New upstream version 18.02
[deb_dpdk.git] / app / test-crypto-perf / cperf_test_verify.c
1 /* SPDX-License-Identifier: BSD-3-Clause
2  * Copyright(c) 2016-2017 Intel Corporation
3  */
4
5 #include <rte_malloc.h>
6 #include <rte_cycles.h>
7 #include <rte_crypto.h>
8 #include <rte_cryptodev.h>
9
10 #include "cperf_test_verify.h"
11 #include "cperf_ops.h"
12 #include "cperf_test_common.h"
13
14 struct cperf_verify_ctx {
15         uint8_t dev_id;
16         uint16_t qp_id;
17         uint8_t lcore_id;
18
19         struct rte_mempool *pool;
20
21         struct rte_cryptodev_sym_session *sess;
22
23         cperf_populate_ops_t populate_ops;
24
25         uint32_t src_buf_offset;
26         uint32_t dst_buf_offset;
27
28         const struct cperf_options *options;
29         const struct cperf_test_vector *test_vector;
30 };
31
32 struct cperf_op_result {
33         enum rte_crypto_op_status status;
34 };
35
36 static void
37 cperf_verify_test_free(struct cperf_verify_ctx *ctx)
38 {
39         if (ctx) {
40                 if (ctx->sess) {
41                         rte_cryptodev_sym_session_clear(ctx->dev_id, ctx->sess);
42                         rte_cryptodev_sym_session_free(ctx->sess);
43                 }
44
45                 if (ctx->pool)
46                         rte_mempool_free(ctx->pool);
47
48                 rte_free(ctx);
49         }
50 }
51
52 void *
53 cperf_verify_test_constructor(struct rte_mempool *sess_mp,
54                 uint8_t dev_id, uint16_t qp_id,
55                 const struct cperf_options *options,
56                 const struct cperf_test_vector *test_vector,
57                 const struct cperf_op_fns *op_fns)
58 {
59         struct cperf_verify_ctx *ctx = NULL;
60
61         ctx = rte_malloc(NULL, sizeof(struct cperf_verify_ctx), 0);
62         if (ctx == NULL)
63                 goto err;
64
65         ctx->dev_id = dev_id;
66         ctx->qp_id = qp_id;
67
68         ctx->populate_ops = op_fns->populate_ops;
69         ctx->options = options;
70         ctx->test_vector = test_vector;
71
72         /* IV goes at the end of the crypto operation */
73         uint16_t iv_offset = sizeof(struct rte_crypto_op) +
74                 sizeof(struct rte_crypto_sym_op);
75
76         ctx->sess = op_fns->sess_create(sess_mp, dev_id, options, test_vector,
77                         iv_offset);
78         if (ctx->sess == NULL)
79                 goto err;
80
81         if (cperf_alloc_common_memory(options, test_vector, dev_id, qp_id, 0,
82                         &ctx->src_buf_offset, &ctx->dst_buf_offset,
83                         &ctx->pool) < 0)
84                 goto err;
85
86         return ctx;
87 err:
88         cperf_verify_test_free(ctx);
89
90         return NULL;
91 }
92
93 static int
94 cperf_verify_op(struct rte_crypto_op *op,
95                 const struct cperf_options *options,
96                 const struct cperf_test_vector *vector)
97 {
98         const struct rte_mbuf *m;
99         uint32_t len;
100         uint16_t nb_segs;
101         uint8_t *data;
102         uint32_t cipher_offset, auth_offset;
103         uint8_t cipher, auth;
104         int res = 0;
105
106         if (op->status != RTE_CRYPTO_OP_STATUS_SUCCESS)
107                 return 1;
108
109         if (op->sym->m_dst)
110                 m = op->sym->m_dst;
111         else
112                 m = op->sym->m_src;
113         nb_segs = m->nb_segs;
114         len = 0;
115         while (m && nb_segs != 0) {
116                 len += m->data_len;
117                 m = m->next;
118                 nb_segs--;
119         }
120
121         data = rte_malloc(NULL, len, 0);
122         if (data == NULL)
123                 return 1;
124
125         if (op->sym->m_dst)
126                 m = op->sym->m_dst;
127         else
128                 m = op->sym->m_src;
129         nb_segs = m->nb_segs;
130         len = 0;
131         while (m && nb_segs != 0) {
132                 memcpy(data + len, rte_pktmbuf_mtod(m, uint8_t *),
133                                 m->data_len);
134                 len += m->data_len;
135                 m = m->next;
136                 nb_segs--;
137         }
138
139         switch (options->op_type) {
140         case CPERF_CIPHER_ONLY:
141                 cipher = 1;
142                 cipher_offset = 0;
143                 auth = 0;
144                 auth_offset = 0;
145                 break;
146         case CPERF_CIPHER_THEN_AUTH:
147                 cipher = 1;
148                 cipher_offset = 0;
149                 auth = 1;
150                 auth_offset = options->test_buffer_size;
151                 break;
152         case CPERF_AUTH_ONLY:
153                 cipher = 0;
154                 cipher_offset = 0;
155                 auth = 1;
156                 auth_offset = options->test_buffer_size;
157                 break;
158         case CPERF_AUTH_THEN_CIPHER:
159                 cipher = 1;
160                 cipher_offset = 0;
161                 auth = 1;
162                 auth_offset = options->test_buffer_size;
163                 break;
164         case CPERF_AEAD:
165                 cipher = 1;
166                 cipher_offset = 0;
167                 auth = 1;
168                 auth_offset = options->test_buffer_size;
169                 break;
170         default:
171                 res = 1;
172                 goto out;
173         }
174
175         if (cipher == 1) {
176                 if (options->cipher_op == RTE_CRYPTO_CIPHER_OP_ENCRYPT)
177                         res += memcmp(data + cipher_offset,
178                                         vector->ciphertext.data,
179                                         options->test_buffer_size);
180                 else
181                         res += memcmp(data + cipher_offset,
182                                         vector->plaintext.data,
183                                         options->test_buffer_size);
184         }
185
186         if (auth == 1) {
187                 if (options->auth_op == RTE_CRYPTO_AUTH_OP_GENERATE)
188                         res += memcmp(data + auth_offset,
189                                         vector->digest.data,
190                                         options->digest_sz);
191         }
192
193 out:
194         rte_free(data);
195         return !!res;
196 }
197
198 static void
199 cperf_mbuf_set(struct rte_mbuf *mbuf,
200                 const struct cperf_options *options,
201                 const struct cperf_test_vector *test_vector)
202 {
203         uint32_t segment_sz = options->segment_sz;
204         uint8_t *mbuf_data;
205         uint8_t *test_data =
206                         (options->cipher_op == RTE_CRYPTO_CIPHER_OP_ENCRYPT) ?
207                                         test_vector->plaintext.data :
208                                         test_vector->ciphertext.data;
209         uint32_t remaining_bytes = options->max_buffer_size;
210
211         while (remaining_bytes) {
212                 mbuf_data = rte_pktmbuf_mtod(mbuf, uint8_t *);
213
214                 if (remaining_bytes <= segment_sz) {
215                         memcpy(mbuf_data, test_data, remaining_bytes);
216                         return;
217                 }
218
219                 memcpy(mbuf_data, test_data, segment_sz);
220                 remaining_bytes -= segment_sz;
221                 test_data += segment_sz;
222                 mbuf = mbuf->next;
223         }
224 }
225
226 int
227 cperf_verify_test_runner(void *test_ctx)
228 {
229         struct cperf_verify_ctx *ctx = test_ctx;
230
231         uint64_t ops_enqd = 0, ops_enqd_total = 0, ops_enqd_failed = 0;
232         uint64_t ops_deqd = 0, ops_deqd_total = 0, ops_deqd_failed = 0;
233         uint64_t ops_failed = 0;
234
235         static int only_once;
236
237         uint64_t i;
238         uint16_t ops_unused = 0;
239         uint32_t imix_idx = 0;
240
241         struct rte_crypto_op *ops[ctx->options->max_burst_size];
242         struct rte_crypto_op *ops_processed[ctx->options->max_burst_size];
243
244         uint32_t lcore = rte_lcore_id();
245
246 #ifdef CPERF_LINEARIZATION_ENABLE
247         struct rte_cryptodev_info dev_info;
248         int linearize = 0;
249
250         /* Check if source mbufs require coalescing */
251         if (ctx->options->segment_sz < ctx->options->max_buffer_size) {
252                 rte_cryptodev_info_get(ctx->dev_id, &dev_info);
253                 if ((dev_info.feature_flags &
254                                 RTE_CRYPTODEV_FF_MBUF_SCATTER_GATHER) == 0)
255                         linearize = 1;
256         }
257 #endif /* CPERF_LINEARIZATION_ENABLE */
258
259         ctx->lcore_id = lcore;
260
261         if (!ctx->options->csv)
262                 printf("\n# Running verify test on device: %u, lcore: %u\n",
263                         ctx->dev_id, lcore);
264
265         uint16_t iv_offset = sizeof(struct rte_crypto_op) +
266                 sizeof(struct rte_crypto_sym_op);
267
268         while (ops_enqd_total < ctx->options->total_ops) {
269
270                 uint16_t burst_size = ((ops_enqd_total + ctx->options->max_burst_size)
271                                 <= ctx->options->total_ops) ?
272                                                 ctx->options->max_burst_size :
273                                                 ctx->options->total_ops -
274                                                 ops_enqd_total;
275
276                 uint16_t ops_needed = burst_size - ops_unused;
277
278                 /* Allocate objects containing crypto operations and mbufs */
279                 if (rte_mempool_get_bulk(ctx->pool, (void **)ops,
280                                         ops_needed) != 0) {
281                         RTE_LOG(ERR, USER1,
282                                 "Failed to allocate more crypto operations "
283                                 "from the crypto operation pool.\n"
284                                 "Consider increasing the pool size "
285                                 "with --pool-sz\n");
286                         return -1;
287                 }
288
289                 /* Setup crypto op, attach mbuf etc */
290                 (ctx->populate_ops)(ops, ctx->src_buf_offset,
291                                 ctx->dst_buf_offset,
292                                 ops_needed, ctx->sess, ctx->options,
293                                 ctx->test_vector, iv_offset, &imix_idx);
294
295
296                 /* Populate the mbuf with the test vector, for verification */
297                 for (i = 0; i < ops_needed; i++)
298                         cperf_mbuf_set(ops[i]->sym->m_src,
299                                         ctx->options,
300                                         ctx->test_vector);
301
302 #ifdef CPERF_LINEARIZATION_ENABLE
303                 if (linearize) {
304                         /* PMD doesn't support scatter-gather and source buffer
305                          * is segmented.
306                          * We need to linearize it before enqueuing.
307                          */
308                         for (i = 0; i < burst_size; i++)
309                                 rte_pktmbuf_linearize(ops[i]->sym->m_src);
310                 }
311 #endif /* CPERF_LINEARIZATION_ENABLE */
312
313                 /* Enqueue burst of ops on crypto device */
314                 ops_enqd = rte_cryptodev_enqueue_burst(ctx->dev_id, ctx->qp_id,
315                                 ops, burst_size);
316                 if (ops_enqd < burst_size)
317                         ops_enqd_failed++;
318
319                 /**
320                  * Calculate number of ops not enqueued (mainly for hw
321                  * accelerators whose ingress queue can fill up).
322                  */
323                 ops_unused = burst_size - ops_enqd;
324                 ops_enqd_total += ops_enqd;
325
326
327                 /* Dequeue processed burst of ops from crypto device */
328                 ops_deqd = rte_cryptodev_dequeue_burst(ctx->dev_id, ctx->qp_id,
329                                 ops_processed, ctx->options->max_burst_size);
330
331                 if (ops_deqd == 0) {
332                         /**
333                          * Count dequeue polls which didn't return any
334                          * processed operations. This statistic is mainly
335                          * relevant to hw accelerators.
336                          */
337                         ops_deqd_failed++;
338                         continue;
339                 }
340
341                 for (i = 0; i < ops_deqd; i++) {
342                         if (cperf_verify_op(ops_processed[i], ctx->options,
343                                                 ctx->test_vector))
344                                 ops_failed++;
345                 }
346                 /* Free crypto ops so they can be reused. */
347                 rte_mempool_put_bulk(ctx->pool,
348                                         (void **)ops_processed, ops_deqd);
349                 ops_deqd_total += ops_deqd;
350         }
351
352         /* Dequeue any operations still in the crypto device */
353
354         while (ops_deqd_total < ctx->options->total_ops) {
355                 /* Sending 0 length burst to flush sw crypto device */
356                 rte_cryptodev_enqueue_burst(ctx->dev_id, ctx->qp_id, NULL, 0);
357
358                 /* dequeue burst */
359                 ops_deqd = rte_cryptodev_dequeue_burst(ctx->dev_id, ctx->qp_id,
360                                 ops_processed, ctx->options->max_burst_size);
361                 if (ops_deqd == 0) {
362                         ops_deqd_failed++;
363                         continue;
364                 }
365
366                 for (i = 0; i < ops_deqd; i++) {
367                         if (cperf_verify_op(ops_processed[i], ctx->options,
368                                                 ctx->test_vector))
369                                 ops_failed++;
370                 }
371                 /* Free crypto ops so they can be reused. */
372                 rte_mempool_put_bulk(ctx->pool,
373                                         (void **)ops_processed, ops_deqd);
374                 ops_deqd_total += ops_deqd;
375         }
376
377         if (!ctx->options->csv) {
378                 if (!only_once)
379                         printf("%12s%12s%12s%12s%12s%12s%12s%12s\n\n",
380                                 "lcore id", "Buf Size", "Burst size",
381                                 "Enqueued", "Dequeued", "Failed Enq",
382                                 "Failed Deq", "Failed Ops");
383                 only_once = 1;
384
385                 printf("%12u%12u%12u%12"PRIu64"%12"PRIu64"%12"PRIu64
386                                 "%12"PRIu64"%12"PRIu64"\n",
387                                 ctx->lcore_id,
388                                 ctx->options->max_buffer_size,
389                                 ctx->options->max_burst_size,
390                                 ops_enqd_total,
391                                 ops_deqd_total,
392                                 ops_enqd_failed,
393                                 ops_deqd_failed,
394                                 ops_failed);
395         } else {
396                 if (!only_once)
397                         printf("\n# lcore id, Buffer Size(B), "
398                                 "Burst Size,Enqueued,Dequeued,Failed Enq,"
399                                 "Failed Deq,Failed Ops\n");
400                 only_once = 1;
401
402                 printf("%10u;%10u;%u;%"PRIu64";%"PRIu64";%"PRIu64";%"PRIu64";"
403                                 "%"PRIu64"\n",
404                                 ctx->lcore_id,
405                                 ctx->options->max_buffer_size,
406                                 ctx->options->max_burst_size,
407                                 ops_enqd_total,
408                                 ops_deqd_total,
409                                 ops_enqd_failed,
410                                 ops_deqd_failed,
411                                 ops_failed);
412         }
413
414         return 0;
415 }
416
417
418
419 void
420 cperf_verify_test_destructor(void *arg)
421 {
422         struct cperf_verify_ctx *ctx = arg;
423
424         if (ctx == NULL)
425                 return;
426
427         cperf_verify_test_free(ctx);
428 }