*step);
559     start_offset = (*start) % (*step);
560
561     /* If there is a start offset (which cannot be more than
562     ** one destination row), skip the appropriate number of
563     ** source rows and one destination row.  The appropriate
564     ** number is what we do know (start_offset/cur_step) of
565     ** the new interval (*step/cur_step aka reduce_factor).
566     */
567 #ifdef DEBUG_REDUCE
568 printf("start_offset: %lu  end_offset: %lu\n",start_offset,end_offset);
569 printf("row_cnt before:  %lu\n",row_cnt);
570 #endif
571     if (start_offset) {
572         (*start) = (*start)-start_offset;
573         skiprows=reduce_factor-start_offset/cur_step;
574         srcptr+=skiprows* *ds_cnt;
575         for (col=0;col<(*ds_cnt);col++) *dstptr++ = DNAN;
576         row_cnt-=skiprows;
577     }
578 #ifdef DEBUG_REDUCE
579 printf("row_cnt between: %lu\n",row_cnt);
580 #endif
581
582     /* At the end we have some rows that are not going to be
583     ** used, the amount is end_offset/cur_step
584     */
585     if (end_offset) {
586         (*end) = (*end)-end_offset+(*step);
587         skiprows = end_offset/cur_step;
588         row_cnt-=skiprows;
589     }
590 #ifdef DEBUG_REDUCE
591 printf("row_cnt after:   %lu\n",row_cnt);
592 #endif
593
594 /* Sanity check: row_cnt should be multiple of reduce_factor */
595 /* if this gets triggered, something is REALLY WRONG ... we die immediately */
596
597     if (row_cnt%reduce_factor) {
598         printf("SANITY CHECK: %lu rows cannot be reduced by %i \n",
599                                 row_cnt,reduce_factor);
600         printf("BUG in reduce_data()\n");
601         exit(1);
602     }
603
604     /* Now combine reduce_factor intervals at a time
605     ** into one interval for the destination.
606     */
607
608     for (dst_row=0;(long int)row_cnt>=reduce_factor;dst_row++) {
609         for (col=0;col<(*ds_cnt);col++) {
610             rrd_value_t newval=DNAN;
611             unsigned long validval=0;
612
613             for (i=0;i<reduce_factor;i++) {
614                 if (isnan(srcptr[i*(*ds_cnt)+col])) {
615                     continue;
616                 }
617                 validval++;
618                 if (isnan(newval)) newval = srcptr[i*(*ds_cnt)+col];
619                 else {
620                     switch (cf) {
621                         case CF_HWPREDICT:
622                         case CF_DEVSEASONAL:
623                         case CF_DEVPREDICT:
624                         case CF_SEASONAL:
625                         case CF_AVERAGE:
626                             newval += srcptr[i*(*ds_cnt)+col];
627                             break;
628                         case CF_MINIMUM:
629                             newval = min (newval,srcptr[i*(*ds_cnt)+col]);
630                             break;
631                         case CF_FAILURES: 
632                         /* an interval contains a failure if any subintervals contained a failure */
633                         case CF_MAXIMUM:
634                             newval = max (newval,srcptr[i*(*ds_cnt)+col]);
635                             break;
636                         case CF_LAST:
637                             newval = srcptr[i*(*ds_cnt)+col];
638                             break;
639                     }
640                 }
641             }
642             if (validval == 0){newval = DNAN;} else{
643                 switch (cf) {
644                     case CF_HWPREDICT:
645             case CF_DEVSEASONAL:
646                     case CF_DEVPREDICT:
647                     case CF_SEASONAL:
648                     case CF_AVERAGE:                
649                        newval /= validval;
650                         break;
651                     case CF_MINIMUM:
652                     case CF_FAILURES:
653                     case CF_MAXIMUM:
654                     case CF_LAST:
655                         break;
656                 }
657             }
658             *dstptr++=newval;
659         }
660         srcptr+=(*ds_cnt)*reduce_factor;
661         row_cnt-=reduce_factor;
662     }
663     /* If we had to alter the endtime, we didn't have enough
664     ** source rows to fill the last row. Fill it with NaN.
665     */
666     if (end_offset) for (col=0;col<(*ds_cnt);col++) *dstptr++ = DNAN;
667 #ifdef DEBUG_REDUCE
668     row_cnt = ((*end)-(*start))/ *step;
669     srcptr = *data;
670     printf("Done reducing. Currently %lu rows, time %lu to %lu, step %lu\n",
671                                 row_cnt,*start,*end,*step);
672 for (col=0;col<row_cnt;col++) {
673     printf("time %10lu: ",*start+(col+1)*(*step));
674     for (i=0;i<*ds_cnt;i++)
675         printf(" %8.2e",srcptr[*ds_cnt*col+i]);
676     printf("\n");
677 }
678 #endif
679 }
680
681
682 /* get the data required for the graphs from the 
683    relevant rrds ... */
684
685 int
686 data_fetch(image_desc_t *im )
687 {
688     int i,ii;
689     int         skip;
690
691     /* pull the data from the log files ... */
692     for (i=0;i< (int)im->gdes_c;i++){
693         /* only GF_DEF elements fetch data */
694         if (im->gdes[i].gf != GF_DEF) 
695             continue;
696
697         skip=0;
698         /* do we have it already ?*/
699         for (ii=0;ii<i;ii++) {
700             if (im->gdes[ii].gf != GF_DEF) 
701                 continue;
702             if ((strcmp(im->gdes[i].rrd, im->gdes[ii].rrd) == 0)
703                         && (im->gdes[i].cf    == im->gdes[ii].cf)
704                         && (im->gdes[i].cf_reduce == im->gdes[ii].cf_reduce)
705                         && (im->gdes[i].start == im->gdes[ii].start)
706                         && (im->gdes[i].end   == im->gdes[ii].end)
707                         && (im->gdes[i].step  == im->gdes[ii].step)) {
708                 /* OK, the data is already there.
709                 ** Just copy the header portion
710                 */
711                 im->gdes[i].start = im->gdes[ii].start;
712                 im->gdes[i].end = im->gdes[ii].end;
713                 im->gdes[i].step = im->gdes[ii].step;
714                 im->gdes[i].ds_cnt = im->gdes[ii].ds_cnt;
715                 im->gdes[i].ds_namv = im->gdes[ii].ds_namv;             
716                 im->gdes[i].data = im->gdes[ii].data;
717                 im->gdes[i].data_first = 0;
718                 skip=1;
719             }
720             if (skip) 
721                 break;
722         }
723         if (! skip) {
724             unsigned long  ft_step = im->gdes[i].step ;
725             
726             if((rrd_fetch_fn(im->gdes[i].rrd,
727                              im->gdes[i].cf,
728                              &im->gdes[i].start,
729                              &im->gdes[i].end,
730                              &ft_step,
731                              &im->gdes[i].ds_cnt,
732                              &im->gdes[i].ds_namv,
733                              &im->gdes[i].data)) == -1){                
734                 return -1;
735             }
736             im->gdes[i].data_first = 1;     
737             im->gdes[i].step = im->step;
738         
739             if (ft_step < im->gdes[i].step) {
740                 reduce_data(im->gdes[i].cf_reduce,
741                             ft_step,
742                             &im->gdes[i].start,
743                             &im->gdes[i].end,
744                             &im->gdes[i].step,
745                             &im->gdes[i].ds_cnt,
746                             &im->gdes[i].data);
747             } else {
748                 im->gdes[i].step = ft_step;
749             }
750         }
751         
752         /* lets see if the required data source is really there */
753         for(ii=0;ii<(int)im->gdes[i].ds_cnt;ii++){
754             if(strcmp(im->gdes[i].ds_namv[ii],im->gdes[i].ds_nam) == 0){
755                 im->gdes[i].ds=ii; }
756         }
757         if (im->gdes[i].ds== -1){
758             rrd_set_error("No DS called '%s' in '%s'",
759                           im->gdes[i].ds_nam,im->gdes[i].rrd);
760             return -1; 
761         }
762         
763     }
764     return 0;
765 }
766
767 /* evaluate the expressions in the CDEF functions */
768
769 /*************************************************************
770  * CDEF stuff 
771  *************************************************************/
772
773 long
774 find_var_wrapper(void *arg1, char *key)
775 {
776    return find_var((image_desc_t *) arg1, key);
777 }
778
779 /* find gdes containing var*/
780 long
781 find_var(image_desc_t *im, char *key){
782     long ii;
783     for(ii=0;ii<im->gdes_c-1;ii++){
784         if((im->gdes[ii].gf == GF_DEF 
785             || im->gdes[ii].gf == GF_VDEF
786             || im->gdes[ii].gf == GF_CDEF) 
787            && (strcmp(im->gdes[ii].vname,key) == 0)){
788             return ii; 
789         }          
790     }               
791     return -1;
792 }
793
794 /* find the largest common denominator for all the numbers
795    in the 0 terminated num array */
796 long
797 lcd(long *num){
798     long rest;
799     int i;
800     for (i=0;num[i+1]!=0;i++){
801         do { 
802             rest=num[i] % num[i+1];
803             num[i]=num[i+1]; num[i+1]=rest;
804         } while (rest!=0);
805         num[i+1] = num[i];
806     }
807 /*    return i==0?num[i]:num[i-1]; */
808       return num[i];
809 }
810
811 /* run the rpn calculator on all the VDEF and CDEF arguments */
812 int
813 data_calc( image_desc_t *im){
814
815     int       gdi;
816     int       dataidx;
817     long      *steparray, rpi;
818     int       stepcnt;
819     time_t    now;
820     rpnstack_t rpnstack;
821
822     rpnstack_init(&rpnstack);
823
824     for (gdi=0;gdi<im->gdes_c;gdi++){
825         /* Look for GF_VDEF and GF_CDEF in the same loop,
826          * so CDEFs can use VDEFs and vice versa
827          */
828         switch (im->gdes[gdi].gf) {
829             case GF_XPORT:
830               break;
831             case GF_SHIFT: {
832                 graph_desc_t    *vdp = &im->gdes[im->gdes[gdi].vidx];
833                 
834                 /* remove current shift */
835                 vdp->start -= vdp->shift;
836                 vdp->end -= vdp->shift;
837                 
838                 /* vdef */
839                 if (im->gdes[gdi].shidx >= 0) 
840                         vdp->shift = im->gdes[im->gdes[gdi].shidx].vf.val;
841                 /* constant */
842                 else
843                         vdp->shift = im->gdes[gdi].shval;
844
845                 /* normalize shift to multiple of consolidated step */
846                 vdp->shift = (vdp->shift / (long)vdp->step) * (long)vdp->step;
847
848                 /* apply shift */
849                 vdp->start += vdp->shift;
850                 vdp->end += vdp->shift;
851                 break;
852             }
853             case GF_VDEF:
854                 /* A VDEF has no DS.  This also signals other parts
855                  * of rrdtool that this is a VDEF value, not a CDEF.
856                  */
857                 im->gdes[gdi].ds_cnt = 0;
858                 if (vdef_calc(im,gdi)) {
859                     rrd_set_error("Error processing VDEF '%s'"
860                         ,im->gdes[gdi].vname
861                         );
862                     rpnstack_free(&rpnstack);
863                     return -1;
864                 }
865                 break;
866             case GF_CDEF:
867                 im->gdes[gdi].ds_cnt = 1;
868                 im->gdes[gdi].ds = 0;
869                 im->gdes[gdi].data_first = 1;
870                 im->gdes[gdi].start = 0;
871                 im->gdes[gdi].end = 0;
872                 steparray=NULL;
873                 stepcnt = 0;
874                 dataidx=-1;
875
876                 /* Find the variables in the expression.
877                  * - VDEF variables are substituted by their values
878                  *   and the opcode is changed into OP_NUMBER.
879                  * - CDEF variables are analized for their step size,
880                  *   the lowest common denominator of all the step
881                  *   sizes of the data sources involved is calculated
882                  *   and the resulting number is the step size for the
883                  *   resulting data source.
884                  */
885                 for(rpi=0;im->gdes[gdi].rpnp[rpi].op != OP_END;rpi++){
886                     if(im->gdes[gdi].rpnp[rpi].op == OP_VARIABLE  ||
887                         im->gdes[gdi].rpnp[rpi].op == OP_PREV_OTHER){
888                         long ptr = im->gdes[gdi].rpnp[rpi].ptr;
889                         if (im->gdes[ptr].ds_cnt == 0) { /* this is a VDEF data source */
890 #if 0
891                             printf("DEBUG: inside CDEF '%s' processing VDEF '%s'\n",
892                                im->gdes[gdi].vname,
893                                im->gdes[ptr].vname);
894                             printf("DEBUG: value from vdef is %f\n",im->gdes[ptr].vf.val);
895 #endif
896                             im->gdes[gdi].rpnp[rpi].val = im->gdes[ptr].vf.val;
897                             im->gdes[gdi].rpnp[rpi].op  = OP_NUMBER;
898                         } else { /* normal variables and PREF(variables) */
899
900                             /* add one entry to the array that keeps track of the step sizes of the
901                              * data sources going into the CDEF. */
902                             if ((steparray =
903                                  rrd_realloc(steparray,
904                                                          (++stepcnt+1)*sizeof(*steparray)))==NULL){
905                                  rrd_set_error("realloc steparray");
906                                  rpnstack_free(&rpnstack);
907                                  return -1;
908                             };
909
910                             steparray[stepcnt-1] = im->gdes[ptr].step;
911
912                             /* adjust start and end of cdef (gdi) so
913                              * that it runs from the latest start point
914                              * to the earliest endpoint of any of the
915                              * rras involved (ptr)
916                              */
917
918                             if(im->gdes[gdi].start < im->gdes[ptr].start)
919                                 im->gdes[gdi].start = im->gdes[ptr].start;
920
921                             if(im->gdes[gdi].end == 0 ||
922                                         im->gdes[gdi].end > im->gdes[ptr].end)
923                                 im->gdes[gdi].end = im->gdes[ptr].end;
924                 
925                             /* store pointer to the first element of
926                              * the rra providing data for variable,
927                              * further save step size and data source
928                              * count of this rra
929                              */ 
930                             im->gdes[gdi].rpnp[rpi].data   = im->gdes[ptr].data + im->gdes[ptr].ds;
931                             im->gdes[gdi].rpnp[rpi].step   = im->gdes[ptr].step;
932                             im->gdes[gdi].rpnp[rpi].ds_cnt = im->gdes[ptr].ds_cnt;
933
934                             /* backoff the *.data ptr; this is done so
935                              * rpncalc() function doesn't have to treat
936                              * the first case differently
937                              */
938                         } /* if ds_cnt != 0 */
939                     } /* if OP_VARIABLE */
940                 } /* loop through all rpi */
941
942                 /* move the data pointers to the correct period */
943                 for(rpi=0;im->gdes[gdi].rpnp[rpi].op != OP_END;rpi++){
944                     if(im->gdes[gdi].rpnp[rpi].op == OP_VARIABLE ||
945                         im->gdes[gdi].rpnp[rpi].op == OP_PREV_OTHER){
946                         long ptr  = im->gdes[gdi].rpnp[rpi].ptr;
947                         long diff = im->gdes[gdi].start - im->gdes[ptr].start;
948
949                         if(diff > 0)
950                             im->gdes[gdi].rpnp[rpi].data += (diff / im->gdes[ptr].step) * im->gdes[ptr].ds_cnt;
951                      }
952                 }
953
954                 if(steparray == NULL){
955                     rrd_set_error("rpn expressions without DEF"
956                                 " or CDEF variables are not supported");
957                     rpnstack_free(&rpnstack);
958                     return -1;    
959                 }
960                 steparray[stepcnt]=0;
961                 /* Now find the resulting step.  All steps in all
962                  * used RRAs have to be visited
963                  */
964                 im->gdes[gdi].step = lcd(steparray);
965                 free(steparray);
966                 if((im->gdes[gdi].data = malloc((
967                                 (im->gdes[gdi].end-im->gdes[gdi].start) 
968                                     / im->gdes[gdi].step)
969                                     * sizeof(double)))==NULL){
970                     rrd_set_error("malloc im->gdes[gdi].data");
971                     rpnstack_free(&rpnstack);
972                     return -1;
973                 }
974         
975                 /* Step through the new cdef results array and
976                  * calculate the values
977                  */
978                 for (now = im->gdes[gdi].start + im->gdes[gdi].step;
979                                 now<=im->gdes[gdi].end;
980                                 now += im->gdes[gdi].step)
981                 {
982                     rpnp_t  *rpnp = im -> gdes[gdi].rpnp;
983
984                     /* 3rd arg of rpn_calc is for OP_VARIABLE lookups;
985                      * in this case we are advancing by timesteps;
986                      * we use the fact that time_t is a synonym for long
987                      */
988                     if (rpn_calc(rpnp,&rpnstack,(long) now, 
989                                 im->gdes[gdi].data,++dataidx) == -1) {
990                         /* rpn_calc sets the error string */
991                         rpnstack_free(&rpnstack); 
992                         return -1;
993                     } 
994                 } /* enumerate over time steps within a CDEF */
995                 break;
996             default:
997                 continue;
998         }
999     } /* enumerate over CDEFs */
1000     rpnstack_free(&rpnstack);
1001     return 0;
1002 }
1003
1004 /* massage data so, that we get one value for each x coordinate in the graph */
1005 int
1006 data_proc( image_desc_t *im ){
1007     long i,ii;
1008     double pixstep = (double)(im->end-im->start)
1009         /(double)im->xsize; /* how much time 
1010                                passes in one pixel */
1011     double paintval;
1012     double minval=DNAN,maxval=DNAN;
1013     
1014     unsigned long gr_time;    
1015
1016     /* memory for the processed data */
1017     for(i=0;i<im->gdes_c;i++) {
1018         if((im->gdes[i].gf==GF_LINE) ||
1019                 (im->gdes[i].gf==GF_AREA) ||
1020                 (im->gdes[i].gf==GF_TICK) ||
1021                 (im->gdes[i].gf==GF_STACK)) {
1022             if((im->gdes[i].p_data = malloc((im->xsize +1)
1023                                         * sizeof(rrd_value_t)))==NULL){
1024                 rrd_set_error("malloc data_proc");
1025                 return -1;
1026             }
1027         }
1028     }
1029
1030     for (i=0;i<im->xsize;i++) { /* for each pixel */
1031         long vidx;
1032         gr_time = im->start+pixstep*i; /* time of the current step */
1033         paintval=0.0;
1034         
1035         for (ii=0;ii<im->gdes_c;ii++) {
1036             double value;
1037             switch (im->gdes[ii].gf) {
1038                 case GF_LINE:
1039                 case GF_AREA:
1040                 case GF_TICK:
1041                     if (!im->gdes[ii].stack)
1042                         paintval = 0.0;
1043                 case GF_STACK:
1044                     value = im->gdes[ii].yrule;
1045                     if (isnan(value) || (im->gdes[ii].gf == GF_TICK)) {
1046                         /* The time of the data doesn't necessarily match
1047                         ** the time of the graph. Beware.
1048                         */
1049                         vidx = im->gdes[ii].vidx;
1050                         if (im->gdes[vidx].gf == GF_VDEF) {
1051                             value = im->gdes[vidx].vf.val;
1052                         } else if (((long int)gr_time >= (long int)im->gdes[vidx].start) &&
1053                                    ((long int)gr_time <= (long int)im->gdes[vidx].end) ) {
1054                             value = im->gdes[vidx].data[
1055                                 (unsigned long) floor(
1056                                     (double)(gr_time - im->gdes[vidx].start)
1057                                                 / im->gdes[vidx].step)
1058                                 * im->gdes[vidx].ds_cnt
1059                                 + im->gdes[vidx].ds
1060                             ];
1061                         } else {
1062                             value = DNAN;
1063                         }
1064                     };
1065
1066                     if (! isnan(value)) {
1067                         paintval += value;
1068                         im->gdes[ii].p_data[i] = paintval;
1069                         /* GF_TICK: the data values are not
1070                         ** relevant for min and max
1071                         */
1072                         if (finite(paintval) && im->gdes[ii].gf != GF_TICK ) {
1073                             if (isnan(minval) || paintval <  minval)
1074                                 minval = paintval;
1075                             if (isnan(maxval) || paintval >  maxval)
1076                                 maxval = paintval;
1077                         }
1078                     } else {
1079                         im->gdes[ii].p_data[i] = DNAN;
1080                     }
1081                     break;
1082                 default:
1083                     break;
1084             }
1085         }
1086     }
1087
1088     /* if min or max have not been asigned a value this is because
1089        there was no data in the graph ... this is not good ...
1090        lets set these to dummy values then ... */
1091
1092     if (isnan(minval)) minval = 0.0;
1093     if (isnan(maxval)) maxval = 1.0;
1094     
1095     /* adjust min and max values */
1096     if (isnan(im->minval) 
1097         /* don't adjust low-end with log scale */
1098         || ((!im->logarithmic && !im->rigid) && im->minval > minval)
1099         )
1100         im->minval = minval;
1101     if (isnan(im->maxval) 
1102         || (!im->rigid && im->maxval < maxval)
1103         ) {
1104         if (im->logarithmic)
1105             im->maxval = maxval * 1.1;
1106         else
1107             im->maxval = maxval;
1108     }
1109     /* make sure min is smaller than max */
1110     if (im->minval > im->maxval) {
1111             im->minval = 0.99 * im->maxval;
1112     }
1113                       
1114     /* make sure min and max are not equal */
1115     if (im->minval == im->maxval) {
1116         im->maxval *= 1.01; 
1117         if (! im->logarithmic) {
1118             im->minval *= 0.99;
1119         }
1120         /* make sure min and max are not both zero */
1121         if (im->maxval == 0.0) {
1122             im->maxval = 1.0;
1123         }
1124     }
1125     return 0;
1126 }
1127
1128
1129
1130 /* identify the point where the first gridline, label ... gets placed */
1131
1132 time_t
1133 find_first_time(
1134     time_t   start, /* what is the initial time */
1135     enum tmt_en baseint,  /* what is the basic interval */
1136     long     basestep /* how many if these do we jump a time */
1137     )
1138 {
1139     struct tm tm;
1140     localtime_r(&start, &tm);
1141     switch(baseint){
1142     case TMT_SECOND:
1143         tm.tm_sec -= tm.tm_sec % basestep; break;
1144     case TMT_MINUTE: 
1145         tm.tm_sec=0;
1146         tm.tm_min -= tm.tm_min % basestep; 
1147         break;
1148     case TMT_HOUR:
1149         tm.tm_sec=0;
1150         tm.tm_min = 0;
1151         tm.tm_hour -= tm.tm_hour % basestep; break;
1152     case TMT_DAY:
1153         /* we do NOT look at the basestep for this ... */
1154         tm.tm_sec=0;
1155         tm.tm_min = 0;
1156         tm.tm_hour = 0; break;
1157     case TMT_WEEK:
1158         /* we do NOT look at the basestep for this ... */
1159         tm.tm_sec=0;
1160         tm.tm_min = 0;
1161         tm.tm_hour = 0;
1162         tm.tm_mday -= tm.tm_wday -1;    /* -1 because we want the monday */
1163         if (tm.tm_wday==0) tm.tm_mday -= 7; /* we want the *previous* monday */
1164         break;
1165     case TMT_MONTH:
1166         tm.tm_sec=0;
1167         tm.tm_min = 0;
1168         tm.tm_hour = 0;
1169         tm.tm_mday = 1;
1170         tm.tm_mon -= tm.tm_mon % basestep; break;
1171
1172     case TMT_YEAR:
1173         tm.tm_sec=0;
1174         tm.tm_min = 0;
1175         tm.tm_hour = 0;
1176         tm.tm_mday = 1;
1177         tm.tm_mon = 0;
1178         tm.tm_year -= (tm.tm_year+1900) % basestep;
1179         
1180     }
1181     return mktime(&tm);
1182 }
1183 /* identify the point where the next gridline, label ... gets placed */
1184 time_t 
1185 find_next_time(
1186     time_t   current, /* what is the initial time */
1187     enum tmt_en baseint,  /* what is the basic interval */
1188     long     basestep /* how many if these do we jump a time */
1189     )
1190 {
1191     struct tm tm;
1192     time_t madetime;
1193     localtime_r(&current, &tm);
1194     do {
1195         switch(baseint){
1196         case TMT_SECOND:
1197             tm.tm_sec += basestep; break;
1198         case TMT_MINUTE: 
1199             tm.tm_min += basestep; break;
1200         case TMT_HOUR:
1201             tm.tm_hour += basestep; break;
1202         case TMT_DAY:
1203             tm.tm_mday += basestep; break;
1204         case TMT_WEEK:
1205             tm.tm_mday += 7*basestep; break;
1206         case TMT_MONTH:
1207             tm.tm_mon += basestep; break;
1208         case TMT_YEAR:
1209             tm.tm_year += basestep;     
1210         }
1211         madetime = mktime(&tm);
1212     } while (madetime == -1); /* this is necessary to skip impssible times
1213                                  like the daylight saving time skips */
1214     return madetime;
1215           
1216 }
1217
1218
1219 /* calculate values required for PRINT and GPRINT functions */
1220
1221 int
1222 print_calc(image_desc_t *im, char ***prdata) 
1223 {
1224     long i,ii,validsteps;
1225     double printval;
1226     time_t printtime;
1227     int graphelement = 0;
1228     long vidx;
1229     int max_ii; 
1230     double magfact = -1;
1231     char *si_symb = "";
1232     char *percent_s;
1233     int prlines = 1;
1234     if (im->imginfo) prlines++;
1235     for(i=0;i<im->gdes_c;i++){
1236         switch(im->gdes[i].gf){
1237         case GF_PRINT:
1238             prlines++;
1239             if(((*prdata) = rrd_realloc((*prdata),prlines*sizeof(char *)))==NULL){
1240                 rrd_set_error("realloc prdata");
1241                 return 0;
1242             }
1243         case GF_GPRINT:
1244             /* PRINT and GPRINT can now print VDEF generated values.
1245              * There's no need to do any calculations on them as these
1246              * calculations were already made.
1247              */
1248             vidx = im->gdes[i].vidx;
1249             if (im->gdes[vidx].gf==GF_VDEF) { /* simply use vals */
1250                 printval = im->gdes[vidx].vf.val;
1251                 printtime = im->gdes[vidx].vf.when;
1252             } else { /* need to calculate max,min,avg etcetera */
1253                 max_ii =((im->gdes[vidx].end 
1254                         - im->gdes[vidx].start)
1255                         / im->gdes[vidx].step
1256                         * im->gdes[vidx].ds_cnt);
1257                 printval = DNAN;
1258                 validsteps = 0;
1259                 for(    ii=im->gdes[vidx].ds;
1260                         ii < max_ii;
1261                         ii+=im->gdes[vidx].ds_cnt){
1262                     if (! finite(im->gdes[vidx].data[ii]))
1263                         continue;
1264                     if (isnan(printval)){
1265                         printval = im->gdes[vidx].data[ii];
1266                         validsteps++;
1267                         continue;
1268                     }
1269
1270                     switch (im->gdes[i].cf){
1271                         case CF_HWPREDICT:
1272                         case CF_DEVPREDICT:
1273                         case CF_DEVSEASONAL:
1274                         case CF_SEASONAL:
1275                         case CF_AVERAGE:
1276                             validsteps++;
1277                             printval += im->gdes[vidx].data[ii];
1278                             break;
1279                         case CF_MINIMUM:
1280                             printval = min( printval, im->gdes[vidx].data[ii]);
1281                             break;
1282                         case CF_FAILURES:
1283                         case CF_MAXIMUM:
1284                             printval = max( printval, im->gdes[vidx].data[ii]);
1285                             break;
1286                         case CF_LAST:
1287                             printval = im->gdes[vidx].data[ii];
1288                     }
1289                 }
1290                 if (im->gdes[i].cf==CF_AVERAGE || im->gdes[i].cf > CF_LAST) {
1291                     if (validsteps > 1) {
1292                         printval = (printval / validsteps);
1293                     }
1294                 }
1295             } /* prepare printval */
1296
1297             if (!strcmp(im->gdes[i].format,"%c")) { /* VDEF time print */
1298                 char ctime_buf[128]; /* PS: for ctime_r, must be >= 26 chars */
1299                 int iii=0;
1300                 ctime_r(&printtime,ctime_buf); 
1301                 while(isprint(ctime_buf[iii])){iii++;}
1302                 ctime_buf[iii]='\0';
1303                 if (im->gdes[i].gf == GF_PRINT){
1304                     (*prdata)[prlines-2] = malloc((FMT_LEG_LEN+2)*sizeof(char));
1305                     sprintf((*prdata)[prlines-2],"%s (%lu)",ctime_buf,printtime);
1306                     (*prdata)[prlines-1] = NULL;
1307                 } else {
1308                     sprintf(im->gdes[i].legend,"%s (%lu)",ctime_buf,printtime);
1309                     graphelement = 1;
1310                 }
1311             } else {
1312             if ((percent_s = strstr(im->gdes[i].format,"%S")) != NULL) {
1313                 /* Magfact is set to -1 upon entry to print_calc.  If it
1314                  * is still less than 0, then we need to run auto_scale.
1315                  * Otherwise, put the value into the correct units.  If
1316                  * the value is 0, then do not set the symbol or magnification
1317                  * so next the calculation will be performed again. */
1318                 if (magfact < 0.0) {
1319                     auto_scale(im,&printval,&si_symb,&magfact);
1320                     if (printval == 0.0)
1321                         magfact = -1.0;
1322                 } else {
1323                     printval /= magfact;
1324                 }
1325                 *(++percent_s) = 's';
1326             } else if (strstr(im->gdes[i].format,"%s") != NULL) {
1327                 auto_scale(im,&printval,&si_symb,&magfact);
1328             }
1329
1330             if (im->gdes[i].gf == GF_PRINT){
1331                 (*prdata)[prlines-2] = malloc((FMT_LEG_LEN+2)*sizeof(char));
1332                 (*prdata)[prlines-1] = NULL;
1333                 if (bad_format(im->gdes[i].format)) {
1334                         rrd_set_error("bad format for PRINT in '%s'", im->gdes[i].format);
1335                         return -1;
1336                 }
1337 #ifdef HAVE_SNPRINTF
1338                 snprintf((*prdata)[prlines-2],FMT_LEG_LEN,im->gdes[i].format,printval,si_symb);
1339 #else
1340                 sprintf((*prdata)[prlines-2],im->gdes[i].format,printval,si_symb);
1341 #endif
1342             } else {
1343                 /* GF_GPRINT */
1344
1345                 if (bad_format(im->gdes[i].format)) {
1346                         rrd_set_error("bad format for GPRINT in '%s'", im->gdes[i].format);
1347                         return -1;
1348                 }
1349 #ifdef HAVE_SNPRINTF
1350                 snprintf(im->gdes[i].legend,FMT_LEG_LEN-2,im->gdes[i].format,printval,si_symb);
1351 #else
1352                 sprintf(im->gdes[i].legend,im->gdes[i].format,printval,si_symb);
1353 #endif
1354                 graphelement = 1;
1355             }
1356             }
1357             break;
1358         case GF_LINE:
1359         case GF_AREA:
1360         case GF_TICK:
1361         case GF_STACK:
1362         case GF_HRULE:
1363         case GF_VRULE:
1364             graphelement = 1;
1365             break;
1366         case GF_COMMENT:
1367         case GF_DEF:
1368         case GF_CDEF:       
1369         case GF_VDEF:       
1370 #ifdef WITH_PIECHART
1371         case GF_PART:
1372 #endif
1373         case GF_SHIFT:
1374         case GF_XPORT:
1375             break;
1376         }
1377     }
1378     return graphelement;
1379 }
1380
1381
1382 /* place legends with color spots */
1383 int
1384 leg_place(image_desc_t *im)
1385 {
1386     /* graph labels */
1387     int   interleg = im->text_prop[TEXT_PROP_LEGEND].size*2.0;
1388     int   border = im->text_prop[TEXT_PROP_LEGEND].size*2.0;
1389     int   fill=0, fill_last;
1390     int   leg_c = 0;
1391     int   leg_x = border, leg_y = im->yimg;
1392     int   leg_cc;
1393     int   glue = 0;
1394     int   i,ii, mark = 0;
1395     char  prt_fctn; /*special printfunctions */
1396     int  *legspace;
1397
1398   if( !(im->extra_flags & NOLEGEND) & !(im->extra_flags & ONLY_GRAPH) ) {
1399     if ((legspace = malloc(im->gdes_c*sizeof(int)))==NULL){
1400        rrd_set_error("malloc for legspace");
1401        return -1;
1402     }
1403
1404     for(i=0;i<im->gdes_c;i++){
1405         fill_last = fill;
1406         
1407         /* hid legends for rules which are not displayed */
1408         
1409         if(!(im->extra_flags & FORCE_RULES_LEGEND)) {
1410                 if (im->gdes[i].gf == GF_HRULE &&
1411                     (im->gdes[i].yrule < im->minval || im->gdes[i].yrule > im->maxval))
1412                     im->gdes[i].legend[0] = '\0';
1413
1414                 if (im->gdes[i].gf == GF_VRULE &&
1415                     (im->gdes[i].xrule < im->start || im->gdes[i].xrule > im->end))
1416                     im->gdes[i].legend[0] = '\0';
1417         }
1418
1419         leg_cc = strlen(im->gdes[i].legend);
1420         
1421         /* is there a controle code ant the end of the legend string ? */ 
1422         /* and it is not a tab \\t */
1423         if (leg_cc >= 2 && im->gdes[i].legend[leg_cc-2] == '\\' && im->gdes[i].legend[leg_cc-1] != 't') {
1424             prt_fctn = im->gdes[i].legend[leg_cc-1];
1425             leg_cc -= 2;
1426             im->gdes[i].legend[leg_cc] = '\0';
1427         } else {
1428             prt_fctn = '\0';
1429         }
1430         /* remove exess space */
1431         while (prt_fctn=='g' && 
1432                leg_cc > 0 && 
1433                im->gdes[i].legend[leg_cc-1]==' '){
1434            leg_cc--;
1435            im->gdes[i].legend[leg_cc]='\0';
1436         }
1437         if (leg_cc != 0 ){
1438            legspace[i]=(prt_fctn=='g' ? 0 : interleg);
1439            
1440            if (fill > 0){ 
1441                /* no interleg space if string ends in \g */
1442                fill += legspace[i];
1443             }
1444            fill += gfx_get_text_width(im->canvas, fill+border,
1445                                       im->text_prop[TEXT_PROP_LEGEND].font,
1446                                       im->text_prop[TEXT_PROP_LEGEND].size,
1447                                       im->tabwidth,
1448                                       im->gdes[i].legend, 0);
1449             leg_c++;
1450         } else {
1451            legspace[i]=0;
1452         }
1453         /* who said there was a special tag ... ?*/
1454         if (prt_fctn=='g') {    
1455            prt_fctn = '\0';
1456         }
1457         if (prt_fctn == '\0') {
1458             if (i == im->gdes_c -1 ) prt_fctn ='l';
1459             
1460             /* is it time to place the legends ? */
1461             if (fill > im->ximg - 2*border){
1462                 if (leg_c > 1) {
1463                     /* go back one */
1464                     i--; 
1465                     fill = fill_last;
1466                     leg_c--;
1467                     prt_fctn = 'j';
1468                 } else {
1469                     prt_fctn = 'l';
1470                 }
1471                 
1472             }
1473         }
1474
1475
1476         if (prt_fctn != '\0'){  
1477             leg_x = border;
1478             if (leg_c >= 2 && prt_fctn == 'j') {
1479                 glue = (im->ximg - fill - 2* border) / (leg_c-1);
1480             } else {
1481                 glue = 0;
1482             }
1483             if (prt_fctn =='c') leg_x =  (im->ximg - fill) / 2.0;
1484             if (prt_fctn =='r') leg_x =  im->ximg - fill - border;
1485
1486             for(ii=mark;ii<=i;ii++){
1487                 if(im->gdes[ii].legend[0]=='\0')
1488                     continue; /* skip empty legends */
1489                 im->gdes[ii].leg_x = leg_x;
1490                 im->gdes[ii].leg_y = leg_y;
1491                 leg_x += 
1492                  gfx_get_text_width(im->canvas, leg_x,
1493                                       im->text_prop[TEXT_PROP_LEGEND].font,
1494                                       im->text_prop[TEXT_PROP_LEGEND].size,
1495                                       im->tabwidth,
1496                                       im->gdes[ii].legend, 0) 
1497                    + legspace[ii]
1498                    + glue;
1499             }                   
1500             leg_y += im->text_prop[TEXT_PROP_LEGEND].size*1.8;
1501             if (prt_fctn == 's') leg_y -=  im->text_prop[TEXT_PROP_LEGEND].size;           
1502             fill = 0;
1503             leg_c = 0;
1504             mark = ii;
1505         }          
1506     }
1507     im->yimg = leg_y;
1508     free(legspace);
1509   }
1510   return 0;
1511 }
1512
1513 /* create a grid on the graph. it determines what to do
1514    from the values of xsize, start and end */
1515
1516 /* the xaxis labels are determined from the number of seconds per pixel
1517    in the requested graph */
1518
1519
1520
1521 int
1522 calc_horizontal_grid(image_desc_t   *im)
1523 {
1524     double   range;
1525     double   scaledrange;
1526     int      pixel,i;
1527     int      gridind;
1528     int      decimals, fractionals;
1529
1530     im->ygrid_scale.labfact=2;
1531     gridind=-1;
1532     range =  im->maxval - im->minval;
1533     scaledrange = range / im->magfact;
1534
1535         /* does the scale of this graph make it impossible to put lines
1536            on it? If so, give up. */
1537         if (isnan(scaledrange)) {
1538                 return 0;
1539         }
1540
1541     /* find grid spaceing */
1542     pixel=1;
1543     if(isnan(im->ygridstep)){
1544         if(im->extra_flags & ALTYGRID) {
1545             /* find the value with max number of digits. Get number of digits */
1546             decimals = ceil(log10(max(fabs(im->maxval), fabs(im->minval))*im->viewfactor/im->magfact));
1547             if(decimals <= 0) /* everything is small. make place for zero */
1548                 decimals = 1;
1549             
1550             im->ygrid_scale.gridstep = pow((double)10, floor(log10(range*im->viewfactor/im->magfact)))/im->viewfactor*im->magfact;
1551             
1552             if(im->ygrid_scale.gridstep == 0) /* range is one -> 0.1 is reasonable scale */
1553                 im->ygrid_scale.gridstep = 0.1;
1554             /* should have at least 5 lines but no more then 15 */
1555             if(range/im->ygrid_scale.gridstep < 5)
1556                 im->ygrid_scale.gridstep /= 10;
1557             if(range/im->ygrid_scale.gridstep > 15)
1558                 im->ygrid_scale.gridstep *= 10;
1559             if(range/im->ygrid_scale.gridstep > 5) {
1560                 im->ygrid_scale.labfact = 1;
1561                 if(range/im->ygrid_scale.gridstep > 8)
1562                     im->ygrid_scale.labfact = 2;
1563             }
1564             else {
1565                 im->ygrid_scale.gridstep /= 5;
1566                 im->ygrid_scale.labfact = 5;
1567             }
1568             fractionals = floor(log10(im->ygrid_scale.gridstep*(double)im->ygrid_scale.labfact*im->viewfactor/im->magfact));
1569             if(fractionals < 0) { /* small amplitude. */
1570                 int len = decimals - fractionals + 1;
1571                 if (im->unitslength < len+2) im->unitslength = len+2;
1572                 sprintf(im->ygrid_scale.labfmt, "%%%d.%df%s", len, -fractionals,(im->symbol != ' ' ? " %c" : ""));
1573             } else {
1574                 int len = decimals + 1;
1575                 if (im->unitslength < len+2) im->unitslength = len+2;
1576                 sprintf(im->ygrid_scale.labfmt, "%%%d.0f%s", len, ( im->symbol != ' ' ? " %c" : "" ));
1577             }
1578         }
1579         else {
1580             for(i=0;ylab[i].grid > 0;i++){
1581                 pixel = im->ysize / (scaledrange / ylab[i].grid);
1582                 if (pixel > 7) {
1583                     gridind = i;
1584                     break;
1585                 }
1586             }
1587             
1588             for(i=0; i<4;i++) {
1589                if (pixel * ylab[gridind].lfac[i] >=  2.5 * im->text_prop[TEXT_PROP_AXIS].size) {
1590                   im->ygrid_scale.labfact =  ylab[gridind].lfac[i];
1591                   break;
1592                }                          
1593             } 
1594             
1595             im->ygrid_scale.gridstep = ylab[gridind].grid * im->magfact;
1596         }
1597     } else {
1598         im->ygrid_scale.gridstep = im->ygridstep;
1599         im->ygrid_scale.labfact = im->ylabfact;
1600     }
1601     return 1;
1602 }
1603
1604 int draw_horizontal_grid(image_desc_t *im)
1605 {
1606     int      i;
1607     double   scaledstep;
1608     char     graph_label[100];
1609     double X0=im->xorigin;
1610     double X1=im->xorigin+im->xsize;
1611    
1612     int sgrid = (int)( im->minval / im->ygrid_scale.gridstep - 1);
1613     int egrid = (int)( im->maxval / im->ygrid_scale.gridstep + 1);
1614     double MaxY;
1615     scaledstep = im->ygrid_scale.gridstep/(double)im->magfact*(double)im->viewfactor;
1616     MaxY = scaledstep*(double)egrid;
1617     for (i = sgrid; i <= egrid; i++){
1618        double Y0=ytr(im,im->ygrid_scale.gridstep*i);
1619        if ( Y0 >= im->yorigin-im->ysize
1620                  && Y0 <= im->yorigin){       
1621             if(i % im->ygrid_scale.labfact == 0){               
1622                 if (im->symbol == ' ') {
1623                     if(im->extra_flags & ALTYGRID) {
1624                         sprintf(graph_label,im->ygrid_scale.labfmt,scaledstep*(double)i);
1625                     } else {
1626                         if(MaxY < 10) {
1627                            sprintf(graph_label,"%4.1f",scaledstep*(double)i);
1628                         } else {
1629                            sprintf(graph_label,"%4.0f",scaledstep*(double)i);
1630                         }
1631                     }
1632                 }else {
1633                     char sisym = ( i == 0  ? ' ' : im->symbol);
1634                     if(im->extra_flags & ALTYGRID) {
1635                         sprintf(graph_label,im->ygrid_scale.labfmt,scaledstep*(double)i,sisym);
1636                     } else {
1637                         if(MaxY < 10){
1638                           sprintf(graph_label,"%4.1f %c",scaledstep*(double)i, sisym);
1639                         } else {
1640                           sprintf(graph_label,"%4.0f %c",scaledstep*(double)i, sisym);
1641                         }
1642                     }
1643                 }
1644
1645                gfx_new_text ( im->canvas,
1646                               X0-im->text_prop[TEXT_PROP_AXIS].size, Y0,
1647                               im->graph_col[GRC_FONT],
1648                               im->text_prop[TEXT_PROP_AXIS].font,
1649                               im->text_prop[TEXT_PROP_AXIS].size,
1650                               im->tabwidth, 0.0, GFX_H_RIGHT, GFX_V_CENTER,
1651                               graph_label );
1652                gfx_new_dashed_line ( im->canvas,
1653                               X0-2,Y0,
1654                               X1+2,Y0,
1655                               MGRIDWIDTH, im->graph_col[GRC_MGRID],
1656                               im->grid_dash_on, im->grid_dash_off);            
1657                
1658             } else if (!(im->extra_flags & NOMINOR)) {          
1659                gfx_new_dashed_line ( im->canvas,
1660                               X0-1,Y0,
1661                               X1+1,Y0,
1662                               GRIDWIDTH, im->graph_col[GRC_GRID],
1663                               im->grid_dash_on, im->grid_dash_off);            
1664                
1665             }       
1666         }       
1667     } 
1668     return 1;
1669 }
1670
1671 /* logaritmic horizontal grid */
1672 int
1673 horizontal_log_grid(image_desc_t   *im)   
1674 {
1675     double   pixpex;
1676     int      ii,i;
1677     int      minoridx=0, majoridx=0;
1678     char     graph_label[100];
1679     double   X0,X1,Y0;   
1680     double   value, pixperstep, minstep;
1681
1682     /* find grid spaceing */
1683     pixpex= (double)im->ysize / (log10(im->maxval) - log10(im->minval));
1684
1685         if (isnan(pixpex)) {
1686                 return 0;
1687         }
1688
1689     for(i=0;yloglab[i][0] > 0;i++){
1690         minstep = log10(yloglab[i][0]);
1691         for(ii=1;yloglab[i][ii+1] > 0;ii++){
1692             if(yloglab[i][ii+2]==0){
1693                 minstep = log10(yloglab[i][ii+1])-log10(yloglab[i][ii]);
1694                 break;
1695             }
1696         }
1697         pixperstep = pixpex * minstep;
1698         if(pixperstep > 5){minoridx = i;}
1699        if(pixperstep > 2 *  im->text_prop[TEXT_PROP_LEGEND].size){majoridx = i;}
1700     }
1701    
1702    X0=im->xorigin;
1703    X1=im->xorigin+im->xsize;
1704     /* paint minor grid */
1705     for (value = pow((double)10, log10(im->minval) 
1706                           - fmod(log10(im->minval),log10(yloglab[minoridx][0])));
1707          value  <= im->maxval;
1708          value *= yloglab[minoridx][0]){
1709         if (value < im->minval) continue;
1710         i=0;    
1711         while(yloglab[minoridx][++i] > 0){          
1712            Y0 = ytr(im,value * yloglab[minoridx][i]);
1713            if (Y0 <= im->yorigin - im->ysize) break;
1714            gfx_new_dashed_line ( im->canvas,
1715                           X0-1,Y0,
1716                           X1+1,Y0,
1717                           GRIDWIDTH, im->graph_col[GRC_GRID],
1718                           im->grid_dash_on, im->grid_dash_off);
1719         }
1720     }
1721
1722     /* paint major grid and labels*/
1723     for (value = pow((double)10, log10(im->minval) 
1724                           - fmod(log10(im->minval),log10(yloglab[majoridx][0])));
1725          value <= im->maxval;
1726          value *= yloglab[majoridx][0]){
1727         if (value < im->minval) continue;
1728         i=0;    
1729         while(yloglab[majoridx][++i] > 0){          
1730            Y0 = ytr(im,value * yloglab[majoridx][i]);    
1731            if (Y0 <= im->yorigin - im->ysize) break;
1732            gfx_new_dashed_line ( im->canvas,
1733                           X0-2,Y0,
1734                           X1+2,Y0,
1735                           MGRIDWIDTH, im->graph_col[GRC_MGRID],
1736                           im->grid_dash_on, im->grid_dash_off);
1737            
1738            sprintf(graph_label,"%3.0e",value * yloglab[majoridx][i]);
1739            gfx_new_text ( im->canvas,
1740                           X0-im->text_prop[TEXT_PROP_AXIS].size, Y0,
1741                           im->graph_col[GRC_FONT],
1742                           im->text_prop[TEXT_PROP_AXIS].font,
1743                           im->text_prop[TEXT_PROP_AXIS].size,
1744                           im->tabwidth,0.0, GFX_H_RIGHT, GFX_V_CENTER,
1745                           graph_label );
1746         } 
1747     }
1748         return 1;
1749 }
1750
1751
1752 void
1753 vertical_grid(
1754     image_desc_t   *im )
1755 {   
1756     int xlab_sel;               /* which sort of label and grid ? */
1757     time_t ti, tilab, timajor;
1758     long factor;
1759     char graph_label[100];
1760     double X0,Y0,Y1; /* points for filled graph and more*/
1761     struct tm tm;
1762
1763     /* the type of time grid is determined by finding
1764        the number of seconds per pixel in the graph */
1765     
1766     
1767     if(im->xlab_user.minsec == -1){
1768         factor=(im->end - im->start)/im->xsize;
1769         xlab_sel=0;
1770         while ( xlab[xlab_sel+1].minsec != -1 
1771                 && xlab[xlab_sel+1].minsec <= factor){ xlab_sel++; }
1772         im->xlab_user.gridtm = xlab[xlab_sel].gridtm;
1773         im->xlab_user.gridst = xlab[xlab_sel].gridst;
1774         im->xlab_user.mgridtm = xlab[xlab_sel].mgridtm;
1775         im->xlab_user.mgridst = xlab[xlab_sel].mgridst;
1776         im->xlab_user.labtm = xlab[xlab_sel].labtm;
1777         im->xlab_user.labst = xlab[xlab_sel].labst;
1778         im->xlab_user.precis = xlab[xlab_sel].precis;
1779         im->xlab_user.stst = xlab[xlab_sel].stst;
1780     }
1781     
1782     /* y coords are the same for every line ... */
1783     Y0 = im->yorigin;
1784     Y1 = im->yorigin-im->ysize;
1785    
1786
1787     /* paint the minor grid */
1788     if (!(im->extra_flags & NOMINOR))
1789     {
1790         for(ti = find_first_time(im->start,
1791                                 im->xlab_user.gridtm,
1792                                 im->xlab_user.gridst),
1793             timajor = find_first_time(im->start,
1794                                 im->xlab_user.mgridtm,
1795                                 im->xlab_user.mgridst);
1796             ti < im->end; 
1797             ti = find_next_time(ti,im->xlab_user.gridtm,im->xlab_user.gridst)
1798             ){
1799             /* are we inside the graph ? */
1800             if (ti < im->start || ti > im->end) continue;
1801             while (timajor < ti) {
1802                 timajor = find_next_time(timajor,
1803                         im->xlab_user.mgridtm, im->xlab_user.mgridst);
1804             }
1805             if (ti == timajor) continue; /* skip as falls on major grid line */
1806            X0 = xtr(im,ti);       
1807            gfx_new_dashed_line(im->canvas,X0,Y0+1, X0,Y1-1,GRIDWIDTH,
1808                im->graph_col[GRC_GRID],
1809                im->grid_dash_on, im->grid_dash_off);
1810            
1811         }
1812     }
1813
1814     /* paint the major grid */
1815     for(ti = find_first_time(im->start,
1816                             im->xlab_user.mgridtm,
1817                             im->xlab_user.mgridst);
1818         ti < im->end; 
1819         ti = find_next_time(ti,im->xlab_user.mgridtm,im->xlab_user.mgridst)
1820         ){
1821         /* are we inside the graph ? */
1822         if (ti < im->start || ti > im->end) continue;
1823        X0 = xtr(im,ti);
1824        gfx_new_dashed_line(im->canvas,X0,Y0+3, X0,Y1-2,MGRIDWIDTH,
1825            im->graph_col[GRC_MGRID],
1826            im->grid_dash_on, im->grid_dash_off);
1827        
1828     }
1829     /* paint the labels below the graph */
1830     for(ti = find_first_time(im->start - im->xlab_user.precis/2,
1831                             im->xlab_user.labtm,
1832                             im->xlab_user.labst);
1833         ti <= im->end - im->xlab_user.precis/2; 
1834         ti = find_next_time(ti,im->xlab_user.labtm,im->xlab_user.labst)
1835         ){
1836         tilab= ti + im->xlab_user.precis/2; /* correct time for the label */
1837         /* are we inside the graph ? */
1838         if (tilab < im->start || tilab > im->end) continue;
1839
1840 #if HAVE_STRFTIME
1841         localtime_r(&tilab, &tm);
1842         strftime(graph_label,99,im->xlab_user.stst, &tm);
1843 #else
1844 # error "your libc has no strftime I guess we'll abort the exercise here."
1845 #endif
1846        gfx_new_text ( im->canvas,
1847                       xtr(im,tilab), Y0+im->text_prop[TEXT_PROP_AXIS].size*1.4+5,
1848                       im->graph_col[GRC_FONT],
1849                       im->text_prop[TEXT_PROP_AXIS].font,
1850                       im->text_prop[TEXT_PROP_AXIS].size,
1851                       im->tabwidth, 0.0, GFX_H_CENTER, GFX_V_BOTTOM,
1852                       graph_label );
1853        
1854     }
1855
1856 }
1857
1858
1859 void 
1860 axis_paint(
1861    image_desc_t   *im
1862            )
1863 {   
1864     /* draw x and y axis */
1865     /* gfx_new_line ( im->canvas, im->xorigin+im->xsize,im->yorigin,
1866                       im->xorigin+im->xsize,im->yorigin-im->ysize,
1867                       GRIDWIDTH, im->graph_col[GRC_AXIS]);
1868        
1869        gfx_new_line ( im->canvas, im->xorigin,im->yorigin-im->ysize,
1870                          im->xorigin+im->xsize,im->yorigin-im->ysize,
1871                          GRIDWIDTH, im->graph_col[GRC_AXIS]); */
1872    
1873        gfx_new_line ( im->canvas, im->xorigin-4,im->yorigin,
1874                          im->xorigin+im->xsize+4,im->yorigin,
1875                          MGRIDWIDTH, im->graph_col[GRC_AXIS]);
1876    
1877        gfx_new_line ( im->canvas, im->xorigin,im->yorigin+4,
1878                          im->xorigin,im->yorigin-im->ysize-4,
1879                          MGRIDWIDTH, im->graph_col[GRC_AXIS]);
1880    
1881     
1882     /* arrow for X and Y axis direction */
1883     gfx_new_area ( im->canvas, 
1884                    im->xorigin+im->xsize+2,  im->yorigin-2,
1885                    im->xorigin+im->xsize+2,  im->yorigin+3,
1886                    im->xorigin+im->xsize+7,  im->yorigin+0.5, /* LINEOFFSET */
1887                    im->graph_col[GRC_ARROW]);
1888
1889     gfx_new_area ( im->canvas, 
1890                    im->xorigin-2,  im->yorigin-im->ysize-2,
1891                    im->xorigin+3,  im->yorigin-im->ysize-2,
1892                    im->xorigin+0.5,    im->yorigin-im->ysize-7, /* LINEOFFSET */
1893                    im->graph_col[GRC_ARROW]);
1894
1895 }
1896
1897 void
1898 grid_paint(image_desc_t   *im)
1899 {   
1900     long i;
1901     int res=0;
1902     double X0,Y0; /* points for filled graph and more*/
1903     gfx_node_t *node;
1904
1905     /* draw 3d border */
1906     node = gfx_new_area (im->canvas, 0,im->yimg,
1907                                  2,im->yimg-2,
1908                                  2,2,im->graph_col[GRC_SHADEA]);
1909     gfx_add_point( node , im->ximg - 2, 2 );
1910     gfx_add_point( node , im->ximg, 0 );
1911     gfx_add_point( node , 0,0 );
1912 /*    gfx_add_point( node , 0,im->yimg ); */
1913    
1914     node =  gfx_new_area (im->canvas, 2,im->yimg-2,
1915                                   im->ximg-2,im->yimg-2,
1916                                   im->ximg - 2, 2,
1917                                  im->graph_col[GRC_SHADEB]);
1918     gfx_add_point( node ,   im->ximg,0);
1919     gfx_add_point( node ,   im->ximg,im->yimg);
1920     gfx_add_point( node ,   0,im->yimg);
1921 /*    gfx_add_point( node , 0,im->yimg ); */
1922    
1923    
1924     if (im->draw_x_grid == 1 )
1925       vertical_grid(im);
1926     
1927     if (im->draw_y_grid == 1){
1928         if(im->logarithmic){
1929                 res = horizontal_log_grid(im);
1930         } else {
1931                 res = draw_horizontal_grid(im);
1932         }
1933         
1934         /* dont draw horizontal grid if there is no min and max val */
1935         if (! res ) {
1936           char *nodata = "No Data found";
1937            gfx_new_text(im->canvas,im->ximg/2, (2*im->yorigin-im->ysize) / 2,
1938                         im->graph_col[GRC_FONT],
1939                         im->text_prop[TEXT_PROP_AXIS].font,
1940                         im->text_prop[TEXT_PROP_AXIS].size,
1941                         im->tabwidth, 0.0, GFX_H_CENTER, GFX_V_CENTER,
1942                         nodata );          
1943         }
1944     }
1945
1946     /* yaxis unit description */
1947     gfx_new_text( im->canvas,
1948                   10, (im->yorigin - im->ysize/2),
1949                   im->graph_col[GRC_FONT],
1950                   im->text_prop[TEXT_PROP_UNIT].font,
1951                   im->text_prop[TEXT_PROP_UNIT].size, im->tabwidth, 
1952                   RRDGRAPH_YLEGEND_ANGLE,
1953                   GFX_H_LEFT, GFX_V_CENTER,
1954                   im->ylegend);
1955
1956     /* graph title */
1957     gfx_new_text( im->canvas,
1958                   im->ximg/2, im->text_prop[TEXT_PROP_TITLE].size*1.3+4,
1959                   im->graph_col[GRC_FONT],
1960                   im->text_prop[TEXT_PROP_TITLE].font,
1961                   im->text_prop[TEXT_PROP_TITLE].size, im->tabwidth, 0.0,
1962                   GFX_H_CENTER, GFX_V_CENTER,
1963                   im->title);
1964     /* rrdtool 'logo' */
1965     gfx_new_text( im->canvas,
1966                   im->ximg-7, 7,
1967                   ( im->graph_col[GRC_FONT] & 0xffffff00 ) | 0x00000044,
1968                   im->text_prop[TEXT_PROP_AXIS].font,
1969                   5.5, im->tabwidth, 270,
1970                   GFX_H_RIGHT, GFX_V_TOP,
1971                   "RRDTOOL / TOBI OETIKER");
1972     
1973     /* graph labels */
1974     if( !(im->extra_flags & NOLEGEND) & !(im->extra_flags & ONLY_GRAPH) ) {
1975             for(i=0;i<im->gdes_c;i++){
1976                     if(im->gdes[i].legend[0] =='\0')
1977                             continue;
1978                     
1979                     /* im->gdes[i].leg_y is the bottom of the legend */
1980                     X0 = im->gdes[i].leg_x;
1981                     Y0 = im->gdes[i].leg_y;
1982                     gfx_new_text ( im->canvas, X0, Y0,
1983                                    im->graph_col[GRC_FONT],
1984                                    im->text_prop[TEXT_PROP_LEGEND].font,
1985                                    im->text_prop[TEXT_PROP_LEGEND].size,
1986                                    im->tabwidth,0.0, GFX_H_LEFT, GFX_V_BOTTOM,
1987                                    im->gdes[i].legend );
1988                     /* The legend for GRAPH items starts with "M " to have
1989                        enough space for the box */
1990                     if (           im->gdes[i].gf != GF_PRINT &&
1991                                    im->gdes[i].gf != GF_GPRINT &&
1992                                    im->gdes[i].gf != GF_COMMENT) {
1993                             int boxH, boxV;
1994                             
1995                             boxH = gfx_get_text_width(im->canvas, 0,
1996                                                       im->text_prop[TEXT_PROP_LEGEND].font,
1997                                                       im->text_prop[TEXT_PROP_LEGEND].size,
1998                                                       im->tabwidth,"o", 0) * 1.2;
1999                             boxV = boxH*1.1;
2000                             
2001                             /* make sure transparent colors show up the same way as in the graph */
2002                              node = gfx_new_area(im->canvas,
2003                                                 X0,Y0-boxV,
2004                                                 X0,Y0,
2005                                                 X0+boxH,Y0,
2006                                                 im->graph_col[GRC_BACK]);
2007                             gfx_add_point ( node, X0+boxH, Y0-boxV );
2008
2009                             node = gfx_new_area(im->canvas,
2010                                                 X0,Y0-boxV,
2011                                                 X0,Y0,
2012                                                 X0+boxH,Y0,
2013                                                 im->gdes[i].col);
2014                             gfx_add_point ( node, X0+boxH, Y0-boxV );
2015                             node = gfx_new_line(im->canvas,
2016                                                 X0,Y0-boxV,
2017                                                 X0,Y0,
2018                                                 1.0,im->graph_col[GRC_FRAME]);
2019                             gfx_add_point(node,X0+boxH,Y0);
2020                             gfx_add_point(node,X0+boxH,Y0-boxV);
2021                             gfx_close_path(node);
2022                     }
2023             }
2024     }
2025 }
2026
2027
2028 /*****************************************************
2029  * lazy check make sure we rely need to create this graph
2030  *****************************************************/
2031
2032 int lazy_check(image_desc_t *im){
2033     FILE *fd = NULL;
2034         int size = 1;
2035     struct stat  imgstat;
2036     
2037     if (im->lazy == 0) return 0; /* no lazy option */
2038     if (stat(im->graphfile,&imgstat) != 0) 
2039       return 0; /* can't stat */
2040     /* one pixel in the existing graph is more then what we would
2041        change here ... */
2042     if (time(NULL) - imgstat.st_mtime > 
2043         (im->end - im->start) / im->xsize) 
2044       return 0;
2045     if ((fd = fopen(im->graphfile,"rb")) == NULL) 
2046       return 0; /* the file does not exist */
2047     switch (im->canvas->imgformat) {
2048     case IF_PNG:
2049            size = PngSize(fd,&(im->ximg),&(im->yimg));
2050            break;
2051     default:
2052            size = 1;
2053     }
2054     fclose(fd);
2055     return size;
2056 }
2057
2058 #ifdef WITH_PIECHART
2059 void
2060 pie_part(image_desc_t *im, gfx_color_t color,
2061             double PieCenterX, double PieCenterY, double Radius,
2062             double startangle, double endangle)
2063 {
2064     gfx_node_t *node;
2065     double angle;
2066     double step=M_PI/50; /* Number of iterations for the circle;
2067                          ** 10 is definitely too low, more than
2068                          ** 50 seems to be overkill
2069                          */
2070
2071     /* Strange but true: we have to work clockwise or else
2072     ** anti aliasing nor transparency don't work.
2073     **
2074     ** This test is here to make sure we do it right, also
2075     ** this makes the for...next loop more easy to implement.
2076     ** The return will occur if the user enters a negative number
2077     ** (which shouldn't be done according to the specs) or if the
2078     ** programmers do something wrong (which, as we all know, never
2079     ** happens anyway :)
2080     */
2081     if (endangle<startangle) return;
2082
2083     /* Hidden feature: Radius decreases each full circle */
2084     angle=startangle;
2085     while (angle>=2*M_PI) {
2086         angle  -= 2*M_PI;
2087         Radius *= 0.8;
2088     }
2089
2090     node=gfx_new_area(im->canvas,
2091                 PieCenterX+sin(startangle)*Radius,
2092                 PieCenterY-cos(startangle)*Radius,
2093                 PieCenterX,
2094                 PieCenterY,
2095                 PieCenterX+sin(endangle)*Radius,
2096                 PieCenterY-cos(endangle)*Radius,
2097                 color);
2098     for (angle=endangle;angle-startangle>=step;angle-=step) {
2099         gfx_add_point(node,
2100                 PieCenterX+sin(angle)*Radius,
2101                 PieCenterY-cos(angle)*Radius );
2102     }
2103 }
2104
2105 #endif
2106
2107 int
2108 graph_size_location(image_desc_t *im, int elements
2109
2110 #ifdef WITH_PIECHART
2111 , int piechart
2112 #endif
2113
2114  )
2115 {
2116     /* The actual size of the image to draw is determined from
2117     ** several sources.  The size given on the command line is
2118     ** the graph area but we need more as we have to draw labels
2119     ** and other things outside the graph area
2120     */
2121
2122     /* +-+-------------------------------------------+
2123     ** |l|.................title.....................|
2124     ** |e+--+-------------------------------+--------+
2125     ** |b| b|                               |        |
2126     ** |a| a|                               |  pie   |
2127     ** |l| l|          main graph area      | chart  |
2128     ** |.| .|                               |  area  |
2129     ** |t| y|                               |        |
2130     ** |r+--+-------------------------------+--------+
2131     ** |e|  | x-axis labels                 |        |
2132     ** |v+--+-------------------------------+--------+
2133     ** | |..............legends......................|
2134     ** +-+-------------------------------------------+
2135     */
2136     int Xvertical=0,    
2137                         Ytitle   =0,
2138         Xylabel  =0,    
2139         Xmain    =0,    Ymain    =0,
2140 #ifdef WITH_PIECHART
2141         Xpie     =0,    Ypie     =0,
2142 #endif
2143                         Yxlabel  =0,
2144 #if 0
2145         Xlegend  =0,    Ylegend  =0,
2146 #endif
2147         Xspacing =15,  Yspacing =15;
2148
2149     if (im->extra_flags & ONLY_GRAPH) {
2150         im->xorigin =0;
2151         im->ximg = im->xsize;
2152         im->yimg = im->ysize;
2153         im->yorigin = im->ysize;
2154         return 0;
2155     }
2156
2157     if (im->ylegend[0] != '\0' ) {
2158            Xvertical = im->text_prop[TEXT_PROP_UNIT].size *2;
2159     }
2160
2161
2162     if (im->title[0] != '\0') {
2163         /* The title is placed "inbetween" two text lines so it
2164         ** automatically has some vertical spacing.  The horizontal
2165         ** spacing is added here, on each side.
2166         */
2167         /* don't care for the with of the title
2168                 Xtitle = gfx_get_text_width(im->canvas, 0,
2169                 im->text_prop[TEXT_PROP_TITLE].font,
2170                 im->text_prop[TEXT_PROP_TITLE].size,
2171                 im->tabwidth,
2172                 im->title, 0) + 2*Xspacing; */
2173         Ytitle = im->text_prop[TEXT_PROP_TITLE].size*2.6+10;
2174     }
2175
2176     if (elements) {
2177         Xmain=im->xsize;
2178         Ymain=im->ysize;
2179         if (im->draw_x_grid) {
2180             Yxlabel=im->text_prop[TEXT_PROP_AXIS].size *2.5;
2181         }
2182         if (im->draw_y_grid) {
2183             Xylabel=gfx_get_text_width(im->canvas, 0,
2184                         im->text_prop[TEXT_PROP_AXIS].font,
2185                         im->text_prop[TEXT_PROP_AXIS].size,
2186                         im->tabwidth,
2187                         "0", 0) * im->unitslength;
2188         }
2189     }
2190
2191 #ifdef WITH_PIECHART
2192     if (piechart) {
2193         im->piesize=im->xsize<im->ysize?im->xsize:im->ysize;
2194         Xpie=im->piesize;
2195         Ypie=im->piesize;
2196     }
2197 #endif
2198
2199     /* Now calculate the total size.  Insert some spacing where
2200        desired.  im->xorigin and im->yorigin need to correspond
2201        with the lower left corner of the main graph area or, if
2202        this one is not set, the imaginary box surrounding the
2203        pie chart area. */
2204
2205     /* The legend width cannot yet be determined, as a result we
2206     ** have problems adjusting the image to it.  For now, we just
2207     ** forget about it at all; the legend will have to fit in the
2208     ** size already allocated.
2209     */
2210     im->ximg = Xylabel + Xmain + 2 * Xspacing;
2211
2212 #ifdef WITH_PIECHART
2213     im->ximg  += Xpie;
2214 #endif
2215
2216     if (Xmain) im->ximg += Xspacing;
2217 #ifdef WITH_PIECHART
2218     if (Xpie) im->ximg += Xspacing;
2219 #endif
2220
2221     im->xorigin = Xspacing + Xylabel;
2222
2223     /* the length of the title should not influence with width of the graph
2224        if (Xtitle > im->ximg) im->ximg = Xtitle; */
2225
2226     if (Xvertical) { /* unit description */
2227         im->ximg += Xvertical;
2228         im->xorigin += Xvertical;
2229     }
2230     xtr(im,0);
2231
2232     /* The vertical size is interesting... we need to compare
2233     ** the sum of {Ytitle, Ymain, Yxlabel, Ylegend} with Yvertical
2234     ** however we need to know {Ytitle+Ymain+Yxlabel} in order to
2235     ** start even thinking about Ylegend.
2236     **
2237     ** Do it in three portions: First calculate the inner part,
2238     ** then do the legend, then adjust the total height of the img.
2239     */
2240
2241     /* reserve space for main and/or pie */
2242
2243     im->yimg = Ymain + Yxlabel;
2244
2245 #ifdef WITH_PIECHART
2246     if (im->yimg < Ypie) im->yimg = Ypie;
2247 #endif
2248
2249     im->yorigin = im->yimg - Yxlabel;
2250
2251     /* reserve space for the title *or* some padding above the graph */
2252     if (Ytitle) {
2253         im->yimg += Ytitle;
2254         im->yorigin += Ytitle;
2255     } else {
2256         im->yimg += 1.5*Yspacing;
2257         im->yorigin += 1.5*Yspacing;
2258     }
2259     /* reserve space for padding below the graph */
2260     im->yimg += Yspacing;
2261     ytr(im,DNAN);
2262
2263     /* Determine where to place the legends onto the image.
2264     ** Adjust im->yimg to match the space requirements.
2265     */
2266     if(leg_place(im)==-1)
2267         return -1;
2268
2269
2270 #if 0
2271     if (Xlegend > im->ximg) {
2272         im->ximg = Xlegend;
2273         /* reposition Pie */
2274     }
2275 #endif
2276
2277 #ifdef WITH_PIECHART
2278     /* The pie is placed in the upper right hand corner,
2279     ** just below the title (if any) and with sufficient
2280     ** padding.
2281     */
2282     if (elements) {
2283         im->pie_x = im->ximg - Xspacing - Xpie/2;
2284         im->pie_y = im->yorigin-Ymain+Ypie/2;
2285     } else {
2286         im->pie_x = im->ximg/2;
2287         im->pie_y = im->yorigin-Ypie/2;
2288     }
2289 #endif
2290
2291     return 0;
2292 }
2293
2294 /* draw that picture thing ... */
2295 int
2296 graph_paint(image_desc_t *im, char ***calcpr)
2297 {
2298   int i,ii;
2299   int lazy =     lazy_check(im);
2300 #ifdef WITH_PIECHART
2301   int piechart = 0;
2302   double PieStart=0.0;
2303 #endif
2304   FILE  *fo;
2305   gfx_node_t *node;
2306   
2307   double areazero = 0.0;
2308   enum gf_en stack_gf = GF_PRINT;
2309   graph_desc_t *lastgdes = NULL;    
2310
2311   /* if we are lazy and there is nothing to PRINT ... quit now */
2312   if (lazy && im->prt_c==0) return 0;
2313
2314   /* pull the data from the rrd files ... */
2315   
2316   if(data_fetch(im)==-1)
2317     return -1;
2318
2319   /* evaluate VDEF and CDEF operations ... */
2320   if(data_calc(im)==-1)
2321     return -1;
2322
2323 #ifdef WITH_PIECHART  
2324   /* check if we need to draw a piechart */
2325   for(i=0;i<im->gdes_c;i++){
2326     if (im->gdes[i].gf == GF_PART) {
2327       piechart=1;
2328       break;
2329     }
2330   }
2331 #endif
2332
2333   /* calculate and PRINT and GPRINT definitions. We have to do it at
2334    * this point because it will affect the length of the legends
2335    * if there are no graph elements we stop here ... 
2336    * if we are lazy, try to quit ... 
2337    */
2338   i=print_calc(im,calcpr);
2339   if(i<0) return -1;
2340   if(((i==0)
2341 #ifdef WITH_PIECHART
2342 &&(piechart==0)
2343 #endif
2344 ) || lazy) return 0;
2345
2346 #ifdef WITH_PIECHART
2347   /* If there's only the pie chart to draw, signal this */
2348   if (i==0) piechart=2;
2349 #endif
2350   
2351   /* get actual drawing data and find min and max values*/
2352   if(data_proc(im)==-1)
2353     return -1;
2354   
2355   if(!im->logarithmic){si_unit(im);}        /* identify si magnitude Kilo, Mega Giga ? */
2356   
2357   if(!im->rigid && ! im->logarithmic)
2358     expand_range(im);   /* make sure the upper and lower limit are
2359                            sensible values */
2360
2361   if (!calc_horizontal_grid(im))
2362     return -1;
2363
2364   if (im->gridfit)
2365     apply_gridfit(im);
2366
2367
2368 /**************************************************************
2369  *** Calculating sizes and locations became a bit confusing ***
2370  *** so I moved this into a separate function.              ***
2371  **************************************************************/
2372   if(graph_size_location(im,i
2373 #ifdef WITH_PIECHART
2374 ,piechart
2375 #endif
2376 )==-1)
2377     return -1;
2378
2379   /* the actual graph is created by going through the individual
2380      graph elements and then drawing them */
2381   
2382   node=gfx_new_area ( im->canvas,
2383                       0, 0,
2384                       0, im->yimg,
2385                       im->ximg, im->yimg,                      
2386                       im->graph_col[GRC_BACK]);
2387
2388   gfx_add_point(node,im->ximg, 0);
2389
2390 #ifdef WITH_PIECHART
2391   if (piechart != 2) {
2392 #endif
2393     node=gfx_new_area ( im->canvas,
2394                       im->xorigin,             im->yorigin, 
2395                       im->xorigin + im->xsize, im->yorigin,
2396                       im->xorigin + im->xsize, im->yorigin-im->ysize,
2397                       im->graph_col[GRC_CANVAS]);
2398   
2399     gfx_add_point(node,im->xorigin, im->yorigin - im->ysize);
2400
2401     if (im->minval > 0.0)
2402       areazero = im->minval;
2403     if (im->maxval < 0.0)
2404       areazero = im->maxval;
2405 #ifdef WITH_PIECHART
2406    }
2407 #endif
2408
2409 #ifdef WITH_PIECHART
2410   if (piechart) {
2411     pie_part(im,im->graph_col[GRC_CANVAS],im->pie_x,im->pie_y,im->piesize*0.5,0,2*M_PI);
2412   }
2413 #endif
2414
2415   for(i=0;i<im->gdes_c;i++){
2416     switch(im->gdes[i].gf){
2417     case GF_CDEF:
2418     case GF_VDEF:
2419     case GF_DEF:
2420     case GF_PRINT:
2421     case GF_GPRINT:
2422     case GF_COMMENT:
2423     case GF_HRULE:
2424     case GF_VRULE:
2425     case GF_XPORT:
2426     case GF_SHIFT:
2427       break;
2428     case GF_TICK:
2429       for (ii = 0; ii < im->xsize; ii++)
2430         {
2431           if (!isnan(im->gdes[i].p_data[ii]) && 
2432               im->gdes[i].p_data[ii] > 0.0)
2433             { 
2434               /* generate a tick */
2435               gfx_new_line(im->canvas, im -> xorigin + ii, 
2436                            im -> yorigin - (im -> gdes[i].yrule * im -> ysize),
2437                            im -> xorigin + ii, 
2438                            im -> yorigin,
2439                            1.0,
2440                            im -> gdes[i].col );
2441             }
2442         }
2443       break;
2444     case GF_LINE:
2445     case GF_AREA:
2446       stack_gf = im->gdes[i].gf;
2447     case GF_STACK:          
2448       /* fix data points at oo and -oo */
2449       for(ii=0;ii<im->xsize;ii++){
2450         if (isinf(im->gdes[i].p_data[ii])){
2451           if (im->gdes[i].p_data[ii] > 0) {
2452             im->gdes[i].p_data[ii] = im->maxval ;
2453           } else {
2454             im->gdes[i].p_data[ii] = im->minval ;
2455           }                 
2456           
2457         }
2458       } /* for */
2459
2460       /* *******************************************************
2461        a           ___. (a,t) 
2462                   |   |    ___
2463               ____|   |   |   |
2464               |       |___|
2465        -------|--t-1--t--------------------------------      
2466                       
2467       if we know the value at time t was a then 
2468       we draw a square from t-1 to t with the value a.
2469
2470       ********************************************************* */
2471       if (im->gdes[i].col != 0x0){   
2472         /* GF_LINE and friend */
2473         if(stack_gf == GF_LINE ){
2474           node = NULL;
2475           for(ii=1;ii<im->xsize;ii++){      
2476             if (isnan(im->gdes[i].p_data[ii]) || (im->slopemode==1 && isnan(im->gdes[i].p_data[ii-1]))){
2477                 node = NULL;
2478                 continue;
2479             }
2480             if ( node == NULL ) {
2481                 if ( im->slopemode == 0 ){
2482                   node = gfx_new_line(im->canvas,
2483                                     ii-1+im->xorigin,ytr(im,im->gdes[i].p_data[ii]),
2484                                     ii+im->xorigin,ytr(im,im->gdes[i].p_data[ii]),
2485                                     im->gdes[i].linewidth,
2486                                     im->gdes[i].col);
2487                 } else {
2488                   node = gfx_new_line(im->canvas,
2489                                     ii-1+im->xorigin,ytr(im,im->gdes[i].p_data[ii-1]),
2490                                     ii+im->xorigin,ytr(im,im->gdes[i].p_data[ii]),
2491                                     im->gdes[i].linewidth,
2492                                     im->gdes[i].col);
2493                 }
2494              } else {
2495                if ( im->slopemode==0 ){
2496                    gfx_add_point(node,ii-1+im->xorigin,ytr(im,im->gdes[i].p_data[ii]));
2497                };
2498                gfx_add_point(node,ii+im->xorigin,ytr(im,im->gdes[i].p_data[ii]));
2499              };
2500
2501           }
2502         } else {
2503           int idxI=-1;
2504           double *foreY=malloc(sizeof(double)*im->xsize*2);
2505           double *foreX=malloc(sizeof(double)*im->xsize*2);
2506           double *backY=malloc(sizeof(double)*im->xsize*2);
2507           double *backX=malloc(sizeof(double)*im->xsize*2);
2508           int drawem = 0;
2509           for(ii=0;ii<=im->xsize;ii++){
2510             double ybase,ytop;
2511             if ( idxI > 0 && ( drawem != 0 || ii==im->xsize)){
2512                int cntI=1;
2513                int lastI=0;
2514                while (cntI < idxI && foreY[lastI] == foreY[cntI] && foreY[lastI] == foreY[cntI+1]){cntI++;}
2515                node = gfx_new_area(im->canvas,
2516                                 backX[0],backY[0],
2517                                 foreX[0],foreY[0],
2518                                 foreX[cntI],foreY[cntI], im->gdes[i].col);
2519                while (cntI < idxI) {
2520                  lastI = cntI;
2521                  cntI++;
2522                  while ( cntI < idxI && foreY[lastI] == foreY[cntI] && foreY[lastI] == foreY[cntI+1]){cntI++;} 
2523                  gfx_add_point(node,foreX[cntI],foreY[cntI]);
2524                }
2525                gfx_add_point(node,backX[idxI],backY[idxI]);
2526                while (idxI > 1){
2527                  lastI = idxI;
2528                  idxI--;
2529                  while ( idxI > 1 && backY[lastI] == backY[idxI] && backY[lastI] == backY[idxI-1]){idxI--;} 
2530                  gfx_add_point(node,backX[idxI],backY[idxI]);
2531                }
2532                idxI=-1;
2533                drawem = 0;
2534             }
2535             if (drawem != 0){
2536               drawem = 0;
2537               idxI=-1;
2538             }
2539             if (ii == im->xsize) break;
2540             
2541             /* keep things simple for now, just draw these bars
2542                do not try to build a big and complex area */
2543
2544                                                               
2545             if ( im->slopemode == 0 && ii==0){
2546                 continue;
2547             }
2548             if ( isnan(im->gdes[i].p_data[ii]) ) {
2549                 drawem = 1;
2550                 continue;
2551             }
2552             ytop = ytr(im,im->gdes[i].p_data[ii]);
2553             if ( lastgdes && im->gdes[i].stack ) {
2554                   ybase = ytr(im,lastgdes->p_data[ii]);
2555             } else {
2556                   ybase = ytr(im,areazero);
2557             }
2558             if ( ybase == ytop ){
2559                 drawem = 1;
2560                 continue;       
2561             }
2562             /* every area has to be wound clock-wise,
2563                so we have to make sur base remains base  */             
2564             if (ybase > ytop){
2565                 double extra = ytop;
2566                 ytop = ybase;
2567                 ybase = extra;
2568             }
2569             if ( im->slopemode == 0 ){
2570                     backY[++idxI] = ybase-0.2;
2571                     backX[idxI] = ii+im->xorigin-1;
2572                     foreY[idxI] = ytop+0.2;
2573                     foreX[idxI] = ii+im->xorigin-1;
2574             }
2575             backY[++idxI] = ybase-0.2;
2576             backX[idxI] = ii+im->xorigin;
2577             foreY[idxI] = ytop+0.2;
2578             foreX[idxI] = ii+im->xorigin;
2579           }
2580           /* close up any remaining area */             
2581           free(foreY);
2582           free(foreX);
2583           free(backY);
2584           free(backX);
2585         } /* else GF_LINE */
2586       } /* if color != 0x0 */
2587       /* make sure we do not run into trouble when stacking on NaN */
2588       for(ii=0;ii<im->xsize;ii++){
2589         if (isnan(im->gdes[i].p_data[ii])) {
2590           if (lastgdes && (im->gdes[i].stack)) {
2591             im->gdes[i].p_data[ii] = lastgdes->p_data[ii];
2592           } else {
2593             im->gdes[i].p_data[ii] =  ytr(im,areazero);
2594           }
2595         }
2596       } 
2597       lastgdes = &(im->gdes[i]);                         
2598       break;
2599 #ifdef WITH_PIECHART
2600     case GF_PART:
2601       if(isnan(im->gdes[i].yrule)) /* fetch variable */
2602         im->gdes[i].yrule = im->gdes[im->gdes[i].vidx].vf.val;
2603      
2604       if (finite(im->gdes[i].yrule)) {  /* even the fetched var can be NaN */
2605         pie_part(im,im->gdes[i].col,
2606                 im->pie_x,im->pie_y,im->piesize*0.4,
2607                 M_PI*2.0*PieStart/100.0,
2608                 M_PI*2.0*(PieStart+im->gdes[i].yrule)/100.0);
2609         PieStart += im->gdes[i].yrule;
2610       }
2611       break;
2612 #endif
2613         
2614     } /* switch */
2615   }
2616 #ifdef WITH_PIECHART
2617   if (piechart==2) {
2618     im->draw_x_grid=0;
2619     im->draw_y_grid=0;
2620   }
2621 #endif
2622
2623
2624   /* grid_paint also does the text */
2625   if( !(im->extra_flags & ONLY_GRAPH) )  
2626     grid_paint(im);
2627
2628   
2629   if( !(im->extra_flags & ONLY_GRAPH) )  
2630       axis_paint(im);
2631   
2632   /* the RULES are the last thing to paint ... */
2633   for(i=0;i<im->gdes_c;i++){    
2634     
2635     switch(im->gdes[i].gf){
2636     case GF_HRULE:
2637       if(isnan(im->gdes[i].yrule)) { /* fetch variable */
2638         im->gdes[i].yrule = im->gdes[im->gdes[i].vidx].vf.val;
2639       };
2640       if(im->gdes[i].yrule >= im->minval
2641          && im->gdes[i].yrule <= im->maxval)
2642         gfx_new_line(im->canvas,
2643                      im->xorigin,ytr(im,im->gdes[i].yrule),
2644                      im->xorigin+im->xsize,ytr(im,im->gdes[i].yrule),
2645                      1.0,im->gdes[i].col); 
2646       break;
2647     case GF_VRULE:
2648       if(im->gdes[i].xrule == 0) { /* fetch variable */
2649         im->gdes[i].xrule = im->gdes[im->gdes[i].vidx].vf.when;
2650       };
2651       if(im->gdes[i].xrule >= im->start
2652          && im->gdes[i].xrule <= im->end)
2653         gfx_new_line(im->canvas,
2654                      xtr(im,im->gdes[i].xrule),im->yorigin,
2655                      xtr(im,im->gdes[i].xrule),im->yorigin-im->ysize,
2656                      1.0,im->gdes[i].col); 
2657       break;
2658     default:
2659       break;
2660     }
2661   }
2662
2663   
2664   if (strcmp(im->graphfile,"-")==0) {
2665     fo = im->graphhandle ? im->graphhandle : stdout;
2666 #if defined(_WIN32) && !defined(__CYGWIN__) && !defined(__CYGWIN32__)
2667     /* Change translation mode for stdout to BINARY */
2668     _setmode( _fileno( fo ), O_BINARY );
2669 #endif
2670   } else {
2671     if ((fo = fopen(im->graphfile,"wb")) == NULL) {
2672       rrd_set_error("Opening '%s' for write: %s",im->graphfile,
2673                     rrd_strerror(errno));
2674       return (-1);
2675     }
2676   }
2677   gfx_render (im->canvas,im->ximg,im->yimg,0x00000000,fo);
2678   if (strcmp(im->graphfile,"-") != 0)
2679     fclose(fo);
2680   return 0;
2681 }
2682
2683
2684 /*****************************************************
2685  * graph stuff 
2686  *****************************************************/
2687
2688 int
2689 gdes_alloc(image_desc_t *im){
2690
2691     im->gdes_c++;
2692     if ((im->gdes = (graph_desc_t *) rrd_realloc(im->gdes, (im->gdes_c)
2693                                            * sizeof(graph_desc_t)))==NULL){
2694         rrd_set_error("realloc graph_descs");
2695         return -1;
2696     }
2697
2698
2699     im->gdes[im->gdes_c-1].step=im->step;
2700     im->gdes[im->gdes_c-1].stack=0;
2701     im->gdes[im->gdes_c-1].debug=0;
2702     im->gdes[im->gdes_c-1].start=im->start; 
2703     im->gdes[im->gdes_c-1].end=im->end; 
2704     im->gdes[im->gdes_c-1].vname[0]='\0'; 
2705     im->gdes[im->gdes_c-1].data=NULL;
2706     im->gdes[im->gdes_c-1].ds_namv=NULL;
2707     im->gdes[im->gdes_c-1].data_first=0;
2708     im->gdes[im->gdes_c-1].p_data=NULL;
2709     im->gdes[im->gdes_c-1].rpnp=NULL;
2710     im->gdes[im->gdes_c-1].shift=0;
2711     im->gdes[im->gdes_c-1].col = 0x0;
2712     im->gdes[im->gdes_c-1].legend[0]='\0';
2713     im->gdes[im->gdes_c-1].format[0]='\0';
2714     im->gdes[im->gdes_c-1].rrd[0]='\0';
2715     im->gdes[im->gdes_c-1].ds=-1;    
2716     im->gdes[im->gdes_c-1].p_data=NULL;    
2717     im->gdes[im->gdes_c-1].yrule=DNAN;
2718     im->gdes[im->gdes_c-1].xrule=0;
2719     return 0;
2720 }
2721
2722 /* copies input untill the first unescaped colon is found
2723    or until input ends. backslashes have to be escaped as well */
2724 int
2725 scan_for_col(char *input, int len, char *output)
2726 {
2727     int inp,outp=0;
2728     for (inp=0; 
2729          inp < len &&
2730            input[inp] != ':' &&
2731            input[inp] != '\0';
2732          inp++){
2733       if (input[inp] == '\\' &&
2734           input[inp+1] != '\0' && 
2735           (input[inp+1] == '\\' ||
2736            input[inp+1] == ':')){
2737         output[outp++] = input[++inp];
2738       }
2739       else {
2740         output[outp++] = input[inp];
2741       }
2742     }
2743     output[outp] = '\0';
2744     return inp;
2745 }
2746 /* Some surgery done on this function, it became ridiculously big.
2747 ** Things moved:
2748 ** - initializing     now in rrd_graph_init()
2749 ** - options parsing  now in rrd_graph_options()
2750 ** - script parsing   now in rrd_graph_script()
2751 */
2752 int 
2753 rrd_graph(int argc, char **argv, char ***prdata, int *xsize, int *ysize, FILE *stream, double *ymin, double *ymax)
2754 {
2755     image_desc_t   im;
2756     rrd_graph_init(&im);
2757     im.graphhandle = stream;
2758     
2759     rrd_graph_options(argc,argv,&im);
2760     if (rrd_test_error()) {
2761         im_free(&im);
2762         return -1;
2763     }
2764     
2765     if (strlen(argv[optind])>=MAXPATH) {
2766         rrd_set_error("filename (including path) too long");
2767         im_free(&im);
2768         return -1;
2769     }
2770     strncpy(im.graphfile,argv[optind],MAXPATH-1);
2771     im.graphfile[MAXPATH-1]='\0';
2772
2773     rrd_graph_script(argc,argv,&im,1);
2774     if (rrd_test_error()) {
2775         im_free(&im);
2776         return -1;
2777     }
2778
2779     /* Everything is now read and the actual work can start */
2780
2781     (*prdata)=NULL;
2782     if (graph_paint(&im,prdata)==-1){
2783         im_free(&im);
2784         return -1;
2785     }
2786
2787     /* The image is generated and needs to be output.
2788     ** Also, if needed, print a line with information about the image.
2789     */
2790
2791     *xsize=im.ximg;
2792     *ysize=im.yimg;
2793     *ymin=im.minval;
2794     *ymax=im.maxval;
2795     if (im.imginfo) {
2796         char *filename;
2797         if (!(*prdata)) {
2798             /* maybe prdata is not allocated yet ... lets do it now */
2799             if ((*prdata = calloc(2,sizeof(char *)))==NULL) {
2800                 rrd_set_error("malloc imginfo");
2801                 return -1; 
2802             };
2803         }
2804         if(((*prdata)[0] = malloc((strlen(im.imginfo)+200+strlen(im.graphfile))*sizeof(char)))
2805          ==NULL){
2806             rrd_set_error("malloc imginfo");
2807             return -1;
2808         }
2809         filename=im.graphfile+strlen(im.graphfile);
2810         while(filename > im.graphfile) {
2811             if (*(filename-1)=='/' || *(filename-1)=='\\' ) break;
2812             filename--;
2813         }
2814
2815         sprintf((*prdata)[0],im.imginfo,filename,(long)(im.canvas->zoom*im.ximg),(long)(im.canvas->zoom*im.yimg));
2816     }
2817     im_free(&im);
2818     return 0;
2819 }
2820
2821 void
2822 rrd_graph_init(image_desc_t *im)
2823 {
2824     unsigned int i;
2825
2826 #ifdef HAVE_TZSET
2827     tzset();
2828 #endif
2829 #ifdef HAVE_SETLOCALE
2830     setlocale(LC_TIME,"");
2831 #endif
2832     im->yorigin=0;
2833     im->xorigin=0;
2834     im->minval=0;
2835     im->xlab_user.minsec = -1;
2836     im->ximg=0;
2837     im->yimg=0;
2838     im->xsize = 400;
2839     im->ysize = 100;
2840     im->step = 0;
2841     im->ylegend[0] = '\0';
2842     im->title[0] = '\0';
2843     im->minval = DNAN;
2844     im->maxval = DNAN;    
2845     im->unitsexponent= 9999;
2846     im->unitslength= 6; 
2847     im->symbol = ' ';
2848     im->viewfactor = 1.0;
2849     im->extra_flags= 0;
2850     im->rigid = 0;
2851     im->gridfit = 1;
2852     im->imginfo = NULL;
2853     im->lazy = 0;
2854     im->slopemode = 0;
2855     im->logarithmic = 0;
2856     im->ygridstep = DNAN;
2857     im->draw_x_grid = 1;
2858     im->draw_y_grid = 1;
2859     im->base = 1000;
2860     im->prt_c = 0;
2861     im->gdes_c = 0;
2862     im->gdes = NULL;
2863     im->canvas = gfx_new_canvas();
2864     im->grid_dash_on = 1;
2865     im->grid_dash_off = 1;
2866     im->tabwidth = 40.0;
2867     
2868     for(i=0;i<DIM(graph_col);i++)
2869         im->graph_col[i]=graph_col[i];
2870
2871 #if defined(_WIN32) && !defined(__CYGWIN__) && !defined(__CYGWIN32__)
2872     {
2873             char *windir; 
2874             char rrd_win_default_font[1000];
2875             windir = getenv("windir");
2876             /* %windir% is something like D:\windows or C:\winnt */
2877             if (windir != NULL) {
2878                     strncpy(rrd_win_default_font,windir,999);
2879                     rrd_win_default_font[999] = '\0';
2880                     strcat(rrd_win_default_font,"\\fonts\\");
2881                     strcat(rrd_win_default_font,RRD_DEFAULT_FONT);         
2882                     for(i=0;i<DIM(text_prop);i++){
2883                             strncpy(text_prop[i].font,rrd_win_default_font,sizeof(text_prop[i].font)-1);
2884                             text_prop[i].font[sizeof(text_prop[i].font)-1] = '\0';
2885                      }
2886              }
2887     }
2888 #endif
2889     {
2890             char *deffont; 
2891             deffont = getenv("RRD_DEFAULT_FONT");
2892             if (deffont != NULL) {
2893                  for(i=0;i<DIM(text_prop);i++){
2894                         strncpy(text_prop[i].font,deffont,sizeof(text_prop[i].font)-1);
2895                         text_prop[i].font[sizeof(text_prop[i].font)-1] = '\0';
2896                  }
2897             }
2898     }
2899     for(i=0;i<DIM(text_prop);i++){        
2900       im->text_prop[i].size = text_prop[i].size;
2901       strcpy(im->text_prop[i].font,text_prop[i].font);
2902     }
2903 }
2904
2905 void
2906 rrd_graph_options(int argc, char *argv[],image_desc_t *im)
2907 {
2908     int                 stroff;    
2909     char                *parsetime_error = NULL;
2910     char                scan_gtm[12],scan_mtm[12],scan_ltm[12],col_nam[12];
2911     time_t              start_tmp=0,end_tmp=0;
2912     long                long_tmp;
2913     struct rrd_time_value       start_tv, end_tv;
2914     gfx_color_t         color;
2915     optind = 0; opterr = 0;  /* initialize getopt */
2916
2917     parsetime("end-24h", &start_tv);
2918     parsetime("now", &end_tv);
2919
2920     while (1){
2921         static struct option long_options[] =
2922         {
2923             {"start",      required_argument, 0,  's'},
2924             {"end",        required_argument, 0,  'e'},
2925             {"x-grid",     required_argument, 0,  'x'},
2926             {"y-grid",     required_argument, 0,  'y'},
2927             {"vertical-label",required_argument,0,'v'},
2928             {"width",      required_argument, 0,  'w'},
2929             {"height",     required_argument, 0,  'h'},
2930             {"interlaced", no_argument,       0,  'i'},
2931             {"upper-limit",required_argument, 0,  'u'},
2932             {"lower-limit",required_argument, 0,  'l'},
2933             {"rigid",      no_argument,       0,  'r'},
2934             {"base",       required_argument, 0,  'b'},
2935             {"logarithmic",no_argument,       0,  'o'},
2936             {"color",      required_argument, 0,  'c'},
2937             {"font",       required_argument, 0,  'n'},
2938             {"title",      required_argument, 0,  't'},
2939             {"imginfo",    required_argument, 0,  'f'},
2940             {"imgformat",  required_argument, 0,  'a'},
2941             {"lazy",       no_argument,       0,  'z'},
2942             {"zoom",       required_argument, 0,  'm'},
2943             {"no-legend",  no_argument,       0,  'g'},
2944             {"force-rules-legend",no_argument,0,  'F'},
2945             {"only-graph", no_argument,       0,  'j'},
2946             {"alt-y-grid", no_argument,       0,  'Y'},
2947             {"no-minor",   no_argument,       0,  'I'},
2948             {"slope-mode", no_argument,       0,  'E'},
2949             {"alt-autoscale", no_argument,    0,  'A'},
2950             {"alt-autoscale-max", no_argument, 0, 'M'},
2951             {"no-gridfit", no_argument,       0,   'N'},
2952             {"units-exponent",required_argument, 0, 'X'},
2953             {"units-length",required_argument, 0, 'L'},
2954             {"step",       required_argument, 0,    'S'},
2955             {"tabwidth",   required_argument, 0,    'T'},            
2956             {"font-render-mode", required_argument, 0, 'R'},
2957             {"font-smoothing-threshold", required_argument, 0, 'B'},
2958             {"alt-y-mrtg", no_argument,       0,  1000}, /* this has no effect it is just here to save old apps from crashing when they use it */
2959             {0,0,0,0}};
2960         int option_index = 0;
2961         int opt;
2962         int col_start,col_end;
2963
2964         opt = getopt_long(argc, argv, 
2965                          "s:e:x:y:v:w:h:iu:l:rb:oc:n:m:t:f:a:I:zgjFYAMEX:L:S:T:NR:B:",
2966                           long_options, &option_index);
2967
2968         if (opt == EOF)
2969             break;
2970         
2971         switch(opt) {
2972         case 'I':
2973             im->extra_flags |= NOMINOR;
2974             break;
2975         case 'Y':
2976             im->extra_flags |= ALTYGRID;
2977             break;
2978         case 'A':
2979             im->extra_flags |= ALTAUTOSCALE;
2980             break;
2981         case 'M':
2982             im->extra_flags |= ALTAUTOSCALE_MAX;
2983             break;
2984         case 'j':
2985            im->extra_flags |= ONLY_GRAPH;
2986            break;
2987         case 'g':
2988             im->extra_flags |= NOLEGEND;
2989             break;
2990         case 'F':
2991             im->extra_flags |= FORCE_RULES_LEGEND;
2992             break;
2993         case 'X':
2994             im->unitsexponent = atoi(optarg);
2995             break;
2996         case 'L':
2997             im->unitslength = atoi(optarg);
2998             break;
2999         case 'T':
3000             im->tabwidth = atof(optarg);
3001             break;
3002         case 'S':
3003             im->step =  atoi(optarg);
3004             break;
3005         case 'N':
3006             im->gridfit = 0;
3007             break;
3008         case 's':
3009             if ((parsetime_error = parsetime(optarg, &start_tv))) {
3010                 rrd_set_error( "start time: %s", parsetime_error );
3011                 return;
3012             }
3013             break;
3014         case 'e':
3015             if ((parsetime_error = parsetime(optarg, &end_tv))) {
3016                 rrd_set_error( "end time: %s", parsetime_error );
3017                 return;
3018             }
3019             break;
3020         case 'x':
3021             if(strcmp(optarg,"none") == 0){
3022               im->draw_x_grid=0;
3023               break;
3024             };
3025                 
3026             if(sscanf(optarg,
3027                       "%10[A-Z]:%ld:%10[A-Z]:%ld:%10[A-Z]:%ld:%ld:%n",
3028                       scan_gtm,
3029                       &im->xlab_user.gridst,
3030                       scan_mtm,
3031                       &im->xlab_user.mgridst,
3032                       scan_ltm,
3033                       &im->xlab_user.labst,
3034                       &im->xlab_user.precis,
3035                       &stroff) == 7 && stroff != 0){
3036                 strncpy(im->xlab_form, optarg+stroff, sizeof(im->xlab_form) - 1);
3037                 im->xlab_form[sizeof(im->xlab_form)-1] = '\0'; 
3038                 if((int)(im->xlab_user.gridtm = tmt_conv(scan_gtm)) == -1){
3039                     rrd_set_error("unknown keyword %s",scan_gtm);
3040                     return;
3041                 } else if ((int)(im->xlab_user.mgridtm = tmt_conv(scan_mtm)) == -1){
3042                     rrd_set_error("unknown keyword %s",scan_mtm);
3043                     return;
3044                 } else if ((int)(im->xlab_user.labtm = tmt_conv(scan_ltm)) == -1){
3045                     rrd_set_error("unknown keyword %s",scan_ltm);
3046                     return;
3047                 } 
3048                 im->xlab_user.minsec = 1;
3049                 im->xlab_user.stst = im->xlab_form;
3050             } else {
3051                 rrd_set_error("invalid x-grid format");
3052                 return;
3053             }
3054             break;
3055         case 'y':
3056
3057             if(strcmp(optarg,"none") == 0){
3058               im->draw_y_grid=0;
3059               break;
3060             };
3061
3062             if(sscanf(optarg,
3063                       "%lf:%d",
3064                       &im->ygridstep,
3065                       &im->ylabfact) == 2) {
3066                 if(im->ygridstep<=0){
3067                     rrd_set_error("grid step must be > 0");
3068                     return;
3069                 } else if (im->ylabfact < 1){
3070                     rrd_set_error("label factor must be > 0");
3071                     return;
3072                 } 
3073             } else {
3074                 rrd_set_error("invalid y-grid format");
3075                 return;
3076             }
3077             break;
3078         case 'v':
3079             strncpy(im->ylegend,optarg,150);
3080             im->ylegend[150]='\0';
3081             break;
3082         case 'u':
3083             im->maxval = atof(optarg);
3084             break;
3085         case 'l':
3086             im->minval = atof(optarg);
3087             break;
3088         case 'b':
3089             im->base = atol(optarg);
3090             if(im->base != 1024 && im->base != 1000 ){
3091                 rrd_set_error("the only sensible value for base apart from 1000 is 1024");
3092                 return;
3093             }
3094             break;
3095         case 'w':
3096             long_tmp = atol(optarg);
3097             if (long_tmp < 10) {
3098                 rrd_set_error("width below 10 pixels");
3099                 return;
3100             }
3101             im->xsize = long_tmp;
3102             break;
3103         case 'h':
3104             long_tmp = atol(optarg);
3105             if (long_tmp < 10) {
3106                 rrd_set_error("height below 10 pixels");
3107                 return;
3108             }
3109             im->ysize = long_tmp;
3110             break;
3111         case 'i':
3112             im->canvas->interlaced = 1;
3113             break;
3114         case 'r':
3115             im->rigid = 1;
3116             break;
3117         case 'f':
3118             im->imginfo = optarg;
3119             break;
3120         case 'a':
3121             if((int)(im->canvas->imgformat = if_conv(optarg)) == -1) {
3122                 rrd_set_error("unsupported graphics format '%s'",optarg);
3123                 return;
3124             }
3125             break;
3126         case 'z':
3127             im->lazy = 1;
3128             break;
3129         case 'E':
3130             im->slopemode = 1;
3131             break;
3132
3133         case 'o':
3134             im->logarithmic = 1;
3135             if (isnan(im->minval))
3136                 im->minval=1;
3137             break;
3138         case 'c':
3139             if(sscanf(optarg,
3140                       "%10[A-Z]#%n%8lx%n",
3141                       col_nam,&col_start,&color,&col_end) == 2){
3142                 int ci;
3143                 int col_len = col_end - col_start;
3144                 switch (col_len){
3145                         case 3:
3146                                 color = (
3147                                         ((color & 0xF00) * 0x110000) |
3148                                         ((color & 0x0F0) * 0x011000) |
3149                                         ((color & 0x00F) * 0x001100) |
3150                                         0x000000FF
3151                                         );
3152                                 break;
3153                         case 4:
3154                                 color = (
3155                                         ((color & 0xF000) * 0x11000) |
3156                                         ((color & 0x0F00) * 0x01100) |
3157                                         ((color & 0x00F0) * 0x00110) |
3158                                         ((color & 0x000F) * 0x00011)
3159                                         );
3160                                 break;
3161                         case 6:
3162                                 color = (color << 8) + 0xff /* shift left by 8 */;
3163                                 break;
3164                         case 8:
3165                                 break;
3166                         default:
3167                                 rrd_set_error("the color format is #RRGGBB[AA]");
3168                                 return;
3169                 }
3170                 if((ci=grc_conv(col_nam)) != -1){
3171                     im->graph_col[ci]=color;
3172                 }  else {
3173                   rrd_set_error("invalid color name '%s'",col_nam);
3174                   return;
3175                 }
3176             } else {
3177                 rrd_set_error("invalid color def format");
3178                 return;
3179             }
3180             break;        
3181         case 'n':{
3182             char prop[15];
3183             double size = 1;
3184             char font[1024];
3185
3186             if(sscanf(optarg,
3187                                 "%10[A-Z]:%lf:%1000s",
3188                                 prop,&size,font) >= 2){
3189                 int sindex,propidx;
3190                 if((sindex=text_prop_conv(prop)) != -1){
3191                   for (propidx=sindex;propidx<TEXT_PROP_LAST;propidx++){                      
3192                       if (size > 0){
3193                           im->text_prop[propidx].size=size;              
3194                       }
3195                       if (strlen(font) > 0){
3196                           strcpy(im->text_prop[propidx].font,font);
3197                       }
3198                       if (propidx==sindex && sindex != 0) break;
3199                   }
3200                 } else {
3201                     rrd_set_error("invalid fonttag '%s'",prop);
3202                     return;
3203                 }
3204             } else {
3205                 rrd_set_error("invalid text property format");
3206                 return;
3207             }
3208             break;          
3209         }
3210         case 'm':
3211             im->canvas->zoom = atof(optarg);
3212             if (im->canvas->zoom <= 0.0) {
3213                 rrd_set_error("zoom factor must be > 0");
3214                 return;
3215             }
3216           break;
3217         case 't':
3218             strncpy(im->title,optarg,150);
3219             im->title[150]='\0';
3220             break;
3221
3222         case 'R':
3223                 if ( strcmp( optarg, "normal" ) == 0 )
3224                         im->canvas->aa_type = AA_NORMAL;
3225                 else if ( strcmp( optarg, "light" ) == 0 )
3226                         im->canvas->aa_type = AA_LIGHT;
3227                 else if ( strcmp( optarg, "mono" ) == 0 )
3228                         im->canvas->aa_type = AA_NONE;
3229                 else
3230                 {
3231                         rrd_set_error("unknown font-render-mode '%s'", optarg );
3232                         return;
3233                 }
3234                 break;
3235
3236         case 'B':
3237             im->canvas->font_aa_threshold = atof(optarg);
3238                 break;
3239
3240         case '?':
3241             if (optopt != 0)
3242                 rrd_set_error("unknown option '%c'", optopt);
3243             else
3244                 rrd_set_error("unknown option '%s'",argv[optind-1]);
3245             return;
3246         }
3247     }
3248     
3249     if (optind >= argc) {
3250        rrd_set_error("missing filename");
3251        return;
3252     }
3253
3254     if (im->logarithmic == 1 && (im->minval <= 0 || isnan(im->minval))){
3255         rrd_set_error("for a logarithmic yaxis you must specify a lower-limit > 0");    
3256         return;
3257     }
3258
3259     if (proc_start_end(&start_tv,&end_tv,&start_tmp,&end_tmp) == -1){
3260         /* error string is set in parsetime.c */
3261         return;
3262     }  
3263     
3264     if (start_tmp < 3600*24*365*10){
3265         rrd_set_error("the first entry to fetch should be after 1980 (%ld)",start_tmp);
3266         return;
3267     }
3268     
3269     if (end_tmp < start_tmp) {
3270         rrd_set_error("start (%ld) should be less than end (%ld)", 
3271                start_tmp, end_tmp);
3272         return;
3273     }
3274     
3275     im->start = start_tmp;
3276     im->end = end_tmp;
3277     im->step = max((long)im->step, (im->end-im->start)/im->xsize);
3278 }
3279
3280 int
3281 rrd_graph_check_vname(image_desc_t *im, char *varname, char *err)
3282 {
3283     if ((im->gdes[im->gdes_c-1].vidx=find_var(im,varname))==-1) {
3284         rrd_set_error("Unknown variable '%s' in %s",varname,err);
3285         return -1;
3286     }
3287     return 0;
3288 }
3289 int
3290 rrd_graph_color(image_desc_t *im, char *var, char *err, int optional)
3291 {
3292     char *color;
3293     graph_desc_t *gdp=&im->gdes[im->gdes_c-1];
3294
3295     color=strstr(var,"#");
3296     if (color==NULL) {
3297         if (optional==0) {
3298             rrd_set_error("Found no color in %s",err);
3299             return 0;
3300         }
3301         return 0;
3302     } else {
3303         int n=0;
3304         char *rest;
3305         gfx_color_t    col;
3306
3307         rest=strstr(color,":");
3308         if (rest!=NULL)
3309             n=rest-color;
3310         else
3311             n=strlen(color);
3312
3313         switch (n) {
3314             case 7:
3315                 sscanf(color,"#%6lx%n",&col,&n);
3316                 col = (col << 8) + 0xff /* shift left by 8 */;
3317                 if (n!=7) rrd_set_error("Color problem in %s",err);
3318                 break;
3319             case 9:
3320                 sscanf(color,"#%8lx%n",&col,&n);
3321                 if (n==9) break;
3322             default:
3323                 rrd_set_error("Color problem in %s",err);
3324         }
3325         if (rrd_test_error()) return 0;
3326         gdp->col = col;
3327         return n;
3328     }
3329 }
3330
3331
3332 int bad_format(char *fmt) {
3333     char *ptr;
3334     int n=0;
3335     ptr = fmt;
3336     while (*ptr != '\0')
3337         if (*ptr++ == '%') {
3338  
3339              /* line cannot end with percent char */
3340              if (*ptr == '\0') return 1;
3341  
3342              /* '%s', '%S' and '%%' are allowed */
3343              if (*ptr == 's' || *ptr == 'S' || *ptr == '%') ptr++;
3344
3345              /* or else '% 6.2lf' and such are allowed */
3346              else {
3347    
3348                  /* optional padding character */
3349                  if (*ptr == ' ' || *ptr == '+' || *ptr == '-') ptr++;
3350   
3351                  /* This should take care of 'm.n' with all three optional */
3352                  while (*ptr >= '0' && *ptr <= '9') ptr++;
3353                  if (*ptr == '.') ptr++;
3354                  while (*ptr >= '0' && *ptr <= '9') ptr++;
3355   
3356                  /* Either 'le', 'lf' or 'lg' must follow here */
3357                  if (*ptr++ != 'l') return 1;
3358                  if (*ptr == 'e' || *ptr == 'f' || *ptr == 'g') ptr++;
3359                  else return 1;
3360                  n++;
3361             }
3362          }
3363       
3364       return (n!=1); 
3365 }
3366
3367
3368 int
3369 vdef_parse(gdes,str)
3370 struct graph_desc_t *gdes;
3371 char *str;
3372 {
3373     /* A VDEF currently is either "func" or "param,func"
3374      * so the parsing is rather simple.  Change if needed.
3375      */
3376     double      param;
3377     char        func[30];
3378     int         n;
3379     
3380     n=0;
3381     sscanf(str,"%le,%29[A-Z]%n",&param,func,&n);
3382     if (n== (int)strlen(str)) { /* matched */
3383         ;
3384     } else {
3385         n=0;
3386         sscanf(str,"%29[A-Z]%n",func,&n);
3387         if (n== (int)strlen(str)) { /* matched */
3388             param=DNAN;
3389         } else {
3390             rrd_set_error("Unknown function string '%s' in VDEF '%s'"
3391                 ,str
3392                 ,gdes->vname
3393                 );
3394             return -1;
3395         }
3396     }
3397     if          (!strcmp("PERCENT",func)) gdes->vf.op = VDEF_PERCENT;
3398     else if     (!strcmp("MAXIMUM",func)) gdes->vf.op = VDEF_MAXIMUM;
3399     else if     (!strcmp("AVERAGE",func)) gdes->vf.op = VDEF_AVERAGE;
3400     else if     (!strcmp("MINIMUM",func)) gdes->vf.op = VDEF_MINIMUM;
3401     else if     (!strcmp("TOTAL",  func)) gdes->vf.op = VDEF_TOTAL;
3402     else if     (!strcmp("FIRST",  func)) gdes->vf.op = VDEF_FIRST;
3403     else if     (!strcmp("LAST",   func)) gdes->vf.op = VDEF_LAST;
3404     else {
3405         rrd_set_error("Unknown function '%s' in VDEF '%s'\n"
3406             ,func
3407             ,gdes->vname
3408             );
3409         return -1;
3410     };
3411
3412     switch (gdes->vf.op) {
3413         case VDEF_PERCENT:
3414             if (isnan(param)) { /* no parameter given */
3415                 rrd_set_error("Function '%s' needs parameter in VDEF '%s'\n"
3416                     ,func
3417                     ,gdes->vname
3418                     );
3419                 return -1;
3420             };
3421             if (param>=0.0 && param<=100.0) {
3422                 gdes->vf.param = param;
3423                 gdes->vf.val   = DNAN;  /* undefined */
3424                 gdes->vf.when  = 0;     /* undefined */
3425             } else {
3426                 rrd_set_error("Parameter '%f' out of range in VDEF '%s'\n"
3427                     ,param
3428                     ,gdes->vname
3429                     );
3430                 return -1;
3431             };
3432             break;
3433         case VDEF_MAXIMUM:
3434         case VDEF_AVERAGE:
3435         case VDEF_MINIMUM:
3436         case VDEF_TOTAL:
3437         case VDEF_FIRST:
3438         case VDEF_LAST:
3439             if (isnan(param)) {
3440                 gdes->vf.param = DNAN;
3441                 gdes->vf.val   = DNAN;
3442                 gdes->vf.when  = 0;
3443             } else {
3444                 rrd_set_error("Function '%s' needs no parameter in VDEF '%s'\n"
3445                     ,func
3446                     ,gdes->vname
3447                     );
3448                 return -1;
3449             };
3450             break;
3451     };
3452     return 0;
3453 }
3454
3455
3456 int
3457 vdef_calc(im,gdi)
3458 image_desc_t *im;
3459 int gdi;
3460 {
3461     graph_desc_t        *src,*dst;
3462     rrd_value_t         *data;
3463     long                step,steps;
3464
3465     dst = &im->gdes[gdi];
3466     src = &im->gdes[dst->vidx];
3467     data = src->data + src->ds;
3468     steps = (src->end - src->start) / src->step;
3469
3470 #if 0
3471 printf("DEBUG: start == %lu, end == %lu, %lu steps\n"
3472     ,src->start
3473     ,src->end
3474     ,steps
3475     );
3476 #endif
3477
3478     switch (dst->vf.op) {
3479         case VDEF_PERCENT: {
3480                 rrd_value_t *   array;
3481                 int             field;
3482
3483
3484                 if ((array = malloc(steps*sizeof(double)))==NULL) {
3485                     rrd_set_error("malloc VDEV_PERCENT");
3486                     return -1;
3487                 }
3488                 for (step=0;step < steps; step++) {
3489                     array[step]=data[step*src->ds_cnt];
3490                 }
3491                 qsort(array,step,sizeof(double),vdef_percent_compar);
3492
3493                 field = (steps-1)*dst->vf.param/100;
3494                 dst->vf.val  = array[field];
3495                 dst->vf.when = 0;       /* no time component */
3496                 free(array);
3497 #if 0
3498 for(step=0;step<steps;step++)
3499 printf("DEBUG: %3li:%10.2f %c\n",step,array[step],step==field?'*':' ');
3500 #endif
3501             }
3502             break;
3503         case VDEF_MAXIMUM:
3504             step=0;
3505             while (step != steps && isnan(data[step*src->ds_cnt])) step++;
3506             if (step == steps) {
3507                 dst->vf.val  = DNAN;
3508                 dst->vf.when = 0;
3509             } else {
3510                 dst->vf.val  = data[step*src->ds_cnt];
3511                 dst->vf.when = src->start + (step+1)*src->step;
3512             }
3513             while (step != steps) {
3514                 if (finite(data[step*src->ds_cnt])) {
3515                     if (data[step*src->ds_cnt] > dst->vf.val) {
3516                         dst->vf.val  = data[step*src->ds_cnt];
3517                         dst->vf.when = src->start + (step+1)*src->step;
3518                     }
3519                 }
3520                 step++;
3521             }
3522             break;
3523         case VDEF_TOTAL:
3524         case VDEF_AVERAGE: {
3525             int cnt=0;
3526             double sum=0.0;
3527             for (step=0;step<steps;step++) {
3528                 if (finite(data[step*src->ds_cnt])) {
3529                     sum += data[step*src->ds_cnt];
3530                     cnt ++;
3531                 };
3532             }
3533             if (cnt) {
3534                 if (dst->vf.op == VDEF_TOTAL) {
3535                     dst->vf.val  = sum*src->step;
3536                     dst->vf.when = cnt*src->step;       /* not really "when" */
3537                 } else {
3538                     dst->vf.val = sum/cnt;
3539                     dst->vf.when = 0;   /* no time component */
3540                 };
3541             } else {
3542                 dst->vf.val  = DNAN;
3543                 dst->vf.when = 0;
3544             }
3545             }
3546             break;
3547         case VDEF_MINIMUM:
3548             step=0;
3549             while (step != steps && isnan(data[step*src->ds_cnt])) step++;
3550             if (step == steps) {
3551                 dst->vf.val  = DNAN;
3552                 dst->vf.when = 0;
3553             } else {
3554                 dst->vf.val  = data[step*src->ds_cnt];
3555                 dst->vf.when = src->start + (step+1)*src->step;
3556             }
3557             while (step != steps) {
3558                 if (finite(data[step*src->ds_cnt])) {
3559                     if (data[step*src->ds_cnt] < dst->vf.val) {
3560                         dst->vf.val  = data[step*src->ds_cnt];
3561                         dst->vf.when = src->start + (step+1)*src->step;
3562                     }
3563                 }
3564                 step++;
3565             }
3566             break;
3567         case VDEF_FIRST:
3568             /* The time value returned here is one step before the
3569              * actual time value.  This is the start of the first
3570              * non-NaN interval.
3571              */
3572             step=0;
3573             while (step != steps && isnan(data[step*src->ds_cnt])) step++;
3574             if (step == steps) { /* all entries were NaN */
3575                 dst->vf.val  = DNAN;
3576                 dst->vf.when = 0;
3577             } else {
3578                 dst->vf.val  = data[step*src->ds_cnt];
3579                 dst->vf.when = src->start + step*src->step;
3580             }
3581             break;
3582         case VDEF_LAST:
3583             /* The time value returned here is the
3584              * actual time value.  This is the end of the last
3585              * non-NaN interval.
3586              */
3587             step=steps-1;
3588             while (step >= 0 && isnan(data[step*src->ds_cnt])) step--;
3589             if (step < 0) { /* all entries were NaN */
3590                 dst->vf.val  = DNAN;
3591                 dst->vf.when = 0;
3592             } else {
3593                 dst->vf.val  = data[step*src->ds_cnt];
3594                 dst->vf.when = src->start + (step+1)*src->step;
3595             }
3596             break;
3597     }
3598     return 0;
3599 }
3600
3601 /* NaN < -INF < finite_values < INF */
3602 int
3603 vdef_percent_compar(a,b)
3604 const void *a,*b;
3605 {
3606     /* Equality is not returned; this doesn't hurt except
3607      * (maybe) for a little performance.
3608      */
3609
3610     /* First catch NaN values. They are smallest */
3611     if (isnan( *(double *)a )) return -1;
3612     if (isnan( *(double *)b )) return  1;
3613
3614     /* NaN doesn't reach this part so INF and -INF are extremes.
3615      * The sign from isinf() is compatible with the sign we return
3616      */
3617     if (isinf( *(double *)a )) return isinf( *(double *)a );
3618     if (isinf( *(double *)b )) return isinf( *(double *)b );
3619
3620     /* If we reach this, both values must be finite */
3621     if ( *(double *)a < *(double *)b ) return -1; else return 1;
3622 }