sysmon_envsys.c revision 1.96 1 /* $NetBSD: sysmon_envsys.c,v 1.96 2010/02/15 22:32:04 pgoyette 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 /*-
29 * Copyright (c) 2000 Zembu Labs, Inc.
30 * All rights reserved.
31 *
32 * Author: Jason R. Thorpe <thorpej (at) zembu.com>
33 *
34 * Redistribution and use in source and binary forms, with or without
35 * modification, are permitted provided that the following conditions
36 * are met:
37 * 1. Redistributions of source code must retain the above copyright
38 * notice, this list of conditions and the following disclaimer.
39 * 2. Redistributions in binary form must reproduce the above copyright
40 * notice, this list of conditions and the following disclaimer in the
41 * documentation and/or other materials provided with the distribution.
42 * 3. All advertising materials mentioning features or use of this software
43 * must display the following acknowledgement:
44 * This product includes software developed by Zembu Labs, Inc.
45 * 4. Neither the name of Zembu Labs nor the names of its employees may
46 * be used to endorse or promote products derived from this software
47 * without specific prior written permission.
48 *
49 * THIS SOFTWARE IS PROVIDED BY ZEMBU LABS, INC. ``AS IS'' AND ANY EXPRESS
50 * OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WAR-
51 * RANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DIS-
52 * CLAIMED. IN NO EVENT SHALL ZEMBU LABS BE LIABLE FOR ANY DIRECT, INDIRECT,
53 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
54 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
55 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
56 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
57 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
58 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
59 */
60
61 /*
62 * Environmental sensor framework for sysmon, exported to userland
63 * with proplib(3).
64 */
65
66 #include <sys/cdefs.h>
67 __KERNEL_RCSID(0, "$NetBSD: sysmon_envsys.c,v 1.96 2010/02/15 22:32:04 pgoyette Exp $");
68
69 #include <sys/param.h>
70 #include <sys/types.h>
71 #include <sys/conf.h>
72 #include <sys/errno.h>
73 #include <sys/fcntl.h>
74 #include <sys/kernel.h>
75 #include <sys/systm.h>
76 #include <sys/proc.h>
77 #include <sys/mutex.h>
78 #include <sys/kmem.h>
79
80 /* #define ENVSYS_DEBUG */
81 #include <dev/sysmon/sysmonvar.h>
82 #include <dev/sysmon/sysmon_envsysvar.h>
83 #include <dev/sysmon/sysmon_taskq.h>
84
85 kmutex_t sme_global_mtx;
86
87 static prop_dictionary_t sme_propd;
88 static uint32_t sysmon_envsys_next_sensor_index;
89 static struct sysmon_envsys *sysmon_envsys_find_40(u_int);
90
91 static void sysmon_envsys_destroy_plist(prop_array_t);
92 static void sme_remove_userprops(void);
93 static int sme_add_property_dictionary(struct sysmon_envsys *, prop_array_t,
94 prop_dictionary_t);
95 static void sme_initial_refresh(void *);
96 static uint32_t sme_get_max_value(struct sysmon_envsys *,
97 bool (*)(const envsys_data_t*), bool);
98
99 /*
100 * sysmon_envsys_init:
101 *
102 * + Initialize global mutex, dictionary and the linked list.
103 */
104 void
105 sysmon_envsys_init(void)
106 {
107 LIST_INIT(&sysmon_envsys_list);
108 mutex_init(&sme_global_mtx, MUTEX_DEFAULT, IPL_NONE);
109 sme_propd = prop_dictionary_create();
110 }
111
112 /*
113 * sysmonopen_envsys:
114 *
115 * + Open the system monitor device.
116 */
117 int
118 sysmonopen_envsys(dev_t dev, int flag, int mode, struct lwp *l)
119 {
120 return 0;
121 }
122
123 /*
124 * sysmonclose_envsys:
125 *
126 * + Close the system monitor device.
127 */
128 int
129 sysmonclose_envsys(dev_t dev, int flag, int mode, struct lwp *l)
130 {
131 return 0;
132 }
133
134 /*
135 * sysmonioctl_envsys:
136 *
137 * + Perform a sysmon envsys control request.
138 */
139 int
140 sysmonioctl_envsys(dev_t dev, u_long cmd, void *data, int flag, struct lwp *l)
141 {
142 struct sysmon_envsys *sme = NULL;
143 int error = 0;
144 u_int oidx;
145
146 switch (cmd) {
147 /*
148 * To update the global dictionary with latest data from devices.
149 */
150 case ENVSYS_GETDICTIONARY:
151 {
152 struct plistref *plist = (struct plistref *)data;
153
154 /*
155 * Update dictionaries on all sysmon envsys devices
156 * registered.
157 */
158 mutex_enter(&sme_global_mtx);
159 LIST_FOREACH(sme, &sysmon_envsys_list, sme_list) {
160 sysmon_envsys_acquire(sme, false);
161 error = sme_update_dictionary(sme);
162 if (error) {
163 DPRINTF(("%s: sme_update_dictionary, "
164 "error=%d\n", __func__, error));
165 sysmon_envsys_release(sme, false);
166 mutex_exit(&sme_global_mtx);
167 return error;
168 }
169 sysmon_envsys_release(sme, false);
170 }
171 mutex_exit(&sme_global_mtx);
172 /*
173 * Copy global dictionary to userland.
174 */
175 error = prop_dictionary_copyout_ioctl(plist, cmd, sme_propd);
176 break;
177 }
178 /*
179 * To set properties on multiple devices.
180 */
181 case ENVSYS_SETDICTIONARY:
182 {
183 const struct plistref *plist = (const struct plistref *)data;
184 prop_dictionary_t udict;
185 prop_object_iterator_t iter, iter2;
186 prop_object_t obj, obj2;
187 prop_array_t array_u, array_k;
188 const char *devname = NULL;
189
190 if ((flag & FWRITE) == 0)
191 return EPERM;
192
193 /*
194 * Get dictionary from userland.
195 */
196 error = prop_dictionary_copyin_ioctl(plist, cmd, &udict);
197 if (error) {
198 DPRINTF(("%s: copyin_ioctl error=%d\n",
199 __func__, error));
200 break;
201 }
202
203 iter = prop_dictionary_iterator(udict);
204 if (!iter) {
205 prop_object_release(udict);
206 return ENOMEM;
207 }
208
209 /*
210 * Iterate over the userland dictionary and process
211 * the list of devices.
212 */
213 while ((obj = prop_object_iterator_next(iter))) {
214 array_u = prop_dictionary_get_keysym(udict, obj);
215 if (prop_object_type(array_u) != PROP_TYPE_ARRAY) {
216 prop_object_iterator_release(iter);
217 prop_object_release(udict);
218 return EINVAL;
219 }
220
221 devname = prop_dictionary_keysym_cstring_nocopy(obj);
222 DPRINTF(("%s: processing the '%s' array requests\n",
223 __func__, devname));
224
225 /*
226 * find the correct sme device.
227 */
228 sme = sysmon_envsys_find(devname);
229 if (!sme) {
230 DPRINTF(("%s: NULL sme\n", __func__));
231 prop_object_iterator_release(iter);
232 prop_object_release(udict);
233 return EINVAL;
234 }
235
236 /*
237 * Find the correct array object with the string
238 * supplied by the userland dictionary.
239 */
240 array_k = prop_dictionary_get(sme_propd, devname);
241 if (prop_object_type(array_k) != PROP_TYPE_ARRAY) {
242 DPRINTF(("%s: array device failed\n",
243 __func__));
244 sysmon_envsys_release(sme, false);
245 prop_object_iterator_release(iter);
246 prop_object_release(udict);
247 return EINVAL;
248 }
249
250 iter2 = prop_array_iterator(array_u);
251 if (!iter2) {
252 sysmon_envsys_release(sme, false);
253 prop_object_iterator_release(iter);
254 prop_object_release(udict);
255 return ENOMEM;
256 }
257
258 /*
259 * Iterate over the array of dictionaries to
260 * process the list of sensors and properties.
261 */
262 while ((obj2 = prop_object_iterator_next(iter2))) {
263 /*
264 * do the real work now.
265 */
266 error = sme_userset_dictionary(sme,
267 obj2,
268 array_k);
269 if (error) {
270 sysmon_envsys_release(sme, false);
271 prop_object_iterator_release(iter2);
272 prop_object_iterator_release(iter);
273 prop_object_release(udict);
274 return error;
275 }
276 }
277
278 sysmon_envsys_release(sme, false);
279 prop_object_iterator_release(iter2);
280 }
281
282 prop_object_iterator_release(iter);
283 prop_object_release(udict);
284 break;
285 }
286 /*
287 * To remove all properties from all devices registered.
288 */
289 case ENVSYS_REMOVEPROPS:
290 {
291 const struct plistref *plist = (const struct plistref *)data;
292 prop_dictionary_t udict;
293 prop_object_t obj;
294
295 if ((flag & FWRITE) == 0)
296 return EPERM;
297
298 error = prop_dictionary_copyin_ioctl(plist, cmd, &udict);
299 if (error) {
300 DPRINTF(("%s: copyin_ioctl error=%d\n",
301 __func__, error));
302 break;
303 }
304
305 obj = prop_dictionary_get(udict, "envsys-remove-props");
306 if (!obj || !prop_bool_true(obj)) {
307 DPRINTF(("%s: invalid 'envsys-remove-props'\n",
308 __func__));
309 return EINVAL;
310 }
311
312 prop_object_release(udict);
313 sme_remove_userprops();
314
315 break;
316 }
317 /*
318 * Compatibility ioctls with the old interface, only implemented
319 * ENVSYS_GTREDATA and ENVSYS_GTREINFO; enough to make old
320 * applications work.
321 */
322 case ENVSYS_GTREDATA:
323 {
324 struct envsys_tre_data *tred = (void *)data;
325 envsys_data_t *edata = NULL;
326 bool found = false;
327
328 tred->validflags = 0;
329
330 sme = sysmon_envsys_find_40(tred->sensor);
331 if (!sme)
332 break;
333
334 oidx = tred->sensor;
335 tred->sensor = SME_SENSOR_IDX(sme, tred->sensor);
336
337 DPRINTFOBJ(("%s: sensor=%d oidx=%d dev=%s nsensors=%d\n",
338 __func__, tred->sensor, oidx, sme->sme_name,
339 sme->sme_nsensors));
340
341 TAILQ_FOREACH(edata, &sme->sme_sensors_list, sensors_head) {
342 if (edata->sensor == tred->sensor) {
343 found = true;
344 break;
345 }
346 }
347
348 if (!found) {
349 sysmon_envsys_release(sme, false);
350 error = ENODEV;
351 break;
352 }
353
354 if (tred->sensor < sme->sme_nsensors) {
355 if ((sme->sme_flags & SME_DISABLE_REFRESH) == 0 &&
356 (sme->sme_flags & SME_POLL_ONLY) == 0) {
357 mutex_enter(&sme->sme_mtx);
358 (*sme->sme_refresh)(sme, edata);
359 mutex_exit(&sme->sme_mtx);
360 }
361
362 /*
363 * copy required values to the old interface.
364 */
365 tred->sensor = edata->sensor;
366 tred->cur.data_us = edata->value_cur;
367 tred->cur.data_s = edata->value_cur;
368 tred->max.data_us = edata->value_max;
369 tred->max.data_s = edata->value_max;
370 tred->min.data_us = edata->value_min;
371 tred->min.data_s = edata->value_min;
372 tred->avg.data_us = edata->value_avg;
373 tred->avg.data_s = edata->value_avg;
374 if (edata->units == ENVSYS_BATTERY_CHARGE)
375 tred->units = ENVSYS_INDICATOR;
376 else
377 tred->units = edata->units;
378
379 tred->validflags |= ENVSYS_FVALID;
380 tred->validflags |= ENVSYS_FCURVALID;
381
382 if (edata->flags & ENVSYS_FPERCENT) {
383 tred->validflags |= ENVSYS_FMAXVALID;
384 tred->validflags |= ENVSYS_FFRACVALID;
385 }
386
387 if (edata->state == ENVSYS_SINVALID) {
388 tred->validflags &= ~ENVSYS_FCURVALID;
389 tred->cur.data_us = tred->cur.data_s = 0;
390 }
391
392 DPRINTFOBJ(("%s: sensor=%s tred->cur.data_s=%d\n",
393 __func__, edata->desc, tred->cur.data_s));
394 DPRINTFOBJ(("%s: tred->validflags=%d tred->units=%d"
395 " tred->sensor=%d\n", __func__, tred->validflags,
396 tred->units, tred->sensor));
397 }
398 tred->sensor = oidx;
399 sysmon_envsys_release(sme, false);
400
401 break;
402 }
403 case ENVSYS_GTREINFO:
404 {
405 struct envsys_basic_info *binfo = (void *)data;
406 envsys_data_t *edata = NULL;
407 bool found = false;
408
409 binfo->validflags = 0;
410
411 sme = sysmon_envsys_find_40(binfo->sensor);
412 if (!sme)
413 break;
414
415 oidx = binfo->sensor;
416 binfo->sensor = SME_SENSOR_IDX(sme, binfo->sensor);
417
418 TAILQ_FOREACH(edata, &sme->sme_sensors_list, sensors_head) {
419 if (edata->sensor == binfo->sensor) {
420 found = true;
421 break;
422 }
423 }
424
425 if (!found) {
426 sysmon_envsys_release(sme, false);
427 error = ENODEV;
428 break;
429 }
430
431 binfo->validflags |= ENVSYS_FVALID;
432
433 if (binfo->sensor < sme->sme_nsensors) {
434 if (edata->units == ENVSYS_BATTERY_CHARGE)
435 binfo->units = ENVSYS_INDICATOR;
436 else
437 binfo->units = edata->units;
438
439 /*
440 * previously, the ACPI sensor names included the
441 * device name. Include that in compatibility code.
442 */
443 if (strncmp(sme->sme_name, "acpi", 4) == 0)
444 (void)snprintf(binfo->desc, sizeof(binfo->desc),
445 "%s %s", sme->sme_name, edata->desc);
446 else
447 (void)strlcpy(binfo->desc, edata->desc,
448 sizeof(binfo->desc));
449 }
450
451 DPRINTFOBJ(("%s: binfo->units=%d binfo->validflags=%d\n",
452 __func__, binfo->units, binfo->validflags));
453 DPRINTFOBJ(("%s: binfo->desc=%s binfo->sensor=%d\n",
454 __func__, binfo->desc, binfo->sensor));
455
456 binfo->sensor = oidx;
457 sysmon_envsys_release(sme, false);
458
459 break;
460 }
461 default:
462 error = ENOTTY;
463 break;
464 }
465
466 return error;
467 }
468
469 /*
470 * sysmon_envsys_create:
471 *
472 * + Allocates a new sysmon_envsys object and initializes the
473 * stuff for sensors and events.
474 */
475 struct sysmon_envsys *
476 sysmon_envsys_create(void)
477 {
478 struct sysmon_envsys *sme;
479
480 sme = kmem_zalloc(sizeof(*sme), KM_SLEEP);
481 TAILQ_INIT(&sme->sme_sensors_list);
482 LIST_INIT(&sme->sme_events_list);
483 mutex_init(&sme->sme_mtx, MUTEX_DEFAULT, IPL_NONE);
484 cv_init(&sme->sme_condvar, "sme_wait");
485
486 return sme;
487 }
488
489 /*
490 * sysmon_envsys_destroy:
491 *
492 * + Removes all sensors from the tail queue, destroys the callout
493 * and frees the sysmon_envsys object.
494 */
495 void
496 sysmon_envsys_destroy(struct sysmon_envsys *sme)
497 {
498 envsys_data_t *edata;
499
500 KASSERT(sme != NULL);
501
502 while (!TAILQ_EMPTY(&sme->sme_sensors_list)) {
503 edata = TAILQ_FIRST(&sme->sme_sensors_list);
504 TAILQ_REMOVE(&sme->sme_sensors_list, edata, sensors_head);
505 }
506 mutex_destroy(&sme->sme_mtx);
507 cv_destroy(&sme->sme_condvar);
508 kmem_free(sme, sizeof(*sme));
509 }
510
511 /*
512 * sysmon_envsys_sensor_attach:
513 *
514 * + Attachs a sensor into a sysmon_envsys device checking that units
515 * is set to a valid type and description is unique and not empty.
516 */
517 int
518 sysmon_envsys_sensor_attach(struct sysmon_envsys *sme, envsys_data_t *edata)
519 {
520 const struct sme_description_table *sdt_units;
521 envsys_data_t *oedata;
522 int i;
523
524 KASSERT(sme != NULL || edata != NULL);
525
526 /*
527 * Find the correct units for this sensor.
528 */
529 sdt_units = sme_get_description_table(SME_DESC_UNITS);
530 for (i = 0; sdt_units[i].type != -1; i++)
531 if (sdt_units[i].type == edata->units)
532 break;
533
534 if (strcmp(sdt_units[i].desc, "unknown") == 0)
535 return EINVAL;
536
537 /*
538 * Check that description is not empty or duplicate.
539 */
540 if (strlen(edata->desc) == 0)
541 return EINVAL;
542
543 mutex_enter(&sme->sme_mtx);
544 sysmon_envsys_acquire(sme, true);
545 TAILQ_FOREACH(oedata, &sme->sme_sensors_list, sensors_head) {
546 if (strcmp(oedata->desc, edata->desc) == 0) {
547 sysmon_envsys_release(sme, true);
548 mutex_exit(&sme->sme_mtx);
549 return EEXIST;
550 }
551 }
552 /*
553 * Ok, the sensor has been added into the device queue.
554 */
555 TAILQ_INSERT_TAIL(&sme->sme_sensors_list, edata, sensors_head);
556
557 /*
558 * Give the sensor a index position.
559 */
560 edata->sensor = sme->sme_nsensors;
561 sme->sme_nsensors++;
562 sysmon_envsys_release(sme, true);
563 mutex_exit(&sme->sme_mtx);
564
565 DPRINTF(("%s: attached #%d (%s), units=%d (%s)\n",
566 __func__, edata->sensor, edata->desc,
567 sdt_units[i].type, sdt_units[i].desc));
568
569 return 0;
570 }
571
572 /*
573 * sysmon_envsys_sensor_detach:
574 *
575 * + Detachs a sensor from a sysmon_envsys device and decrements the
576 * sensors count on success.
577 */
578 int
579 sysmon_envsys_sensor_detach(struct sysmon_envsys *sme, envsys_data_t *edata)
580 {
581 envsys_data_t *oedata;
582 bool found = false;
583
584 KASSERT(sme != NULL || edata != NULL);
585
586 /*
587 * Check the sensor is already on the list.
588 */
589 mutex_enter(&sme->sme_mtx);
590 sysmon_envsys_acquire(sme, true);
591 TAILQ_FOREACH(oedata, &sme->sme_sensors_list, sensors_head) {
592 if (oedata->sensor == edata->sensor) {
593 found = true;
594 break;
595 }
596 }
597
598 if (!found) {
599 sysmon_envsys_release(sme, true);
600 mutex_exit(&sme->sme_mtx);
601 return EINVAL;
602 }
603
604 /*
605 * remove it and decrement the sensors count.
606 */
607 TAILQ_REMOVE(&sme->sme_sensors_list, edata, sensors_head);
608 sme->sme_nsensors--;
609 sysmon_envsys_release(sme, true);
610 mutex_exit(&sme->sme_mtx);
611
612 return 0;
613 }
614
615
616 /*
617 * sysmon_envsys_register:
618 *
619 * + Register a sysmon envsys device.
620 * + Create array of dictionaries for a device.
621 */
622 int
623 sysmon_envsys_register(struct sysmon_envsys *sme)
624 {
625 struct sme_evdrv {
626 SLIST_ENTRY(sme_evdrv) evdrv_head;
627 sme_event_drv_t *evdrv;
628 };
629 SLIST_HEAD(, sme_evdrv) sme_evdrv_list;
630 struct sme_evdrv *evdv = NULL;
631 struct sysmon_envsys *lsme;
632 prop_array_t array = NULL;
633 prop_dictionary_t dict, dict2;
634 envsys_data_t *edata = NULL;
635 sme_event_drv_t *this_evdrv;
636 int error = 0;
637
638 KASSERT(sme != NULL);
639 KASSERT(sme->sme_name != NULL);
640
641 /*
642 * Check if requested sysmon_envsys device is valid
643 * and does not exist already in the list.
644 */
645 mutex_enter(&sme_global_mtx);
646 LIST_FOREACH(lsme, &sysmon_envsys_list, sme_list) {
647 if (strcmp(lsme->sme_name, sme->sme_name) == 0) {
648 mutex_exit(&sme_global_mtx);
649 return EEXIST;
650 }
651 }
652 mutex_exit(&sme_global_mtx);
653
654 /*
655 * sanity check: if SME_DISABLE_REFRESH is not set,
656 * the sme_refresh function callback must be non NULL.
657 */
658 if ((sme->sme_flags & SME_DISABLE_REFRESH) == 0)
659 if (!sme->sme_refresh)
660 return EINVAL;
661
662 /*
663 * If the list of sensors is empty, there's no point to continue...
664 */
665 if (TAILQ_EMPTY(&sme->sme_sensors_list)) {
666 DPRINTF(("%s: sensors list empty for %s\n", __func__,
667 sme->sme_name));
668 return ENOTSUP;
669 }
670
671 /*
672 * Initialize the singly linked list for driver events.
673 */
674 SLIST_INIT(&sme_evdrv_list);
675
676 array = prop_array_create();
677 if (!array)
678 return ENOMEM;
679
680 /*
681 * Iterate over all sensors and create a dictionary per sensor.
682 * We must respect the order in which the sensors were added.
683 */
684 TAILQ_FOREACH(edata, &sme->sme_sensors_list, sensors_head) {
685 dict = prop_dictionary_create();
686 if (!dict) {
687 error = ENOMEM;
688 goto out2;
689 }
690
691 /*
692 * Create all objects in sensor's dictionary.
693 */
694 this_evdrv = sme_add_sensor_dictionary(sme, array,
695 dict, edata);
696 if (this_evdrv) {
697 evdv = kmem_zalloc(sizeof(*evdv), KM_SLEEP);
698 evdv->evdrv = this_evdrv;
699 SLIST_INSERT_HEAD(&sme_evdrv_list, evdv, evdrv_head);
700 }
701 }
702
703 /*
704 * If the array does not contain any object (sensor), there's
705 * no need to attach the driver.
706 */
707 if (prop_array_count(array) == 0) {
708 error = EINVAL;
709 DPRINTF(("%s: empty array for '%s'\n", __func__,
710 sme->sme_name));
711 goto out;
712 }
713
714 /*
715 * Add the dictionary for the global properties of this device.
716 */
717 dict2 = prop_dictionary_create();
718 if (!dict2) {
719 error = ENOMEM;
720 goto out;
721 }
722
723 error = sme_add_property_dictionary(sme, array, dict2);
724 if (error) {
725 prop_object_release(dict2);
726 goto out;
727 }
728
729 /*
730 * Add the array into the global dictionary for the driver.
731 *
732 * <dict>
733 * <key>foo0</key>
734 * <array>
735 * ...
736 */
737 mutex_enter(&sme_global_mtx);
738 if (!prop_dictionary_set(sme_propd, sme->sme_name, array)) {
739 error = EINVAL;
740 DPRINTF(("%s: prop_dictionary_set for '%s'\n", __func__,
741 sme->sme_name));
742 goto out;
743 }
744
745 /*
746 * Add the device into the list.
747 */
748 LIST_INSERT_HEAD(&sysmon_envsys_list, sme, sme_list);
749 sme->sme_fsensor = sysmon_envsys_next_sensor_index;
750 sysmon_envsys_next_sensor_index += sme->sme_nsensors;
751 mutex_exit(&sme_global_mtx);
752
753 out:
754 /*
755 * No errors? register the events that were set in the driver
756 * and make an initial data refresh if was requested.
757 */
758 if (error == 0) {
759 sysmon_task_queue_init();
760 SLIST_FOREACH(evdv, &sme_evdrv_list, evdrv_head) {
761 sysmon_task_queue_sched(0,
762 sme_event_drvadd, evdv->evdrv);
763 }
764 DPRINTF(("%s: driver '%s' registered (nsens=%d)\n",
765 __func__, sme->sme_name, sme->sme_nsensors));
766
767 if (sme->sme_flags & SME_INIT_REFRESH)
768 sysmon_task_queue_sched(0, sme_initial_refresh, sme);
769 }
770
771 out2:
772 while (!SLIST_EMPTY(&sme_evdrv_list)) {
773 evdv = SLIST_FIRST(&sme_evdrv_list);
774 SLIST_REMOVE_HEAD(&sme_evdrv_list, evdrv_head);
775 kmem_free(evdv, sizeof(*evdv));
776 }
777 if (!error)
778 return 0;
779
780 /*
781 * Ugh... something wasn't right; unregister all events and sensors
782 * previously assigned and destroy the array with all its objects.
783 */
784 DPRINTF(("%s: failed to register '%s' (%d)\n", __func__,
785 sme->sme_name, error));
786
787 sme_event_unregister_all(sme);
788 while (!TAILQ_EMPTY(&sme->sme_sensors_list)) {
789 edata = TAILQ_FIRST(&sme->sme_sensors_list);
790 TAILQ_REMOVE(&sme->sme_sensors_list, edata, sensors_head);
791 }
792 sysmon_envsys_destroy_plist(array);
793 return error;
794 }
795
796 /*
797 * sysmon_envsys_destroy_plist:
798 *
799 * + Remove all objects from the array of dictionaries that is
800 * created in a sysmon envsys device.
801 */
802 static void
803 sysmon_envsys_destroy_plist(prop_array_t array)
804 {
805 prop_object_iterator_t iter, iter2;
806 prop_dictionary_t dict;
807 prop_object_t obj;
808
809 KASSERT(array != NULL);
810 KASSERT(prop_object_type(array) == PROP_TYPE_ARRAY);
811
812 DPRINTFOBJ(("%s: objects in array=%d\n", __func__,
813 prop_array_count(array)));
814
815 iter = prop_array_iterator(array);
816 if (!iter)
817 return;
818
819 while ((dict = prop_object_iterator_next(iter))) {
820 KASSERT(prop_object_type(dict) == PROP_TYPE_DICTIONARY);
821 iter2 = prop_dictionary_iterator(dict);
822 if (!iter2)
823 goto out;
824 DPRINTFOBJ(("%s: iterating over dictionary\n", __func__));
825 while ((obj = prop_object_iterator_next(iter2)) != NULL) {
826 DPRINTFOBJ(("%s: obj=%s\n", __func__,
827 prop_dictionary_keysym_cstring_nocopy(obj)));
828 prop_dictionary_remove(dict,
829 prop_dictionary_keysym_cstring_nocopy(obj));
830 prop_object_iterator_reset(iter2);
831 }
832 prop_object_iterator_release(iter2);
833 DPRINTFOBJ(("%s: objects in dictionary:%d\n",
834 __func__, prop_dictionary_count(dict)));
835 prop_object_release(dict);
836 }
837
838 out:
839 prop_object_iterator_release(iter);
840 prop_object_release(array);
841 }
842
843 /*
844 * sysmon_envsys_unregister:
845 *
846 * + Unregister a sysmon envsys device.
847 */
848 void
849 sysmon_envsys_unregister(struct sysmon_envsys *sme)
850 {
851 prop_array_t array;
852
853 KASSERT(sme != NULL);
854
855 /*
856 * Unregister all events associated with device.
857 */
858 sme_event_unregister_all(sme);
859 /*
860 * Decrement global sensors counter (only used for compatibility
861 * with previous API) and remove the device from the list.
862 */
863 mutex_enter(&sme_global_mtx);
864 sysmon_envsys_next_sensor_index -= sme->sme_nsensors;
865 LIST_REMOVE(sme, sme_list);
866 mutex_exit(&sme_global_mtx);
867
868 /*
869 * Remove the device (and all its objects) from the global dictionary.
870 */
871 array = prop_dictionary_get(sme_propd, sme->sme_name);
872 if (array && prop_object_type(array) == PROP_TYPE_ARRAY) {
873 mutex_enter(&sme_global_mtx);
874 prop_dictionary_remove(sme_propd, sme->sme_name);
875 mutex_exit(&sme_global_mtx);
876 sysmon_envsys_destroy_plist(array);
877 }
878 /*
879 * And finally destroy the sysmon_envsys object.
880 */
881 sysmon_envsys_destroy(sme);
882 }
883
884 /*
885 * sysmon_envsys_find:
886 *
887 * + Find a sysmon envsys device and mark it as busy
888 * once it's available.
889 */
890 struct sysmon_envsys *
891 sysmon_envsys_find(const char *name)
892 {
893 struct sysmon_envsys *sme;
894
895 mutex_enter(&sme_global_mtx);
896 LIST_FOREACH(sme, &sysmon_envsys_list, sme_list) {
897 if (strcmp(sme->sme_name, name) == 0) {
898 sysmon_envsys_acquire(sme, false);
899 break;
900 }
901 }
902 mutex_exit(&sme_global_mtx);
903
904 return sme;
905 }
906
907 /*
908 * Compatibility function with the old API.
909 */
910 struct sysmon_envsys *
911 sysmon_envsys_find_40(u_int idx)
912 {
913 struct sysmon_envsys *sme;
914
915 mutex_enter(&sme_global_mtx);
916 LIST_FOREACH(sme, &sysmon_envsys_list, sme_list) {
917 if (idx >= sme->sme_fsensor &&
918 idx < (sme->sme_fsensor + sme->sme_nsensors)) {
919 sysmon_envsys_acquire(sme, false);
920 break;
921 }
922 }
923 mutex_exit(&sme_global_mtx);
924
925 return sme;
926 }
927
928 /*
929 * sysmon_envsys_acquire:
930 *
931 * + Wait until a sysmon envsys device is available and mark
932 * it as busy.
933 */
934 void
935 sysmon_envsys_acquire(struct sysmon_envsys *sme, bool locked)
936 {
937 KASSERT(sme != NULL);
938
939 if (locked) {
940 while (sme->sme_flags & SME_FLAG_BUSY)
941 cv_wait(&sme->sme_condvar, &sme->sme_mtx);
942 sme->sme_flags |= SME_FLAG_BUSY;
943 } else {
944 mutex_enter(&sme->sme_mtx);
945 while (sme->sme_flags & SME_FLAG_BUSY)
946 cv_wait(&sme->sme_condvar, &sme->sme_mtx);
947 sme->sme_flags |= SME_FLAG_BUSY;
948 mutex_exit(&sme->sme_mtx);
949 }
950 }
951
952 /*
953 * sysmon_envsys_release:
954 *
955 * + Unmark a sysmon envsys device as busy, and notify
956 * waiters.
957 */
958 void
959 sysmon_envsys_release(struct sysmon_envsys *sme, bool locked)
960 {
961 KASSERT(sme != NULL);
962
963 if (locked) {
964 sme->sme_flags &= ~SME_FLAG_BUSY;
965 cv_broadcast(&sme->sme_condvar);
966 } else {
967 mutex_enter(&sme->sme_mtx);
968 sme->sme_flags &= ~SME_FLAG_BUSY;
969 cv_broadcast(&sme->sme_condvar);
970 mutex_exit(&sme->sme_mtx);
971 }
972 }
973
974 /*
975 * sme_initial_refresh:
976 *
977 * + Do an initial refresh of the sensors in a device just after
978 * interrupts are enabled in the autoconf(9) process.
979 *
980 */
981 static void
982 sme_initial_refresh(void *arg)
983 {
984 struct sysmon_envsys *sme = arg;
985 envsys_data_t *edata;
986
987 mutex_enter(&sme->sme_mtx);
988 sysmon_envsys_acquire(sme, true);
989 TAILQ_FOREACH(edata, &sme->sme_sensors_list, sensors_head)
990 if ((sme->sme_flags & SME_DISABLE_REFRESH) == 0)
991 (*sme->sme_refresh)(sme, edata);
992 sysmon_envsys_release(sme, true);
993 mutex_exit(&sme->sme_mtx);
994 }
995
996 /*
997 * sme_sensor_dictionary_get:
998 *
999 * + Returns a dictionary of a device specified by its index
1000 * position.
1001 */
1002 prop_dictionary_t
1003 sme_sensor_dictionary_get(prop_array_t array, const char *index)
1004 {
1005 prop_object_iterator_t iter;
1006 prop_dictionary_t dict;
1007 prop_object_t obj;
1008
1009 KASSERT(array != NULL || index != NULL);
1010
1011 iter = prop_array_iterator(array);
1012 if (!iter)
1013 return NULL;
1014
1015 while ((dict = prop_object_iterator_next(iter))) {
1016 obj = prop_dictionary_get(dict, "index");
1017 if (prop_string_equals_cstring(obj, index))
1018 break;
1019 }
1020
1021 prop_object_iterator_release(iter);
1022 return dict;
1023 }
1024
1025 /*
1026 * sme_remove_userprops:
1027 *
1028 * + Remove all properties from all devices that were set by
1029 * the ENVSYS_SETDICTIONARY ioctl.
1030 */
1031 static void
1032 sme_remove_userprops(void)
1033 {
1034 struct sysmon_envsys *sme;
1035 prop_array_t array;
1036 prop_dictionary_t sdict;
1037 envsys_data_t *edata = NULL;
1038 char tmp[ENVSYS_DESCLEN];
1039 int ptype;
1040
1041 mutex_enter(&sme_global_mtx);
1042 LIST_FOREACH(sme, &sysmon_envsys_list, sme_list) {
1043 sysmon_envsys_acquire(sme, false);
1044 array = prop_dictionary_get(sme_propd, sme->sme_name);
1045
1046 TAILQ_FOREACH(edata, &sme->sme_sensors_list, sensors_head) {
1047 (void)snprintf(tmp, sizeof(tmp), "sensor%d",
1048 edata->sensor);
1049 sdict = sme_sensor_dictionary_get(array, tmp);
1050 KASSERT(sdict != NULL);
1051
1052 ptype = 0;
1053 if (edata->upropset & PROP_BATTCAP) {
1054 prop_dictionary_remove(sdict,
1055 "critical-capacity");
1056 ptype = PENVSYS_EVENT_CAPACITY;
1057 }
1058
1059 if (edata->upropset & PROP_BATTWARN) {
1060 prop_dictionary_remove(sdict,
1061 "warning-capacity");
1062 ptype = PENVSYS_EVENT_CAPACITY;
1063 }
1064
1065 if (edata->upropset & PROP_BATTHIGH) {
1066 prop_dictionary_remove(sdict,
1067 "high-capacity");
1068 ptype = PENVSYS_EVENT_CAPACITY;
1069 }
1070
1071 if (edata->upropset & PROP_BATTMAX) {
1072 prop_dictionary_remove(sdict,
1073 "maximum-capacity");
1074 ptype = PENVSYS_EVENT_CAPACITY;
1075 }
1076 if (ptype != 0)
1077 sme_event_unregister(sme, edata->desc, ptype);
1078
1079 ptype = 0;
1080 if (edata->upropset & PROP_WARNMAX) {
1081 prop_dictionary_remove(sdict, "warning-max");
1082 ptype = PENVSYS_EVENT_LIMITS;
1083 }
1084
1085 if (edata->upropset & PROP_WARNMIN) {
1086 prop_dictionary_remove(sdict, "warning-min");
1087 ptype = PENVSYS_EVENT_LIMITS;
1088 }
1089
1090 if (edata->upropset & PROP_CRITMAX) {
1091 prop_dictionary_remove(sdict, "critical-max");
1092 ptype = PENVSYS_EVENT_LIMITS;
1093 }
1094
1095 if (edata->upropset & PROP_CRITMIN) {
1096 prop_dictionary_remove(sdict, "critical-min");
1097 ptype = PENVSYS_EVENT_LIMITS;
1098 }
1099 if (ptype != 0)
1100 sme_event_unregister(sme, edata->desc, ptype);
1101
1102 if (edata->upropset & PROP_RFACT) {
1103 (void)sme_sensor_upint32(sdict, "rfact", 0);
1104 edata->rfact = 0;
1105 }
1106
1107 if (edata->upropset & PROP_DESC)
1108 (void)sme_sensor_upstring(sdict,
1109 "description", edata->desc);
1110
1111 if (edata->upropset)
1112 edata->upropset = 0;
1113 }
1114
1115 /*
1116 * Restore default timeout value.
1117 */
1118 sme->sme_events_timeout = SME_EVENTS_DEFTIMEOUT;
1119 sysmon_envsys_release(sme, false);
1120 }
1121 mutex_exit(&sme_global_mtx);
1122 }
1123
1124 /*
1125 * sme_add_property_dictionary:
1126 *
1127 * + Add global properties into a device.
1128 */
1129 static int
1130 sme_add_property_dictionary(struct sysmon_envsys *sme, prop_array_t array,
1131 prop_dictionary_t dict)
1132 {
1133 prop_dictionary_t pdict;
1134 int error = 0;
1135
1136 pdict = prop_dictionary_create();
1137 if (!pdict)
1138 return EINVAL;
1139
1140 /*
1141 * Add the 'refresh-timeout' object into the 'device-properties'
1142 * dictionary. We use by default 30 seconds.
1143 *
1144 * ...
1145 * <dict>
1146 * <key>device-properties</key>
1147 * <dict>
1148 * <key>refresh-timeout</key>
1149 * <integer>120</integer<
1150 * </dict<
1151 * </dict>
1152 * ...
1153 *
1154 */
1155 if (!sme->sme_events_timeout)
1156 sme->sme_events_timeout = SME_EVENTS_DEFTIMEOUT;
1157
1158 if (!prop_dictionary_set_uint64(pdict, "refresh-timeout",
1159 sme->sme_events_timeout)) {
1160 error = EINVAL;
1161 goto out;
1162 }
1163
1164 if (!prop_dictionary_set(dict, "device-properties", pdict)) {
1165 error = EINVAL;
1166 goto out;
1167 }
1168
1169 /*
1170 * Add the device dictionary into the sysmon envsys array.
1171 */
1172 if (!prop_array_add(array, dict))
1173 error = EINVAL;
1174
1175 out:
1176 prop_object_release(pdict);
1177 return error;
1178 }
1179
1180 /*
1181 * sme_add_sensor_dictionary:
1182 *
1183 * + Adds the sensor objects into the dictionary and returns a pointer
1184 * to a sme_event_drv_t object if a monitoring flag was set
1185 * (or NULL otherwise).
1186 */
1187 sme_event_drv_t *
1188 sme_add_sensor_dictionary(struct sysmon_envsys *sme, prop_array_t array,
1189 prop_dictionary_t dict, envsys_data_t *edata)
1190 {
1191 const struct sme_description_table *sdt, *sdt_units;
1192 sme_event_drv_t *sme_evdrv_t = NULL;
1193 int i, j;
1194 char indexstr[ENVSYS_DESCLEN];
1195
1196 /*
1197 * Find the correct units for this sensor.
1198 */
1199 sdt_units = sme_get_description_table(SME_DESC_UNITS);
1200 for (i = 0; sdt_units[i].type != -1; i++)
1201 if (sdt_units[i].type == edata->units)
1202 break;
1203
1204 /*
1205 * Add the index sensor string.
1206 *
1207 * ...
1208 * <key>index</eyr
1209 * <string>sensor0</string>
1210 * ...
1211 */
1212 (void)snprintf(indexstr, sizeof(indexstr), "sensor%d", edata->sensor);
1213 if (sme_sensor_upstring(dict, "index", indexstr))
1214 goto bad;
1215
1216 /*
1217 * ...
1218 * <key>type</key>
1219 * <string>foo</string>
1220 * <key>description</key>
1221 * <string>blah blah</string>
1222 * ...
1223 */
1224 if (sme_sensor_upstring(dict, "type", sdt_units[i].desc))
1225 goto bad;
1226
1227 if (sme_sensor_upstring(dict, "description", edata->desc))
1228 goto bad;
1229
1230 /*
1231 * Add sensor's state description.
1232 *
1233 * ...
1234 * <key>state</key>
1235 * <string>valid</string>
1236 * ...
1237 */
1238 sdt = sme_get_description_table(SME_DESC_STATES);
1239 for (j = 0; sdt[j].type != -1; j++)
1240 if (sdt[j].type == edata->state)
1241 break;
1242
1243 DPRINTF(("%s: sensor desc=%s type=%d state=%d\n",
1244 __func__, edata->desc, edata->units, edata->state));
1245
1246 if (sme_sensor_upstring(dict, "state", sdt[j].desc))
1247 goto bad;
1248
1249 /*
1250 * Add the monitoring boolean object:
1251 *
1252 * ...
1253 * <key>monitoring-supported</key>
1254 * <true/>
1255 * ...
1256 *
1257 * always false on Battery {capacity,charge}, Drive and Indicator types.
1258 * They cannot be monitored.
1259 *
1260 */
1261 if ((edata->flags & ENVSYS_FMONNOTSUPP) ||
1262 (edata->units == ENVSYS_INDICATOR) ||
1263 (edata->units == ENVSYS_DRIVE) ||
1264 (edata->units == ENVSYS_BATTERY_CAPACITY) ||
1265 (edata->units == ENVSYS_BATTERY_CHARGE)) {
1266 if (sme_sensor_upbool(dict, "monitoring-supported", false))
1267 goto out;
1268 } else {
1269 if (sme_sensor_upbool(dict, "monitoring-supported", true))
1270 goto out;
1271 }
1272
1273 /*
1274 * Add the percentage boolean object, true if ENVSYS_FPERCENT
1275 * is set or false otherwise.
1276 *
1277 * ...
1278 * <key>want-percentage</key>
1279 * <true/>
1280 * ...
1281 */
1282 if (edata->flags & ENVSYS_FPERCENT)
1283 if (sme_sensor_upbool(dict, "want-percentage", true))
1284 goto out;
1285
1286 /*
1287 * Add the allow-rfact boolean object, true if
1288 * ENVSYS_FCHANGERFACT if set or false otherwise.
1289 *
1290 * ...
1291 * <key>allow-rfact</key>
1292 * <true/>
1293 * ...
1294 */
1295 if (edata->units == ENVSYS_SVOLTS_DC ||
1296 edata->units == ENVSYS_SVOLTS_AC) {
1297 if (edata->flags & ENVSYS_FCHANGERFACT) {
1298 if (sme_sensor_upbool(dict, "allow-rfact", true))
1299 goto out;
1300 } else {
1301 if (sme_sensor_upbool(dict, "allow-rfact", false))
1302 goto out;
1303 }
1304 }
1305
1306 /*
1307 * Add the object for battery capacity sensors:
1308 *
1309 * ...
1310 * <key>battery-capacity</key>
1311 * <string>NORMAL</string>
1312 * ...
1313 */
1314 if (edata->units == ENVSYS_BATTERY_CAPACITY) {
1315 sdt = sme_get_description_table(SME_DESC_BATTERY_CAPACITY);
1316 for (j = 0; sdt[j].type != -1; j++)
1317 if (sdt[j].type == edata->value_cur)
1318 break;
1319
1320 if (sme_sensor_upstring(dict, "battery-capacity", sdt[j].desc))
1321 goto out;
1322 }
1323
1324 /*
1325 * Add the drive-state object for drive sensors:
1326 *
1327 * ...
1328 * <key>drive-state</key>
1329 * <string>drive is online</string>
1330 * ...
1331 */
1332 if (edata->units == ENVSYS_DRIVE) {
1333 sdt = sme_get_description_table(SME_DESC_DRIVE_STATES);
1334 for (j = 0; sdt[j].type != -1; j++)
1335 if (sdt[j].type == edata->value_cur)
1336 break;
1337
1338 if (sme_sensor_upstring(dict, "drive-state", sdt[j].desc))
1339 goto out;
1340 }
1341
1342 /*
1343 * Add the following objects if sensor is enabled...
1344 */
1345 if (edata->state == ENVSYS_SVALID) {
1346 /*
1347 * Add the following objects:
1348 *
1349 * ...
1350 * <key>rpms</key>
1351 * <integer>2500</integer>
1352 * <key>rfact</key>
1353 * <integer>10000</integer>
1354 * <key>cur-value</key>
1355 * <integer>1250</integer>
1356 * <key>min-value</key>
1357 * <integer>800</integer>
1358 * <key>max-value</integer>
1359 * <integer>3000</integer>
1360 * <key>avg-value</integer>
1361 * <integer>1400</integer>
1362 * ...
1363 */
1364 if (edata->units == ENVSYS_SFANRPM)
1365 if (sme_sensor_upuint32(dict, "rpms", edata->rpms))
1366 goto out;
1367
1368 if (edata->units == ENVSYS_SVOLTS_AC ||
1369 edata->units == ENVSYS_SVOLTS_DC)
1370 if (sme_sensor_upint32(dict, "rfact", edata->rfact))
1371 goto out;
1372
1373 if (sme_sensor_upint32(dict, "cur-value", edata->value_cur))
1374 goto out;
1375
1376 if (edata->flags & ENVSYS_FVALID_MIN) {
1377 if (sme_sensor_upint32(dict,
1378 "min-value",
1379 edata->value_min))
1380 goto out;
1381 }
1382
1383 if (edata->flags & ENVSYS_FVALID_MAX) {
1384 if (sme_sensor_upint32(dict,
1385 "max-value",
1386 edata->value_max))
1387 goto out;
1388 }
1389
1390 if (edata->flags & ENVSYS_FVALID_AVG) {
1391 if (sme_sensor_upint32(dict,
1392 "avg-value",
1393 edata->value_avg))
1394 goto out;
1395 }
1396 }
1397
1398 /*
1399 * ...
1400 * </dict>
1401 *
1402 * Add the dictionary into the array.
1403 *
1404 */
1405 if (!prop_array_add(array, dict)) {
1406 DPRINTF(("%s: prop_array_add\n", __func__));
1407 goto bad;
1408 }
1409
1410 /*
1411 * Register a new event if a monitoring flag was set.
1412 */
1413 if (edata->monitor) {
1414 sme_evdrv_t = kmem_zalloc(sizeof(*sme_evdrv_t), KM_SLEEP);
1415 sme_evdrv_t->sed_sdict = dict;
1416 sme_evdrv_t->sed_edata = edata;
1417 sme_evdrv_t->sed_sme = sme;
1418 sme_evdrv_t->sed_powertype = sdt_units[i].crittype;
1419 }
1420
1421 out:
1422 return sme_evdrv_t;
1423
1424 bad:
1425 prop_object_release(dict);
1426 return NULL;
1427 }
1428
1429 /*
1430 * Find the maximum of all currently reported values.
1431 * The provided callback decides wether a sensor is part of the
1432 * maximum calculation (by returning true) or ignored (callback
1433 * returns false). Example usage: callback selects temperature
1434 * sensors in a given thermal zone, the function calculates the
1435 * maximum currently reported temperature in this zone.
1436 * If the parameter "refresh" is true, new values will be aquired
1437 * from the hardware, if not, the last reported value will be used.
1438 */
1439 uint32_t
1440 sysmon_envsys_get_max_value(bool (*predicate)(const envsys_data_t*),
1441 bool refresh)
1442 {
1443 struct sysmon_envsys *sme;
1444 uint32_t maxv, v;
1445
1446 maxv = 0;
1447 mutex_enter(&sme_global_mtx);
1448 LIST_FOREACH(sme, &sysmon_envsys_list, sme_list) {
1449 sysmon_envsys_acquire(sme, false);
1450 v = sme_get_max_value(sme, predicate, refresh);
1451 sysmon_envsys_release(sme, false);
1452 if (v > maxv)
1453 maxv = v;
1454 }
1455 mutex_exit(&sme_global_mtx);
1456 return maxv;
1457 }
1458
1459 static uint32_t
1460 sme_get_max_value(struct sysmon_envsys *sme,
1461 bool (*predicate)(const envsys_data_t*),
1462 bool refresh)
1463 {
1464 envsys_data_t *edata;
1465 uint32_t maxv, v;
1466
1467 /*
1468 * Iterate over all sensors that match the predicate
1469 */
1470 maxv = 0;
1471 TAILQ_FOREACH(edata, &sme->sme_sensors_list, sensors_head) {
1472 if (!(*predicate)(edata))
1473 continue;
1474
1475 /*
1476 * refresh sensor data via sme_refresh only if the
1477 * flag is not set.
1478 */
1479 if (refresh && (sme->sme_flags & SME_DISABLE_REFRESH) == 0) {
1480 mutex_enter(&sme->sme_mtx);
1481 (*sme->sme_refresh)(sme, edata);
1482 mutex_exit(&sme->sme_mtx);
1483 }
1484
1485 v = edata->value_cur;
1486 if (v > maxv)
1487 maxv = v;
1488
1489 }
1490
1491 return maxv;
1492 }
1493
1494 /*
1495 * sme_update_dictionary:
1496 *
1497 * + Update per-sensor dictionaries with new values if there were
1498 * changes, otherwise the object in dictionary is untouched.
1499 */
1500 int
1501 sme_update_dictionary(struct sysmon_envsys *sme)
1502 {
1503 const struct sme_description_table *sdt;
1504 envsys_data_t *edata;
1505 prop_object_t array, dict, obj, obj2;
1506 int j, error = 0;
1507
1508 /*
1509 * Retrieve the array of dictionaries in device.
1510 */
1511 array = prop_dictionary_get(sme_propd, sme->sme_name);
1512 if (prop_object_type(array) != PROP_TYPE_ARRAY) {
1513 DPRINTF(("%s: not an array (%s)\n", __func__, sme->sme_name));
1514 return EINVAL;
1515 }
1516
1517 /*
1518 * Get the last dictionary on the array, this contains the
1519 * 'device-properties' sub-dictionary.
1520 */
1521 obj = prop_array_get(array, prop_array_count(array) - 1);
1522 if (!obj || prop_object_type(obj) != PROP_TYPE_DICTIONARY) {
1523 DPRINTF(("%s: not a device-properties dictionary\n", __func__));
1524 return EINVAL;
1525 }
1526
1527 obj2 = prop_dictionary_get(obj, "device-properties");
1528 if (!obj2)
1529 return EINVAL;
1530
1531 /*
1532 * Update the 'refresh-timeout' property.
1533 */
1534 if (!prop_dictionary_set_uint64(obj2, "refresh-timeout",
1535 sme->sme_events_timeout))
1536 return EINVAL;
1537
1538 /*
1539 * - iterate over all sensors.
1540 * - fetch new data.
1541 * - check if data in dictionary is different than new data.
1542 * - update dictionary if there were changes.
1543 */
1544 DPRINTF(("%s: updating '%s' with nsensors=%d\n", __func__,
1545 sme->sme_name, sme->sme_nsensors));
1546
1547 /*
1548 * Don't bother with locking when traversing the queue,
1549 * the device is already marked as busy; if a sensor
1550 * is going to be removed or added it will have to wait.
1551 */
1552 TAILQ_FOREACH(edata, &sme->sme_sensors_list, sensors_head) {
1553 /*
1554 * refresh sensor data via sme_refresh only if the
1555 * flag is not set.
1556 */
1557 if ((sme->sme_flags & SME_DISABLE_REFRESH) == 0) {
1558 mutex_enter(&sme->sme_mtx);
1559 (*sme->sme_refresh)(sme, edata);
1560 mutex_exit(&sme->sme_mtx);
1561 }
1562
1563 /*
1564 * retrieve sensor's dictionary.
1565 */
1566 dict = prop_array_get(array, edata->sensor);
1567 if (prop_object_type(dict) != PROP_TYPE_DICTIONARY) {
1568 DPRINTF(("%s: not a dictionary (%d:%s)\n",
1569 __func__, edata->sensor, sme->sme_name));
1570 return EINVAL;
1571 }
1572
1573 /*
1574 * update sensor's state.
1575 */
1576 sdt = sme_get_description_table(SME_DESC_STATES);
1577 for (j = 0; sdt[j].type != -1; j++)
1578 if (sdt[j].type == edata->state)
1579 break;
1580
1581 DPRINTFOBJ(("%s: sensor #%d type=%d (%s) flags=%d\n",
1582 __func__, edata->sensor, sdt[j].type, sdt[j].desc,
1583 edata->flags));
1584
1585 error = sme_sensor_upstring(dict, "state", sdt[j].desc);
1586 if (error)
1587 break;
1588
1589 /*
1590 * update sensor's type.
1591 */
1592 sdt = sme_get_description_table(SME_DESC_UNITS);
1593 for (j = 0; sdt[j].type != -1; j++)
1594 if (sdt[j].type == edata->units)
1595 break;
1596
1597 DPRINTFOBJ(("%s: sensor #%d units=%d (%s)\n",
1598 __func__, edata->sensor, sdt[j].type, sdt[j].desc));
1599
1600 error = sme_sensor_upstring(dict, "type", sdt[j].desc);
1601 if (error)
1602 break;
1603
1604 /*
1605 * update sensor's current value.
1606 */
1607 error = sme_sensor_upint32(dict,
1608 "cur-value",
1609 edata->value_cur);
1610 if (error)
1611 break;
1612
1613 /*
1614 * Battery charge, Integer and Indicator types do not
1615 * need the following objects, so skip them.
1616 */
1617 if (edata->units == ENVSYS_INTEGER ||
1618 edata->units == ENVSYS_INDICATOR ||
1619 edata->units == ENVSYS_BATTERY_CHARGE)
1620 continue;
1621
1622 /*
1623 * update sensor flags.
1624 */
1625 if (edata->flags & ENVSYS_FPERCENT) {
1626 error = sme_sensor_upbool(dict,
1627 "want-percentage",
1628 true);
1629 if (error)
1630 break;
1631 }
1632
1633 /*
1634 * update sensor's {avg,max,min}-value.
1635 */
1636 if (edata->flags & ENVSYS_FVALID_MAX) {
1637 error = sme_sensor_upint32(dict,
1638 "max-value",
1639 edata->value_max);
1640 if (error)
1641 break;
1642 }
1643
1644 if (edata->flags & ENVSYS_FVALID_MIN) {
1645 error = sme_sensor_upint32(dict,
1646 "min-value",
1647 edata->value_min);
1648 if (error)
1649 break;
1650 }
1651
1652 if (edata->flags & ENVSYS_FVALID_AVG) {
1653 error = sme_sensor_upint32(dict,
1654 "avg-value",
1655 edata->value_avg);
1656 if (error)
1657 break;
1658 }
1659
1660 /*
1661 * update 'rpms' only for ENVSYS_SFANRPM sensors.
1662 */
1663 if (edata->units == ENVSYS_SFANRPM) {
1664 error = sme_sensor_upuint32(dict,
1665 "rpms",
1666 edata->rpms);
1667 if (error)
1668 break;
1669 }
1670
1671 /*
1672 * update 'rfact' only for ENVSYS_SVOLTS_[AD]C sensors.
1673 */
1674 if (edata->units == ENVSYS_SVOLTS_AC ||
1675 edata->units == ENVSYS_SVOLTS_DC) {
1676 error = sme_sensor_upint32(dict,
1677 "rfact",
1678 edata->rfact);
1679 if (error)
1680 break;
1681 }
1682
1683 /*
1684 * update 'drive-state' only for ENVSYS_DRIVE sensors.
1685 */
1686 if (edata->units == ENVSYS_DRIVE) {
1687 sdt = sme_get_description_table(SME_DESC_DRIVE_STATES);
1688 for (j = 0; sdt[j].type != -1; j++)
1689 if (sdt[j].type == edata->value_cur)
1690 break;
1691
1692 error = sme_sensor_upstring(dict,
1693 "drive-state",
1694 sdt[j].desc);
1695 if (error)
1696 break;
1697 }
1698
1699 /*
1700 * update 'battery-capacity' only for ENVSYS_BATTERY_CAPACITY
1701 * sensors.
1702 */
1703 if (edata->units == ENVSYS_BATTERY_CAPACITY) {
1704 sdt =
1705 sme_get_description_table(SME_DESC_BATTERY_CAPACITY);
1706 for (j = 0; sdt[j].type != -1; j++)
1707 if (sdt[j].type == edata->value_cur)
1708 break;
1709
1710 error = sme_sensor_upstring(dict,
1711 "battery-capacity",
1712 sdt[j].desc);
1713 if (error)
1714 break;
1715 }
1716 }
1717
1718 return error;
1719 }
1720
1721 /*
1722 * sme_userset_dictionary:
1723 *
1724 * + Parse the userland dictionary and run the appropiate tasks
1725 * that were specified.
1726 */
1727 int
1728 sme_userset_dictionary(struct sysmon_envsys *sme, prop_dictionary_t udict,
1729 prop_array_t array)
1730 {
1731 const struct sme_description_table *sdt;
1732 envsys_data_t *edata;
1733 prop_dictionary_t dict, tdict = NULL;
1734 prop_object_t obj, obj1, obj2, tobj = NULL;
1735 uint32_t props;
1736 uint64_t refresh_timo = 0;
1737 sysmon_envsys_lim_t lims;
1738 int i, error = 0;
1739 const char *blah;
1740 bool targetfound = false;
1741
1742 /*
1743 * The user wanted to change the refresh timeout value for this
1744 * device.
1745 *
1746 * Get the 'device-properties' object from the userland dictionary.
1747 */
1748 obj = prop_dictionary_get(udict, "device-properties");
1749 if (obj && prop_object_type(obj) == PROP_TYPE_DICTIONARY) {
1750 /*
1751 * Get the 'refresh-timeout' property for this device.
1752 */
1753 obj1 = prop_dictionary_get(obj, "refresh-timeout");
1754 if (obj1 && prop_object_type(obj1) == PROP_TYPE_NUMBER) {
1755 targetfound = true;
1756 refresh_timo =
1757 prop_number_unsigned_integer_value(obj1);
1758 if (refresh_timo < 1)
1759 error = EINVAL;
1760 else {
1761 mutex_enter(&sme->sme_mtx);
1762 sme->sme_events_timeout = refresh_timo;
1763 mutex_exit(&sme->sme_mtx);
1764 }
1765 }
1766 return error;
1767
1768 } else if (!obj) {
1769 /*
1770 * Get sensor's index from userland dictionary.
1771 */
1772 obj = prop_dictionary_get(udict, "index");
1773 if (!obj)
1774 return EINVAL;
1775 if (prop_object_type(obj) != PROP_TYPE_STRING) {
1776 DPRINTF(("%s: 'index' not a string\n", __func__));
1777 return EINVAL;
1778 }
1779 } else
1780 return EINVAL;
1781
1782 /*
1783 * Don't bother with locking when traversing the queue,
1784 * the device is already marked as busy; if a sensor
1785 * is going to be removed or added it will have to wait.
1786 */
1787 TAILQ_FOREACH(edata, &sme->sme_sensors_list, sensors_head) {
1788 /*
1789 * Get a dictionary and check if it's our sensor by checking
1790 * at its index position.
1791 */
1792 dict = prop_array_get(array, edata->sensor);
1793 obj1 = prop_dictionary_get(dict, "index");
1794
1795 /*
1796 * is it our sensor?
1797 */
1798 if (!prop_string_equals(obj1, obj))
1799 continue;
1800
1801 props = 0;
1802
1803 /*
1804 * Check if a new description operation was
1805 * requested by the user and set new description.
1806 */
1807 obj2 = prop_dictionary_get(udict, "description");
1808 if (obj2 && prop_object_type(obj2) == PROP_TYPE_STRING) {
1809 targetfound = true;
1810 blah = prop_string_cstring_nocopy(obj2);
1811
1812 /*
1813 * Check for duplicate description.
1814 */
1815 for (i = 0; i < sme->sme_nsensors; i++) {
1816 if (i == edata->sensor)
1817 continue;
1818 tdict = prop_array_get(array, i);
1819 tobj =
1820 prop_dictionary_get(tdict, "description");
1821 if (prop_string_equals(obj2, tobj)) {
1822 error = EEXIST;
1823 goto out;
1824 }
1825 }
1826
1827 /*
1828 * Update the object in dictionary.
1829 */
1830 mutex_enter(&sme->sme_mtx);
1831 error = sme_sensor_upstring(dict,
1832 "description",
1833 blah);
1834 if (error) {
1835 mutex_exit(&sme->sme_mtx);
1836 goto out;
1837 }
1838
1839 DPRINTF(("%s: sensor%d changed desc to: %s\n",
1840 __func__, edata->sensor, blah));
1841 edata->upropset |= PROP_DESC;
1842 mutex_exit(&sme->sme_mtx);
1843 }
1844
1845 /*
1846 * did the user want to change the rfact?
1847 */
1848 obj2 = prop_dictionary_get(udict, "rfact");
1849 if (obj2 && prop_object_type(obj2) == PROP_TYPE_NUMBER) {
1850 targetfound = true;
1851 if (edata->flags & ENVSYS_FCHANGERFACT) {
1852 mutex_enter(&sme->sme_mtx);
1853 edata->rfact = prop_number_integer_value(obj2);
1854 edata->upropset |= PROP_RFACT;
1855 mutex_exit(&sme->sme_mtx);
1856 DPRINTF(("%s: sensor%d changed rfact to %d\n",
1857 __func__, edata->sensor, edata->rfact));
1858 } else {
1859 error = ENOTSUP;
1860 goto out;
1861 }
1862 }
1863
1864 sdt = sme_get_description_table(SME_DESC_UNITS);
1865 for (i = 0; sdt[i].type != -1; i++)
1866 if (sdt[i].type == edata->units)
1867 break;
1868
1869 /*
1870 * did the user want to set a critical capacity event?
1871 */
1872 obj2 = prop_dictionary_get(udict, "critical-capacity");
1873 if (obj2 && prop_object_type(obj2) == PROP_TYPE_NUMBER) {
1874 targetfound = true;
1875 lims.sel_critmin = prop_number_integer_value(obj2);
1876 props |= PROP_BATTCAP;
1877 }
1878
1879 /*
1880 * did the user want to set a warning capacity event?
1881 */
1882 obj2 = prop_dictionary_get(udict, "warning-capacity");
1883 if (obj2 && prop_object_type(obj2) == PROP_TYPE_NUMBER) {
1884 targetfound = true;
1885 lims.sel_warnmin = prop_number_integer_value(obj2);
1886 props |= PROP_BATTWARN;
1887 }
1888
1889 /*
1890 * did the user want to set a high capacity event?
1891 */
1892 obj2 = prop_dictionary_get(udict, "high-capacity");
1893 if (obj2 && prop_object_type(obj2) == PROP_TYPE_NUMBER) {
1894 targetfound = true;
1895 lims.sel_warnmin = prop_number_integer_value(obj2);
1896 props |= PROP_BATTHIGH;
1897 }
1898
1899 /*
1900 * did the user want to set a maximum capacity event?
1901 */
1902 obj2 = prop_dictionary_get(udict, "maximum-capacity");
1903 if (obj2 && prop_object_type(obj2) == PROP_TYPE_NUMBER) {
1904 targetfound = true;
1905 lims.sel_warnmin = prop_number_integer_value(obj2);
1906 props |= PROP_BATTMAX;
1907 }
1908
1909 /*
1910 * did the user want to set a critical max event?
1911 */
1912 obj2 = prop_dictionary_get(udict, "critical-max");
1913 if (obj2 && prop_object_type(obj2) == PROP_TYPE_NUMBER) {
1914 targetfound = true;
1915 lims.sel_critmax = prop_number_integer_value(obj2);
1916 props |= PROP_CRITMAX;
1917 }
1918
1919 /*
1920 * did the user want to set a warning max event?
1921 */
1922 obj2 = prop_dictionary_get(udict, "warning-max");
1923 if (obj2 && prop_object_type(obj2) == PROP_TYPE_NUMBER) {
1924 targetfound = true;
1925 lims.sel_warnmax = prop_number_integer_value(obj2);
1926 props |= PROP_WARNMAX;
1927 }
1928
1929 /*
1930 * did the user want to set a critical min event?
1931 */
1932 obj2 = prop_dictionary_get(udict, "critical-min");
1933 if (obj2 && prop_object_type(obj2) == PROP_TYPE_NUMBER) {
1934 targetfound = true;
1935 lims.sel_critmin = prop_number_integer_value(obj2);
1936 props |= PROP_CRITMIN;
1937 }
1938
1939 /*
1940 * did the user want to set a warning min event?
1941 */
1942 obj2 = prop_dictionary_get(udict, "warning-min");
1943 if (obj2 && prop_object_type(obj2) == PROP_TYPE_NUMBER) {
1944 targetfound = true;
1945 lims.sel_warnmin = prop_number_integer_value(obj2);
1946 props |= PROP_WARNMIN;
1947 }
1948
1949 if (props) {
1950 if (edata->flags & ENVSYS_FMONNOTSUPP) {
1951 error = ENOTSUP;
1952 goto out;
1953 }
1954 error = sme_event_register(dict, edata, sme, &lims,
1955 props,
1956 (edata->flags & ENVSYS_FPERCENT)?
1957 PENVSYS_EVENT_CAPACITY:
1958 PENVSYS_EVENT_LIMITS,
1959 sdt[i].crittype);
1960 if (error == EEXIST)
1961 error = 0;
1962 if (error)
1963 goto out;
1964 }
1965
1966 /*
1967 * All objects in dictionary were processed.
1968 */
1969 break;
1970 }
1971
1972 out:
1973 /*
1974 * invalid target? return the error.
1975 */
1976 if (!targetfound)
1977 error = EINVAL;
1978
1979 return error;
1980 }
1981