My Marlin configs for Fabrikator Mini and CTC i3 Pro B
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Sd2Card.cpp 23KB

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  1. /* Arduino Sd2Card Library
  2. * Copyright (C) 2009 by William Greiman
  3. *
  4. * This file is part of the Arduino Sd2Card Library
  5. *
  6. * This Library is free software: you can redistribute it and/or modify
  7. * it under the terms of the GNU General Public License as published by
  8. * the Free Software Foundation, either version 3 of the License, or
  9. * (at your option) any later version.
  10. *
  11. * This Library is distributed in the hope that it will be useful,
  12. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  13. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  14. * GNU General Public License for more details.
  15. *
  16. * You should have received a copy of the GNU General Public License
  17. * along with the Arduino Sd2Card Library. If not, see
  18. * <http://www.gnu.org/licenses/>.
  19. */
  20. #include "SdFat.h"
  21. #include "Sd2Card.h"
  22. //------------------------------------------------------------------------------
  23. #ifndef SOFTWARE_SPI
  24. // functions for hardware SPI
  25. //------------------------------------------------------------------------------
  26. // make sure SPCR rate is in expected bits
  27. #if (SPR0 != 0 || SPR1 != 1)
  28. #error unexpected SPCR bits
  29. #endif
  30. /**
  31. * Initialize hardware SPI
  32. * Set SCK rate to F_CPU/pow(2, 1 + spiRate) for spiRate [0,6]
  33. */
  34. static void spiInit(uint8_t spiRate) {
  35. // See avr processor documentation
  36. SPCR = (1 << SPE) | (1 << MSTR) | (spiRate >> 1);
  37. SPSR = spiRate & 1 || spiRate == 6 ? 0 : 1 << SPI2X;
  38. }
  39. //------------------------------------------------------------------------------
  40. /** SPI receive a byte */
  41. static uint8_t spiRec() {
  42. SPDR = 0XFF;
  43. while (!(SPSR & (1 << SPIF))) { /* Intentionally left empty */ }
  44. return SPDR;
  45. }
  46. //------------------------------------------------------------------------------
  47. /** SPI read data - only one call so force inline */
  48. static inline __attribute__((always_inline))
  49. void spiRead(uint8_t* buf, uint16_t nbyte) {
  50. if (nbyte-- == 0) return;
  51. SPDR = 0XFF;
  52. for (uint16_t i = 0; i < nbyte; i++) {
  53. while (!(SPSR & (1 << SPIF))) { /* Intentionally left empty */ }
  54. buf[i] = SPDR;
  55. SPDR = 0XFF;
  56. }
  57. while (!(SPSR & (1 << SPIF))) { /* Intentionally left empty */ }
  58. buf[nbyte] = SPDR;
  59. }
  60. //------------------------------------------------------------------------------
  61. /** SPI send a byte */
  62. static void spiSend(uint8_t b) {
  63. SPDR = b;
  64. while (!(SPSR & (1 << SPIF))) { /* Intentionally left empty */ }
  65. }
  66. //------------------------------------------------------------------------------
  67. /** SPI send block - only one call so force inline */
  68. static inline __attribute__((always_inline))
  69. void spiSendBlock(uint8_t token, const uint8_t* buf) {
  70. SPDR = token;
  71. for (uint16_t i = 0; i < 512; i += 2) {
  72. while (!(SPSR & (1 << SPIF))) { /* Intentionally left empty */ }
  73. SPDR = buf[i];
  74. while (!(SPSR & (1 << SPIF))) { /* Intentionally left empty */ }
  75. SPDR = buf[i + 1];
  76. }
  77. while (!(SPSR & (1 << SPIF))) { /* Intentionally left empty */ }
  78. }
  79. //------------------------------------------------------------------------------
  80. #else // SOFTWARE_SPI
  81. //------------------------------------------------------------------------------
  82. /** nop to tune soft SPI timing */
  83. #define nop asm volatile ("nop\n\t")
  84. //------------------------------------------------------------------------------
  85. /** Soft SPI receive byte */
  86. static uint8_t spiRec() {
  87. uint8_t data = 0;
  88. // no interrupts during byte receive - about 8 us
  89. cli();
  90. // output pin high - like sending 0XFF
  91. fastDigitalWrite(SPI_MOSI_PIN, HIGH);
  92. for (uint8_t i = 0; i < 8; i++) {
  93. fastDigitalWrite(SPI_SCK_PIN, HIGH);
  94. // adjust so SCK is nice
  95. nop;
  96. nop;
  97. data <<= 1;
  98. if (fastDigitalRead(SPI_MISO_PIN)) data |= 1;
  99. fastDigitalWrite(SPI_SCK_PIN, LOW);
  100. }
  101. // enable interrupts
  102. sei();
  103. return data;
  104. }
  105. //------------------------------------------------------------------------------
  106. /** Soft SPI read data */
  107. static void spiRead(uint8_t* buf, uint16_t nbyte) {
  108. for (uint16_t i = 0; i < nbyte; i++) {
  109. buf[i] = spiRec();
  110. }
  111. }
  112. //------------------------------------------------------------------------------
  113. /** Soft SPI send byte */
  114. static void spiSend(uint8_t data) {
  115. // no interrupts during byte send - about 8 us
  116. cli();
  117. for (uint8_t i = 0; i < 8; i++) {
  118. fastDigitalWrite(SPI_SCK_PIN, LOW);
  119. fastDigitalWrite(SPI_MOSI_PIN, data & 0X80);
  120. data <<= 1;
  121. fastDigitalWrite(SPI_SCK_PIN, HIGH);
  122. }
  123. // hold SCK high for a few ns
  124. nop;
  125. nop;
  126. nop;
  127. nop;
  128. fastDigitalWrite(SPI_SCK_PIN, LOW);
  129. // enable interrupts
  130. sei();
  131. }
  132. //------------------------------------------------------------------------------
  133. /** Soft SPI send block */
  134. void spiSendBlock(uint8_t token, const uint8_t* buf) {
  135. spiSend(token);
  136. for (uint16_t i = 0; i < 512; i++) {
  137. spiSend(buf[i]);
  138. }
  139. }
  140. #endif // SOFTWARE_SPI
  141. //------------------------------------------------------------------------------
  142. // send command and return error code. Return zero for OK
  143. uint8_t Sd2Card::cardCommand(uint8_t cmd, uint32_t arg) {
  144. // select card
  145. chipSelectLow();
  146. // wait up to 300 ms if busy
  147. waitNotBusy(300);
  148. // send command
  149. spiSend(cmd | 0x40);
  150. // send argument
  151. for (int8_t s = 24; s >= 0; s -= 8) spiSend(arg >> s);
  152. // send CRC
  153. uint8_t crc = 0XFF;
  154. if (cmd == CMD0) crc = 0X95; // correct crc for CMD0 with arg 0
  155. if (cmd == CMD8) crc = 0X87; // correct crc for CMD8 with arg 0X1AA
  156. spiSend(crc);
  157. // skip stuff byte for stop read
  158. if (cmd == CMD12) spiRec();
  159. // wait for response
  160. for (uint8_t i = 0; ((status_ = spiRec()) & 0X80) && i != 0XFF; i++) { /* Intentionally left empty */ }
  161. return status_;
  162. }
  163. //------------------------------------------------------------------------------
  164. /**
  165. * Determine the size of an SD flash memory card.
  166. *
  167. * \return The number of 512 byte data blocks in the card
  168. * or zero if an error occurs.
  169. */
  170. uint32_t Sd2Card::cardSize() {
  171. csd_t csd;
  172. if (!readCSD(&csd)) return 0;
  173. if (csd.v1.csd_ver == 0) {
  174. uint8_t read_bl_len = csd.v1.read_bl_len;
  175. uint16_t c_size = (csd.v1.c_size_high << 10)
  176. | (csd.v1.c_size_mid << 2) | csd.v1.c_size_low;
  177. uint8_t c_size_mult = (csd.v1.c_size_mult_high << 1)
  178. | csd.v1.c_size_mult_low;
  179. return (uint32_t)(c_size + 1) << (c_size_mult + read_bl_len - 7);
  180. } else if (csd.v2.csd_ver == 1) {
  181. uint32_t c_size = ((uint32_t)csd.v2.c_size_high << 16)
  182. | (csd.v2.c_size_mid << 8) | csd.v2.c_size_low;
  183. return (c_size + 1) << 10;
  184. } else {
  185. error(SD_CARD_ERROR_BAD_CSD);
  186. return 0;
  187. }
  188. }
  189. //------------------------------------------------------------------------------
  190. void Sd2Card::chipSelectHigh() {
  191. digitalWrite(chipSelectPin_, HIGH);
  192. }
  193. //------------------------------------------------------------------------------
  194. void Sd2Card::chipSelectLow() {
  195. #ifndef SOFTWARE_SPI
  196. spiInit(spiRate_);
  197. #endif // SOFTWARE_SPI
  198. digitalWrite(chipSelectPin_, LOW);
  199. }
  200. //------------------------------------------------------------------------------
  201. /** Erase a range of blocks.
  202. *
  203. * \param[in] firstBlock The address of the first block in the range.
  204. * \param[in] lastBlock The address of the last block in the range.
  205. *
  206. * \note This function requests the SD card to do a flash erase for a
  207. * range of blocks. The data on the card after an erase operation is
  208. * either 0 or 1, depends on the card vendor. The card must support
  209. * single block erase.
  210. *
  211. * \return The value one, true, is returned for success and
  212. * the value zero, false, is returned for failure.
  213. */
  214. bool Sd2Card::erase(uint32_t firstBlock, uint32_t lastBlock) {
  215. csd_t csd;
  216. if (!readCSD(&csd)) goto fail;
  217. // check for single block erase
  218. if (!csd.v1.erase_blk_en) {
  219. // erase size mask
  220. uint8_t m = (csd.v1.sector_size_high << 1) | csd.v1.sector_size_low;
  221. if ((firstBlock & m) != 0 || ((lastBlock + 1) & m) != 0) {
  222. // error card can't erase specified area
  223. error(SD_CARD_ERROR_ERASE_SINGLE_BLOCK);
  224. goto fail;
  225. }
  226. }
  227. if (type_ != SD_CARD_TYPE_SDHC) {
  228. firstBlock <<= 9;
  229. lastBlock <<= 9;
  230. }
  231. if (cardCommand(CMD32, firstBlock)
  232. || cardCommand(CMD33, lastBlock)
  233. || cardCommand(CMD38, 0)) {
  234. error(SD_CARD_ERROR_ERASE);
  235. goto fail;
  236. }
  237. if (!waitNotBusy(SD_ERASE_TIMEOUT)) {
  238. error(SD_CARD_ERROR_ERASE_TIMEOUT);
  239. goto fail;
  240. }
  241. chipSelectHigh();
  242. return true;
  243. fail:
  244. chipSelectHigh();
  245. return false;
  246. }
  247. //------------------------------------------------------------------------------
  248. /** Determine if card supports single block erase.
  249. *
  250. * \return The value one, true, is returned if single block erase is supported.
  251. * The value zero, false, is returned if single block erase is not supported.
  252. */
  253. bool Sd2Card::eraseSingleBlockEnable() {
  254. csd_t csd;
  255. return readCSD(&csd) ? csd.v1.erase_blk_en : false;
  256. }
  257. //------------------------------------------------------------------------------
  258. /**
  259. * Initialize an SD flash memory card.
  260. *
  261. * \param[in] sckRateID SPI clock rate selector. See setSckRate().
  262. * \param[in] chipSelectPin SD chip select pin number.
  263. *
  264. * \return The value one, true, is returned for success and
  265. * the value zero, false, is returned for failure. The reason for failure
  266. * can be determined by calling errorCode() and errorData().
  267. */
  268. bool Sd2Card::init(uint8_t sckRateID, uint8_t chipSelectPin) {
  269. errorCode_ = type_ = 0;
  270. chipSelectPin_ = chipSelectPin;
  271. // 16-bit init start time allows over a minute
  272. uint16_t t0 = (uint16_t)millis();
  273. uint32_t arg;
  274. // set pin modes
  275. pinMode(chipSelectPin_, OUTPUT);
  276. chipSelectHigh();
  277. pinMode(SPI_MISO_PIN, INPUT);
  278. pinMode(SPI_MOSI_PIN, OUTPUT);
  279. pinMode(SPI_SCK_PIN, OUTPUT);
  280. #ifndef SOFTWARE_SPI
  281. // SS must be in output mode even it is not chip select
  282. pinMode(SS_PIN, OUTPUT);
  283. // set SS high - may be chip select for another SPI device
  284. #if SET_SPI_SS_HIGH
  285. digitalWrite(SS_PIN, HIGH);
  286. #endif // SET_SPI_SS_HIGH
  287. // set SCK rate for initialization commands
  288. spiRate_ = SPI_SD_INIT_RATE;
  289. spiInit(spiRate_);
  290. #endif // SOFTWARE_SPI
  291. // must supply min of 74 clock cycles with CS high.
  292. for (uint8_t i = 0; i < 10; i++) spiSend(0XFF);
  293. // command to go idle in SPI mode
  294. while ((status_ = cardCommand(CMD0, 0)) != R1_IDLE_STATE) {
  295. if (((uint16_t)millis() - t0) > SD_INIT_TIMEOUT) {
  296. error(SD_CARD_ERROR_CMD0);
  297. goto fail;
  298. }
  299. }
  300. // check SD version
  301. if ((cardCommand(CMD8, 0x1AA) & R1_ILLEGAL_COMMAND)) {
  302. type(SD_CARD_TYPE_SD1);
  303. } else {
  304. // only need last byte of r7 response
  305. for (uint8_t i = 0; i < 4; i++) status_ = spiRec();
  306. if (status_ != 0XAA) {
  307. error(SD_CARD_ERROR_CMD8);
  308. goto fail;
  309. }
  310. type(SD_CARD_TYPE_SD2);
  311. }
  312. // initialize card and send host supports SDHC if SD2
  313. arg = type() == SD_CARD_TYPE_SD2 ? 0X40000000 : 0;
  314. while ((status_ = cardAcmd(ACMD41, arg)) != R1_READY_STATE) {
  315. // check for timeout
  316. if (((uint16_t)millis() - t0) > SD_INIT_TIMEOUT) {
  317. error(SD_CARD_ERROR_ACMD41);
  318. goto fail;
  319. }
  320. }
  321. // if SD2 read OCR register to check for SDHC card
  322. if (type() == SD_CARD_TYPE_SD2) {
  323. if (cardCommand(CMD58, 0)) {
  324. error(SD_CARD_ERROR_CMD58);
  325. goto fail;
  326. }
  327. if ((spiRec() & 0XC0) == 0XC0) type(SD_CARD_TYPE_SDHC);
  328. // discard rest of ocr - contains allowed voltage range
  329. for (uint8_t i = 0; i < 3; i++) spiRec();
  330. }
  331. chipSelectHigh();
  332. #ifndef SOFTWARE_SPI
  333. return setSckRate(sckRateID);
  334. #else // SOFTWARE_SPI
  335. return true;
  336. #endif // SOFTWARE_SPI
  337. fail:
  338. chipSelectHigh();
  339. return false;
  340. }
  341. //------------------------------------------------------------------------------
  342. /**
  343. * Read a 512 byte block from an SD card.
  344. *
  345. * \param[in] blockNumber Logical block to be read.
  346. * \param[out] dst Pointer to the location that will receive the data.
  347. * \return The value one, true, is returned for success and
  348. * the value zero, false, is returned for failure.
  349. */
  350. bool Sd2Card::readBlock(uint32_t blockNumber, uint8_t* dst) {
  351. #ifdef SD_CHECK_AND_RETRY
  352. uint8_t retryCnt = 3;
  353. // use address if not SDHC card
  354. if (type()!= SD_CARD_TYPE_SDHC) blockNumber <<= 9;
  355. retry2:
  356. retryCnt --;
  357. if (cardCommand(CMD17, blockNumber)) {
  358. error(SD_CARD_ERROR_CMD17);
  359. if (retryCnt > 0) goto retry;
  360. goto fail;
  361. }
  362. if (!readData(dst, 512))
  363. {
  364. if (retryCnt > 0) goto retry;
  365. goto fail;
  366. }
  367. return true;
  368. retry:
  369. chipSelectHigh();
  370. cardCommand(CMD12, 0);//Try sending a stop command, but ignore the result.
  371. errorCode_ = 0;
  372. goto retry2;
  373. #else
  374. // use address if not SDHC card
  375. if (type()!= SD_CARD_TYPE_SDHC) blockNumber <<= 9;
  376. if (cardCommand(CMD17, blockNumber)) {
  377. error(SD_CARD_ERROR_CMD17);
  378. goto fail;
  379. }
  380. return readData(dst, 512);
  381. #endif
  382. fail:
  383. chipSelectHigh();
  384. return false;
  385. }
  386. //------------------------------------------------------------------------------
  387. /** Read one data block in a multiple block read sequence
  388. *
  389. * \param[in] dst Pointer to the location for the data to be read.
  390. *
  391. * \return The value one, true, is returned for success and
  392. * the value zero, false, is returned for failure.
  393. */
  394. bool Sd2Card::readData(uint8_t *dst) {
  395. chipSelectLow();
  396. return readData(dst, 512);
  397. }
  398. #ifdef SD_CHECK_AND_RETRY
  399. static const uint16_t crctab[] PROGMEM = {
  400. 0x0000, 0x1021, 0x2042, 0x3063, 0x4084, 0x50A5, 0x60C6, 0x70E7,
  401. 0x8108, 0x9129, 0xA14A, 0xB16B, 0xC18C, 0xD1AD, 0xE1CE, 0xF1EF,
  402. 0x1231, 0x0210, 0x3273, 0x2252, 0x52B5, 0x4294, 0x72F7, 0x62D6,
  403. 0x9339, 0x8318, 0xB37B, 0xA35A, 0xD3BD, 0xC39C, 0xF3FF, 0xE3DE,
  404. 0x2462, 0x3443, 0x0420, 0x1401, 0x64E6, 0x74C7, 0x44A4, 0x5485,
  405. 0xA56A, 0xB54B, 0x8528, 0x9509, 0xE5EE, 0xF5CF, 0xC5AC, 0xD58D,
  406. 0x3653, 0x2672, 0x1611, 0x0630, 0x76D7, 0x66F6, 0x5695, 0x46B4,
  407. 0xB75B, 0xA77A, 0x9719, 0x8738, 0xF7DF, 0xE7FE, 0xD79D, 0xC7BC,
  408. 0x48C4, 0x58E5, 0x6886, 0x78A7, 0x0840, 0x1861, 0x2802, 0x3823,
  409. 0xC9CC, 0xD9ED, 0xE98E, 0xF9AF, 0x8948, 0x9969, 0xA90A, 0xB92B,
  410. 0x5AF5, 0x4AD4, 0x7AB7, 0x6A96, 0x1A71, 0x0A50, 0x3A33, 0x2A12,
  411. 0xDBFD, 0xCBDC, 0xFBBF, 0xEB9E, 0x9B79, 0x8B58, 0xBB3B, 0xAB1A,
  412. 0x6CA6, 0x7C87, 0x4CE4, 0x5CC5, 0x2C22, 0x3C03, 0x0C60, 0x1C41,
  413. 0xEDAE, 0xFD8F, 0xCDEC, 0xDDCD, 0xAD2A, 0xBD0B, 0x8D68, 0x9D49,
  414. 0x7E97, 0x6EB6, 0x5ED5, 0x4EF4, 0x3E13, 0x2E32, 0x1E51, 0x0E70,
  415. 0xFF9F, 0xEFBE, 0xDFDD, 0xCFFC, 0xBF1B, 0xAF3A, 0x9F59, 0x8F78,
  416. 0x9188, 0x81A9, 0xB1CA, 0xA1EB, 0xD10C, 0xC12D, 0xF14E, 0xE16F,
  417. 0x1080, 0x00A1, 0x30C2, 0x20E3, 0x5004, 0x4025, 0x7046, 0x6067,
  418. 0x83B9, 0x9398, 0xA3FB, 0xB3DA, 0xC33D, 0xD31C, 0xE37F, 0xF35E,
  419. 0x02B1, 0x1290, 0x22F3, 0x32D2, 0x4235, 0x5214, 0x6277, 0x7256,
  420. 0xB5EA, 0xA5CB, 0x95A8, 0x8589, 0xF56E, 0xE54F, 0xD52C, 0xC50D,
  421. 0x34E2, 0x24C3, 0x14A0, 0x0481, 0x7466, 0x6447, 0x5424, 0x4405,
  422. 0xA7DB, 0xB7FA, 0x8799, 0x97B8, 0xE75F, 0xF77E, 0xC71D, 0xD73C,
  423. 0x26D3, 0x36F2, 0x0691, 0x16B0, 0x6657, 0x7676, 0x4615, 0x5634,
  424. 0xD94C, 0xC96D, 0xF90E, 0xE92F, 0x99C8, 0x89E9, 0xB98A, 0xA9AB,
  425. 0x5844, 0x4865, 0x7806, 0x6827, 0x18C0, 0x08E1, 0x3882, 0x28A3,
  426. 0xCB7D, 0xDB5C, 0xEB3F, 0xFB1E, 0x8BF9, 0x9BD8, 0xABBB, 0xBB9A,
  427. 0x4A75, 0x5A54, 0x6A37, 0x7A16, 0x0AF1, 0x1AD0, 0x2AB3, 0x3A92,
  428. 0xFD2E, 0xED0F, 0xDD6C, 0xCD4D, 0xBDAA, 0xAD8B, 0x9DE8, 0x8DC9,
  429. 0x7C26, 0x6C07, 0x5C64, 0x4C45, 0x3CA2, 0x2C83, 0x1CE0, 0x0CC1,
  430. 0xEF1F, 0xFF3E, 0xCF5D, 0xDF7C, 0xAF9B, 0xBFBA, 0x8FD9, 0x9FF8,
  431. 0x6E17, 0x7E36, 0x4E55, 0x5E74, 0x2E93, 0x3EB2, 0x0ED1, 0x1EF0
  432. };
  433. static uint16_t CRC_CCITT(const uint8_t* data, size_t n) {
  434. uint16_t crc = 0;
  435. for (size_t i = 0; i < n; i++) {
  436. crc = pgm_read_word(&crctab[(crc >> 8 ^ data[i]) & 0XFF]) ^ (crc << 8);
  437. }
  438. return crc;
  439. }
  440. #endif
  441. //------------------------------------------------------------------------------
  442. bool Sd2Card::readData(uint8_t* dst, uint16_t count) {
  443. // wait for start block token
  444. uint16_t t0 = millis();
  445. while ((status_ = spiRec()) == 0XFF) {
  446. if (((uint16_t)millis() - t0) > SD_READ_TIMEOUT) {
  447. error(SD_CARD_ERROR_READ_TIMEOUT);
  448. goto fail;
  449. }
  450. }
  451. if (status_ != DATA_START_BLOCK) {
  452. error(SD_CARD_ERROR_READ);
  453. goto fail;
  454. }
  455. // transfer data
  456. spiRead(dst, count);
  457. #ifdef SD_CHECK_AND_RETRY
  458. {
  459. uint16_t calcCrc = CRC_CCITT(dst, count);
  460. uint16_t recvCrc = spiRec() << 8;
  461. recvCrc |= spiRec();
  462. if (calcCrc != recvCrc)
  463. {
  464. error(SD_CARD_ERROR_CRC);
  465. goto fail;
  466. }
  467. }
  468. #else
  469. // discard CRC
  470. spiRec();
  471. spiRec();
  472. #endif
  473. chipSelectHigh();
  474. return true;
  475. fail:
  476. chipSelectHigh();
  477. return false;
  478. }
  479. //------------------------------------------------------------------------------
  480. /** read CID or CSR register */
  481. bool Sd2Card::readRegister(uint8_t cmd, void* buf) {
  482. uint8_t* dst = reinterpret_cast<uint8_t*>(buf);
  483. if (cardCommand(cmd, 0)) {
  484. error(SD_CARD_ERROR_READ_REG);
  485. goto fail;
  486. }
  487. return readData(dst, 16);
  488. fail:
  489. chipSelectHigh();
  490. return false;
  491. }
  492. //------------------------------------------------------------------------------
  493. /** Start a read multiple blocks sequence.
  494. *
  495. * \param[in] blockNumber Address of first block in sequence.
  496. *
  497. * \note This function is used with readData() and readStop() for optimized
  498. * multiple block reads. SPI chipSelect must be low for the entire sequence.
  499. *
  500. * \return The value one, true, is returned for success and
  501. * the value zero, false, is returned for failure.
  502. */
  503. bool Sd2Card::readStart(uint32_t blockNumber) {
  504. if (type()!= SD_CARD_TYPE_SDHC) blockNumber <<= 9;
  505. if (cardCommand(CMD18, blockNumber)) {
  506. error(SD_CARD_ERROR_CMD18);
  507. goto fail;
  508. }
  509. chipSelectHigh();
  510. return true;
  511. fail:
  512. chipSelectHigh();
  513. return false;
  514. }
  515. //------------------------------------------------------------------------------
  516. /** End a read multiple blocks sequence.
  517. *
  518. * \return The value one, true, is returned for success and
  519. * the value zero, false, is returned for failure.
  520. */
  521. bool Sd2Card::readStop() {
  522. chipSelectLow();
  523. if (cardCommand(CMD12, 0)) {
  524. error(SD_CARD_ERROR_CMD12);
  525. goto fail;
  526. }
  527. chipSelectHigh();
  528. return true;
  529. fail:
  530. chipSelectHigh();
  531. return false;
  532. }
  533. //------------------------------------------------------------------------------
  534. /**
  535. * Set the SPI clock rate.
  536. *
  537. * \param[in] sckRateID A value in the range [0, 6].
  538. *
  539. * The SPI clock will be set to F_CPU/pow(2, 1 + sckRateID). The maximum
  540. * SPI rate is F_CPU/2 for \a sckRateID = 0 and the minimum rate is F_CPU/128
  541. * for \a scsRateID = 6.
  542. *
  543. * \return The value one, true, is returned for success and the value zero,
  544. * false, is returned for an invalid value of \a sckRateID.
  545. */
  546. bool Sd2Card::setSckRate(uint8_t sckRateID) {
  547. if (sckRateID > 6) {
  548. error(SD_CARD_ERROR_SCK_RATE);
  549. return false;
  550. }
  551. spiRate_ = sckRateID;
  552. return true;
  553. }
  554. //------------------------------------------------------------------------------
  555. // wait for card to go not busy
  556. bool Sd2Card::waitNotBusy(uint16_t timeoutMillis) {
  557. uint16_t t0 = millis();
  558. while (spiRec() != 0XFF) {
  559. if (((uint16_t)millis() - t0) >= timeoutMillis) goto fail;
  560. }
  561. return true;
  562. fail:
  563. return false;
  564. }
  565. //------------------------------------------------------------------------------
  566. /**
  567. * Writes a 512 byte block to an SD card.
  568. *
  569. * \param[in] blockNumber Logical block to be written.
  570. * \param[in] src Pointer to the location of the data to be written.
  571. * \return The value one, true, is returned for success and
  572. * the value zero, false, is returned for failure.
  573. */
  574. bool Sd2Card::writeBlock(uint32_t blockNumber, const uint8_t* src) {
  575. // use address if not SDHC card
  576. if (type() != SD_CARD_TYPE_SDHC) blockNumber <<= 9;
  577. if (cardCommand(CMD24, blockNumber)) {
  578. error(SD_CARD_ERROR_CMD24);
  579. goto fail;
  580. }
  581. if (!writeData(DATA_START_BLOCK, src)) goto fail;
  582. // wait for flash programming to complete
  583. if (!waitNotBusy(SD_WRITE_TIMEOUT)) {
  584. error(SD_CARD_ERROR_WRITE_TIMEOUT);
  585. goto fail;
  586. }
  587. // response is r2 so get and check two bytes for nonzero
  588. if (cardCommand(CMD13, 0) || spiRec()) {
  589. error(SD_CARD_ERROR_WRITE_PROGRAMMING);
  590. goto fail;
  591. }
  592. chipSelectHigh();
  593. return true;
  594. fail:
  595. chipSelectHigh();
  596. return false;
  597. }
  598. //------------------------------------------------------------------------------
  599. /** Write one data block in a multiple block write sequence
  600. * \param[in] src Pointer to the location of the data to be written.
  601. * \return The value one, true, is returned for success and
  602. * the value zero, false, is returned for failure.
  603. */
  604. bool Sd2Card::writeData(const uint8_t* src) {
  605. chipSelectLow();
  606. // wait for previous write to finish
  607. if (!waitNotBusy(SD_WRITE_TIMEOUT)) goto fail;
  608. if (!writeData(WRITE_MULTIPLE_TOKEN, src)) goto fail;
  609. chipSelectHigh();
  610. return true;
  611. fail:
  612. error(SD_CARD_ERROR_WRITE_MULTIPLE);
  613. chipSelectHigh();
  614. return false;
  615. }
  616. //------------------------------------------------------------------------------
  617. // send one block of data for write block or write multiple blocks
  618. bool Sd2Card::writeData(uint8_t token, const uint8_t* src) {
  619. spiSendBlock(token, src);
  620. spiSend(0xff); // dummy crc
  621. spiSend(0xff); // dummy crc
  622. status_ = spiRec();
  623. if ((status_ & DATA_RES_MASK) != DATA_RES_ACCEPTED) {
  624. error(SD_CARD_ERROR_WRITE);
  625. goto fail;
  626. }
  627. return true;
  628. fail:
  629. chipSelectHigh();
  630. return false;
  631. }
  632. //------------------------------------------------------------------------------
  633. /** Start a write multiple blocks sequence.
  634. *
  635. * \param[in] blockNumber Address of first block in sequence.
  636. * \param[in] eraseCount The number of blocks to be pre-erased.
  637. *
  638. * \note This function is used with writeData() and writeStop()
  639. * for optimized multiple block writes.
  640. *
  641. * \return The value one, true, is returned for success and
  642. * the value zero, false, is returned for failure.
  643. */
  644. bool Sd2Card::writeStart(uint32_t blockNumber, uint32_t eraseCount) {
  645. // send pre-erase count
  646. if (cardAcmd(ACMD23, eraseCount)) {
  647. error(SD_CARD_ERROR_ACMD23);
  648. goto fail;
  649. }
  650. // use address if not SDHC card
  651. if (type() != SD_CARD_TYPE_SDHC) blockNumber <<= 9;
  652. if (cardCommand(CMD25, blockNumber)) {
  653. error(SD_CARD_ERROR_CMD25);
  654. goto fail;
  655. }
  656. chipSelectHigh();
  657. return true;
  658. fail:
  659. chipSelectHigh();
  660. return false;
  661. }
  662. //------------------------------------------------------------------------------
  663. /** End a write multiple blocks sequence.
  664. *
  665. * \return The value one, true, is returned for success and
  666. * the value zero, false, is returned for failure.
  667. */
  668. bool Sd2Card::writeStop() {
  669. chipSelectLow();
  670. if (!waitNotBusy(SD_WRITE_TIMEOUT)) goto fail;
  671. spiSend(STOP_TRAN_TOKEN);
  672. if (!waitNotBusy(SD_WRITE_TIMEOUT)) goto fail;
  673. chipSelectHigh();
  674. return true;
  675. fail:
  676. error(SD_CARD_ERROR_STOP_TRAN);
  677. chipSelectHigh();
  678. return false;
  679. }