envstat.c revision 1.89 1 /* $NetBSD: envstat.c,v 1.89 2011/12/04 19:34:22 jmcneill Exp $ */
2
3 /*-
4 * Copyright (c) 2007, 2008 Juan Romero Pardines.
5 * All rights reserved.
6 *
7 * Redistribution and use in source and binary forms, with or without
8 * modification, are permitted provided that the following conditions
9 * are met:
10 * 1. Redistributions of source code must retain the above copyright
11 * notice, this list of conditions and the following disclaimer.
12 * 2. Redistributions in binary form must reproduce the above copyright
13 * notice, this list of conditions and the following disclaimer in the
14 * documentation and/or other materials provided with the distribution.
15 *
16 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
17 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
18 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
19 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
20 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
21 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
22 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
23 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
24 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
25 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
26 */
27
28 #include <sys/cdefs.h>
29 #ifndef lint
30 __RCSID("$NetBSD: envstat.c,v 1.89 2011/12/04 19:34:22 jmcneill Exp $");
31 #endif /* not lint */
32
33 #include <stdio.h>
34 #include <stdlib.h>
35 #include <stdbool.h>
36 #include <stdarg.h>
37 #include <stdint.h>
38 #include <string.h>
39 #include <unistd.h>
40 #include <fcntl.h>
41 #include <err.h>
42 #include <errno.h>
43 #include <paths.h>
44 #include <syslog.h>
45 #include <sys/envsys.h>
46 #include <sys/ioctl.h>
47 #include <sys/types.h>
48 #include <sys/queue.h>
49 #include <prop/proplib.h>
50
51 #include "envstat.h"
52 #include "prog_ops.h"
53
54 #define ENVSYS_DFLAG 0x00000001 /* list registered devices */
55 #define ENVSYS_FFLAG 0x00000002 /* show temp in farenheit */
56 #define ENVSYS_LFLAG 0x00000004 /* list sensors */
57 #define ENVSYS_XFLAG 0x00000008 /* externalize dictionary */
58 #define ENVSYS_IFLAG 0x00000010 /* skip invalid sensors */
59 #define ENVSYS_SFLAG 0x00000020 /* remove all properties set */
60 #define ENVSYS_TFLAG 0x00000040 /* make statistics */
61 #define ENVSYS_KFLAG 0x00000100 /* show temp in kelvin */
62
63 /* Sensors */
64 typedef struct envsys_sensor {
65 SIMPLEQ_ENTRY(envsys_sensor) entries;
66 int32_t cur_value;
67 int32_t max_value;
68 int32_t min_value;
69 int32_t critmin_value;
70 int32_t critmax_value;
71 int32_t warnmin_value;
72 int32_t warnmax_value;
73 char desc[ENVSYS_DESCLEN];
74 char type[ENVSYS_DESCLEN];
75 char drvstate[ENVSYS_DESCLEN];
76 char battcap[ENVSYS_DESCLEN];
77 char dvname[ENVSYS_DESCLEN];
78 bool invalid;
79 bool visible;
80 bool percentage;
81 } *sensor_t;
82
83 /* Sensor statistics */
84 typedef struct envsys_sensor_stats {
85 SIMPLEQ_ENTRY(envsys_sensor_stats) entries;
86 int32_t max;
87 int32_t min;
88 int32_t avg;
89 char desc[ENVSYS_DESCLEN];
90 } *sensor_stats_t;
91
92 /* Device properties */
93 typedef struct envsys_dvprops {
94 uint64_t refresh_timo;
95 /* more members could be added in the future */
96 } *dvprops_t;
97
98 /* A simple queue to manage all sensors */
99 static SIMPLEQ_HEAD(, envsys_sensor) sensors_list =
100 SIMPLEQ_HEAD_INITIALIZER(sensors_list);
101
102 /* A simple queue to manage statistics for all sensors */
103 static SIMPLEQ_HEAD(, envsys_sensor_stats) sensor_stats_list =
104 SIMPLEQ_HEAD_INITIALIZER(sensor_stats_list);
105
106 static unsigned int interval, flags, width;
107 static char *mydevname, *sensors;
108 static bool statistics;
109 static u_int header_passes;
110
111 static int parse_dictionary(int);
112 static int send_dictionary(FILE *);
113 static int find_sensors(prop_array_t, const char *, dvprops_t);
114 static void print_sensors(void);
115 static int check_sensors(char *);
116 static int usage(void);
117
118 static int sysmonfd; /* fd of /dev/sysmon */
119
120 int main(int argc, char **argv)
121 {
122 prop_dictionary_t dict;
123 int c, rval = 0;
124 char *endptr, *configfile = NULL;
125 FILE *cf;
126
127 if (prog_init && prog_init() == -1)
128 err(1, "init failed");
129
130 setprogname(argv[0]);
131
132 while ((c = getopt(argc, argv, "c:Dd:fIi:klrSs:Tw:Wx")) != -1) {
133 switch (c) {
134 case 'c': /* configuration file */
135 configfile = strdup(optarg);
136 if (configfile == NULL)
137 err(EXIT_FAILURE, "strdup");
138 break;
139 case 'D': /* list registered devices */
140 flags |= ENVSYS_DFLAG;
141 break;
142 case 'd': /* show sensors of a specific device */
143 mydevname = strdup(optarg);
144 if (mydevname == NULL)
145 err(EXIT_FAILURE, "strdup");
146 break;
147 case 'f': /* display temperature in Farenheit */
148 flags |= ENVSYS_FFLAG;
149 break;
150 case 'I': /* Skips invalid sensors */
151 flags |= ENVSYS_IFLAG;
152 break;
153 case 'i': /* wait time between intervals */
154 interval = (unsigned int)strtoul(optarg, &endptr, 10);
155 if (*endptr != '\0')
156 errx(EXIT_FAILURE, "bad interval '%s'", optarg);
157 break;
158 case 'k': /* display temperature in Kelvin */
159 flags |= ENVSYS_KFLAG;
160 break;
161 case 'l': /* list sensors */
162 flags |= ENVSYS_LFLAG;
163 break;
164 case 'r':
165 /*
166 * This flag is noop.. it's only here for
167 * compatibility with the old implementation.
168 */
169 break;
170 case 'S':
171 flags |= ENVSYS_SFLAG;
172 break;
173 case 's': /* only show specified sensors */
174 sensors = strdup(optarg);
175 if (sensors == NULL)
176 err(EXIT_FAILURE, "strdup");
177 break;
178 case 'T': /* make statistics */
179 flags |= ENVSYS_TFLAG;
180 break;
181 case 'w': /* width value for the lines */
182 width = (unsigned int)strtoul(optarg, &endptr, 10);
183 if (*endptr != '\0')
184 errx(EXIT_FAILURE, "bad width '%s'", optarg);
185 break;
186 case 'x': /* print the dictionary in raw format */
187 flags |= ENVSYS_XFLAG;
188 break;
189 case 'W': /* No longer used, retained for campatability */
190 break;
191 case '?':
192 default:
193 usage();
194 /* NOTREACHED */
195 }
196 }
197
198 argc -= optind;
199 argv += optind;
200
201 if (argc > 0)
202 usage();
203
204 /* Check if we want to make statistics */
205 if (flags & ENVSYS_TFLAG) {
206 if (!interval)
207 errx(EXIT_FAILURE,
208 "-T cannot be used without an interval (-i)");
209 else
210 statistics = true;
211 }
212
213 if (mydevname && sensors)
214 errx(EXIT_FAILURE, "-d flag cannot be used with -s");
215
216 /* Open the device in ro mode */
217 if ((sysmonfd = prog_open(_PATH_SYSMON, O_RDONLY)) == -1)
218 err(EXIT_FAILURE, "%s", _PATH_SYSMON);
219
220 /* Print dictionary in raw mode */
221 if (flags & ENVSYS_XFLAG) {
222 rval = prop_dictionary_recv_ioctl(sysmonfd,
223 ENVSYS_GETDICTIONARY,
224 &dict);
225 if (rval)
226 errx(EXIT_FAILURE, "%s", strerror(rval));
227
228 config_dict_dump(dict);
229
230 /* Remove all properties set in dictionary */
231 } else if (flags & ENVSYS_SFLAG) {
232 /* Close the ro descriptor */
233 (void)prog_close(sysmonfd);
234
235 /* open the fd in rw mode */
236 if ((sysmonfd = prog_open(_PATH_SYSMON, O_RDWR)) == -1)
237 err(EXIT_FAILURE, "%s", _PATH_SYSMON);
238
239 dict = prop_dictionary_create();
240 if (!dict)
241 err(EXIT_FAILURE, "prop_dictionary_create");
242
243 rval = prop_dictionary_set_bool(dict,
244 "envsys-remove-props",
245 true);
246 if (!rval)
247 err(EXIT_FAILURE, "prop_dict_set_bool");
248
249 /* send the dictionary to the kernel now */
250 rval = prop_dictionary_send_ioctl(dict, sysmonfd,
251 ENVSYS_REMOVEPROPS);
252 if (rval)
253 warnx("%s", strerror(rval));
254
255 /* Set properties in dictionary */
256 } else if (configfile) {
257 /*
258 * Parse the configuration file.
259 */
260 if ((cf = fopen(configfile, "r")) == NULL) {
261 syslog(LOG_ERR, "fopen failed: %s", strerror(errno));
262 errx(EXIT_FAILURE, "%s", strerror(errno));
263 }
264
265 rval = send_dictionary(cf);
266 (void)fclose(cf);
267
268 /* Show sensors with interval */
269 } else if (interval) {
270 for (;;) {
271 rval = parse_dictionary(sysmonfd);
272 if (rval)
273 break;
274
275 (void)fflush(stdout);
276 (void)sleep(interval);
277 }
278 /* Show sensors without interval */
279 } else {
280 rval = parse_dictionary(sysmonfd);
281 }
282
283 if (sensors)
284 free(sensors);
285 if (mydevname)
286 free(mydevname);
287 (void)prog_close(sysmonfd);
288
289 return rval ? EXIT_FAILURE : EXIT_SUCCESS;
290 }
291
292 static int
293 send_dictionary(FILE *cf)
294 {
295 prop_dictionary_t kdict, udict;
296 int error = 0;
297
298 /* Retrieve dictionary from kernel */
299 error = prop_dictionary_recv_ioctl(sysmonfd,
300 ENVSYS_GETDICTIONARY, &kdict);
301 if (error)
302 return error;
303
304 config_parse(cf, kdict);
305
306 /*
307 * Dictionary built by the parser from the configuration file.
308 */
309 udict = config_dict_parsed();
310
311 /*
312 * Close the read only descriptor and open a new one read write.
313 */
314 (void)prog_close(sysmonfd);
315 if ((sysmonfd = prog_open(_PATH_SYSMON, O_RDWR)) == -1) {
316 error = errno;
317 warn("%s", _PATH_SYSMON);
318 return error;
319 }
320
321 /*
322 * Send our sensor properties dictionary to the kernel then.
323 */
324 error = prop_dictionary_send_ioctl(udict,
325 sysmonfd, ENVSYS_SETDICTIONARY);
326 if (error)
327 warnx("%s", strerror(error));
328
329 prop_object_release(udict);
330 return error;
331 }
332
333 static sensor_stats_t
334 find_stats_sensor(const char *desc)
335 {
336 sensor_stats_t stats;
337
338 /*
339 * If we matched a sensor by its description return it, otherwise
340 * allocate a new one.
341 */
342 SIMPLEQ_FOREACH(stats, &sensor_stats_list, entries)
343 if (strcmp(stats->desc, desc) == 0)
344 return stats;
345
346 stats = calloc(1, sizeof(*stats));
347 if (stats == NULL)
348 return NULL;
349
350 (void)strlcpy(stats->desc, desc, sizeof(stats->desc));
351 stats->min = INT32_MAX;
352 stats->max = INT32_MIN;
353 SIMPLEQ_INSERT_TAIL(&sensor_stats_list, stats, entries);
354
355 return stats;
356 }
357
358 static int
359 parse_dictionary(int fd)
360 {
361 sensor_t sensor = NULL;
362 dvprops_t edp = NULL;
363 prop_array_t array;
364 prop_dictionary_t dict;
365 prop_object_iterator_t iter;
366 prop_object_t obj;
367 const char *dnp = NULL;
368 int rval = 0;
369
370 /* receive dictionary from kernel */
371 rval = prop_dictionary_recv_ioctl(fd, ENVSYS_GETDICTIONARY, &dict);
372 if (rval)
373 return rval;
374
375 /* No drivers registered? */
376 if (prop_dictionary_count(dict) == 0) {
377 warnx("no drivers registered");
378 goto out;
379 }
380
381 if (mydevname) {
382 /* -d flag specified, print sensors only for this device */
383 obj = prop_dictionary_get(dict, mydevname);
384 if (prop_object_type(obj) != PROP_TYPE_ARRAY) {
385 warnx("unknown device `%s'", mydevname);
386 rval = EINVAL;
387 goto out;
388 }
389
390 rval = find_sensors(obj, mydevname, NULL);
391 if (rval)
392 goto out;
393
394 } else {
395 /* print sensors for all devices registered */
396 iter = prop_dictionary_iterator(dict);
397 if (iter == NULL) {
398 rval = EINVAL;
399 goto out;
400 }
401
402 /* iterate over the dictionary returned by the kernel */
403 while ((obj = prop_object_iterator_next(iter)) != NULL) {
404 array = prop_dictionary_get_keysym(dict, obj);
405 if (prop_object_type(array) != PROP_TYPE_ARRAY) {
406 warnx("no sensors found");
407 rval = EINVAL;
408 goto out;
409 }
410
411 edp = calloc(1, sizeof(*edp));
412 if (!edp) {
413 rval = ENOMEM;
414 goto out;
415 }
416
417 dnp = prop_dictionary_keysym_cstring_nocopy(obj);
418 rval = find_sensors(array, dnp, edp);
419 if (rval)
420 goto out;
421
422 if (((flags & ENVSYS_LFLAG) == 0) &&
423 (flags & ENVSYS_DFLAG)) {
424 (void)printf("%s (checking events every ",
425 dnp);
426 if (edp->refresh_timo == 1)
427 (void)printf("second)\n");
428 else
429 (void)printf("%d seconds)\n",
430 (int)edp->refresh_timo);
431 }
432
433 free(edp);
434 edp = NULL;
435 }
436 prop_object_iterator_release(iter);
437 }
438
439 /* print sensors now */
440 if (sensors) {
441 char *str = strdup(sensors);
442 if (!str) {
443 rval = ENOMEM;
444 goto out;
445 }
446 rval = check_sensors(str);
447 free(str);
448 }
449 if ((flags & ENVSYS_LFLAG) == 0 && (flags & ENVSYS_DFLAG) == 0)
450 print_sensors();
451 if (interval)
452 (void)printf("\n");
453
454 out:
455 while ((sensor = SIMPLEQ_FIRST(&sensors_list))) {
456 SIMPLEQ_REMOVE_HEAD(&sensors_list, entries);
457 free(sensor);
458 }
459 if (edp)
460 free(edp);
461 prop_object_release(dict);
462 return rval;
463 }
464
465 static int
466 find_sensors(prop_array_t array, const char *dvname, dvprops_t edp)
467 {
468 prop_object_iterator_t iter;
469 prop_object_t obj, obj1, obj2;
470 prop_string_t state, desc = NULL;
471 sensor_t sensor = NULL;
472 sensor_stats_t stats = NULL;
473
474 iter = prop_array_iterator(array);
475 if (!iter)
476 return ENOMEM;
477
478 /* iterate over the array of dictionaries */
479 while ((obj = prop_object_iterator_next(iter)) != NULL) {
480 /* get the refresh-timeout property */
481 obj2 = prop_dictionary_get(obj, "device-properties");
482 if (obj2) {
483 if (!edp)
484 continue;
485 if (!prop_dictionary_get_uint64(obj2,
486 "refresh-timeout",
487 &edp->refresh_timo))
488 continue;
489 }
490
491 /* new sensor coming */
492 sensor = calloc(1, sizeof(*sensor));
493 if (sensor == NULL) {
494 prop_object_iterator_release(iter);
495 return ENOMEM;
496 }
497
498 /* copy device name */
499 (void)strlcpy(sensor->dvname, dvname, sizeof(sensor->dvname));
500
501 /* description string */
502 desc = prop_dictionary_get(obj, "description");
503 if (desc) {
504 /* copy description */
505 (void)strlcpy(sensor->desc,
506 prop_string_cstring_nocopy(desc),
507 sizeof(sensor->desc));
508 } else {
509 free(sensor);
510 continue;
511 }
512
513 /* type string */
514 obj1 = prop_dictionary_get(obj, "type");
515 if (obj1) {
516 /* copy type */
517 (void)strlcpy(sensor->type,
518 prop_string_cstring_nocopy(obj1),
519 sizeof(sensor->type));
520 } else {
521 free(sensor);
522 continue;
523 }
524
525 /* check sensor's state */
526 state = prop_dictionary_get(obj, "state");
527
528 /* mark sensors with invalid/unknown state */
529 if ((prop_string_equals_cstring(state, "invalid") ||
530 prop_string_equals_cstring(state, "unknown")))
531 sensor->invalid = true;
532
533 /* get current drive state string */
534 obj1 = prop_dictionary_get(obj, "drive-state");
535 if (obj1) {
536 (void)strlcpy(sensor->drvstate,
537 prop_string_cstring_nocopy(obj1),
538 sizeof(sensor->drvstate));
539 }
540
541 /* get current battery capacity string */
542 obj1 = prop_dictionary_get(obj, "battery-capacity");
543 if (obj1) {
544 (void)strlcpy(sensor->battcap,
545 prop_string_cstring_nocopy(obj1),
546 sizeof(sensor->battcap));
547 }
548
549 /* get current value */
550 obj1 = prop_dictionary_get(obj, "cur-value");
551 if (obj1)
552 sensor->cur_value = prop_number_integer_value(obj1);
553
554 /* get max value */
555 obj1 = prop_dictionary_get(obj, "max-value");
556 if (obj1)
557 sensor->max_value = prop_number_integer_value(obj1);
558
559 /* get min value */
560 obj1 = prop_dictionary_get(obj, "min-value");
561 if (obj1)
562 sensor->min_value = prop_number_integer_value(obj1);
563
564 /* get percentage flag */
565 obj1 = prop_dictionary_get(obj, "want-percentage");
566 if (obj1)
567 sensor->percentage = prop_bool_true(obj1);
568
569 /* get critical max value if available */
570 obj1 = prop_dictionary_get(obj, "critical-max");
571 if (obj1)
572 sensor->critmax_value = prop_number_integer_value(obj1);
573
574 /* get maximum capacity value if available */
575 obj1 = prop_dictionary_get(obj, "maximum-capacity");
576 if (obj1)
577 sensor->critmax_value = prop_number_integer_value(obj1);
578
579 /* get critical min value if available */
580 obj1 = prop_dictionary_get(obj, "critical-min");
581 if (obj1)
582 sensor->critmin_value = prop_number_integer_value(obj1);
583
584 /* get critical capacity value if available */
585 obj1 = prop_dictionary_get(obj, "critical-capacity");
586 if (obj1)
587 sensor->critmin_value = prop_number_integer_value(obj1);
588
589 /* get warning max value if available */
590 obj1 = prop_dictionary_get(obj, "warning-max");
591 if (obj1)
592 sensor->warnmax_value = prop_number_integer_value(obj1);
593
594 /* get high capacity value if available */
595 obj1 = prop_dictionary_get(obj, "high-capacity");
596 if (obj1)
597 sensor->warnmax_value = prop_number_integer_value(obj1);
598
599 /* get warning min value if available */
600 obj1 = prop_dictionary_get(obj, "warning-min");
601 if (obj1)
602 sensor->warnmin_value = prop_number_integer_value(obj1);
603
604 /* get warning capacity value if available */
605 obj1 = prop_dictionary_get(obj, "warning-capacity");
606 if (obj1)
607 sensor->warnmin_value = prop_number_integer_value(obj1);
608
609 /* print sensor names if -l was given */
610 if (flags & ENVSYS_LFLAG) {
611 if (width)
612 (void)printf("%*s\n", width,
613 prop_string_cstring_nocopy(desc));
614 else
615 (void)printf("%s\n",
616 prop_string_cstring_nocopy(desc));
617 }
618
619 /* Add the sensor into the list */
620 SIMPLEQ_INSERT_TAIL(&sensors_list, sensor, entries);
621
622 /* Collect statistics if flag enabled */
623 if (statistics) {
624 /* ignore sensors not relevant for statistics */
625 if ((strcmp(sensor->type, "Indicator") == 0) ||
626 (strcmp(sensor->type, "Battery charge") == 0) ||
627 (strcmp(sensor->type, "Drive") == 0))
628 continue;
629
630 /* ignore invalid data */
631 if (sensor->invalid)
632 continue;
633
634 /* find or allocate a new statistics sensor */
635 stats = find_stats_sensor(sensor->desc);
636 if (stats == NULL) {
637 free(sensor);
638 prop_object_iterator_release(iter);
639 return ENOMEM;
640 }
641
642 /* update data */
643 if (sensor->cur_value > stats->max)
644 stats->max = sensor->cur_value;
645
646 if (sensor->cur_value < stats->min)
647 stats->min = sensor->cur_value;
648
649 /* compute avg value */
650 stats->avg =
651 (sensor->cur_value + stats->max + stats->min) / 3;
652 }
653 }
654
655 /* free memory */
656 prop_object_iterator_release(iter);
657 return 0;
658 }
659
660 static int
661 check_sensors(char *str)
662 {
663 sensor_t sensor = NULL;
664 char *dvstring, *sstring, *p, *last;
665 bool sensor_found = false;
666
667 /*
668 * Parse device name and sensor description and find out
669 * if the sensor is valid.
670 */
671 for ((p = strtok_r(str, ",", &last)); p;
672 (p = strtok_r(NULL, ",", &last))) {
673 /* get device name */
674 dvstring = strtok(p, ":");
675 if (dvstring == NULL) {
676 warnx("missing device name");
677 return EINVAL;
678 }
679
680 /* get sensor description */
681 sstring = strtok(NULL, ":");
682 if (sstring == NULL) {
683 warnx("missing sensor description");
684 return EINVAL;
685 }
686
687 SIMPLEQ_FOREACH(sensor, &sensors_list, entries) {
688 /* skip until we match device */
689 if (strcmp(dvstring, sensor->dvname))
690 continue;
691 if (strcmp(sstring, sensor->desc) == 0) {
692 sensor->visible = true;
693 sensor_found = true;
694 break;
695 }
696 }
697 if (sensor_found == false) {
698 warnx("unknown sensor `%s' for device `%s'",
699 sstring, dvstring);
700 return EINVAL;
701 }
702 sensor_found = false;
703 }
704
705 /* check if all sensors were ok, and error out if not */
706 SIMPLEQ_FOREACH(sensor, &sensors_list, entries)
707 if (sensor->visible)
708 return 0;
709
710 warnx("no sensors selected to display");
711 return EINVAL;
712 }
713
714 static void
715 print_sensors(void)
716 {
717 sensor_t sensor;
718 sensor_stats_t stats = NULL;
719 size_t maxlen = 0, ilen;
720 double temp = 0;
721 const char *invalid = "N/A", *degrees, *tmpstr, *stype;
722 const char *a, *b, *c, *d, *e, *units;
723
724 tmpstr = stype = d = e = NULL;
725
726 /* find the longest description */
727 SIMPLEQ_FOREACH(sensor, &sensors_list, entries)
728 if (strlen(sensor->desc) > maxlen)
729 maxlen = strlen(sensor->desc);
730
731 if (width)
732 maxlen = width;
733
734 /*
735 * Print a header at the bottom only once showing different
736 * members if the statistics flag is set or not.
737 *
738 * As bonus if -s is set, only print this header every 10 iterations
739 * to avoid redundancy... like vmstat(1).
740 */
741
742 a = "Current";
743 units = "Unit";
744 if (statistics) {
745 b = "Max";
746 c = "Min";
747 d = "Avg";
748 } else {
749 b = "CritMax";
750 c = "WarnMax";
751 d = "WarnMin";
752 e = "CritMin";
753 }
754
755 if (!sensors || (!header_passes && sensors) ||
756 (header_passes == 10 && sensors)) {
757 if (statistics)
758 (void)printf("%s%*s %9s %8s %8s %8s %6s\n",
759 mydevname ? "" : " ", (int)maxlen,
760 "", a, b, c, d, units);
761 else
762 (void)printf("%s%*s %9s %8s %8s %8s %8s %5s\n",
763 mydevname ? "" : " ", (int)maxlen,
764 "", a, b, c, d, e, units);
765 if (sensors && header_passes == 10)
766 header_passes = 0;
767 }
768 if (sensors)
769 header_passes++;
770
771 /* print the sensors */
772 SIMPLEQ_FOREACH(sensor, &sensors_list, entries) {
773 /* skip sensors that were not marked as visible */
774 if (sensors && !sensor->visible)
775 continue;
776
777 /* skip invalid sensors if -I is set */
778 if ((flags & ENVSYS_IFLAG) && sensor->invalid)
779 continue;
780
781 /* print device name */
782 if (!mydevname) {
783 if (tmpstr == NULL || strcmp(tmpstr, sensor->dvname))
784 printf("[%s]\n", sensor->dvname);
785
786 tmpstr = sensor->dvname;
787 }
788
789 /* find out the statistics sensor */
790 if (statistics) {
791 stats = find_stats_sensor(sensor->desc);
792 if (stats == NULL) {
793 /* No statistics for this sensor */
794 continue;
795 }
796 }
797
798 /* print sensor description */
799 (void)printf("%s%*.*s", mydevname ? "" : " ", (int)maxlen,
800 (int)maxlen, sensor->desc);
801
802 /* print invalid string */
803 if (sensor->invalid) {
804 (void)printf(": %9s\n", invalid);
805 continue;
806 }
807
808 /*
809 * Indicator and Battery charge sensors.
810 */
811 if ((strcmp(sensor->type, "Indicator") == 0) ||
812 (strcmp(sensor->type, "Battery charge") == 0)) {
813
814 (void)printf(":%10s", sensor->cur_value ? "TRUE" : "FALSE");
815
816 /* convert and print a temp value in degC, degF, or Kelvin */
817 #define PRINTTEMP(a) \
818 do { \
819 if (a) { \
820 temp = ((a) / 1000000.0); \
821 if (flags & ENVSYS_FFLAG) { \
822 temp = temp * (9.0 / 5.0) - 459.67; \
823 degrees = "degF"; \
824 } else if (flags & ENVSYS_KFLAG) { \
825 degrees = "K"; \
826 } else { \
827 temp = temp - 273.15; \
828 degrees = "degC"; \
829 } \
830 (void)printf("%*.3f ", (int)ilen, temp); \
831 ilen = 8; \
832 } else \
833 ilen += 9; \
834 } while (/* CONSTCOND */ 0)
835
836 /* temperatures */
837 } else if (strcmp(sensor->type, "Temperature") == 0) {
838
839 ilen = 10;
840 degrees = "";
841 (void)printf(":");
842 PRINTTEMP(sensor->cur_value);
843 stype = degrees;
844
845 if (statistics) {
846 /* show statistics if flag set */
847 PRINTTEMP(stats->max);
848 PRINTTEMP(stats->min);
849 PRINTTEMP(stats->avg);
850 ilen += 2;
851 } else {
852 PRINTTEMP(sensor->critmax_value);
853 PRINTTEMP(sensor->warnmax_value);
854 PRINTTEMP(sensor->warnmin_value);
855 PRINTTEMP(sensor->critmin_value);
856 }
857 (void)printf("%*s", (int)ilen - 4, stype);
858 #undef PRINTTEMP
859
860 /* fans */
861 } else if (strcmp(sensor->type, "Fan") == 0) {
862 stype = "RPM";
863
864 (void)printf(":%10u ", sensor->cur_value);
865
866 ilen = 8;
867 if (statistics) {
868 /* show statistics if flag set */
869 (void)printf("%8u %8u %8u ",
870 stats->max, stats->min, stats->avg);
871 ilen += 2;
872 } else {
873 if (sensor->critmax_value) {
874 (void)printf("%*u ", (int)ilen,
875 sensor->critmax_value);
876 ilen = 8;
877 } else
878 ilen += 9;
879
880 if (sensor->warnmax_value) {
881 (void)printf("%*u ", (int)ilen,
882 sensor->warnmax_value);
883 ilen = 8;
884 } else
885 ilen += 9;
886
887 if (sensor->warnmin_value) {
888 (void)printf("%*u ", (int)ilen,
889 sensor->warnmin_value);
890 ilen = 8;
891 } else
892 ilen += 9;
893
894 if (sensor->critmin_value) {
895 (void)printf( "%*u ", (int)ilen,
896 sensor->critmin_value);
897 ilen = 8;
898 } else
899 ilen += 9;
900
901 }
902
903 (void)printf("%*s", (int)ilen - 4, stype);
904
905 /* integers */
906 } else if (strcmp(sensor->type, "Integer") == 0) {
907
908 stype = "none";
909
910 (void)printf(":%10d ", sensor->cur_value);
911
912 ilen = 8;
913
914 /* Print percentage of max_value */
915 #define PRINTPCT(a) \
916 do { \
917 if (sensor->max_value) { \
918 (void)printf("%*.3f%%", (int)ilen, \
919 ((a) * 100.0) / sensor->max_value); \
920 ilen = 8; \
921 } else \
922 ilen += 9; \
923 } while ( /* CONSTCOND*/ 0 )
924
925 /* Print an integer sensor value */
926 #define PRINTINT(a) \
927 do { \
928 (void)printf("%*u ", (int)ilen, (a)); \
929 ilen = 8; \
930 } while ( /* CONSTCOND*/ 0 )
931
932 if (!statistics) {
933 if (sensor->percentage) {
934 PRINTPCT(sensor->critmax_value);
935 PRINTPCT(sensor->warnmax_value);
936 PRINTPCT(sensor->warnmin_value);
937 PRINTPCT(sensor->critmin_value);
938 } else {
939 PRINTINT(sensor->critmax_value);
940 PRINTINT(sensor->warnmax_value);
941 PRINTINT(sensor->warnmin_value);
942 PRINTINT(sensor->critmin_value);
943 }
944 } else {
945 if (sensor->percentage) {
946 PRINTPCT(stats->max);
947 PRINTPCT(stats->min);
948 PRINTPCT(stats->avg);
949 } else {
950 PRINTINT(stats->max);
951 PRINTINT(stats->min);
952 PRINTINT(stats->avg);
953 }
954 ilen += 2;
955 }
956
957 (void)printf("%*s", (int)ilen - 4, stype);
958
959 #undef PRINTINT
960 #undef PRINTPCT
961
962 /* drives */
963 } else if (strcmp(sensor->type, "Drive") == 0) {
964
965 (void)printf(":%10s", sensor->drvstate);
966
967 /* Battery capacity */
968 } else if (strcmp(sensor->type, "Battery capacity") == 0) {
969
970 (void)printf(":%10s", sensor->battcap);
971
972 /* everything else */
973 } else {
974 if (strcmp(sensor->type, "Voltage DC") == 0)
975 stype = "V";
976 else if (strcmp(sensor->type, "Voltage AC") == 0)
977 stype = "VAC";
978 else if (strcmp(sensor->type, "Ampere") == 0)
979 stype = "A";
980 else if (strcmp(sensor->type, "Watts") == 0)
981 stype = "W";
982 else if (strcmp(sensor->type, "Ohms") == 0)
983 stype = "Ohms";
984 else if (strcmp(sensor->type, "Watt hour") == 0)
985 stype = "Wh";
986 else if (strcmp(sensor->type, "Ampere hour") == 0)
987 stype = "Ah";
988 else
989 stype = "?";
990
991 (void)printf(":%10.3f ",
992 sensor->cur_value / 1000000.0);
993
994 ilen = 8;
995
996 /* Print percentage of max_value */
997 #define PRINTPCT(a) \
998 do { \
999 if ((a) && sensor->max_value) { \
1000 (void)printf("%*.3f%%", (int)ilen, \
1001 ((a) * 100.0) / sensor->max_value); \
1002 ilen = 8; \
1003 } else \
1004 ilen += 9; \
1005 } while ( /* CONSTCOND*/ 0 )
1006
1007 /* Print a generic sensor value */
1008 #define PRINTVAL(a) \
1009 do { \
1010 if ((a)) { \
1011 (void)printf("%*.3f ", (int)ilen, (a) / 1000000.0); \
1012 ilen = 8; \
1013 } else \
1014 ilen += 9; \
1015 } while ( /* CONSTCOND*/ 0 )
1016
1017 if (!statistics) {
1018 if (sensor->percentage) {
1019 PRINTPCT(sensor->critmax_value);
1020 PRINTPCT(sensor->warnmax_value);
1021 PRINTPCT(sensor->warnmin_value);
1022 PRINTPCT(sensor->critmin_value);
1023 } else {
1024
1025 PRINTVAL(sensor->critmax_value);
1026 PRINTVAL(sensor->warnmax_value);
1027 PRINTVAL(sensor->warnmin_value);
1028 PRINTVAL(sensor->critmin_value);
1029 }
1030 } else {
1031 if (sensor->percentage) {
1032 PRINTPCT(stats->max);
1033 PRINTPCT(stats->min);
1034 PRINTPCT(stats->avg);
1035 } else {
1036 PRINTVAL(stats->max);
1037 PRINTVAL(stats->min);
1038 PRINTVAL(stats->avg);
1039 }
1040 ilen += 2;
1041 }
1042 #undef PRINTPCT
1043 #undef PRINTVAL
1044
1045 (void)printf("%*s", (int)ilen - 3, stype);
1046
1047 if (sensor->percentage && sensor->max_value) {
1048 (void)printf(" (%5.2f%%)",
1049 (sensor->cur_value * 100.0) /
1050 sensor->max_value);
1051 }
1052 }
1053 (void)printf("\n");
1054 }
1055 }
1056
1057 static int
1058 usage(void)
1059 {
1060 (void)fprintf(stderr, "Usage: %s [-DfIklrSTx] ", getprogname());
1061 (void)fprintf(stderr, "[-c file] [-d device] [-i interval] ");
1062 (void)fprintf(stderr, "[-s device:sensor,...] [-w width]\n");
1063 exit(EXIT_FAILURE);
1064 /* NOTREACHED */
1065 }
1066