hp_sdc_rtc.c 20 KB

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  1. /*
  2. * HP i8042 SDC + MSM-58321 BBRTC driver.
  3. *
  4. * Copyright (c) 2001 Brian S. Julin
  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. * without modification.
  13. * 2. The name of the author may not be used to endorse or promote products
  14. * derived from this software without specific prior written permission.
  15. *
  16. * Alternatively, this software may be distributed under the terms of the
  17. * GNU General Public License ("GPL").
  18. *
  19. * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
  20. * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
  21. * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
  22. * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE FOR
  23. * ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
  24. * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
  25. * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
  26. * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
  27. * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
  28. *
  29. * References:
  30. * System Device Controller Microprocessor Firmware Theory of Operation
  31. * for Part Number 1820-4784 Revision B. Dwg No. A-1820-4784-2
  32. * efirtc.c by Stephane Eranian/Hewlett Packard
  33. *
  34. */
  35. #include <linux/hp_sdc.h>
  36. #include <linux/errno.h>
  37. #include <linux/smp_lock.h>
  38. #include <linux/types.h>
  39. #include <linux/init.h>
  40. #include <linux/module.h>
  41. #include <linux/time.h>
  42. #include <linux/miscdevice.h>
  43. #include <linux/proc_fs.h>
  44. #include <linux/poll.h>
  45. #include <linux/rtc.h>
  46. #include <linux/semaphore.h>
  47. MODULE_AUTHOR("Brian S. Julin <bri@calyx.com>");
  48. MODULE_DESCRIPTION("HP i8042 SDC + MSM-58321 RTC Driver");
  49. MODULE_LICENSE("Dual BSD/GPL");
  50. #define RTC_VERSION "1.10d"
  51. static unsigned long epoch = 2000;
  52. static struct semaphore i8042tregs;
  53. static hp_sdc_irqhook hp_sdc_rtc_isr;
  54. static struct fasync_struct *hp_sdc_rtc_async_queue;
  55. static DECLARE_WAIT_QUEUE_HEAD(hp_sdc_rtc_wait);
  56. static ssize_t hp_sdc_rtc_read(struct file *file, char __user *buf,
  57. size_t count, loff_t *ppos);
  58. static int hp_sdc_rtc_ioctl(struct inode *inode, struct file *file,
  59. unsigned int cmd, unsigned long arg);
  60. static unsigned int hp_sdc_rtc_poll(struct file *file, poll_table *wait);
  61. static int hp_sdc_rtc_open(struct inode *inode, struct file *file);
  62. static int hp_sdc_rtc_release(struct inode *inode, struct file *file);
  63. static int hp_sdc_rtc_fasync (int fd, struct file *filp, int on);
  64. static int hp_sdc_rtc_read_proc(char *page, char **start, off_t off,
  65. int count, int *eof, void *data);
  66. static void hp_sdc_rtc_isr (int irq, void *dev_id,
  67. uint8_t status, uint8_t data)
  68. {
  69. return;
  70. }
  71. static int hp_sdc_rtc_do_read_bbrtc (struct rtc_time *rtctm)
  72. {
  73. struct semaphore tsem;
  74. hp_sdc_transaction t;
  75. uint8_t tseq[91];
  76. int i;
  77. i = 0;
  78. while (i < 91) {
  79. tseq[i++] = HP_SDC_ACT_DATAREG |
  80. HP_SDC_ACT_POSTCMD | HP_SDC_ACT_DATAIN;
  81. tseq[i++] = 0x01; /* write i8042[0x70] */
  82. tseq[i] = i / 7; /* BBRTC reg address */
  83. i++;
  84. tseq[i++] = HP_SDC_CMD_DO_RTCR; /* Trigger command */
  85. tseq[i++] = 2; /* expect 1 stat/dat pair back. */
  86. i++; i++; /* buffer for stat/dat pair */
  87. }
  88. tseq[84] |= HP_SDC_ACT_SEMAPHORE;
  89. t.endidx = 91;
  90. t.seq = tseq;
  91. t.act.semaphore = &tsem;
  92. init_MUTEX_LOCKED(&tsem);
  93. if (hp_sdc_enqueue_transaction(&t)) return -1;
  94. down_interruptible(&tsem); /* Put ourselves to sleep for results. */
  95. /* Check for nonpresence of BBRTC */
  96. if (!((tseq[83] | tseq[90] | tseq[69] | tseq[76] |
  97. tseq[55] | tseq[62] | tseq[34] | tseq[41] |
  98. tseq[20] | tseq[27] | tseq[6] | tseq[13]) & 0x0f))
  99. return -1;
  100. memset(rtctm, 0, sizeof(struct rtc_time));
  101. rtctm->tm_year = (tseq[83] & 0x0f) + (tseq[90] & 0x0f) * 10;
  102. rtctm->tm_mon = (tseq[69] & 0x0f) + (tseq[76] & 0x0f) * 10;
  103. rtctm->tm_mday = (tseq[55] & 0x0f) + (tseq[62] & 0x0f) * 10;
  104. rtctm->tm_wday = (tseq[48] & 0x0f);
  105. rtctm->tm_hour = (tseq[34] & 0x0f) + (tseq[41] & 0x0f) * 10;
  106. rtctm->tm_min = (tseq[20] & 0x0f) + (tseq[27] & 0x0f) * 10;
  107. rtctm->tm_sec = (tseq[6] & 0x0f) + (tseq[13] & 0x0f) * 10;
  108. return 0;
  109. }
  110. static int hp_sdc_rtc_read_bbrtc (struct rtc_time *rtctm)
  111. {
  112. struct rtc_time tm, tm_last;
  113. int i = 0;
  114. /* MSM-58321 has no read latch, so must read twice and compare. */
  115. if (hp_sdc_rtc_do_read_bbrtc(&tm_last)) return -1;
  116. if (hp_sdc_rtc_do_read_bbrtc(&tm)) return -1;
  117. while (memcmp(&tm, &tm_last, sizeof(struct rtc_time))) {
  118. if (i++ > 4) return -1;
  119. memcpy(&tm_last, &tm, sizeof(struct rtc_time));
  120. if (hp_sdc_rtc_do_read_bbrtc(&tm)) return -1;
  121. }
  122. memcpy(rtctm, &tm, sizeof(struct rtc_time));
  123. return 0;
  124. }
  125. static int64_t hp_sdc_rtc_read_i8042timer (uint8_t loadcmd, int numreg)
  126. {
  127. hp_sdc_transaction t;
  128. uint8_t tseq[26] = {
  129. HP_SDC_ACT_PRECMD | HP_SDC_ACT_POSTCMD | HP_SDC_ACT_DATAIN,
  130. 0,
  131. HP_SDC_CMD_READ_T1, 2, 0, 0,
  132. HP_SDC_ACT_POSTCMD | HP_SDC_ACT_DATAIN,
  133. HP_SDC_CMD_READ_T2, 2, 0, 0,
  134. HP_SDC_ACT_POSTCMD | HP_SDC_ACT_DATAIN,
  135. HP_SDC_CMD_READ_T3, 2, 0, 0,
  136. HP_SDC_ACT_POSTCMD | HP_SDC_ACT_DATAIN,
  137. HP_SDC_CMD_READ_T4, 2, 0, 0,
  138. HP_SDC_ACT_POSTCMD | HP_SDC_ACT_DATAIN,
  139. HP_SDC_CMD_READ_T5, 2, 0, 0
  140. };
  141. t.endidx = numreg * 5;
  142. tseq[1] = loadcmd;
  143. tseq[t.endidx - 4] |= HP_SDC_ACT_SEMAPHORE; /* numreg assumed > 1 */
  144. t.seq = tseq;
  145. t.act.semaphore = &i8042tregs;
  146. down_interruptible(&i8042tregs); /* Sleep if output regs in use. */
  147. if (hp_sdc_enqueue_transaction(&t)) return -1;
  148. down_interruptible(&i8042tregs); /* Sleep until results come back. */
  149. up(&i8042tregs);
  150. return (tseq[5] |
  151. ((uint64_t)(tseq[10]) << 8) | ((uint64_t)(tseq[15]) << 16) |
  152. ((uint64_t)(tseq[20]) << 24) | ((uint64_t)(tseq[25]) << 32));
  153. }
  154. /* Read the i8042 real-time clock */
  155. static inline int hp_sdc_rtc_read_rt(struct timeval *res) {
  156. int64_t raw;
  157. uint32_t tenms;
  158. unsigned int days;
  159. raw = hp_sdc_rtc_read_i8042timer(HP_SDC_CMD_LOAD_RT, 5);
  160. if (raw < 0) return -1;
  161. tenms = (uint32_t)raw & 0xffffff;
  162. days = (unsigned int)(raw >> 24) & 0xffff;
  163. res->tv_usec = (suseconds_t)(tenms % 100) * 10000;
  164. res->tv_sec = (time_t)(tenms / 100) + days * 86400;
  165. return 0;
  166. }
  167. /* Read the i8042 fast handshake timer */
  168. static inline int hp_sdc_rtc_read_fhs(struct timeval *res) {
  169. uint64_t raw;
  170. unsigned int tenms;
  171. raw = hp_sdc_rtc_read_i8042timer(HP_SDC_CMD_LOAD_FHS, 2);
  172. if (raw < 0) return -1;
  173. tenms = (unsigned int)raw & 0xffff;
  174. res->tv_usec = (suseconds_t)(tenms % 100) * 10000;
  175. res->tv_sec = (time_t)(tenms / 100);
  176. return 0;
  177. }
  178. /* Read the i8042 match timer (a.k.a. alarm) */
  179. static inline int hp_sdc_rtc_read_mt(struct timeval *res) {
  180. int64_t raw;
  181. uint32_t tenms;
  182. raw = hp_sdc_rtc_read_i8042timer(HP_SDC_CMD_LOAD_MT, 3);
  183. if (raw < 0) return -1;
  184. tenms = (uint32_t)raw & 0xffffff;
  185. res->tv_usec = (suseconds_t)(tenms % 100) * 10000;
  186. res->tv_sec = (time_t)(tenms / 100);
  187. return 0;
  188. }
  189. /* Read the i8042 delay timer */
  190. static inline int hp_sdc_rtc_read_dt(struct timeval *res) {
  191. int64_t raw;
  192. uint32_t tenms;
  193. raw = hp_sdc_rtc_read_i8042timer(HP_SDC_CMD_LOAD_DT, 3);
  194. if (raw < 0) return -1;
  195. tenms = (uint32_t)raw & 0xffffff;
  196. res->tv_usec = (suseconds_t)(tenms % 100) * 10000;
  197. res->tv_sec = (time_t)(tenms / 100);
  198. return 0;
  199. }
  200. /* Read the i8042 cycle timer (a.k.a. periodic) */
  201. static inline int hp_sdc_rtc_read_ct(struct timeval *res) {
  202. int64_t raw;
  203. uint32_t tenms;
  204. raw = hp_sdc_rtc_read_i8042timer(HP_SDC_CMD_LOAD_CT, 3);
  205. if (raw < 0) return -1;
  206. tenms = (uint32_t)raw & 0xffffff;
  207. res->tv_usec = (suseconds_t)(tenms % 100) * 10000;
  208. res->tv_sec = (time_t)(tenms / 100);
  209. return 0;
  210. }
  211. /* Set the i8042 real-time clock */
  212. static int hp_sdc_rtc_set_rt (struct timeval *setto)
  213. {
  214. uint32_t tenms;
  215. unsigned int days;
  216. hp_sdc_transaction t;
  217. uint8_t tseq[11] = {
  218. HP_SDC_ACT_PRECMD | HP_SDC_ACT_DATAOUT,
  219. HP_SDC_CMD_SET_RTMS, 3, 0, 0, 0,
  220. HP_SDC_ACT_PRECMD | HP_SDC_ACT_DATAOUT,
  221. HP_SDC_CMD_SET_RTD, 2, 0, 0
  222. };
  223. t.endidx = 10;
  224. if (0xffff < setto->tv_sec / 86400) return -1;
  225. days = setto->tv_sec / 86400;
  226. if (0xffff < setto->tv_usec / 1000000 / 86400) return -1;
  227. days += ((setto->tv_sec % 86400) + setto->tv_usec / 1000000) / 86400;
  228. if (days > 0xffff) return -1;
  229. if (0xffffff < setto->tv_sec) return -1;
  230. tenms = setto->tv_sec * 100;
  231. if (0xffffff < setto->tv_usec / 10000) return -1;
  232. tenms += setto->tv_usec / 10000;
  233. if (tenms > 0xffffff) return -1;
  234. tseq[3] = (uint8_t)(tenms & 0xff);
  235. tseq[4] = (uint8_t)((tenms >> 8) & 0xff);
  236. tseq[5] = (uint8_t)((tenms >> 16) & 0xff);
  237. tseq[9] = (uint8_t)(days & 0xff);
  238. tseq[10] = (uint8_t)((days >> 8) & 0xff);
  239. t.seq = tseq;
  240. if (hp_sdc_enqueue_transaction(&t)) return -1;
  241. return 0;
  242. }
  243. /* Set the i8042 fast handshake timer */
  244. static int hp_sdc_rtc_set_fhs (struct timeval *setto)
  245. {
  246. uint32_t tenms;
  247. hp_sdc_transaction t;
  248. uint8_t tseq[5] = {
  249. HP_SDC_ACT_PRECMD | HP_SDC_ACT_DATAOUT,
  250. HP_SDC_CMD_SET_FHS, 2, 0, 0
  251. };
  252. t.endidx = 4;
  253. if (0xffff < setto->tv_sec) return -1;
  254. tenms = setto->tv_sec * 100;
  255. if (0xffff < setto->tv_usec / 10000) return -1;
  256. tenms += setto->tv_usec / 10000;
  257. if (tenms > 0xffff) return -1;
  258. tseq[3] = (uint8_t)(tenms & 0xff);
  259. tseq[4] = (uint8_t)((tenms >> 8) & 0xff);
  260. t.seq = tseq;
  261. if (hp_sdc_enqueue_transaction(&t)) return -1;
  262. return 0;
  263. }
  264. /* Set the i8042 match timer (a.k.a. alarm) */
  265. #define hp_sdc_rtc_set_mt (setto) \
  266. hp_sdc_rtc_set_i8042timer(setto, HP_SDC_CMD_SET_MT)
  267. /* Set the i8042 delay timer */
  268. #define hp_sdc_rtc_set_dt (setto) \
  269. hp_sdc_rtc_set_i8042timer(setto, HP_SDC_CMD_SET_DT)
  270. /* Set the i8042 cycle timer (a.k.a. periodic) */
  271. #define hp_sdc_rtc_set_ct (setto) \
  272. hp_sdc_rtc_set_i8042timer(setto, HP_SDC_CMD_SET_CT)
  273. /* Set one of the i8042 3-byte wide timers */
  274. static int hp_sdc_rtc_set_i8042timer (struct timeval *setto, uint8_t setcmd)
  275. {
  276. uint32_t tenms;
  277. hp_sdc_transaction t;
  278. uint8_t tseq[6] = {
  279. HP_SDC_ACT_PRECMD | HP_SDC_ACT_DATAOUT,
  280. 0, 3, 0, 0, 0
  281. };
  282. t.endidx = 6;
  283. if (0xffffff < setto->tv_sec) return -1;
  284. tenms = setto->tv_sec * 100;
  285. if (0xffffff < setto->tv_usec / 10000) return -1;
  286. tenms += setto->tv_usec / 10000;
  287. if (tenms > 0xffffff) return -1;
  288. tseq[1] = setcmd;
  289. tseq[3] = (uint8_t)(tenms & 0xff);
  290. tseq[4] = (uint8_t)((tenms >> 8) & 0xff);
  291. tseq[5] = (uint8_t)((tenms >> 16) & 0xff);
  292. t.seq = tseq;
  293. if (hp_sdc_enqueue_transaction(&t)) {
  294. return -1;
  295. }
  296. return 0;
  297. }
  298. static ssize_t hp_sdc_rtc_read(struct file *file, char __user *buf,
  299. size_t count, loff_t *ppos) {
  300. ssize_t retval;
  301. if (count < sizeof(unsigned long))
  302. return -EINVAL;
  303. retval = put_user(68, (unsigned long __user *)buf);
  304. return retval;
  305. }
  306. static unsigned int hp_sdc_rtc_poll(struct file *file, poll_table *wait)
  307. {
  308. unsigned long l;
  309. l = 0;
  310. if (l != 0)
  311. return POLLIN | POLLRDNORM;
  312. return 0;
  313. }
  314. static int hp_sdc_rtc_open(struct inode *inode, struct file *file)
  315. {
  316. cycle_kernel_lock();
  317. return 0;
  318. }
  319. static int hp_sdc_rtc_release(struct inode *inode, struct file *file)
  320. {
  321. /* Turn off interrupts? */
  322. if (file->f_flags & FASYNC) {
  323. hp_sdc_rtc_fasync (-1, file, 0);
  324. }
  325. return 0;
  326. }
  327. static int hp_sdc_rtc_fasync (int fd, struct file *filp, int on)
  328. {
  329. return fasync_helper (fd, filp, on, &hp_sdc_rtc_async_queue);
  330. }
  331. static int hp_sdc_rtc_proc_output (char *buf)
  332. {
  333. #define YN(bit) ("no")
  334. #define NY(bit) ("yes")
  335. char *p;
  336. struct rtc_time tm;
  337. struct timeval tv;
  338. memset(&tm, 0, sizeof(struct rtc_time));
  339. p = buf;
  340. if (hp_sdc_rtc_read_bbrtc(&tm)) {
  341. p += sprintf(p, "BBRTC\t\t: READ FAILED!\n");
  342. } else {
  343. p += sprintf(p,
  344. "rtc_time\t: %02d:%02d:%02d\n"
  345. "rtc_date\t: %04d-%02d-%02d\n"
  346. "rtc_epoch\t: %04lu\n",
  347. tm.tm_hour, tm.tm_min, tm.tm_sec,
  348. tm.tm_year + 1900, tm.tm_mon + 1,
  349. tm.tm_mday, epoch);
  350. }
  351. if (hp_sdc_rtc_read_rt(&tv)) {
  352. p += sprintf(p, "i8042 rtc\t: READ FAILED!\n");
  353. } else {
  354. p += sprintf(p, "i8042 rtc\t: %ld.%02d seconds\n",
  355. tv.tv_sec, tv.tv_usec/1000);
  356. }
  357. if (hp_sdc_rtc_read_fhs(&tv)) {
  358. p += sprintf(p, "handshake\t: READ FAILED!\n");
  359. } else {
  360. p += sprintf(p, "handshake\t: %ld.%02d seconds\n",
  361. tv.tv_sec, tv.tv_usec/1000);
  362. }
  363. if (hp_sdc_rtc_read_mt(&tv)) {
  364. p += sprintf(p, "alarm\t\t: READ FAILED!\n");
  365. } else {
  366. p += sprintf(p, "alarm\t\t: %ld.%02d seconds\n",
  367. tv.tv_sec, tv.tv_usec/1000);
  368. }
  369. if (hp_sdc_rtc_read_dt(&tv)) {
  370. p += sprintf(p, "delay\t\t: READ FAILED!\n");
  371. } else {
  372. p += sprintf(p, "delay\t\t: %ld.%02d seconds\n",
  373. tv.tv_sec, tv.tv_usec/1000);
  374. }
  375. if (hp_sdc_rtc_read_ct(&tv)) {
  376. p += sprintf(p, "periodic\t: READ FAILED!\n");
  377. } else {
  378. p += sprintf(p, "periodic\t: %ld.%02d seconds\n",
  379. tv.tv_sec, tv.tv_usec/1000);
  380. }
  381. p += sprintf(p,
  382. "DST_enable\t: %s\n"
  383. "BCD\t\t: %s\n"
  384. "24hr\t\t: %s\n"
  385. "square_wave\t: %s\n"
  386. "alarm_IRQ\t: %s\n"
  387. "update_IRQ\t: %s\n"
  388. "periodic_IRQ\t: %s\n"
  389. "periodic_freq\t: %ld\n"
  390. "batt_status\t: %s\n",
  391. YN(RTC_DST_EN),
  392. NY(RTC_DM_BINARY),
  393. YN(RTC_24H),
  394. YN(RTC_SQWE),
  395. YN(RTC_AIE),
  396. YN(RTC_UIE),
  397. YN(RTC_PIE),
  398. 1UL,
  399. 1 ? "okay" : "dead");
  400. return p - buf;
  401. #undef YN
  402. #undef NY
  403. }
  404. static int hp_sdc_rtc_read_proc(char *page, char **start, off_t off,
  405. int count, int *eof, void *data)
  406. {
  407. int len = hp_sdc_rtc_proc_output (page);
  408. if (len <= off+count) *eof = 1;
  409. *start = page + off;
  410. len -= off;
  411. if (len>count) len = count;
  412. if (len<0) len = 0;
  413. return len;
  414. }
  415. static int hp_sdc_rtc_ioctl(struct inode *inode, struct file *file,
  416. unsigned int cmd, unsigned long arg)
  417. {
  418. #if 1
  419. return -EINVAL;
  420. #else
  421. struct rtc_time wtime;
  422. struct timeval ttime;
  423. int use_wtime = 0;
  424. /* This needs major work. */
  425. switch (cmd) {
  426. case RTC_AIE_OFF: /* Mask alarm int. enab. bit */
  427. case RTC_AIE_ON: /* Allow alarm interrupts. */
  428. case RTC_PIE_OFF: /* Mask periodic int. enab. bit */
  429. case RTC_PIE_ON: /* Allow periodic ints */
  430. case RTC_UIE_ON: /* Allow ints for RTC updates. */
  431. case RTC_UIE_OFF: /* Allow ints for RTC updates. */
  432. {
  433. /* We cannot mask individual user timers and we
  434. cannot tell them apart when they occur, so it
  435. would be disingenuous to succeed these IOCTLs */
  436. return -EINVAL;
  437. }
  438. case RTC_ALM_READ: /* Read the present alarm time */
  439. {
  440. if (hp_sdc_rtc_read_mt(&ttime)) return -EFAULT;
  441. if (hp_sdc_rtc_read_bbrtc(&wtime)) return -EFAULT;
  442. wtime.tm_hour = ttime.tv_sec / 3600; ttime.tv_sec %= 3600;
  443. wtime.tm_min = ttime.tv_sec / 60; ttime.tv_sec %= 60;
  444. wtime.tm_sec = ttime.tv_sec;
  445. break;
  446. }
  447. case RTC_IRQP_READ: /* Read the periodic IRQ rate. */
  448. {
  449. return put_user(hp_sdc_rtc_freq, (unsigned long *)arg);
  450. }
  451. case RTC_IRQP_SET: /* Set periodic IRQ rate. */
  452. {
  453. /*
  454. * The max we can do is 100Hz.
  455. */
  456. if ((arg < 1) || (arg > 100)) return -EINVAL;
  457. ttime.tv_sec = 0;
  458. ttime.tv_usec = 1000000 / arg;
  459. if (hp_sdc_rtc_set_ct(&ttime)) return -EFAULT;
  460. hp_sdc_rtc_freq = arg;
  461. return 0;
  462. }
  463. case RTC_ALM_SET: /* Store a time into the alarm */
  464. {
  465. /*
  466. * This expects a struct hp_sdc_rtc_time. Writing 0xff means
  467. * "don't care" or "match all" for PC timers. The HP SDC
  468. * does not support that perk, but it could be emulated fairly
  469. * easily. Only the tm_hour, tm_min and tm_sec are used.
  470. * We could do it with 10ms accuracy with the HP SDC, if the
  471. * rtc interface left us a way to do that.
  472. */
  473. struct hp_sdc_rtc_time alm_tm;
  474. if (copy_from_user(&alm_tm, (struct hp_sdc_rtc_time*)arg,
  475. sizeof(struct hp_sdc_rtc_time)))
  476. return -EFAULT;
  477. if (alm_tm.tm_hour > 23) return -EINVAL;
  478. if (alm_tm.tm_min > 59) return -EINVAL;
  479. if (alm_tm.tm_sec > 59) return -EINVAL;
  480. ttime.sec = alm_tm.tm_hour * 3600 +
  481. alm_tm.tm_min * 60 + alm_tm.tm_sec;
  482. ttime.usec = 0;
  483. if (hp_sdc_rtc_set_mt(&ttime)) return -EFAULT;
  484. return 0;
  485. }
  486. case RTC_RD_TIME: /* Read the time/date from RTC */
  487. {
  488. if (hp_sdc_rtc_read_bbrtc(&wtime)) return -EFAULT;
  489. break;
  490. }
  491. case RTC_SET_TIME: /* Set the RTC */
  492. {
  493. struct rtc_time hp_sdc_rtc_tm;
  494. unsigned char mon, day, hrs, min, sec, leap_yr;
  495. unsigned int yrs;
  496. if (!capable(CAP_SYS_TIME))
  497. return -EACCES;
  498. if (copy_from_user(&hp_sdc_rtc_tm, (struct rtc_time *)arg,
  499. sizeof(struct rtc_time)))
  500. return -EFAULT;
  501. yrs = hp_sdc_rtc_tm.tm_year + 1900;
  502. mon = hp_sdc_rtc_tm.tm_mon + 1; /* tm_mon starts at zero */
  503. day = hp_sdc_rtc_tm.tm_mday;
  504. hrs = hp_sdc_rtc_tm.tm_hour;
  505. min = hp_sdc_rtc_tm.tm_min;
  506. sec = hp_sdc_rtc_tm.tm_sec;
  507. if (yrs < 1970)
  508. return -EINVAL;
  509. leap_yr = ((!(yrs % 4) && (yrs % 100)) || !(yrs % 400));
  510. if ((mon > 12) || (day == 0))
  511. return -EINVAL;
  512. if (day > (days_in_mo[mon] + ((mon == 2) && leap_yr)))
  513. return -EINVAL;
  514. if ((hrs >= 24) || (min >= 60) || (sec >= 60))
  515. return -EINVAL;
  516. if ((yrs -= eH) > 255) /* They are unsigned */
  517. return -EINVAL;
  518. return 0;
  519. }
  520. case RTC_EPOCH_READ: /* Read the epoch. */
  521. {
  522. return put_user (epoch, (unsigned long *)arg);
  523. }
  524. case RTC_EPOCH_SET: /* Set the epoch. */
  525. {
  526. /*
  527. * There were no RTC clocks before 1900.
  528. */
  529. if (arg < 1900)
  530. return -EINVAL;
  531. if (!capable(CAP_SYS_TIME))
  532. return -EACCES;
  533. epoch = arg;
  534. return 0;
  535. }
  536. default:
  537. return -EINVAL;
  538. }
  539. return copy_to_user((void *)arg, &wtime, sizeof wtime) ? -EFAULT : 0;
  540. #endif
  541. }
  542. static const struct file_operations hp_sdc_rtc_fops = {
  543. .owner = THIS_MODULE,
  544. .llseek = no_llseek,
  545. .read = hp_sdc_rtc_read,
  546. .poll = hp_sdc_rtc_poll,
  547. .ioctl = hp_sdc_rtc_ioctl,
  548. .open = hp_sdc_rtc_open,
  549. .release = hp_sdc_rtc_release,
  550. .fasync = hp_sdc_rtc_fasync,
  551. };
  552. static struct miscdevice hp_sdc_rtc_dev = {
  553. .minor = RTC_MINOR,
  554. .name = "rtc_HIL",
  555. .fops = &hp_sdc_rtc_fops
  556. };
  557. static int __init hp_sdc_rtc_init(void)
  558. {
  559. int ret;
  560. #ifdef __mc68000__
  561. if (!MACH_IS_HP300)
  562. return -ENODEV;
  563. #endif
  564. init_MUTEX(&i8042tregs);
  565. if ((ret = hp_sdc_request_timer_irq(&hp_sdc_rtc_isr)))
  566. return ret;
  567. if (misc_register(&hp_sdc_rtc_dev) != 0)
  568. printk(KERN_INFO "Could not register misc. dev for i8042 rtc\n");
  569. create_proc_read_entry ("driver/rtc", 0, NULL,
  570. hp_sdc_rtc_read_proc, NULL);
  571. printk(KERN_INFO "HP i8042 SDC + MSM-58321 RTC support loaded "
  572. "(RTC v " RTC_VERSION ")\n");
  573. return 0;
  574. }
  575. static void __exit hp_sdc_rtc_exit(void)
  576. {
  577. remove_proc_entry ("driver/rtc", NULL);
  578. misc_deregister(&hp_sdc_rtc_dev);
  579. hp_sdc_release_timer_irq(hp_sdc_rtc_isr);
  580. printk(KERN_INFO "HP i8042 SDC + MSM-58321 RTC support unloaded\n");
  581. }
  582. module_init(hp_sdc_rtc_init);
  583. module_exit(hp_sdc_rtc_exit);