ds1306.c 14 KB

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  1. /*
  2. * (C) Copyright 2002 SIXNET, dge@sixnetio.com.
  3. *
  4. * (C) Copyright 2004, Li-Pro.Net <www.li-pro.net>
  5. * Stephan Linz <linz@li-pro.net>
  6. *
  7. * See file CREDITS for list of people who contributed to this
  8. * project.
  9. *
  10. * This program is free software; you can redistribute it and/or
  11. * modify it under the terms of the GNU General Public License as
  12. * published by the Free Software Foundation; either version 2 of
  13. * the License, or (at your option) any later version.
  14. *
  15. * This program is distributed in the hope that it will be useful,
  16. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  17. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  18. * GNU General Public License for more details.
  19. *
  20. * You should have received a copy of the GNU General Public License
  21. * along with this program; if not, write to the Free Software
  22. * Foundation, Inc., 59 Temple Place, Suite 330, Boston,
  23. * MA 02111-1307 USA
  24. */
  25. /*
  26. * Date & Time support for DS1306 RTC using SPI:
  27. *
  28. * - SXNI855T: it uses its own soft SPI here in this file
  29. * - all other: use the external spi_xfer() function
  30. * (see include/spi.h)
  31. */
  32. #include <common.h>
  33. #include <command.h>
  34. #include <rtc.h>
  35. #include <spi.h>
  36. #if defined(CONFIG_CMD_DATE)
  37. #define RTC_SECONDS 0x00
  38. #define RTC_MINUTES 0x01
  39. #define RTC_HOURS 0x02
  40. #define RTC_DAY_OF_WEEK 0x03
  41. #define RTC_DATE_OF_MONTH 0x04
  42. #define RTC_MONTH 0x05
  43. #define RTC_YEAR 0x06
  44. #define RTC_SECONDS_ALARM0 0x07
  45. #define RTC_MINUTES_ALARM0 0x08
  46. #define RTC_HOURS_ALARM0 0x09
  47. #define RTC_DAY_OF_WEEK_ALARM0 0x0a
  48. #define RTC_SECONDS_ALARM1 0x0b
  49. #define RTC_MINUTES_ALARM1 0x0c
  50. #define RTC_HOURS_ALARM1 0x0d
  51. #define RTC_DAY_OF_WEEK_ALARM1 0x0e
  52. #define RTC_CONTROL 0x0f
  53. #define RTC_STATUS 0x10
  54. #define RTC_TRICKLE_CHARGER 0x11
  55. #define RTC_USER_RAM_BASE 0x20
  56. /* ************************************************************************* */
  57. #ifdef CONFIG_SXNI855T /* !!! SHOULD BE CHANGED TO NEW CODE !!! */
  58. static void soft_spi_send (unsigned char n);
  59. static unsigned char soft_spi_read (void);
  60. static void init_spi (void);
  61. /*-----------------------------------------------------------------------
  62. * Definitions
  63. */
  64. #define PB_SPISCK 0x00000002 /* PB 30 */
  65. #define PB_SPIMOSI 0x00000004 /* PB 29 */
  66. #define PB_SPIMISO 0x00000008 /* PB 28 */
  67. #define PB_SPI_CE 0x00010000 /* PB 15 */
  68. /* ------------------------------------------------------------------------- */
  69. /* read clock time from DS1306 and return it in *tmp */
  70. int rtc_get (struct rtc_time *tmp)
  71. {
  72. volatile immap_t *immap = (immap_t *) CONFIG_SYS_IMMR;
  73. unsigned char spi_byte; /* Data Byte */
  74. init_spi (); /* set port B for software SPI */
  75. /* Now we can enable the DS1306 RTC */
  76. immap->im_cpm.cp_pbdat |= PB_SPI_CE;
  77. udelay (10);
  78. /* Shift out the address (0) of the time in the Clock Chip */
  79. soft_spi_send (0);
  80. /* Put the clock readings into the rtc_time structure */
  81. tmp->tm_sec = bcd2bin (soft_spi_read ()); /* Read seconds */
  82. tmp->tm_min = bcd2bin (soft_spi_read ()); /* Read minutes */
  83. /* Hours are trickier */
  84. spi_byte = soft_spi_read (); /* Read Hours into temporary value */
  85. if (spi_byte & 0x40) {
  86. /* 12 hour mode bit is set (time is in 1-12 format) */
  87. if (spi_byte & 0x20) {
  88. /* since PM we add 11 to get 0-23 for hours */
  89. tmp->tm_hour = (bcd2bin (spi_byte & 0x1F)) + 11;
  90. } else {
  91. /* since AM we subtract 1 to get 0-23 for hours */
  92. tmp->tm_hour = (bcd2bin (spi_byte & 0x1F)) - 1;
  93. }
  94. } else {
  95. /* Otherwise, 0-23 hour format */
  96. tmp->tm_hour = (bcd2bin (spi_byte & 0x3F));
  97. }
  98. soft_spi_read (); /* Read and discard Day of week */
  99. tmp->tm_mday = bcd2bin (soft_spi_read ()); /* Read Day of the Month */
  100. tmp->tm_mon = bcd2bin (soft_spi_read ()); /* Read Month */
  101. /* Read Year and convert to this century */
  102. tmp->tm_year = bcd2bin (soft_spi_read ()) + 2000;
  103. /* Now we can disable the DS1306 RTC */
  104. immap->im_cpm.cp_pbdat &= ~PB_SPI_CE; /* Disable DS1306 Chip */
  105. udelay (10);
  106. GregorianDay (tmp); /* Determine the day of week */
  107. debug ("Get DATE: %4d-%02d-%02d (wday=%d) TIME: %2d:%02d:%02d\n",
  108. tmp->tm_year, tmp->tm_mon, tmp->tm_mday, tmp->tm_wday,
  109. tmp->tm_hour, tmp->tm_min, tmp->tm_sec);
  110. return 0;
  111. }
  112. /* ------------------------------------------------------------------------- */
  113. /* set clock time in DS1306 RTC and in MPC8xx RTC */
  114. int rtc_set (struct rtc_time *tmp)
  115. {
  116. volatile immap_t *immap = (immap_t *) CONFIG_SYS_IMMR;
  117. init_spi (); /* set port B for software SPI */
  118. /* Now we can enable the DS1306 RTC */
  119. immap->im_cpm.cp_pbdat |= PB_SPI_CE; /* Enable DS1306 Chip */
  120. udelay (10);
  121. /* First disable write protect in the clock chip control register */
  122. soft_spi_send (0x8F); /* send address of the control register */
  123. soft_spi_send (0x00); /* send control register contents */
  124. /* Now disable the DS1306 to terminate the write */
  125. immap->im_cpm.cp_pbdat &= ~PB_SPI_CE;
  126. udelay (10);
  127. /* Now enable the DS1306 to initiate a new write */
  128. immap->im_cpm.cp_pbdat |= PB_SPI_CE;
  129. udelay (10);
  130. /* Next, send the address of the clock time write registers */
  131. soft_spi_send (0x80); /* send address of the first time register */
  132. /* Use Burst Mode to send all of the time data to the clock */
  133. bin2bcd (tmp->tm_sec);
  134. soft_spi_send (bin2bcd (tmp->tm_sec)); /* Send Seconds */
  135. soft_spi_send (bin2bcd (tmp->tm_min)); /* Send Minutes */
  136. soft_spi_send (bin2bcd (tmp->tm_hour)); /* Send Hour */
  137. soft_spi_send (bin2bcd (tmp->tm_wday)); /* Send Day of the Week */
  138. soft_spi_send (bin2bcd (tmp->tm_mday)); /* Send Day of Month */
  139. soft_spi_send (bin2bcd (tmp->tm_mon)); /* Send Month */
  140. soft_spi_send (bin2bcd (tmp->tm_year - 2000)); /* Send Year */
  141. /* Now we can disable the Clock chip to terminate the burst write */
  142. immap->im_cpm.cp_pbdat &= ~PB_SPI_CE; /* Disable DS1306 Chip */
  143. udelay (10);
  144. /* Now we can enable the Clock chip to initiate a new write */
  145. immap->im_cpm.cp_pbdat |= PB_SPI_CE; /* Enable DS1306 Chip */
  146. udelay (10);
  147. /* First we Enable write protect in the clock chip control register */
  148. soft_spi_send (0x8F); /* send address of the control register */
  149. soft_spi_send (0x40); /* send out Control Register contents */
  150. /* Now disable the DS1306 */
  151. immap->im_cpm.cp_pbdat &= ~PB_SPI_CE; /* Disable DS1306 Chip */
  152. udelay (10);
  153. /* Set standard MPC8xx clock to the same time so Linux will
  154. * see the time even if it doesn't have a DS1306 clock driver.
  155. * This helps with experimenting with standard kernels.
  156. */
  157. {
  158. ulong tim;
  159. tim = mktime (tmp->tm_year, tmp->tm_mon, tmp->tm_mday,
  160. tmp->tm_hour, tmp->tm_min, tmp->tm_sec);
  161. immap->im_sitk.sitk_rtck = KAPWR_KEY;
  162. immap->im_sit.sit_rtc = tim;
  163. }
  164. debug ("Set DATE: %4d-%02d-%02d (wday=%d) TIME: %2d:%02d:%02d\n",
  165. tmp->tm_year, tmp->tm_mon, tmp->tm_mday, tmp->tm_wday,
  166. tmp->tm_hour, tmp->tm_min, tmp->tm_sec);
  167. return 0;
  168. }
  169. /* ------------------------------------------------------------------------- */
  170. /* Initialize Port B for software SPI */
  171. static void init_spi (void)
  172. {
  173. volatile immap_t *immap = (immap_t *) CONFIG_SYS_IMMR;
  174. /* Force output pins to begin at logic 0 */
  175. immap->im_cpm.cp_pbdat &= ~(PB_SPI_CE | PB_SPIMOSI | PB_SPISCK);
  176. /* Set these 3 signals as outputs */
  177. immap->im_cpm.cp_pbdir |= (PB_SPIMOSI | PB_SPI_CE | PB_SPISCK);
  178. immap->im_cpm.cp_pbdir &= ~PB_SPIMISO; /* Make MISO pin an input */
  179. udelay (10);
  180. }
  181. /* ------------------------------------------------------------------------- */
  182. /* NOTE: soft_spi_send() assumes that the I/O lines are configured already */
  183. static void soft_spi_send (unsigned char n)
  184. {
  185. volatile immap_t *immap = (immap_t *) CONFIG_SYS_IMMR;
  186. unsigned char bitpos; /* bit position to receive */
  187. unsigned char i; /* Loop Control */
  188. /* bit position to send, start with most significant bit */
  189. bitpos = 0x80;
  190. /* Send 8 bits to software SPI */
  191. for (i = 0; i < 8; i++) { /* Loop for 8 bits */
  192. immap->im_cpm.cp_pbdat |= PB_SPISCK; /* Raise SCK */
  193. if (n & bitpos)
  194. immap->im_cpm.cp_pbdat |= PB_SPIMOSI; /* Set MOSI to 1 */
  195. else
  196. immap->im_cpm.cp_pbdat &= ~PB_SPIMOSI; /* Set MOSI to 0 */
  197. udelay (10);
  198. immap->im_cpm.cp_pbdat &= ~PB_SPISCK; /* Lower SCK */
  199. udelay (10);
  200. bitpos >>= 1; /* Shift for next bit position */
  201. }
  202. }
  203. /* ------------------------------------------------------------------------- */
  204. /* NOTE: soft_spi_read() assumes that the I/O lines are configured already */
  205. static unsigned char soft_spi_read (void)
  206. {
  207. volatile immap_t *immap = (immap_t *) CONFIG_SYS_IMMR;
  208. unsigned char spi_byte = 0; /* Return value, assume success */
  209. unsigned char bitpos; /* bit position to receive */
  210. unsigned char i; /* Loop Control */
  211. /* bit position to receive, start with most significant bit */
  212. bitpos = 0x80;
  213. /* Read 8 bits here */
  214. for (i = 0; i < 8; i++) { /* Do 8 bits in loop */
  215. immap->im_cpm.cp_pbdat |= PB_SPISCK; /* Raise SCK */
  216. udelay (10);
  217. if (immap->im_cpm.cp_pbdat & PB_SPIMISO) /* Get a bit of data */
  218. spi_byte |= bitpos; /* Set data accordingly */
  219. immap->im_cpm.cp_pbdat &= ~PB_SPISCK; /* Lower SCK */
  220. udelay (10);
  221. bitpos >>= 1; /* Shift for next bit position */
  222. }
  223. return spi_byte; /* Return the byte read */
  224. }
  225. /* ------------------------------------------------------------------------- */
  226. void rtc_reset (void)
  227. {
  228. return; /* nothing to do */
  229. }
  230. #else /* not CONFIG_SXNI855T */
  231. /* ************************************************************************* */
  232. static unsigned char rtc_read (unsigned char reg);
  233. static void rtc_write (unsigned char reg, unsigned char val);
  234. static struct spi_slave *slave;
  235. /* read clock time from DS1306 and return it in *tmp */
  236. int rtc_get (struct rtc_time *tmp)
  237. {
  238. unsigned char sec, min, hour, mday, wday, mon, year;
  239. /*
  240. * Assuming Vcc = 2.0V (lowest speed)
  241. *
  242. * REVISIT: If we add an rtc_init() function we can do this
  243. * step just once.
  244. */
  245. if (!slave) {
  246. slave = spi_setup_slave(0, CONFIG_SYS_SPI_RTC_DEVID, 600000,
  247. SPI_MODE_3 | SPI_CS_HIGH);
  248. if (!slave)
  249. return;
  250. }
  251. if (spi_claim_bus(slave))
  252. return;
  253. sec = rtc_read (RTC_SECONDS);
  254. min = rtc_read (RTC_MINUTES);
  255. hour = rtc_read (RTC_HOURS);
  256. mday = rtc_read (RTC_DATE_OF_MONTH);
  257. wday = rtc_read (RTC_DAY_OF_WEEK);
  258. mon = rtc_read (RTC_MONTH);
  259. year = rtc_read (RTC_YEAR);
  260. spi_release_bus(slave);
  261. debug ("Get RTC year: %02x mon: %02x mday: %02x wday: %02x "
  262. "hr: %02x min: %02x sec: %02x\n",
  263. year, mon, mday, wday, hour, min, sec);
  264. debug ("Alarms[0]: wday: %02x hour: %02x min: %02x sec: %02x\n",
  265. rtc_read (RTC_DAY_OF_WEEK_ALARM0),
  266. rtc_read (RTC_HOURS_ALARM0),
  267. rtc_read (RTC_MINUTES_ALARM0), rtc_read (RTC_SECONDS_ALARM0));
  268. debug ("Alarms[1]: wday: %02x hour: %02x min: %02x sec: %02x\n",
  269. rtc_read (RTC_DAY_OF_WEEK_ALARM1),
  270. rtc_read (RTC_HOURS_ALARM1),
  271. rtc_read (RTC_MINUTES_ALARM1), rtc_read (RTC_SECONDS_ALARM1));
  272. tmp->tm_sec = bcd2bin (sec & 0x7F); /* convert Seconds */
  273. tmp->tm_min = bcd2bin (min & 0x7F); /* convert Minutes */
  274. /* convert Hours */
  275. tmp->tm_hour = (hour & 0x40)
  276. ? ((hour & 0x20) /* 12 hour mode */
  277. ? bcd2bin (hour & 0x1F) + 11 /* PM */
  278. : bcd2bin (hour & 0x1F) - 1 /* AM */
  279. )
  280. : bcd2bin (hour & 0x3F); /* 24 hour mode */
  281. tmp->tm_mday = bcd2bin (mday & 0x3F); /* convert Day of the Month */
  282. tmp->tm_mon = bcd2bin (mon & 0x1F); /* convert Month */
  283. tmp->tm_year = bcd2bin (year) + 2000; /* convert Year */
  284. tmp->tm_wday = bcd2bin (wday & 0x07) - 1; /* convert Day of the Week */
  285. tmp->tm_yday = 0;
  286. tmp->tm_isdst = 0;
  287. debug ("Get DATE: %4d-%02d-%02d (wday=%d) TIME: %2d:%02d:%02d\n",
  288. tmp->tm_year, tmp->tm_mon, tmp->tm_mday, tmp->tm_wday,
  289. tmp->tm_hour, tmp->tm_min, tmp->tm_sec);
  290. return 0;
  291. }
  292. /* ------------------------------------------------------------------------- */
  293. /* set clock time from *tmp in DS1306 RTC */
  294. int rtc_set (struct rtc_time *tmp)
  295. {
  296. /* Assuming Vcc = 2.0V (lowest speed) */
  297. if (!slave) {
  298. slave = spi_setup_slave(0, CONFIG_SYS_SPI_RTC_DEVID, 600000,
  299. SPI_MODE_3 | SPI_CS_HIGH);
  300. if (!slave)
  301. return;
  302. }
  303. if (spi_claim_bus(slave))
  304. return;
  305. debug ("Set DATE: %4d-%02d-%02d (wday=%d) TIME: %2d:%02d:%02d\n",
  306. tmp->tm_year, tmp->tm_mon, tmp->tm_mday, tmp->tm_wday,
  307. tmp->tm_hour, tmp->tm_min, tmp->tm_sec);
  308. rtc_write (RTC_SECONDS, bin2bcd (tmp->tm_sec));
  309. rtc_write (RTC_MINUTES, bin2bcd (tmp->tm_min));
  310. rtc_write (RTC_HOURS, bin2bcd (tmp->tm_hour));
  311. rtc_write (RTC_DAY_OF_WEEK, bin2bcd (tmp->tm_wday + 1));
  312. rtc_write (RTC_DATE_OF_MONTH, bin2bcd (tmp->tm_mday));
  313. rtc_write (RTC_MONTH, bin2bcd (tmp->tm_mon));
  314. rtc_write (RTC_YEAR, bin2bcd (tmp->tm_year - 2000));
  315. spi_release_bus(slave);
  316. }
  317. /* ------------------------------------------------------------------------- */
  318. /* reset the DS1306 */
  319. void rtc_reset (void)
  320. {
  321. /* Assuming Vcc = 2.0V (lowest speed) */
  322. if (!slave) {
  323. slave = spi_setup_slave(0, CONFIG_SYS_SPI_RTC_DEVID, 600000,
  324. SPI_MODE_3 | SPI_CS_HIGH);
  325. if (!slave)
  326. return;
  327. }
  328. if (spi_claim_bus(slave))
  329. return;
  330. /* clear the control register */
  331. rtc_write (RTC_CONTROL, 0x00); /* 1st step: reset WP */
  332. rtc_write (RTC_CONTROL, 0x00); /* 2nd step: reset 1Hz, AIE1, AIE0 */
  333. /* reset all alarms */
  334. rtc_write (RTC_SECONDS_ALARM0, 0x00);
  335. rtc_write (RTC_SECONDS_ALARM1, 0x00);
  336. rtc_write (RTC_MINUTES_ALARM0, 0x00);
  337. rtc_write (RTC_MINUTES_ALARM1, 0x00);
  338. rtc_write (RTC_HOURS_ALARM0, 0x00);
  339. rtc_write (RTC_HOURS_ALARM1, 0x00);
  340. rtc_write (RTC_DAY_OF_WEEK_ALARM0, 0x00);
  341. rtc_write (RTC_DAY_OF_WEEK_ALARM1, 0x00);
  342. spi_release_bus(slave);
  343. }
  344. /* ------------------------------------------------------------------------- */
  345. static unsigned char rtc_read (unsigned char reg)
  346. {
  347. int ret;
  348. ret = spi_w8r8(slave, reg);
  349. return ret < 0 ? 0 : ret;
  350. }
  351. /* ------------------------------------------------------------------------- */
  352. static void rtc_write (unsigned char reg, unsigned char val)
  353. {
  354. unsigned char dout[2]; /* SPI Output Data Bytes */
  355. unsigned char din[2]; /* SPI Input Data Bytes */
  356. dout[0] = 0x80 | reg;
  357. dout[1] = val;
  358. spi_xfer (slave, 16, dout, din, SPI_XFER_BEGIN | SPI_XFER_END);
  359. }
  360. #endif /* end of code exclusion (see #ifdef CONFIG_SXNI855T above) */
  361. #endif