f8a5cd0be3177148d73c42bbac254867ec396aae
[dpdk.git] / app / test-eventdev / test_perf_queue.c
1 /* SPDX-License-Identifier: BSD-3-Clause
2  * Copyright(c) 2017 Cavium, Inc
3  */
4
5 #include "test_perf_common.h"
6
7 /* See http://dpdk.org/doc/guides/tools/testeventdev.html for test details */
8
9 static inline int
10 perf_queue_nb_event_queues(struct evt_options *opt)
11 {
12         /* nb_queues = number of producers * number of stages */
13         return evt_nr_active_lcores(opt->plcores) * opt->nb_stages;
14 }
15
16 static inline __attribute__((always_inline)) void
17 mark_fwd_latency(struct rte_event *const ev,
18                 const uint8_t nb_stages)
19 {
20         if (unlikely((ev->queue_id % nb_stages) == 0)) {
21                 struct perf_elt *const m = ev->event_ptr;
22
23                 m->timestamp = rte_get_timer_cycles();
24         }
25 }
26
27 static inline __attribute__((always_inline)) void
28 fwd_event(struct rte_event *const ev, uint8_t *const sched_type_list,
29                 const uint8_t nb_stages)
30 {
31         ev->queue_id++;
32         ev->sched_type = sched_type_list[ev->queue_id % nb_stages];
33         ev->op = RTE_EVENT_OP_FORWARD;
34         ev->event_type = RTE_EVENT_TYPE_CPU;
35 }
36
37 static int
38 perf_queue_worker(void *arg, const int enable_fwd_latency)
39 {
40         PERF_WORKER_INIT;
41         struct rte_event ev;
42
43         while (t->done == false) {
44                 uint16_t event = rte_event_dequeue_burst(dev, port, &ev, 1, 0);
45
46                 if (!event) {
47                         rte_pause();
48                         continue;
49                 }
50                 if (enable_fwd_latency)
51                 /* first q in pipeline, mark timestamp to compute fwd latency */
52                         mark_fwd_latency(&ev, nb_stages);
53
54                 /* last stage in pipeline */
55                 if (unlikely((ev.queue_id % nb_stages) == laststage)) {
56                         if (enable_fwd_latency)
57                                 cnt = perf_process_last_stage_latency(pool,
58                                         &ev, w, bufs, sz, cnt);
59                         else
60                                 cnt = perf_process_last_stage(pool,
61                                         &ev, w, bufs, sz, cnt);
62                 } else {
63                         fwd_event(&ev, sched_type_list, nb_stages);
64                         while (rte_event_enqueue_burst(dev, port, &ev, 1) != 1)
65                                 rte_pause();
66                 }
67         }
68         return 0;
69 }
70
71 static int
72 perf_queue_worker_burst(void *arg, const int enable_fwd_latency)
73 {
74         PERF_WORKER_INIT;
75         uint16_t i;
76         /* +1 to avoid prefetch out of array check */
77         struct rte_event ev[BURST_SIZE + 1];
78
79         while (t->done == false) {
80                 uint16_t const nb_rx = rte_event_dequeue_burst(dev, port, ev,
81                                 BURST_SIZE, 0);
82
83                 if (!nb_rx) {
84                         rte_pause();
85                         continue;
86                 }
87
88                 for (i = 0; i < nb_rx; i++) {
89                         if (enable_fwd_latency) {
90                                 rte_prefetch0(ev[i+1].event_ptr);
91                                 /* first queue in pipeline.
92                                  * mark time stamp to compute fwd latency
93                                  */
94                                 mark_fwd_latency(&ev[i], nb_stages);
95                         }
96                         /* last stage in pipeline */
97                         if (unlikely((ev[i].queue_id % nb_stages) ==
98                                                  laststage)) {
99                                 if (enable_fwd_latency)
100                                         cnt = perf_process_last_stage_latency(
101                                                 pool, &ev[i], w, bufs, sz, cnt);
102                                 else
103                                         cnt = perf_process_last_stage(pool,
104                                                 &ev[i], w, bufs, sz, cnt);
105
106                                 ev[i].op = RTE_EVENT_OP_RELEASE;
107                         } else {
108                                 fwd_event(&ev[i], sched_type_list, nb_stages);
109                         }
110                 }
111
112                 uint16_t enq;
113
114                 enq = rte_event_enqueue_burst(dev, port, ev, nb_rx);
115                 while (enq < nb_rx) {
116                         enq += rte_event_enqueue_burst(dev, port,
117                                                         ev + enq, nb_rx - enq);
118                 }
119         }
120         return 0;
121 }
122
123 static int
124 worker_wrapper(void *arg)
125 {
126         struct worker_data *w  = arg;
127         struct evt_options *opt = w->t->opt;
128
129         const bool burst = evt_has_burst_mode(w->dev_id);
130         const int fwd_latency = opt->fwd_latency;
131
132         /* allow compiler to optimize */
133         if (!burst && !fwd_latency)
134                 return perf_queue_worker(arg, 0);
135         else if (!burst && fwd_latency)
136                 return perf_queue_worker(arg, 1);
137         else if (burst && !fwd_latency)
138                 return perf_queue_worker_burst(arg, 0);
139         else if (burst && fwd_latency)
140                 return perf_queue_worker_burst(arg, 1);
141
142         rte_panic("invalid worker\n");
143 }
144
145 static int
146 perf_queue_launch_lcores(struct evt_test *test, struct evt_options *opt)
147 {
148         return perf_launch_lcores(test, opt, worker_wrapper);
149 }
150
151 static int
152 perf_queue_eventdev_setup(struct evt_test *test, struct evt_options *opt)
153 {
154         uint8_t queue;
155         int nb_stages = opt->nb_stages;
156         int ret;
157         int nb_ports;
158         int nb_queues;
159         struct rte_event_dev_info dev_info;
160
161         nb_ports = evt_nr_active_lcores(opt->wlcores);
162         nb_ports += opt->prod_type == EVT_PROD_TYPE_ETH_RX_ADPTR ? 0 :
163                 evt_nr_active_lcores(opt->plcores);
164
165         nb_queues = opt->prod_type == EVT_PROD_TYPE_ETH_RX_ADPTR ?
166                 rte_eth_dev_count() * nb_stages :
167                 perf_queue_nb_event_queues(opt);
168
169         memset(&dev_info, 0, sizeof(struct rte_event_dev_info));
170         ret = rte_event_dev_info_get(opt->dev_id, &dev_info);
171         if (ret) {
172                 evt_err("failed to get eventdev info %d", opt->dev_id);
173                 return ret;
174         }
175
176         const struct rte_event_dev_config config = {
177                         .nb_event_queues = nb_queues,
178                         .nb_event_ports = nb_ports,
179                         .nb_events_limit  = dev_info.max_num_events,
180                         .nb_event_queue_flows = opt->nb_flows,
181                         .nb_event_port_dequeue_depth =
182                                 dev_info.max_event_port_dequeue_depth,
183                         .nb_event_port_enqueue_depth =
184                                 dev_info.max_event_port_enqueue_depth,
185         };
186
187         ret = rte_event_dev_configure(opt->dev_id, &config);
188         if (ret) {
189                 evt_err("failed to configure eventdev %d", opt->dev_id);
190                 return ret;
191         }
192
193         struct rte_event_queue_conf q_conf = {
194                         .priority = RTE_EVENT_DEV_PRIORITY_NORMAL,
195                         .nb_atomic_flows = opt->nb_flows,
196                         .nb_atomic_order_sequences = opt->nb_flows,
197         };
198         /* queue configurations */
199         for (queue = 0; queue < perf_queue_nb_event_queues(opt); queue++) {
200                 q_conf.schedule_type =
201                         (opt->sched_type_list[queue % nb_stages]);
202
203                 if (opt->q_priority) {
204                         uint8_t stage_pos = queue % nb_stages;
205                         /* Configure event queues(stage 0 to stage n) with
206                          * RTE_EVENT_DEV_PRIORITY_LOWEST to
207                          * RTE_EVENT_DEV_PRIORITY_HIGHEST.
208                          */
209                         uint8_t step = RTE_EVENT_DEV_PRIORITY_LOWEST /
210                                         (nb_stages - 1);
211                         /* Higher prio for the queues closer to last stage */
212                         q_conf.priority = RTE_EVENT_DEV_PRIORITY_LOWEST -
213                                         (step * stage_pos);
214                 }
215                 ret = rte_event_queue_setup(opt->dev_id, queue, &q_conf);
216                 if (ret) {
217                         evt_err("failed to setup queue=%d", queue);
218                         return ret;
219                 }
220         }
221
222         ret = perf_event_dev_port_setup(test, opt, nb_stages /* stride */,
223                                         nb_queues);
224         if (ret)
225                 return ret;
226
227         ret = evt_service_setup(opt->dev_id);
228         if (ret) {
229                 evt_err("No service lcore found to run event dev.");
230                 return ret;
231         }
232
233         ret = rte_event_dev_start(opt->dev_id);
234         if (ret) {
235                 evt_err("failed to start eventdev %d", opt->dev_id);
236                 return ret;
237         }
238
239         return 0;
240 }
241
242 static void
243 perf_queue_opt_dump(struct evt_options *opt)
244 {
245         evt_dump_fwd_latency(opt);
246         perf_opt_dump(opt, perf_queue_nb_event_queues(opt));
247 }
248
249 static int
250 perf_queue_opt_check(struct evt_options *opt)
251 {
252         return perf_opt_check(opt, perf_queue_nb_event_queues(opt));
253 }
254
255 static bool
256 perf_queue_capability_check(struct evt_options *opt)
257 {
258         struct rte_event_dev_info dev_info;
259
260         rte_event_dev_info_get(opt->dev_id, &dev_info);
261         if (dev_info.max_event_queues < perf_queue_nb_event_queues(opt) ||
262                         dev_info.max_event_ports < perf_nb_event_ports(opt)) {
263                 evt_err("not enough eventdev queues=%d/%d or ports=%d/%d",
264                         perf_queue_nb_event_queues(opt),
265                         dev_info.max_event_queues,
266                         perf_nb_event_ports(opt), dev_info.max_event_ports);
267         }
268
269         return true;
270 }
271
272 static const struct evt_test_ops perf_queue =  {
273         .cap_check          = perf_queue_capability_check,
274         .opt_check          = perf_queue_opt_check,
275         .opt_dump           = perf_queue_opt_dump,
276         .test_setup         = perf_test_setup,
277         .mempool_setup      = perf_mempool_setup,
278         .ethdev_setup       = perf_ethdev_setup,
279         .eventdev_setup     = perf_queue_eventdev_setup,
280         .launch_lcores      = perf_queue_launch_lcores,
281         .eventdev_destroy   = perf_eventdev_destroy,
282         .mempool_destroy    = perf_mempool_destroy,
283         .ethdev_destroy     = perf_ethdev_destroy,
284         .test_result        = perf_test_result,
285         .test_destroy       = perf_test_destroy,
286 };
287
288 EVT_TEST_REGISTER(perf_queue);