New upstream version 18.11-rc1
[deb_dpdk.git] / lib / librte_cryptodev / rte_cryptodev.c
1 /* SPDX-License-Identifier: BSD-3-Clause
2  * Copyright(c) 2015-2017 Intel Corporation
3  */
4
5 #include <sys/types.h>
6 #include <sys/queue.h>
7 #include <ctype.h>
8 #include <stdio.h>
9 #include <stdlib.h>
10 #include <string.h>
11 #include <stdarg.h>
12 #include <errno.h>
13 #include <stdint.h>
14 #include <inttypes.h>
15 #include <netinet/in.h>
16
17 #include <rte_byteorder.h>
18 #include <rte_log.h>
19 #include <rte_debug.h>
20 #include <rte_dev.h>
21 #include <rte_interrupts.h>
22 #include <rte_memory.h>
23 #include <rte_memcpy.h>
24 #include <rte_memzone.h>
25 #include <rte_launch.h>
26 #include <rte_tailq.h>
27 #include <rte_eal.h>
28 #include <rte_per_lcore.h>
29 #include <rte_lcore.h>
30 #include <rte_atomic.h>
31 #include <rte_branch_prediction.h>
32 #include <rte_common.h>
33 #include <rte_mempool.h>
34 #include <rte_malloc.h>
35 #include <rte_mbuf.h>
36 #include <rte_errno.h>
37 #include <rte_spinlock.h>
38 #include <rte_string_fns.h>
39
40 #include "rte_crypto.h"
41 #include "rte_cryptodev.h"
42 #include "rte_cryptodev_pmd.h"
43
44 static uint8_t nb_drivers;
45
46 static struct rte_cryptodev rte_crypto_devices[RTE_CRYPTO_MAX_DEVS];
47
48 struct rte_cryptodev *rte_cryptodevs = rte_crypto_devices;
49
50 static struct rte_cryptodev_global cryptodev_globals = {
51                 .devs                   = rte_crypto_devices,
52                 .data                   = { NULL },
53                 .nb_devs                = 0,
54                 .max_devs               = RTE_CRYPTO_MAX_DEVS
55 };
56
57 /* spinlock for crypto device callbacks */
58 static rte_spinlock_t rte_cryptodev_cb_lock = RTE_SPINLOCK_INITIALIZER;
59
60
61 /**
62  * The user application callback description.
63  *
64  * It contains callback address to be registered by user application,
65  * the pointer to the parameters for callback, and the event type.
66  */
67 struct rte_cryptodev_callback {
68         TAILQ_ENTRY(rte_cryptodev_callback) next; /**< Callbacks list */
69         rte_cryptodev_cb_fn cb_fn;              /**< Callback address */
70         void *cb_arg;                           /**< Parameter for callback */
71         enum rte_cryptodev_event_type event;    /**< Interrupt event type */
72         uint32_t active;                        /**< Callback is executing */
73 };
74
75 /**
76  * The crypto cipher algorithm strings identifiers.
77  * It could be used in application command line.
78  */
79 const char *
80 rte_crypto_cipher_algorithm_strings[] = {
81         [RTE_CRYPTO_CIPHER_3DES_CBC]    = "3des-cbc",
82         [RTE_CRYPTO_CIPHER_3DES_ECB]    = "3des-ecb",
83         [RTE_CRYPTO_CIPHER_3DES_CTR]    = "3des-ctr",
84
85         [RTE_CRYPTO_CIPHER_AES_CBC]     = "aes-cbc",
86         [RTE_CRYPTO_CIPHER_AES_CTR]     = "aes-ctr",
87         [RTE_CRYPTO_CIPHER_AES_DOCSISBPI]       = "aes-docsisbpi",
88         [RTE_CRYPTO_CIPHER_AES_ECB]     = "aes-ecb",
89         [RTE_CRYPTO_CIPHER_AES_F8]      = "aes-f8",
90         [RTE_CRYPTO_CIPHER_AES_XTS]     = "aes-xts",
91
92         [RTE_CRYPTO_CIPHER_ARC4]        = "arc4",
93
94         [RTE_CRYPTO_CIPHER_DES_CBC]     = "des-cbc",
95         [RTE_CRYPTO_CIPHER_DES_DOCSISBPI]       = "des-docsisbpi",
96
97         [RTE_CRYPTO_CIPHER_NULL]        = "null",
98
99         [RTE_CRYPTO_CIPHER_KASUMI_F8]   = "kasumi-f8",
100         [RTE_CRYPTO_CIPHER_SNOW3G_UEA2] = "snow3g-uea2",
101         [RTE_CRYPTO_CIPHER_ZUC_EEA3]    = "zuc-eea3"
102 };
103
104 /**
105  * The crypto cipher operation strings identifiers.
106  * It could be used in application command line.
107  */
108 const char *
109 rte_crypto_cipher_operation_strings[] = {
110                 [RTE_CRYPTO_CIPHER_OP_ENCRYPT]  = "encrypt",
111                 [RTE_CRYPTO_CIPHER_OP_DECRYPT]  = "decrypt"
112 };
113
114 /**
115  * The crypto auth algorithm strings identifiers.
116  * It could be used in application command line.
117  */
118 const char *
119 rte_crypto_auth_algorithm_strings[] = {
120         [RTE_CRYPTO_AUTH_AES_CBC_MAC]   = "aes-cbc-mac",
121         [RTE_CRYPTO_AUTH_AES_CMAC]      = "aes-cmac",
122         [RTE_CRYPTO_AUTH_AES_GMAC]      = "aes-gmac",
123         [RTE_CRYPTO_AUTH_AES_XCBC_MAC]  = "aes-xcbc-mac",
124
125         [RTE_CRYPTO_AUTH_MD5]           = "md5",
126         [RTE_CRYPTO_AUTH_MD5_HMAC]      = "md5-hmac",
127
128         [RTE_CRYPTO_AUTH_NULL]          = "null",
129
130         [RTE_CRYPTO_AUTH_SHA1]          = "sha1",
131         [RTE_CRYPTO_AUTH_SHA1_HMAC]     = "sha1-hmac",
132
133         [RTE_CRYPTO_AUTH_SHA224]        = "sha2-224",
134         [RTE_CRYPTO_AUTH_SHA224_HMAC]   = "sha2-224-hmac",
135         [RTE_CRYPTO_AUTH_SHA256]        = "sha2-256",
136         [RTE_CRYPTO_AUTH_SHA256_HMAC]   = "sha2-256-hmac",
137         [RTE_CRYPTO_AUTH_SHA384]        = "sha2-384",
138         [RTE_CRYPTO_AUTH_SHA384_HMAC]   = "sha2-384-hmac",
139         [RTE_CRYPTO_AUTH_SHA512]        = "sha2-512",
140         [RTE_CRYPTO_AUTH_SHA512_HMAC]   = "sha2-512-hmac",
141
142         [RTE_CRYPTO_AUTH_KASUMI_F9]     = "kasumi-f9",
143         [RTE_CRYPTO_AUTH_SNOW3G_UIA2]   = "snow3g-uia2",
144         [RTE_CRYPTO_AUTH_ZUC_EIA3]      = "zuc-eia3"
145 };
146
147 /**
148  * The crypto AEAD algorithm strings identifiers.
149  * It could be used in application command line.
150  */
151 const char *
152 rte_crypto_aead_algorithm_strings[] = {
153         [RTE_CRYPTO_AEAD_AES_CCM]       = "aes-ccm",
154         [RTE_CRYPTO_AEAD_AES_GCM]       = "aes-gcm",
155 };
156
157 /**
158  * The crypto AEAD operation strings identifiers.
159  * It could be used in application command line.
160  */
161 const char *
162 rte_crypto_aead_operation_strings[] = {
163         [RTE_CRYPTO_AEAD_OP_ENCRYPT]    = "encrypt",
164         [RTE_CRYPTO_AEAD_OP_DECRYPT]    = "decrypt"
165 };
166
167 /**
168  * Asymmetric crypto transform operation strings identifiers.
169  */
170 const char *rte_crypto_asym_xform_strings[] = {
171         [RTE_CRYPTO_ASYM_XFORM_NONE]    = "none",
172         [RTE_CRYPTO_ASYM_XFORM_RSA]     = "rsa",
173         [RTE_CRYPTO_ASYM_XFORM_MODEX]   = "modexp",
174         [RTE_CRYPTO_ASYM_XFORM_MODINV]  = "modinv",
175         [RTE_CRYPTO_ASYM_XFORM_DH]      = "dh",
176         [RTE_CRYPTO_ASYM_XFORM_DSA]     = "dsa",
177 };
178
179 /**
180  * Asymmetric crypto operation strings identifiers.
181  */
182 const char *rte_crypto_asym_op_strings[] = {
183         [RTE_CRYPTO_ASYM_OP_ENCRYPT]    = "encrypt",
184         [RTE_CRYPTO_ASYM_OP_DECRYPT]    = "decrypt",
185         [RTE_CRYPTO_ASYM_OP_SIGN]       = "sign",
186         [RTE_CRYPTO_ASYM_OP_VERIFY]     = "verify",
187         [RTE_CRYPTO_ASYM_OP_PRIVATE_KEY_GENERATE]       = "priv_key_generate",
188         [RTE_CRYPTO_ASYM_OP_PUBLIC_KEY_GENERATE] = "pub_key_generate",
189         [RTE_CRYPTO_ASYM_OP_SHARED_SECRET_COMPUTE] = "sharedsecret_compute",
190 };
191
192 int
193 rte_cryptodev_get_cipher_algo_enum(enum rte_crypto_cipher_algorithm *algo_enum,
194                 const char *algo_string)
195 {
196         unsigned int i;
197
198         for (i = 1; i < RTE_DIM(rte_crypto_cipher_algorithm_strings); i++) {
199                 if (strcmp(algo_string, rte_crypto_cipher_algorithm_strings[i]) == 0) {
200                         *algo_enum = (enum rte_crypto_cipher_algorithm) i;
201                         return 0;
202                 }
203         }
204
205         /* Invalid string */
206         return -1;
207 }
208
209 int
210 rte_cryptodev_get_auth_algo_enum(enum rte_crypto_auth_algorithm *algo_enum,
211                 const char *algo_string)
212 {
213         unsigned int i;
214
215         for (i = 1; i < RTE_DIM(rte_crypto_auth_algorithm_strings); i++) {
216                 if (strcmp(algo_string, rte_crypto_auth_algorithm_strings[i]) == 0) {
217                         *algo_enum = (enum rte_crypto_auth_algorithm) i;
218                         return 0;
219                 }
220         }
221
222         /* Invalid string */
223         return -1;
224 }
225
226 int
227 rte_cryptodev_get_aead_algo_enum(enum rte_crypto_aead_algorithm *algo_enum,
228                 const char *algo_string)
229 {
230         unsigned int i;
231
232         for (i = 1; i < RTE_DIM(rte_crypto_aead_algorithm_strings); i++) {
233                 if (strcmp(algo_string, rte_crypto_aead_algorithm_strings[i]) == 0) {
234                         *algo_enum = (enum rte_crypto_aead_algorithm) i;
235                         return 0;
236                 }
237         }
238
239         /* Invalid string */
240         return -1;
241 }
242
243 int __rte_experimental
244 rte_cryptodev_asym_get_xform_enum(enum rte_crypto_asym_xform_type *xform_enum,
245                 const char *xform_string)
246 {
247         unsigned int i;
248
249         for (i = 1; i < RTE_DIM(rte_crypto_asym_xform_strings); i++) {
250                 if (strcmp(xform_string,
251                         rte_crypto_asym_xform_strings[i]) == 0) {
252                         *xform_enum = (enum rte_crypto_asym_xform_type) i;
253                         return 0;
254                 }
255         }
256
257         /* Invalid string */
258         return -1;
259 }
260
261 /**
262  * The crypto auth operation strings identifiers.
263  * It could be used in application command line.
264  */
265 const char *
266 rte_crypto_auth_operation_strings[] = {
267                 [RTE_CRYPTO_AUTH_OP_VERIFY]     = "verify",
268                 [RTE_CRYPTO_AUTH_OP_GENERATE]   = "generate"
269 };
270
271 const struct rte_cryptodev_symmetric_capability *
272 rte_cryptodev_sym_capability_get(uint8_t dev_id,
273                 const struct rte_cryptodev_sym_capability_idx *idx)
274 {
275         const struct rte_cryptodev_capabilities *capability;
276         struct rte_cryptodev_info dev_info;
277         int i = 0;
278
279         rte_cryptodev_info_get(dev_id, &dev_info);
280
281         while ((capability = &dev_info.capabilities[i++])->op !=
282                         RTE_CRYPTO_OP_TYPE_UNDEFINED) {
283                 if (capability->op != RTE_CRYPTO_OP_TYPE_SYMMETRIC)
284                         continue;
285
286                 if (capability->sym.xform_type != idx->type)
287                         continue;
288
289                 if (idx->type == RTE_CRYPTO_SYM_XFORM_AUTH &&
290                         capability->sym.auth.algo == idx->algo.auth)
291                         return &capability->sym;
292
293                 if (idx->type == RTE_CRYPTO_SYM_XFORM_CIPHER &&
294                         capability->sym.cipher.algo == idx->algo.cipher)
295                         return &capability->sym;
296
297                 if (idx->type == RTE_CRYPTO_SYM_XFORM_AEAD &&
298                                 capability->sym.aead.algo == idx->algo.aead)
299                         return &capability->sym;
300         }
301
302         return NULL;
303
304 }
305
306 static int
307 param_range_check(uint16_t size, const struct rte_crypto_param_range *range)
308 {
309         unsigned int next_size;
310
311         /* Check lower/upper bounds */
312         if (size < range->min)
313                 return -1;
314
315         if (size > range->max)
316                 return -1;
317
318         /* If range is actually only one value, size is correct */
319         if (range->increment == 0)
320                 return 0;
321
322         /* Check if value is one of the supported sizes */
323         for (next_size = range->min; next_size <= range->max;
324                         next_size += range->increment)
325                 if (size == next_size)
326                         return 0;
327
328         return -1;
329 }
330
331 const struct rte_cryptodev_asymmetric_xform_capability * __rte_experimental
332 rte_cryptodev_asym_capability_get(uint8_t dev_id,
333                 const struct rte_cryptodev_asym_capability_idx *idx)
334 {
335         const struct rte_cryptodev_capabilities *capability;
336         struct rte_cryptodev_info dev_info;
337         unsigned int i = 0;
338
339         memset(&dev_info, 0, sizeof(struct rte_cryptodev_info));
340         rte_cryptodev_info_get(dev_id, &dev_info);
341
342         while ((capability = &dev_info.capabilities[i++])->op !=
343                         RTE_CRYPTO_OP_TYPE_UNDEFINED) {
344                 if (capability->op != RTE_CRYPTO_OP_TYPE_ASYMMETRIC)
345                         continue;
346
347                 if (capability->asym.xform_capa.xform_type == idx->type)
348                         return &capability->asym.xform_capa;
349         }
350         return NULL;
351 };
352
353 int
354 rte_cryptodev_sym_capability_check_cipher(
355                 const struct rte_cryptodev_symmetric_capability *capability,
356                 uint16_t key_size, uint16_t iv_size)
357 {
358         if (param_range_check(key_size, &capability->cipher.key_size) != 0)
359                 return -1;
360
361         if (param_range_check(iv_size, &capability->cipher.iv_size) != 0)
362                 return -1;
363
364         return 0;
365 }
366
367 int
368 rte_cryptodev_sym_capability_check_auth(
369                 const struct rte_cryptodev_symmetric_capability *capability,
370                 uint16_t key_size, uint16_t digest_size, uint16_t iv_size)
371 {
372         if (param_range_check(key_size, &capability->auth.key_size) != 0)
373                 return -1;
374
375         if (param_range_check(digest_size, &capability->auth.digest_size) != 0)
376                 return -1;
377
378         if (param_range_check(iv_size, &capability->auth.iv_size) != 0)
379                 return -1;
380
381         return 0;
382 }
383
384 int
385 rte_cryptodev_sym_capability_check_aead(
386                 const struct rte_cryptodev_symmetric_capability *capability,
387                 uint16_t key_size, uint16_t digest_size, uint16_t aad_size,
388                 uint16_t iv_size)
389 {
390         if (param_range_check(key_size, &capability->aead.key_size) != 0)
391                 return -1;
392
393         if (param_range_check(digest_size, &capability->aead.digest_size) != 0)
394                 return -1;
395
396         if (param_range_check(aad_size, &capability->aead.aad_size) != 0)
397                 return -1;
398
399         if (param_range_check(iv_size, &capability->aead.iv_size) != 0)
400                 return -1;
401
402         return 0;
403 }
404 int __rte_experimental
405 rte_cryptodev_asym_xform_capability_check_optype(
406         const struct rte_cryptodev_asymmetric_xform_capability *capability,
407         enum rte_crypto_asym_op_type op_type)
408 {
409         if (capability->op_types & (1 << op_type))
410                 return 1;
411
412         return 0;
413 }
414
415 int __rte_experimental
416 rte_cryptodev_asym_xform_capability_check_modlen(
417         const struct rte_cryptodev_asymmetric_xform_capability *capability,
418         uint16_t modlen)
419 {
420         /* no need to check for limits, if min or max = 0 */
421         if (capability->modlen.min != 0) {
422                 if (modlen < capability->modlen.min)
423                         return -1;
424         }
425
426         if (capability->modlen.max != 0) {
427                 if (modlen > capability->modlen.max)
428                         return -1;
429         }
430
431         /* in any case, check if given modlen is module increment */
432         if (capability->modlen.increment != 0) {
433                 if (modlen % (capability->modlen.increment))
434                         return -1;
435         }
436
437         return 0;
438 }
439
440
441 const char *
442 rte_cryptodev_get_feature_name(uint64_t flag)
443 {
444         switch (flag) {
445         case RTE_CRYPTODEV_FF_SYMMETRIC_CRYPTO:
446                 return "SYMMETRIC_CRYPTO";
447         case RTE_CRYPTODEV_FF_ASYMMETRIC_CRYPTO:
448                 return "ASYMMETRIC_CRYPTO";
449         case RTE_CRYPTODEV_FF_SYM_OPERATION_CHAINING:
450                 return "SYM_OPERATION_CHAINING";
451         case RTE_CRYPTODEV_FF_CPU_SSE:
452                 return "CPU_SSE";
453         case RTE_CRYPTODEV_FF_CPU_AVX:
454                 return "CPU_AVX";
455         case RTE_CRYPTODEV_FF_CPU_AVX2:
456                 return "CPU_AVX2";
457         case RTE_CRYPTODEV_FF_CPU_AVX512:
458                 return "CPU_AVX512";
459         case RTE_CRYPTODEV_FF_CPU_AESNI:
460                 return "CPU_AESNI";
461         case RTE_CRYPTODEV_FF_HW_ACCELERATED:
462                 return "HW_ACCELERATED";
463         case RTE_CRYPTODEV_FF_IN_PLACE_SGL:
464                 return "IN_PLACE_SGL";
465         case RTE_CRYPTODEV_FF_OOP_SGL_IN_SGL_OUT:
466                 return "OOP_SGL_IN_SGL_OUT";
467         case RTE_CRYPTODEV_FF_OOP_SGL_IN_LB_OUT:
468                 return "OOP_SGL_IN_LB_OUT";
469         case RTE_CRYPTODEV_FF_OOP_LB_IN_SGL_OUT:
470                 return "OOP_LB_IN_SGL_OUT";
471         case RTE_CRYPTODEV_FF_OOP_LB_IN_LB_OUT:
472                 return "OOP_LB_IN_LB_OUT";
473         case RTE_CRYPTODEV_FF_CPU_NEON:
474                 return "CPU_NEON";
475         case RTE_CRYPTODEV_FF_CPU_ARM_CE:
476                 return "CPU_ARM_CE";
477         case RTE_CRYPTODEV_FF_SECURITY:
478                 return "SECURITY_PROTOCOL";
479         default:
480                 return NULL;
481         }
482 }
483
484 struct rte_cryptodev *
485 rte_cryptodev_pmd_get_dev(uint8_t dev_id)
486 {
487         return &cryptodev_globals.devs[dev_id];
488 }
489
490 struct rte_cryptodev *
491 rte_cryptodev_pmd_get_named_dev(const char *name)
492 {
493         struct rte_cryptodev *dev;
494         unsigned int i;
495
496         if (name == NULL)
497                 return NULL;
498
499         for (i = 0; i < cryptodev_globals.max_devs; i++) {
500                 dev = &cryptodev_globals.devs[i];
501
502                 if ((dev->attached == RTE_CRYPTODEV_ATTACHED) &&
503                                 (strcmp(dev->data->name, name) == 0))
504                         return dev;
505         }
506
507         return NULL;
508 }
509
510 unsigned int
511 rte_cryptodev_pmd_is_valid_dev(uint8_t dev_id)
512 {
513         struct rte_cryptodev *dev = NULL;
514
515         if (dev_id >= cryptodev_globals.nb_devs)
516                 return 0;
517
518         dev = rte_cryptodev_pmd_get_dev(dev_id);
519         if (dev->attached != RTE_CRYPTODEV_ATTACHED)
520                 return 0;
521         else
522                 return 1;
523 }
524
525
526 int
527 rte_cryptodev_get_dev_id(const char *name)
528 {
529         unsigned i;
530
531         if (name == NULL)
532                 return -1;
533
534         for (i = 0; i < cryptodev_globals.nb_devs; i++)
535                 if ((strcmp(cryptodev_globals.devs[i].data->name, name)
536                                 == 0) &&
537                                 (cryptodev_globals.devs[i].attached ==
538                                                 RTE_CRYPTODEV_ATTACHED))
539                         return i;
540
541         return -1;
542 }
543
544 uint8_t
545 rte_cryptodev_count(void)
546 {
547         return cryptodev_globals.nb_devs;
548 }
549
550 uint8_t
551 rte_cryptodev_device_count_by_driver(uint8_t driver_id)
552 {
553         uint8_t i, dev_count = 0;
554
555         for (i = 0; i < cryptodev_globals.max_devs; i++)
556                 if (cryptodev_globals.devs[i].driver_id == driver_id &&
557                         cryptodev_globals.devs[i].attached ==
558                                         RTE_CRYPTODEV_ATTACHED)
559                         dev_count++;
560
561         return dev_count;
562 }
563
564 uint8_t
565 rte_cryptodev_devices_get(const char *driver_name, uint8_t *devices,
566         uint8_t nb_devices)
567 {
568         uint8_t i, count = 0;
569         struct rte_cryptodev *devs = cryptodev_globals.devs;
570         uint8_t max_devs = cryptodev_globals.max_devs;
571
572         for (i = 0; i < max_devs && count < nb_devices; i++) {
573
574                 if (devs[i].attached == RTE_CRYPTODEV_ATTACHED) {
575                         int cmp;
576
577                         cmp = strncmp(devs[i].device->driver->name,
578                                         driver_name,
579                                         strlen(driver_name));
580
581                         if (cmp == 0)
582                                 devices[count++] = devs[i].data->dev_id;
583                 }
584         }
585
586         return count;
587 }
588
589 void *
590 rte_cryptodev_get_sec_ctx(uint8_t dev_id)
591 {
592         if (rte_crypto_devices[dev_id].feature_flags &
593                         RTE_CRYPTODEV_FF_SECURITY)
594                 return rte_crypto_devices[dev_id].security_ctx;
595
596         return NULL;
597 }
598
599 int
600 rte_cryptodev_socket_id(uint8_t dev_id)
601 {
602         struct rte_cryptodev *dev;
603
604         if (!rte_cryptodev_pmd_is_valid_dev(dev_id))
605                 return -1;
606
607         dev = rte_cryptodev_pmd_get_dev(dev_id);
608
609         return dev->data->socket_id;
610 }
611
612 static inline int
613 rte_cryptodev_data_alloc(uint8_t dev_id, struct rte_cryptodev_data **data,
614                 int socket_id)
615 {
616         char mz_name[RTE_CRYPTODEV_NAME_MAX_LEN];
617         const struct rte_memzone *mz;
618         int n;
619
620         /* generate memzone name */
621         n = snprintf(mz_name, sizeof(mz_name), "rte_cryptodev_data_%u", dev_id);
622         if (n >= (int)sizeof(mz_name))
623                 return -EINVAL;
624
625         if (rte_eal_process_type() == RTE_PROC_PRIMARY) {
626                 mz = rte_memzone_reserve(mz_name,
627                                 sizeof(struct rte_cryptodev_data),
628                                 socket_id, 0);
629         } else
630                 mz = rte_memzone_lookup(mz_name);
631
632         if (mz == NULL)
633                 return -ENOMEM;
634
635         *data = mz->addr;
636         if (rte_eal_process_type() == RTE_PROC_PRIMARY)
637                 memset(*data, 0, sizeof(struct rte_cryptodev_data));
638
639         return 0;
640 }
641
642 static uint8_t
643 rte_cryptodev_find_free_device_index(void)
644 {
645         uint8_t dev_id;
646
647         for (dev_id = 0; dev_id < RTE_CRYPTO_MAX_DEVS; dev_id++) {
648                 if (rte_crypto_devices[dev_id].attached ==
649                                 RTE_CRYPTODEV_DETACHED)
650                         return dev_id;
651         }
652         return RTE_CRYPTO_MAX_DEVS;
653 }
654
655 struct rte_cryptodev *
656 rte_cryptodev_pmd_allocate(const char *name, int socket_id)
657 {
658         struct rte_cryptodev *cryptodev;
659         uint8_t dev_id;
660
661         if (rte_cryptodev_pmd_get_named_dev(name) != NULL) {
662                 CDEV_LOG_ERR("Crypto device with name %s already "
663                                 "allocated!", name);
664                 return NULL;
665         }
666
667         dev_id = rte_cryptodev_find_free_device_index();
668         if (dev_id == RTE_CRYPTO_MAX_DEVS) {
669                 CDEV_LOG_ERR("Reached maximum number of crypto devices");
670                 return NULL;
671         }
672
673         cryptodev = rte_cryptodev_pmd_get_dev(dev_id);
674
675         if (cryptodev->data == NULL) {
676                 struct rte_cryptodev_data *cryptodev_data =
677                                 cryptodev_globals.data[dev_id];
678
679                 int retval = rte_cryptodev_data_alloc(dev_id, &cryptodev_data,
680                                 socket_id);
681
682                 if (retval < 0 || cryptodev_data == NULL)
683                         return NULL;
684
685                 cryptodev->data = cryptodev_data;
686
687                 snprintf(cryptodev->data->name, RTE_CRYPTODEV_NAME_MAX_LEN,
688                                 "%s", name);
689
690                 cryptodev->data->dev_id = dev_id;
691                 cryptodev->data->socket_id = socket_id;
692                 cryptodev->data->dev_started = 0;
693
694                 /* init user callbacks */
695                 TAILQ_INIT(&(cryptodev->link_intr_cbs));
696
697                 cryptodev->attached = RTE_CRYPTODEV_ATTACHED;
698
699                 cryptodev_globals.nb_devs++;
700         }
701
702         return cryptodev;
703 }
704
705 int
706 rte_cryptodev_pmd_release_device(struct rte_cryptodev *cryptodev)
707 {
708         int ret;
709
710         if (cryptodev == NULL)
711                 return -EINVAL;
712
713         /* Close device only if device operations have been set */
714         if (cryptodev->dev_ops) {
715                 ret = rte_cryptodev_close(cryptodev->data->dev_id);
716                 if (ret < 0)
717                         return ret;
718         }
719
720         cryptodev->attached = RTE_CRYPTODEV_DETACHED;
721         cryptodev_globals.nb_devs--;
722         return 0;
723 }
724
725 uint16_t
726 rte_cryptodev_queue_pair_count(uint8_t dev_id)
727 {
728         struct rte_cryptodev *dev;
729
730         dev = &rte_crypto_devices[dev_id];
731         return dev->data->nb_queue_pairs;
732 }
733
734 static int
735 rte_cryptodev_queue_pairs_config(struct rte_cryptodev *dev, uint16_t nb_qpairs,
736                 int socket_id)
737 {
738         struct rte_cryptodev_info dev_info;
739         void **qp;
740         unsigned i;
741
742         if ((dev == NULL) || (nb_qpairs < 1)) {
743                 CDEV_LOG_ERR("invalid param: dev %p, nb_queues %u",
744                                                         dev, nb_qpairs);
745                 return -EINVAL;
746         }
747
748         CDEV_LOG_DEBUG("Setup %d queues pairs on device %u",
749                         nb_qpairs, dev->data->dev_id);
750
751         memset(&dev_info, 0, sizeof(struct rte_cryptodev_info));
752
753         RTE_FUNC_PTR_OR_ERR_RET(*dev->dev_ops->dev_infos_get, -ENOTSUP);
754         (*dev->dev_ops->dev_infos_get)(dev, &dev_info);
755
756         if (nb_qpairs > (dev_info.max_nb_queue_pairs)) {
757                 CDEV_LOG_ERR("Invalid num queue_pairs (%u) for dev %u",
758                                 nb_qpairs, dev->data->dev_id);
759             return -EINVAL;
760         }
761
762         if (dev->data->queue_pairs == NULL) { /* first time configuration */
763                 dev->data->queue_pairs = rte_zmalloc_socket(
764                                 "cryptodev->queue_pairs",
765                                 sizeof(dev->data->queue_pairs[0]) * nb_qpairs,
766                                 RTE_CACHE_LINE_SIZE, socket_id);
767
768                 if (dev->data->queue_pairs == NULL) {
769                         dev->data->nb_queue_pairs = 0;
770                         CDEV_LOG_ERR("failed to get memory for qp meta data, "
771                                                         "nb_queues %u",
772                                                         nb_qpairs);
773                         return -(ENOMEM);
774                 }
775         } else { /* re-configure */
776                 int ret;
777                 uint16_t old_nb_queues = dev->data->nb_queue_pairs;
778
779                 qp = dev->data->queue_pairs;
780
781                 RTE_FUNC_PTR_OR_ERR_RET(*dev->dev_ops->queue_pair_release,
782                                 -ENOTSUP);
783
784                 for (i = nb_qpairs; i < old_nb_queues; i++) {
785                         ret = (*dev->dev_ops->queue_pair_release)(dev, i);
786                         if (ret < 0)
787                                 return ret;
788                 }
789
790                 qp = rte_realloc(qp, sizeof(qp[0]) * nb_qpairs,
791                                 RTE_CACHE_LINE_SIZE);
792                 if (qp == NULL) {
793                         CDEV_LOG_ERR("failed to realloc qp meta data,"
794                                                 " nb_queues %u", nb_qpairs);
795                         return -(ENOMEM);
796                 }
797
798                 if (nb_qpairs > old_nb_queues) {
799                         uint16_t new_qs = nb_qpairs - old_nb_queues;
800
801                         memset(qp + old_nb_queues, 0,
802                                 sizeof(qp[0]) * new_qs);
803                 }
804
805                 dev->data->queue_pairs = qp;
806
807         }
808         dev->data->nb_queue_pairs = nb_qpairs;
809         return 0;
810 }
811
812 int
813 rte_cryptodev_configure(uint8_t dev_id, struct rte_cryptodev_config *config)
814 {
815         struct rte_cryptodev *dev;
816         int diag;
817
818         if (!rte_cryptodev_pmd_is_valid_dev(dev_id)) {
819                 CDEV_LOG_ERR("Invalid dev_id=%" PRIu8, dev_id);
820                 return -EINVAL;
821         }
822
823         dev = &rte_crypto_devices[dev_id];
824
825         if (dev->data->dev_started) {
826                 CDEV_LOG_ERR(
827                     "device %d must be stopped to allow configuration", dev_id);
828                 return -EBUSY;
829         }
830
831         RTE_FUNC_PTR_OR_ERR_RET(*dev->dev_ops->dev_configure, -ENOTSUP);
832
833         /* Setup new number of queue pairs and reconfigure device. */
834         diag = rte_cryptodev_queue_pairs_config(dev, config->nb_queue_pairs,
835                         config->socket_id);
836         if (diag != 0) {
837                 CDEV_LOG_ERR("dev%d rte_crypto_dev_queue_pairs_config = %d",
838                                 dev_id, diag);
839                 return diag;
840         }
841
842         return (*dev->dev_ops->dev_configure)(dev, config);
843 }
844
845
846 int
847 rte_cryptodev_start(uint8_t dev_id)
848 {
849         struct rte_cryptodev *dev;
850         int diag;
851
852         CDEV_LOG_DEBUG("Start dev_id=%" PRIu8, dev_id);
853
854         if (!rte_cryptodev_pmd_is_valid_dev(dev_id)) {
855                 CDEV_LOG_ERR("Invalid dev_id=%" PRIu8, dev_id);
856                 return -EINVAL;
857         }
858
859         dev = &rte_crypto_devices[dev_id];
860
861         RTE_FUNC_PTR_OR_ERR_RET(*dev->dev_ops->dev_start, -ENOTSUP);
862
863         if (dev->data->dev_started != 0) {
864                 CDEV_LOG_ERR("Device with dev_id=%" PRIu8 " already started",
865                         dev_id);
866                 return 0;
867         }
868
869         diag = (*dev->dev_ops->dev_start)(dev);
870         if (diag == 0)
871                 dev->data->dev_started = 1;
872         else
873                 return diag;
874
875         return 0;
876 }
877
878 void
879 rte_cryptodev_stop(uint8_t dev_id)
880 {
881         struct rte_cryptodev *dev;
882
883         if (!rte_cryptodev_pmd_is_valid_dev(dev_id)) {
884                 CDEV_LOG_ERR("Invalid dev_id=%" PRIu8, dev_id);
885                 return;
886         }
887
888         dev = &rte_crypto_devices[dev_id];
889
890         RTE_FUNC_PTR_OR_RET(*dev->dev_ops->dev_stop);
891
892         if (dev->data->dev_started == 0) {
893                 CDEV_LOG_ERR("Device with dev_id=%" PRIu8 " already stopped",
894                         dev_id);
895                 return;
896         }
897
898         (*dev->dev_ops->dev_stop)(dev);
899         dev->data->dev_started = 0;
900 }
901
902 int
903 rte_cryptodev_close(uint8_t dev_id)
904 {
905         struct rte_cryptodev *dev;
906         int retval;
907
908         if (!rte_cryptodev_pmd_is_valid_dev(dev_id)) {
909                 CDEV_LOG_ERR("Invalid dev_id=%" PRIu8, dev_id);
910                 return -1;
911         }
912
913         dev = &rte_crypto_devices[dev_id];
914
915         /* Device must be stopped before it can be closed */
916         if (dev->data->dev_started == 1) {
917                 CDEV_LOG_ERR("Device %u must be stopped before closing",
918                                 dev_id);
919                 return -EBUSY;
920         }
921
922         /* We can't close the device if there are outstanding sessions in use */
923         if (dev->data->session_pool != NULL) {
924                 if (!rte_mempool_full(dev->data->session_pool)) {
925                         CDEV_LOG_ERR("dev_id=%u close failed, session mempool "
926                                         "has sessions still in use, free "
927                                         "all sessions before calling close",
928                                         (unsigned)dev_id);
929                         return -EBUSY;
930                 }
931         }
932
933         RTE_FUNC_PTR_OR_ERR_RET(*dev->dev_ops->dev_close, -ENOTSUP);
934         retval = (*dev->dev_ops->dev_close)(dev);
935
936         if (retval < 0)
937                 return retval;
938
939         return 0;
940 }
941
942 int
943 rte_cryptodev_queue_pair_setup(uint8_t dev_id, uint16_t queue_pair_id,
944                 const struct rte_cryptodev_qp_conf *qp_conf, int socket_id,
945                 struct rte_mempool *session_pool)
946
947 {
948         struct rte_cryptodev *dev;
949
950         if (!rte_cryptodev_pmd_is_valid_dev(dev_id)) {
951                 CDEV_LOG_ERR("Invalid dev_id=%" PRIu8, dev_id);
952                 return -EINVAL;
953         }
954
955         dev = &rte_crypto_devices[dev_id];
956         if (queue_pair_id >= dev->data->nb_queue_pairs) {
957                 CDEV_LOG_ERR("Invalid queue_pair_id=%d", queue_pair_id);
958                 return -EINVAL;
959         }
960
961         if (dev->data->dev_started) {
962                 CDEV_LOG_ERR(
963                     "device %d must be stopped to allow configuration", dev_id);
964                 return -EBUSY;
965         }
966
967         RTE_FUNC_PTR_OR_ERR_RET(*dev->dev_ops->queue_pair_setup, -ENOTSUP);
968
969         return (*dev->dev_ops->queue_pair_setup)(dev, queue_pair_id, qp_conf,
970                         socket_id, session_pool);
971 }
972
973
974 int
975 rte_cryptodev_stats_get(uint8_t dev_id, struct rte_cryptodev_stats *stats)
976 {
977         struct rte_cryptodev *dev;
978
979         if (!rte_cryptodev_pmd_is_valid_dev(dev_id)) {
980                 CDEV_LOG_ERR("Invalid dev_id=%d", dev_id);
981                 return -ENODEV;
982         }
983
984         if (stats == NULL) {
985                 CDEV_LOG_ERR("Invalid stats ptr");
986                 return -EINVAL;
987         }
988
989         dev = &rte_crypto_devices[dev_id];
990         memset(stats, 0, sizeof(*stats));
991
992         RTE_FUNC_PTR_OR_ERR_RET(*dev->dev_ops->stats_get, -ENOTSUP);
993         (*dev->dev_ops->stats_get)(dev, stats);
994         return 0;
995 }
996
997 void
998 rte_cryptodev_stats_reset(uint8_t dev_id)
999 {
1000         struct rte_cryptodev *dev;
1001
1002         if (!rte_cryptodev_pmd_is_valid_dev(dev_id)) {
1003                 CDEV_LOG_ERR("Invalid dev_id=%" PRIu8, dev_id);
1004                 return;
1005         }
1006
1007         dev = &rte_crypto_devices[dev_id];
1008
1009         RTE_FUNC_PTR_OR_RET(*dev->dev_ops->stats_reset);
1010         (*dev->dev_ops->stats_reset)(dev);
1011 }
1012
1013
1014 void
1015 rte_cryptodev_info_get(uint8_t dev_id, struct rte_cryptodev_info *dev_info)
1016 {
1017         struct rte_cryptodev *dev;
1018
1019         if (dev_id >= cryptodev_globals.nb_devs) {
1020                 CDEV_LOG_ERR("Invalid dev_id=%d", dev_id);
1021                 return;
1022         }
1023
1024         dev = &rte_crypto_devices[dev_id];
1025
1026         memset(dev_info, 0, sizeof(struct rte_cryptodev_info));
1027
1028         RTE_FUNC_PTR_OR_RET(*dev->dev_ops->dev_infos_get);
1029         (*dev->dev_ops->dev_infos_get)(dev, dev_info);
1030
1031         dev_info->driver_name = dev->device->driver->name;
1032         dev_info->device = dev->device;
1033 }
1034
1035
1036 int
1037 rte_cryptodev_callback_register(uint8_t dev_id,
1038                         enum rte_cryptodev_event_type event,
1039                         rte_cryptodev_cb_fn cb_fn, void *cb_arg)
1040 {
1041         struct rte_cryptodev *dev;
1042         struct rte_cryptodev_callback *user_cb;
1043
1044         if (!cb_fn)
1045                 return -EINVAL;
1046
1047         if (!rte_cryptodev_pmd_is_valid_dev(dev_id)) {
1048                 CDEV_LOG_ERR("Invalid dev_id=%" PRIu8, dev_id);
1049                 return -EINVAL;
1050         }
1051
1052         dev = &rte_crypto_devices[dev_id];
1053         rte_spinlock_lock(&rte_cryptodev_cb_lock);
1054
1055         TAILQ_FOREACH(user_cb, &(dev->link_intr_cbs), next) {
1056                 if (user_cb->cb_fn == cb_fn &&
1057                         user_cb->cb_arg == cb_arg &&
1058                         user_cb->event == event) {
1059                         break;
1060                 }
1061         }
1062
1063         /* create a new callback. */
1064         if (user_cb == NULL) {
1065                 user_cb = rte_zmalloc("INTR_USER_CALLBACK",
1066                                 sizeof(struct rte_cryptodev_callback), 0);
1067                 if (user_cb != NULL) {
1068                         user_cb->cb_fn = cb_fn;
1069                         user_cb->cb_arg = cb_arg;
1070                         user_cb->event = event;
1071                         TAILQ_INSERT_TAIL(&(dev->link_intr_cbs), user_cb, next);
1072                 }
1073         }
1074
1075         rte_spinlock_unlock(&rte_cryptodev_cb_lock);
1076         return (user_cb == NULL) ? -ENOMEM : 0;
1077 }
1078
1079 int
1080 rte_cryptodev_callback_unregister(uint8_t dev_id,
1081                         enum rte_cryptodev_event_type event,
1082                         rte_cryptodev_cb_fn cb_fn, void *cb_arg)
1083 {
1084         int ret;
1085         struct rte_cryptodev *dev;
1086         struct rte_cryptodev_callback *cb, *next;
1087
1088         if (!cb_fn)
1089                 return -EINVAL;
1090
1091         if (!rte_cryptodev_pmd_is_valid_dev(dev_id)) {
1092                 CDEV_LOG_ERR("Invalid dev_id=%" PRIu8, dev_id);
1093                 return -EINVAL;
1094         }
1095
1096         dev = &rte_crypto_devices[dev_id];
1097         rte_spinlock_lock(&rte_cryptodev_cb_lock);
1098
1099         ret = 0;
1100         for (cb = TAILQ_FIRST(&dev->link_intr_cbs); cb != NULL; cb = next) {
1101
1102                 next = TAILQ_NEXT(cb, next);
1103
1104                 if (cb->cb_fn != cb_fn || cb->event != event ||
1105                                 (cb->cb_arg != (void *)-1 &&
1106                                 cb->cb_arg != cb_arg))
1107                         continue;
1108
1109                 /*
1110                  * if this callback is not executing right now,
1111                  * then remove it.
1112                  */
1113                 if (cb->active == 0) {
1114                         TAILQ_REMOVE(&(dev->link_intr_cbs), cb, next);
1115                         rte_free(cb);
1116                 } else {
1117                         ret = -EAGAIN;
1118                 }
1119         }
1120
1121         rte_spinlock_unlock(&rte_cryptodev_cb_lock);
1122         return ret;
1123 }
1124
1125 void
1126 rte_cryptodev_pmd_callback_process(struct rte_cryptodev *dev,
1127         enum rte_cryptodev_event_type event)
1128 {
1129         struct rte_cryptodev_callback *cb_lst;
1130         struct rte_cryptodev_callback dev_cb;
1131
1132         rte_spinlock_lock(&rte_cryptodev_cb_lock);
1133         TAILQ_FOREACH(cb_lst, &(dev->link_intr_cbs), next) {
1134                 if (cb_lst->cb_fn == NULL || cb_lst->event != event)
1135                         continue;
1136                 dev_cb = *cb_lst;
1137                 cb_lst->active = 1;
1138                 rte_spinlock_unlock(&rte_cryptodev_cb_lock);
1139                 dev_cb.cb_fn(dev->data->dev_id, dev_cb.event,
1140                                                 dev_cb.cb_arg);
1141                 rte_spinlock_lock(&rte_cryptodev_cb_lock);
1142                 cb_lst->active = 0;
1143         }
1144         rte_spinlock_unlock(&rte_cryptodev_cb_lock);
1145 }
1146
1147
1148 int
1149 rte_cryptodev_sym_session_init(uint8_t dev_id,
1150                 struct rte_cryptodev_sym_session *sess,
1151                 struct rte_crypto_sym_xform *xforms,
1152                 struct rte_mempool *mp)
1153 {
1154         struct rte_cryptodev *dev;
1155         uint8_t index;
1156         int ret;
1157
1158         dev = rte_cryptodev_pmd_get_dev(dev_id);
1159
1160         if (sess == NULL || xforms == NULL || dev == NULL)
1161                 return -EINVAL;
1162
1163         index = dev->driver_id;
1164
1165         RTE_FUNC_PTR_OR_ERR_RET(*dev->dev_ops->sym_session_configure, -ENOTSUP);
1166
1167         if (sess->sess_private_data[index] == NULL) {
1168                 ret = dev->dev_ops->sym_session_configure(dev, xforms,
1169                                                         sess, mp);
1170                 if (ret < 0) {
1171                         CDEV_LOG_ERR(
1172                                 "dev_id %d failed to configure session details",
1173                                 dev_id);
1174                         return ret;
1175                 }
1176         }
1177
1178         return 0;
1179 }
1180
1181 int __rte_experimental
1182 rte_cryptodev_asym_session_init(uint8_t dev_id,
1183                 struct rte_cryptodev_asym_session *sess,
1184                 struct rte_crypto_asym_xform *xforms,
1185                 struct rte_mempool *mp)
1186 {
1187         struct rte_cryptodev *dev;
1188         uint8_t index;
1189         int ret;
1190
1191         dev = rte_cryptodev_pmd_get_dev(dev_id);
1192
1193         if (sess == NULL || xforms == NULL || dev == NULL)
1194                 return -EINVAL;
1195
1196         index = dev->driver_id;
1197
1198         RTE_FUNC_PTR_OR_ERR_RET(*dev->dev_ops->asym_session_configure,
1199                                 -ENOTSUP);
1200
1201         if (sess->sess_private_data[index] == NULL) {
1202                 ret = dev->dev_ops->asym_session_configure(dev,
1203                                                         xforms,
1204                                                         sess, mp);
1205                 if (ret < 0) {
1206                         CDEV_LOG_ERR(
1207                                 "dev_id %d failed to configure session details",
1208                                 dev_id);
1209                         return ret;
1210                 }
1211         }
1212
1213         return 0;
1214 }
1215
1216 struct rte_cryptodev_sym_session *
1217 rte_cryptodev_sym_session_create(struct rte_mempool *mp)
1218 {
1219         struct rte_cryptodev_sym_session *sess;
1220
1221         /* Allocate a session structure from the session pool */
1222         if (rte_mempool_get(mp, (void **)&sess)) {
1223                 CDEV_LOG_ERR("couldn't get object from session mempool");
1224                 return NULL;
1225         }
1226
1227         /* Clear device session pointer.
1228          * Include the flag indicating presence of user data
1229          */
1230         memset(sess, 0, (sizeof(void *) * nb_drivers) + sizeof(uint8_t));
1231
1232         return sess;
1233 }
1234
1235 struct rte_cryptodev_asym_session * __rte_experimental
1236 rte_cryptodev_asym_session_create(struct rte_mempool *mp)
1237 {
1238         struct rte_cryptodev_asym_session *sess;
1239
1240         /* Allocate a session structure from the session pool */
1241         if (rte_mempool_get(mp, (void **)&sess)) {
1242                 CDEV_LOG_ERR("couldn't get object from session mempool");
1243                 return NULL;
1244         }
1245
1246         /* Clear device session pointer.
1247          * Include the flag indicating presence of private data
1248          */
1249         memset(sess, 0, (sizeof(void *) * nb_drivers) + sizeof(uint8_t));
1250
1251         return sess;
1252 }
1253
1254 int
1255 rte_cryptodev_sym_session_clear(uint8_t dev_id,
1256                 struct rte_cryptodev_sym_session *sess)
1257 {
1258         struct rte_cryptodev *dev;
1259
1260         dev = rte_cryptodev_pmd_get_dev(dev_id);
1261
1262         if (dev == NULL || sess == NULL)
1263                 return -EINVAL;
1264
1265         RTE_FUNC_PTR_OR_ERR_RET(*dev->dev_ops->sym_session_clear, -ENOTSUP);
1266
1267         dev->dev_ops->sym_session_clear(dev, sess);
1268
1269         return 0;
1270 }
1271
1272 int __rte_experimental
1273 rte_cryptodev_asym_session_clear(uint8_t dev_id,
1274                 struct rte_cryptodev_asym_session *sess)
1275 {
1276         struct rte_cryptodev *dev;
1277
1278         dev = rte_cryptodev_pmd_get_dev(dev_id);
1279
1280         if (dev == NULL || sess == NULL)
1281                 return -EINVAL;
1282
1283         RTE_FUNC_PTR_OR_ERR_RET(*dev->dev_ops->asym_session_clear, -ENOTSUP);
1284
1285         dev->dev_ops->asym_session_clear(dev, sess);
1286
1287         return 0;
1288 }
1289
1290 int
1291 rte_cryptodev_sym_session_free(struct rte_cryptodev_sym_session *sess)
1292 {
1293         uint8_t i;
1294         void *sess_priv;
1295         struct rte_mempool *sess_mp;
1296
1297         if (sess == NULL)
1298                 return -EINVAL;
1299
1300         /* Check that all device private data has been freed */
1301         for (i = 0; i < nb_drivers; i++) {
1302                 sess_priv = get_sym_session_private_data(sess, i);
1303                 if (sess_priv != NULL)
1304                         return -EBUSY;
1305         }
1306
1307         /* Return session to mempool */
1308         sess_mp = rte_mempool_from_obj(sess);
1309         rte_mempool_put(sess_mp, sess);
1310
1311         return 0;
1312 }
1313
1314 int __rte_experimental
1315 rte_cryptodev_asym_session_free(struct rte_cryptodev_asym_session *sess)
1316 {
1317         uint8_t i;
1318         void *sess_priv;
1319         struct rte_mempool *sess_mp;
1320
1321         if (sess == NULL)
1322                 return -EINVAL;
1323
1324         /* Check that all device private data has been freed */
1325         for (i = 0; i < nb_drivers; i++) {
1326                 sess_priv = get_asym_session_private_data(sess, i);
1327                 if (sess_priv != NULL)
1328                         return -EBUSY;
1329         }
1330
1331         /* Return session to mempool */
1332         sess_mp = rte_mempool_from_obj(sess);
1333         rte_mempool_put(sess_mp, sess);
1334
1335         return 0;
1336 }
1337
1338
1339 unsigned int
1340 rte_cryptodev_sym_get_header_session_size(void)
1341 {
1342         /*
1343          * Header contains pointers to the private data
1344          * of all registered drivers, and a flag which
1345          * indicates presence of user data
1346          */
1347         return ((sizeof(void *) * nb_drivers) + sizeof(uint8_t));
1348 }
1349
1350 unsigned int __rte_experimental
1351 rte_cryptodev_asym_get_header_session_size(void)
1352 {
1353         /*
1354          * Header contains pointers to the private data
1355          * of all registered drivers, and a flag which
1356          * indicates presence of private data
1357          */
1358         return ((sizeof(void *) * nb_drivers) + sizeof(uint8_t));
1359 }
1360
1361 unsigned int
1362 rte_cryptodev_sym_get_private_session_size(uint8_t dev_id)
1363 {
1364         struct rte_cryptodev *dev;
1365         unsigned int header_size = sizeof(void *) * nb_drivers;
1366         unsigned int priv_sess_size;
1367
1368         if (!rte_cryptodev_pmd_is_valid_dev(dev_id))
1369                 return 0;
1370
1371         dev = rte_cryptodev_pmd_get_dev(dev_id);
1372
1373         if (*dev->dev_ops->sym_session_get_size == NULL)
1374                 return 0;
1375
1376         priv_sess_size = (*dev->dev_ops->sym_session_get_size)(dev);
1377
1378         /*
1379          * If size is less than session header size,
1380          * return the latter, as this guarantees that
1381          * sessionless operations will work
1382          */
1383         if (priv_sess_size < header_size)
1384                 return header_size;
1385
1386         return priv_sess_size;
1387
1388 }
1389
1390 unsigned int __rte_experimental
1391 rte_cryptodev_asym_get_private_session_size(uint8_t dev_id)
1392 {
1393         struct rte_cryptodev *dev;
1394         unsigned int header_size = sizeof(void *) * nb_drivers;
1395         unsigned int priv_sess_size;
1396
1397         if (!rte_cryptodev_pmd_is_valid_dev(dev_id))
1398                 return 0;
1399
1400         dev = rte_cryptodev_pmd_get_dev(dev_id);
1401
1402         if (*dev->dev_ops->asym_session_get_size == NULL)
1403                 return 0;
1404
1405         priv_sess_size = (*dev->dev_ops->asym_session_get_size)(dev);
1406         if (priv_sess_size < header_size)
1407                 return header_size;
1408
1409         return priv_sess_size;
1410
1411 }
1412
1413 int __rte_experimental
1414 rte_cryptodev_sym_session_set_user_data(
1415                                         struct rte_cryptodev_sym_session *sess,
1416                                         void *data,
1417                                         uint16_t size)
1418 {
1419         uint16_t off_set = sizeof(void *) * nb_drivers;
1420         uint8_t *user_data_present = (uint8_t *)sess + off_set;
1421
1422         if (sess == NULL)
1423                 return -EINVAL;
1424
1425         *user_data_present = 1;
1426         off_set += sizeof(uint8_t);
1427         rte_memcpy((uint8_t *)sess + off_set, data, size);
1428         return 0;
1429 }
1430
1431 void * __rte_experimental
1432 rte_cryptodev_sym_session_get_user_data(
1433                                         struct rte_cryptodev_sym_session *sess)
1434 {
1435         uint16_t off_set = sizeof(void *) * nb_drivers;
1436         uint8_t *user_data_present = (uint8_t *)sess + off_set;
1437
1438         if (sess == NULL || !*user_data_present)
1439                 return NULL;
1440
1441         off_set += sizeof(uint8_t);
1442         return (uint8_t *)sess + off_set;
1443 }
1444
1445 /** Initialise rte_crypto_op mempool element */
1446 static void
1447 rte_crypto_op_init(struct rte_mempool *mempool,
1448                 void *opaque_arg,
1449                 void *_op_data,
1450                 __rte_unused unsigned i)
1451 {
1452         struct rte_crypto_op *op = _op_data;
1453         enum rte_crypto_op_type type = *(enum rte_crypto_op_type *)opaque_arg;
1454
1455         memset(_op_data, 0, mempool->elt_size);
1456
1457         __rte_crypto_op_reset(op, type);
1458
1459         op->phys_addr = rte_mem_virt2iova(_op_data);
1460         op->mempool = mempool;
1461 }
1462
1463
1464 struct rte_mempool *
1465 rte_crypto_op_pool_create(const char *name, enum rte_crypto_op_type type,
1466                 unsigned nb_elts, unsigned cache_size, uint16_t priv_size,
1467                 int socket_id)
1468 {
1469         struct rte_crypto_op_pool_private *priv;
1470
1471         unsigned elt_size = sizeof(struct rte_crypto_op) +
1472                         priv_size;
1473
1474         if (type == RTE_CRYPTO_OP_TYPE_SYMMETRIC) {
1475                 elt_size += sizeof(struct rte_crypto_sym_op);
1476         } else if (type == RTE_CRYPTO_OP_TYPE_ASYMMETRIC) {
1477                 elt_size += sizeof(struct rte_crypto_asym_op);
1478         } else if (type == RTE_CRYPTO_OP_TYPE_UNDEFINED) {
1479                 elt_size += RTE_MAX(sizeof(struct rte_crypto_sym_op),
1480                                     sizeof(struct rte_crypto_asym_op));
1481         } else {
1482                 CDEV_LOG_ERR("Invalid op_type\n");
1483                 return NULL;
1484         }
1485
1486         /* lookup mempool in case already allocated */
1487         struct rte_mempool *mp = rte_mempool_lookup(name);
1488
1489         if (mp != NULL) {
1490                 priv = (struct rte_crypto_op_pool_private *)
1491                                 rte_mempool_get_priv(mp);
1492
1493                 if (mp->elt_size != elt_size ||
1494                                 mp->cache_size < cache_size ||
1495                                 mp->size < nb_elts ||
1496                                 priv->priv_size <  priv_size) {
1497                         mp = NULL;
1498                         CDEV_LOG_ERR("Mempool %s already exists but with "
1499                                         "incompatible parameters", name);
1500                         return NULL;
1501                 }
1502                 return mp;
1503         }
1504
1505         mp = rte_mempool_create(
1506                         name,
1507                         nb_elts,
1508                         elt_size,
1509                         cache_size,
1510                         sizeof(struct rte_crypto_op_pool_private),
1511                         NULL,
1512                         NULL,
1513                         rte_crypto_op_init,
1514                         &type,
1515                         socket_id,
1516                         0);
1517
1518         if (mp == NULL) {
1519                 CDEV_LOG_ERR("Failed to create mempool %s", name);
1520                 return NULL;
1521         }
1522
1523         priv = (struct rte_crypto_op_pool_private *)
1524                         rte_mempool_get_priv(mp);
1525
1526         priv->priv_size = priv_size;
1527         priv->type = type;
1528
1529         return mp;
1530 }
1531
1532 int
1533 rte_cryptodev_pmd_create_dev_name(char *name, const char *dev_name_prefix)
1534 {
1535         struct rte_cryptodev *dev = NULL;
1536         uint32_t i = 0;
1537
1538         if (name == NULL)
1539                 return -EINVAL;
1540
1541         for (i = 0; i < RTE_CRYPTO_MAX_DEVS; i++) {
1542                 int ret = snprintf(name, RTE_CRYPTODEV_NAME_MAX_LEN,
1543                                 "%s_%u", dev_name_prefix, i);
1544
1545                 if (ret < 0)
1546                         return ret;
1547
1548                 dev = rte_cryptodev_pmd_get_named_dev(name);
1549                 if (!dev)
1550                         return 0;
1551         }
1552
1553         return -1;
1554 }
1555
1556 TAILQ_HEAD(cryptodev_driver_list, cryptodev_driver);
1557
1558 static struct cryptodev_driver_list cryptodev_driver_list =
1559         TAILQ_HEAD_INITIALIZER(cryptodev_driver_list);
1560
1561 int
1562 rte_cryptodev_driver_id_get(const char *name)
1563 {
1564         struct cryptodev_driver *driver;
1565         const char *driver_name;
1566
1567         if (name == NULL) {
1568                 RTE_LOG(DEBUG, CRYPTODEV, "name pointer NULL");
1569                 return -1;
1570         }
1571
1572         TAILQ_FOREACH(driver, &cryptodev_driver_list, next) {
1573                 driver_name = driver->driver->name;
1574                 if (strncmp(driver_name, name, strlen(driver_name)) == 0)
1575                         return driver->id;
1576         }
1577         return -1;
1578 }
1579
1580 const char *
1581 rte_cryptodev_name_get(uint8_t dev_id)
1582 {
1583         struct rte_cryptodev *dev = rte_cryptodev_pmd_get_dev(dev_id);
1584
1585         if (dev == NULL)
1586                 return NULL;
1587
1588         return dev->data->name;
1589 }
1590
1591 const char *
1592 rte_cryptodev_driver_name_get(uint8_t driver_id)
1593 {
1594         struct cryptodev_driver *driver;
1595
1596         TAILQ_FOREACH(driver, &cryptodev_driver_list, next)
1597                 if (driver->id == driver_id)
1598                         return driver->driver->name;
1599         return NULL;
1600 }
1601
1602 uint8_t
1603 rte_cryptodev_allocate_driver(struct cryptodev_driver *crypto_drv,
1604                 const struct rte_driver *drv)
1605 {
1606         crypto_drv->driver = drv;
1607         crypto_drv->id = nb_drivers;
1608
1609         TAILQ_INSERT_TAIL(&cryptodev_driver_list, crypto_drv, next);
1610
1611         return nb_drivers++;
1612 }