Coverage Report

Created: 2025-06-13 06:58

/src/openssl32/engines/e_afalg.c
Line
Count
Source (jump to first uncovered line)
1
/*
2
 * Copyright 2016-2025 The OpenSSL Project Authors. All Rights Reserved.
3
 *
4
 * Licensed under the Apache License 2.0 (the "License").  You may not use
5
 * this file except in compliance with the License.  You can obtain a copy
6
 * in the file LICENSE in the source distribution or at
7
 * https://www.openssl.org/source/license.html
8
 */
9
10
/* We need to use some deprecated APIs */
11
#define OPENSSL_SUPPRESS_DEPRECATED
12
13
/* Required for vmsplice */
14
#ifndef _GNU_SOURCE
15
# define _GNU_SOURCE
16
#endif
17
#include <stdio.h>
18
#include <string.h>
19
#include <unistd.h>
20
21
#include <openssl/engine.h>
22
#include <openssl/async.h>
23
#include <openssl/err.h>
24
#include "internal/nelem.h"
25
26
#include <sys/socket.h>
27
#include <linux/version.h>
28
#define K_MAJ   4
29
#define K_MIN1  1
30
#define K_MIN2  0
31
#if LINUX_VERSION_CODE < KERNEL_VERSION(K_MAJ, K_MIN1, K_MIN2) || \
32
    !defined(AF_ALG)
33
# ifndef PEDANTIC
34
#  warning "AFALG ENGINE requires Kernel Headers >= 4.1.0"
35
#  warning "Skipping Compilation of AFALG engine"
36
# endif
37
void engine_load_afalg_int(void);
38
void engine_load_afalg_int(void)
39
{
40
}
41
#else
42
43
# include <linux/if_alg.h>
44
# include <fcntl.h>
45
# include <sys/utsname.h>
46
47
# include <linux/aio_abi.h>
48
# include <sys/syscall.h>
49
# include <errno.h>
50
51
# include "e_afalg.h"
52
# include "e_afalg_err.c"
53
54
# ifndef SOL_ALG
55
#  define SOL_ALG 279
56
# endif
57
58
# ifdef ALG_ZERO_COPY
59
#  ifndef SPLICE_F_GIFT
60
#   define SPLICE_F_GIFT    (0x08)
61
#  endif
62
# endif
63
64
0
# define ALG_AES_IV_LEN 16
65
# define ALG_IV_LEN(len) (sizeof(struct af_alg_iv) + (len))
66
# define ALG_OP_TYPE     unsigned int
67
0
# define ALG_OP_LEN      (sizeof(ALG_OP_TYPE))
68
69
# ifdef OPENSSL_NO_DYNAMIC_ENGINE
70
void engine_load_afalg_int(void);
71
# endif
72
73
/* Local Linkage Functions */
74
static int afalg_init_aio(afalg_aio *aio);
75
static int afalg_fin_cipher_aio(afalg_aio *ptr, int sfd,
76
                                unsigned char *buf, size_t len);
77
static int afalg_create_sk(afalg_ctx *actx, const char *ciphertype,
78
                                const char *ciphername);
79
static int afalg_destroy(ENGINE *e);
80
static int afalg_init(ENGINE *e);
81
static int afalg_finish(ENGINE *e);
82
static const EVP_CIPHER *afalg_aes_cbc(int nid);
83
static cbc_handles *get_cipher_handle(int nid);
84
static int afalg_ciphers(ENGINE *e, const EVP_CIPHER **cipher,
85
                         const int **nids, int nid);
86
static int afalg_cipher_init(EVP_CIPHER_CTX *ctx, const unsigned char *key,
87
                             const unsigned char *iv, int enc);
88
static int afalg_do_cipher(EVP_CIPHER_CTX *ctx, unsigned char *out,
89
                           const unsigned char *in, size_t inl);
90
static int afalg_cipher_cleanup(EVP_CIPHER_CTX *ctx);
91
static int afalg_chk_platform(void);
92
93
/* Engine Id and Name */
94
static const char *engine_afalg_id = "afalg";
95
static const char *engine_afalg_name = "AFALG engine support";
96
97
static int afalg_cipher_nids[] = {
98
    NID_aes_128_cbc,
99
    NID_aes_192_cbc,
100
    NID_aes_256_cbc,
101
};
102
103
static cbc_handles cbc_handle[] = {{AES_KEY_SIZE_128, NULL},
104
                                    {AES_KEY_SIZE_192, NULL},
105
                                    {AES_KEY_SIZE_256, NULL}};
106
107
static ossl_inline int io_setup(unsigned n, aio_context_t *ctx)
108
0
{
109
0
    return syscall(__NR_io_setup, n, ctx);
110
0
}
111
112
static ossl_inline int eventfd(int n)
113
0
{
114
0
    return syscall(__NR_eventfd2, n, 0);
115
0
}
116
117
static ossl_inline int io_destroy(aio_context_t ctx)
118
0
{
119
0
    return syscall(__NR_io_destroy, ctx);
120
0
}
121
122
static ossl_inline int io_read(aio_context_t ctx, long n, struct iocb **iocb)
123
0
{
124
0
    return syscall(__NR_io_submit, ctx, n, iocb);
125
0
}
126
127
/* A version of 'struct timespec' with 32-bit time_t and nanoseconds.  */
128
struct __timespec32
129
{
130
  __kernel_long_t tv_sec;
131
  __kernel_long_t tv_nsec;
132
};
133
134
static ossl_inline int io_getevents(aio_context_t ctx, long min, long max,
135
                               struct io_event *events,
136
                               struct timespec *timeout)
137
0
{
138
#if defined(__NR_io_pgetevents_time64)
139
    /* Check if we are a 32-bit architecture with a 64-bit time_t */
140
    if (sizeof(*timeout) != sizeof(struct __timespec32)) {
141
        int ret = syscall(__NR_io_pgetevents_time64, ctx, min, max, events,
142
                          timeout, NULL);
143
        if (ret == 0 || errno != ENOSYS)
144
            return ret;
145
    }
146
#endif
147
148
0
#if defined(__NR_io_getevents)
149
0
    if (sizeof(*timeout) == sizeof(struct __timespec32))
150
        /*
151
         * time_t matches our architecture length, we can just use
152
         * __NR_io_getevents
153
         */
154
0
        return syscall(__NR_io_getevents, ctx, min, max, events, timeout);
155
0
    else {
156
        /*
157
         * We don't have __NR_io_pgetevents_time64, but we are using a
158
         * 64-bit time_t on a 32-bit architecture. If we can fit the
159
         * timeout value in a 32-bit time_t, then let's do that
160
         * and then use the __NR_io_getevents syscall.
161
         */
162
0
        if (timeout && timeout->tv_sec == (long)timeout->tv_sec) {
163
0
            struct __timespec32 ts32;
164
165
0
            ts32.tv_sec = (__kernel_long_t) timeout->tv_sec;
166
0
            ts32.tv_nsec = (__kernel_long_t) timeout->tv_nsec;
167
168
0
            return syscall(__NR_io_getevents, ctx, min, max, events, &ts32);
169
0
        } else {
170
0
            return syscall(__NR_io_getevents, ctx, min, max, events, NULL);
171
0
        }
172
0
    }
173
0
#endif
174
175
0
    errno = ENOSYS;
176
0
    return -1;
177
0
}
178
179
static void afalg_waitfd_cleanup(ASYNC_WAIT_CTX *ctx, const void *key,
180
                                 OSSL_ASYNC_FD waitfd, void *custom)
181
0
{
182
0
    close(waitfd);
183
0
}
184
185
static int afalg_setup_async_event_notification(afalg_aio *aio)
186
0
{
187
0
    ASYNC_JOB *job;
188
0
    ASYNC_WAIT_CTX *waitctx;
189
0
    void *custom = NULL;
190
0
    int ret;
191
192
0
    if ((job = ASYNC_get_current_job()) != NULL) {
193
        /* Async mode */
194
0
        waitctx = ASYNC_get_wait_ctx(job);
195
0
        if (waitctx == NULL) {
196
0
            ALG_WARN("%s(%d): ASYNC_get_wait_ctx error", __FILE__, __LINE__);
197
0
            return 0;
198
0
        }
199
        /* Get waitfd from ASYNC_WAIT_CTX if it is already set */
200
0
        ret = ASYNC_WAIT_CTX_get_fd(waitctx, engine_afalg_id,
201
0
                                    &aio->efd, &custom);
202
0
        if (ret == 0) {
203
            /*
204
             * waitfd is not set in ASYNC_WAIT_CTX, create a new one
205
             * and set it. efd will be signaled when AIO operation completes
206
             */
207
0
            aio->efd = eventfd(0);
208
0
            if (aio->efd == -1) {
209
0
                ALG_PERR("%s(%d): Failed to get eventfd : ", __FILE__,
210
0
                         __LINE__);
211
0
                AFALGerr(AFALG_F_AFALG_SETUP_ASYNC_EVENT_NOTIFICATION,
212
0
                         AFALG_R_EVENTFD_FAILED);
213
0
                return 0;
214
0
            }
215
0
            ret = ASYNC_WAIT_CTX_set_wait_fd(waitctx, engine_afalg_id,
216
0
                                             aio->efd, custom,
217
0
                                             afalg_waitfd_cleanup);
218
0
            if (ret == 0) {
219
0
                ALG_WARN("%s(%d): Failed to set wait fd", __FILE__, __LINE__);
220
0
                close(aio->efd);
221
0
                return 0;
222
0
            }
223
            /* make fd non-blocking in async mode */
224
0
            if (fcntl(aio->efd, F_SETFL, O_NONBLOCK) != 0) {
225
0
                ALG_WARN("%s(%d): Failed to set event fd as NONBLOCKING",
226
0
                         __FILE__, __LINE__);
227
0
            }
228
0
        }
229
0
        aio->mode = MODE_ASYNC;
230
0
    } else {
231
        /* Sync mode */
232
0
        aio->efd = eventfd(0);
233
0
        if (aio->efd == -1) {
234
0
            ALG_PERR("%s(%d): Failed to get eventfd : ", __FILE__, __LINE__);
235
0
            AFALGerr(AFALG_F_AFALG_SETUP_ASYNC_EVENT_NOTIFICATION,
236
0
                     AFALG_R_EVENTFD_FAILED);
237
0
            return 0;
238
0
        }
239
0
        aio->mode = MODE_SYNC;
240
0
    }
241
0
    return 1;
242
0
}
243
244
static int afalg_init_aio(afalg_aio *aio)
245
0
{
246
0
    int r = -1;
247
248
    /* Initialise for AIO */
249
0
    aio->aio_ctx = 0;
250
0
    r = io_setup(MAX_INFLIGHTS, &aio->aio_ctx);
251
0
    if (r < 0) {
252
0
        ALG_PERR("%s(%d): io_setup error : ", __FILE__, __LINE__);
253
0
        AFALGerr(AFALG_F_AFALG_INIT_AIO, AFALG_R_IO_SETUP_FAILED);
254
0
        return 0;
255
0
    }
256
257
0
    memset(aio->cbt, 0, sizeof(aio->cbt));
258
0
    aio->efd = -1;
259
0
    aio->mode = MODE_UNINIT;
260
261
0
    return 1;
262
0
}
263
264
static int afalg_fin_cipher_aio(afalg_aio *aio, int sfd, unsigned char *buf,
265
                                size_t len)
266
0
{
267
0
    int r;
268
0
    int retry = 0;
269
0
    unsigned int done = 0;
270
0
    struct iocb *cb;
271
0
    struct timespec timeout;
272
0
    struct io_event events[MAX_INFLIGHTS];
273
0
    u_int64_t eval = 0;
274
275
0
    timeout.tv_sec = 0;
276
0
    timeout.tv_nsec = 0;
277
278
    /* if efd has not been initialised yet do it here */
279
0
    if (aio->mode == MODE_UNINIT) {
280
0
        r = afalg_setup_async_event_notification(aio);
281
0
        if (r == 0)
282
0
            return 0;
283
0
    }
284
285
0
    cb = &(aio->cbt[0 % MAX_INFLIGHTS]);
286
0
    memset(cb, '\0', sizeof(*cb));
287
0
    cb->aio_fildes = sfd;
288
0
    cb->aio_lio_opcode = IOCB_CMD_PREAD;
289
    /*
290
     * The pointer has to be converted to unsigned value first to avoid
291
     * sign extension on cast to 64 bit value in 32-bit builds
292
     */
293
0
    cb->aio_buf = (size_t)buf;
294
0
    cb->aio_offset = 0;
295
0
    cb->aio_data = 0;
296
0
    cb->aio_nbytes = len;
297
0
    cb->aio_flags = IOCB_FLAG_RESFD;
298
0
    cb->aio_resfd = aio->efd;
299
300
    /*
301
     * Perform AIO read on AFALG socket, this in turn performs an async
302
     * crypto operation in kernel space
303
     */
304
0
    r = io_read(aio->aio_ctx, 1, &cb);
305
0
    if (r < 0) {
306
0
        ALG_PWARN("%s(%d): io_read failed : ", __FILE__, __LINE__);
307
0
        return 0;
308
0
    }
309
310
0
    do {
311
        /* While AIO read is being performed pause job */
312
0
        ASYNC_pause_job();
313
314
        /* Check for completion of AIO read */
315
0
        r = read(aio->efd, &eval, sizeof(eval));
316
0
        if (r < 0) {
317
0
            if (errno == EAGAIN || errno == EWOULDBLOCK)
318
0
                continue;
319
0
            ALG_PERR("%s(%d): read failed for event fd : ", __FILE__, __LINE__);
320
0
            return 0;
321
0
        } else if (r == 0 || eval <= 0) {
322
0
            ALG_WARN("%s(%d): eventfd read %d bytes, eval = %lu\n", __FILE__,
323
0
                     __LINE__, r, eval);
324
0
        }
325
0
        if (eval > 0) {
326
327
#ifdef OSSL_SANITIZE_MEMORY
328
            /*
329
             * In a memory sanitiser build, the changes to memory made by the
330
             * system call aren't reliably detected.  By initialising the
331
             * memory here, the sanitiser is told that they are okay.
332
             */
333
            memset(events, 0, sizeof(events));
334
#endif
335
336
            /* Get results of AIO read */
337
0
            r = io_getevents(aio->aio_ctx, 1, MAX_INFLIGHTS,
338
0
                             events, &timeout);
339
0
            if (r > 0) {
340
                /*
341
                 * events.res indicates the actual status of the operation.
342
                 * Handle the error condition first.
343
                 */
344
0
                if (events[0].res < 0) {
345
                    /*
346
                     * Underlying operation cannot be completed at the time
347
                     * of previous submission. Resubmit for the operation.
348
                     */
349
0
                    if (events[0].res == -EBUSY && retry++ < 3) {
350
0
                        r = io_read(aio->aio_ctx, 1, &cb);
351
0
                        if (r < 0) {
352
0
                            ALG_PERR("%s(%d): retry %d for io_read failed : ",
353
0
                                     __FILE__, __LINE__, retry);
354
0
                            return 0;
355
0
                        }
356
0
                        continue;
357
0
                    } else {
358
0
                        char strbuf[32];
359
                        /*
360
                         * sometimes __s64 is defined as long long int
361
                         * but on some archs ( like mips64 or powerpc64 ) it's just long int
362
                         *
363
                         * to be able to use BIO_snprintf() with %lld without warnings
364
                         * copy events[0].res to an long long int variable
365
                         *
366
                         * because long long int should always be at least 64 bit this should work
367
                         */
368
0
                        long long int op_ret = events[0].res;
369
370
                        /*
371
                         * Retries exceed for -EBUSY or unrecoverable error
372
                         * condition for this instance of operation.
373
                         */
374
0
                        ALG_WARN
375
0
                            ("%s(%d): Crypto Operation failed with code %lld\n",
376
0
                             __FILE__, __LINE__, events[0].res);
377
0
                        BIO_snprintf(strbuf, sizeof(strbuf), "%lld", op_ret);
378
0
                        switch (events[0].res) {
379
0
                        case -ENOMEM:
380
0
                            AFALGerr(0, AFALG_R_KERNEL_OP_FAILED);
381
0
                            ERR_add_error_data(3, "-ENOMEM ( code ", strbuf, " )");
382
0
                            break;
383
0
                        default:
384
0
                            AFALGerr(0, AFALG_R_KERNEL_OP_FAILED);
385
0
                            ERR_add_error_data(2, "code ", strbuf);
386
0
                            break;
387
0
                        }
388
0
                        return 0;
389
0
                    }
390
0
                }
391
                /* Operation successful. */
392
0
                done = 1;
393
0
            } else if (r < 0) {
394
0
                ALG_PERR("%s(%d): io_getevents failed : ", __FILE__, __LINE__);
395
0
                return 0;
396
0
            } else {
397
0
                ALG_WARN("%s(%d): io_geteventd read 0 bytes\n", __FILE__,
398
0
                         __LINE__);
399
0
            }
400
0
        }
401
0
    } while (!done);
402
403
0
    return 1;
404
0
}
405
406
static ossl_inline void afalg_set_op_sk(struct cmsghdr *cmsg,
407
                                   const ALG_OP_TYPE op)
408
0
{
409
0
    cmsg->cmsg_level = SOL_ALG;
410
0
    cmsg->cmsg_type = ALG_SET_OP;
411
0
    cmsg->cmsg_len = CMSG_LEN(ALG_OP_LEN);
412
0
    memcpy(CMSG_DATA(cmsg), &op, ALG_OP_LEN);
413
0
}
414
415
static void afalg_set_iv_sk(struct cmsghdr *cmsg, const unsigned char *iv,
416
                            const unsigned int len)
417
0
{
418
0
    struct af_alg_iv *aiv;
419
420
0
    cmsg->cmsg_level = SOL_ALG;
421
0
    cmsg->cmsg_type = ALG_SET_IV;
422
0
    cmsg->cmsg_len = CMSG_LEN(ALG_IV_LEN(len));
423
0
    aiv = (struct af_alg_iv *)CMSG_DATA(cmsg);
424
0
    aiv->ivlen = len;
425
0
    memcpy(aiv->iv, iv, len);
426
0
}
427
428
static ossl_inline int afalg_set_key(afalg_ctx *actx, const unsigned char *key,
429
                                const int klen)
430
0
{
431
0
    int ret;
432
0
    ret = setsockopt(actx->bfd, SOL_ALG, ALG_SET_KEY, key, klen);
433
0
    if (ret < 0) {
434
0
        ALG_PERR("%s(%d): Failed to set socket option : ", __FILE__, __LINE__);
435
0
        AFALGerr(AFALG_F_AFALG_SET_KEY, AFALG_R_SOCKET_SET_KEY_FAILED);
436
0
        return 0;
437
0
    }
438
0
    return 1;
439
0
}
440
441
static int afalg_create_sk(afalg_ctx *actx, const char *ciphertype,
442
                                const char *ciphername)
443
0
{
444
0
    struct sockaddr_alg sa;
445
0
    int r = -1;
446
447
0
    actx->bfd = actx->sfd = -1;
448
449
0
    memset(&sa, 0, sizeof(sa));
450
0
    sa.salg_family = AF_ALG;
451
0
    OPENSSL_strlcpy((char *) sa.salg_type, ciphertype, sizeof(sa.salg_type));
452
0
    OPENSSL_strlcpy((char *) sa.salg_name, ciphername, sizeof(sa.salg_name));
453
454
0
    actx->bfd = socket(AF_ALG, SOCK_SEQPACKET, 0);
455
0
    if (actx->bfd == -1) {
456
0
        ALG_PERR("%s(%d): Failed to open socket : ", __FILE__, __LINE__);
457
0
        AFALGerr(AFALG_F_AFALG_CREATE_SK, AFALG_R_SOCKET_CREATE_FAILED);
458
0
        goto err;
459
0
    }
460
461
0
    r = bind(actx->bfd, (struct sockaddr *)&sa, sizeof(sa));
462
0
    if (r < 0) {
463
0
        ALG_PERR("%s(%d): Failed to bind socket : ", __FILE__, __LINE__);
464
0
        AFALGerr(AFALG_F_AFALG_CREATE_SK, AFALG_R_SOCKET_BIND_FAILED);
465
0
        goto err;
466
0
    }
467
468
0
    actx->sfd = accept(actx->bfd, NULL, 0);
469
0
    if (actx->sfd < 0) {
470
0
        ALG_PERR("%s(%d): Socket Accept Failed : ", __FILE__, __LINE__);
471
0
        AFALGerr(AFALG_F_AFALG_CREATE_SK, AFALG_R_SOCKET_ACCEPT_FAILED);
472
0
        goto err;
473
0
    }
474
475
0
    return 1;
476
477
0
 err:
478
0
    if (actx->bfd >= 0)
479
0
        close(actx->bfd);
480
0
    if (actx->sfd >= 0)
481
0
        close(actx->sfd);
482
0
    actx->bfd = actx->sfd = -1;
483
0
    return 0;
484
0
}
485
486
static int afalg_start_cipher_sk(afalg_ctx *actx, const unsigned char *in,
487
                                 size_t inl, const unsigned char *iv,
488
                                 unsigned int enc)
489
0
{
490
0
    struct msghdr msg;
491
0
    struct cmsghdr *cmsg;
492
0
    struct iovec iov;
493
0
    ssize_t sbytes;
494
# ifdef ALG_ZERO_COPY
495
    int ret;
496
# endif
497
0
    char cbuf[CMSG_SPACE(ALG_IV_LEN(ALG_AES_IV_LEN)) + CMSG_SPACE(ALG_OP_LEN)];
498
499
0
    memset(&msg, 0, sizeof(msg));
500
0
    memset(cbuf, 0, sizeof(cbuf));
501
0
    msg.msg_control = cbuf;
502
0
    msg.msg_controllen = sizeof(cbuf);
503
504
    /*
505
     * cipher direction (i.e. encrypt or decrypt) and iv are sent to the
506
     * kernel as part of sendmsg()'s ancillary data
507
     */
508
0
    cmsg = CMSG_FIRSTHDR(&msg);
509
0
    afalg_set_op_sk(cmsg, enc);
510
0
    cmsg = CMSG_NXTHDR(&msg, cmsg);
511
0
    afalg_set_iv_sk(cmsg, iv, ALG_AES_IV_LEN);
512
513
    /* iov that describes input data */
514
0
    iov.iov_base = (unsigned char *)in;
515
0
    iov.iov_len = inl;
516
517
0
    msg.msg_flags = MSG_MORE;
518
519
# ifdef ALG_ZERO_COPY
520
    /*
521
     * ZERO_COPY mode
522
     * Works best when buffer is 4k aligned
523
     * OPENS: out of place processing (i.e. out != in)
524
     */
525
526
    /* Input data is not sent as part of call to sendmsg() */
527
    msg.msg_iovlen = 0;
528
    msg.msg_iov = NULL;
529
530
    /* Sendmsg() sends iv and cipher direction to the kernel */
531
    sbytes = sendmsg(actx->sfd, &msg, 0);
532
    if (sbytes < 0) {
533
        ALG_PERR("%s(%d): sendmsg failed for zero copy cipher operation : ",
534
                 __FILE__, __LINE__);
535
        return 0;
536
    }
537
538
    /*
539
     * vmsplice and splice are used to pin the user space input buffer for
540
     * kernel space processing avoiding copies from user to kernel space
541
     */
542
    ret = vmsplice(actx->zc_pipe[1], &iov, 1, SPLICE_F_GIFT);
543
    if (ret < 0) {
544
        ALG_PERR("%s(%d): vmsplice failed : ", __FILE__, __LINE__);
545
        return 0;
546
    }
547
548
    ret = splice(actx->zc_pipe[0], NULL, actx->sfd, NULL, inl, 0);
549
    if (ret < 0) {
550
        ALG_PERR("%s(%d): splice failed : ", __FILE__, __LINE__);
551
        return 0;
552
    }
553
# else
554
0
    msg.msg_iovlen = 1;
555
0
    msg.msg_iov = &iov;
556
557
    /* Sendmsg() sends iv, cipher direction and input data to the kernel */
558
0
    sbytes = sendmsg(actx->sfd, &msg, 0);
559
0
    if (sbytes < 0) {
560
0
        ALG_PERR("%s(%d): sendmsg failed for cipher operation : ", __FILE__,
561
0
                 __LINE__);
562
0
        return 0;
563
0
    }
564
565
0
    if (sbytes != (ssize_t) inl) {
566
0
        ALG_WARN("Cipher operation send bytes %zd != inlen %zd\n", sbytes,
567
0
                inl);
568
0
        return 0;
569
0
    }
570
0
# endif
571
572
0
    return 1;
573
0
}
574
575
static int afalg_cipher_init(EVP_CIPHER_CTX *ctx, const unsigned char *key,
576
                             const unsigned char *iv, int enc)
577
0
{
578
0
    int ciphertype;
579
0
    int ret, len;
580
0
    afalg_ctx *actx;
581
0
    const char *ciphername;
582
583
0
    if (ctx == NULL || key == NULL) {
584
0
        ALG_WARN("%s(%d): Null Parameter\n", __FILE__, __LINE__);
585
0
        return 0;
586
0
    }
587
588
0
    if (EVP_CIPHER_CTX_get0_cipher(ctx) == NULL) {
589
0
        ALG_WARN("%s(%d): Cipher object NULL\n", __FILE__, __LINE__);
590
0
        return 0;
591
0
    }
592
593
0
    actx = EVP_CIPHER_CTX_get_cipher_data(ctx);
594
0
    if (actx == NULL) {
595
0
        ALG_WARN("%s(%d): Cipher data NULL\n", __FILE__, __LINE__);
596
0
        return 0;
597
0
    }
598
599
0
    ciphertype = EVP_CIPHER_CTX_get_nid(ctx);
600
0
    switch (ciphertype) {
601
0
    case NID_aes_128_cbc:
602
0
    case NID_aes_192_cbc:
603
0
    case NID_aes_256_cbc:
604
0
        ciphername = "cbc(aes)";
605
0
        break;
606
0
    default:
607
0
        ALG_WARN("%s(%d): Unsupported Cipher type %d\n", __FILE__, __LINE__,
608
0
                 ciphertype);
609
0
        return 0;
610
0
    }
611
612
0
    if (ALG_AES_IV_LEN != EVP_CIPHER_CTX_get_iv_length(ctx)) {
613
0
        ALG_WARN("%s(%d): Unsupported IV length :%d\n", __FILE__, __LINE__,
614
0
                 EVP_CIPHER_CTX_get_iv_length(ctx));
615
0
        return 0;
616
0
    }
617
618
    /* Setup AFALG socket for crypto processing */
619
0
    ret = afalg_create_sk(actx, "skcipher", ciphername);
620
0
    if (ret < 1)
621
0
        return 0;
622
623
0
    if ((len = EVP_CIPHER_CTX_get_key_length(ctx)) <= 0)
624
0
        goto err;
625
0
    ret = afalg_set_key(actx, key, len);
626
0
    if (ret < 1)
627
0
        goto err;
628
629
    /* Setup AIO ctx to allow async AFALG crypto processing */
630
0
    if (afalg_init_aio(&actx->aio) == 0)
631
0
        goto err;
632
633
# ifdef ALG_ZERO_COPY
634
    pipe(actx->zc_pipe);
635
# endif
636
637
0
    actx->init_done = MAGIC_INIT_NUM;
638
639
0
    return 1;
640
641
0
err:
642
0
    close(actx->sfd);
643
0
    close(actx->bfd);
644
0
    return 0;
645
0
}
646
647
static int afalg_do_cipher(EVP_CIPHER_CTX *ctx, unsigned char *out,
648
                           const unsigned char *in, size_t inl)
649
0
{
650
0
    afalg_ctx *actx;
651
0
    int ret;
652
0
    char nxtiv[ALG_AES_IV_LEN] = { 0 };
653
654
0
    if (ctx == NULL || out == NULL || in == NULL) {
655
0
        ALG_WARN("NULL parameter passed to function %s(%d)\n", __FILE__,
656
0
                 __LINE__);
657
0
        return 0;
658
0
    }
659
660
0
    actx = (afalg_ctx *) EVP_CIPHER_CTX_get_cipher_data(ctx);
661
0
    if (actx == NULL || actx->init_done != MAGIC_INIT_NUM) {
662
0
        ALG_WARN("%s afalg ctx passed\n",
663
0
                 ctx == NULL ? "NULL" : "Uninitialised");
664
0
        return 0;
665
0
    }
666
667
    /*
668
     * set iv now for decrypt operation as the input buffer can be
669
     * overwritten for inplace operation where in = out.
670
     */
671
0
    if (EVP_CIPHER_CTX_is_encrypting(ctx) == 0) {
672
0
        memcpy(nxtiv, in + (inl - ALG_AES_IV_LEN), ALG_AES_IV_LEN);
673
0
    }
674
675
    /* Send input data to kernel space */
676
0
    ret = afalg_start_cipher_sk(actx, (unsigned char *)in, inl,
677
0
                                EVP_CIPHER_CTX_iv(ctx),
678
0
                                EVP_CIPHER_CTX_is_encrypting(ctx));
679
0
    if (ret < 1) {
680
0
        return 0;
681
0
    }
682
683
    /* Perform async crypto operation in kernel space */
684
0
    ret = afalg_fin_cipher_aio(&actx->aio, actx->sfd, out, inl);
685
0
    if (ret < 1)
686
0
        return 0;
687
688
0
    if (EVP_CIPHER_CTX_is_encrypting(ctx)) {
689
0
        memcpy(EVP_CIPHER_CTX_iv_noconst(ctx), out + (inl - ALG_AES_IV_LEN),
690
0
               ALG_AES_IV_LEN);
691
0
    } else {
692
0
        memcpy(EVP_CIPHER_CTX_iv_noconst(ctx), nxtiv, ALG_AES_IV_LEN);
693
0
    }
694
695
0
    return 1;
696
0
}
697
698
static int afalg_cipher_cleanup(EVP_CIPHER_CTX *ctx)
699
0
{
700
0
    afalg_ctx *actx;
701
702
0
    if (ctx == NULL) {
703
0
        ALG_WARN("NULL parameter passed to function %s(%d)\n", __FILE__,
704
0
                 __LINE__);
705
0
        return 0;
706
0
    }
707
708
0
    actx = (afalg_ctx *) EVP_CIPHER_CTX_get_cipher_data(ctx);
709
0
    if (actx == NULL || actx->init_done != MAGIC_INIT_NUM)
710
0
        return 1;
711
712
0
    close(actx->sfd);
713
0
    close(actx->bfd);
714
# ifdef ALG_ZERO_COPY
715
    close(actx->zc_pipe[0]);
716
    close(actx->zc_pipe[1]);
717
# endif
718
    /* close efd in sync mode, async mode is closed in afalg_waitfd_cleanup() */
719
0
    if (actx->aio.mode == MODE_SYNC)
720
0
        close(actx->aio.efd);
721
0
    io_destroy(actx->aio.aio_ctx);
722
723
0
    return 1;
724
0
}
725
726
static cbc_handles *get_cipher_handle(int nid)
727
0
{
728
0
    switch (nid) {
729
0
    case NID_aes_128_cbc:
730
0
        return &cbc_handle[AES_CBC_128];
731
0
    case NID_aes_192_cbc:
732
0
        return &cbc_handle[AES_CBC_192];
733
0
    case NID_aes_256_cbc:
734
0
        return &cbc_handle[AES_CBC_256];
735
0
    default:
736
0
        return NULL;
737
0
    }
738
0
}
739
740
static const EVP_CIPHER *afalg_aes_cbc(int nid)
741
0
{
742
0
    cbc_handles *cipher_handle = get_cipher_handle(nid);
743
744
0
    if (cipher_handle == NULL)
745
0
            return NULL;
746
0
    if (cipher_handle->_hidden == NULL
747
0
        && ((cipher_handle->_hidden =
748
0
         EVP_CIPHER_meth_new(nid,
749
0
                             AES_BLOCK_SIZE,
750
0
                             cipher_handle->key_size)) == NULL
751
0
        || !EVP_CIPHER_meth_set_iv_length(cipher_handle->_hidden,
752
0
                                          AES_IV_LEN)
753
0
        || !EVP_CIPHER_meth_set_flags(cipher_handle->_hidden,
754
0
                                      EVP_CIPH_CBC_MODE |
755
0
                                      EVP_CIPH_FLAG_DEFAULT_ASN1)
756
0
        || !EVP_CIPHER_meth_set_init(cipher_handle->_hidden,
757
0
                                     afalg_cipher_init)
758
0
        || !EVP_CIPHER_meth_set_do_cipher(cipher_handle->_hidden,
759
0
                                          afalg_do_cipher)
760
0
        || !EVP_CIPHER_meth_set_cleanup(cipher_handle->_hidden,
761
0
                                        afalg_cipher_cleanup)
762
0
        || !EVP_CIPHER_meth_set_impl_ctx_size(cipher_handle->_hidden,
763
0
                                              sizeof(afalg_ctx)))) {
764
0
        EVP_CIPHER_meth_free(cipher_handle->_hidden);
765
0
        cipher_handle->_hidden= NULL;
766
0
    }
767
0
    return cipher_handle->_hidden;
768
0
}
769
770
static int afalg_ciphers(ENGINE *e, const EVP_CIPHER **cipher,
771
                         const int **nids, int nid)
772
0
{
773
0
    int r = 1;
774
775
0
    if (cipher == NULL) {
776
0
        *nids = afalg_cipher_nids;
777
0
        return (sizeof(afalg_cipher_nids) / sizeof(afalg_cipher_nids[0]));
778
0
    }
779
780
0
    switch (nid) {
781
0
    case NID_aes_128_cbc:
782
0
    case NID_aes_192_cbc:
783
0
    case NID_aes_256_cbc:
784
0
        *cipher = afalg_aes_cbc(nid);
785
0
        break;
786
0
    default:
787
0
        *cipher = NULL;
788
0
        r = 0;
789
0
    }
790
0
    return r;
791
0
}
792
793
static int bind_afalg(ENGINE *e)
794
0
{
795
    /* Ensure the afalg error handling is set up */
796
0
    unsigned short i;
797
0
    ERR_load_AFALG_strings();
798
799
0
    if (!ENGINE_set_id(e, engine_afalg_id)
800
0
        || !ENGINE_set_name(e, engine_afalg_name)
801
0
        || !ENGINE_set_destroy_function(e, afalg_destroy)
802
0
        || !ENGINE_set_init_function(e, afalg_init)
803
0
        || !ENGINE_set_finish_function(e, afalg_finish)) {
804
0
        AFALGerr(AFALG_F_BIND_AFALG, AFALG_R_INIT_FAILED);
805
0
        return 0;
806
0
    }
807
808
    /*
809
     * Create _hidden_aes_xxx_cbc by calling afalg_aes_xxx_cbc
810
     * now, as bind_aflag can only be called by one thread at a
811
     * time.
812
     */
813
0
    for (i = 0; i < OSSL_NELEM(afalg_cipher_nids); i++) {
814
0
        if (afalg_aes_cbc(afalg_cipher_nids[i]) == NULL) {
815
0
            AFALGerr(AFALG_F_BIND_AFALG, AFALG_R_INIT_FAILED);
816
0
            return 0;
817
0
        }
818
0
    }
819
820
0
    if (!ENGINE_set_ciphers(e, afalg_ciphers)) {
821
0
        AFALGerr(AFALG_F_BIND_AFALG, AFALG_R_INIT_FAILED);
822
0
        return 0;
823
0
    }
824
825
0
    return 1;
826
0
}
827
828
# ifndef OPENSSL_NO_DYNAMIC_ENGINE
829
static int bind_helper(ENGINE *e, const char *id)
830
{
831
    if (id && (strcmp(id, engine_afalg_id) != 0))
832
        return 0;
833
834
    if (!afalg_chk_platform())
835
        return 0;
836
837
    if (!bind_afalg(e)) {
838
        afalg_destroy(e);
839
        return 0;
840
    }
841
    return 1;
842
}
843
844
IMPLEMENT_DYNAMIC_CHECK_FN()
845
    IMPLEMENT_DYNAMIC_BIND_FN(bind_helper)
846
# endif
847
848
static int afalg_chk_platform(void)
849
0
{
850
0
    int ret;
851
0
    int i;
852
0
    int kver[3] = { -1, -1, -1 };
853
0
    int sock;
854
0
    char *str;
855
0
    struct utsname ut;
856
857
0
    ret = uname(&ut);
858
0
    if (ret != 0) {
859
0
        AFALGerr(AFALG_F_AFALG_CHK_PLATFORM,
860
0
                 AFALG_R_FAILED_TO_GET_PLATFORM_INFO);
861
0
        return 0;
862
0
    }
863
864
0
    str = strtok(ut.release, ".");
865
0
    for (i = 0; i < 3 && str != NULL; i++) {
866
0
        kver[i] = atoi(str);
867
0
        str = strtok(NULL, ".");
868
0
    }
869
870
0
    if (KERNEL_VERSION(kver[0], kver[1], kver[2])
871
0
        < KERNEL_VERSION(K_MAJ, K_MIN1, K_MIN2)) {
872
0
        ALG_ERR("ASYNC AFALG not supported this kernel(%d.%d.%d)\n",
873
0
                 kver[0], kver[1], kver[2]);
874
0
        ALG_ERR("ASYNC AFALG requires kernel version %d.%d.%d or later\n",
875
0
                 K_MAJ, K_MIN1, K_MIN2);
876
0
        AFALGerr(AFALG_F_AFALG_CHK_PLATFORM,
877
0
                 AFALG_R_KERNEL_DOES_NOT_SUPPORT_ASYNC_AFALG);
878
0
        return 0;
879
0
    }
880
881
    /* Test if we can actually create an AF_ALG socket */
882
0
    sock = socket(AF_ALG, SOCK_SEQPACKET, 0);
883
0
    if (sock == -1) {
884
0
        AFALGerr(AFALG_F_AFALG_CHK_PLATFORM, AFALG_R_SOCKET_CREATE_FAILED);
885
0
        return 0;
886
0
    }
887
0
    close(sock);
888
889
0
    return 1;
890
0
}
891
892
# ifdef OPENSSL_NO_DYNAMIC_ENGINE
893
static ENGINE *engine_afalg(void)
894
0
{
895
0
    ENGINE *ret = ENGINE_new();
896
0
    if (ret == NULL)
897
0
        return NULL;
898
0
    if (!bind_afalg(ret)) {
899
0
        ENGINE_free(ret);
900
0
        return NULL;
901
0
    }
902
0
    return ret;
903
0
}
904
905
void engine_load_afalg_int(void)
906
0
{
907
0
    ENGINE *toadd;
908
909
0
    if (!afalg_chk_platform())
910
0
        return;
911
912
0
    toadd = engine_afalg();
913
0
    if (toadd == NULL)
914
0
        return;
915
0
    ERR_set_mark();
916
0
    ENGINE_add(toadd);
917
    /*
918
     * If the "add" worked, it gets a structural reference. So either way, we
919
     * release our just-created reference.
920
     */
921
0
    ENGINE_free(toadd);
922
    /*
923
     * If the "add" didn't work, it was probably a conflict because it was
924
     * already added (eg. someone calling ENGINE_load_blah then calling
925
     * ENGINE_load_builtin_engines() perhaps).
926
     */
927
0
    ERR_pop_to_mark();
928
0
}
929
# endif
930
931
static int afalg_init(ENGINE *e)
932
0
{
933
0
    return 1;
934
0
}
935
936
static int afalg_finish(ENGINE *e)
937
0
{
938
0
    return 1;
939
0
}
940
941
static int free_cbc(void)
942
0
{
943
0
    short unsigned int i;
944
0
    for (i = 0; i < OSSL_NELEM(afalg_cipher_nids); i++) {
945
0
        EVP_CIPHER_meth_free(cbc_handle[i]._hidden);
946
0
        cbc_handle[i]._hidden = NULL;
947
0
    }
948
0
    return 1;
949
0
}
950
951
static int afalg_destroy(ENGINE *e)
952
0
{
953
0
    ERR_unload_AFALG_strings();
954
0
    free_cbc();
955
0
    return 1;
956
0
}
957
958
#endif                          /* KERNEL VERSION */