talitos.c 86 KB

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  1. /*
  2. * talitos - Freescale Integrated Security Engine (SEC) device driver
  3. *
  4. * Copyright (c) 2008-2011 Freescale Semiconductor, Inc.
  5. *
  6. * Scatterlist Crypto API glue code copied from files with the following:
  7. * Copyright (c) 2006-2007 Herbert Xu <herbert@gondor.apana.org.au>
  8. *
  9. * Crypto algorithm registration code copied from hifn driver:
  10. * 2007+ Copyright (c) Evgeniy Polyakov <johnpol@2ka.mipt.ru>
  11. * All rights reserved.
  12. *
  13. * This program is free software; you can redistribute it and/or modify
  14. * it under the terms of the GNU General Public License as published by
  15. * the Free Software Foundation; either version 2 of the License, or
  16. * (at your option) any later version.
  17. *
  18. * This program is distributed in the hope that it will be useful,
  19. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  20. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  21. * GNU General Public License for more details.
  22. *
  23. * You should have received a copy of the GNU General Public License
  24. * along with this program; if not, write to the Free Software
  25. * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
  26. */
  27. #include <linux/kernel.h>
  28. #include <linux/module.h>
  29. #include <linux/mod_devicetable.h>
  30. #include <linux/device.h>
  31. #include <linux/interrupt.h>
  32. #include <linux/crypto.h>
  33. #include <linux/hw_random.h>
  34. #include <linux/of_address.h>
  35. #include <linux/of_irq.h>
  36. #include <linux/of_platform.h>
  37. #include <linux/dma-mapping.h>
  38. #include <linux/io.h>
  39. #include <linux/spinlock.h>
  40. #include <linux/rtnetlink.h>
  41. #include <linux/slab.h>
  42. #include <crypto/algapi.h>
  43. #include <crypto/aes.h>
  44. #include <crypto/des.h>
  45. #include <crypto/sha.h>
  46. #include <crypto/md5.h>
  47. #include <crypto/internal/aead.h>
  48. #include <crypto/authenc.h>
  49. #include <crypto/skcipher.h>
  50. #include <crypto/hash.h>
  51. #include <crypto/internal/hash.h>
  52. #include <crypto/scatterwalk.h>
  53. #include "talitos.h"
  54. static void to_talitos_ptr(struct talitos_ptr *ptr, dma_addr_t dma_addr,
  55. bool is_sec1)
  56. {
  57. ptr->ptr = cpu_to_be32(lower_32_bits(dma_addr));
  58. if (!is_sec1)
  59. ptr->eptr = upper_32_bits(dma_addr);
  60. }
  61. static void to_talitos_ptr_len(struct talitos_ptr *ptr, unsigned int len,
  62. bool is_sec1)
  63. {
  64. if (is_sec1) {
  65. ptr->res = 0;
  66. ptr->len1 = cpu_to_be16(len);
  67. } else {
  68. ptr->len = cpu_to_be16(len);
  69. }
  70. }
  71. static unsigned short from_talitos_ptr_len(struct talitos_ptr *ptr,
  72. bool is_sec1)
  73. {
  74. if (is_sec1)
  75. return be16_to_cpu(ptr->len1);
  76. else
  77. return be16_to_cpu(ptr->len);
  78. }
  79. static void to_talitos_ptr_extent_clear(struct talitos_ptr *ptr, bool is_sec1)
  80. {
  81. if (!is_sec1)
  82. ptr->j_extent = 0;
  83. }
  84. /*
  85. * map virtual single (contiguous) pointer to h/w descriptor pointer
  86. */
  87. static void map_single_talitos_ptr(struct device *dev,
  88. struct talitos_ptr *ptr,
  89. unsigned int len, void *data,
  90. enum dma_data_direction dir)
  91. {
  92. dma_addr_t dma_addr = dma_map_single(dev, data, len, dir);
  93. struct talitos_private *priv = dev_get_drvdata(dev);
  94. bool is_sec1 = has_ftr_sec1(priv);
  95. to_talitos_ptr_len(ptr, len, is_sec1);
  96. to_talitos_ptr(ptr, dma_addr, is_sec1);
  97. to_talitos_ptr_extent_clear(ptr, is_sec1);
  98. }
  99. /*
  100. * unmap bus single (contiguous) h/w descriptor pointer
  101. */
  102. static void unmap_single_talitos_ptr(struct device *dev,
  103. struct talitos_ptr *ptr,
  104. enum dma_data_direction dir)
  105. {
  106. struct talitos_private *priv = dev_get_drvdata(dev);
  107. bool is_sec1 = has_ftr_sec1(priv);
  108. dma_unmap_single(dev, be32_to_cpu(ptr->ptr),
  109. from_talitos_ptr_len(ptr, is_sec1), dir);
  110. }
  111. static int reset_channel(struct device *dev, int ch)
  112. {
  113. struct talitos_private *priv = dev_get_drvdata(dev);
  114. unsigned int timeout = TALITOS_TIMEOUT;
  115. bool is_sec1 = has_ftr_sec1(priv);
  116. if (is_sec1) {
  117. setbits32(priv->chan[ch].reg + TALITOS_CCCR_LO,
  118. TALITOS1_CCCR_LO_RESET);
  119. while ((in_be32(priv->chan[ch].reg + TALITOS_CCCR_LO) &
  120. TALITOS1_CCCR_LO_RESET) && --timeout)
  121. cpu_relax();
  122. } else {
  123. setbits32(priv->chan[ch].reg + TALITOS_CCCR,
  124. TALITOS2_CCCR_RESET);
  125. while ((in_be32(priv->chan[ch].reg + TALITOS_CCCR) &
  126. TALITOS2_CCCR_RESET) && --timeout)
  127. cpu_relax();
  128. }
  129. if (timeout == 0) {
  130. dev_err(dev, "failed to reset channel %d\n", ch);
  131. return -EIO;
  132. }
  133. /* set 36-bit addressing, done writeback enable and done IRQ enable */
  134. setbits32(priv->chan[ch].reg + TALITOS_CCCR_LO, TALITOS_CCCR_LO_EAE |
  135. TALITOS_CCCR_LO_CDWE | TALITOS_CCCR_LO_CDIE);
  136. /* and ICCR writeback, if available */
  137. if (priv->features & TALITOS_FTR_HW_AUTH_CHECK)
  138. setbits32(priv->chan[ch].reg + TALITOS_CCCR_LO,
  139. TALITOS_CCCR_LO_IWSE);
  140. return 0;
  141. }
  142. static int reset_device(struct device *dev)
  143. {
  144. struct talitos_private *priv = dev_get_drvdata(dev);
  145. unsigned int timeout = TALITOS_TIMEOUT;
  146. bool is_sec1 = has_ftr_sec1(priv);
  147. u32 mcr = is_sec1 ? TALITOS1_MCR_SWR : TALITOS2_MCR_SWR;
  148. setbits32(priv->reg + TALITOS_MCR, mcr);
  149. while ((in_be32(priv->reg + TALITOS_MCR) & mcr)
  150. && --timeout)
  151. cpu_relax();
  152. if (priv->irq[1]) {
  153. mcr = TALITOS_MCR_RCA1 | TALITOS_MCR_RCA3;
  154. setbits32(priv->reg + TALITOS_MCR, mcr);
  155. }
  156. if (timeout == 0) {
  157. dev_err(dev, "failed to reset device\n");
  158. return -EIO;
  159. }
  160. return 0;
  161. }
  162. /*
  163. * Reset and initialize the device
  164. */
  165. static int init_device(struct device *dev)
  166. {
  167. struct talitos_private *priv = dev_get_drvdata(dev);
  168. int ch, err;
  169. bool is_sec1 = has_ftr_sec1(priv);
  170. /*
  171. * Master reset
  172. * errata documentation: warning: certain SEC interrupts
  173. * are not fully cleared by writing the MCR:SWR bit,
  174. * set bit twice to completely reset
  175. */
  176. err = reset_device(dev);
  177. if (err)
  178. return err;
  179. err = reset_device(dev);
  180. if (err)
  181. return err;
  182. /* reset channels */
  183. for (ch = 0; ch < priv->num_channels; ch++) {
  184. err = reset_channel(dev, ch);
  185. if (err)
  186. return err;
  187. }
  188. /* enable channel done and error interrupts */
  189. if (is_sec1) {
  190. clrbits32(priv->reg + TALITOS_IMR, TALITOS1_IMR_INIT);
  191. clrbits32(priv->reg + TALITOS_IMR_LO, TALITOS1_IMR_LO_INIT);
  192. /* disable parity error check in DEU (erroneous? test vect.) */
  193. setbits32(priv->reg_deu + TALITOS_EUICR, TALITOS1_DEUICR_KPE);
  194. } else {
  195. setbits32(priv->reg + TALITOS_IMR, TALITOS2_IMR_INIT);
  196. setbits32(priv->reg + TALITOS_IMR_LO, TALITOS2_IMR_LO_INIT);
  197. }
  198. /* disable integrity check error interrupts (use writeback instead) */
  199. if (priv->features & TALITOS_FTR_HW_AUTH_CHECK)
  200. setbits32(priv->reg_mdeu + TALITOS_EUICR_LO,
  201. TALITOS_MDEUICR_LO_ICE);
  202. return 0;
  203. }
  204. /**
  205. * talitos_submit - submits a descriptor to the device for processing
  206. * @dev: the SEC device to be used
  207. * @ch: the SEC device channel to be used
  208. * @desc: the descriptor to be processed by the device
  209. * @callback: whom to call when processing is complete
  210. * @context: a handle for use by caller (optional)
  211. *
  212. * desc must contain valid dma-mapped (bus physical) address pointers.
  213. * callback must check err and feedback in descriptor header
  214. * for device processing status.
  215. */
  216. int talitos_submit(struct device *dev, int ch, struct talitos_desc *desc,
  217. void (*callback)(struct device *dev,
  218. struct talitos_desc *desc,
  219. void *context, int error),
  220. void *context)
  221. {
  222. struct talitos_private *priv = dev_get_drvdata(dev);
  223. struct talitos_request *request;
  224. unsigned long flags;
  225. int head;
  226. bool is_sec1 = has_ftr_sec1(priv);
  227. spin_lock_irqsave(&priv->chan[ch].head_lock, flags);
  228. if (!atomic_inc_not_zero(&priv->chan[ch].submit_count)) {
  229. /* h/w fifo is full */
  230. spin_unlock_irqrestore(&priv->chan[ch].head_lock, flags);
  231. return -EAGAIN;
  232. }
  233. head = priv->chan[ch].head;
  234. request = &priv->chan[ch].fifo[head];
  235. /* map descriptor and save caller data */
  236. if (is_sec1) {
  237. desc->hdr1 = desc->hdr;
  238. desc->next_desc = 0;
  239. request->dma_desc = dma_map_single(dev, &desc->hdr1,
  240. TALITOS_DESC_SIZE,
  241. DMA_BIDIRECTIONAL);
  242. } else {
  243. request->dma_desc = dma_map_single(dev, desc,
  244. TALITOS_DESC_SIZE,
  245. DMA_BIDIRECTIONAL);
  246. }
  247. request->callback = callback;
  248. request->context = context;
  249. /* increment fifo head */
  250. priv->chan[ch].head = (priv->chan[ch].head + 1) & (priv->fifo_len - 1);
  251. smp_wmb();
  252. request->desc = desc;
  253. /* GO! */
  254. wmb();
  255. out_be32(priv->chan[ch].reg + TALITOS_FF,
  256. upper_32_bits(request->dma_desc));
  257. out_be32(priv->chan[ch].reg + TALITOS_FF_LO,
  258. lower_32_bits(request->dma_desc));
  259. spin_unlock_irqrestore(&priv->chan[ch].head_lock, flags);
  260. return -EINPROGRESS;
  261. }
  262. EXPORT_SYMBOL(talitos_submit);
  263. /*
  264. * process what was done, notify callback of error if not
  265. */
  266. static void flush_channel(struct device *dev, int ch, int error, int reset_ch)
  267. {
  268. struct talitos_private *priv = dev_get_drvdata(dev);
  269. struct talitos_request *request, saved_req;
  270. unsigned long flags;
  271. int tail, status;
  272. bool is_sec1 = has_ftr_sec1(priv);
  273. spin_lock_irqsave(&priv->chan[ch].tail_lock, flags);
  274. tail = priv->chan[ch].tail;
  275. while (priv->chan[ch].fifo[tail].desc) {
  276. __be32 hdr;
  277. request = &priv->chan[ch].fifo[tail];
  278. /* descriptors with their done bits set don't get the error */
  279. rmb();
  280. hdr = is_sec1 ? request->desc->hdr1 : request->desc->hdr;
  281. if ((hdr & DESC_HDR_DONE) == DESC_HDR_DONE)
  282. status = 0;
  283. else
  284. if (!error)
  285. break;
  286. else
  287. status = error;
  288. dma_unmap_single(dev, request->dma_desc,
  289. TALITOS_DESC_SIZE,
  290. DMA_BIDIRECTIONAL);
  291. /* copy entries so we can call callback outside lock */
  292. saved_req.desc = request->desc;
  293. saved_req.callback = request->callback;
  294. saved_req.context = request->context;
  295. /* release request entry in fifo */
  296. smp_wmb();
  297. request->desc = NULL;
  298. /* increment fifo tail */
  299. priv->chan[ch].tail = (tail + 1) & (priv->fifo_len - 1);
  300. spin_unlock_irqrestore(&priv->chan[ch].tail_lock, flags);
  301. atomic_dec(&priv->chan[ch].submit_count);
  302. saved_req.callback(dev, saved_req.desc, saved_req.context,
  303. status);
  304. /* channel may resume processing in single desc error case */
  305. if (error && !reset_ch && status == error)
  306. return;
  307. spin_lock_irqsave(&priv->chan[ch].tail_lock, flags);
  308. tail = priv->chan[ch].tail;
  309. }
  310. spin_unlock_irqrestore(&priv->chan[ch].tail_lock, flags);
  311. }
  312. /*
  313. * process completed requests for channels that have done status
  314. */
  315. #define DEF_TALITOS1_DONE(name, ch_done_mask) \
  316. static void talitos1_done_##name(unsigned long data) \
  317. { \
  318. struct device *dev = (struct device *)data; \
  319. struct talitos_private *priv = dev_get_drvdata(dev); \
  320. unsigned long flags; \
  321. \
  322. if (ch_done_mask & 0x10000000) \
  323. flush_channel(dev, 0, 0, 0); \
  324. if (priv->num_channels == 1) \
  325. goto out; \
  326. if (ch_done_mask & 0x40000000) \
  327. flush_channel(dev, 1, 0, 0); \
  328. if (ch_done_mask & 0x00010000) \
  329. flush_channel(dev, 2, 0, 0); \
  330. if (ch_done_mask & 0x00040000) \
  331. flush_channel(dev, 3, 0, 0); \
  332. \
  333. out: \
  334. /* At this point, all completed channels have been processed */ \
  335. /* Unmask done interrupts for channels completed later on. */ \
  336. spin_lock_irqsave(&priv->reg_lock, flags); \
  337. clrbits32(priv->reg + TALITOS_IMR, ch_done_mask); \
  338. clrbits32(priv->reg + TALITOS_IMR_LO, TALITOS1_IMR_LO_INIT); \
  339. spin_unlock_irqrestore(&priv->reg_lock, flags); \
  340. }
  341. DEF_TALITOS1_DONE(4ch, TALITOS1_ISR_4CHDONE)
  342. #define DEF_TALITOS2_DONE(name, ch_done_mask) \
  343. static void talitos2_done_##name(unsigned long data) \
  344. { \
  345. struct device *dev = (struct device *)data; \
  346. struct talitos_private *priv = dev_get_drvdata(dev); \
  347. unsigned long flags; \
  348. \
  349. if (ch_done_mask & 1) \
  350. flush_channel(dev, 0, 0, 0); \
  351. if (priv->num_channels == 1) \
  352. goto out; \
  353. if (ch_done_mask & (1 << 2)) \
  354. flush_channel(dev, 1, 0, 0); \
  355. if (ch_done_mask & (1 << 4)) \
  356. flush_channel(dev, 2, 0, 0); \
  357. if (ch_done_mask & (1 << 6)) \
  358. flush_channel(dev, 3, 0, 0); \
  359. \
  360. out: \
  361. /* At this point, all completed channels have been processed */ \
  362. /* Unmask done interrupts for channels completed later on. */ \
  363. spin_lock_irqsave(&priv->reg_lock, flags); \
  364. setbits32(priv->reg + TALITOS_IMR, ch_done_mask); \
  365. setbits32(priv->reg + TALITOS_IMR_LO, TALITOS2_IMR_LO_INIT); \
  366. spin_unlock_irqrestore(&priv->reg_lock, flags); \
  367. }
  368. DEF_TALITOS2_DONE(4ch, TALITOS2_ISR_4CHDONE)
  369. DEF_TALITOS2_DONE(ch0_2, TALITOS2_ISR_CH_0_2_DONE)
  370. DEF_TALITOS2_DONE(ch1_3, TALITOS2_ISR_CH_1_3_DONE)
  371. /*
  372. * locate current (offending) descriptor
  373. */
  374. static u32 current_desc_hdr(struct device *dev, int ch)
  375. {
  376. struct talitos_private *priv = dev_get_drvdata(dev);
  377. int tail, iter;
  378. dma_addr_t cur_desc;
  379. cur_desc = ((u64)in_be32(priv->chan[ch].reg + TALITOS_CDPR)) << 32;
  380. cur_desc |= in_be32(priv->chan[ch].reg + TALITOS_CDPR_LO);
  381. if (!cur_desc) {
  382. dev_err(dev, "CDPR is NULL, giving up search for offending descriptor\n");
  383. return 0;
  384. }
  385. tail = priv->chan[ch].tail;
  386. iter = tail;
  387. while (priv->chan[ch].fifo[iter].dma_desc != cur_desc) {
  388. iter = (iter + 1) & (priv->fifo_len - 1);
  389. if (iter == tail) {
  390. dev_err(dev, "couldn't locate current descriptor\n");
  391. return 0;
  392. }
  393. }
  394. return priv->chan[ch].fifo[iter].desc->hdr;
  395. }
  396. /*
  397. * user diagnostics; report root cause of error based on execution unit status
  398. */
  399. static void report_eu_error(struct device *dev, int ch, u32 desc_hdr)
  400. {
  401. struct talitos_private *priv = dev_get_drvdata(dev);
  402. int i;
  403. if (!desc_hdr)
  404. desc_hdr = in_be32(priv->chan[ch].reg + TALITOS_DESCBUF);
  405. switch (desc_hdr & DESC_HDR_SEL0_MASK) {
  406. case DESC_HDR_SEL0_AFEU:
  407. dev_err(dev, "AFEUISR 0x%08x_%08x\n",
  408. in_be32(priv->reg_afeu + TALITOS_EUISR),
  409. in_be32(priv->reg_afeu + TALITOS_EUISR_LO));
  410. break;
  411. case DESC_HDR_SEL0_DEU:
  412. dev_err(dev, "DEUISR 0x%08x_%08x\n",
  413. in_be32(priv->reg_deu + TALITOS_EUISR),
  414. in_be32(priv->reg_deu + TALITOS_EUISR_LO));
  415. break;
  416. case DESC_HDR_SEL0_MDEUA:
  417. case DESC_HDR_SEL0_MDEUB:
  418. dev_err(dev, "MDEUISR 0x%08x_%08x\n",
  419. in_be32(priv->reg_mdeu + TALITOS_EUISR),
  420. in_be32(priv->reg_mdeu + TALITOS_EUISR_LO));
  421. break;
  422. case DESC_HDR_SEL0_RNG:
  423. dev_err(dev, "RNGUISR 0x%08x_%08x\n",
  424. in_be32(priv->reg_rngu + TALITOS_ISR),
  425. in_be32(priv->reg_rngu + TALITOS_ISR_LO));
  426. break;
  427. case DESC_HDR_SEL0_PKEU:
  428. dev_err(dev, "PKEUISR 0x%08x_%08x\n",
  429. in_be32(priv->reg_pkeu + TALITOS_EUISR),
  430. in_be32(priv->reg_pkeu + TALITOS_EUISR_LO));
  431. break;
  432. case DESC_HDR_SEL0_AESU:
  433. dev_err(dev, "AESUISR 0x%08x_%08x\n",
  434. in_be32(priv->reg_aesu + TALITOS_EUISR),
  435. in_be32(priv->reg_aesu + TALITOS_EUISR_LO));
  436. break;
  437. case DESC_HDR_SEL0_CRCU:
  438. dev_err(dev, "CRCUISR 0x%08x_%08x\n",
  439. in_be32(priv->reg_crcu + TALITOS_EUISR),
  440. in_be32(priv->reg_crcu + TALITOS_EUISR_LO));
  441. break;
  442. case DESC_HDR_SEL0_KEU:
  443. dev_err(dev, "KEUISR 0x%08x_%08x\n",
  444. in_be32(priv->reg_pkeu + TALITOS_EUISR),
  445. in_be32(priv->reg_pkeu + TALITOS_EUISR_LO));
  446. break;
  447. }
  448. switch (desc_hdr & DESC_HDR_SEL1_MASK) {
  449. case DESC_HDR_SEL1_MDEUA:
  450. case DESC_HDR_SEL1_MDEUB:
  451. dev_err(dev, "MDEUISR 0x%08x_%08x\n",
  452. in_be32(priv->reg_mdeu + TALITOS_EUISR),
  453. in_be32(priv->reg_mdeu + TALITOS_EUISR_LO));
  454. break;
  455. case DESC_HDR_SEL1_CRCU:
  456. dev_err(dev, "CRCUISR 0x%08x_%08x\n",
  457. in_be32(priv->reg_crcu + TALITOS_EUISR),
  458. in_be32(priv->reg_crcu + TALITOS_EUISR_LO));
  459. break;
  460. }
  461. for (i = 0; i < 8; i++)
  462. dev_err(dev, "DESCBUF 0x%08x_%08x\n",
  463. in_be32(priv->chan[ch].reg + TALITOS_DESCBUF + 8*i),
  464. in_be32(priv->chan[ch].reg + TALITOS_DESCBUF_LO + 8*i));
  465. }
  466. /*
  467. * recover from error interrupts
  468. */
  469. static void talitos_error(struct device *dev, u32 isr, u32 isr_lo)
  470. {
  471. struct talitos_private *priv = dev_get_drvdata(dev);
  472. unsigned int timeout = TALITOS_TIMEOUT;
  473. int ch, error, reset_dev = 0;
  474. u32 v_lo;
  475. bool is_sec1 = has_ftr_sec1(priv);
  476. int reset_ch = is_sec1 ? 1 : 0; /* only SEC2 supports continuation */
  477. for (ch = 0; ch < priv->num_channels; ch++) {
  478. /* skip channels without errors */
  479. if (is_sec1) {
  480. /* bits 29, 31, 17, 19 */
  481. if (!(isr & (1 << (29 + (ch & 1) * 2 - (ch & 2) * 6))))
  482. continue;
  483. } else {
  484. if (!(isr & (1 << (ch * 2 + 1))))
  485. continue;
  486. }
  487. error = -EINVAL;
  488. v_lo = in_be32(priv->chan[ch].reg + TALITOS_CCPSR_LO);
  489. if (v_lo & TALITOS_CCPSR_LO_DOF) {
  490. dev_err(dev, "double fetch fifo overflow error\n");
  491. error = -EAGAIN;
  492. reset_ch = 1;
  493. }
  494. if (v_lo & TALITOS_CCPSR_LO_SOF) {
  495. /* h/w dropped descriptor */
  496. dev_err(dev, "single fetch fifo overflow error\n");
  497. error = -EAGAIN;
  498. }
  499. if (v_lo & TALITOS_CCPSR_LO_MDTE)
  500. dev_err(dev, "master data transfer error\n");
  501. if (v_lo & TALITOS_CCPSR_LO_SGDLZ)
  502. dev_err(dev, is_sec1 ? "pointeur not complete error\n"
  503. : "s/g data length zero error\n");
  504. if (v_lo & TALITOS_CCPSR_LO_FPZ)
  505. dev_err(dev, is_sec1 ? "parity error\n"
  506. : "fetch pointer zero error\n");
  507. if (v_lo & TALITOS_CCPSR_LO_IDH)
  508. dev_err(dev, "illegal descriptor header error\n");
  509. if (v_lo & TALITOS_CCPSR_LO_IEU)
  510. dev_err(dev, is_sec1 ? "static assignment error\n"
  511. : "invalid exec unit error\n");
  512. if (v_lo & TALITOS_CCPSR_LO_EU)
  513. report_eu_error(dev, ch, current_desc_hdr(dev, ch));
  514. if (!is_sec1) {
  515. if (v_lo & TALITOS_CCPSR_LO_GB)
  516. dev_err(dev, "gather boundary error\n");
  517. if (v_lo & TALITOS_CCPSR_LO_GRL)
  518. dev_err(dev, "gather return/length error\n");
  519. if (v_lo & TALITOS_CCPSR_LO_SB)
  520. dev_err(dev, "scatter boundary error\n");
  521. if (v_lo & TALITOS_CCPSR_LO_SRL)
  522. dev_err(dev, "scatter return/length error\n");
  523. }
  524. flush_channel(dev, ch, error, reset_ch);
  525. if (reset_ch) {
  526. reset_channel(dev, ch);
  527. } else {
  528. setbits32(priv->chan[ch].reg + TALITOS_CCCR,
  529. TALITOS2_CCCR_CONT);
  530. setbits32(priv->chan[ch].reg + TALITOS_CCCR_LO, 0);
  531. while ((in_be32(priv->chan[ch].reg + TALITOS_CCCR) &
  532. TALITOS2_CCCR_CONT) && --timeout)
  533. cpu_relax();
  534. if (timeout == 0) {
  535. dev_err(dev, "failed to restart channel %d\n",
  536. ch);
  537. reset_dev = 1;
  538. }
  539. }
  540. }
  541. if (reset_dev || (is_sec1 && isr & ~TALITOS1_ISR_4CHERR) ||
  542. (!is_sec1 && isr & ~TALITOS2_ISR_4CHERR) || isr_lo) {
  543. if (is_sec1 && (isr_lo & TALITOS1_ISR_TEA_ERR))
  544. dev_err(dev, "TEA error: ISR 0x%08x_%08x\n",
  545. isr, isr_lo);
  546. else
  547. dev_err(dev, "done overflow, internal time out, or "
  548. "rngu error: ISR 0x%08x_%08x\n", isr, isr_lo);
  549. /* purge request queues */
  550. for (ch = 0; ch < priv->num_channels; ch++)
  551. flush_channel(dev, ch, -EIO, 1);
  552. /* reset and reinitialize the device */
  553. init_device(dev);
  554. }
  555. }
  556. #define DEF_TALITOS1_INTERRUPT(name, ch_done_mask, ch_err_mask, tlet) \
  557. static irqreturn_t talitos1_interrupt_##name(int irq, void *data) \
  558. { \
  559. struct device *dev = data; \
  560. struct talitos_private *priv = dev_get_drvdata(dev); \
  561. u32 isr, isr_lo; \
  562. unsigned long flags; \
  563. \
  564. spin_lock_irqsave(&priv->reg_lock, flags); \
  565. isr = in_be32(priv->reg + TALITOS_ISR); \
  566. isr_lo = in_be32(priv->reg + TALITOS_ISR_LO); \
  567. /* Acknowledge interrupt */ \
  568. out_be32(priv->reg + TALITOS_ICR, isr & (ch_done_mask | ch_err_mask)); \
  569. out_be32(priv->reg + TALITOS_ICR_LO, isr_lo); \
  570. \
  571. if (unlikely(isr & ch_err_mask || isr_lo & TALITOS1_IMR_LO_INIT)) { \
  572. spin_unlock_irqrestore(&priv->reg_lock, flags); \
  573. talitos_error(dev, isr & ch_err_mask, isr_lo); \
  574. } \
  575. else { \
  576. if (likely(isr & ch_done_mask)) { \
  577. /* mask further done interrupts. */ \
  578. setbits32(priv->reg + TALITOS_IMR, ch_done_mask); \
  579. /* done_task will unmask done interrupts at exit */ \
  580. tasklet_schedule(&priv->done_task[tlet]); \
  581. } \
  582. spin_unlock_irqrestore(&priv->reg_lock, flags); \
  583. } \
  584. \
  585. return (isr & (ch_done_mask | ch_err_mask) || isr_lo) ? IRQ_HANDLED : \
  586. IRQ_NONE; \
  587. }
  588. DEF_TALITOS1_INTERRUPT(4ch, TALITOS1_ISR_4CHDONE, TALITOS1_ISR_4CHERR, 0)
  589. #define DEF_TALITOS2_INTERRUPT(name, ch_done_mask, ch_err_mask, tlet) \
  590. static irqreturn_t talitos2_interrupt_##name(int irq, void *data) \
  591. { \
  592. struct device *dev = data; \
  593. struct talitos_private *priv = dev_get_drvdata(dev); \
  594. u32 isr, isr_lo; \
  595. unsigned long flags; \
  596. \
  597. spin_lock_irqsave(&priv->reg_lock, flags); \
  598. isr = in_be32(priv->reg + TALITOS_ISR); \
  599. isr_lo = in_be32(priv->reg + TALITOS_ISR_LO); \
  600. /* Acknowledge interrupt */ \
  601. out_be32(priv->reg + TALITOS_ICR, isr & (ch_done_mask | ch_err_mask)); \
  602. out_be32(priv->reg + TALITOS_ICR_LO, isr_lo); \
  603. \
  604. if (unlikely(isr & ch_err_mask || isr_lo)) { \
  605. spin_unlock_irqrestore(&priv->reg_lock, flags); \
  606. talitos_error(dev, isr & ch_err_mask, isr_lo); \
  607. } \
  608. else { \
  609. if (likely(isr & ch_done_mask)) { \
  610. /* mask further done interrupts. */ \
  611. clrbits32(priv->reg + TALITOS_IMR, ch_done_mask); \
  612. /* done_task will unmask done interrupts at exit */ \
  613. tasklet_schedule(&priv->done_task[tlet]); \
  614. } \
  615. spin_unlock_irqrestore(&priv->reg_lock, flags); \
  616. } \
  617. \
  618. return (isr & (ch_done_mask | ch_err_mask) || isr_lo) ? IRQ_HANDLED : \
  619. IRQ_NONE; \
  620. }
  621. DEF_TALITOS2_INTERRUPT(4ch, TALITOS2_ISR_4CHDONE, TALITOS2_ISR_4CHERR, 0)
  622. DEF_TALITOS2_INTERRUPT(ch0_2, TALITOS2_ISR_CH_0_2_DONE, TALITOS2_ISR_CH_0_2_ERR,
  623. 0)
  624. DEF_TALITOS2_INTERRUPT(ch1_3, TALITOS2_ISR_CH_1_3_DONE, TALITOS2_ISR_CH_1_3_ERR,
  625. 1)
  626. /*
  627. * hwrng
  628. */
  629. static int talitos_rng_data_present(struct hwrng *rng, int wait)
  630. {
  631. struct device *dev = (struct device *)rng->priv;
  632. struct talitos_private *priv = dev_get_drvdata(dev);
  633. u32 ofl;
  634. int i;
  635. for (i = 0; i < 20; i++) {
  636. ofl = in_be32(priv->reg_rngu + TALITOS_EUSR_LO) &
  637. TALITOS_RNGUSR_LO_OFL;
  638. if (ofl || !wait)
  639. break;
  640. udelay(10);
  641. }
  642. return !!ofl;
  643. }
  644. static int talitos_rng_data_read(struct hwrng *rng, u32 *data)
  645. {
  646. struct device *dev = (struct device *)rng->priv;
  647. struct talitos_private *priv = dev_get_drvdata(dev);
  648. /* rng fifo requires 64-bit accesses */
  649. *data = in_be32(priv->reg_rngu + TALITOS_EU_FIFO);
  650. *data = in_be32(priv->reg_rngu + TALITOS_EU_FIFO_LO);
  651. return sizeof(u32);
  652. }
  653. static int talitos_rng_init(struct hwrng *rng)
  654. {
  655. struct device *dev = (struct device *)rng->priv;
  656. struct talitos_private *priv = dev_get_drvdata(dev);
  657. unsigned int timeout = TALITOS_TIMEOUT;
  658. setbits32(priv->reg_rngu + TALITOS_EURCR_LO, TALITOS_RNGURCR_LO_SR);
  659. while (!(in_be32(priv->reg_rngu + TALITOS_EUSR_LO)
  660. & TALITOS_RNGUSR_LO_RD)
  661. && --timeout)
  662. cpu_relax();
  663. if (timeout == 0) {
  664. dev_err(dev, "failed to reset rng hw\n");
  665. return -ENODEV;
  666. }
  667. /* start generating */
  668. setbits32(priv->reg_rngu + TALITOS_EUDSR_LO, 0);
  669. return 0;
  670. }
  671. static int talitos_register_rng(struct device *dev)
  672. {
  673. struct talitos_private *priv = dev_get_drvdata(dev);
  674. int err;
  675. priv->rng.name = dev_driver_string(dev),
  676. priv->rng.init = talitos_rng_init,
  677. priv->rng.data_present = talitos_rng_data_present,
  678. priv->rng.data_read = talitos_rng_data_read,
  679. priv->rng.priv = (unsigned long)dev;
  680. err = hwrng_register(&priv->rng);
  681. if (!err)
  682. priv->rng_registered = true;
  683. return err;
  684. }
  685. static void talitos_unregister_rng(struct device *dev)
  686. {
  687. struct talitos_private *priv = dev_get_drvdata(dev);
  688. if (!priv->rng_registered)
  689. return;
  690. hwrng_unregister(&priv->rng);
  691. priv->rng_registered = false;
  692. }
  693. /*
  694. * crypto alg
  695. */
  696. #define TALITOS_CRA_PRIORITY 3000
  697. #define TALITOS_MAX_KEY_SIZE 96
  698. #define TALITOS_MAX_IV_LENGTH 16 /* max of AES_BLOCK_SIZE, DES3_EDE_BLOCK_SIZE */
  699. struct talitos_ctx {
  700. struct device *dev;
  701. int ch;
  702. __be32 desc_hdr_template;
  703. u8 key[TALITOS_MAX_KEY_SIZE];
  704. u8 iv[TALITOS_MAX_IV_LENGTH];
  705. unsigned int keylen;
  706. unsigned int enckeylen;
  707. unsigned int authkeylen;
  708. };
  709. #define HASH_MAX_BLOCK_SIZE SHA512_BLOCK_SIZE
  710. #define TALITOS_MDEU_MAX_CONTEXT_SIZE TALITOS_MDEU_CONTEXT_SIZE_SHA384_SHA512
  711. struct talitos_ahash_req_ctx {
  712. u32 hw_context[TALITOS_MDEU_MAX_CONTEXT_SIZE / sizeof(u32)];
  713. unsigned int hw_context_size;
  714. u8 buf[HASH_MAX_BLOCK_SIZE];
  715. u8 bufnext[HASH_MAX_BLOCK_SIZE];
  716. unsigned int swinit;
  717. unsigned int first;
  718. unsigned int last;
  719. unsigned int to_hash_later;
  720. unsigned int nbuf;
  721. struct scatterlist bufsl[2];
  722. struct scatterlist *psrc;
  723. };
  724. static int aead_setkey(struct crypto_aead *authenc,
  725. const u8 *key, unsigned int keylen)
  726. {
  727. struct talitos_ctx *ctx = crypto_aead_ctx(authenc);
  728. struct crypto_authenc_keys keys;
  729. if (crypto_authenc_extractkeys(&keys, key, keylen) != 0)
  730. goto badkey;
  731. if (keys.authkeylen + keys.enckeylen > TALITOS_MAX_KEY_SIZE)
  732. goto badkey;
  733. memcpy(ctx->key, keys.authkey, keys.authkeylen);
  734. memcpy(&ctx->key[keys.authkeylen], keys.enckey, keys.enckeylen);
  735. ctx->keylen = keys.authkeylen + keys.enckeylen;
  736. ctx->enckeylen = keys.enckeylen;
  737. ctx->authkeylen = keys.authkeylen;
  738. return 0;
  739. badkey:
  740. crypto_aead_set_flags(authenc, CRYPTO_TFM_RES_BAD_KEY_LEN);
  741. return -EINVAL;
  742. }
  743. /*
  744. * talitos_edesc - s/w-extended descriptor
  745. * @src_nents: number of segments in input scatterlist
  746. * @dst_nents: number of segments in output scatterlist
  747. * @src_chained: whether src is chained or not
  748. * @dst_chained: whether dst is chained or not
  749. * @icv_ool: whether ICV is out-of-line
  750. * @iv_dma: dma address of iv for checking continuity and link table
  751. * @dma_len: length of dma mapped link_tbl space
  752. * @dma_link_tbl: bus physical address of link_tbl/buf
  753. * @desc: h/w descriptor
  754. * @link_tbl: input and output h/w link tables (if {src,dst}_nents > 1) (SEC2)
  755. * @buf: input and output buffeur (if {src,dst}_nents > 1) (SEC1)
  756. *
  757. * if decrypting (with authcheck), or either one of src_nents or dst_nents
  758. * is greater than 1, an integrity check value is concatenated to the end
  759. * of link_tbl data
  760. */
  761. struct talitos_edesc {
  762. int src_nents;
  763. int dst_nents;
  764. bool src_chained;
  765. bool dst_chained;
  766. bool icv_ool;
  767. dma_addr_t iv_dma;
  768. int dma_len;
  769. dma_addr_t dma_link_tbl;
  770. struct talitos_desc desc;
  771. union {
  772. struct talitos_ptr link_tbl[0];
  773. u8 buf[0];
  774. };
  775. };
  776. static int talitos_map_sg(struct device *dev, struct scatterlist *sg,
  777. unsigned int nents, enum dma_data_direction dir,
  778. bool chained)
  779. {
  780. if (unlikely(chained))
  781. while (sg) {
  782. dma_map_sg(dev, sg, 1, dir);
  783. sg = sg_next(sg);
  784. }
  785. else
  786. dma_map_sg(dev, sg, nents, dir);
  787. return nents;
  788. }
  789. static void talitos_unmap_sg_chain(struct device *dev, struct scatterlist *sg,
  790. enum dma_data_direction dir)
  791. {
  792. while (sg) {
  793. dma_unmap_sg(dev, sg, 1, dir);
  794. sg = sg_next(sg);
  795. }
  796. }
  797. static void talitos_sg_unmap(struct device *dev,
  798. struct talitos_edesc *edesc,
  799. struct scatterlist *src,
  800. struct scatterlist *dst)
  801. {
  802. unsigned int src_nents = edesc->src_nents ? : 1;
  803. unsigned int dst_nents = edesc->dst_nents ? : 1;
  804. if (src != dst) {
  805. if (edesc->src_chained)
  806. talitos_unmap_sg_chain(dev, src, DMA_TO_DEVICE);
  807. else
  808. dma_unmap_sg(dev, src, src_nents, DMA_TO_DEVICE);
  809. if (dst) {
  810. if (edesc->dst_chained)
  811. talitos_unmap_sg_chain(dev, dst,
  812. DMA_FROM_DEVICE);
  813. else
  814. dma_unmap_sg(dev, dst, dst_nents,
  815. DMA_FROM_DEVICE);
  816. }
  817. } else
  818. if (edesc->src_chained)
  819. talitos_unmap_sg_chain(dev, src, DMA_BIDIRECTIONAL);
  820. else
  821. dma_unmap_sg(dev, src, src_nents, DMA_BIDIRECTIONAL);
  822. }
  823. static void ipsec_esp_unmap(struct device *dev,
  824. struct talitos_edesc *edesc,
  825. struct aead_request *areq)
  826. {
  827. unmap_single_talitos_ptr(dev, &edesc->desc.ptr[6], DMA_FROM_DEVICE);
  828. unmap_single_talitos_ptr(dev, &edesc->desc.ptr[3], DMA_TO_DEVICE);
  829. unmap_single_talitos_ptr(dev, &edesc->desc.ptr[2], DMA_TO_DEVICE);
  830. unmap_single_talitos_ptr(dev, &edesc->desc.ptr[0], DMA_TO_DEVICE);
  831. talitos_sg_unmap(dev, edesc, areq->src, areq->dst);
  832. if (edesc->dma_len)
  833. dma_unmap_single(dev, edesc->dma_link_tbl, edesc->dma_len,
  834. DMA_BIDIRECTIONAL);
  835. }
  836. /*
  837. * ipsec_esp descriptor callbacks
  838. */
  839. static void ipsec_esp_encrypt_done(struct device *dev,
  840. struct talitos_desc *desc, void *context,
  841. int err)
  842. {
  843. struct aead_request *areq = context;
  844. struct crypto_aead *authenc = crypto_aead_reqtfm(areq);
  845. unsigned int authsize = crypto_aead_authsize(authenc);
  846. struct talitos_edesc *edesc;
  847. struct scatterlist *sg;
  848. void *icvdata;
  849. edesc = container_of(desc, struct talitos_edesc, desc);
  850. ipsec_esp_unmap(dev, edesc, areq);
  851. /* copy the generated ICV to dst */
  852. if (edesc->icv_ool) {
  853. icvdata = &edesc->link_tbl[edesc->src_nents +
  854. edesc->dst_nents + 2];
  855. sg = sg_last(areq->dst, edesc->dst_nents);
  856. memcpy((char *)sg_virt(sg) + sg->length - authsize,
  857. icvdata, authsize);
  858. }
  859. kfree(edesc);
  860. aead_request_complete(areq, err);
  861. }
  862. static void ipsec_esp_decrypt_swauth_done(struct device *dev,
  863. struct talitos_desc *desc,
  864. void *context, int err)
  865. {
  866. struct aead_request *req = context;
  867. struct crypto_aead *authenc = crypto_aead_reqtfm(req);
  868. unsigned int authsize = crypto_aead_authsize(authenc);
  869. struct talitos_edesc *edesc;
  870. struct scatterlist *sg;
  871. char *oicv, *icv;
  872. edesc = container_of(desc, struct talitos_edesc, desc);
  873. ipsec_esp_unmap(dev, edesc, req);
  874. if (!err) {
  875. /* auth check */
  876. sg = sg_last(req->dst, edesc->dst_nents ? : 1);
  877. icv = (char *)sg_virt(sg) + sg->length - authsize;
  878. if (edesc->dma_len) {
  879. oicv = (char *)&edesc->link_tbl[edesc->src_nents +
  880. edesc->dst_nents + 2];
  881. if (edesc->icv_ool)
  882. icv = oicv + authsize;
  883. } else
  884. oicv = (char *)&edesc->link_tbl[0];
  885. err = memcmp(oicv, icv, authsize) ? -EBADMSG : 0;
  886. }
  887. kfree(edesc);
  888. aead_request_complete(req, err);
  889. }
  890. static void ipsec_esp_decrypt_hwauth_done(struct device *dev,
  891. struct talitos_desc *desc,
  892. void *context, int err)
  893. {
  894. struct aead_request *req = context;
  895. struct talitos_edesc *edesc;
  896. edesc = container_of(desc, struct talitos_edesc, desc);
  897. ipsec_esp_unmap(dev, edesc, req);
  898. /* check ICV auth status */
  899. if (!err && ((desc->hdr_lo & DESC_HDR_LO_ICCR1_MASK) !=
  900. DESC_HDR_LO_ICCR1_PASS))
  901. err = -EBADMSG;
  902. kfree(edesc);
  903. aead_request_complete(req, err);
  904. }
  905. /*
  906. * convert scatterlist to SEC h/w link table format
  907. * stop at cryptlen bytes
  908. */
  909. static int sg_to_link_tbl_offset(struct scatterlist *sg, int sg_count,
  910. unsigned int offset, int cryptlen,
  911. struct talitos_ptr *link_tbl_ptr)
  912. {
  913. int n_sg = sg_count;
  914. int count = 0;
  915. while (cryptlen && sg && n_sg--) {
  916. unsigned int len = sg_dma_len(sg);
  917. if (offset >= len) {
  918. offset -= len;
  919. goto next;
  920. }
  921. len -= offset;
  922. if (len > cryptlen)
  923. len = cryptlen;
  924. to_talitos_ptr(link_tbl_ptr + count,
  925. sg_dma_address(sg) + offset, 0);
  926. link_tbl_ptr[count].len = cpu_to_be16(len);
  927. link_tbl_ptr[count].j_extent = 0;
  928. count++;
  929. cryptlen -= len;
  930. offset = 0;
  931. next:
  932. sg = sg_next(sg);
  933. }
  934. /* tag end of link table */
  935. if (count > 0)
  936. link_tbl_ptr[count - 1].j_extent = DESC_PTR_LNKTBL_RETURN;
  937. return count;
  938. }
  939. static inline int sg_to_link_tbl(struct scatterlist *sg, int sg_count,
  940. int cryptlen,
  941. struct talitos_ptr *link_tbl_ptr)
  942. {
  943. return sg_to_link_tbl_offset(sg, sg_count, 0, cryptlen,
  944. link_tbl_ptr);
  945. }
  946. /*
  947. * fill in and submit ipsec_esp descriptor
  948. */
  949. static int ipsec_esp(struct talitos_edesc *edesc, struct aead_request *areq,
  950. void (*callback)(struct device *dev,
  951. struct talitos_desc *desc,
  952. void *context, int error))
  953. {
  954. struct crypto_aead *aead = crypto_aead_reqtfm(areq);
  955. unsigned int authsize = crypto_aead_authsize(aead);
  956. struct talitos_ctx *ctx = crypto_aead_ctx(aead);
  957. struct device *dev = ctx->dev;
  958. struct talitos_desc *desc = &edesc->desc;
  959. unsigned int cryptlen = areq->cryptlen;
  960. unsigned int ivsize = crypto_aead_ivsize(aead);
  961. int tbl_off = 0;
  962. int sg_count, ret;
  963. int sg_link_tbl_len;
  964. /* hmac key */
  965. map_single_talitos_ptr(dev, &desc->ptr[0], ctx->authkeylen, &ctx->key,
  966. DMA_TO_DEVICE);
  967. sg_count = talitos_map_sg(dev, areq->src, edesc->src_nents ?: 1,
  968. (areq->src == areq->dst) ? DMA_BIDIRECTIONAL
  969. : DMA_TO_DEVICE,
  970. edesc->src_chained);
  971. /* hmac data */
  972. desc->ptr[1].len = cpu_to_be16(areq->assoclen);
  973. if (sg_count > 1 &&
  974. (ret = sg_to_link_tbl_offset(areq->src, sg_count, 0,
  975. areq->assoclen,
  976. &edesc->link_tbl[tbl_off])) > 1) {
  977. tbl_off += ret;
  978. to_talitos_ptr(&desc->ptr[1], edesc->dma_link_tbl + tbl_off *
  979. sizeof(struct talitos_ptr), 0);
  980. desc->ptr[1].j_extent = DESC_PTR_LNKTBL_JUMP;
  981. dma_sync_single_for_device(dev, edesc->dma_link_tbl,
  982. edesc->dma_len, DMA_BIDIRECTIONAL);
  983. } else {
  984. to_talitos_ptr(&desc->ptr[1], sg_dma_address(areq->src), 0);
  985. desc->ptr[1].j_extent = 0;
  986. }
  987. /* cipher iv */
  988. to_talitos_ptr(&desc->ptr[2], edesc->iv_dma, 0);
  989. desc->ptr[2].len = cpu_to_be16(ivsize);
  990. desc->ptr[2].j_extent = 0;
  991. /* cipher key */
  992. map_single_talitos_ptr(dev, &desc->ptr[3], ctx->enckeylen,
  993. (char *)&ctx->key + ctx->authkeylen,
  994. DMA_TO_DEVICE);
  995. /*
  996. * cipher in
  997. * map and adjust cipher len to aead request cryptlen.
  998. * extent is bytes of HMAC postpended to ciphertext,
  999. * typically 12 for ipsec
  1000. */
  1001. desc->ptr[4].len = cpu_to_be16(cryptlen);
  1002. desc->ptr[4].j_extent = authsize;
  1003. sg_link_tbl_len = cryptlen;
  1004. if (edesc->desc.hdr & DESC_HDR_MODE1_MDEU_CICV)
  1005. sg_link_tbl_len += authsize;
  1006. if (sg_count > 1 &&
  1007. (ret = sg_to_link_tbl_offset(areq->src, sg_count, areq->assoclen,
  1008. sg_link_tbl_len,
  1009. &edesc->link_tbl[tbl_off])) > 1) {
  1010. tbl_off += ret;
  1011. desc->ptr[4].j_extent |= DESC_PTR_LNKTBL_JUMP;
  1012. to_talitos_ptr(&desc->ptr[4], edesc->dma_link_tbl +
  1013. tbl_off *
  1014. sizeof(struct talitos_ptr), 0);
  1015. dma_sync_single_for_device(dev, edesc->dma_link_tbl,
  1016. edesc->dma_len,
  1017. DMA_BIDIRECTIONAL);
  1018. } else
  1019. to_talitos_ptr(&desc->ptr[4], sg_dma_address(areq->src), 0);
  1020. /* cipher out */
  1021. desc->ptr[5].len = cpu_to_be16(cryptlen);
  1022. desc->ptr[5].j_extent = authsize;
  1023. if (areq->src != areq->dst)
  1024. sg_count = talitos_map_sg(dev, areq->dst,
  1025. edesc->dst_nents ? : 1,
  1026. DMA_FROM_DEVICE, edesc->dst_chained);
  1027. edesc->icv_ool = false;
  1028. if (sg_count > 1 &&
  1029. (sg_count = sg_to_link_tbl_offset(areq->dst, sg_count,
  1030. areq->assoclen, cryptlen,
  1031. &edesc->link_tbl[tbl_off])) >
  1032. 1) {
  1033. struct talitos_ptr *tbl_ptr = &edesc->link_tbl[tbl_off];
  1034. to_talitos_ptr(&desc->ptr[5], edesc->dma_link_tbl +
  1035. tbl_off * sizeof(struct talitos_ptr), 0);
  1036. /* Add an entry to the link table for ICV data */
  1037. tbl_ptr += sg_count - 1;
  1038. tbl_ptr->j_extent = 0;
  1039. tbl_ptr++;
  1040. tbl_ptr->j_extent = DESC_PTR_LNKTBL_RETURN;
  1041. tbl_ptr->len = cpu_to_be16(authsize);
  1042. /* icv data follows link tables */
  1043. to_talitos_ptr(tbl_ptr, edesc->dma_link_tbl +
  1044. (edesc->src_nents + edesc->dst_nents +
  1045. 2) * sizeof(struct talitos_ptr) +
  1046. authsize, 0);
  1047. desc->ptr[5].j_extent |= DESC_PTR_LNKTBL_JUMP;
  1048. dma_sync_single_for_device(ctx->dev, edesc->dma_link_tbl,
  1049. edesc->dma_len, DMA_BIDIRECTIONAL);
  1050. edesc->icv_ool = true;
  1051. } else
  1052. to_talitos_ptr(&desc->ptr[5], sg_dma_address(areq->dst), 0);
  1053. /* iv out */
  1054. map_single_talitos_ptr(dev, &desc->ptr[6], ivsize, ctx->iv,
  1055. DMA_FROM_DEVICE);
  1056. ret = talitos_submit(dev, ctx->ch, desc, callback, areq);
  1057. if (ret != -EINPROGRESS) {
  1058. ipsec_esp_unmap(dev, edesc, areq);
  1059. kfree(edesc);
  1060. }
  1061. return ret;
  1062. }
  1063. /*
  1064. * derive number of elements in scatterlist
  1065. */
  1066. static int sg_count(struct scatterlist *sg_list, int nbytes, bool *chained)
  1067. {
  1068. struct scatterlist *sg = sg_list;
  1069. int sg_nents = 0;
  1070. *chained = false;
  1071. while (nbytes > 0 && sg) {
  1072. sg_nents++;
  1073. nbytes -= sg->length;
  1074. if (!sg_is_last(sg) && (sg + 1)->length == 0)
  1075. *chained = true;
  1076. sg = sg_next(sg);
  1077. }
  1078. return sg_nents;
  1079. }
  1080. /*
  1081. * allocate and map the extended descriptor
  1082. */
  1083. static struct talitos_edesc *talitos_edesc_alloc(struct device *dev,
  1084. struct scatterlist *src,
  1085. struct scatterlist *dst,
  1086. u8 *iv,
  1087. unsigned int assoclen,
  1088. unsigned int cryptlen,
  1089. unsigned int authsize,
  1090. unsigned int ivsize,
  1091. int icv_stashing,
  1092. u32 cryptoflags,
  1093. bool encrypt)
  1094. {
  1095. struct talitos_edesc *edesc;
  1096. int src_nents, dst_nents, alloc_len, dma_len;
  1097. bool src_chained = false, dst_chained = false;
  1098. dma_addr_t iv_dma = 0;
  1099. gfp_t flags = cryptoflags & CRYPTO_TFM_REQ_MAY_SLEEP ? GFP_KERNEL :
  1100. GFP_ATOMIC;
  1101. struct talitos_private *priv = dev_get_drvdata(dev);
  1102. bool is_sec1 = has_ftr_sec1(priv);
  1103. int max_len = is_sec1 ? TALITOS1_MAX_DATA_LEN : TALITOS2_MAX_DATA_LEN;
  1104. if (cryptlen + authsize > max_len) {
  1105. dev_err(dev, "length exceeds h/w max limit\n");
  1106. return ERR_PTR(-EINVAL);
  1107. }
  1108. if (ivsize)
  1109. iv_dma = dma_map_single(dev, iv, ivsize, DMA_TO_DEVICE);
  1110. if (!dst || dst == src) {
  1111. src_nents = sg_count(src, assoclen + cryptlen + authsize,
  1112. &src_chained);
  1113. src_nents = (src_nents == 1) ? 0 : src_nents;
  1114. dst_nents = dst ? src_nents : 0;
  1115. } else { /* dst && dst != src*/
  1116. src_nents = sg_count(src, assoclen + cryptlen +
  1117. (encrypt ? 0 : authsize),
  1118. &src_chained);
  1119. src_nents = (src_nents == 1) ? 0 : src_nents;
  1120. dst_nents = sg_count(dst, assoclen + cryptlen +
  1121. (encrypt ? authsize : 0),
  1122. &dst_chained);
  1123. dst_nents = (dst_nents == 1) ? 0 : dst_nents;
  1124. }
  1125. /*
  1126. * allocate space for base edesc plus the link tables,
  1127. * allowing for two separate entries for AD and generated ICV (+ 2),
  1128. * and space for two sets of ICVs (stashed and generated)
  1129. */
  1130. alloc_len = sizeof(struct talitos_edesc);
  1131. if (src_nents || dst_nents) {
  1132. if (is_sec1)
  1133. dma_len = (src_nents ? cryptlen : 0) +
  1134. (dst_nents ? cryptlen : 0);
  1135. else
  1136. dma_len = (src_nents + dst_nents + 2) *
  1137. sizeof(struct talitos_ptr) + authsize * 2;
  1138. alloc_len += dma_len;
  1139. } else {
  1140. dma_len = 0;
  1141. alloc_len += icv_stashing ? authsize : 0;
  1142. }
  1143. edesc = kmalloc(alloc_len, GFP_DMA | flags);
  1144. if (!edesc) {
  1145. if (iv_dma)
  1146. dma_unmap_single(dev, iv_dma, ivsize, DMA_TO_DEVICE);
  1147. dev_err(dev, "could not allocate edescriptor\n");
  1148. return ERR_PTR(-ENOMEM);
  1149. }
  1150. edesc->src_nents = src_nents;
  1151. edesc->dst_nents = dst_nents;
  1152. edesc->src_chained = src_chained;
  1153. edesc->dst_chained = dst_chained;
  1154. edesc->iv_dma = iv_dma;
  1155. edesc->dma_len = dma_len;
  1156. if (dma_len)
  1157. edesc->dma_link_tbl = dma_map_single(dev, &edesc->link_tbl[0],
  1158. edesc->dma_len,
  1159. DMA_BIDIRECTIONAL);
  1160. return edesc;
  1161. }
  1162. static struct talitos_edesc *aead_edesc_alloc(struct aead_request *areq, u8 *iv,
  1163. int icv_stashing, bool encrypt)
  1164. {
  1165. struct crypto_aead *authenc = crypto_aead_reqtfm(areq);
  1166. unsigned int authsize = crypto_aead_authsize(authenc);
  1167. struct talitos_ctx *ctx = crypto_aead_ctx(authenc);
  1168. unsigned int ivsize = crypto_aead_ivsize(authenc);
  1169. return talitos_edesc_alloc(ctx->dev, areq->src, areq->dst,
  1170. iv, areq->assoclen, areq->cryptlen,
  1171. authsize, ivsize, icv_stashing,
  1172. areq->base.flags, encrypt);
  1173. }
  1174. static int aead_encrypt(struct aead_request *req)
  1175. {
  1176. struct crypto_aead *authenc = crypto_aead_reqtfm(req);
  1177. struct talitos_ctx *ctx = crypto_aead_ctx(authenc);
  1178. struct talitos_edesc *edesc;
  1179. /* allocate extended descriptor */
  1180. edesc = aead_edesc_alloc(req, req->iv, 0, true);
  1181. if (IS_ERR(edesc))
  1182. return PTR_ERR(edesc);
  1183. /* set encrypt */
  1184. edesc->desc.hdr = ctx->desc_hdr_template | DESC_HDR_MODE0_ENCRYPT;
  1185. return ipsec_esp(edesc, req, ipsec_esp_encrypt_done);
  1186. }
  1187. static int aead_decrypt(struct aead_request *req)
  1188. {
  1189. struct crypto_aead *authenc = crypto_aead_reqtfm(req);
  1190. unsigned int authsize = crypto_aead_authsize(authenc);
  1191. struct talitos_ctx *ctx = crypto_aead_ctx(authenc);
  1192. struct talitos_private *priv = dev_get_drvdata(ctx->dev);
  1193. struct talitos_edesc *edesc;
  1194. struct scatterlist *sg;
  1195. void *icvdata;
  1196. req->cryptlen -= authsize;
  1197. /* allocate extended descriptor */
  1198. edesc = aead_edesc_alloc(req, req->iv, 1, false);
  1199. if (IS_ERR(edesc))
  1200. return PTR_ERR(edesc);
  1201. if ((priv->features & TALITOS_FTR_HW_AUTH_CHECK) &&
  1202. ((!edesc->src_nents && !edesc->dst_nents) ||
  1203. priv->features & TALITOS_FTR_SRC_LINK_TBL_LEN_INCLUDES_EXTENT)) {
  1204. /* decrypt and check the ICV */
  1205. edesc->desc.hdr = ctx->desc_hdr_template |
  1206. DESC_HDR_DIR_INBOUND |
  1207. DESC_HDR_MODE1_MDEU_CICV;
  1208. /* reset integrity check result bits */
  1209. edesc->desc.hdr_lo = 0;
  1210. return ipsec_esp(edesc, req, ipsec_esp_decrypt_hwauth_done);
  1211. }
  1212. /* Have to check the ICV with software */
  1213. edesc->desc.hdr = ctx->desc_hdr_template | DESC_HDR_DIR_INBOUND;
  1214. /* stash incoming ICV for later cmp with ICV generated by the h/w */
  1215. if (edesc->dma_len)
  1216. icvdata = (char *)&edesc->link_tbl[edesc->src_nents +
  1217. edesc->dst_nents + 2];
  1218. else
  1219. icvdata = &edesc->link_tbl[0];
  1220. sg = sg_last(req->src, edesc->src_nents ? : 1);
  1221. memcpy(icvdata, (char *)sg_virt(sg) + sg->length - authsize, authsize);
  1222. return ipsec_esp(edesc, req, ipsec_esp_decrypt_swauth_done);
  1223. }
  1224. static int ablkcipher_setkey(struct crypto_ablkcipher *cipher,
  1225. const u8 *key, unsigned int keylen)
  1226. {
  1227. struct talitos_ctx *ctx = crypto_ablkcipher_ctx(cipher);
  1228. memcpy(&ctx->key, key, keylen);
  1229. ctx->keylen = keylen;
  1230. return 0;
  1231. }
  1232. static void unmap_sg_talitos_ptr(struct device *dev, struct scatterlist *src,
  1233. struct scatterlist *dst, unsigned int len,
  1234. struct talitos_edesc *edesc)
  1235. {
  1236. struct talitos_private *priv = dev_get_drvdata(dev);
  1237. bool is_sec1 = has_ftr_sec1(priv);
  1238. if (is_sec1) {
  1239. if (!edesc->src_nents) {
  1240. dma_unmap_sg(dev, src, 1,
  1241. dst != src ? DMA_TO_DEVICE
  1242. : DMA_BIDIRECTIONAL);
  1243. }
  1244. if (dst && edesc->dst_nents) {
  1245. dma_sync_single_for_device(dev,
  1246. edesc->dma_link_tbl + len,
  1247. len, DMA_FROM_DEVICE);
  1248. sg_copy_from_buffer(dst, edesc->dst_nents ? : 1,
  1249. edesc->buf + len, len);
  1250. } else if (dst && dst != src) {
  1251. dma_unmap_sg(dev, dst, 1, DMA_FROM_DEVICE);
  1252. }
  1253. } else {
  1254. talitos_sg_unmap(dev, edesc, src, dst);
  1255. }
  1256. }
  1257. static void common_nonsnoop_unmap(struct device *dev,
  1258. struct talitos_edesc *edesc,
  1259. struct ablkcipher_request *areq)
  1260. {
  1261. unmap_single_talitos_ptr(dev, &edesc->desc.ptr[5], DMA_FROM_DEVICE);
  1262. unmap_sg_talitos_ptr(dev, areq->src, areq->dst, areq->nbytes, edesc);
  1263. unmap_single_talitos_ptr(dev, &edesc->desc.ptr[2], DMA_TO_DEVICE);
  1264. unmap_single_talitos_ptr(dev, &edesc->desc.ptr[1], DMA_TO_DEVICE);
  1265. if (edesc->dma_len)
  1266. dma_unmap_single(dev, edesc->dma_link_tbl, edesc->dma_len,
  1267. DMA_BIDIRECTIONAL);
  1268. }
  1269. static void ablkcipher_done(struct device *dev,
  1270. struct talitos_desc *desc, void *context,
  1271. int err)
  1272. {
  1273. struct ablkcipher_request *areq = context;
  1274. struct talitos_edesc *edesc;
  1275. edesc = container_of(desc, struct talitos_edesc, desc);
  1276. common_nonsnoop_unmap(dev, edesc, areq);
  1277. kfree(edesc);
  1278. areq->base.complete(&areq->base, err);
  1279. }
  1280. int map_sg_in_talitos_ptr(struct device *dev, struct scatterlist *src,
  1281. unsigned int len, struct talitos_edesc *edesc,
  1282. enum dma_data_direction dir, struct talitos_ptr *ptr)
  1283. {
  1284. int sg_count;
  1285. struct talitos_private *priv = dev_get_drvdata(dev);
  1286. bool is_sec1 = has_ftr_sec1(priv);
  1287. to_talitos_ptr_len(ptr, len, is_sec1);
  1288. if (is_sec1) {
  1289. sg_count = edesc->src_nents ? : 1;
  1290. if (sg_count == 1) {
  1291. dma_map_sg(dev, src, 1, dir);
  1292. to_talitos_ptr(ptr, sg_dma_address(src), is_sec1);
  1293. } else {
  1294. sg_copy_to_buffer(src, sg_count, edesc->buf, len);
  1295. to_talitos_ptr(ptr, edesc->dma_link_tbl, is_sec1);
  1296. dma_sync_single_for_device(dev, edesc->dma_link_tbl,
  1297. len, DMA_TO_DEVICE);
  1298. }
  1299. } else {
  1300. to_talitos_ptr_extent_clear(ptr, is_sec1);
  1301. sg_count = talitos_map_sg(dev, src, edesc->src_nents ? : 1, dir,
  1302. edesc->src_chained);
  1303. if (sg_count == 1) {
  1304. to_talitos_ptr(ptr, sg_dma_address(src), is_sec1);
  1305. } else {
  1306. sg_count = sg_to_link_tbl(src, sg_count, len,
  1307. &edesc->link_tbl[0]);
  1308. if (sg_count > 1) {
  1309. to_talitos_ptr(ptr, edesc->dma_link_tbl, 0);
  1310. ptr->j_extent |= DESC_PTR_LNKTBL_JUMP;
  1311. dma_sync_single_for_device(dev,
  1312. edesc->dma_link_tbl,
  1313. edesc->dma_len,
  1314. DMA_BIDIRECTIONAL);
  1315. } else {
  1316. /* Only one segment now, so no link tbl needed*/
  1317. to_talitos_ptr(ptr, sg_dma_address(src),
  1318. is_sec1);
  1319. }
  1320. }
  1321. }
  1322. return sg_count;
  1323. }
  1324. void map_sg_out_talitos_ptr(struct device *dev, struct scatterlist *dst,
  1325. unsigned int len, struct talitos_edesc *edesc,
  1326. enum dma_data_direction dir,
  1327. struct talitos_ptr *ptr, int sg_count)
  1328. {
  1329. struct talitos_private *priv = dev_get_drvdata(dev);
  1330. bool is_sec1 = has_ftr_sec1(priv);
  1331. if (dir != DMA_NONE)
  1332. sg_count = talitos_map_sg(dev, dst, edesc->dst_nents ? : 1,
  1333. dir, edesc->dst_chained);
  1334. to_talitos_ptr_len(ptr, len, is_sec1);
  1335. if (is_sec1) {
  1336. if (sg_count == 1) {
  1337. if (dir != DMA_NONE)
  1338. dma_map_sg(dev, dst, 1, dir);
  1339. to_talitos_ptr(ptr, sg_dma_address(dst), is_sec1);
  1340. } else {
  1341. to_talitos_ptr(ptr, edesc->dma_link_tbl + len, is_sec1);
  1342. dma_sync_single_for_device(dev,
  1343. edesc->dma_link_tbl + len,
  1344. len, DMA_FROM_DEVICE);
  1345. }
  1346. } else {
  1347. to_talitos_ptr_extent_clear(ptr, is_sec1);
  1348. if (sg_count == 1) {
  1349. to_talitos_ptr(ptr, sg_dma_address(dst), is_sec1);
  1350. } else {
  1351. struct talitos_ptr *link_tbl_ptr =
  1352. &edesc->link_tbl[edesc->src_nents + 1];
  1353. to_talitos_ptr(ptr, edesc->dma_link_tbl +
  1354. (edesc->src_nents + 1) *
  1355. sizeof(struct talitos_ptr), 0);
  1356. ptr->j_extent |= DESC_PTR_LNKTBL_JUMP;
  1357. sg_to_link_tbl(dst, sg_count, len, link_tbl_ptr);
  1358. dma_sync_single_for_device(dev, edesc->dma_link_tbl,
  1359. edesc->dma_len,
  1360. DMA_BIDIRECTIONAL);
  1361. }
  1362. }
  1363. }
  1364. static int common_nonsnoop(struct talitos_edesc *edesc,
  1365. struct ablkcipher_request *areq,
  1366. void (*callback) (struct device *dev,
  1367. struct talitos_desc *desc,
  1368. void *context, int error))
  1369. {
  1370. struct crypto_ablkcipher *cipher = crypto_ablkcipher_reqtfm(areq);
  1371. struct talitos_ctx *ctx = crypto_ablkcipher_ctx(cipher);
  1372. struct device *dev = ctx->dev;
  1373. struct talitos_desc *desc = &edesc->desc;
  1374. unsigned int cryptlen = areq->nbytes;
  1375. unsigned int ivsize = crypto_ablkcipher_ivsize(cipher);
  1376. int sg_count, ret;
  1377. struct talitos_private *priv = dev_get_drvdata(dev);
  1378. bool is_sec1 = has_ftr_sec1(priv);
  1379. /* first DWORD empty */
  1380. desc->ptr[0] = zero_entry;
  1381. /* cipher iv */
  1382. to_talitos_ptr(&desc->ptr[1], edesc->iv_dma, is_sec1);
  1383. to_talitos_ptr_len(&desc->ptr[1], ivsize, is_sec1);
  1384. to_talitos_ptr_extent_clear(&desc->ptr[1], is_sec1);
  1385. /* cipher key */
  1386. map_single_talitos_ptr(dev, &desc->ptr[2], ctx->keylen,
  1387. (char *)&ctx->key, DMA_TO_DEVICE);
  1388. /*
  1389. * cipher in
  1390. */
  1391. sg_count = map_sg_in_talitos_ptr(dev, areq->src, cryptlen, edesc,
  1392. (areq->src == areq->dst) ?
  1393. DMA_BIDIRECTIONAL : DMA_TO_DEVICE,
  1394. &desc->ptr[3]);
  1395. /* cipher out */
  1396. map_sg_out_talitos_ptr(dev, areq->dst, cryptlen, edesc,
  1397. (areq->src == areq->dst) ? DMA_NONE
  1398. : DMA_FROM_DEVICE,
  1399. &desc->ptr[4], sg_count);
  1400. /* iv out */
  1401. map_single_talitos_ptr(dev, &desc->ptr[5], ivsize, ctx->iv,
  1402. DMA_FROM_DEVICE);
  1403. /* last DWORD empty */
  1404. desc->ptr[6] = zero_entry;
  1405. ret = talitos_submit(dev, ctx->ch, desc, callback, areq);
  1406. if (ret != -EINPROGRESS) {
  1407. common_nonsnoop_unmap(dev, edesc, areq);
  1408. kfree(edesc);
  1409. }
  1410. return ret;
  1411. }
  1412. static struct talitos_edesc *ablkcipher_edesc_alloc(struct ablkcipher_request *
  1413. areq, bool encrypt)
  1414. {
  1415. struct crypto_ablkcipher *cipher = crypto_ablkcipher_reqtfm(areq);
  1416. struct talitos_ctx *ctx = crypto_ablkcipher_ctx(cipher);
  1417. unsigned int ivsize = crypto_ablkcipher_ivsize(cipher);
  1418. return talitos_edesc_alloc(ctx->dev, areq->src, areq->dst,
  1419. areq->info, 0, areq->nbytes, 0, ivsize, 0,
  1420. areq->base.flags, encrypt);
  1421. }
  1422. static int ablkcipher_encrypt(struct ablkcipher_request *areq)
  1423. {
  1424. struct crypto_ablkcipher *cipher = crypto_ablkcipher_reqtfm(areq);
  1425. struct talitos_ctx *ctx = crypto_ablkcipher_ctx(cipher);
  1426. struct talitos_edesc *edesc;
  1427. /* allocate extended descriptor */
  1428. edesc = ablkcipher_edesc_alloc(areq, true);
  1429. if (IS_ERR(edesc))
  1430. return PTR_ERR(edesc);
  1431. /* set encrypt */
  1432. edesc->desc.hdr = ctx->desc_hdr_template | DESC_HDR_MODE0_ENCRYPT;
  1433. return common_nonsnoop(edesc, areq, ablkcipher_done);
  1434. }
  1435. static int ablkcipher_decrypt(struct ablkcipher_request *areq)
  1436. {
  1437. struct crypto_ablkcipher *cipher = crypto_ablkcipher_reqtfm(areq);
  1438. struct talitos_ctx *ctx = crypto_ablkcipher_ctx(cipher);
  1439. struct talitos_edesc *edesc;
  1440. /* allocate extended descriptor */
  1441. edesc = ablkcipher_edesc_alloc(areq, false);
  1442. if (IS_ERR(edesc))
  1443. return PTR_ERR(edesc);
  1444. edesc->desc.hdr = ctx->desc_hdr_template | DESC_HDR_DIR_INBOUND;
  1445. return common_nonsnoop(edesc, areq, ablkcipher_done);
  1446. }
  1447. static void common_nonsnoop_hash_unmap(struct device *dev,
  1448. struct talitos_edesc *edesc,
  1449. struct ahash_request *areq)
  1450. {
  1451. struct talitos_ahash_req_ctx *req_ctx = ahash_request_ctx(areq);
  1452. struct talitos_private *priv = dev_get_drvdata(dev);
  1453. bool is_sec1 = has_ftr_sec1(priv);
  1454. unmap_single_talitos_ptr(dev, &edesc->desc.ptr[5], DMA_FROM_DEVICE);
  1455. unmap_sg_talitos_ptr(dev, req_ctx->psrc, NULL, 0, edesc);
  1456. /* When using hashctx-in, must unmap it. */
  1457. if (from_talitos_ptr_len(&edesc->desc.ptr[1], is_sec1))
  1458. unmap_single_talitos_ptr(dev, &edesc->desc.ptr[1],
  1459. DMA_TO_DEVICE);
  1460. if (from_talitos_ptr_len(&edesc->desc.ptr[2], is_sec1))
  1461. unmap_single_talitos_ptr(dev, &edesc->desc.ptr[2],
  1462. DMA_TO_DEVICE);
  1463. if (edesc->dma_len)
  1464. dma_unmap_single(dev, edesc->dma_link_tbl, edesc->dma_len,
  1465. DMA_BIDIRECTIONAL);
  1466. }
  1467. static void ahash_done(struct device *dev,
  1468. struct talitos_desc *desc, void *context,
  1469. int err)
  1470. {
  1471. struct ahash_request *areq = context;
  1472. struct talitos_edesc *edesc =
  1473. container_of(desc, struct talitos_edesc, desc);
  1474. struct talitos_ahash_req_ctx *req_ctx = ahash_request_ctx(areq);
  1475. if (!req_ctx->last && req_ctx->to_hash_later) {
  1476. /* Position any partial block for next update/final/finup */
  1477. memcpy(req_ctx->buf, req_ctx->bufnext, req_ctx->to_hash_later);
  1478. req_ctx->nbuf = req_ctx->to_hash_later;
  1479. }
  1480. common_nonsnoop_hash_unmap(dev, edesc, areq);
  1481. kfree(edesc);
  1482. areq->base.complete(&areq->base, err);
  1483. }
  1484. /*
  1485. * SEC1 doesn't like hashing of 0 sized message, so we do the padding
  1486. * ourself and submit a padded block
  1487. */
  1488. void talitos_handle_buggy_hash(struct talitos_ctx *ctx,
  1489. struct talitos_edesc *edesc,
  1490. struct talitos_ptr *ptr)
  1491. {
  1492. static u8 padded_hash[64] = {
  1493. 0x80, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
  1494. 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
  1495. 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
  1496. 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
  1497. };
  1498. pr_err_once("Bug in SEC1, padding ourself\n");
  1499. edesc->desc.hdr &= ~DESC_HDR_MODE0_MDEU_PAD;
  1500. map_single_talitos_ptr(ctx->dev, ptr, sizeof(padded_hash),
  1501. (char *)padded_hash, DMA_TO_DEVICE);
  1502. }
  1503. static int common_nonsnoop_hash(struct talitos_edesc *edesc,
  1504. struct ahash_request *areq, unsigned int length,
  1505. void (*callback) (struct device *dev,
  1506. struct talitos_desc *desc,
  1507. void *context, int error))
  1508. {
  1509. struct crypto_ahash *tfm = crypto_ahash_reqtfm(areq);
  1510. struct talitos_ctx *ctx = crypto_ahash_ctx(tfm);
  1511. struct talitos_ahash_req_ctx *req_ctx = ahash_request_ctx(areq);
  1512. struct device *dev = ctx->dev;
  1513. struct talitos_desc *desc = &edesc->desc;
  1514. int ret;
  1515. struct talitos_private *priv = dev_get_drvdata(dev);
  1516. bool is_sec1 = has_ftr_sec1(priv);
  1517. /* first DWORD empty */
  1518. desc->ptr[0] = zero_entry;
  1519. /* hash context in */
  1520. if (!req_ctx->first || req_ctx->swinit) {
  1521. map_single_talitos_ptr(dev, &desc->ptr[1],
  1522. req_ctx->hw_context_size,
  1523. (char *)req_ctx->hw_context,
  1524. DMA_TO_DEVICE);
  1525. req_ctx->swinit = 0;
  1526. } else {
  1527. desc->ptr[1] = zero_entry;
  1528. /* Indicate next op is not the first. */
  1529. req_ctx->first = 0;
  1530. }
  1531. /* HMAC key */
  1532. if (ctx->keylen)
  1533. map_single_talitos_ptr(dev, &desc->ptr[2], ctx->keylen,
  1534. (char *)&ctx->key, DMA_TO_DEVICE);
  1535. else
  1536. desc->ptr[2] = zero_entry;
  1537. /*
  1538. * data in
  1539. */
  1540. map_sg_in_talitos_ptr(dev, req_ctx->psrc, length, edesc,
  1541. DMA_TO_DEVICE, &desc->ptr[3]);
  1542. /* fifth DWORD empty */
  1543. desc->ptr[4] = zero_entry;
  1544. /* hash/HMAC out -or- hash context out */
  1545. if (req_ctx->last)
  1546. map_single_talitos_ptr(dev, &desc->ptr[5],
  1547. crypto_ahash_digestsize(tfm),
  1548. areq->result, DMA_FROM_DEVICE);
  1549. else
  1550. map_single_talitos_ptr(dev, &desc->ptr[5],
  1551. req_ctx->hw_context_size,
  1552. req_ctx->hw_context, DMA_FROM_DEVICE);
  1553. /* last DWORD empty */
  1554. desc->ptr[6] = zero_entry;
  1555. if (is_sec1 && from_talitos_ptr_len(&desc->ptr[3], true) == 0)
  1556. talitos_handle_buggy_hash(ctx, edesc, &desc->ptr[3]);
  1557. ret = talitos_submit(dev, ctx->ch, desc, callback, areq);
  1558. if (ret != -EINPROGRESS) {
  1559. common_nonsnoop_hash_unmap(dev, edesc, areq);
  1560. kfree(edesc);
  1561. }
  1562. return ret;
  1563. }
  1564. static struct talitos_edesc *ahash_edesc_alloc(struct ahash_request *areq,
  1565. unsigned int nbytes)
  1566. {
  1567. struct crypto_ahash *tfm = crypto_ahash_reqtfm(areq);
  1568. struct talitos_ctx *ctx = crypto_ahash_ctx(tfm);
  1569. struct talitos_ahash_req_ctx *req_ctx = ahash_request_ctx(areq);
  1570. return talitos_edesc_alloc(ctx->dev, req_ctx->psrc, NULL, NULL, 0,
  1571. nbytes, 0, 0, 0, areq->base.flags, false);
  1572. }
  1573. static int ahash_init(struct ahash_request *areq)
  1574. {
  1575. struct crypto_ahash *tfm = crypto_ahash_reqtfm(areq);
  1576. struct talitos_ahash_req_ctx *req_ctx = ahash_request_ctx(areq);
  1577. /* Initialize the context */
  1578. req_ctx->nbuf = 0;
  1579. req_ctx->first = 1; /* first indicates h/w must init its context */
  1580. req_ctx->swinit = 0; /* assume h/w init of context */
  1581. req_ctx->hw_context_size =
  1582. (crypto_ahash_digestsize(tfm) <= SHA256_DIGEST_SIZE)
  1583. ? TALITOS_MDEU_CONTEXT_SIZE_MD5_SHA1_SHA256
  1584. : TALITOS_MDEU_CONTEXT_SIZE_SHA384_SHA512;
  1585. return 0;
  1586. }
  1587. /*
  1588. * on h/w without explicit sha224 support, we initialize h/w context
  1589. * manually with sha224 constants, and tell it to run sha256.
  1590. */
  1591. static int ahash_init_sha224_swinit(struct ahash_request *areq)
  1592. {
  1593. struct talitos_ahash_req_ctx *req_ctx = ahash_request_ctx(areq);
  1594. ahash_init(areq);
  1595. req_ctx->swinit = 1;/* prevent h/w initting context with sha256 values*/
  1596. req_ctx->hw_context[0] = SHA224_H0;
  1597. req_ctx->hw_context[1] = SHA224_H1;
  1598. req_ctx->hw_context[2] = SHA224_H2;
  1599. req_ctx->hw_context[3] = SHA224_H3;
  1600. req_ctx->hw_context[4] = SHA224_H4;
  1601. req_ctx->hw_context[5] = SHA224_H5;
  1602. req_ctx->hw_context[6] = SHA224_H6;
  1603. req_ctx->hw_context[7] = SHA224_H7;
  1604. /* init 64-bit count */
  1605. req_ctx->hw_context[8] = 0;
  1606. req_ctx->hw_context[9] = 0;
  1607. return 0;
  1608. }
  1609. static int ahash_process_req(struct ahash_request *areq, unsigned int nbytes)
  1610. {
  1611. struct crypto_ahash *tfm = crypto_ahash_reqtfm(areq);
  1612. struct talitos_ctx *ctx = crypto_ahash_ctx(tfm);
  1613. struct talitos_ahash_req_ctx *req_ctx = ahash_request_ctx(areq);
  1614. struct talitos_edesc *edesc;
  1615. unsigned int blocksize =
  1616. crypto_tfm_alg_blocksize(crypto_ahash_tfm(tfm));
  1617. unsigned int nbytes_to_hash;
  1618. unsigned int to_hash_later;
  1619. unsigned int nsg;
  1620. bool chained;
  1621. if (!req_ctx->last && (nbytes + req_ctx->nbuf <= blocksize)) {
  1622. /* Buffer up to one whole block */
  1623. sg_copy_to_buffer(areq->src,
  1624. sg_count(areq->src, nbytes, &chained),
  1625. req_ctx->buf + req_ctx->nbuf, nbytes);
  1626. req_ctx->nbuf += nbytes;
  1627. return 0;
  1628. }
  1629. /* At least (blocksize + 1) bytes are available to hash */
  1630. nbytes_to_hash = nbytes + req_ctx->nbuf;
  1631. to_hash_later = nbytes_to_hash & (blocksize - 1);
  1632. if (req_ctx->last)
  1633. to_hash_later = 0;
  1634. else if (to_hash_later)
  1635. /* There is a partial block. Hash the full block(s) now */
  1636. nbytes_to_hash -= to_hash_later;
  1637. else {
  1638. /* Keep one block buffered */
  1639. nbytes_to_hash -= blocksize;
  1640. to_hash_later = blocksize;
  1641. }
  1642. /* Chain in any previously buffered data */
  1643. if (req_ctx->nbuf) {
  1644. nsg = (req_ctx->nbuf < nbytes_to_hash) ? 2 : 1;
  1645. sg_init_table(req_ctx->bufsl, nsg);
  1646. sg_set_buf(req_ctx->bufsl, req_ctx->buf, req_ctx->nbuf);
  1647. if (nsg > 1)
  1648. sg_chain(req_ctx->bufsl, 2, areq->src);
  1649. req_ctx->psrc = req_ctx->bufsl;
  1650. } else
  1651. req_ctx->psrc = areq->src;
  1652. if (to_hash_later) {
  1653. int nents = sg_count(areq->src, nbytes, &chained);
  1654. sg_pcopy_to_buffer(areq->src, nents,
  1655. req_ctx->bufnext,
  1656. to_hash_later,
  1657. nbytes - to_hash_later);
  1658. }
  1659. req_ctx->to_hash_later = to_hash_later;
  1660. /* Allocate extended descriptor */
  1661. edesc = ahash_edesc_alloc(areq, nbytes_to_hash);
  1662. if (IS_ERR(edesc))
  1663. return PTR_ERR(edesc);
  1664. edesc->desc.hdr = ctx->desc_hdr_template;
  1665. /* On last one, request SEC to pad; otherwise continue */
  1666. if (req_ctx->last)
  1667. edesc->desc.hdr |= DESC_HDR_MODE0_MDEU_PAD;
  1668. else
  1669. edesc->desc.hdr |= DESC_HDR_MODE0_MDEU_CONT;
  1670. /* request SEC to INIT hash. */
  1671. if (req_ctx->first && !req_ctx->swinit)
  1672. edesc->desc.hdr |= DESC_HDR_MODE0_MDEU_INIT;
  1673. /* When the tfm context has a keylen, it's an HMAC.
  1674. * A first or last (ie. not middle) descriptor must request HMAC.
  1675. */
  1676. if (ctx->keylen && (req_ctx->first || req_ctx->last))
  1677. edesc->desc.hdr |= DESC_HDR_MODE0_MDEU_HMAC;
  1678. return common_nonsnoop_hash(edesc, areq, nbytes_to_hash,
  1679. ahash_done);
  1680. }
  1681. static int ahash_update(struct ahash_request *areq)
  1682. {
  1683. struct talitos_ahash_req_ctx *req_ctx = ahash_request_ctx(areq);
  1684. req_ctx->last = 0;
  1685. return ahash_process_req(areq, areq->nbytes);
  1686. }
  1687. static int ahash_final(struct ahash_request *areq)
  1688. {
  1689. struct talitos_ahash_req_ctx *req_ctx = ahash_request_ctx(areq);
  1690. req_ctx->last = 1;
  1691. return ahash_process_req(areq, 0);
  1692. }
  1693. static int ahash_finup(struct ahash_request *areq)
  1694. {
  1695. struct talitos_ahash_req_ctx *req_ctx = ahash_request_ctx(areq);
  1696. req_ctx->last = 1;
  1697. return ahash_process_req(areq, areq->nbytes);
  1698. }
  1699. static int ahash_digest(struct ahash_request *areq)
  1700. {
  1701. struct talitos_ahash_req_ctx *req_ctx = ahash_request_ctx(areq);
  1702. struct crypto_ahash *ahash = crypto_ahash_reqtfm(areq);
  1703. ahash->init(areq);
  1704. req_ctx->last = 1;
  1705. return ahash_process_req(areq, areq->nbytes);
  1706. }
  1707. struct keyhash_result {
  1708. struct completion completion;
  1709. int err;
  1710. };
  1711. static void keyhash_complete(struct crypto_async_request *req, int err)
  1712. {
  1713. struct keyhash_result *res = req->data;
  1714. if (err == -EINPROGRESS)
  1715. return;
  1716. res->err = err;
  1717. complete(&res->completion);
  1718. }
  1719. static int keyhash(struct crypto_ahash *tfm, const u8 *key, unsigned int keylen,
  1720. u8 *hash)
  1721. {
  1722. struct talitos_ctx *ctx = crypto_tfm_ctx(crypto_ahash_tfm(tfm));
  1723. struct scatterlist sg[1];
  1724. struct ahash_request *req;
  1725. struct keyhash_result hresult;
  1726. int ret;
  1727. init_completion(&hresult.completion);
  1728. req = ahash_request_alloc(tfm, GFP_KERNEL);
  1729. if (!req)
  1730. return -ENOMEM;
  1731. /* Keep tfm keylen == 0 during hash of the long key */
  1732. ctx->keylen = 0;
  1733. ahash_request_set_callback(req, CRYPTO_TFM_REQ_MAY_BACKLOG,
  1734. keyhash_complete, &hresult);
  1735. sg_init_one(&sg[0], key, keylen);
  1736. ahash_request_set_crypt(req, sg, hash, keylen);
  1737. ret = crypto_ahash_digest(req);
  1738. switch (ret) {
  1739. case 0:
  1740. break;
  1741. case -EINPROGRESS:
  1742. case -EBUSY:
  1743. ret = wait_for_completion_interruptible(
  1744. &hresult.completion);
  1745. if (!ret)
  1746. ret = hresult.err;
  1747. break;
  1748. default:
  1749. break;
  1750. }
  1751. ahash_request_free(req);
  1752. return ret;
  1753. }
  1754. static int ahash_setkey(struct crypto_ahash *tfm, const u8 *key,
  1755. unsigned int keylen)
  1756. {
  1757. struct talitos_ctx *ctx = crypto_tfm_ctx(crypto_ahash_tfm(tfm));
  1758. unsigned int blocksize =
  1759. crypto_tfm_alg_blocksize(crypto_ahash_tfm(tfm));
  1760. unsigned int digestsize = crypto_ahash_digestsize(tfm);
  1761. unsigned int keysize = keylen;
  1762. u8 hash[SHA512_DIGEST_SIZE];
  1763. int ret;
  1764. if (keylen <= blocksize)
  1765. memcpy(ctx->key, key, keysize);
  1766. else {
  1767. /* Must get the hash of the long key */
  1768. ret = keyhash(tfm, key, keylen, hash);
  1769. if (ret) {
  1770. crypto_ahash_set_flags(tfm, CRYPTO_TFM_RES_BAD_KEY_LEN);
  1771. return -EINVAL;
  1772. }
  1773. keysize = digestsize;
  1774. memcpy(ctx->key, hash, digestsize);
  1775. }
  1776. ctx->keylen = keysize;
  1777. return 0;
  1778. }
  1779. struct talitos_alg_template {
  1780. u32 type;
  1781. union {
  1782. struct crypto_alg crypto;
  1783. struct ahash_alg hash;
  1784. struct aead_alg aead;
  1785. } alg;
  1786. __be32 desc_hdr_template;
  1787. };
  1788. static struct talitos_alg_template driver_algs[] = {
  1789. /* AEAD algorithms. These use a single-pass ipsec_esp descriptor */
  1790. { .type = CRYPTO_ALG_TYPE_AEAD,
  1791. .alg.aead = {
  1792. .base = {
  1793. .cra_name = "authenc(hmac(sha1),cbc(aes))",
  1794. .cra_driver_name = "authenc-hmac-sha1-"
  1795. "cbc-aes-talitos",
  1796. .cra_blocksize = AES_BLOCK_SIZE,
  1797. .cra_flags = CRYPTO_ALG_ASYNC,
  1798. },
  1799. .ivsize = AES_BLOCK_SIZE,
  1800. .maxauthsize = SHA1_DIGEST_SIZE,
  1801. },
  1802. .desc_hdr_template = DESC_HDR_TYPE_IPSEC_ESP |
  1803. DESC_HDR_SEL0_AESU |
  1804. DESC_HDR_MODE0_AESU_CBC |
  1805. DESC_HDR_SEL1_MDEUA |
  1806. DESC_HDR_MODE1_MDEU_INIT |
  1807. DESC_HDR_MODE1_MDEU_PAD |
  1808. DESC_HDR_MODE1_MDEU_SHA1_HMAC,
  1809. },
  1810. { .type = CRYPTO_ALG_TYPE_AEAD,
  1811. .alg.aead = {
  1812. .base = {
  1813. .cra_name = "authenc(hmac(sha1),"
  1814. "cbc(des3_ede))",
  1815. .cra_driver_name = "authenc-hmac-sha1-"
  1816. "cbc-3des-talitos",
  1817. .cra_blocksize = DES3_EDE_BLOCK_SIZE,
  1818. .cra_flags = CRYPTO_ALG_ASYNC,
  1819. },
  1820. .ivsize = DES3_EDE_BLOCK_SIZE,
  1821. .maxauthsize = SHA1_DIGEST_SIZE,
  1822. },
  1823. .desc_hdr_template = DESC_HDR_TYPE_IPSEC_ESP |
  1824. DESC_HDR_SEL0_DEU |
  1825. DESC_HDR_MODE0_DEU_CBC |
  1826. DESC_HDR_MODE0_DEU_3DES |
  1827. DESC_HDR_SEL1_MDEUA |
  1828. DESC_HDR_MODE1_MDEU_INIT |
  1829. DESC_HDR_MODE1_MDEU_PAD |
  1830. DESC_HDR_MODE1_MDEU_SHA1_HMAC,
  1831. },
  1832. { .type = CRYPTO_ALG_TYPE_AEAD,
  1833. .alg.aead = {
  1834. .base = {
  1835. .cra_name = "authenc(hmac(sha224),cbc(aes))",
  1836. .cra_driver_name = "authenc-hmac-sha224-"
  1837. "cbc-aes-talitos",
  1838. .cra_blocksize = AES_BLOCK_SIZE,
  1839. .cra_flags = CRYPTO_ALG_ASYNC,
  1840. },
  1841. .ivsize = AES_BLOCK_SIZE,
  1842. .maxauthsize = SHA224_DIGEST_SIZE,
  1843. },
  1844. .desc_hdr_template = DESC_HDR_TYPE_IPSEC_ESP |
  1845. DESC_HDR_SEL0_AESU |
  1846. DESC_HDR_MODE0_AESU_CBC |
  1847. DESC_HDR_SEL1_MDEUA |
  1848. DESC_HDR_MODE1_MDEU_INIT |
  1849. DESC_HDR_MODE1_MDEU_PAD |
  1850. DESC_HDR_MODE1_MDEU_SHA224_HMAC,
  1851. },
  1852. { .type = CRYPTO_ALG_TYPE_AEAD,
  1853. .alg.aead = {
  1854. .base = {
  1855. .cra_name = "authenc(hmac(sha224),"
  1856. "cbc(des3_ede))",
  1857. .cra_driver_name = "authenc-hmac-sha224-"
  1858. "cbc-3des-talitos",
  1859. .cra_blocksize = DES3_EDE_BLOCK_SIZE,
  1860. .cra_flags = CRYPTO_ALG_ASYNC,
  1861. },
  1862. .ivsize = DES3_EDE_BLOCK_SIZE,
  1863. .maxauthsize = SHA224_DIGEST_SIZE,
  1864. },
  1865. .desc_hdr_template = DESC_HDR_TYPE_IPSEC_ESP |
  1866. DESC_HDR_SEL0_DEU |
  1867. DESC_HDR_MODE0_DEU_CBC |
  1868. DESC_HDR_MODE0_DEU_3DES |
  1869. DESC_HDR_SEL1_MDEUA |
  1870. DESC_HDR_MODE1_MDEU_INIT |
  1871. DESC_HDR_MODE1_MDEU_PAD |
  1872. DESC_HDR_MODE1_MDEU_SHA224_HMAC,
  1873. },
  1874. { .type = CRYPTO_ALG_TYPE_AEAD,
  1875. .alg.aead = {
  1876. .base = {
  1877. .cra_name = "authenc(hmac(sha256),cbc(aes))",
  1878. .cra_driver_name = "authenc-hmac-sha256-"
  1879. "cbc-aes-talitos",
  1880. .cra_blocksize = AES_BLOCK_SIZE,
  1881. .cra_flags = CRYPTO_ALG_ASYNC,
  1882. },
  1883. .ivsize = AES_BLOCK_SIZE,
  1884. .maxauthsize = SHA256_DIGEST_SIZE,
  1885. },
  1886. .desc_hdr_template = DESC_HDR_TYPE_IPSEC_ESP |
  1887. DESC_HDR_SEL0_AESU |
  1888. DESC_HDR_MODE0_AESU_CBC |
  1889. DESC_HDR_SEL1_MDEUA |
  1890. DESC_HDR_MODE1_MDEU_INIT |
  1891. DESC_HDR_MODE1_MDEU_PAD |
  1892. DESC_HDR_MODE1_MDEU_SHA256_HMAC,
  1893. },
  1894. { .type = CRYPTO_ALG_TYPE_AEAD,
  1895. .alg.aead = {
  1896. .base = {
  1897. .cra_name = "authenc(hmac(sha256),"
  1898. "cbc(des3_ede))",
  1899. .cra_driver_name = "authenc-hmac-sha256-"
  1900. "cbc-3des-talitos",
  1901. .cra_blocksize = DES3_EDE_BLOCK_SIZE,
  1902. .cra_flags = CRYPTO_ALG_ASYNC,
  1903. },
  1904. .ivsize = DES3_EDE_BLOCK_SIZE,
  1905. .maxauthsize = SHA256_DIGEST_SIZE,
  1906. },
  1907. .desc_hdr_template = DESC_HDR_TYPE_IPSEC_ESP |
  1908. DESC_HDR_SEL0_DEU |
  1909. DESC_HDR_MODE0_DEU_CBC |
  1910. DESC_HDR_MODE0_DEU_3DES |
  1911. DESC_HDR_SEL1_MDEUA |
  1912. DESC_HDR_MODE1_MDEU_INIT |
  1913. DESC_HDR_MODE1_MDEU_PAD |
  1914. DESC_HDR_MODE1_MDEU_SHA256_HMAC,
  1915. },
  1916. { .type = CRYPTO_ALG_TYPE_AEAD,
  1917. .alg.aead = {
  1918. .base = {
  1919. .cra_name = "authenc(hmac(sha384),cbc(aes))",
  1920. .cra_driver_name = "authenc-hmac-sha384-"
  1921. "cbc-aes-talitos",
  1922. .cra_blocksize = AES_BLOCK_SIZE,
  1923. .cra_flags = CRYPTO_ALG_ASYNC,
  1924. },
  1925. .ivsize = AES_BLOCK_SIZE,
  1926. .maxauthsize = SHA384_DIGEST_SIZE,
  1927. },
  1928. .desc_hdr_template = DESC_HDR_TYPE_IPSEC_ESP |
  1929. DESC_HDR_SEL0_AESU |
  1930. DESC_HDR_MODE0_AESU_CBC |
  1931. DESC_HDR_SEL1_MDEUB |
  1932. DESC_HDR_MODE1_MDEU_INIT |
  1933. DESC_HDR_MODE1_MDEU_PAD |
  1934. DESC_HDR_MODE1_MDEUB_SHA384_HMAC,
  1935. },
  1936. { .type = CRYPTO_ALG_TYPE_AEAD,
  1937. .alg.aead = {
  1938. .base = {
  1939. .cra_name = "authenc(hmac(sha384),"
  1940. "cbc(des3_ede))",
  1941. .cra_driver_name = "authenc-hmac-sha384-"
  1942. "cbc-3des-talitos",
  1943. .cra_blocksize = DES3_EDE_BLOCK_SIZE,
  1944. .cra_flags = CRYPTO_ALG_ASYNC,
  1945. },
  1946. .ivsize = DES3_EDE_BLOCK_SIZE,
  1947. .maxauthsize = SHA384_DIGEST_SIZE,
  1948. },
  1949. .desc_hdr_template = DESC_HDR_TYPE_IPSEC_ESP |
  1950. DESC_HDR_SEL0_DEU |
  1951. DESC_HDR_MODE0_DEU_CBC |
  1952. DESC_HDR_MODE0_DEU_3DES |
  1953. DESC_HDR_SEL1_MDEUB |
  1954. DESC_HDR_MODE1_MDEU_INIT |
  1955. DESC_HDR_MODE1_MDEU_PAD |
  1956. DESC_HDR_MODE1_MDEUB_SHA384_HMAC,
  1957. },
  1958. { .type = CRYPTO_ALG_TYPE_AEAD,
  1959. .alg.aead = {
  1960. .base = {
  1961. .cra_name = "authenc(hmac(sha512),cbc(aes))",
  1962. .cra_driver_name = "authenc-hmac-sha512-"
  1963. "cbc-aes-talitos",
  1964. .cra_blocksize = AES_BLOCK_SIZE,
  1965. .cra_flags = CRYPTO_ALG_ASYNC,
  1966. },
  1967. .ivsize = AES_BLOCK_SIZE,
  1968. .maxauthsize = SHA512_DIGEST_SIZE,
  1969. },
  1970. .desc_hdr_template = DESC_HDR_TYPE_IPSEC_ESP |
  1971. DESC_HDR_SEL0_AESU |
  1972. DESC_HDR_MODE0_AESU_CBC |
  1973. DESC_HDR_SEL1_MDEUB |
  1974. DESC_HDR_MODE1_MDEU_INIT |
  1975. DESC_HDR_MODE1_MDEU_PAD |
  1976. DESC_HDR_MODE1_MDEUB_SHA512_HMAC,
  1977. },
  1978. { .type = CRYPTO_ALG_TYPE_AEAD,
  1979. .alg.aead = {
  1980. .base = {
  1981. .cra_name = "authenc(hmac(sha512),"
  1982. "cbc(des3_ede))",
  1983. .cra_driver_name = "authenc-hmac-sha512-"
  1984. "cbc-3des-talitos",
  1985. .cra_blocksize = DES3_EDE_BLOCK_SIZE,
  1986. .cra_flags = CRYPTO_ALG_ASYNC,
  1987. },
  1988. .ivsize = DES3_EDE_BLOCK_SIZE,
  1989. .maxauthsize = SHA512_DIGEST_SIZE,
  1990. },
  1991. .desc_hdr_template = DESC_HDR_TYPE_IPSEC_ESP |
  1992. DESC_HDR_SEL0_DEU |
  1993. DESC_HDR_MODE0_DEU_CBC |
  1994. DESC_HDR_MODE0_DEU_3DES |
  1995. DESC_HDR_SEL1_MDEUB |
  1996. DESC_HDR_MODE1_MDEU_INIT |
  1997. DESC_HDR_MODE1_MDEU_PAD |
  1998. DESC_HDR_MODE1_MDEUB_SHA512_HMAC,
  1999. },
  2000. { .type = CRYPTO_ALG_TYPE_AEAD,
  2001. .alg.aead = {
  2002. .base = {
  2003. .cra_name = "authenc(hmac(md5),cbc(aes))",
  2004. .cra_driver_name = "authenc-hmac-md5-"
  2005. "cbc-aes-talitos",
  2006. .cra_blocksize = AES_BLOCK_SIZE,
  2007. .cra_flags = CRYPTO_ALG_ASYNC,
  2008. },
  2009. .ivsize = AES_BLOCK_SIZE,
  2010. .maxauthsize = MD5_DIGEST_SIZE,
  2011. },
  2012. .desc_hdr_template = DESC_HDR_TYPE_IPSEC_ESP |
  2013. DESC_HDR_SEL0_AESU |
  2014. DESC_HDR_MODE0_AESU_CBC |
  2015. DESC_HDR_SEL1_MDEUA |
  2016. DESC_HDR_MODE1_MDEU_INIT |
  2017. DESC_HDR_MODE1_MDEU_PAD |
  2018. DESC_HDR_MODE1_MDEU_MD5_HMAC,
  2019. },
  2020. { .type = CRYPTO_ALG_TYPE_AEAD,
  2021. .alg.aead = {
  2022. .base = {
  2023. .cra_name = "authenc(hmac(md5),cbc(des3_ede))",
  2024. .cra_driver_name = "authenc-hmac-md5-"
  2025. "cbc-3des-talitos",
  2026. .cra_blocksize = DES3_EDE_BLOCK_SIZE,
  2027. .cra_flags = CRYPTO_ALG_ASYNC,
  2028. },
  2029. .ivsize = DES3_EDE_BLOCK_SIZE,
  2030. .maxauthsize = MD5_DIGEST_SIZE,
  2031. },
  2032. .desc_hdr_template = DESC_HDR_TYPE_IPSEC_ESP |
  2033. DESC_HDR_SEL0_DEU |
  2034. DESC_HDR_MODE0_DEU_CBC |
  2035. DESC_HDR_MODE0_DEU_3DES |
  2036. DESC_HDR_SEL1_MDEUA |
  2037. DESC_HDR_MODE1_MDEU_INIT |
  2038. DESC_HDR_MODE1_MDEU_PAD |
  2039. DESC_HDR_MODE1_MDEU_MD5_HMAC,
  2040. },
  2041. /* ABLKCIPHER algorithms. */
  2042. { .type = CRYPTO_ALG_TYPE_ABLKCIPHER,
  2043. .alg.crypto = {
  2044. .cra_name = "cbc(aes)",
  2045. .cra_driver_name = "cbc-aes-talitos",
  2046. .cra_blocksize = AES_BLOCK_SIZE,
  2047. .cra_flags = CRYPTO_ALG_TYPE_ABLKCIPHER |
  2048. CRYPTO_ALG_ASYNC,
  2049. .cra_ablkcipher = {
  2050. .min_keysize = AES_MIN_KEY_SIZE,
  2051. .max_keysize = AES_MAX_KEY_SIZE,
  2052. .ivsize = AES_BLOCK_SIZE,
  2053. }
  2054. },
  2055. .desc_hdr_template = DESC_HDR_TYPE_COMMON_NONSNOOP_NO_AFEU |
  2056. DESC_HDR_SEL0_AESU |
  2057. DESC_HDR_MODE0_AESU_CBC,
  2058. },
  2059. { .type = CRYPTO_ALG_TYPE_ABLKCIPHER,
  2060. .alg.crypto = {
  2061. .cra_name = "cbc(des3_ede)",
  2062. .cra_driver_name = "cbc-3des-talitos",
  2063. .cra_blocksize = DES3_EDE_BLOCK_SIZE,
  2064. .cra_flags = CRYPTO_ALG_TYPE_ABLKCIPHER |
  2065. CRYPTO_ALG_ASYNC,
  2066. .cra_ablkcipher = {
  2067. .min_keysize = DES3_EDE_KEY_SIZE,
  2068. .max_keysize = DES3_EDE_KEY_SIZE,
  2069. .ivsize = DES3_EDE_BLOCK_SIZE,
  2070. }
  2071. },
  2072. .desc_hdr_template = DESC_HDR_TYPE_COMMON_NONSNOOP_NO_AFEU |
  2073. DESC_HDR_SEL0_DEU |
  2074. DESC_HDR_MODE0_DEU_CBC |
  2075. DESC_HDR_MODE0_DEU_3DES,
  2076. },
  2077. /* AHASH algorithms. */
  2078. { .type = CRYPTO_ALG_TYPE_AHASH,
  2079. .alg.hash = {
  2080. .halg.digestsize = MD5_DIGEST_SIZE,
  2081. .halg.base = {
  2082. .cra_name = "md5",
  2083. .cra_driver_name = "md5-talitos",
  2084. .cra_blocksize = MD5_HMAC_BLOCK_SIZE,
  2085. .cra_flags = CRYPTO_ALG_TYPE_AHASH |
  2086. CRYPTO_ALG_ASYNC,
  2087. }
  2088. },
  2089. .desc_hdr_template = DESC_HDR_TYPE_COMMON_NONSNOOP_NO_AFEU |
  2090. DESC_HDR_SEL0_MDEUA |
  2091. DESC_HDR_MODE0_MDEU_MD5,
  2092. },
  2093. { .type = CRYPTO_ALG_TYPE_AHASH,
  2094. .alg.hash = {
  2095. .halg.digestsize = SHA1_DIGEST_SIZE,
  2096. .halg.base = {
  2097. .cra_name = "sha1",
  2098. .cra_driver_name = "sha1-talitos",
  2099. .cra_blocksize = SHA1_BLOCK_SIZE,
  2100. .cra_flags = CRYPTO_ALG_TYPE_AHASH |
  2101. CRYPTO_ALG_ASYNC,
  2102. }
  2103. },
  2104. .desc_hdr_template = DESC_HDR_TYPE_COMMON_NONSNOOP_NO_AFEU |
  2105. DESC_HDR_SEL0_MDEUA |
  2106. DESC_HDR_MODE0_MDEU_SHA1,
  2107. },
  2108. { .type = CRYPTO_ALG_TYPE_AHASH,
  2109. .alg.hash = {
  2110. .halg.digestsize = SHA224_DIGEST_SIZE,
  2111. .halg.base = {
  2112. .cra_name = "sha224",
  2113. .cra_driver_name = "sha224-talitos",
  2114. .cra_blocksize = SHA224_BLOCK_SIZE,
  2115. .cra_flags = CRYPTO_ALG_TYPE_AHASH |
  2116. CRYPTO_ALG_ASYNC,
  2117. }
  2118. },
  2119. .desc_hdr_template = DESC_HDR_TYPE_COMMON_NONSNOOP_NO_AFEU |
  2120. DESC_HDR_SEL0_MDEUA |
  2121. DESC_HDR_MODE0_MDEU_SHA224,
  2122. },
  2123. { .type = CRYPTO_ALG_TYPE_AHASH,
  2124. .alg.hash = {
  2125. .halg.digestsize = SHA256_DIGEST_SIZE,
  2126. .halg.base = {
  2127. .cra_name = "sha256",
  2128. .cra_driver_name = "sha256-talitos",
  2129. .cra_blocksize = SHA256_BLOCK_SIZE,
  2130. .cra_flags = CRYPTO_ALG_TYPE_AHASH |
  2131. CRYPTO_ALG_ASYNC,
  2132. }
  2133. },
  2134. .desc_hdr_template = DESC_HDR_TYPE_COMMON_NONSNOOP_NO_AFEU |
  2135. DESC_HDR_SEL0_MDEUA |
  2136. DESC_HDR_MODE0_MDEU_SHA256,
  2137. },
  2138. { .type = CRYPTO_ALG_TYPE_AHASH,
  2139. .alg.hash = {
  2140. .halg.digestsize = SHA384_DIGEST_SIZE,
  2141. .halg.base = {
  2142. .cra_name = "sha384",
  2143. .cra_driver_name = "sha384-talitos",
  2144. .cra_blocksize = SHA384_BLOCK_SIZE,
  2145. .cra_flags = CRYPTO_ALG_TYPE_AHASH |
  2146. CRYPTO_ALG_ASYNC,
  2147. }
  2148. },
  2149. .desc_hdr_template = DESC_HDR_TYPE_COMMON_NONSNOOP_NO_AFEU |
  2150. DESC_HDR_SEL0_MDEUB |
  2151. DESC_HDR_MODE0_MDEUB_SHA384,
  2152. },
  2153. { .type = CRYPTO_ALG_TYPE_AHASH,
  2154. .alg.hash = {
  2155. .halg.digestsize = SHA512_DIGEST_SIZE,
  2156. .halg.base = {
  2157. .cra_name = "sha512",
  2158. .cra_driver_name = "sha512-talitos",
  2159. .cra_blocksize = SHA512_BLOCK_SIZE,
  2160. .cra_flags = CRYPTO_ALG_TYPE_AHASH |
  2161. CRYPTO_ALG_ASYNC,
  2162. }
  2163. },
  2164. .desc_hdr_template = DESC_HDR_TYPE_COMMON_NONSNOOP_NO_AFEU |
  2165. DESC_HDR_SEL0_MDEUB |
  2166. DESC_HDR_MODE0_MDEUB_SHA512,
  2167. },
  2168. { .type = CRYPTO_ALG_TYPE_AHASH,
  2169. .alg.hash = {
  2170. .halg.digestsize = MD5_DIGEST_SIZE,
  2171. .halg.base = {
  2172. .cra_name = "hmac(md5)",
  2173. .cra_driver_name = "hmac-md5-talitos",
  2174. .cra_blocksize = MD5_HMAC_BLOCK_SIZE,
  2175. .cra_flags = CRYPTO_ALG_TYPE_AHASH |
  2176. CRYPTO_ALG_ASYNC,
  2177. }
  2178. },
  2179. .desc_hdr_template = DESC_HDR_TYPE_COMMON_NONSNOOP_NO_AFEU |
  2180. DESC_HDR_SEL0_MDEUA |
  2181. DESC_HDR_MODE0_MDEU_MD5,
  2182. },
  2183. { .type = CRYPTO_ALG_TYPE_AHASH,
  2184. .alg.hash = {
  2185. .halg.digestsize = SHA1_DIGEST_SIZE,
  2186. .halg.base = {
  2187. .cra_name = "hmac(sha1)",
  2188. .cra_driver_name = "hmac-sha1-talitos",
  2189. .cra_blocksize = SHA1_BLOCK_SIZE,
  2190. .cra_flags = CRYPTO_ALG_TYPE_AHASH |
  2191. CRYPTO_ALG_ASYNC,
  2192. }
  2193. },
  2194. .desc_hdr_template = DESC_HDR_TYPE_COMMON_NONSNOOP_NO_AFEU |
  2195. DESC_HDR_SEL0_MDEUA |
  2196. DESC_HDR_MODE0_MDEU_SHA1,
  2197. },
  2198. { .type = CRYPTO_ALG_TYPE_AHASH,
  2199. .alg.hash = {
  2200. .halg.digestsize = SHA224_DIGEST_SIZE,
  2201. .halg.base = {
  2202. .cra_name = "hmac(sha224)",
  2203. .cra_driver_name = "hmac-sha224-talitos",
  2204. .cra_blocksize = SHA224_BLOCK_SIZE,
  2205. .cra_flags = CRYPTO_ALG_TYPE_AHASH |
  2206. CRYPTO_ALG_ASYNC,
  2207. }
  2208. },
  2209. .desc_hdr_template = DESC_HDR_TYPE_COMMON_NONSNOOP_NO_AFEU |
  2210. DESC_HDR_SEL0_MDEUA |
  2211. DESC_HDR_MODE0_MDEU_SHA224,
  2212. },
  2213. { .type = CRYPTO_ALG_TYPE_AHASH,
  2214. .alg.hash = {
  2215. .halg.digestsize = SHA256_DIGEST_SIZE,
  2216. .halg.base = {
  2217. .cra_name = "hmac(sha256)",
  2218. .cra_driver_name = "hmac-sha256-talitos",
  2219. .cra_blocksize = SHA256_BLOCK_SIZE,
  2220. .cra_flags = CRYPTO_ALG_TYPE_AHASH |
  2221. CRYPTO_ALG_ASYNC,
  2222. }
  2223. },
  2224. .desc_hdr_template = DESC_HDR_TYPE_COMMON_NONSNOOP_NO_AFEU |
  2225. DESC_HDR_SEL0_MDEUA |
  2226. DESC_HDR_MODE0_MDEU_SHA256,
  2227. },
  2228. { .type = CRYPTO_ALG_TYPE_AHASH,
  2229. .alg.hash = {
  2230. .halg.digestsize = SHA384_DIGEST_SIZE,
  2231. .halg.base = {
  2232. .cra_name = "hmac(sha384)",
  2233. .cra_driver_name = "hmac-sha384-talitos",
  2234. .cra_blocksize = SHA384_BLOCK_SIZE,
  2235. .cra_flags = CRYPTO_ALG_TYPE_AHASH |
  2236. CRYPTO_ALG_ASYNC,
  2237. }
  2238. },
  2239. .desc_hdr_template = DESC_HDR_TYPE_COMMON_NONSNOOP_NO_AFEU |
  2240. DESC_HDR_SEL0_MDEUB |
  2241. DESC_HDR_MODE0_MDEUB_SHA384,
  2242. },
  2243. { .type = CRYPTO_ALG_TYPE_AHASH,
  2244. .alg.hash = {
  2245. .halg.digestsize = SHA512_DIGEST_SIZE,
  2246. .halg.base = {
  2247. .cra_name = "hmac(sha512)",
  2248. .cra_driver_name = "hmac-sha512-talitos",
  2249. .cra_blocksize = SHA512_BLOCK_SIZE,
  2250. .cra_flags = CRYPTO_ALG_TYPE_AHASH |
  2251. CRYPTO_ALG_ASYNC,
  2252. }
  2253. },
  2254. .desc_hdr_template = DESC_HDR_TYPE_COMMON_NONSNOOP_NO_AFEU |
  2255. DESC_HDR_SEL0_MDEUB |
  2256. DESC_HDR_MODE0_MDEUB_SHA512,
  2257. }
  2258. };
  2259. struct talitos_crypto_alg {
  2260. struct list_head entry;
  2261. struct device *dev;
  2262. struct talitos_alg_template algt;
  2263. };
  2264. static int talitos_cra_init(struct crypto_tfm *tfm)
  2265. {
  2266. struct crypto_alg *alg = tfm->__crt_alg;
  2267. struct talitos_crypto_alg *talitos_alg;
  2268. struct talitos_ctx *ctx = crypto_tfm_ctx(tfm);
  2269. struct talitos_private *priv;
  2270. if ((alg->cra_flags & CRYPTO_ALG_TYPE_MASK) == CRYPTO_ALG_TYPE_AHASH)
  2271. talitos_alg = container_of(__crypto_ahash_alg(alg),
  2272. struct talitos_crypto_alg,
  2273. algt.alg.hash);
  2274. else
  2275. talitos_alg = container_of(alg, struct talitos_crypto_alg,
  2276. algt.alg.crypto);
  2277. /* update context with ptr to dev */
  2278. ctx->dev = talitos_alg->dev;
  2279. /* assign SEC channel to tfm in round-robin fashion */
  2280. priv = dev_get_drvdata(ctx->dev);
  2281. ctx->ch = atomic_inc_return(&priv->last_chan) &
  2282. (priv->num_channels - 1);
  2283. /* copy descriptor header template value */
  2284. ctx->desc_hdr_template = talitos_alg->algt.desc_hdr_template;
  2285. /* select done notification */
  2286. ctx->desc_hdr_template |= DESC_HDR_DONE_NOTIFY;
  2287. return 0;
  2288. }
  2289. static int talitos_cra_init_aead(struct crypto_aead *tfm)
  2290. {
  2291. talitos_cra_init(crypto_aead_tfm(tfm));
  2292. return 0;
  2293. }
  2294. static int talitos_cra_init_ahash(struct crypto_tfm *tfm)
  2295. {
  2296. struct talitos_ctx *ctx = crypto_tfm_ctx(tfm);
  2297. talitos_cra_init(tfm);
  2298. ctx->keylen = 0;
  2299. crypto_ahash_set_reqsize(__crypto_ahash_cast(tfm),
  2300. sizeof(struct talitos_ahash_req_ctx));
  2301. return 0;
  2302. }
  2303. /*
  2304. * given the alg's descriptor header template, determine whether descriptor
  2305. * type and primary/secondary execution units required match the hw
  2306. * capabilities description provided in the device tree node.
  2307. */
  2308. static int hw_supports(struct device *dev, __be32 desc_hdr_template)
  2309. {
  2310. struct talitos_private *priv = dev_get_drvdata(dev);
  2311. int ret;
  2312. ret = (1 << DESC_TYPE(desc_hdr_template) & priv->desc_types) &&
  2313. (1 << PRIMARY_EU(desc_hdr_template) & priv->exec_units);
  2314. if (SECONDARY_EU(desc_hdr_template))
  2315. ret = ret && (1 << SECONDARY_EU(desc_hdr_template)
  2316. & priv->exec_units);
  2317. return ret;
  2318. }
  2319. static int talitos_remove(struct platform_device *ofdev)
  2320. {
  2321. struct device *dev = &ofdev->dev;
  2322. struct talitos_private *priv = dev_get_drvdata(dev);
  2323. struct talitos_crypto_alg *t_alg, *n;
  2324. int i;
  2325. list_for_each_entry_safe(t_alg, n, &priv->alg_list, entry) {
  2326. switch (t_alg->algt.type) {
  2327. case CRYPTO_ALG_TYPE_ABLKCIPHER:
  2328. break;
  2329. case CRYPTO_ALG_TYPE_AEAD:
  2330. crypto_unregister_aead(&t_alg->algt.alg.aead);
  2331. case CRYPTO_ALG_TYPE_AHASH:
  2332. crypto_unregister_ahash(&t_alg->algt.alg.hash);
  2333. break;
  2334. }
  2335. list_del(&t_alg->entry);
  2336. kfree(t_alg);
  2337. }
  2338. if (hw_supports(dev, DESC_HDR_SEL0_RNG))
  2339. talitos_unregister_rng(dev);
  2340. for (i = 0; priv->chan && i < priv->num_channels; i++)
  2341. kfree(priv->chan[i].fifo);
  2342. kfree(priv->chan);
  2343. for (i = 0; i < 2; i++)
  2344. if (priv->irq[i]) {
  2345. free_irq(priv->irq[i], dev);
  2346. irq_dispose_mapping(priv->irq[i]);
  2347. }
  2348. tasklet_kill(&priv->done_task[0]);
  2349. if (priv->irq[1])
  2350. tasklet_kill(&priv->done_task[1]);
  2351. iounmap(priv->reg);
  2352. kfree(priv);
  2353. return 0;
  2354. }
  2355. static struct talitos_crypto_alg *talitos_alg_alloc(struct device *dev,
  2356. struct talitos_alg_template
  2357. *template)
  2358. {
  2359. struct talitos_private *priv = dev_get_drvdata(dev);
  2360. struct talitos_crypto_alg *t_alg;
  2361. struct crypto_alg *alg;
  2362. t_alg = kzalloc(sizeof(struct talitos_crypto_alg), GFP_KERNEL);
  2363. if (!t_alg)
  2364. return ERR_PTR(-ENOMEM);
  2365. t_alg->algt = *template;
  2366. switch (t_alg->algt.type) {
  2367. case CRYPTO_ALG_TYPE_ABLKCIPHER:
  2368. alg = &t_alg->algt.alg.crypto;
  2369. alg->cra_init = talitos_cra_init;
  2370. alg->cra_type = &crypto_ablkcipher_type;
  2371. alg->cra_ablkcipher.setkey = ablkcipher_setkey;
  2372. alg->cra_ablkcipher.encrypt = ablkcipher_encrypt;
  2373. alg->cra_ablkcipher.decrypt = ablkcipher_decrypt;
  2374. alg->cra_ablkcipher.geniv = "eseqiv";
  2375. break;
  2376. case CRYPTO_ALG_TYPE_AEAD:
  2377. alg = &t_alg->algt.alg.aead.base;
  2378. t_alg->algt.alg.aead.init = talitos_cra_init_aead;
  2379. t_alg->algt.alg.aead.setkey = aead_setkey;
  2380. t_alg->algt.alg.aead.encrypt = aead_encrypt;
  2381. t_alg->algt.alg.aead.decrypt = aead_decrypt;
  2382. break;
  2383. case CRYPTO_ALG_TYPE_AHASH:
  2384. alg = &t_alg->algt.alg.hash.halg.base;
  2385. alg->cra_init = talitos_cra_init_ahash;
  2386. alg->cra_type = &crypto_ahash_type;
  2387. t_alg->algt.alg.hash.init = ahash_init;
  2388. t_alg->algt.alg.hash.update = ahash_update;
  2389. t_alg->algt.alg.hash.final = ahash_final;
  2390. t_alg->algt.alg.hash.finup = ahash_finup;
  2391. t_alg->algt.alg.hash.digest = ahash_digest;
  2392. t_alg->algt.alg.hash.setkey = ahash_setkey;
  2393. if (!(priv->features & TALITOS_FTR_HMAC_OK) &&
  2394. !strncmp(alg->cra_name, "hmac", 4)) {
  2395. kfree(t_alg);
  2396. return ERR_PTR(-ENOTSUPP);
  2397. }
  2398. if (!(priv->features & TALITOS_FTR_SHA224_HWINIT) &&
  2399. (!strcmp(alg->cra_name, "sha224") ||
  2400. !strcmp(alg->cra_name, "hmac(sha224)"))) {
  2401. t_alg->algt.alg.hash.init = ahash_init_sha224_swinit;
  2402. t_alg->algt.desc_hdr_template =
  2403. DESC_HDR_TYPE_COMMON_NONSNOOP_NO_AFEU |
  2404. DESC_HDR_SEL0_MDEUA |
  2405. DESC_HDR_MODE0_MDEU_SHA256;
  2406. }
  2407. break;
  2408. default:
  2409. dev_err(dev, "unknown algorithm type %d\n", t_alg->algt.type);
  2410. kfree(t_alg);
  2411. return ERR_PTR(-EINVAL);
  2412. }
  2413. alg->cra_module = THIS_MODULE;
  2414. alg->cra_priority = TALITOS_CRA_PRIORITY;
  2415. alg->cra_alignmask = 0;
  2416. alg->cra_ctxsize = sizeof(struct talitos_ctx);
  2417. alg->cra_flags |= CRYPTO_ALG_KERN_DRIVER_ONLY;
  2418. t_alg->dev = dev;
  2419. return t_alg;
  2420. }
  2421. static int talitos_probe_irq(struct platform_device *ofdev)
  2422. {
  2423. struct device *dev = &ofdev->dev;
  2424. struct device_node *np = ofdev->dev.of_node;
  2425. struct talitos_private *priv = dev_get_drvdata(dev);
  2426. int err;
  2427. bool is_sec1 = has_ftr_sec1(priv);
  2428. priv->irq[0] = irq_of_parse_and_map(np, 0);
  2429. if (!priv->irq[0]) {
  2430. dev_err(dev, "failed to map irq\n");
  2431. return -EINVAL;
  2432. }
  2433. if (is_sec1) {
  2434. err = request_irq(priv->irq[0], talitos1_interrupt_4ch, 0,
  2435. dev_driver_string(dev), dev);
  2436. goto primary_out;
  2437. }
  2438. priv->irq[1] = irq_of_parse_and_map(np, 1);
  2439. /* get the primary irq line */
  2440. if (!priv->irq[1]) {
  2441. err = request_irq(priv->irq[0], talitos2_interrupt_4ch, 0,
  2442. dev_driver_string(dev), dev);
  2443. goto primary_out;
  2444. }
  2445. err = request_irq(priv->irq[0], talitos2_interrupt_ch0_2, 0,
  2446. dev_driver_string(dev), dev);
  2447. if (err)
  2448. goto primary_out;
  2449. /* get the secondary irq line */
  2450. err = request_irq(priv->irq[1], talitos2_interrupt_ch1_3, 0,
  2451. dev_driver_string(dev), dev);
  2452. if (err) {
  2453. dev_err(dev, "failed to request secondary irq\n");
  2454. irq_dispose_mapping(priv->irq[1]);
  2455. priv->irq[1] = 0;
  2456. }
  2457. return err;
  2458. primary_out:
  2459. if (err) {
  2460. dev_err(dev, "failed to request primary irq\n");
  2461. irq_dispose_mapping(priv->irq[0]);
  2462. priv->irq[0] = 0;
  2463. }
  2464. return err;
  2465. }
  2466. static int talitos_probe(struct platform_device *ofdev)
  2467. {
  2468. struct device *dev = &ofdev->dev;
  2469. struct device_node *np = ofdev->dev.of_node;
  2470. struct talitos_private *priv;
  2471. const unsigned int *prop;
  2472. int i, err;
  2473. int stride;
  2474. priv = kzalloc(sizeof(struct talitos_private), GFP_KERNEL);
  2475. if (!priv)
  2476. return -ENOMEM;
  2477. INIT_LIST_HEAD(&priv->alg_list);
  2478. dev_set_drvdata(dev, priv);
  2479. priv->ofdev = ofdev;
  2480. spin_lock_init(&priv->reg_lock);
  2481. priv->reg = of_iomap(np, 0);
  2482. if (!priv->reg) {
  2483. dev_err(dev, "failed to of_iomap\n");
  2484. err = -ENOMEM;
  2485. goto err_out;
  2486. }
  2487. /* get SEC version capabilities from device tree */
  2488. prop = of_get_property(np, "fsl,num-channels", NULL);
  2489. if (prop)
  2490. priv->num_channels = *prop;
  2491. prop = of_get_property(np, "fsl,channel-fifo-len", NULL);
  2492. if (prop)
  2493. priv->chfifo_len = *prop;
  2494. prop = of_get_property(np, "fsl,exec-units-mask", NULL);
  2495. if (prop)
  2496. priv->exec_units = *prop;
  2497. prop = of_get_property(np, "fsl,descriptor-types-mask", NULL);
  2498. if (prop)
  2499. priv->desc_types = *prop;
  2500. if (!is_power_of_2(priv->num_channels) || !priv->chfifo_len ||
  2501. !priv->exec_units || !priv->desc_types) {
  2502. dev_err(dev, "invalid property data in device tree node\n");
  2503. err = -EINVAL;
  2504. goto err_out;
  2505. }
  2506. if (of_device_is_compatible(np, "fsl,sec3.0"))
  2507. priv->features |= TALITOS_FTR_SRC_LINK_TBL_LEN_INCLUDES_EXTENT;
  2508. if (of_device_is_compatible(np, "fsl,sec2.1"))
  2509. priv->features |= TALITOS_FTR_HW_AUTH_CHECK |
  2510. TALITOS_FTR_SHA224_HWINIT |
  2511. TALITOS_FTR_HMAC_OK;
  2512. if (of_device_is_compatible(np, "fsl,sec1.0"))
  2513. priv->features |= TALITOS_FTR_SEC1;
  2514. if (of_device_is_compatible(np, "fsl,sec1.2")) {
  2515. priv->reg_deu = priv->reg + TALITOS12_DEU;
  2516. priv->reg_aesu = priv->reg + TALITOS12_AESU;
  2517. priv->reg_mdeu = priv->reg + TALITOS12_MDEU;
  2518. stride = TALITOS1_CH_STRIDE;
  2519. } else if (of_device_is_compatible(np, "fsl,sec1.0")) {
  2520. priv->reg_deu = priv->reg + TALITOS10_DEU;
  2521. priv->reg_aesu = priv->reg + TALITOS10_AESU;
  2522. priv->reg_mdeu = priv->reg + TALITOS10_MDEU;
  2523. priv->reg_afeu = priv->reg + TALITOS10_AFEU;
  2524. priv->reg_rngu = priv->reg + TALITOS10_RNGU;
  2525. priv->reg_pkeu = priv->reg + TALITOS10_PKEU;
  2526. stride = TALITOS1_CH_STRIDE;
  2527. } else {
  2528. priv->reg_deu = priv->reg + TALITOS2_DEU;
  2529. priv->reg_aesu = priv->reg + TALITOS2_AESU;
  2530. priv->reg_mdeu = priv->reg + TALITOS2_MDEU;
  2531. priv->reg_afeu = priv->reg + TALITOS2_AFEU;
  2532. priv->reg_rngu = priv->reg + TALITOS2_RNGU;
  2533. priv->reg_pkeu = priv->reg + TALITOS2_PKEU;
  2534. priv->reg_keu = priv->reg + TALITOS2_KEU;
  2535. priv->reg_crcu = priv->reg + TALITOS2_CRCU;
  2536. stride = TALITOS2_CH_STRIDE;
  2537. }
  2538. err = talitos_probe_irq(ofdev);
  2539. if (err)
  2540. goto err_out;
  2541. if (of_device_is_compatible(np, "fsl,sec1.0")) {
  2542. tasklet_init(&priv->done_task[0], talitos1_done_4ch,
  2543. (unsigned long)dev);
  2544. } else {
  2545. if (!priv->irq[1]) {
  2546. tasklet_init(&priv->done_task[0], talitos2_done_4ch,
  2547. (unsigned long)dev);
  2548. } else {
  2549. tasklet_init(&priv->done_task[0], talitos2_done_ch0_2,
  2550. (unsigned long)dev);
  2551. tasklet_init(&priv->done_task[1], talitos2_done_ch1_3,
  2552. (unsigned long)dev);
  2553. }
  2554. }
  2555. priv->chan = kzalloc(sizeof(struct talitos_channel) *
  2556. priv->num_channels, GFP_KERNEL);
  2557. if (!priv->chan) {
  2558. dev_err(dev, "failed to allocate channel management space\n");
  2559. err = -ENOMEM;
  2560. goto err_out;
  2561. }
  2562. priv->fifo_len = roundup_pow_of_two(priv->chfifo_len);
  2563. for (i = 0; i < priv->num_channels; i++) {
  2564. priv->chan[i].reg = priv->reg + stride * (i + 1);
  2565. if (!priv->irq[1] || !(i & 1))
  2566. priv->chan[i].reg += TALITOS_CH_BASE_OFFSET;
  2567. spin_lock_init(&priv->chan[i].head_lock);
  2568. spin_lock_init(&priv->chan[i].tail_lock);
  2569. priv->chan[i].fifo = kzalloc(sizeof(struct talitos_request) *
  2570. priv->fifo_len, GFP_KERNEL);
  2571. if (!priv->chan[i].fifo) {
  2572. dev_err(dev, "failed to allocate request fifo %d\n", i);
  2573. err = -ENOMEM;
  2574. goto err_out;
  2575. }
  2576. atomic_set(&priv->chan[i].submit_count,
  2577. -(priv->chfifo_len - 1));
  2578. }
  2579. dma_set_mask(dev, DMA_BIT_MASK(36));
  2580. /* reset and initialize the h/w */
  2581. err = init_device(dev);
  2582. if (err) {
  2583. dev_err(dev, "failed to initialize device\n");
  2584. goto err_out;
  2585. }
  2586. /* register the RNG, if available */
  2587. if (hw_supports(dev, DESC_HDR_SEL0_RNG)) {
  2588. err = talitos_register_rng(dev);
  2589. if (err) {
  2590. dev_err(dev, "failed to register hwrng: %d\n", err);
  2591. goto err_out;
  2592. } else
  2593. dev_info(dev, "hwrng\n");
  2594. }
  2595. /* register crypto algorithms the device supports */
  2596. for (i = 0; i < ARRAY_SIZE(driver_algs); i++) {
  2597. if (hw_supports(dev, driver_algs[i].desc_hdr_template)) {
  2598. struct talitos_crypto_alg *t_alg;
  2599. struct crypto_alg *alg = NULL;
  2600. t_alg = talitos_alg_alloc(dev, &driver_algs[i]);
  2601. if (IS_ERR(t_alg)) {
  2602. err = PTR_ERR(t_alg);
  2603. if (err == -ENOTSUPP)
  2604. continue;
  2605. goto err_out;
  2606. }
  2607. switch (t_alg->algt.type) {
  2608. case CRYPTO_ALG_TYPE_ABLKCIPHER:
  2609. err = crypto_register_alg(
  2610. &t_alg->algt.alg.crypto);
  2611. alg = &t_alg->algt.alg.crypto;
  2612. break;
  2613. case CRYPTO_ALG_TYPE_AEAD:
  2614. err = crypto_register_aead(
  2615. &t_alg->algt.alg.aead);
  2616. alg = &t_alg->algt.alg.aead.base;
  2617. break;
  2618. case CRYPTO_ALG_TYPE_AHASH:
  2619. err = crypto_register_ahash(
  2620. &t_alg->algt.alg.hash);
  2621. alg = &t_alg->algt.alg.hash.halg.base;
  2622. break;
  2623. }
  2624. if (err) {
  2625. dev_err(dev, "%s alg registration failed\n",
  2626. alg->cra_driver_name);
  2627. kfree(t_alg);
  2628. } else
  2629. list_add_tail(&t_alg->entry, &priv->alg_list);
  2630. }
  2631. }
  2632. if (!list_empty(&priv->alg_list))
  2633. dev_info(dev, "%s algorithms registered in /proc/crypto\n",
  2634. (char *)of_get_property(np, "compatible", NULL));
  2635. return 0;
  2636. err_out:
  2637. talitos_remove(ofdev);
  2638. return err;
  2639. }
  2640. static const struct of_device_id talitos_match[] = {
  2641. #ifdef CONFIG_CRYPTO_DEV_TALITOS1
  2642. {
  2643. .compatible = "fsl,sec1.0",
  2644. },
  2645. #endif
  2646. #ifdef CONFIG_CRYPTO_DEV_TALITOS2
  2647. {
  2648. .compatible = "fsl,sec2.0",
  2649. },
  2650. #endif
  2651. {},
  2652. };
  2653. MODULE_DEVICE_TABLE(of, talitos_match);
  2654. static struct platform_driver talitos_driver = {
  2655. .driver = {
  2656. .name = "talitos",
  2657. .of_match_table = talitos_match,
  2658. },
  2659. .probe = talitos_probe,
  2660. .remove = talitos_remove,
  2661. };
  2662. module_platform_driver(talitos_driver);
  2663. MODULE_LICENSE("GPL");
  2664. MODULE_AUTHOR("Kim Phillips <kim.phillips@freescale.com>");
  2665. MODULE_DESCRIPTION("Freescale integrated security engine (SEC) driver");