trf7970a.c 62 KB

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  1. /*
  2. * TI TRF7970a RFID/NFC Transceiver Driver
  3. *
  4. * Copyright (C) 2013 Texas Instruments Incorporated - http://www.ti.com
  5. *
  6. * Author: Erick Macias <emacias@ti.com>
  7. * Author: Felipe Balbi <balbi@ti.com>
  8. * Author: Mark A. Greer <mgreer@animalcreek.com>
  9. *
  10. * This program is free software: you can redistribute it and/or modify
  11. * it under the terms of the GNU General Public License version 2 of
  12. * the License as published by the Free Software Foundation.
  13. */
  14. #include <linux/module.h>
  15. #include <linux/device.h>
  16. #include <linux/netdevice.h>
  17. #include <linux/interrupt.h>
  18. #include <linux/pm_runtime.h>
  19. #include <linux/nfc.h>
  20. #include <linux/skbuff.h>
  21. #include <linux/delay.h>
  22. #include <linux/gpio.h>
  23. #include <linux/of.h>
  24. #include <linux/of_gpio.h>
  25. #include <linux/spi/spi.h>
  26. #include <linux/regulator/consumer.h>
  27. #include <net/nfc/nfc.h>
  28. #include <net/nfc/digital.h>
  29. /* There are 3 ways the host can communicate with the trf7970a:
  30. * parallel mode, SPI with Slave Select (SS) mode, and SPI without
  31. * SS mode. The driver only supports the two SPI modes.
  32. *
  33. * The trf7970a is very timing sensitive and the VIN, EN2, and EN
  34. * pins must asserted in that order and with specific delays in between.
  35. * The delays used in the driver were provided by TI and have been
  36. * confirmed to work with this driver. There is a bug with the current
  37. * version of the trf7970a that requires that EN2 remain low no matter
  38. * what. If it goes high, it will generate an RF field even when in
  39. * passive target mode. TI has indicated that the chip will work okay
  40. * when EN2 is left low. The 'en2-rf-quirk' device tree property
  41. * indicates that trf7970a currently being used has the erratum and
  42. * that EN2 must be kept low.
  43. *
  44. * Timeouts are implemented using the delayed workqueue kernel facility.
  45. * Timeouts are required so things don't hang when there is no response
  46. * from the trf7970a (or tag). Using this mechanism creates a race with
  47. * interrupts, however. That is, an interrupt and a timeout could occur
  48. * closely enough together that one is blocked by the mutex while the other
  49. * executes. When the timeout handler executes first and blocks the
  50. * interrupt handler, it will eventually set the state to IDLE so the
  51. * interrupt handler will check the state and exit with no harm done.
  52. * When the interrupt handler executes first and blocks the timeout handler,
  53. * the cancel_delayed_work() call will know that it didn't cancel the
  54. * work item (i.e., timeout) and will return zero. That return code is
  55. * used by the timer handler to indicate that it should ignore the timeout
  56. * once its unblocked.
  57. *
  58. * Aborting an active command isn't as simple as it seems because the only
  59. * way to abort a command that's already been sent to the tag is so turn
  60. * off power to the tag. If we do that, though, we'd have to go through
  61. * the entire anticollision procedure again but the digital layer doesn't
  62. * support that. So, if an abort is received before trf7970a_send_cmd()
  63. * has sent the command to the tag, it simply returns -ECANCELED. If the
  64. * command has already been sent to the tag, then the driver continues
  65. * normally and recieves the response data (or error) but just before
  66. * sending the data upstream, it frees the rx_skb and sends -ECANCELED
  67. * upstream instead. If the command failed, that error will be sent
  68. * upstream.
  69. *
  70. * When recieving data from a tag and the interrupt status register has
  71. * only the SRX bit set, it means that all of the data has been received
  72. * (once what's in the fifo has been read). However, depending on timing
  73. * an interrupt status with only the SRX bit set may not be recived. In
  74. * those cases, the timeout mechanism is used to wait 20 ms in case more
  75. * data arrives. After 20 ms, it is assumed that all of the data has been
  76. * received and the accumulated rx data is sent upstream. The
  77. * 'TRF7970A_ST_WAIT_FOR_RX_DATA_CONT' state is used for this purpose
  78. * (i.e., it indicates that some data has been received but we're not sure
  79. * if there is more coming so a timeout in this state means all data has
  80. * been received and there isn't an error). The delay is 20 ms since delays
  81. * of ~16 ms have been observed during testing.
  82. *
  83. * When transmitting a frame larger than the FIFO size (127 bytes), the
  84. * driver will wait 20 ms for the FIFO to drain past the low-watermark
  85. * and generate an interrupt. The low-watermark set to 32 bytes so the
  86. * interrupt should fire after 127 - 32 = 95 bytes have been sent. At
  87. * the lowest possible bit rate (6.62 kbps for 15693), it will take up
  88. * to ~14.35 ms so 20 ms is used for the timeout.
  89. *
  90. * Type 2 write and sector select commands respond with a 4-bit ACK or NACK.
  91. * Having only 4 bits in the FIFO won't normally generate an interrupt so
  92. * driver enables the '4_bit_RX' bit of the Special Functions register 1
  93. * to cause an interrupt in that case. Leaving that bit for a read command
  94. * messes up the data returned so it is only enabled when the framing is
  95. * 'NFC_DIGITAL_FRAMING_NFCA_T2T' and the command is not a read command.
  96. * Unfortunately, that means that the driver has to peek into tx frames
  97. * when the framing is 'NFC_DIGITAL_FRAMING_NFCA_T2T'. This is done by
  98. * the trf7970a_per_cmd_config() routine.
  99. *
  100. * ISO/IEC 15693 frames specify whether to use single or double sub-carrier
  101. * frequencies and whether to use low or high data rates in the flags byte
  102. * of the frame. This means that the driver has to peek at all 15693 frames
  103. * to determine what speed to set the communication to. In addition, write
  104. * and lock commands use the OPTION flag to indicate that an EOF must be
  105. * sent to the tag before it will send its response. So the driver has to
  106. * examine all frames for that reason too.
  107. *
  108. * It is unclear how long to wait before sending the EOF. According to the
  109. * Note under Table 1-1 in section 1.6 of
  110. * http://www.ti.com/lit/ug/scbu011/scbu011.pdf, that wait should be at least
  111. * 10 ms for TI Tag-it HF-I tags; however testing has shown that is not long
  112. * enough so 20 ms is used. So the timer is set to 40 ms - 20 ms to drain
  113. * up to 127 bytes in the FIFO at the lowest bit rate plus another 20 ms to
  114. * ensure the wait is long enough before sending the EOF. This seems to work
  115. * reliably.
  116. */
  117. #define TRF7970A_SUPPORTED_PROTOCOLS \
  118. (NFC_PROTO_MIFARE_MASK | NFC_PROTO_ISO14443_MASK | \
  119. NFC_PROTO_ISO14443_B_MASK | NFC_PROTO_FELICA_MASK | \
  120. NFC_PROTO_ISO15693_MASK | NFC_PROTO_NFC_DEP_MASK)
  121. #define TRF7970A_AUTOSUSPEND_DELAY 30000 /* 30 seconds */
  122. #define TRF7970A_13MHZ_CLOCK_FREQUENCY 13560000
  123. #define TRF7970A_27MHZ_CLOCK_FREQUENCY 27120000
  124. #define TRF7970A_RX_SKB_ALLOC_SIZE 256
  125. #define TRF7970A_FIFO_SIZE 127
  126. /* TX length is 3 nibbles long ==> 4KB - 1 bytes max */
  127. #define TRF7970A_TX_MAX (4096 - 1)
  128. #define TRF7970A_WAIT_FOR_TX_IRQ 20
  129. #define TRF7970A_WAIT_FOR_RX_DATA_TIMEOUT 20
  130. #define TRF7970A_WAIT_FOR_FIFO_DRAIN_TIMEOUT 20
  131. #define TRF7970A_WAIT_TO_ISSUE_ISO15693_EOF 40
  132. /* Guard times for various RF technologies (in us) */
  133. #define TRF7970A_GUARD_TIME_NFCA 5000
  134. #define TRF7970A_GUARD_TIME_NFCB 5000
  135. #define TRF7970A_GUARD_TIME_NFCF 20000
  136. #define TRF7970A_GUARD_TIME_15693 1000
  137. /* Quirks */
  138. /* Erratum: When reading IRQ Status register on trf7970a, we must issue a
  139. * read continuous command for IRQ Status and Collision Position registers.
  140. */
  141. #define TRF7970A_QUIRK_IRQ_STATUS_READ BIT(0)
  142. #define TRF7970A_QUIRK_EN2_MUST_STAY_LOW BIT(1)
  143. #define TRF7970A_QUIRK_T5T_RMB_EXTRA_BYTE BIT(2)
  144. /* Direct commands */
  145. #define TRF7970A_CMD_IDLE 0x00
  146. #define TRF7970A_CMD_SOFT_INIT 0x03
  147. #define TRF7970A_CMD_RF_COLLISION 0x04
  148. #define TRF7970A_CMD_RF_COLLISION_RESPONSE_N 0x05
  149. #define TRF7970A_CMD_RF_COLLISION_RESPONSE_0 0x06
  150. #define TRF7970A_CMD_FIFO_RESET 0x0f
  151. #define TRF7970A_CMD_TRANSMIT_NO_CRC 0x10
  152. #define TRF7970A_CMD_TRANSMIT 0x11
  153. #define TRF7970A_CMD_DELAY_TRANSMIT_NO_CRC 0x12
  154. #define TRF7970A_CMD_DELAY_TRANSMIT 0x13
  155. #define TRF7970A_CMD_EOF 0x14
  156. #define TRF7970A_CMD_CLOSE_SLOT 0x15
  157. #define TRF7970A_CMD_BLOCK_RX 0x16
  158. #define TRF7970A_CMD_ENABLE_RX 0x17
  159. #define TRF7970A_CMD_TEST_INT_RF 0x18
  160. #define TRF7970A_CMD_TEST_EXT_RF 0x19
  161. #define TRF7970A_CMD_RX_GAIN_ADJUST 0x1a
  162. /* Bits determining whether its a direct command or register R/W,
  163. * whether to use a continuous SPI transaction or not, and the actual
  164. * direct cmd opcode or regster address.
  165. */
  166. #define TRF7970A_CMD_BIT_CTRL BIT(7)
  167. #define TRF7970A_CMD_BIT_RW BIT(6)
  168. #define TRF7970A_CMD_BIT_CONTINUOUS BIT(5)
  169. #define TRF7970A_CMD_BIT_OPCODE(opcode) ((opcode) & 0x1f)
  170. /* Registers addresses */
  171. #define TRF7970A_CHIP_STATUS_CTRL 0x00
  172. #define TRF7970A_ISO_CTRL 0x01
  173. #define TRF7970A_ISO14443B_TX_OPTIONS 0x02
  174. #define TRF7970A_ISO14443A_HIGH_BITRATE_OPTIONS 0x03
  175. #define TRF7970A_TX_TIMER_SETTING_H_BYTE 0x04
  176. #define TRF7970A_TX_TIMER_SETTING_L_BYTE 0x05
  177. #define TRF7970A_TX_PULSE_LENGTH_CTRL 0x06
  178. #define TRF7970A_RX_NO_RESPONSE_WAIT 0x07
  179. #define TRF7970A_RX_WAIT_TIME 0x08
  180. #define TRF7970A_MODULATOR_SYS_CLK_CTRL 0x09
  181. #define TRF7970A_RX_SPECIAL_SETTINGS 0x0a
  182. #define TRF7970A_REG_IO_CTRL 0x0b
  183. #define TRF7970A_IRQ_STATUS 0x0c
  184. #define TRF7970A_COLLISION_IRQ_MASK 0x0d
  185. #define TRF7970A_COLLISION_POSITION 0x0e
  186. #define TRF7970A_RSSI_OSC_STATUS 0x0f
  187. #define TRF7970A_SPECIAL_FCN_REG1 0x10
  188. #define TRF7970A_SPECIAL_FCN_REG2 0x11
  189. #define TRF7970A_RAM1 0x12
  190. #define TRF7970A_RAM2 0x13
  191. #define TRF7970A_ADJUTABLE_FIFO_IRQ_LEVELS 0x14
  192. #define TRF7970A_NFC_LOW_FIELD_LEVEL 0x16
  193. #define TRF7970A_NFCID1 0x17
  194. #define TRF7970A_NFC_TARGET_LEVEL 0x18
  195. #define TRF79070A_NFC_TARGET_PROTOCOL 0x19
  196. #define TRF7970A_TEST_REGISTER1 0x1a
  197. #define TRF7970A_TEST_REGISTER2 0x1b
  198. #define TRF7970A_FIFO_STATUS 0x1c
  199. #define TRF7970A_TX_LENGTH_BYTE1 0x1d
  200. #define TRF7970A_TX_LENGTH_BYTE2 0x1e
  201. #define TRF7970A_FIFO_IO_REGISTER 0x1f
  202. /* Chip Status Control Register Bits */
  203. #define TRF7970A_CHIP_STATUS_VRS5_3 BIT(0)
  204. #define TRF7970A_CHIP_STATUS_REC_ON BIT(1)
  205. #define TRF7970A_CHIP_STATUS_AGC_ON BIT(2)
  206. #define TRF7970A_CHIP_STATUS_PM_ON BIT(3)
  207. #define TRF7970A_CHIP_STATUS_RF_PWR BIT(4)
  208. #define TRF7970A_CHIP_STATUS_RF_ON BIT(5)
  209. #define TRF7970A_CHIP_STATUS_DIRECT BIT(6)
  210. #define TRF7970A_CHIP_STATUS_STBY BIT(7)
  211. /* ISO Control Register Bits */
  212. #define TRF7970A_ISO_CTRL_15693_SGL_1OF4_662 0x00
  213. #define TRF7970A_ISO_CTRL_15693_SGL_1OF256_662 0x01
  214. #define TRF7970A_ISO_CTRL_15693_SGL_1OF4_2648 0x02
  215. #define TRF7970A_ISO_CTRL_15693_SGL_1OF256_2648 0x03
  216. #define TRF7970A_ISO_CTRL_15693_DBL_1OF4_667a 0x04
  217. #define TRF7970A_ISO_CTRL_15693_DBL_1OF256_667 0x05
  218. #define TRF7970A_ISO_CTRL_15693_DBL_1OF4_2669 0x06
  219. #define TRF7970A_ISO_CTRL_15693_DBL_1OF256_2669 0x07
  220. #define TRF7970A_ISO_CTRL_14443A_106 0x08
  221. #define TRF7970A_ISO_CTRL_14443A_212 0x09
  222. #define TRF7970A_ISO_CTRL_14443A_424 0x0a
  223. #define TRF7970A_ISO_CTRL_14443A_848 0x0b
  224. #define TRF7970A_ISO_CTRL_14443B_106 0x0c
  225. #define TRF7970A_ISO_CTRL_14443B_212 0x0d
  226. #define TRF7970A_ISO_CTRL_14443B_424 0x0e
  227. #define TRF7970A_ISO_CTRL_14443B_848 0x0f
  228. #define TRF7970A_ISO_CTRL_FELICA_212 0x1a
  229. #define TRF7970A_ISO_CTRL_FELICA_424 0x1b
  230. #define TRF7970A_ISO_CTRL_NFC_NFCA_106 0x01
  231. #define TRF7970A_ISO_CTRL_NFC_NFCF_212 0x02
  232. #define TRF7970A_ISO_CTRL_NFC_NFCF_424 0x03
  233. #define TRF7970A_ISO_CTRL_NFC_CE_14443A 0x00
  234. #define TRF7970A_ISO_CTRL_NFC_CE_14443B 0x01
  235. #define TRF7970A_ISO_CTRL_NFC_CE BIT(2)
  236. #define TRF7970A_ISO_CTRL_NFC_ACTIVE BIT(3)
  237. #define TRF7970A_ISO_CTRL_NFC_INITIATOR BIT(4)
  238. #define TRF7970A_ISO_CTRL_NFC_NFC_CE_MODE BIT(5)
  239. #define TRF7970A_ISO_CTRL_RFID BIT(5)
  240. #define TRF7970A_ISO_CTRL_DIR_MODE BIT(6)
  241. #define TRF7970A_ISO_CTRL_RX_CRC_N BIT(7) /* true == No CRC */
  242. #define TRF7970A_ISO_CTRL_RFID_SPEED_MASK 0x1f
  243. /* Modulator and SYS_CLK Control Register Bits */
  244. #define TRF7970A_MODULATOR_DEPTH(n) ((n) & 0x7)
  245. #define TRF7970A_MODULATOR_DEPTH_ASK10 (TRF7970A_MODULATOR_DEPTH(0))
  246. #define TRF7970A_MODULATOR_DEPTH_OOK (TRF7970A_MODULATOR_DEPTH(1))
  247. #define TRF7970A_MODULATOR_DEPTH_ASK7 (TRF7970A_MODULATOR_DEPTH(2))
  248. #define TRF7970A_MODULATOR_DEPTH_ASK8_5 (TRF7970A_MODULATOR_DEPTH(3))
  249. #define TRF7970A_MODULATOR_DEPTH_ASK13 (TRF7970A_MODULATOR_DEPTH(4))
  250. #define TRF7970A_MODULATOR_DEPTH_ASK16 (TRF7970A_MODULATOR_DEPTH(5))
  251. #define TRF7970A_MODULATOR_DEPTH_ASK22 (TRF7970A_MODULATOR_DEPTH(6))
  252. #define TRF7970A_MODULATOR_DEPTH_ASK30 (TRF7970A_MODULATOR_DEPTH(7))
  253. #define TRF7970A_MODULATOR_EN_ANA BIT(3)
  254. #define TRF7970A_MODULATOR_CLK(n) (((n) & 0x3) << 4)
  255. #define TRF7970A_MODULATOR_CLK_DISABLED (TRF7970A_MODULATOR_CLK(0))
  256. #define TRF7970A_MODULATOR_CLK_3_6 (TRF7970A_MODULATOR_CLK(1))
  257. #define TRF7970A_MODULATOR_CLK_6_13 (TRF7970A_MODULATOR_CLK(2))
  258. #define TRF7970A_MODULATOR_CLK_13_27 (TRF7970A_MODULATOR_CLK(3))
  259. #define TRF7970A_MODULATOR_EN_OOK BIT(6)
  260. #define TRF7970A_MODULATOR_27MHZ BIT(7)
  261. #define TRF7970A_RX_SPECIAL_SETTINGS_NO_LIM BIT(0)
  262. #define TRF7970A_RX_SPECIAL_SETTINGS_AGCR BIT(1)
  263. #define TRF7970A_RX_SPECIAL_SETTINGS_GD_0DB (0x0 << 2)
  264. #define TRF7970A_RX_SPECIAL_SETTINGS_GD_5DB (0x1 << 2)
  265. #define TRF7970A_RX_SPECIAL_SETTINGS_GD_10DB (0x2 << 2)
  266. #define TRF7970A_RX_SPECIAL_SETTINGS_GD_15DB (0x3 << 2)
  267. #define TRF7970A_RX_SPECIAL_SETTINGS_HBT BIT(4)
  268. #define TRF7970A_RX_SPECIAL_SETTINGS_M848 BIT(5)
  269. #define TRF7970A_RX_SPECIAL_SETTINGS_C424 BIT(6)
  270. #define TRF7970A_RX_SPECIAL_SETTINGS_C212 BIT(7)
  271. #define TRF7970A_REG_IO_CTRL_VRS(v) ((v) & 0x07)
  272. #define TRF7970A_REG_IO_CTRL_IO_LOW BIT(5)
  273. #define TRF7970A_REG_IO_CTRL_EN_EXT_PA BIT(6)
  274. #define TRF7970A_REG_IO_CTRL_AUTO_REG BIT(7)
  275. /* IRQ Status Register Bits */
  276. #define TRF7970A_IRQ_STATUS_NORESP BIT(0) /* ISO15693 only */
  277. #define TRF7970A_IRQ_STATUS_NFC_COL_ERROR BIT(0)
  278. #define TRF7970A_IRQ_STATUS_COL BIT(1)
  279. #define TRF7970A_IRQ_STATUS_FRAMING_EOF_ERROR BIT(2)
  280. #define TRF7970A_IRQ_STATUS_NFC_RF BIT(2)
  281. #define TRF7970A_IRQ_STATUS_PARITY_ERROR BIT(3)
  282. #define TRF7970A_IRQ_STATUS_NFC_SDD BIT(3)
  283. #define TRF7970A_IRQ_STATUS_CRC_ERROR BIT(4)
  284. #define TRF7970A_IRQ_STATUS_NFC_PROTO_ERROR BIT(4)
  285. #define TRF7970A_IRQ_STATUS_FIFO BIT(5)
  286. #define TRF7970A_IRQ_STATUS_SRX BIT(6)
  287. #define TRF7970A_IRQ_STATUS_TX BIT(7)
  288. #define TRF7970A_IRQ_STATUS_ERROR \
  289. (TRF7970A_IRQ_STATUS_COL | \
  290. TRF7970A_IRQ_STATUS_FRAMING_EOF_ERROR | \
  291. TRF7970A_IRQ_STATUS_PARITY_ERROR | \
  292. TRF7970A_IRQ_STATUS_CRC_ERROR)
  293. #define TRF7970A_RSSI_OSC_STATUS_RSSI_MASK (BIT(2) | BIT(1) | BIT(0))
  294. #define TRF7970A_RSSI_OSC_STATUS_RSSI_X_MASK (BIT(5) | BIT(4) | BIT(3))
  295. #define TRF7970A_RSSI_OSC_STATUS_RSSI_OSC_OK BIT(6)
  296. #define TRF7970A_SPECIAL_FCN_REG1_COL_7_6 BIT(0)
  297. #define TRF7970A_SPECIAL_FCN_REG1_14_ANTICOLL BIT(1)
  298. #define TRF7970A_SPECIAL_FCN_REG1_4_BIT_RX BIT(2)
  299. #define TRF7970A_SPECIAL_FCN_REG1_SP_DIR_MODE BIT(3)
  300. #define TRF7970A_SPECIAL_FCN_REG1_NEXT_SLOT_37US BIT(4)
  301. #define TRF7970A_SPECIAL_FCN_REG1_PAR43 BIT(5)
  302. #define TRF7970A_ADJUTABLE_FIFO_IRQ_LEVELS_WLH_124 (0x0 << 2)
  303. #define TRF7970A_ADJUTABLE_FIFO_IRQ_LEVELS_WLH_120 (0x1 << 2)
  304. #define TRF7970A_ADJUTABLE_FIFO_IRQ_LEVELS_WLH_112 (0x2 << 2)
  305. #define TRF7970A_ADJUTABLE_FIFO_IRQ_LEVELS_WLH_96 (0x3 << 2)
  306. #define TRF7970A_ADJUTABLE_FIFO_IRQ_LEVELS_WLL_4 0x0
  307. #define TRF7970A_ADJUTABLE_FIFO_IRQ_LEVELS_WLL_8 0x1
  308. #define TRF7970A_ADJUTABLE_FIFO_IRQ_LEVELS_WLL_16 0x2
  309. #define TRF7970A_ADJUTABLE_FIFO_IRQ_LEVELS_WLL_32 0x3
  310. #define TRF7970A_NFC_LOW_FIELD_LEVEL_RFDET(v) ((v) & 0x07)
  311. #define TRF7970A_NFC_LOW_FIELD_LEVEL_CLEX_DIS BIT(7)
  312. #define TRF7970A_NFC_TARGET_LEVEL_RFDET(v) ((v) & 0x07)
  313. #define TRF7970A_NFC_TARGET_LEVEL_HI_RF BIT(3)
  314. #define TRF7970A_NFC_TARGET_LEVEL_SDD_EN BIT(5)
  315. #define TRF7970A_NFC_TARGET_LEVEL_LD_S_4BYTES (0x0 << 6)
  316. #define TRF7970A_NFC_TARGET_LEVEL_LD_S_7BYTES (0x1 << 6)
  317. #define TRF7970A_NFC_TARGET_LEVEL_LD_S_10BYTES (0x2 << 6)
  318. #define TRF79070A_NFC_TARGET_PROTOCOL_NFCBR_106 BIT(0)
  319. #define TRF79070A_NFC_TARGET_PROTOCOL_NFCBR_212 BIT(1)
  320. #define TRF79070A_NFC_TARGET_PROTOCOL_NFCBR_424 (BIT(0) | BIT(1))
  321. #define TRF79070A_NFC_TARGET_PROTOCOL_PAS_14443B BIT(2)
  322. #define TRF79070A_NFC_TARGET_PROTOCOL_PAS_106 BIT(3)
  323. #define TRF79070A_NFC_TARGET_PROTOCOL_FELICA BIT(4)
  324. #define TRF79070A_NFC_TARGET_PROTOCOL_RF_L BIT(6)
  325. #define TRF79070A_NFC_TARGET_PROTOCOL_RF_H BIT(7)
  326. #define TRF79070A_NFC_TARGET_PROTOCOL_106A \
  327. (TRF79070A_NFC_TARGET_PROTOCOL_RF_H | \
  328. TRF79070A_NFC_TARGET_PROTOCOL_RF_L | \
  329. TRF79070A_NFC_TARGET_PROTOCOL_PAS_106 | \
  330. TRF79070A_NFC_TARGET_PROTOCOL_NFCBR_106)
  331. #define TRF79070A_NFC_TARGET_PROTOCOL_106B \
  332. (TRF79070A_NFC_TARGET_PROTOCOL_RF_H | \
  333. TRF79070A_NFC_TARGET_PROTOCOL_RF_L | \
  334. TRF79070A_NFC_TARGET_PROTOCOL_PAS_14443B | \
  335. TRF79070A_NFC_TARGET_PROTOCOL_NFCBR_106)
  336. #define TRF79070A_NFC_TARGET_PROTOCOL_212F \
  337. (TRF79070A_NFC_TARGET_PROTOCOL_RF_H | \
  338. TRF79070A_NFC_TARGET_PROTOCOL_RF_L | \
  339. TRF79070A_NFC_TARGET_PROTOCOL_FELICA | \
  340. TRF79070A_NFC_TARGET_PROTOCOL_NFCBR_212)
  341. #define TRF79070A_NFC_TARGET_PROTOCOL_424F \
  342. (TRF79070A_NFC_TARGET_PROTOCOL_RF_H | \
  343. TRF79070A_NFC_TARGET_PROTOCOL_RF_L | \
  344. TRF79070A_NFC_TARGET_PROTOCOL_FELICA | \
  345. TRF79070A_NFC_TARGET_PROTOCOL_NFCBR_424)
  346. #define TRF7970A_FIFO_STATUS_OVERFLOW BIT(7)
  347. /* NFC (ISO/IEC 14443A) Type 2 Tag commands */
  348. #define NFC_T2T_CMD_READ 0x30
  349. /* ISO 15693 commands codes */
  350. #define ISO15693_CMD_INVENTORY 0x01
  351. #define ISO15693_CMD_READ_SINGLE_BLOCK 0x20
  352. #define ISO15693_CMD_WRITE_SINGLE_BLOCK 0x21
  353. #define ISO15693_CMD_LOCK_BLOCK 0x22
  354. #define ISO15693_CMD_READ_MULTIPLE_BLOCK 0x23
  355. #define ISO15693_CMD_WRITE_MULTIPLE_BLOCK 0x24
  356. #define ISO15693_CMD_SELECT 0x25
  357. #define ISO15693_CMD_RESET_TO_READY 0x26
  358. #define ISO15693_CMD_WRITE_AFI 0x27
  359. #define ISO15693_CMD_LOCK_AFI 0x28
  360. #define ISO15693_CMD_WRITE_DSFID 0x29
  361. #define ISO15693_CMD_LOCK_DSFID 0x2a
  362. #define ISO15693_CMD_GET_SYSTEM_INFO 0x2b
  363. #define ISO15693_CMD_GET_MULTIPLE_BLOCK_SECURITY_STATUS 0x2c
  364. /* ISO 15693 request and response flags */
  365. #define ISO15693_REQ_FLAG_SUB_CARRIER BIT(0)
  366. #define ISO15693_REQ_FLAG_DATA_RATE BIT(1)
  367. #define ISO15693_REQ_FLAG_INVENTORY BIT(2)
  368. #define ISO15693_REQ_FLAG_PROTOCOL_EXT BIT(3)
  369. #define ISO15693_REQ_FLAG_SELECT BIT(4)
  370. #define ISO15693_REQ_FLAG_AFI BIT(4)
  371. #define ISO15693_REQ_FLAG_ADDRESS BIT(5)
  372. #define ISO15693_REQ_FLAG_NB_SLOTS BIT(5)
  373. #define ISO15693_REQ_FLAG_OPTION BIT(6)
  374. #define ISO15693_REQ_FLAG_SPEED_MASK \
  375. (ISO15693_REQ_FLAG_SUB_CARRIER | ISO15693_REQ_FLAG_DATA_RATE)
  376. enum trf7970a_state {
  377. TRF7970A_ST_PWR_OFF,
  378. TRF7970A_ST_RF_OFF,
  379. TRF7970A_ST_IDLE,
  380. TRF7970A_ST_IDLE_RX_BLOCKED,
  381. TRF7970A_ST_WAIT_FOR_TX_FIFO,
  382. TRF7970A_ST_WAIT_FOR_RX_DATA,
  383. TRF7970A_ST_WAIT_FOR_RX_DATA_CONT,
  384. TRF7970A_ST_WAIT_TO_ISSUE_EOF,
  385. TRF7970A_ST_LISTENING,
  386. TRF7970A_ST_LISTENING_MD,
  387. TRF7970A_ST_MAX
  388. };
  389. struct trf7970a {
  390. enum trf7970a_state state;
  391. struct device *dev;
  392. struct spi_device *spi;
  393. struct regulator *regulator;
  394. struct nfc_digital_dev *ddev;
  395. u32 quirks;
  396. bool is_initiator;
  397. bool aborting;
  398. struct sk_buff *tx_skb;
  399. struct sk_buff *rx_skb;
  400. nfc_digital_cmd_complete_t cb;
  401. void *cb_arg;
  402. u8 chip_status_ctrl;
  403. u8 iso_ctrl;
  404. u8 iso_ctrl_tech;
  405. u8 modulator_sys_clk_ctrl;
  406. u8 special_fcn_reg1;
  407. u8 io_ctrl;
  408. unsigned int guard_time;
  409. int technology;
  410. int framing;
  411. u8 md_rf_tech;
  412. u8 tx_cmd;
  413. bool issue_eof;
  414. bool adjust_resp_len;
  415. int en2_gpio;
  416. int en_gpio;
  417. struct mutex lock;
  418. unsigned int timeout;
  419. bool ignore_timeout;
  420. struct delayed_work timeout_work;
  421. };
  422. static int trf7970a_cmd(struct trf7970a *trf, u8 opcode)
  423. {
  424. u8 cmd = TRF7970A_CMD_BIT_CTRL | TRF7970A_CMD_BIT_OPCODE(opcode);
  425. int ret;
  426. dev_dbg(trf->dev, "cmd: 0x%x\n", cmd);
  427. ret = spi_write(trf->spi, &cmd, 1);
  428. if (ret)
  429. dev_err(trf->dev, "%s - cmd: 0x%x, ret: %d\n", __func__, cmd,
  430. ret);
  431. return ret;
  432. }
  433. static int trf7970a_read(struct trf7970a *trf, u8 reg, u8 *val)
  434. {
  435. u8 addr = TRF7970A_CMD_BIT_RW | reg;
  436. int ret;
  437. ret = spi_write_then_read(trf->spi, &addr, 1, val, 1);
  438. if (ret)
  439. dev_err(trf->dev, "%s - addr: 0x%x, ret: %d\n", __func__, addr,
  440. ret);
  441. dev_dbg(trf->dev, "read(0x%x): 0x%x\n", addr, *val);
  442. return ret;
  443. }
  444. static int trf7970a_read_cont(struct trf7970a *trf, u8 reg, u8 *buf, size_t len)
  445. {
  446. u8 addr = reg | TRF7970A_CMD_BIT_RW | TRF7970A_CMD_BIT_CONTINUOUS;
  447. struct spi_transfer t[2];
  448. struct spi_message m;
  449. int ret;
  450. dev_dbg(trf->dev, "read_cont(0x%x, %zd)\n", addr, len);
  451. spi_message_init(&m);
  452. memset(&t, 0, sizeof(t));
  453. t[0].tx_buf = &addr;
  454. t[0].len = sizeof(addr);
  455. spi_message_add_tail(&t[0], &m);
  456. t[1].rx_buf = buf;
  457. t[1].len = len;
  458. spi_message_add_tail(&t[1], &m);
  459. ret = spi_sync(trf->spi, &m);
  460. if (ret)
  461. dev_err(trf->dev, "%s - addr: 0x%x, ret: %d\n", __func__, addr,
  462. ret);
  463. return ret;
  464. }
  465. static int trf7970a_write(struct trf7970a *trf, u8 reg, u8 val)
  466. {
  467. u8 buf[2] = { reg, val };
  468. int ret;
  469. dev_dbg(trf->dev, "write(0x%x): 0x%x\n", reg, val);
  470. ret = spi_write(trf->spi, buf, 2);
  471. if (ret)
  472. dev_err(trf->dev, "%s - write: 0x%x 0x%x, ret: %d\n", __func__,
  473. buf[0], buf[1], ret);
  474. return ret;
  475. }
  476. static int trf7970a_read_irqstatus(struct trf7970a *trf, u8 *status)
  477. {
  478. int ret;
  479. u8 buf[2];
  480. u8 addr;
  481. addr = TRF7970A_IRQ_STATUS | TRF7970A_CMD_BIT_RW;
  482. if (trf->quirks & TRF7970A_QUIRK_IRQ_STATUS_READ) {
  483. addr |= TRF7970A_CMD_BIT_CONTINUOUS;
  484. ret = spi_write_then_read(trf->spi, &addr, 1, buf, 2);
  485. } else {
  486. ret = spi_write_then_read(trf->spi, &addr, 1, buf, 1);
  487. }
  488. if (ret)
  489. dev_err(trf->dev, "%s - irqstatus: Status read failed: %d\n",
  490. __func__, ret);
  491. else
  492. *status = buf[0];
  493. return ret;
  494. }
  495. static int trf7970a_read_target_proto(struct trf7970a *trf, u8 *target_proto)
  496. {
  497. int ret;
  498. u8 buf[2];
  499. u8 addr;
  500. addr = TRF79070A_NFC_TARGET_PROTOCOL | TRF7970A_CMD_BIT_RW |
  501. TRF7970A_CMD_BIT_CONTINUOUS;
  502. ret = spi_write_then_read(trf->spi, &addr, 1, buf, 2);
  503. if (ret)
  504. dev_err(trf->dev, "%s - target_proto: Read failed: %d\n",
  505. __func__, ret);
  506. else
  507. *target_proto = buf[0];
  508. return ret;
  509. }
  510. static int trf7970a_mode_detect(struct trf7970a *trf, u8 *rf_tech)
  511. {
  512. int ret;
  513. u8 target_proto, tech;
  514. ret = trf7970a_read_target_proto(trf, &target_proto);
  515. if (ret)
  516. return ret;
  517. switch (target_proto) {
  518. case TRF79070A_NFC_TARGET_PROTOCOL_106A:
  519. tech = NFC_DIGITAL_RF_TECH_106A;
  520. break;
  521. case TRF79070A_NFC_TARGET_PROTOCOL_106B:
  522. tech = NFC_DIGITAL_RF_TECH_106B;
  523. break;
  524. case TRF79070A_NFC_TARGET_PROTOCOL_212F:
  525. tech = NFC_DIGITAL_RF_TECH_212F;
  526. break;
  527. case TRF79070A_NFC_TARGET_PROTOCOL_424F:
  528. tech = NFC_DIGITAL_RF_TECH_424F;
  529. break;
  530. default:
  531. dev_dbg(trf->dev, "%s - mode_detect: target_proto: 0x%x\n",
  532. __func__, target_proto);
  533. return -EIO;
  534. }
  535. *rf_tech = tech;
  536. return ret;
  537. }
  538. static void trf7970a_send_upstream(struct trf7970a *trf)
  539. {
  540. dev_kfree_skb_any(trf->tx_skb);
  541. trf->tx_skb = NULL;
  542. if (trf->rx_skb && !IS_ERR(trf->rx_skb) && !trf->aborting)
  543. print_hex_dump_debug("trf7970a rx data: ", DUMP_PREFIX_NONE,
  544. 16, 1, trf->rx_skb->data, trf->rx_skb->len,
  545. false);
  546. trf->state = TRF7970A_ST_IDLE;
  547. if (trf->aborting) {
  548. dev_dbg(trf->dev, "Abort process complete\n");
  549. if (!IS_ERR(trf->rx_skb)) {
  550. kfree_skb(trf->rx_skb);
  551. trf->rx_skb = ERR_PTR(-ECANCELED);
  552. }
  553. trf->aborting = false;
  554. }
  555. if (trf->adjust_resp_len) {
  556. if (trf->rx_skb)
  557. skb_trim(trf->rx_skb, trf->rx_skb->len - 1);
  558. trf->adjust_resp_len = false;
  559. }
  560. trf->cb(trf->ddev, trf->cb_arg, trf->rx_skb);
  561. trf->rx_skb = NULL;
  562. }
  563. static void trf7970a_send_err_upstream(struct trf7970a *trf, int errno)
  564. {
  565. dev_dbg(trf->dev, "Error - state: %d, errno: %d\n", trf->state, errno);
  566. cancel_delayed_work(&trf->timeout_work);
  567. kfree_skb(trf->rx_skb);
  568. trf->rx_skb = ERR_PTR(errno);
  569. trf7970a_send_upstream(trf);
  570. }
  571. static int trf7970a_transmit(struct trf7970a *trf, struct sk_buff *skb,
  572. unsigned int len, u8 *prefix, unsigned int prefix_len)
  573. {
  574. struct spi_transfer t[2];
  575. struct spi_message m;
  576. unsigned int timeout;
  577. int ret;
  578. print_hex_dump_debug("trf7970a tx data: ", DUMP_PREFIX_NONE,
  579. 16, 1, skb->data, len, false);
  580. spi_message_init(&m);
  581. memset(&t, 0, sizeof(t));
  582. t[0].tx_buf = prefix;
  583. t[0].len = prefix_len;
  584. spi_message_add_tail(&t[0], &m);
  585. t[1].tx_buf = skb->data;
  586. t[1].len = len;
  587. spi_message_add_tail(&t[1], &m);
  588. ret = spi_sync(trf->spi, &m);
  589. if (ret) {
  590. dev_err(trf->dev, "%s - Can't send tx data: %d\n", __func__,
  591. ret);
  592. return ret;
  593. }
  594. skb_pull(skb, len);
  595. if (skb->len > 0) {
  596. trf->state = TRF7970A_ST_WAIT_FOR_TX_FIFO;
  597. timeout = TRF7970A_WAIT_FOR_FIFO_DRAIN_TIMEOUT;
  598. } else {
  599. if (trf->issue_eof) {
  600. trf->state = TRF7970A_ST_WAIT_TO_ISSUE_EOF;
  601. timeout = TRF7970A_WAIT_TO_ISSUE_ISO15693_EOF;
  602. } else {
  603. trf->state = TRF7970A_ST_WAIT_FOR_RX_DATA;
  604. if (!trf->timeout)
  605. timeout = TRF7970A_WAIT_FOR_TX_IRQ;
  606. else
  607. timeout = trf->timeout;
  608. }
  609. }
  610. dev_dbg(trf->dev, "Setting timeout for %d ms, state: %d\n", timeout,
  611. trf->state);
  612. schedule_delayed_work(&trf->timeout_work, msecs_to_jiffies(timeout));
  613. return 0;
  614. }
  615. static void trf7970a_fill_fifo(struct trf7970a *trf)
  616. {
  617. struct sk_buff *skb = trf->tx_skb;
  618. unsigned int len;
  619. int ret;
  620. u8 fifo_bytes;
  621. u8 prefix;
  622. ret = trf7970a_read(trf, TRF7970A_FIFO_STATUS, &fifo_bytes);
  623. if (ret) {
  624. trf7970a_send_err_upstream(trf, ret);
  625. return;
  626. }
  627. dev_dbg(trf->dev, "Filling FIFO - fifo_bytes: 0x%x\n", fifo_bytes);
  628. fifo_bytes &= ~TRF7970A_FIFO_STATUS_OVERFLOW;
  629. /* Calculate how much more data can be written to the fifo */
  630. len = TRF7970A_FIFO_SIZE - fifo_bytes;
  631. if (!len) {
  632. schedule_delayed_work(&trf->timeout_work,
  633. msecs_to_jiffies(TRF7970A_WAIT_FOR_FIFO_DRAIN_TIMEOUT));
  634. return;
  635. }
  636. len = min(skb->len, len);
  637. prefix = TRF7970A_CMD_BIT_CONTINUOUS | TRF7970A_FIFO_IO_REGISTER;
  638. ret = trf7970a_transmit(trf, skb, len, &prefix, sizeof(prefix));
  639. if (ret)
  640. trf7970a_send_err_upstream(trf, ret);
  641. }
  642. static void trf7970a_drain_fifo(struct trf7970a *trf, u8 status)
  643. {
  644. struct sk_buff *skb = trf->rx_skb;
  645. int ret;
  646. u8 fifo_bytes;
  647. if (status & TRF7970A_IRQ_STATUS_ERROR) {
  648. trf7970a_send_err_upstream(trf, -EIO);
  649. return;
  650. }
  651. ret = trf7970a_read(trf, TRF7970A_FIFO_STATUS, &fifo_bytes);
  652. if (ret) {
  653. trf7970a_send_err_upstream(trf, ret);
  654. return;
  655. }
  656. dev_dbg(trf->dev, "Draining FIFO - fifo_bytes: 0x%x\n", fifo_bytes);
  657. fifo_bytes &= ~TRF7970A_FIFO_STATUS_OVERFLOW;
  658. if (!fifo_bytes)
  659. goto no_rx_data;
  660. if (fifo_bytes > skb_tailroom(skb)) {
  661. skb = skb_copy_expand(skb, skb_headroom(skb),
  662. max_t(int, fifo_bytes,
  663. TRF7970A_RX_SKB_ALLOC_SIZE),
  664. GFP_KERNEL);
  665. if (!skb) {
  666. trf7970a_send_err_upstream(trf, -ENOMEM);
  667. return;
  668. }
  669. kfree_skb(trf->rx_skb);
  670. trf->rx_skb = skb;
  671. }
  672. ret = trf7970a_read_cont(trf, TRF7970A_FIFO_IO_REGISTER,
  673. skb_put(skb, fifo_bytes), fifo_bytes);
  674. if (ret) {
  675. trf7970a_send_err_upstream(trf, ret);
  676. return;
  677. }
  678. /* If received Type 2 ACK/NACK, shift right 4 bits and pass up */
  679. if ((trf->framing == NFC_DIGITAL_FRAMING_NFCA_T2T) && (skb->len == 1) &&
  680. (trf->special_fcn_reg1 ==
  681. TRF7970A_SPECIAL_FCN_REG1_4_BIT_RX)) {
  682. skb->data[0] >>= 4;
  683. status = TRF7970A_IRQ_STATUS_SRX;
  684. } else {
  685. trf->state = TRF7970A_ST_WAIT_FOR_RX_DATA_CONT;
  686. ret = trf7970a_read(trf, TRF7970A_FIFO_STATUS, &fifo_bytes);
  687. if (ret) {
  688. trf7970a_send_err_upstream(trf, ret);
  689. return;
  690. }
  691. fifo_bytes &= ~TRF7970A_FIFO_STATUS_OVERFLOW;
  692. /* If there are bytes in the FIFO, set status to '0' so
  693. * the if stmt below doesn't fire and the driver will wait
  694. * for the trf7970a to generate another RX interrupt.
  695. */
  696. if (fifo_bytes)
  697. status = 0;
  698. }
  699. no_rx_data:
  700. if (status == TRF7970A_IRQ_STATUS_SRX) { /* Receive complete */
  701. trf7970a_send_upstream(trf);
  702. return;
  703. }
  704. dev_dbg(trf->dev, "Setting timeout for %d ms\n",
  705. TRF7970A_WAIT_FOR_RX_DATA_TIMEOUT);
  706. schedule_delayed_work(&trf->timeout_work,
  707. msecs_to_jiffies(TRF7970A_WAIT_FOR_RX_DATA_TIMEOUT));
  708. }
  709. static irqreturn_t trf7970a_irq(int irq, void *dev_id)
  710. {
  711. struct trf7970a *trf = dev_id;
  712. int ret;
  713. u8 status, fifo_bytes, iso_ctrl;
  714. mutex_lock(&trf->lock);
  715. if (trf->state == TRF7970A_ST_RF_OFF) {
  716. mutex_unlock(&trf->lock);
  717. return IRQ_NONE;
  718. }
  719. ret = trf7970a_read_irqstatus(trf, &status);
  720. if (ret) {
  721. mutex_unlock(&trf->lock);
  722. return IRQ_NONE;
  723. }
  724. dev_dbg(trf->dev, "IRQ - state: %d, status: 0x%x\n", trf->state,
  725. status);
  726. if (!status) {
  727. mutex_unlock(&trf->lock);
  728. return IRQ_NONE;
  729. }
  730. switch (trf->state) {
  731. case TRF7970A_ST_IDLE:
  732. case TRF7970A_ST_IDLE_RX_BLOCKED:
  733. /* If initiator and getting interrupts caused by RF noise,
  734. * turn off the receiver to avoid unnecessary interrupts.
  735. * It will be turned back on in trf7970a_send_cmd() when
  736. * the next command is issued.
  737. */
  738. if (trf->is_initiator && (status & TRF7970A_IRQ_STATUS_ERROR)) {
  739. trf7970a_cmd(trf, TRF7970A_CMD_BLOCK_RX);
  740. trf->state = TRF7970A_ST_IDLE_RX_BLOCKED;
  741. }
  742. trf7970a_cmd(trf, TRF7970A_CMD_FIFO_RESET);
  743. break;
  744. case TRF7970A_ST_WAIT_FOR_TX_FIFO:
  745. if (status & TRF7970A_IRQ_STATUS_TX) {
  746. trf->ignore_timeout =
  747. !cancel_delayed_work(&trf->timeout_work);
  748. trf7970a_fill_fifo(trf);
  749. } else {
  750. trf7970a_send_err_upstream(trf, -EIO);
  751. }
  752. break;
  753. case TRF7970A_ST_WAIT_FOR_RX_DATA:
  754. case TRF7970A_ST_WAIT_FOR_RX_DATA_CONT:
  755. if (status & TRF7970A_IRQ_STATUS_SRX) {
  756. trf->ignore_timeout =
  757. !cancel_delayed_work(&trf->timeout_work);
  758. trf7970a_drain_fifo(trf, status);
  759. } else if (status & TRF7970A_IRQ_STATUS_FIFO) {
  760. ret = trf7970a_read(trf, TRF7970A_FIFO_STATUS,
  761. &fifo_bytes);
  762. fifo_bytes &= ~TRF7970A_FIFO_STATUS_OVERFLOW;
  763. if (ret)
  764. trf7970a_send_err_upstream(trf, ret);
  765. else if (!fifo_bytes)
  766. trf7970a_cmd(trf, TRF7970A_CMD_FIFO_RESET);
  767. } else if ((status == TRF7970A_IRQ_STATUS_TX) ||
  768. (!trf->is_initiator &&
  769. (status == (TRF7970A_IRQ_STATUS_TX |
  770. TRF7970A_IRQ_STATUS_NFC_RF)))) {
  771. trf7970a_cmd(trf, TRF7970A_CMD_FIFO_RESET);
  772. if (!trf->timeout) {
  773. trf->ignore_timeout = !cancel_delayed_work(
  774. &trf->timeout_work);
  775. trf->rx_skb = ERR_PTR(0);
  776. trf7970a_send_upstream(trf);
  777. break;
  778. }
  779. if (trf->is_initiator)
  780. break;
  781. iso_ctrl = trf->iso_ctrl;
  782. switch (trf->framing) {
  783. case NFC_DIGITAL_FRAMING_NFCA_STANDARD:
  784. trf->tx_cmd = TRF7970A_CMD_TRANSMIT_NO_CRC;
  785. iso_ctrl |= TRF7970A_ISO_CTRL_RX_CRC_N;
  786. trf->iso_ctrl = 0xff; /* Force ISO_CTRL write */
  787. break;
  788. case NFC_DIGITAL_FRAMING_NFCA_STANDARD_WITH_CRC_A:
  789. trf->tx_cmd = TRF7970A_CMD_TRANSMIT;
  790. iso_ctrl &= ~TRF7970A_ISO_CTRL_RX_CRC_N;
  791. trf->iso_ctrl = 0xff; /* Force ISO_CTRL write */
  792. break;
  793. case NFC_DIGITAL_FRAMING_NFCA_ANTICOL_COMPLETE:
  794. ret = trf7970a_write(trf,
  795. TRF7970A_SPECIAL_FCN_REG1,
  796. TRF7970A_SPECIAL_FCN_REG1_14_ANTICOLL);
  797. if (ret)
  798. goto err_unlock_exit;
  799. trf->special_fcn_reg1 =
  800. TRF7970A_SPECIAL_FCN_REG1_14_ANTICOLL;
  801. break;
  802. default:
  803. break;
  804. }
  805. if (iso_ctrl != trf->iso_ctrl) {
  806. ret = trf7970a_write(trf, TRF7970A_ISO_CTRL,
  807. iso_ctrl);
  808. if (ret)
  809. goto err_unlock_exit;
  810. trf->iso_ctrl = iso_ctrl;
  811. }
  812. } else {
  813. trf7970a_send_err_upstream(trf, -EIO);
  814. }
  815. break;
  816. case TRF7970A_ST_WAIT_TO_ISSUE_EOF:
  817. if (status != TRF7970A_IRQ_STATUS_TX)
  818. trf7970a_send_err_upstream(trf, -EIO);
  819. break;
  820. case TRF7970A_ST_LISTENING:
  821. if (status & TRF7970A_IRQ_STATUS_SRX) {
  822. trf->ignore_timeout =
  823. !cancel_delayed_work(&trf->timeout_work);
  824. trf7970a_drain_fifo(trf, status);
  825. } else if (!(status & TRF7970A_IRQ_STATUS_NFC_RF)) {
  826. trf7970a_send_err_upstream(trf, -EIO);
  827. }
  828. break;
  829. case TRF7970A_ST_LISTENING_MD:
  830. if (status & TRF7970A_IRQ_STATUS_SRX) {
  831. trf->ignore_timeout =
  832. !cancel_delayed_work(&trf->timeout_work);
  833. ret = trf7970a_mode_detect(trf, &trf->md_rf_tech);
  834. if (ret) {
  835. trf7970a_send_err_upstream(trf, ret);
  836. } else {
  837. trf->state = TRF7970A_ST_LISTENING;
  838. trf7970a_drain_fifo(trf, status);
  839. }
  840. } else if (!(status & TRF7970A_IRQ_STATUS_NFC_RF)) {
  841. trf7970a_send_err_upstream(trf, -EIO);
  842. }
  843. break;
  844. default:
  845. dev_err(trf->dev, "%s - Driver in invalid state: %d\n",
  846. __func__, trf->state);
  847. }
  848. err_unlock_exit:
  849. mutex_unlock(&trf->lock);
  850. return IRQ_HANDLED;
  851. }
  852. static void trf7970a_issue_eof(struct trf7970a *trf)
  853. {
  854. int ret;
  855. dev_dbg(trf->dev, "Issuing EOF\n");
  856. ret = trf7970a_cmd(trf, TRF7970A_CMD_FIFO_RESET);
  857. if (ret)
  858. trf7970a_send_err_upstream(trf, ret);
  859. ret = trf7970a_cmd(trf, TRF7970A_CMD_EOF);
  860. if (ret)
  861. trf7970a_send_err_upstream(trf, ret);
  862. trf->state = TRF7970A_ST_WAIT_FOR_RX_DATA;
  863. dev_dbg(trf->dev, "Setting timeout for %d ms, state: %d\n",
  864. trf->timeout, trf->state);
  865. schedule_delayed_work(&trf->timeout_work,
  866. msecs_to_jiffies(trf->timeout));
  867. }
  868. static void trf7970a_timeout_work_handler(struct work_struct *work)
  869. {
  870. struct trf7970a *trf = container_of(work, struct trf7970a,
  871. timeout_work.work);
  872. dev_dbg(trf->dev, "Timeout - state: %d, ignore_timeout: %d\n",
  873. trf->state, trf->ignore_timeout);
  874. mutex_lock(&trf->lock);
  875. if (trf->ignore_timeout)
  876. trf->ignore_timeout = false;
  877. else if (trf->state == TRF7970A_ST_WAIT_FOR_RX_DATA_CONT)
  878. trf7970a_drain_fifo(trf, TRF7970A_IRQ_STATUS_SRX);
  879. else if (trf->state == TRF7970A_ST_WAIT_TO_ISSUE_EOF)
  880. trf7970a_issue_eof(trf);
  881. else
  882. trf7970a_send_err_upstream(trf, -ETIMEDOUT);
  883. mutex_unlock(&trf->lock);
  884. }
  885. static int trf7970a_init(struct trf7970a *trf)
  886. {
  887. int ret;
  888. dev_dbg(trf->dev, "Initializing device - state: %d\n", trf->state);
  889. ret = trf7970a_cmd(trf, TRF7970A_CMD_SOFT_INIT);
  890. if (ret)
  891. goto err_out;
  892. ret = trf7970a_cmd(trf, TRF7970A_CMD_IDLE);
  893. if (ret)
  894. goto err_out;
  895. ret = trf7970a_write(trf, TRF7970A_REG_IO_CTRL,
  896. trf->io_ctrl | TRF7970A_REG_IO_CTRL_VRS(0x1));
  897. if (ret)
  898. goto err_out;
  899. ret = trf7970a_write(trf, TRF7970A_NFC_TARGET_LEVEL, 0);
  900. if (ret)
  901. goto err_out;
  902. usleep_range(1000, 2000);
  903. trf->chip_status_ctrl &= ~TRF7970A_CHIP_STATUS_RF_ON;
  904. ret = trf7970a_write(trf, TRF7970A_MODULATOR_SYS_CLK_CTRL,
  905. trf->modulator_sys_clk_ctrl);
  906. if (ret)
  907. goto err_out;
  908. ret = trf7970a_write(trf, TRF7970A_ADJUTABLE_FIFO_IRQ_LEVELS,
  909. TRF7970A_ADJUTABLE_FIFO_IRQ_LEVELS_WLH_96 |
  910. TRF7970A_ADJUTABLE_FIFO_IRQ_LEVELS_WLL_32);
  911. if (ret)
  912. goto err_out;
  913. ret = trf7970a_write(trf, TRF7970A_SPECIAL_FCN_REG1, 0);
  914. if (ret)
  915. goto err_out;
  916. trf->special_fcn_reg1 = 0;
  917. trf->iso_ctrl = 0xff;
  918. return 0;
  919. err_out:
  920. dev_dbg(trf->dev, "Couldn't init device: %d\n", ret);
  921. return ret;
  922. }
  923. static void trf7970a_switch_rf_off(struct trf7970a *trf)
  924. {
  925. if ((trf->state == TRF7970A_ST_PWR_OFF) ||
  926. (trf->state == TRF7970A_ST_RF_OFF))
  927. return;
  928. dev_dbg(trf->dev, "Switching rf off\n");
  929. trf->chip_status_ctrl &= ~TRF7970A_CHIP_STATUS_RF_ON;
  930. trf7970a_write(trf, TRF7970A_CHIP_STATUS_CTRL, trf->chip_status_ctrl);
  931. trf->aborting = false;
  932. trf->state = TRF7970A_ST_RF_OFF;
  933. pm_runtime_mark_last_busy(trf->dev);
  934. pm_runtime_put_autosuspend(trf->dev);
  935. }
  936. static int trf7970a_switch_rf_on(struct trf7970a *trf)
  937. {
  938. int ret;
  939. dev_dbg(trf->dev, "Switching rf on\n");
  940. pm_runtime_get_sync(trf->dev);
  941. if (trf->state != TRF7970A_ST_RF_OFF) { /* Power on, RF off */
  942. dev_err(trf->dev, "%s - Incorrect state: %d\n", __func__,
  943. trf->state);
  944. return -EINVAL;
  945. }
  946. ret = trf7970a_init(trf);
  947. if (ret) {
  948. dev_err(trf->dev, "%s - Can't initialize: %d\n", __func__, ret);
  949. return ret;
  950. }
  951. trf->state = TRF7970A_ST_IDLE;
  952. return 0;
  953. }
  954. static int trf7970a_switch_rf(struct nfc_digital_dev *ddev, bool on)
  955. {
  956. struct trf7970a *trf = nfc_digital_get_drvdata(ddev);
  957. int ret = 0;
  958. dev_dbg(trf->dev, "Switching RF - state: %d, on: %d\n", trf->state, on);
  959. mutex_lock(&trf->lock);
  960. if (on) {
  961. switch (trf->state) {
  962. case TRF7970A_ST_PWR_OFF:
  963. case TRF7970A_ST_RF_OFF:
  964. ret = trf7970a_switch_rf_on(trf);
  965. break;
  966. case TRF7970A_ST_IDLE:
  967. case TRF7970A_ST_IDLE_RX_BLOCKED:
  968. break;
  969. default:
  970. dev_err(trf->dev, "%s - Invalid request: %d %d\n",
  971. __func__, trf->state, on);
  972. trf7970a_switch_rf_off(trf);
  973. ret = -EINVAL;
  974. }
  975. } else {
  976. switch (trf->state) {
  977. case TRF7970A_ST_PWR_OFF:
  978. case TRF7970A_ST_RF_OFF:
  979. break;
  980. default:
  981. dev_err(trf->dev, "%s - Invalid request: %d %d\n",
  982. __func__, trf->state, on);
  983. ret = -EINVAL;
  984. /* FALLTHROUGH */
  985. case TRF7970A_ST_IDLE:
  986. case TRF7970A_ST_IDLE_RX_BLOCKED:
  987. case TRF7970A_ST_WAIT_FOR_RX_DATA:
  988. case TRF7970A_ST_WAIT_FOR_RX_DATA_CONT:
  989. trf7970a_switch_rf_off(trf);
  990. }
  991. }
  992. mutex_unlock(&trf->lock);
  993. return ret;
  994. }
  995. static int trf7970a_in_config_rf_tech(struct trf7970a *trf, int tech)
  996. {
  997. int ret = 0;
  998. dev_dbg(trf->dev, "rf technology: %d\n", tech);
  999. switch (tech) {
  1000. case NFC_DIGITAL_RF_TECH_106A:
  1001. trf->iso_ctrl_tech = TRF7970A_ISO_CTRL_14443A_106;
  1002. trf->modulator_sys_clk_ctrl =
  1003. (trf->modulator_sys_clk_ctrl & 0xf8) |
  1004. TRF7970A_MODULATOR_DEPTH_OOK;
  1005. trf->guard_time = TRF7970A_GUARD_TIME_NFCA;
  1006. break;
  1007. case NFC_DIGITAL_RF_TECH_106B:
  1008. trf->iso_ctrl_tech = TRF7970A_ISO_CTRL_14443B_106;
  1009. trf->modulator_sys_clk_ctrl =
  1010. (trf->modulator_sys_clk_ctrl & 0xf8) |
  1011. TRF7970A_MODULATOR_DEPTH_ASK10;
  1012. trf->guard_time = TRF7970A_GUARD_TIME_NFCB;
  1013. break;
  1014. case NFC_DIGITAL_RF_TECH_212F:
  1015. trf->iso_ctrl_tech = TRF7970A_ISO_CTRL_FELICA_212;
  1016. trf->modulator_sys_clk_ctrl =
  1017. (trf->modulator_sys_clk_ctrl & 0xf8) |
  1018. TRF7970A_MODULATOR_DEPTH_ASK10;
  1019. trf->guard_time = TRF7970A_GUARD_TIME_NFCF;
  1020. break;
  1021. case NFC_DIGITAL_RF_TECH_424F:
  1022. trf->iso_ctrl_tech = TRF7970A_ISO_CTRL_FELICA_424;
  1023. trf->modulator_sys_clk_ctrl =
  1024. (trf->modulator_sys_clk_ctrl & 0xf8) |
  1025. TRF7970A_MODULATOR_DEPTH_ASK10;
  1026. trf->guard_time = TRF7970A_GUARD_TIME_NFCF;
  1027. break;
  1028. case NFC_DIGITAL_RF_TECH_ISO15693:
  1029. trf->iso_ctrl_tech = TRF7970A_ISO_CTRL_15693_SGL_1OF4_2648;
  1030. trf->modulator_sys_clk_ctrl =
  1031. (trf->modulator_sys_clk_ctrl & 0xf8) |
  1032. TRF7970A_MODULATOR_DEPTH_OOK;
  1033. trf->guard_time = TRF7970A_GUARD_TIME_15693;
  1034. break;
  1035. default:
  1036. dev_dbg(trf->dev, "Unsupported rf technology: %d\n", tech);
  1037. return -EINVAL;
  1038. }
  1039. trf->technology = tech;
  1040. /* If in initiator mode and not changing the RF tech due to a
  1041. * PSL sequence (indicated by 'trf->iso_ctrl == 0xff' from
  1042. * trf7970a_init()), clear the NFC Target Detection Level register
  1043. * due to erratum.
  1044. */
  1045. if (trf->iso_ctrl == 0xff)
  1046. ret = trf7970a_write(trf, TRF7970A_NFC_TARGET_LEVEL, 0);
  1047. return ret;
  1048. }
  1049. static int trf7970a_is_rf_field(struct trf7970a *trf, bool *is_rf_field)
  1050. {
  1051. int ret;
  1052. u8 rssi;
  1053. ret = trf7970a_write(trf, TRF7970A_CHIP_STATUS_CTRL,
  1054. trf->chip_status_ctrl | TRF7970A_CHIP_STATUS_REC_ON);
  1055. if (ret)
  1056. return ret;
  1057. ret = trf7970a_cmd(trf, TRF7970A_CMD_TEST_EXT_RF);
  1058. if (ret)
  1059. return ret;
  1060. usleep_range(50, 60);
  1061. ret = trf7970a_read(trf, TRF7970A_RSSI_OSC_STATUS, &rssi);
  1062. if (ret)
  1063. return ret;
  1064. ret = trf7970a_write(trf, TRF7970A_CHIP_STATUS_CTRL,
  1065. trf->chip_status_ctrl);
  1066. if (ret)
  1067. return ret;
  1068. if (rssi & TRF7970A_RSSI_OSC_STATUS_RSSI_MASK)
  1069. *is_rf_field = true;
  1070. else
  1071. *is_rf_field = false;
  1072. return 0;
  1073. }
  1074. static int trf7970a_in_config_framing(struct trf7970a *trf, int framing)
  1075. {
  1076. u8 iso_ctrl = trf->iso_ctrl_tech;
  1077. bool is_rf_field = false;
  1078. int ret;
  1079. dev_dbg(trf->dev, "framing: %d\n", framing);
  1080. switch (framing) {
  1081. case NFC_DIGITAL_FRAMING_NFCA_SHORT:
  1082. case NFC_DIGITAL_FRAMING_NFCA_STANDARD:
  1083. trf->tx_cmd = TRF7970A_CMD_TRANSMIT_NO_CRC;
  1084. iso_ctrl |= TRF7970A_ISO_CTRL_RX_CRC_N;
  1085. break;
  1086. case NFC_DIGITAL_FRAMING_NFCA_STANDARD_WITH_CRC_A:
  1087. case NFC_DIGITAL_FRAMING_NFCA_T4T:
  1088. case NFC_DIGITAL_FRAMING_NFCB:
  1089. case NFC_DIGITAL_FRAMING_NFCB_T4T:
  1090. case NFC_DIGITAL_FRAMING_NFCF:
  1091. case NFC_DIGITAL_FRAMING_NFCF_T3T:
  1092. case NFC_DIGITAL_FRAMING_ISO15693_INVENTORY:
  1093. case NFC_DIGITAL_FRAMING_ISO15693_T5T:
  1094. case NFC_DIGITAL_FRAMING_NFCA_NFC_DEP:
  1095. case NFC_DIGITAL_FRAMING_NFCF_NFC_DEP:
  1096. trf->tx_cmd = TRF7970A_CMD_TRANSMIT;
  1097. iso_ctrl &= ~TRF7970A_ISO_CTRL_RX_CRC_N;
  1098. break;
  1099. case NFC_DIGITAL_FRAMING_NFCA_T2T:
  1100. trf->tx_cmd = TRF7970A_CMD_TRANSMIT;
  1101. iso_ctrl |= TRF7970A_ISO_CTRL_RX_CRC_N;
  1102. break;
  1103. default:
  1104. dev_dbg(trf->dev, "Unsupported Framing: %d\n", framing);
  1105. return -EINVAL;
  1106. }
  1107. trf->framing = framing;
  1108. if (!(trf->chip_status_ctrl & TRF7970A_CHIP_STATUS_RF_ON)) {
  1109. ret = trf7970a_is_rf_field(trf, &is_rf_field);
  1110. if (ret)
  1111. return ret;
  1112. if (is_rf_field)
  1113. return -EBUSY;
  1114. }
  1115. if (iso_ctrl != trf->iso_ctrl) {
  1116. ret = trf7970a_write(trf, TRF7970A_ISO_CTRL, iso_ctrl);
  1117. if (ret)
  1118. return ret;
  1119. trf->iso_ctrl = iso_ctrl;
  1120. ret = trf7970a_write(trf, TRF7970A_MODULATOR_SYS_CLK_CTRL,
  1121. trf->modulator_sys_clk_ctrl);
  1122. if (ret)
  1123. return ret;
  1124. }
  1125. if (!(trf->chip_status_ctrl & TRF7970A_CHIP_STATUS_RF_ON)) {
  1126. ret = trf7970a_write(trf, TRF7970A_CHIP_STATUS_CTRL,
  1127. trf->chip_status_ctrl |
  1128. TRF7970A_CHIP_STATUS_RF_ON);
  1129. if (ret)
  1130. return ret;
  1131. trf->chip_status_ctrl |= TRF7970A_CHIP_STATUS_RF_ON;
  1132. usleep_range(trf->guard_time, trf->guard_time + 1000);
  1133. }
  1134. return 0;
  1135. }
  1136. static int trf7970a_in_configure_hw(struct nfc_digital_dev *ddev, int type,
  1137. int param)
  1138. {
  1139. struct trf7970a *trf = nfc_digital_get_drvdata(ddev);
  1140. int ret;
  1141. dev_dbg(trf->dev, "Configure hw - type: %d, param: %d\n", type, param);
  1142. mutex_lock(&trf->lock);
  1143. trf->is_initiator = true;
  1144. if ((trf->state == TRF7970A_ST_PWR_OFF) ||
  1145. (trf->state == TRF7970A_ST_RF_OFF)) {
  1146. ret = trf7970a_switch_rf_on(trf);
  1147. if (ret)
  1148. goto err_unlock;
  1149. }
  1150. switch (type) {
  1151. case NFC_DIGITAL_CONFIG_RF_TECH:
  1152. ret = trf7970a_in_config_rf_tech(trf, param);
  1153. break;
  1154. case NFC_DIGITAL_CONFIG_FRAMING:
  1155. ret = trf7970a_in_config_framing(trf, param);
  1156. break;
  1157. default:
  1158. dev_dbg(trf->dev, "Unknown type: %d\n", type);
  1159. ret = -EINVAL;
  1160. }
  1161. err_unlock:
  1162. mutex_unlock(&trf->lock);
  1163. return ret;
  1164. }
  1165. static int trf7970a_is_iso15693_write_or_lock(u8 cmd)
  1166. {
  1167. switch (cmd) {
  1168. case ISO15693_CMD_WRITE_SINGLE_BLOCK:
  1169. case ISO15693_CMD_LOCK_BLOCK:
  1170. case ISO15693_CMD_WRITE_MULTIPLE_BLOCK:
  1171. case ISO15693_CMD_WRITE_AFI:
  1172. case ISO15693_CMD_LOCK_AFI:
  1173. case ISO15693_CMD_WRITE_DSFID:
  1174. case ISO15693_CMD_LOCK_DSFID:
  1175. return 1;
  1176. break;
  1177. default:
  1178. return 0;
  1179. }
  1180. }
  1181. static int trf7970a_per_cmd_config(struct trf7970a *trf, struct sk_buff *skb)
  1182. {
  1183. u8 *req = skb->data;
  1184. u8 special_fcn_reg1, iso_ctrl;
  1185. int ret;
  1186. trf->issue_eof = false;
  1187. /* When issuing Type 2 read command, make sure the '4_bit_RX' bit in
  1188. * special functions register 1 is cleared; otherwise, its a write or
  1189. * sector select command and '4_bit_RX' must be set.
  1190. *
  1191. * When issuing an ISO 15693 command, inspect the flags byte to see
  1192. * what speed to use. Also, remember if the OPTION flag is set on
  1193. * a Type 5 write or lock command so the driver will know that it
  1194. * has to send an EOF in order to get a response.
  1195. */
  1196. if ((trf->technology == NFC_DIGITAL_RF_TECH_106A) &&
  1197. (trf->framing == NFC_DIGITAL_FRAMING_NFCA_T2T)) {
  1198. if (req[0] == NFC_T2T_CMD_READ)
  1199. special_fcn_reg1 = 0;
  1200. else
  1201. special_fcn_reg1 = TRF7970A_SPECIAL_FCN_REG1_4_BIT_RX;
  1202. if (special_fcn_reg1 != trf->special_fcn_reg1) {
  1203. ret = trf7970a_write(trf, TRF7970A_SPECIAL_FCN_REG1,
  1204. special_fcn_reg1);
  1205. if (ret)
  1206. return ret;
  1207. trf->special_fcn_reg1 = special_fcn_reg1;
  1208. }
  1209. } else if (trf->technology == NFC_DIGITAL_RF_TECH_ISO15693) {
  1210. iso_ctrl = trf->iso_ctrl & ~TRF7970A_ISO_CTRL_RFID_SPEED_MASK;
  1211. switch (req[0] & ISO15693_REQ_FLAG_SPEED_MASK) {
  1212. case 0x00:
  1213. iso_ctrl |= TRF7970A_ISO_CTRL_15693_SGL_1OF4_662;
  1214. break;
  1215. case ISO15693_REQ_FLAG_SUB_CARRIER:
  1216. iso_ctrl |= TRF7970A_ISO_CTRL_15693_DBL_1OF4_667a;
  1217. break;
  1218. case ISO15693_REQ_FLAG_DATA_RATE:
  1219. iso_ctrl |= TRF7970A_ISO_CTRL_15693_SGL_1OF4_2648;
  1220. break;
  1221. case (ISO15693_REQ_FLAG_SUB_CARRIER |
  1222. ISO15693_REQ_FLAG_DATA_RATE):
  1223. iso_ctrl |= TRF7970A_ISO_CTRL_15693_DBL_1OF4_2669;
  1224. break;
  1225. }
  1226. if (iso_ctrl != trf->iso_ctrl) {
  1227. ret = trf7970a_write(trf, TRF7970A_ISO_CTRL, iso_ctrl);
  1228. if (ret)
  1229. return ret;
  1230. trf->iso_ctrl = iso_ctrl;
  1231. }
  1232. if (trf->framing == NFC_DIGITAL_FRAMING_ISO15693_T5T) {
  1233. if (trf7970a_is_iso15693_write_or_lock(req[1]) &&
  1234. (req[0] & ISO15693_REQ_FLAG_OPTION))
  1235. trf->issue_eof = true;
  1236. else if ((trf->quirks &
  1237. TRF7970A_QUIRK_T5T_RMB_EXTRA_BYTE) &&
  1238. (req[1] == ISO15693_CMD_READ_MULTIPLE_BLOCK))
  1239. trf->adjust_resp_len = true;
  1240. }
  1241. }
  1242. return 0;
  1243. }
  1244. static int trf7970a_send_cmd(struct nfc_digital_dev *ddev,
  1245. struct sk_buff *skb, u16 timeout,
  1246. nfc_digital_cmd_complete_t cb, void *arg)
  1247. {
  1248. struct trf7970a *trf = nfc_digital_get_drvdata(ddev);
  1249. u8 prefix[5];
  1250. unsigned int len;
  1251. int ret;
  1252. u8 status;
  1253. dev_dbg(trf->dev, "New request - state: %d, timeout: %d ms, len: %d\n",
  1254. trf->state, timeout, skb->len);
  1255. if (skb->len > TRF7970A_TX_MAX)
  1256. return -EINVAL;
  1257. mutex_lock(&trf->lock);
  1258. if ((trf->state != TRF7970A_ST_IDLE) &&
  1259. (trf->state != TRF7970A_ST_IDLE_RX_BLOCKED)) {
  1260. dev_err(trf->dev, "%s - Bogus state: %d\n", __func__,
  1261. trf->state);
  1262. ret = -EIO;
  1263. goto out_err;
  1264. }
  1265. if (trf->aborting) {
  1266. dev_dbg(trf->dev, "Abort process complete\n");
  1267. trf->aborting = false;
  1268. ret = -ECANCELED;
  1269. goto out_err;
  1270. }
  1271. if (timeout) {
  1272. trf->rx_skb = nfc_alloc_recv_skb(TRF7970A_RX_SKB_ALLOC_SIZE,
  1273. GFP_KERNEL);
  1274. if (!trf->rx_skb) {
  1275. dev_dbg(trf->dev, "Can't alloc rx_skb\n");
  1276. ret = -ENOMEM;
  1277. goto out_err;
  1278. }
  1279. }
  1280. if (trf->state == TRF7970A_ST_IDLE_RX_BLOCKED) {
  1281. ret = trf7970a_cmd(trf, TRF7970A_CMD_ENABLE_RX);
  1282. if (ret)
  1283. goto out_err;
  1284. trf->state = TRF7970A_ST_IDLE;
  1285. }
  1286. if (trf->is_initiator) {
  1287. ret = trf7970a_per_cmd_config(trf, skb);
  1288. if (ret)
  1289. goto out_err;
  1290. }
  1291. trf->ddev = ddev;
  1292. trf->tx_skb = skb;
  1293. trf->cb = cb;
  1294. trf->cb_arg = arg;
  1295. trf->timeout = timeout;
  1296. trf->ignore_timeout = false;
  1297. len = skb->len;
  1298. /* TX data must be prefixed with a FIFO reset cmd, a cmd that depends
  1299. * on what the current framing is, the address of the TX length byte 1
  1300. * register (0x1d), and the 2 byte length of the data to be transmitted.
  1301. * That totals 5 bytes.
  1302. */
  1303. prefix[0] = TRF7970A_CMD_BIT_CTRL |
  1304. TRF7970A_CMD_BIT_OPCODE(TRF7970A_CMD_FIFO_RESET);
  1305. prefix[1] = TRF7970A_CMD_BIT_CTRL |
  1306. TRF7970A_CMD_BIT_OPCODE(trf->tx_cmd);
  1307. prefix[2] = TRF7970A_CMD_BIT_CONTINUOUS | TRF7970A_TX_LENGTH_BYTE1;
  1308. if (trf->framing == NFC_DIGITAL_FRAMING_NFCA_SHORT) {
  1309. prefix[3] = 0x00;
  1310. prefix[4] = 0x0f; /* 7 bits */
  1311. } else {
  1312. prefix[3] = (len & 0xf00) >> 4;
  1313. prefix[3] |= ((len & 0xf0) >> 4);
  1314. prefix[4] = ((len & 0x0f) << 4);
  1315. }
  1316. len = min_t(int, skb->len, TRF7970A_FIFO_SIZE);
  1317. /* Clear possible spurious interrupt */
  1318. ret = trf7970a_read_irqstatus(trf, &status);
  1319. if (ret)
  1320. goto out_err;
  1321. ret = trf7970a_transmit(trf, skb, len, prefix, sizeof(prefix));
  1322. if (ret) {
  1323. kfree_skb(trf->rx_skb);
  1324. trf->rx_skb = NULL;
  1325. }
  1326. out_err:
  1327. mutex_unlock(&trf->lock);
  1328. return ret;
  1329. }
  1330. static int trf7970a_tg_config_rf_tech(struct trf7970a *trf, int tech)
  1331. {
  1332. int ret = 0;
  1333. dev_dbg(trf->dev, "rf technology: %d\n", tech);
  1334. switch (tech) {
  1335. case NFC_DIGITAL_RF_TECH_106A:
  1336. trf->iso_ctrl_tech = TRF7970A_ISO_CTRL_NFC_NFC_CE_MODE |
  1337. TRF7970A_ISO_CTRL_NFC_CE |
  1338. TRF7970A_ISO_CTRL_NFC_CE_14443A;
  1339. trf->modulator_sys_clk_ctrl =
  1340. (trf->modulator_sys_clk_ctrl & 0xf8) |
  1341. TRF7970A_MODULATOR_DEPTH_OOK;
  1342. break;
  1343. case NFC_DIGITAL_RF_TECH_212F:
  1344. trf->iso_ctrl_tech = TRF7970A_ISO_CTRL_NFC_NFC_CE_MODE |
  1345. TRF7970A_ISO_CTRL_NFC_NFCF_212;
  1346. trf->modulator_sys_clk_ctrl =
  1347. (trf->modulator_sys_clk_ctrl & 0xf8) |
  1348. TRF7970A_MODULATOR_DEPTH_ASK10;
  1349. break;
  1350. case NFC_DIGITAL_RF_TECH_424F:
  1351. trf->iso_ctrl_tech = TRF7970A_ISO_CTRL_NFC_NFC_CE_MODE |
  1352. TRF7970A_ISO_CTRL_NFC_NFCF_424;
  1353. trf->modulator_sys_clk_ctrl =
  1354. (trf->modulator_sys_clk_ctrl & 0xf8) |
  1355. TRF7970A_MODULATOR_DEPTH_ASK10;
  1356. break;
  1357. default:
  1358. dev_dbg(trf->dev, "Unsupported rf technology: %d\n", tech);
  1359. return -EINVAL;
  1360. }
  1361. trf->technology = tech;
  1362. /* Normally we write the ISO_CTRL register in
  1363. * trf7970a_tg_config_framing() because the framing can change
  1364. * the value written. However, when sending a PSL RES,
  1365. * digital_tg_send_psl_res_complete() doesn't call
  1366. * trf7970a_tg_config_framing() so we must write the register
  1367. * here.
  1368. */
  1369. if ((trf->framing == NFC_DIGITAL_FRAMING_NFC_DEP_ACTIVATED) &&
  1370. (trf->iso_ctrl_tech != trf->iso_ctrl)) {
  1371. ret = trf7970a_write(trf, TRF7970A_ISO_CTRL,
  1372. trf->iso_ctrl_tech);
  1373. trf->iso_ctrl = trf->iso_ctrl_tech;
  1374. }
  1375. return ret;
  1376. }
  1377. /* Since this is a target routine, several of the framing calls are
  1378. * made between receiving the request and sending the response so they
  1379. * should take effect until after the response is sent. This is accomplished
  1380. * by skipping the ISO_CTRL register write here and doing it in the interrupt
  1381. * handler.
  1382. */
  1383. static int trf7970a_tg_config_framing(struct trf7970a *trf, int framing)
  1384. {
  1385. u8 iso_ctrl = trf->iso_ctrl_tech;
  1386. int ret;
  1387. dev_dbg(trf->dev, "framing: %d\n", framing);
  1388. switch (framing) {
  1389. case NFC_DIGITAL_FRAMING_NFCA_NFC_DEP:
  1390. trf->tx_cmd = TRF7970A_CMD_TRANSMIT_NO_CRC;
  1391. iso_ctrl |= TRF7970A_ISO_CTRL_RX_CRC_N;
  1392. break;
  1393. case NFC_DIGITAL_FRAMING_NFCA_STANDARD:
  1394. case NFC_DIGITAL_FRAMING_NFCA_STANDARD_WITH_CRC_A:
  1395. case NFC_DIGITAL_FRAMING_NFCA_ANTICOL_COMPLETE:
  1396. /* These ones are applied in the interrupt handler */
  1397. iso_ctrl = trf->iso_ctrl; /* Don't write to ISO_CTRL yet */
  1398. break;
  1399. case NFC_DIGITAL_FRAMING_NFCF_NFC_DEP:
  1400. trf->tx_cmd = TRF7970A_CMD_TRANSMIT;
  1401. iso_ctrl &= ~TRF7970A_ISO_CTRL_RX_CRC_N;
  1402. break;
  1403. case NFC_DIGITAL_FRAMING_NFC_DEP_ACTIVATED:
  1404. trf->tx_cmd = TRF7970A_CMD_TRANSMIT;
  1405. iso_ctrl &= ~TRF7970A_ISO_CTRL_RX_CRC_N;
  1406. break;
  1407. default:
  1408. dev_dbg(trf->dev, "Unsupported Framing: %d\n", framing);
  1409. return -EINVAL;
  1410. }
  1411. trf->framing = framing;
  1412. if (iso_ctrl != trf->iso_ctrl) {
  1413. ret = trf7970a_write(trf, TRF7970A_ISO_CTRL, iso_ctrl);
  1414. if (ret)
  1415. return ret;
  1416. trf->iso_ctrl = iso_ctrl;
  1417. ret = trf7970a_write(trf, TRF7970A_MODULATOR_SYS_CLK_CTRL,
  1418. trf->modulator_sys_clk_ctrl);
  1419. if (ret)
  1420. return ret;
  1421. }
  1422. if (!(trf->chip_status_ctrl & TRF7970A_CHIP_STATUS_RF_ON)) {
  1423. ret = trf7970a_write(trf, TRF7970A_CHIP_STATUS_CTRL,
  1424. trf->chip_status_ctrl |
  1425. TRF7970A_CHIP_STATUS_RF_ON);
  1426. if (ret)
  1427. return ret;
  1428. trf->chip_status_ctrl |= TRF7970A_CHIP_STATUS_RF_ON;
  1429. }
  1430. return 0;
  1431. }
  1432. static int trf7970a_tg_configure_hw(struct nfc_digital_dev *ddev, int type,
  1433. int param)
  1434. {
  1435. struct trf7970a *trf = nfc_digital_get_drvdata(ddev);
  1436. int ret;
  1437. dev_dbg(trf->dev, "Configure hw - type: %d, param: %d\n", type, param);
  1438. mutex_lock(&trf->lock);
  1439. trf->is_initiator = false;
  1440. if ((trf->state == TRF7970A_ST_PWR_OFF) ||
  1441. (trf->state == TRF7970A_ST_RF_OFF)) {
  1442. ret = trf7970a_switch_rf_on(trf);
  1443. if (ret)
  1444. goto err_unlock;
  1445. }
  1446. switch (type) {
  1447. case NFC_DIGITAL_CONFIG_RF_TECH:
  1448. ret = trf7970a_tg_config_rf_tech(trf, param);
  1449. break;
  1450. case NFC_DIGITAL_CONFIG_FRAMING:
  1451. ret = trf7970a_tg_config_framing(trf, param);
  1452. break;
  1453. default:
  1454. dev_dbg(trf->dev, "Unknown type: %d\n", type);
  1455. ret = -EINVAL;
  1456. }
  1457. err_unlock:
  1458. mutex_unlock(&trf->lock);
  1459. return ret;
  1460. }
  1461. static int _trf7970a_tg_listen(struct nfc_digital_dev *ddev, u16 timeout,
  1462. nfc_digital_cmd_complete_t cb, void *arg, bool mode_detect)
  1463. {
  1464. struct trf7970a *trf = nfc_digital_get_drvdata(ddev);
  1465. int ret;
  1466. mutex_lock(&trf->lock);
  1467. if ((trf->state != TRF7970A_ST_IDLE) &&
  1468. (trf->state != TRF7970A_ST_IDLE_RX_BLOCKED)) {
  1469. dev_err(trf->dev, "%s - Bogus state: %d\n", __func__,
  1470. trf->state);
  1471. ret = -EIO;
  1472. goto out_err;
  1473. }
  1474. if (trf->aborting) {
  1475. dev_dbg(trf->dev, "Abort process complete\n");
  1476. trf->aborting = false;
  1477. ret = -ECANCELED;
  1478. goto out_err;
  1479. }
  1480. trf->rx_skb = nfc_alloc_recv_skb(TRF7970A_RX_SKB_ALLOC_SIZE,
  1481. GFP_KERNEL);
  1482. if (!trf->rx_skb) {
  1483. dev_dbg(trf->dev, "Can't alloc rx_skb\n");
  1484. ret = -ENOMEM;
  1485. goto out_err;
  1486. }
  1487. ret = trf7970a_write(trf, TRF7970A_RX_SPECIAL_SETTINGS,
  1488. TRF7970A_RX_SPECIAL_SETTINGS_HBT |
  1489. TRF7970A_RX_SPECIAL_SETTINGS_M848 |
  1490. TRF7970A_RX_SPECIAL_SETTINGS_C424 |
  1491. TRF7970A_RX_SPECIAL_SETTINGS_C212);
  1492. if (ret)
  1493. goto out_err;
  1494. ret = trf7970a_write(trf, TRF7970A_REG_IO_CTRL,
  1495. trf->io_ctrl | TRF7970A_REG_IO_CTRL_VRS(0x1));
  1496. if (ret)
  1497. goto out_err;
  1498. ret = trf7970a_write(trf, TRF7970A_NFC_LOW_FIELD_LEVEL,
  1499. TRF7970A_NFC_LOW_FIELD_LEVEL_RFDET(0x3));
  1500. if (ret)
  1501. goto out_err;
  1502. ret = trf7970a_write(trf, TRF7970A_NFC_TARGET_LEVEL,
  1503. TRF7970A_NFC_TARGET_LEVEL_RFDET(0x7));
  1504. if (ret)
  1505. goto out_err;
  1506. trf->ddev = ddev;
  1507. trf->cb = cb;
  1508. trf->cb_arg = arg;
  1509. trf->timeout = timeout;
  1510. trf->ignore_timeout = false;
  1511. ret = trf7970a_cmd(trf, TRF7970A_CMD_ENABLE_RX);
  1512. if (ret)
  1513. goto out_err;
  1514. trf->state = mode_detect ? TRF7970A_ST_LISTENING_MD :
  1515. TRF7970A_ST_LISTENING;
  1516. schedule_delayed_work(&trf->timeout_work, msecs_to_jiffies(timeout));
  1517. out_err:
  1518. mutex_unlock(&trf->lock);
  1519. return ret;
  1520. }
  1521. static int trf7970a_tg_listen(struct nfc_digital_dev *ddev, u16 timeout,
  1522. nfc_digital_cmd_complete_t cb, void *arg)
  1523. {
  1524. struct trf7970a *trf = nfc_digital_get_drvdata(ddev);
  1525. dev_dbg(trf->dev, "Listen - state: %d, timeout: %d ms\n",
  1526. trf->state, timeout);
  1527. return _trf7970a_tg_listen(ddev, timeout, cb, arg, false);
  1528. }
  1529. static int trf7970a_tg_listen_md(struct nfc_digital_dev *ddev,
  1530. u16 timeout, nfc_digital_cmd_complete_t cb, void *arg)
  1531. {
  1532. struct trf7970a *trf = nfc_digital_get_drvdata(ddev);
  1533. int ret;
  1534. dev_dbg(trf->dev, "Listen MD - state: %d, timeout: %d ms\n",
  1535. trf->state, timeout);
  1536. ret = trf7970a_tg_configure_hw(ddev, NFC_DIGITAL_CONFIG_RF_TECH,
  1537. NFC_DIGITAL_RF_TECH_106A);
  1538. if (ret)
  1539. return ret;
  1540. ret = trf7970a_tg_configure_hw(ddev, NFC_DIGITAL_CONFIG_FRAMING,
  1541. NFC_DIGITAL_FRAMING_NFCA_NFC_DEP);
  1542. if (ret)
  1543. return ret;
  1544. return _trf7970a_tg_listen(ddev, timeout, cb, arg, true);
  1545. }
  1546. static int trf7970a_tg_get_rf_tech(struct nfc_digital_dev *ddev, u8 *rf_tech)
  1547. {
  1548. struct trf7970a *trf = nfc_digital_get_drvdata(ddev);
  1549. dev_dbg(trf->dev, "Get RF Tech - state: %d, rf_tech: %d\n",
  1550. trf->state, trf->md_rf_tech);
  1551. *rf_tech = trf->md_rf_tech;
  1552. return 0;
  1553. }
  1554. static void trf7970a_abort_cmd(struct nfc_digital_dev *ddev)
  1555. {
  1556. struct trf7970a *trf = nfc_digital_get_drvdata(ddev);
  1557. dev_dbg(trf->dev, "Abort process initiated\n");
  1558. mutex_lock(&trf->lock);
  1559. switch (trf->state) {
  1560. case TRF7970A_ST_WAIT_FOR_TX_FIFO:
  1561. case TRF7970A_ST_WAIT_FOR_RX_DATA:
  1562. case TRF7970A_ST_WAIT_FOR_RX_DATA_CONT:
  1563. case TRF7970A_ST_WAIT_TO_ISSUE_EOF:
  1564. trf->aborting = true;
  1565. break;
  1566. case TRF7970A_ST_LISTENING:
  1567. trf->ignore_timeout = !cancel_delayed_work(&trf->timeout_work);
  1568. trf7970a_send_err_upstream(trf, -ECANCELED);
  1569. dev_dbg(trf->dev, "Abort process complete\n");
  1570. break;
  1571. default:
  1572. break;
  1573. }
  1574. mutex_unlock(&trf->lock);
  1575. }
  1576. static struct nfc_digital_ops trf7970a_nfc_ops = {
  1577. .in_configure_hw = trf7970a_in_configure_hw,
  1578. .in_send_cmd = trf7970a_send_cmd,
  1579. .tg_configure_hw = trf7970a_tg_configure_hw,
  1580. .tg_send_cmd = trf7970a_send_cmd,
  1581. .tg_listen = trf7970a_tg_listen,
  1582. .tg_listen_md = trf7970a_tg_listen_md,
  1583. .tg_get_rf_tech = trf7970a_tg_get_rf_tech,
  1584. .switch_rf = trf7970a_switch_rf,
  1585. .abort_cmd = trf7970a_abort_cmd,
  1586. };
  1587. static int trf7970a_power_up(struct trf7970a *trf)
  1588. {
  1589. int ret;
  1590. dev_dbg(trf->dev, "Powering up - state: %d\n", trf->state);
  1591. if (trf->state != TRF7970A_ST_PWR_OFF)
  1592. return 0;
  1593. ret = regulator_enable(trf->regulator);
  1594. if (ret) {
  1595. dev_err(trf->dev, "%s - Can't enable VIN: %d\n", __func__, ret);
  1596. return ret;
  1597. }
  1598. usleep_range(5000, 6000);
  1599. if (!(trf->quirks & TRF7970A_QUIRK_EN2_MUST_STAY_LOW)) {
  1600. if (gpio_is_valid(trf->en2_gpio)) {
  1601. gpio_set_value(trf->en2_gpio, 1);
  1602. usleep_range(1000, 2000);
  1603. }
  1604. }
  1605. gpio_set_value(trf->en_gpio, 1);
  1606. usleep_range(20000, 21000);
  1607. trf->state = TRF7970A_ST_RF_OFF;
  1608. return 0;
  1609. }
  1610. static int trf7970a_power_down(struct trf7970a *trf)
  1611. {
  1612. int ret;
  1613. dev_dbg(trf->dev, "Powering down - state: %d\n", trf->state);
  1614. if (trf->state == TRF7970A_ST_PWR_OFF)
  1615. return 0;
  1616. if (trf->state != TRF7970A_ST_RF_OFF) {
  1617. dev_dbg(trf->dev, "Can't power down - not RF_OFF state (%d)\n",
  1618. trf->state);
  1619. return -EBUSY;
  1620. }
  1621. gpio_set_value(trf->en_gpio, 0);
  1622. if (gpio_is_valid(trf->en2_gpio))
  1623. gpio_set_value(trf->en2_gpio, 0);
  1624. ret = regulator_disable(trf->regulator);
  1625. if (ret)
  1626. dev_err(trf->dev, "%s - Can't disable VIN: %d\n", __func__,
  1627. ret);
  1628. trf->state = TRF7970A_ST_PWR_OFF;
  1629. return ret;
  1630. }
  1631. static int trf7970a_startup(struct trf7970a *trf)
  1632. {
  1633. int ret;
  1634. ret = trf7970a_power_up(trf);
  1635. if (ret)
  1636. return ret;
  1637. pm_runtime_set_active(trf->dev);
  1638. pm_runtime_enable(trf->dev);
  1639. pm_runtime_mark_last_busy(trf->dev);
  1640. return 0;
  1641. }
  1642. static void trf7970a_shutdown(struct trf7970a *trf)
  1643. {
  1644. switch (trf->state) {
  1645. case TRF7970A_ST_WAIT_FOR_TX_FIFO:
  1646. case TRF7970A_ST_WAIT_FOR_RX_DATA:
  1647. case TRF7970A_ST_WAIT_FOR_RX_DATA_CONT:
  1648. case TRF7970A_ST_WAIT_TO_ISSUE_EOF:
  1649. case TRF7970A_ST_LISTENING:
  1650. trf7970a_send_err_upstream(trf, -ECANCELED);
  1651. /* FALLTHROUGH */
  1652. case TRF7970A_ST_IDLE:
  1653. case TRF7970A_ST_IDLE_RX_BLOCKED:
  1654. trf7970a_switch_rf_off(trf);
  1655. break;
  1656. default:
  1657. break;
  1658. }
  1659. pm_runtime_disable(trf->dev);
  1660. pm_runtime_set_suspended(trf->dev);
  1661. trf7970a_power_down(trf);
  1662. }
  1663. static int trf7970a_get_autosuspend_delay(struct device_node *np)
  1664. {
  1665. int autosuspend_delay, ret;
  1666. ret = of_property_read_u32(np, "autosuspend-delay", &autosuspend_delay);
  1667. if (ret)
  1668. autosuspend_delay = TRF7970A_AUTOSUSPEND_DELAY;
  1669. return autosuspend_delay;
  1670. }
  1671. static int trf7970a_get_vin_voltage_override(struct device_node *np,
  1672. u32 *vin_uvolts)
  1673. {
  1674. return of_property_read_u32(np, "vin-voltage-override", vin_uvolts);
  1675. }
  1676. static int trf7970a_probe(struct spi_device *spi)
  1677. {
  1678. struct device_node *np = spi->dev.of_node;
  1679. struct trf7970a *trf;
  1680. int uvolts, autosuspend_delay, ret;
  1681. u32 clk_freq = TRF7970A_13MHZ_CLOCK_FREQUENCY;
  1682. if (!np) {
  1683. dev_err(&spi->dev, "No Device Tree entry\n");
  1684. return -EINVAL;
  1685. }
  1686. trf = devm_kzalloc(&spi->dev, sizeof(*trf), GFP_KERNEL);
  1687. if (!trf)
  1688. return -ENOMEM;
  1689. trf->state = TRF7970A_ST_PWR_OFF;
  1690. trf->dev = &spi->dev;
  1691. trf->spi = spi;
  1692. spi->mode = SPI_MODE_1;
  1693. spi->bits_per_word = 8;
  1694. ret = spi_setup(spi);
  1695. if (ret < 0) {
  1696. dev_err(trf->dev, "Can't set up SPI Communication\n");
  1697. return ret;
  1698. }
  1699. if (of_property_read_bool(np, "t5t-rmb-extra-byte-quirk"))
  1700. trf->quirks |= TRF7970A_QUIRK_T5T_RMB_EXTRA_BYTE;
  1701. if (of_property_read_bool(np, "irq-status-read-quirk"))
  1702. trf->quirks |= TRF7970A_QUIRK_IRQ_STATUS_READ;
  1703. /* There are two enable pins - both must be present */
  1704. trf->en_gpio = of_get_named_gpio(np, "ti,enable-gpios", 0);
  1705. if (!gpio_is_valid(trf->en_gpio)) {
  1706. dev_err(trf->dev, "No EN GPIO property\n");
  1707. return trf->en_gpio;
  1708. }
  1709. ret = devm_gpio_request_one(trf->dev, trf->en_gpio,
  1710. GPIOF_DIR_OUT | GPIOF_INIT_LOW, "trf7970a EN");
  1711. if (ret) {
  1712. dev_err(trf->dev, "Can't request EN GPIO: %d\n", ret);
  1713. return ret;
  1714. }
  1715. trf->en2_gpio = of_get_named_gpio(np, "ti,enable-gpios", 1);
  1716. if (!gpio_is_valid(trf->en2_gpio)) {
  1717. dev_info(trf->dev, "No EN2 GPIO property\n");
  1718. } else {
  1719. ret = devm_gpio_request_one(trf->dev, trf->en2_gpio,
  1720. GPIOF_DIR_OUT | GPIOF_INIT_LOW, "trf7970a EN2");
  1721. if (ret) {
  1722. dev_err(trf->dev, "Can't request EN2 GPIO: %d\n", ret);
  1723. return ret;
  1724. }
  1725. }
  1726. of_property_read_u32(np, "clock-frequency", &clk_freq);
  1727. if ((clk_freq != TRF7970A_27MHZ_CLOCK_FREQUENCY) ||
  1728. (clk_freq != TRF7970A_13MHZ_CLOCK_FREQUENCY)) {
  1729. dev_err(trf->dev,
  1730. "clock-frequency (%u Hz) unsupported\n",
  1731. clk_freq);
  1732. return -EINVAL;
  1733. }
  1734. if (of_property_read_bool(np, "en2-rf-quirk"))
  1735. trf->quirks |= TRF7970A_QUIRK_EN2_MUST_STAY_LOW;
  1736. ret = devm_request_threaded_irq(trf->dev, spi->irq, NULL,
  1737. trf7970a_irq, IRQF_TRIGGER_RISING | IRQF_ONESHOT,
  1738. "trf7970a", trf);
  1739. if (ret) {
  1740. dev_err(trf->dev, "Can't request IRQ#%d: %d\n", spi->irq, ret);
  1741. return ret;
  1742. }
  1743. mutex_init(&trf->lock);
  1744. INIT_DELAYED_WORK(&trf->timeout_work, trf7970a_timeout_work_handler);
  1745. trf->regulator = devm_regulator_get(&spi->dev, "vin");
  1746. if (IS_ERR(trf->regulator)) {
  1747. ret = PTR_ERR(trf->regulator);
  1748. dev_err(trf->dev, "Can't get VIN regulator: %d\n", ret);
  1749. goto err_destroy_lock;
  1750. }
  1751. ret = regulator_enable(trf->regulator);
  1752. if (ret) {
  1753. dev_err(trf->dev, "Can't enable VIN: %d\n", ret);
  1754. goto err_destroy_lock;
  1755. }
  1756. ret = trf7970a_get_vin_voltage_override(np, &uvolts);
  1757. if (ret)
  1758. uvolts = regulator_get_voltage(trf->regulator);
  1759. if (uvolts > 4000000)
  1760. trf->chip_status_ctrl = TRF7970A_CHIP_STATUS_VRS5_3;
  1761. trf->regulator = devm_regulator_get(&spi->dev, "vdd-io");
  1762. if (IS_ERR(trf->regulator)) {
  1763. ret = PTR_ERR(trf->regulator);
  1764. dev_err(trf->dev, "Can't get VDD_IO regulator: %d\n", ret);
  1765. goto err_destroy_lock;
  1766. }
  1767. ret = regulator_enable(trf->regulator);
  1768. if (ret) {
  1769. dev_err(trf->dev, "Can't enable VDD_IO: %d\n", ret);
  1770. goto err_destroy_lock;
  1771. }
  1772. if (regulator_get_voltage(trf->regulator) == 1800000) {
  1773. trf->io_ctrl = TRF7970A_REG_IO_CTRL_IO_LOW;
  1774. dev_dbg(trf->dev, "trf7970a config vdd_io to 1.8V\n");
  1775. }
  1776. trf->ddev = nfc_digital_allocate_device(&trf7970a_nfc_ops,
  1777. TRF7970A_SUPPORTED_PROTOCOLS,
  1778. NFC_DIGITAL_DRV_CAPS_IN_CRC |
  1779. NFC_DIGITAL_DRV_CAPS_TG_CRC, 0, 0);
  1780. if (!trf->ddev) {
  1781. dev_err(trf->dev, "Can't allocate NFC digital device\n");
  1782. ret = -ENOMEM;
  1783. goto err_disable_regulator;
  1784. }
  1785. nfc_digital_set_parent_dev(trf->ddev, trf->dev);
  1786. nfc_digital_set_drvdata(trf->ddev, trf);
  1787. spi_set_drvdata(spi, trf);
  1788. autosuspend_delay = trf7970a_get_autosuspend_delay(np);
  1789. pm_runtime_set_autosuspend_delay(trf->dev, autosuspend_delay);
  1790. pm_runtime_use_autosuspend(trf->dev);
  1791. ret = trf7970a_startup(trf);
  1792. if (ret)
  1793. goto err_free_ddev;
  1794. ret = nfc_digital_register_device(trf->ddev);
  1795. if (ret) {
  1796. dev_err(trf->dev, "Can't register NFC digital device: %d\n",
  1797. ret);
  1798. goto err_shutdown;
  1799. }
  1800. return 0;
  1801. err_shutdown:
  1802. trf7970a_shutdown(trf);
  1803. err_free_ddev:
  1804. nfc_digital_free_device(trf->ddev);
  1805. err_disable_regulator:
  1806. regulator_disable(trf->regulator);
  1807. err_destroy_lock:
  1808. mutex_destroy(&trf->lock);
  1809. return ret;
  1810. }
  1811. static int trf7970a_remove(struct spi_device *spi)
  1812. {
  1813. struct trf7970a *trf = spi_get_drvdata(spi);
  1814. mutex_lock(&trf->lock);
  1815. trf7970a_shutdown(trf);
  1816. mutex_unlock(&trf->lock);
  1817. nfc_digital_unregister_device(trf->ddev);
  1818. nfc_digital_free_device(trf->ddev);
  1819. regulator_disable(trf->regulator);
  1820. mutex_destroy(&trf->lock);
  1821. return 0;
  1822. }
  1823. #ifdef CONFIG_PM_SLEEP
  1824. static int trf7970a_suspend(struct device *dev)
  1825. {
  1826. struct spi_device *spi = to_spi_device(dev);
  1827. struct trf7970a *trf = spi_get_drvdata(spi);
  1828. dev_dbg(dev, "Suspend\n");
  1829. mutex_lock(&trf->lock);
  1830. trf7970a_shutdown(trf);
  1831. mutex_unlock(&trf->lock);
  1832. return 0;
  1833. }
  1834. static int trf7970a_resume(struct device *dev)
  1835. {
  1836. struct spi_device *spi = to_spi_device(dev);
  1837. struct trf7970a *trf = spi_get_drvdata(spi);
  1838. int ret;
  1839. dev_dbg(dev, "Resume\n");
  1840. mutex_lock(&trf->lock);
  1841. ret = trf7970a_startup(trf);
  1842. mutex_unlock(&trf->lock);
  1843. return ret;
  1844. }
  1845. #endif
  1846. #ifdef CONFIG_PM
  1847. static int trf7970a_pm_runtime_suspend(struct device *dev)
  1848. {
  1849. struct spi_device *spi = to_spi_device(dev);
  1850. struct trf7970a *trf = spi_get_drvdata(spi);
  1851. int ret;
  1852. dev_dbg(dev, "Runtime suspend\n");
  1853. mutex_lock(&trf->lock);
  1854. ret = trf7970a_power_down(trf);
  1855. mutex_unlock(&trf->lock);
  1856. return ret;
  1857. }
  1858. static int trf7970a_pm_runtime_resume(struct device *dev)
  1859. {
  1860. struct spi_device *spi = to_spi_device(dev);
  1861. struct trf7970a *trf = spi_get_drvdata(spi);
  1862. int ret;
  1863. dev_dbg(dev, "Runtime resume\n");
  1864. ret = trf7970a_power_up(trf);
  1865. if (!ret)
  1866. pm_runtime_mark_last_busy(dev);
  1867. return ret;
  1868. }
  1869. #endif
  1870. static const struct dev_pm_ops trf7970a_pm_ops = {
  1871. SET_SYSTEM_SLEEP_PM_OPS(trf7970a_suspend, trf7970a_resume)
  1872. SET_RUNTIME_PM_OPS(trf7970a_pm_runtime_suspend,
  1873. trf7970a_pm_runtime_resume, NULL)
  1874. };
  1875. static const struct of_device_id trf7970a_of_match[] = {
  1876. { .compatible = "ti,trf7970a", },
  1877. { /* sentinel */ },
  1878. };
  1879. MODULE_DEVICE_TABLE(of, trf7970a_of_match);
  1880. static const struct spi_device_id trf7970a_id_table[] = {
  1881. { "trf7970a", 0 },
  1882. { }
  1883. };
  1884. MODULE_DEVICE_TABLE(spi, trf7970a_id_table);
  1885. static struct spi_driver trf7970a_spi_driver = {
  1886. .probe = trf7970a_probe,
  1887. .remove = trf7970a_remove,
  1888. .id_table = trf7970a_id_table,
  1889. .driver = {
  1890. .name = "trf7970a",
  1891. .of_match_table = of_match_ptr(trf7970a_of_match),
  1892. .pm = &trf7970a_pm_ops,
  1893. },
  1894. };
  1895. module_spi_driver(trf7970a_spi_driver);
  1896. MODULE_AUTHOR("Mark A. Greer <mgreer@animalcreek.com>");
  1897. MODULE_LICENSE("GPL v2");
  1898. MODULE_DESCRIPTION("TI trf7970a RFID/NFC Transceiver Driver");