prepare for the release of rrdtool-1.2.5
[rrdtool.git] / src / rrd_rpncalc.c
1 /****************************************************************************
2  * RRDtool 1.2.5  Copyright by Tobi Oetiker, 1997-2005
3  ****************************************************************************
4  * rrd_rpncalc.c  RPN calculator functions
5  ****************************************************************************/
6
7 #include "rrd_tool.h"
8 #include "rrd_rpncalc.h"
9 #include "rrd_graph.h"
10 #include <limits.h>
11
12 short addop2str(enum op_en op, enum op_en op_type, char *op_str, 
13             char **result_str, unsigned short *offset);
14 int tzoffset(time_t); /* used to implement LTIME */
15
16 short rpn_compact(rpnp_t *rpnp, rpn_cdefds_t **rpnc, short *count)
17 {
18     short i;
19     *count = 0;
20     /* count the number of rpn nodes */
21     while(rpnp[*count].op != OP_END) (*count)++;
22     if (++(*count) > DS_CDEF_MAX_RPN_NODES) {
23         rrd_set_error("Maximum %d RPN nodes permitted",
24                       DS_CDEF_MAX_RPN_NODES);
25         return -1;
26     }
27     
28     /* allocate memory */
29     *rpnc = (rpn_cdefds_t *) calloc(*count,sizeof(rpn_cdefds_t));
30     for (i = 0; rpnp[i].op != OP_END; i++)
31     {
32         (*rpnc)[i].op = (char) rpnp[i].op;
33         if (rpnp[i].op == OP_NUMBER) {
34             /* rpnp.val is a double, rpnc.val is a short */
35             double temp = floor(rpnp[i].val);
36             if (temp < SHRT_MIN || temp > SHRT_MAX) {
37                 rrd_set_error(
38                     "constants must be integers in the interval (%d, %d)",
39                     SHRT_MIN, SHRT_MAX);
40                 free(*rpnc);    
41                 return -1;
42             }
43             (*rpnc)[i].val = (short) temp;
44           } else if (rpnp[i].op == OP_VARIABLE ||
45                                  rpnp[i].op == OP_PREV_OTHER) {
46             (*rpnc)[i].val = (short) rpnp[i].ptr;
47         }
48     }
49     /* terminate the sequence */
50     (*rpnc)[(*count) - 1].op = OP_END;
51     return 0;
52 }
53
54 rpnp_t * rpn_expand(rpn_cdefds_t *rpnc)
55 {
56     short i;
57     rpnp_t *rpnp;
58     
59     /* DS_CDEF_MAX_RPN_NODES is small, so at the expense of some wasted
60      * memory we avoid any reallocs */
61     rpnp = (rpnp_t *) calloc(DS_CDEF_MAX_RPN_NODES,sizeof(rpnp_t));
62     if (rpnp == NULL) return NULL;
63     for (i = 0; rpnc[i].op != OP_END; ++i)
64     {
65         rpnp[i].op = (long) rpnc[i].op;
66         if (rpnp[i].op == OP_NUMBER) {
67             rpnp[i].val = (double) rpnc[i].val;
68           } else if (rpnp[i].op == OP_VARIABLE ||
69                                  rpnp[i].op == OP_PREV_OTHER) {
70             rpnp[i].ptr = (long) rpnc[i].val;
71         }
72     }
73     /* terminate the sequence */
74     rpnp[i].op = OP_END;
75     return rpnp;
76 }
77
78 /* rpn_compact2str: convert a compact sequence of RPN operator nodes back
79  * into a CDEF string. This function is used by rrd_dump.
80  * arguments:
81  *  rpnc: an array of compact RPN operator nodes
82  *  ds_def: a pointer to the data source definition section of an RRD header
83  *   for lookup of data source names by index
84  *  str: out string, memory is allocated by the function, must be freed by the
85  *   the caller */
86 void rpn_compact2str(rpn_cdefds_t *rpnc,ds_def_t *ds_def,char **str)
87 {
88     unsigned short i,offset = 0;
89     char buffer[7]; /* short as a string */
90     
91     for (i = 0; rpnc[i].op != OP_END; i++)
92     {
93         if (i > 0) (*str)[offset++] = ',';
94         
95 #define add_op(VV,VVV) \
96           if (addop2str(rpnc[i].op, VV, VVV, str, &offset) == 1) continue;
97         
98         if (rpnc[i].op == OP_NUMBER) {
99             /* convert a short into a string */
100 #if defined(WIN32) && !defined(__CYGWIN__) && !defined(__CYGWIN32__)
101             _itoa(rpnc[i].val,buffer,10);
102 #else
103             sprintf(buffer,"%d",rpnc[i].val);
104 #endif
105             add_op(OP_NUMBER,buffer)
106                 }
107         
108         if (rpnc[i].op == OP_VARIABLE) {
109             char *ds_name = ds_def[rpnc[i].val].ds_nam;
110             add_op(OP_VARIABLE, ds_name)
111                 }
112
113           if (rpnc[i].op == OP_PREV_OTHER) {
114                 char *ds_name = ds_def[rpnc[i].val].ds_nam;
115                 add_op(OP_VARIABLE, ds_name)
116           }
117
118 #undef add_op
119         
120 #define add_op(VV,VVV) \
121           if (addop2str(rpnc[i].op, VV, #VVV, str, &offset) == 1) continue;
122         
123           add_op(OP_ADD,+)
124           add_op(OP_SUB,-)
125           add_op(OP_MUL,*)
126           add_op(OP_DIV,/)
127           add_op(OP_MOD,%)
128           add_op(OP_SIN,SIN)
129           add_op(OP_COS,COS)
130           add_op(OP_LOG,LOG)
131           add_op(OP_FLOOR,FLOOR)
132           add_op(OP_CEIL,CEIL)
133           add_op(OP_EXP,EXP)
134           add_op(OP_DUP,DUP)
135           add_op(OP_EXC,EXC)
136           add_op(OP_POP,POP)
137           add_op(OP_LT,LT)
138           add_op(OP_LE,LE)
139           add_op(OP_GT,GT)
140           add_op(OP_GE,GE)
141           add_op(OP_EQ,EQ)
142           add_op(OP_IF,IF)
143           add_op(OP_MIN,MIN)
144           add_op(OP_MAX,MAX)
145           add_op(OP_LIMIT,LIMIT)
146           add_op(OP_UNKN,UNKN)
147           add_op(OP_UN,UN)
148           add_op(OP_NEGINF,NEGINF)
149           add_op(OP_NE,NE)
150           add_op(OP_PREV,PREV)
151           add_op(OP_INF,INF)
152           add_op(OP_ISINF,ISINF)
153           add_op(OP_NOW,NOW)
154           add_op(OP_LTIME,LTIME)
155           add_op(OP_TIME,TIME)
156           add_op(OP_ATAN,ATAN)
157           add_op(OP_SQRT,SQRT)
158           add_op(OP_SORT,SORT)
159           add_op(OP_REV,REV)
160           add_op(OP_TREND,TREND)
161 #undef add_op
162               }
163     (*str)[offset] = '\0';
164
165 }
166
167 short addop2str(enum op_en op, enum op_en op_type, char *op_str, 
168                 char **result_str, unsigned short *offset)
169 {
170     if (op == op_type) {
171         short op_len;
172         op_len = strlen(op_str);
173         *result_str =  (char *) rrd_realloc(*result_str,
174                                             (op_len + 1 + *offset)*sizeof(char));
175         if (*result_str == NULL) {
176             rrd_set_error("failed to alloc memory in addop2str");
177             return -1;
178         }
179         strncpy(&((*result_str)[*offset]),op_str,op_len);
180         *offset += op_len;
181         return 1;
182     }
183     return 0;
184 }
185
186 void parseCDEF_DS(char *def,rrd_t *rrd, int ds_idx)
187 {
188     rpnp_t *rpnp = NULL;
189     rpn_cdefds_t *rpnc = NULL;
190     short count, i;
191     
192     rpnp = rpn_parse((void*) rrd, def, &lookup_DS);
193     if (rpnp == NULL) {
194         rrd_set_error("failed to parse computed data source %s", def);
195         return;
196     }
197     /* Check for OP nodes not permitted in COMPUTE DS.
198      * Moved this check from within rpn_compact() because it really is
199      * COMPUTE DS specific. This is less efficient, but creation doesn't
200      * occur too often. */
201     for (i = 0; rpnp[i].op != OP_END; i++) {
202         if (rpnp[i].op == OP_TIME || rpnp[i].op == OP_LTIME || 
203             rpnp[i].op == OP_PREV || rpnp[i].op == OP_COUNT)
204         {
205             rrd_set_error(
206                 "operators time, ltime, prev and count not supported with DS COMPUTE");
207             free(rpnp);
208             return;
209         }
210     }
211     if (rpn_compact(rpnp,&rpnc,&count) == -1) {
212         free(rpnp);
213         return;
214     }
215     /* copy the compact rpn representation over the ds_def par array */
216     memcpy((void*) &(rrd -> ds_def[ds_idx].par[DS_cdef]),
217            (void*) rpnc, count*sizeof(rpn_cdefds_t));
218     free(rpnp);
219     free(rpnc);
220 }
221
222 /* lookup a data source name in the rrd struct and return the index,
223  * should use ds_match() here except:
224  * (1) need a void * pointer to the rrd
225  * (2) error handling is left to the caller
226  */
227 long lookup_DS(void *rrd_vptr,char *ds_name)
228 {
229     unsigned int i;
230     rrd_t *rrd; 
231     
232     rrd = (rrd_t *) rrd_vptr;
233     
234     for (i = 0; i < rrd -> stat_head -> ds_cnt; ++i)
235     {
236         if(strcmp(ds_name,rrd -> ds_def[i].ds_nam) == 0)
237             return i;
238     }
239     /* the caller handles a bad data source name in the rpn string */
240     return -1;
241 }
242
243 /* rpn_parse : parse a string and generate a rpnp array; modified
244  * str2rpn() originally included in rrd_graph.c
245  * arguments:
246  * key_hash: a transparent argument passed to lookup(); conceptually this
247  *    is a hash object for lookup of a numeric key given a variable name
248  * expr: the string RPN expression, including variable names
249  * lookup(): a function that retrieves a numeric key given a variable name
250  */
251 rpnp_t * 
252 rpn_parse(void *key_hash,char *expr,long (*lookup)(void *,char*)){
253     int pos=0;
254     long steps=-1;    
255     rpnp_t  *rpnp;
256     char vname[30];
257     
258     rpnp=NULL;
259     
260     while(*expr){
261         if ((rpnp = (rpnp_t *) rrd_realloc(rpnp, (++steps + 2)* 
262                                        sizeof(rpnp_t)))==NULL){
263             return NULL;
264         }
265         
266         else if((sscanf(expr,"%lf%n",&rpnp[steps].val,&pos) == 1) && (expr[pos] == ',')){
267             rpnp[steps].op = OP_NUMBER;
268             expr+=pos;
269         } 
270         
271 #define match_op(VV,VVV) \
272         else if (strncmp(expr, #VVV, strlen(#VVV))==0){ \
273             rpnp[steps].op = VV; \
274             expr+=strlen(#VVV); \
275         }
276
277
278 #define match_op_param(VV,VVV) \
279         else if (sscanf(expr, #VVV "(" DEF_NAM_FMT ")",vname) == 1) { \
280           int length = 0; \
281           if ((length = strlen(#VVV)+strlen(vname)+2, \
282               expr[length] == ',' || expr[length] == '\0') ) { \
283              rpnp[steps].op = VV; \
284              rpnp[steps].ptr = (*lookup)(key_hash,vname); \
285              if (rpnp[steps].ptr < 0) { \
286                            free(rpnp); \
287                            return NULL; \
288                          } else expr+=length; \
289           } \
290         }
291
292         match_op(OP_ADD,+)
293         match_op(OP_SUB,-)
294         match_op(OP_MUL,*)
295         match_op(OP_DIV,/)
296         match_op(OP_MOD,%)
297         match_op(OP_SIN,SIN)
298         match_op(OP_COS,COS)
299         match_op(OP_LOG,LOG)
300         match_op(OP_FLOOR,FLOOR)
301         match_op(OP_CEIL,CEIL)
302         match_op(OP_EXP,EXP)
303         match_op(OP_DUP,DUP)
304         match_op(OP_EXC,EXC)
305         match_op(OP_POP,POP)
306         match_op(OP_LTIME,LTIME)
307         match_op(OP_LT,LT)
308         match_op(OP_LE,LE)
309         match_op(OP_GT,GT)
310         match_op(OP_GE,GE)
311         match_op(OP_EQ,EQ)
312         match_op(OP_IF,IF)
313         match_op(OP_MIN,MIN)
314         match_op(OP_MAX,MAX)
315         match_op(OP_LIMIT,LIMIT)
316           /* order is important here ! .. match longest first */
317         match_op(OP_UNKN,UNKN)
318         match_op(OP_UN,UN)
319         match_op(OP_NEGINF,NEGINF)
320         match_op(OP_NE,NE)
321         match_op(OP_COUNT,COUNT)
322         match_op_param(OP_PREV_OTHER,PREV)
323         match_op(OP_PREV,PREV)
324         match_op(OP_INF,INF)
325         match_op(OP_ISINF,ISINF)
326         match_op(OP_NOW,NOW)
327         match_op(OP_TIME,TIME)
328         match_op(OP_ATAN,ATAN)
329         match_op(OP_SQRT,SQRT)
330         match_op(OP_SORT,SORT)
331         match_op(OP_REV,REV)
332         match_op(OP_TREND,TREND)
333 #undef match_op
334
335
336             else if ((sscanf(expr, DEF_NAM_FMT "%n",
337                              vname,&pos) == 1) 
338                      && ((rpnp[steps].ptr = (*lookup)(key_hash,vname)) != -1)){
339                 rpnp[steps].op = OP_VARIABLE;
340                 expr+=pos;
341             }      
342         
343         else {
344             free(rpnp);
345             return NULL;
346         }
347         if (*expr == 0)
348             break;
349         if (*expr == ',')
350             expr++;
351         else {
352             free(rpnp);
353             return NULL;
354         }  
355     }
356     rpnp[steps+1].op = OP_END;
357     return rpnp;
358 }
359
360 void
361 rpnstack_init(rpnstack_t *rpnstack)
362 {
363     rpnstack -> s = NULL;
364     rpnstack -> dc_stacksize = 0;
365     rpnstack -> dc_stackblock = 100;
366 }
367
368 void
369 rpnstack_free(rpnstack_t *rpnstack)
370 {
371    if (rpnstack -> s != NULL)
372           free(rpnstack -> s);
373    rpnstack -> dc_stacksize = 0;
374 }
375
376 static int
377 rpn_compare_double(const void *x, const void *y)
378 {
379         double  diff = *((const double *)x) - *((const double *)y);
380         
381         return (diff < 0) ? -1 : (diff > 0) ? 1 : 0;
382 }
383
384 /* rpn_calc: run the RPN calculator; also performs variable substitution;
385  * moved and modified from data_calc() originally included in rrd_graph.c 
386  * arguments:
387  * rpnp : an array of RPN operators (including variable references)
388  * rpnstack : the initialized stack
389  * data_idx : when data_idx is a multiple of rpnp.step, the rpnp.data pointer
390  *   is advanced by rpnp.ds_cnt; used only for variable substitution
391  * output : an array of output values; OP_PREV assumes this array contains
392  *   the "previous" value at index position output_idx-1; the definition of
393  *   "previous" depends on the calling environment
394  * output_idx : an index into the output array in which to store the output
395  *   of the RPN calculator
396  * returns: -1 if the computation failed (also calls rrd_set_error)
397  *           0 on success
398  */
399 short
400 rpn_calc(rpnp_t *rpnp, rpnstack_t *rpnstack, long data_idx, 
401                 rrd_value_t *output, int output_idx)
402 {
403     int rpi;
404     long stptr = -1;
405    
406     /* process each op from the rpn in turn */
407     for (rpi=0; rpnp[rpi].op != OP_END; rpi++){
408         /* allocate or grow the stack */
409         if (stptr + 5 > rpnstack -> dc_stacksize){
410             /* could move this to a separate function */
411             rpnstack -> dc_stacksize += rpnstack -> dc_stackblock;              
412             rpnstack -> s = rrd_realloc(rpnstack -> s,
413                         (rpnstack -> dc_stacksize)*sizeof(*(rpnstack -> s)));
414             if (rpnstack -> s == NULL){
415                 rrd_set_error("RPN stack overflow");
416                 return -1;
417             }
418         }
419
420 #define stackunderflow(MINSIZE)                         \
421         if(stptr<MINSIZE){                              \
422             rrd_set_error("RPN stack underflow");       \
423             return -1;                                  \
424         }
425
426         switch (rpnp[rpi].op){
427             case OP_NUMBER:
428                 rpnstack -> s[++stptr] = rpnp[rpi].val;
429                 break;
430             case OP_VARIABLE:
431             case OP_PREV_OTHER:
432             /* Sanity check: VDEFs shouldn't make it here */
433                 if (rpnp[rpi].ds_cnt == 0) {
434                     rrd_set_error("VDEF made it into rpn_calc... aborting");
435                     return -1;
436                 } else {
437                     /* make sure we pull the correct value from
438                      * the *.data array. Adjust the pointer into
439                      * the array acordingly. Advance the ptr one
440                      * row in the rra (skip over non-relevant
441                      * data sources)
442                      */
443                     if (rpnp[rpi].op == OP_VARIABLE) {
444                         rpnstack -> s[++stptr] =  *(rpnp[rpi].data);
445                     } else {
446                         if ((output_idx) <= 0) {
447                             rpnstack -> s[++stptr] = DNAN;
448                         } else {                            
449                             rpnstack -> s[++stptr] =  *(rpnp[rpi].data-rpnp[rpi].ds_cnt);
450                         }
451                        
452                     }              
453                     if (data_idx % rpnp[rpi].step == 0){
454                         rpnp[rpi].data += rpnp[rpi].ds_cnt;
455                     }
456                 }
457                 break;
458             case OP_COUNT:
459                 rpnstack -> s[++stptr] = (output_idx+1); /* Note: Counter starts at 1 */
460                 break;
461             case OP_PREV:
462                 if ((output_idx) <= 0) {
463                     rpnstack -> s[++stptr] = DNAN;
464                 } else {
465                     rpnstack -> s[++stptr] = output[output_idx-1];
466                 }
467                 break;
468          case OP_UNKN:
469                 rpnstack -> s[++stptr] = DNAN; 
470                 break;
471             case OP_INF:
472                 rpnstack -> s[++stptr] = DINF; 
473                 break;
474             case OP_NEGINF:
475                 rpnstack -> s[++stptr] = -DINF; 
476                 break;
477             case OP_NOW:
478                 rpnstack -> s[++stptr] = (double)time(NULL);
479                 break;
480             case OP_TIME:
481                 /* HACK: this relies on the data_idx being the time,
482                 ** which the within-function scope is unaware of */
483                 rpnstack -> s[++stptr] = (double) data_idx;
484                 break;
485             case OP_LTIME:
486                 rpnstack -> s[++stptr] =
487                         (double) tzoffset(data_idx) + (double)data_idx;
488                 break;
489             case OP_ADD:
490                 stackunderflow(1);
491                 rpnstack -> s[stptr-1]  = rpnstack -> s[stptr-1] 
492                                         + rpnstack -> s[stptr];
493                 stptr--;
494                 break;
495             case OP_SUB:
496                 stackunderflow(1);
497                 rpnstack -> s[stptr-1]  = rpnstack -> s[stptr-1]
498                                         - rpnstack -> s[stptr];
499                 stptr--;
500                 break;
501             case OP_MUL:
502                 stackunderflow(1);
503                 rpnstack -> s[stptr-1]  = (rpnstack -> s[stptr-1])
504                                         * (rpnstack -> s[stptr]);
505                 stptr--;
506                 break;
507             case OP_DIV:
508                 stackunderflow(1);
509                 rpnstack -> s[stptr-1]  = rpnstack -> s[stptr-1]
510                                         / rpnstack -> s[stptr];
511                 stptr--;
512                 break;
513             case OP_MOD:
514                 stackunderflow(1);
515                 rpnstack -> s[stptr-1]= fmod(   rpnstack -> s[stptr-1]
516                                                 ,rpnstack -> s[stptr]);
517                 stptr--;
518                 break;
519             case OP_SIN:
520                 stackunderflow(0);
521                 rpnstack -> s[stptr] = sin(rpnstack -> s[stptr]);
522                 break;
523             case OP_ATAN:
524                 stackunderflow(0);
525                 rpnstack -> s[stptr] = atan(rpnstack -> s[stptr]);
526                 break;
527             case OP_COS:
528                 stackunderflow(0);
529                 rpnstack -> s[stptr] = cos(rpnstack -> s[stptr]);
530                 break;
531             case OP_CEIL:
532                 stackunderflow(0);
533                 rpnstack -> s[stptr] = ceil(rpnstack -> s[stptr]);
534                 break;
535             case OP_FLOOR:
536                 stackunderflow(0);
537                 rpnstack -> s[stptr] = floor(rpnstack -> s[stptr]);
538                 break;
539             case OP_LOG:
540                 stackunderflow(0);
541                 rpnstack -> s[stptr] = log(rpnstack -> s[stptr]);
542                 break;
543             case OP_DUP:
544                 stackunderflow(0);
545                 rpnstack -> s[stptr+1] = rpnstack -> s[stptr];
546                 stptr++;
547                 break;
548             case OP_POP:
549                 stackunderflow(0);
550                 stptr--;
551                 break;
552             case OP_EXC:
553                 stackunderflow(1);
554                 {
555                     double dummy;
556                     dummy = rpnstack -> s[stptr] ;
557                     rpnstack -> s[stptr] = rpnstack -> s[stptr-1];
558                     rpnstack -> s[stptr-1] = dummy;
559                 }
560                 break;
561             case OP_EXP:
562                 stackunderflow(0);
563                 rpnstack -> s[stptr] = exp(rpnstack -> s[stptr]);
564                 break;
565             case OP_LT:
566                 stackunderflow(1);
567                 if (isnan(rpnstack -> s[stptr-1])) 
568                     ;
569                 else if (isnan(rpnstack -> s[stptr]))
570                     rpnstack -> s[stptr-1] = rpnstack -> s[stptr];
571                 else
572                     rpnstack -> s[stptr-1] = rpnstack -> s[stptr-1] <
573                                         rpnstack -> s[stptr] ? 1.0 : 0.0;
574                 stptr--;
575                 break;
576             case OP_LE:
577                 stackunderflow(1);
578                 if (isnan(rpnstack -> s[stptr-1])) 
579                     ;
580                 else if (isnan(rpnstack -> s[stptr]))
581                     rpnstack -> s[stptr-1] = rpnstack -> s[stptr];
582                 else
583                     rpnstack -> s[stptr-1] = rpnstack -> s[stptr-1] <=
584                                         rpnstack -> s[stptr] ? 1.0 : 0.0;
585                 stptr--;
586                 break;
587             case OP_GT:
588                 stackunderflow(1);
589                 if (isnan(rpnstack -> s[stptr-1])) 
590                     ;
591                 else if (isnan(rpnstack -> s[stptr]))
592                     rpnstack -> s[stptr-1] = rpnstack -> s[stptr];
593                 else
594                     rpnstack -> s[stptr-1] = rpnstack -> s[stptr-1] >
595                                         rpnstack -> s[stptr] ? 1.0 : 0.0;
596                 stptr--;
597                 break;
598             case OP_GE:
599                 stackunderflow(1);
600                 if (isnan(rpnstack -> s[stptr-1])) 
601                     ;
602                 else if (isnan(rpnstack -> s[stptr]))
603                     rpnstack -> s[stptr-1] = rpnstack -> s[stptr];
604                 else
605                     rpnstack -> s[stptr-1] = rpnstack -> s[stptr-1] >=
606                                         rpnstack -> s[stptr] ? 1.0 : 0.0;
607                 stptr--;
608                 break;
609             case OP_NE:
610                 stackunderflow(1);
611                 if (isnan(rpnstack -> s[stptr-1]))
612                     ;
613                 else if (isnan(rpnstack -> s[stptr]))
614                     rpnstack -> s[stptr-1] = rpnstack -> s[stptr];
615                 else
616                     rpnstack -> s[stptr-1] = rpnstack -> s[stptr-1] ==
617                                         rpnstack -> s[stptr] ? 0.0 : 1.0;
618                 stptr--;
619                 break;
620             case OP_EQ:
621                 stackunderflow(1);
622                 if (isnan(rpnstack -> s[stptr-1])) 
623                     ;
624                 else if (isnan(rpnstack -> s[stptr]))
625                     rpnstack -> s[stptr-1] = rpnstack -> s[stptr];
626                 else
627                     rpnstack -> s[stptr-1] = rpnstack -> s[stptr-1] ==
628                                         rpnstack -> s[stptr] ? 1.0 : 0.0;
629                 stptr--;
630                 break;
631             case OP_IF:
632                 stackunderflow(2);
633                 rpnstack->s[stptr-2] = rpnstack->s[stptr-2] != 0.0 ?
634                                 rpnstack->s[stptr-1] : rpnstack->s[stptr];
635                 stptr--;
636                 stptr--;
637                 break;
638             case OP_MIN:
639                 stackunderflow(1);
640                 if (isnan(rpnstack->s[stptr-1])) 
641                     ;
642                 else if (isnan(rpnstack->s[stptr]))
643                     rpnstack->s[stptr-1] = rpnstack->s[stptr];
644                 else if (rpnstack->s[stptr-1] > rpnstack->s[stptr])
645                     rpnstack->s[stptr-1] = rpnstack->s[stptr];
646                 stptr--;
647                 break;
648             case OP_MAX:
649                 stackunderflow(1);
650                 if (isnan(rpnstack->s[stptr-1])) 
651                ;
652                 else if (isnan(rpnstack->s[stptr]))
653                     rpnstack->s[stptr-1] = rpnstack->s[stptr];
654                 else if (rpnstack->s[stptr-1] < rpnstack->s[stptr])
655                     rpnstack->s[stptr-1] = rpnstack->s[stptr];
656                 stptr--;
657                 break;
658             case OP_LIMIT:
659                 stackunderflow(2);
660                 if (isnan(rpnstack->s[stptr-2])) 
661                     ;
662                 else if (isnan(rpnstack->s[stptr-1]))
663                     rpnstack->s[stptr-2] = rpnstack->s[stptr-1];
664                 else if (isnan(rpnstack->s[stptr]))
665                     rpnstack->s[stptr-2] = rpnstack->s[stptr];
666                 else if (rpnstack->s[stptr-2] < rpnstack->s[stptr-1])
667                     rpnstack->s[stptr-2] = DNAN;
668                 else if (rpnstack->s[stptr-2] > rpnstack->s[stptr])
669                     rpnstack->s[stptr-2] = DNAN;
670                 stptr-=2;
671                 break;
672             case OP_UN:
673                 stackunderflow(0);
674                 rpnstack->s[stptr] = isnan(rpnstack->s[stptr]) ? 1.0 : 0.0;
675                 break;
676             case OP_ISINF:
677                 stackunderflow(0);
678                 rpnstack->s[stptr] = isinf(rpnstack->s[stptr]) ? 1.0 : 0.0;
679                 break;
680             case OP_SQRT:
681                 stackunderflow(0);
682                 rpnstack -> s[stptr] = sqrt(rpnstack -> s[stptr]);
683                 break;
684             case OP_SORT:
685                 stackunderflow(0);
686                 {
687                     int spn = (int)rpnstack -> s[stptr--];
688
689                     stackunderflow(spn-1);
690                     qsort(rpnstack -> s + stptr-spn+1, spn, sizeof(double),
691                           rpn_compare_double);
692                 }
693                 break;
694             case OP_REV:
695                 stackunderflow(0);
696                 {
697                     int spn = (int)rpnstack -> s[stptr--];
698                     double *p, *q;
699
700                     stackunderflow(spn-1);
701
702                     p = rpnstack -> s + stptr-spn+1;
703                     q = rpnstack -> s + stptr;
704                     while (p < q) {
705                             double      x = *q;
706                             
707                             *q-- = *p;
708                             *p++ = x;
709                     }
710                 }
711                 break;
712             case OP_TREND:
713                 stackunderflow(1);
714                 if ((rpi < 2) || (rpnp[rpi-2].op != OP_VARIABLE)) {
715                     rrd_set_error("malformed trend arguments");
716                     return -1;
717                 } else {
718                     time_t dur = (time_t)rpnstack -> s[stptr];
719                     time_t step = (time_t)rpnp[rpi-2].step;
720
721                     if (output_idx > (int)ceil((float)dur / (float)step)) {
722                         double accum = 0.0;
723                         int i = 0;
724                 
725                         do {
726                             accum += rpnp[rpi-2].data[rpnp[rpi-2].ds_cnt * i--];
727                             dur -= step;
728                         } while (dur > 0);
729
730                         rpnstack -> s[--stptr] = (accum / -i);
731                     } else
732                         rpnstack -> s[--stptr] = DNAN;
733                 }
734                 break;
735             case OP_END:
736                 break;
737        }
738 #undef stackunderflow
739    }
740    if(stptr!=0){
741        rrd_set_error("RPN final stack size != 1");
742        return -1;
743    }
744    
745    output[output_idx] = rpnstack->s[0];
746    return 0;
747 }
748
749 /* figure out what the local timezone offset for any point in
750    time was. Return it in seconds */
751 int
752 tzoffset( time_t now ){
753     int gm_sec, gm_min, gm_hour, gm_yday, gm_year,
754         l_sec, l_min, l_hour, l_yday, l_year;
755     struct tm t;
756     int off;
757     gmtime_r(&now, &t);
758     gm_sec = t.tm_sec;
759     gm_min = t.tm_min;
760     gm_hour = t.tm_hour;
761     gm_yday = t.tm_yday;
762     gm_year = t.tm_year;
763     localtime_r(&now, &t);
764     l_sec = t.tm_sec;
765     l_min = t.tm_min;
766     l_hour = t.tm_hour;
767     l_yday = t.tm_yday;
768     l_year = t.tm_year;
769     off = (l_sec-gm_sec)+(l_min-gm_min)*60+(l_hour-gm_hour)*3600; 
770     if ( l_yday > gm_yday || l_year > gm_year){
771         off += 24*3600;
772     } else if ( l_yday < gm_yday || l_year < gm_year){
773         off -= 24*3600;
774     }
775    return off;
776 }
777