c02e33b030
This patch adds new performance measurement option --external-mbufs that allocates and uses memzones as external buffers instead of putting the data directly inside mbufs. Signed-off-by: Adam Dybkowski <adamx.dybkowski@intel.com> Acked-by: Fiona Trahe <fiona.trahe@intel.com>
409 lines
9.8 KiB
C
409 lines
9.8 KiB
C
/* SPDX-License-Identifier: BSD-3-Clause
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* Copyright(c) 2018 Intel Corporation
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*/
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#include <rte_malloc.h>
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#include <rte_eal.h>
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#include <rte_log.h>
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#include <rte_cycles.h>
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#include <rte_compressdev.h>
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#include "comp_perf_test_benchmark.h"
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void
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cperf_benchmark_test_destructor(void *arg)
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{
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if (arg) {
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comp_perf_free_memory(
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((struct cperf_benchmark_ctx *)arg)->ver.options,
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&((struct cperf_benchmark_ctx *)arg)->ver.mem);
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rte_free(arg);
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}
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}
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void *
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cperf_benchmark_test_constructor(uint8_t dev_id, uint16_t qp_id,
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struct comp_test_data *options)
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{
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struct cperf_benchmark_ctx *ctx = NULL;
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ctx = rte_malloc(NULL, sizeof(struct cperf_benchmark_ctx), 0);
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if (ctx == NULL)
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return NULL;
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ctx->ver.mem.dev_id = dev_id;
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ctx->ver.mem.qp_id = qp_id;
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ctx->ver.options = options;
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ctx->ver.silent = 1; /* ver. part will be silent */
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if (!comp_perf_allocate_memory(ctx->ver.options, &ctx->ver.mem)
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&& !prepare_bufs(ctx->ver.options, &ctx->ver.mem))
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return ctx;
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cperf_benchmark_test_destructor(ctx);
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return NULL;
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}
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static int
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main_loop(struct cperf_benchmark_ctx *ctx, enum rte_comp_xform_type type)
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{
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struct comp_test_data *test_data = ctx->ver.options;
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struct cperf_mem_resources *mem = &ctx->ver.mem;
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uint8_t dev_id = mem->dev_id;
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uint32_t i, iter, num_iter;
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struct rte_comp_op **ops, **deq_ops;
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void *priv_xform = NULL;
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struct rte_comp_xform xform;
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struct rte_mbuf **input_bufs, **output_bufs;
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int res = 0;
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int allocated = 0;
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uint32_t out_seg_sz;
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if (test_data == NULL || !test_data->burst_sz) {
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RTE_LOG(ERR, USER1,
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"Unknown burst size\n");
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return -1;
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}
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ops = rte_zmalloc_socket(NULL,
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2 * mem->total_bufs * sizeof(struct rte_comp_op *),
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0, rte_socket_id());
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if (ops == NULL) {
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RTE_LOG(ERR, USER1,
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"Can't allocate memory for ops strucures\n");
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return -1;
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}
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deq_ops = &ops[mem->total_bufs];
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if (type == RTE_COMP_COMPRESS) {
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xform = (struct rte_comp_xform) {
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.type = RTE_COMP_COMPRESS,
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.compress = {
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.algo = RTE_COMP_ALGO_DEFLATE,
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.deflate.huffman = test_data->huffman_enc,
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.level = test_data->level,
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.window_size = test_data->window_sz,
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.chksum = RTE_COMP_CHECKSUM_NONE,
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.hash_algo = RTE_COMP_HASH_ALGO_NONE
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}
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};
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input_bufs = mem->decomp_bufs;
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output_bufs = mem->comp_bufs;
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out_seg_sz = test_data->out_seg_sz;
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} else {
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xform = (struct rte_comp_xform) {
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.type = RTE_COMP_DECOMPRESS,
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.decompress = {
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.algo = RTE_COMP_ALGO_DEFLATE,
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.chksum = RTE_COMP_CHECKSUM_NONE,
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.window_size = test_data->window_sz,
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.hash_algo = RTE_COMP_HASH_ALGO_NONE
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}
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};
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input_bufs = mem->comp_bufs;
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output_bufs = mem->decomp_bufs;
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out_seg_sz = test_data->seg_sz;
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}
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/* Create private xform */
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if (rte_compressdev_private_xform_create(dev_id, &xform,
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&priv_xform) < 0) {
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RTE_LOG(ERR, USER1, "Private xform could not be created\n");
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res = -1;
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goto end;
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}
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uint64_t tsc_start, tsc_end, tsc_duration;
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num_iter = test_data->num_iter;
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tsc_start = tsc_end = tsc_duration = 0;
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tsc_start = rte_rdtsc_precise();
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for (iter = 0; iter < num_iter; iter++) {
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uint32_t total_ops = mem->total_bufs;
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uint32_t remaining_ops = mem->total_bufs;
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uint32_t total_deq_ops = 0;
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uint32_t total_enq_ops = 0;
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uint16_t ops_unused = 0;
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uint16_t num_enq = 0;
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uint16_t num_deq = 0;
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while (remaining_ops > 0) {
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uint16_t num_ops = RTE_MIN(remaining_ops,
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test_data->burst_sz);
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uint16_t ops_needed = num_ops - ops_unused;
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/*
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* Move the unused operations from the previous
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* enqueue_burst call to the front, to maintain order
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*/
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if ((ops_unused > 0) && (num_enq > 0)) {
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size_t nb_b_to_mov =
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ops_unused * sizeof(struct rte_comp_op *);
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memmove(ops, &ops[num_enq], nb_b_to_mov);
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}
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/* Allocate compression operations */
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if (ops_needed && !rte_comp_op_bulk_alloc(
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mem->op_pool,
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&ops[ops_unused],
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ops_needed)) {
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RTE_LOG(ERR, USER1,
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"Could not allocate enough operations\n");
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res = -1;
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goto end;
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}
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allocated += ops_needed;
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for (i = 0; i < ops_needed; i++) {
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/*
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* Calculate next buffer to attach to operation
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*/
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uint32_t buf_id = total_enq_ops + i +
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ops_unused;
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uint16_t op_id = ops_unused + i;
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/* Reset all data in output buffers */
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struct rte_mbuf *m = output_bufs[buf_id];
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m->pkt_len = out_seg_sz * m->nb_segs;
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while (m) {
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m->data_len = m->buf_len - m->data_off;
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m = m->next;
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}
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ops[op_id]->m_src = input_bufs[buf_id];
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ops[op_id]->m_dst = output_bufs[buf_id];
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ops[op_id]->src.offset = 0;
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ops[op_id]->src.length =
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rte_pktmbuf_pkt_len(input_bufs[buf_id]);
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ops[op_id]->dst.offset = 0;
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ops[op_id]->flush_flag = RTE_COMP_FLUSH_FINAL;
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ops[op_id]->input_chksum = buf_id;
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ops[op_id]->private_xform = priv_xform;
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}
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if (unlikely(test_data->perf_comp_force_stop))
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goto end;
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num_enq = rte_compressdev_enqueue_burst(dev_id,
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mem->qp_id, ops,
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num_ops);
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if (num_enq == 0) {
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struct rte_compressdev_stats stats;
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rte_compressdev_stats_get(dev_id, &stats);
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if (stats.enqueue_err_count) {
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res = -1;
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goto end;
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}
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}
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ops_unused = num_ops - num_enq;
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remaining_ops -= num_enq;
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total_enq_ops += num_enq;
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num_deq = rte_compressdev_dequeue_burst(dev_id,
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mem->qp_id,
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deq_ops,
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test_data->burst_sz);
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total_deq_ops += num_deq;
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if (iter == num_iter - 1) {
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for (i = 0; i < num_deq; i++) {
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struct rte_comp_op *op = deq_ops[i];
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if (op->status !=
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RTE_COMP_OP_STATUS_SUCCESS) {
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RTE_LOG(ERR, USER1,
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"Some operations were not successful\n");
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goto end;
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}
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struct rte_mbuf *m = op->m_dst;
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m->pkt_len = op->produced;
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uint32_t remaining_data = op->produced;
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uint16_t data_to_append;
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while (remaining_data > 0) {
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data_to_append =
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RTE_MIN(remaining_data,
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out_seg_sz);
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m->data_len = data_to_append;
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remaining_data -=
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data_to_append;
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m = m->next;
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}
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}
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}
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rte_mempool_put_bulk(mem->op_pool,
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(void **)deq_ops, num_deq);
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allocated -= num_deq;
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}
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/* Dequeue the last operations */
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while (total_deq_ops < total_ops) {
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if (unlikely(test_data->perf_comp_force_stop))
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goto end;
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num_deq = rte_compressdev_dequeue_burst(dev_id,
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mem->qp_id,
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deq_ops,
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test_data->burst_sz);
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if (num_deq == 0) {
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struct rte_compressdev_stats stats;
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rte_compressdev_stats_get(dev_id, &stats);
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if (stats.dequeue_err_count) {
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res = -1;
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goto end;
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}
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}
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total_deq_ops += num_deq;
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if (iter == num_iter - 1) {
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for (i = 0; i < num_deq; i++) {
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struct rte_comp_op *op = deq_ops[i];
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if (op->status !=
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RTE_COMP_OP_STATUS_SUCCESS) {
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RTE_LOG(ERR, USER1,
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"Some operations were not successful\n");
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goto end;
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}
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struct rte_mbuf *m = op->m_dst;
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m->pkt_len = op->produced;
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uint32_t remaining_data = op->produced;
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uint16_t data_to_append;
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while (remaining_data > 0) {
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data_to_append =
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RTE_MIN(remaining_data,
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out_seg_sz);
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m->data_len = data_to_append;
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remaining_data -=
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data_to_append;
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m = m->next;
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}
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}
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}
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rte_mempool_put_bulk(mem->op_pool,
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(void **)deq_ops, num_deq);
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allocated -= num_deq;
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}
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}
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tsc_end = rte_rdtsc_precise();
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tsc_duration = tsc_end - tsc_start;
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if (type == RTE_COMP_COMPRESS)
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ctx->comp_tsc_duration[test_data->level] =
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tsc_duration / num_iter;
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else
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ctx->decomp_tsc_duration[test_data->level] =
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tsc_duration / num_iter;
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end:
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rte_mempool_put_bulk(mem->op_pool, (void **)ops, allocated);
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rte_compressdev_private_xform_free(dev_id, priv_xform);
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rte_free(ops);
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if (test_data->perf_comp_force_stop) {
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RTE_LOG(ERR, USER1,
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"lcore: %d Perf. test has been aborted by user\n",
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mem->lcore_id);
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res = -1;
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}
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return res;
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}
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int
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cperf_benchmark_test_runner(void *test_ctx)
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{
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struct cperf_benchmark_ctx *ctx = test_ctx;
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struct comp_test_data *test_data = ctx->ver.options;
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uint32_t lcore = rte_lcore_id();
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static rte_atomic16_t display_once = RTE_ATOMIC16_INIT(0);
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int i, ret = EXIT_SUCCESS;
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ctx->ver.mem.lcore_id = lcore;
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/*
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* printing information about current compression thread
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*/
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if (rte_atomic16_test_and_set(&ctx->ver.mem.print_info_once))
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printf(" lcore: %u,"
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" driver name: %s,"
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" device name: %s,"
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" device id: %u,"
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" socket id: %u,"
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" queue pair id: %u\n",
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lcore,
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ctx->ver.options->driver_name,
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rte_compressdev_name_get(ctx->ver.mem.dev_id),
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ctx->ver.mem.dev_id,
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rte_compressdev_socket_id(ctx->ver.mem.dev_id),
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ctx->ver.mem.qp_id);
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/*
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* First the verification part is needed
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*/
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if (cperf_verify_test_runner(&ctx->ver)) {
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ret = EXIT_FAILURE;
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goto end;
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}
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/*
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* Run the tests twice, discarding the first performance
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* results, before the cache is warmed up
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*/
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for (i = 0; i < 2; i++) {
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if (main_loop(ctx, RTE_COMP_COMPRESS) < 0) {
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ret = EXIT_FAILURE;
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goto end;
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}
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}
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for (i = 0; i < 2; i++) {
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if (main_loop(ctx, RTE_COMP_DECOMPRESS) < 0) {
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ret = EXIT_FAILURE;
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goto end;
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}
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}
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ctx->comp_tsc_byte =
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(double)(ctx->comp_tsc_duration[test_data->level]) /
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test_data->input_data_sz;
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ctx->decomp_tsc_byte =
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(double)(ctx->decomp_tsc_duration[test_data->level]) /
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test_data->input_data_sz;
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ctx->comp_gbps = rte_get_tsc_hz() / ctx->comp_tsc_byte * 8 /
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1000000000;
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ctx->decomp_gbps = rte_get_tsc_hz() / ctx->decomp_tsc_byte * 8 /
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1000000000;
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if (rte_atomic16_test_and_set(&display_once)) {
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printf("\n%12s%6s%12s%17s%15s%16s\n",
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"lcore id", "Level", "Comp size", "Comp ratio [%]",
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"Comp [Gbps]", "Decomp [Gbps]");
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}
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printf("%12u%6u%12zu%17.2f%15.2f%16.2f\n",
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ctx->ver.mem.lcore_id,
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test_data->level, ctx->ver.comp_data_sz, ctx->ver.ratio,
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ctx->comp_gbps,
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ctx->decomp_gbps);
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end:
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return ret;
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}
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