cc_driver.c 17 KB

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  1. // SPDX-License-Identifier: GPL-2.0
  2. /* Copyright (C) 2012-2019 ARM Limited or its affiliates. */
  3. #include <linux/kernel.h>
  4. #include <linux/module.h>
  5. #include <linux/crypto.h>
  6. #include <linux/moduleparam.h>
  7. #include <linux/types.h>
  8. #include <linux/interrupt.h>
  9. #include <linux/platform_device.h>
  10. #include <linux/slab.h>
  11. #include <linux/spinlock.h>
  12. #include <linux/of.h>
  13. #include <linux/clk.h>
  14. #include <linux/of_address.h>
  15. #include <linux/pm_runtime.h>
  16. #include "cc_driver.h"
  17. #include "cc_request_mgr.h"
  18. #include "cc_buffer_mgr.h"
  19. #include "cc_debugfs.h"
  20. #include "cc_cipher.h"
  21. #include "cc_aead.h"
  22. #include "cc_hash.h"
  23. #include "cc_sram_mgr.h"
  24. #include "cc_pm.h"
  25. #include "cc_fips.h"
  26. bool cc_dump_desc;
  27. module_param_named(dump_desc, cc_dump_desc, bool, 0600);
  28. MODULE_PARM_DESC(cc_dump_desc, "Dump descriptors to kernel log as debugging aid");
  29. bool cc_dump_bytes;
  30. module_param_named(dump_bytes, cc_dump_bytes, bool, 0600);
  31. MODULE_PARM_DESC(cc_dump_bytes, "Dump buffers to kernel log as debugging aid");
  32. static bool cc_sec_disable;
  33. module_param_named(sec_disable, cc_sec_disable, bool, 0600);
  34. MODULE_PARM_DESC(cc_sec_disable, "Disable security functions");
  35. struct cc_hw_data {
  36. char *name;
  37. enum cc_hw_rev rev;
  38. u32 sig;
  39. u32 cidr_0123;
  40. u32 pidr_0124;
  41. int std_bodies;
  42. };
  43. #define CC_NUM_IDRS 4
  44. #define CC_HW_RESET_LOOP_COUNT 10
  45. /* Note: PIDR3 holds CMOD/Rev so ignored for HW identification purposes */
  46. static const u32 pidr_0124_offsets[CC_NUM_IDRS] = {
  47. CC_REG(PERIPHERAL_ID_0), CC_REG(PERIPHERAL_ID_1),
  48. CC_REG(PERIPHERAL_ID_2), CC_REG(PERIPHERAL_ID_4)
  49. };
  50. static const u32 cidr_0123_offsets[CC_NUM_IDRS] = {
  51. CC_REG(COMPONENT_ID_0), CC_REG(COMPONENT_ID_1),
  52. CC_REG(COMPONENT_ID_2), CC_REG(COMPONENT_ID_3)
  53. };
  54. /* Hardware revisions defs. */
  55. /* The 703 is a OSCCA only variant of the 713 */
  56. static const struct cc_hw_data cc703_hw = {
  57. .name = "703", .rev = CC_HW_REV_713, .cidr_0123 = 0xB105F00DU,
  58. .pidr_0124 = 0x040BB0D0U, .std_bodies = CC_STD_OSCCA
  59. };
  60. static const struct cc_hw_data cc713_hw = {
  61. .name = "713", .rev = CC_HW_REV_713, .cidr_0123 = 0xB105F00DU,
  62. .pidr_0124 = 0x040BB0D0U, .std_bodies = CC_STD_ALL
  63. };
  64. static const struct cc_hw_data cc712_hw = {
  65. .name = "712", .rev = CC_HW_REV_712, .sig = 0xDCC71200U,
  66. .std_bodies = CC_STD_ALL
  67. };
  68. static const struct cc_hw_data cc710_hw = {
  69. .name = "710", .rev = CC_HW_REV_710, .sig = 0xDCC63200U,
  70. .std_bodies = CC_STD_ALL
  71. };
  72. static const struct cc_hw_data cc630p_hw = {
  73. .name = "630P", .rev = CC_HW_REV_630, .sig = 0xDCC63000U,
  74. .std_bodies = CC_STD_ALL
  75. };
  76. static const struct of_device_id arm_ccree_dev_of_match[] = {
  77. { .compatible = "arm,cryptocell-703-ree", .data = &cc703_hw },
  78. { .compatible = "arm,cryptocell-713-ree", .data = &cc713_hw },
  79. { .compatible = "arm,cryptocell-712-ree", .data = &cc712_hw },
  80. { .compatible = "arm,cryptocell-710-ree", .data = &cc710_hw },
  81. { .compatible = "arm,cryptocell-630p-ree", .data = &cc630p_hw },
  82. {}
  83. };
  84. MODULE_DEVICE_TABLE(of, arm_ccree_dev_of_match);
  85. static void init_cc_cache_params(struct cc_drvdata *drvdata)
  86. {
  87. struct device *dev = drvdata_to_dev(drvdata);
  88. u32 cache_params, ace_const, val;
  89. u64 mask;
  90. /* compute CC_AXIM_CACHE_PARAMS */
  91. cache_params = cc_ioread(drvdata, CC_REG(AXIM_CACHE_PARAMS));
  92. dev_dbg(dev, "Cache params previous: 0x%08X\n", cache_params);
  93. /* non cached or write-back, write allocate */
  94. val = drvdata->coherent ? 0xb : 0x2;
  95. mask = CC_GENMASK(CC_AXIM_CACHE_PARAMS_AWCACHE);
  96. cache_params &= ~mask;
  97. cache_params |= FIELD_PREP(mask, val);
  98. mask = CC_GENMASK(CC_AXIM_CACHE_PARAMS_AWCACHE_LAST);
  99. cache_params &= ~mask;
  100. cache_params |= FIELD_PREP(mask, val);
  101. mask = CC_GENMASK(CC_AXIM_CACHE_PARAMS_ARCACHE);
  102. cache_params &= ~mask;
  103. cache_params |= FIELD_PREP(mask, val);
  104. drvdata->cache_params = cache_params;
  105. dev_dbg(dev, "Cache params current: 0x%08X\n", cache_params);
  106. if (drvdata->hw_rev <= CC_HW_REV_710)
  107. return;
  108. /* compute CC_AXIM_ACE_CONST */
  109. ace_const = cc_ioread(drvdata, CC_REG(AXIM_ACE_CONST));
  110. dev_dbg(dev, "ACE-const previous: 0x%08X\n", ace_const);
  111. /* system or outer-sharable */
  112. val = drvdata->coherent ? 0x2 : 0x3;
  113. mask = CC_GENMASK(CC_AXIM_ACE_CONST_ARDOMAIN);
  114. ace_const &= ~mask;
  115. ace_const |= FIELD_PREP(mask, val);
  116. mask = CC_GENMASK(CC_AXIM_ACE_CONST_AWDOMAIN);
  117. ace_const &= ~mask;
  118. ace_const |= FIELD_PREP(mask, val);
  119. dev_dbg(dev, "ACE-const current: 0x%08X\n", ace_const);
  120. drvdata->ace_const = ace_const;
  121. }
  122. static u32 cc_read_idr(struct cc_drvdata *drvdata, const u32 *idr_offsets)
  123. {
  124. int i;
  125. union {
  126. u8 regs[CC_NUM_IDRS];
  127. __le32 val;
  128. } idr;
  129. for (i = 0; i < CC_NUM_IDRS; ++i)
  130. idr.regs[i] = cc_ioread(drvdata, idr_offsets[i]);
  131. return le32_to_cpu(idr.val);
  132. }
  133. void __dump_byte_array(const char *name, const u8 *buf, size_t len)
  134. {
  135. char prefix[64];
  136. if (!buf)
  137. return;
  138. snprintf(prefix, sizeof(prefix), "%s[%zu]: ", name, len);
  139. print_hex_dump(KERN_DEBUG, prefix, DUMP_PREFIX_ADDRESS, 16, 1, buf,
  140. len, false);
  141. }
  142. static irqreturn_t cc_isr(int irq, void *dev_id)
  143. {
  144. struct cc_drvdata *drvdata = (struct cc_drvdata *)dev_id;
  145. struct device *dev = drvdata_to_dev(drvdata);
  146. u32 irr;
  147. u32 imr;
  148. /* STAT_OP_TYPE_GENERIC STAT_PHASE_0: Interrupt */
  149. /* if driver suspended return, probably shared interrupt */
  150. if (pm_runtime_suspended(dev))
  151. return IRQ_NONE;
  152. /* read the interrupt status */
  153. irr = cc_ioread(drvdata, CC_REG(HOST_IRR));
  154. dev_dbg(dev, "Got IRR=0x%08X\n", irr);
  155. if (irr == 0) /* Probably shared interrupt line */
  156. return IRQ_NONE;
  157. imr = cc_ioread(drvdata, CC_REG(HOST_IMR));
  158. /* clear interrupt - must be before processing events */
  159. cc_iowrite(drvdata, CC_REG(HOST_ICR), irr);
  160. drvdata->irq = irr;
  161. /* Completion interrupt - most probable */
  162. if (irr & drvdata->comp_mask) {
  163. /* Mask all completion interrupts - will be unmasked in
  164. * deferred service handler
  165. */
  166. cc_iowrite(drvdata, CC_REG(HOST_IMR), imr | drvdata->comp_mask);
  167. irr &= ~drvdata->comp_mask;
  168. complete_request(drvdata);
  169. }
  170. #ifdef CONFIG_CRYPTO_FIPS
  171. /* TEE FIPS interrupt */
  172. if (irr & CC_GPR0_IRQ_MASK) {
  173. /* Mask interrupt - will be unmasked in Deferred service
  174. * handler
  175. */
  176. cc_iowrite(drvdata, CC_REG(HOST_IMR), imr | CC_GPR0_IRQ_MASK);
  177. irr &= ~CC_GPR0_IRQ_MASK;
  178. fips_handler(drvdata);
  179. }
  180. #endif
  181. /* AXI error interrupt */
  182. if (irr & CC_AXI_ERR_IRQ_MASK) {
  183. u32 axi_err;
  184. /* Read the AXI error ID */
  185. axi_err = cc_ioread(drvdata, CC_REG(AXIM_MON_ERR));
  186. dev_dbg(dev, "AXI completion error: axim_mon_err=0x%08X\n",
  187. axi_err);
  188. irr &= ~CC_AXI_ERR_IRQ_MASK;
  189. }
  190. if (irr) {
  191. dev_dbg_ratelimited(dev, "IRR includes unknown cause bits (0x%08X)\n",
  192. irr);
  193. /* Just warning */
  194. }
  195. return IRQ_HANDLED;
  196. }
  197. bool cc_wait_for_reset_completion(struct cc_drvdata *drvdata)
  198. {
  199. unsigned int val;
  200. unsigned int i;
  201. /* 712/710/63 has no reset completion indication, always return true */
  202. if (drvdata->hw_rev <= CC_HW_REV_712)
  203. return true;
  204. for (i = 0; i < CC_HW_RESET_LOOP_COUNT; i++) {
  205. /* in cc7x3 NVM_IS_IDLE indicates that CC reset is
  206. * completed and device is fully functional
  207. */
  208. val = cc_ioread(drvdata, CC_REG(NVM_IS_IDLE));
  209. if (val & CC_NVM_IS_IDLE_MASK) {
  210. /* hw indicate reset completed */
  211. return true;
  212. }
  213. /* allow scheduling other process on the processor */
  214. schedule();
  215. }
  216. /* reset not completed */
  217. return false;
  218. }
  219. int init_cc_regs(struct cc_drvdata *drvdata)
  220. {
  221. unsigned int val;
  222. struct device *dev = drvdata_to_dev(drvdata);
  223. /* Unmask all AXI interrupt sources AXI_CFG1 register */
  224. /* AXI interrupt config are obsoleted startign at cc7x3 */
  225. if (drvdata->hw_rev <= CC_HW_REV_712) {
  226. val = cc_ioread(drvdata, CC_REG(AXIM_CFG));
  227. cc_iowrite(drvdata, CC_REG(AXIM_CFG), val & ~CC_AXI_IRQ_MASK);
  228. dev_dbg(dev, "AXIM_CFG=0x%08X\n",
  229. cc_ioread(drvdata, CC_REG(AXIM_CFG)));
  230. }
  231. /* Clear all pending interrupts */
  232. val = cc_ioread(drvdata, CC_REG(HOST_IRR));
  233. dev_dbg(dev, "IRR=0x%08X\n", val);
  234. cc_iowrite(drvdata, CC_REG(HOST_ICR), val);
  235. /* Unmask relevant interrupt cause */
  236. val = drvdata->comp_mask | CC_AXI_ERR_IRQ_MASK;
  237. if (drvdata->hw_rev >= CC_HW_REV_712)
  238. val |= CC_GPR0_IRQ_MASK;
  239. cc_iowrite(drvdata, CC_REG(HOST_IMR), ~val);
  240. cc_iowrite(drvdata, CC_REG(AXIM_CACHE_PARAMS), drvdata->cache_params);
  241. if (drvdata->hw_rev >= CC_HW_REV_712)
  242. cc_iowrite(drvdata, CC_REG(AXIM_ACE_CONST), drvdata->ace_const);
  243. return 0;
  244. }
  245. static int init_cc_resources(struct platform_device *plat_dev)
  246. {
  247. struct resource *req_mem_cc_regs = NULL;
  248. struct cc_drvdata *new_drvdata;
  249. struct device *dev = &plat_dev->dev;
  250. struct device_node *np = dev->of_node;
  251. u32 val, hw_rev_pidr, sig_cidr;
  252. u64 dma_mask;
  253. const struct cc_hw_data *hw_rev;
  254. struct clk *clk;
  255. int irq;
  256. int rc = 0;
  257. new_drvdata = devm_kzalloc(dev, sizeof(*new_drvdata), GFP_KERNEL);
  258. if (!new_drvdata)
  259. return -ENOMEM;
  260. hw_rev = of_device_get_match_data(dev);
  261. new_drvdata->hw_rev_name = hw_rev->name;
  262. new_drvdata->hw_rev = hw_rev->rev;
  263. new_drvdata->std_bodies = hw_rev->std_bodies;
  264. if (hw_rev->rev >= CC_HW_REV_712) {
  265. new_drvdata->axim_mon_offset = CC_REG(AXIM_MON_COMP);
  266. new_drvdata->sig_offset = CC_REG(HOST_SIGNATURE_712);
  267. new_drvdata->ver_offset = CC_REG(HOST_VERSION_712);
  268. } else {
  269. new_drvdata->axim_mon_offset = CC_REG(AXIM_MON_COMP8);
  270. new_drvdata->sig_offset = CC_REG(HOST_SIGNATURE_630);
  271. new_drvdata->ver_offset = CC_REG(HOST_VERSION_630);
  272. }
  273. new_drvdata->comp_mask = CC_COMP_IRQ_MASK;
  274. platform_set_drvdata(plat_dev, new_drvdata);
  275. new_drvdata->plat_dev = plat_dev;
  276. clk = devm_clk_get_optional(dev, NULL);
  277. if (IS_ERR(clk))
  278. return dev_err_probe(dev, PTR_ERR(clk), "Error getting clock\n");
  279. new_drvdata->clk = clk;
  280. new_drvdata->coherent = of_dma_is_coherent(np);
  281. /* Get device resources */
  282. /* First CC registers space */
  283. /* Map registers space */
  284. new_drvdata->cc_base = devm_platform_get_and_ioremap_resource(plat_dev,
  285. 0, &req_mem_cc_regs);
  286. if (IS_ERR(new_drvdata->cc_base))
  287. return PTR_ERR(new_drvdata->cc_base);
  288. dev_dbg(dev, "Got MEM resource (%s): %pR\n", req_mem_cc_regs->name,
  289. req_mem_cc_regs);
  290. dev_dbg(dev, "CC registers mapped from %pa to 0x%p\n",
  291. &req_mem_cc_regs->start, new_drvdata->cc_base);
  292. /* Then IRQ */
  293. irq = platform_get_irq(plat_dev, 0);
  294. if (irq < 0)
  295. return irq;
  296. init_completion(&new_drvdata->hw_queue_avail);
  297. if (!dev->dma_mask)
  298. dev->dma_mask = &dev->coherent_dma_mask;
  299. dma_mask = DMA_BIT_MASK(DMA_BIT_MASK_LEN);
  300. rc = dma_set_coherent_mask(dev, dma_mask);
  301. if (rc) {
  302. dev_err(dev, "Failed in dma_set_coherent_mask, mask=%llx\n",
  303. dma_mask);
  304. return rc;
  305. }
  306. rc = clk_prepare_enable(new_drvdata->clk);
  307. if (rc) {
  308. dev_err(dev, "Failed to enable clock");
  309. return rc;
  310. }
  311. new_drvdata->sec_disabled = cc_sec_disable;
  312. pm_runtime_set_autosuspend_delay(dev, CC_SUSPEND_TIMEOUT);
  313. pm_runtime_use_autosuspend(dev);
  314. pm_runtime_set_active(dev);
  315. pm_runtime_enable(dev);
  316. rc = pm_runtime_get_sync(dev);
  317. if (rc < 0) {
  318. dev_err(dev, "pm_runtime_get_sync() failed: %d\n", rc);
  319. goto post_pm_err;
  320. }
  321. /* Wait for Cryptocell reset completion */
  322. if (!cc_wait_for_reset_completion(new_drvdata)) {
  323. dev_err(dev, "Cryptocell reset not completed");
  324. }
  325. if (hw_rev->rev <= CC_HW_REV_712) {
  326. /* Verify correct mapping */
  327. val = cc_ioread(new_drvdata, new_drvdata->sig_offset);
  328. if (val != hw_rev->sig) {
  329. dev_err(dev, "Invalid CC signature: SIGNATURE=0x%08X != expected=0x%08X\n",
  330. val, hw_rev->sig);
  331. rc = -EINVAL;
  332. goto post_pm_err;
  333. }
  334. sig_cidr = val;
  335. hw_rev_pidr = cc_ioread(new_drvdata, new_drvdata->ver_offset);
  336. } else {
  337. /* Verify correct mapping */
  338. val = cc_read_idr(new_drvdata, pidr_0124_offsets);
  339. if (val != hw_rev->pidr_0124) {
  340. dev_err(dev, "Invalid CC PIDR: PIDR0124=0x%08X != expected=0x%08X\n",
  341. val, hw_rev->pidr_0124);
  342. rc = -EINVAL;
  343. goto post_pm_err;
  344. }
  345. hw_rev_pidr = val;
  346. val = cc_read_idr(new_drvdata, cidr_0123_offsets);
  347. if (val != hw_rev->cidr_0123) {
  348. dev_err(dev, "Invalid CC CIDR: CIDR0123=0x%08X != expected=0x%08X\n",
  349. val, hw_rev->cidr_0123);
  350. rc = -EINVAL;
  351. goto post_pm_err;
  352. }
  353. sig_cidr = val;
  354. /* Check HW engine configuration */
  355. val = cc_ioread(new_drvdata, CC_REG(HOST_REMOVE_INPUT_PINS));
  356. switch (val) {
  357. case CC_PINS_FULL:
  358. /* This is fine */
  359. break;
  360. case CC_PINS_SLIM:
  361. if (new_drvdata->std_bodies & CC_STD_NIST) {
  362. dev_warn(dev, "703 mode forced due to HW configuration.\n");
  363. new_drvdata->std_bodies = CC_STD_OSCCA;
  364. }
  365. break;
  366. default:
  367. dev_err(dev, "Unsupported engines configuration.\n");
  368. rc = -EINVAL;
  369. goto post_pm_err;
  370. }
  371. /* Check security disable state */
  372. val = cc_ioread(new_drvdata, CC_REG(SECURITY_DISABLED));
  373. val &= CC_SECURITY_DISABLED_MASK;
  374. new_drvdata->sec_disabled |= !!val;
  375. if (!new_drvdata->sec_disabled) {
  376. new_drvdata->comp_mask |= CC_CPP_SM4_ABORT_MASK;
  377. if (new_drvdata->std_bodies & CC_STD_NIST)
  378. new_drvdata->comp_mask |= CC_CPP_AES_ABORT_MASK;
  379. }
  380. }
  381. if (new_drvdata->sec_disabled)
  382. dev_info(dev, "Security Disabled mode is in effect. Security functions disabled.\n");
  383. /* Display HW versions */
  384. dev_info(dev, "ARM CryptoCell %s Driver: HW version 0x%08X/0x%8X, Driver version %s\n",
  385. hw_rev->name, hw_rev_pidr, sig_cidr, DRV_MODULE_VERSION);
  386. /* register the driver isr function */
  387. rc = devm_request_irq(dev, irq, cc_isr, IRQF_SHARED, "ccree",
  388. new_drvdata);
  389. if (rc) {
  390. dev_err(dev, "Could not register to interrupt %d\n", irq);
  391. goto post_pm_err;
  392. }
  393. dev_dbg(dev, "Registered to IRQ: %d\n", irq);
  394. init_cc_cache_params(new_drvdata);
  395. rc = init_cc_regs(new_drvdata);
  396. if (rc) {
  397. dev_err(dev, "init_cc_regs failed\n");
  398. goto post_pm_err;
  399. }
  400. rc = cc_debugfs_init(new_drvdata);
  401. if (rc) {
  402. dev_err(dev, "Failed registering debugfs interface\n");
  403. goto post_regs_err;
  404. }
  405. rc = cc_fips_init(new_drvdata);
  406. if (rc) {
  407. dev_err(dev, "cc_fips_init failed 0x%x\n", rc);
  408. goto post_debugfs_err;
  409. }
  410. rc = cc_sram_mgr_init(new_drvdata);
  411. if (rc) {
  412. dev_err(dev, "cc_sram_mgr_init failed\n");
  413. goto post_fips_init_err;
  414. }
  415. new_drvdata->mlli_sram_addr =
  416. cc_sram_alloc(new_drvdata, MAX_MLLI_BUFF_SIZE);
  417. if (new_drvdata->mlli_sram_addr == NULL_SRAM_ADDR) {
  418. rc = -ENOMEM;
  419. goto post_fips_init_err;
  420. }
  421. rc = cc_req_mgr_init(new_drvdata);
  422. if (rc) {
  423. dev_err(dev, "cc_req_mgr_init failed\n");
  424. goto post_fips_init_err;
  425. }
  426. rc = cc_buffer_mgr_init(new_drvdata);
  427. if (rc) {
  428. dev_err(dev, "cc_buffer_mgr_init failed\n");
  429. goto post_req_mgr_err;
  430. }
  431. /* hash must be allocated first due to use of send_request_init()
  432. * and dependency of AEAD on it
  433. */
  434. rc = cc_hash_alloc(new_drvdata);
  435. if (rc) {
  436. dev_err(dev, "cc_hash_alloc failed\n");
  437. goto post_buf_mgr_err;
  438. }
  439. /* Allocate crypto algs */
  440. rc = cc_cipher_alloc(new_drvdata);
  441. if (rc) {
  442. dev_err(dev, "cc_cipher_alloc failed\n");
  443. goto post_hash_err;
  444. }
  445. rc = cc_aead_alloc(new_drvdata);
  446. if (rc) {
  447. dev_err(dev, "cc_aead_alloc failed\n");
  448. goto post_cipher_err;
  449. }
  450. /* If we got here and FIPS mode is enabled
  451. * it means all FIPS test passed, so let TEE
  452. * know we're good.
  453. */
  454. cc_set_ree_fips_status(new_drvdata, true);
  455. pm_runtime_put(dev);
  456. return 0;
  457. post_cipher_err:
  458. cc_cipher_free(new_drvdata);
  459. post_hash_err:
  460. cc_hash_free(new_drvdata);
  461. post_buf_mgr_err:
  462. cc_buffer_mgr_fini(new_drvdata);
  463. post_req_mgr_err:
  464. cc_req_mgr_fini(new_drvdata);
  465. post_fips_init_err:
  466. cc_fips_fini(new_drvdata);
  467. post_debugfs_err:
  468. cc_debugfs_fini(new_drvdata);
  469. post_regs_err:
  470. fini_cc_regs(new_drvdata);
  471. post_pm_err:
  472. pm_runtime_put_noidle(dev);
  473. pm_runtime_disable(dev);
  474. pm_runtime_set_suspended(dev);
  475. clk_disable_unprepare(new_drvdata->clk);
  476. return rc;
  477. }
  478. void fini_cc_regs(struct cc_drvdata *drvdata)
  479. {
  480. /* Mask all interrupts */
  481. cc_iowrite(drvdata, CC_REG(HOST_IMR), 0xFFFFFFFF);
  482. }
  483. static void cleanup_cc_resources(struct platform_device *plat_dev)
  484. {
  485. struct device *dev = &plat_dev->dev;
  486. struct cc_drvdata *drvdata =
  487. (struct cc_drvdata *)platform_get_drvdata(plat_dev);
  488. cc_aead_free(drvdata);
  489. cc_cipher_free(drvdata);
  490. cc_hash_free(drvdata);
  491. cc_buffer_mgr_fini(drvdata);
  492. cc_req_mgr_fini(drvdata);
  493. cc_fips_fini(drvdata);
  494. cc_debugfs_fini(drvdata);
  495. fini_cc_regs(drvdata);
  496. pm_runtime_put_noidle(dev);
  497. pm_runtime_disable(dev);
  498. pm_runtime_set_suspended(dev);
  499. clk_disable_unprepare(drvdata->clk);
  500. }
  501. unsigned int cc_get_default_hash_len(struct cc_drvdata *drvdata)
  502. {
  503. if (drvdata->hw_rev >= CC_HW_REV_712)
  504. return HASH_LEN_SIZE_712;
  505. else
  506. return HASH_LEN_SIZE_630;
  507. }
  508. static int ccree_probe(struct platform_device *plat_dev)
  509. {
  510. int rc;
  511. struct device *dev = &plat_dev->dev;
  512. /* Map registers space */
  513. rc = init_cc_resources(plat_dev);
  514. if (rc)
  515. return rc;
  516. dev_info(dev, "ARM ccree device initialized\n");
  517. return 0;
  518. }
  519. static void ccree_remove(struct platform_device *plat_dev)
  520. {
  521. struct device *dev = &plat_dev->dev;
  522. dev_dbg(dev, "Releasing ccree resources...\n");
  523. cleanup_cc_resources(plat_dev);
  524. dev_info(dev, "ARM ccree device terminated\n");
  525. }
  526. static struct platform_driver ccree_driver = {
  527. .driver = {
  528. .name = "ccree",
  529. .of_match_table = arm_ccree_dev_of_match,
  530. #ifdef CONFIG_PM
  531. .pm = &ccree_pm,
  532. #endif
  533. },
  534. .probe = ccree_probe,
  535. .remove = ccree_remove,
  536. };
  537. static int __init ccree_init(void)
  538. {
  539. int rc;
  540. cc_debugfs_global_init();
  541. rc = platform_driver_register(&ccree_driver);
  542. if (rc) {
  543. cc_debugfs_global_fini();
  544. return rc;
  545. }
  546. return 0;
  547. }
  548. module_init(ccree_init);
  549. static void __exit ccree_exit(void)
  550. {
  551. platform_driver_unregister(&ccree_driver);
  552. cc_debugfs_global_fini();
  553. }
  554. module_exit(ccree_exit);
  555. /* Module description */
  556. MODULE_DESCRIPTION("ARM TrustZone CryptoCell REE Driver");
  557. MODULE_VERSION(DRV_MODULE_VERSION);
  558. MODULE_AUTHOR("ARM");
  559. MODULE_LICENSE("GPL v2");