1f8cc1a388
Remove the unnecessary rte_atomic.h included in app modules. Signed-off-by: Joyce Kong <joyce.kong@arm.com> Reviewed-by: Ruifeng Wang <ruifeng.wang@arm.com>
216 lines
5.9 KiB
C
216 lines
5.9 KiB
C
/* SPDX-License-Identifier: BSD-3-Clause
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* Copyright 2014-2020 Mellanox Technologies, Ltd
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*/
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#include <stdarg.h>
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#include <string.h>
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#include <stdio.h>
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#include <errno.h>
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#include <stdint.h>
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#include <unistd.h>
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#include <inttypes.h>
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#include <sys/queue.h>
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#include <sys/stat.h>
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#include <rte_common.h>
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#include <rte_byteorder.h>
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#include <rte_log.h>
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#include <rte_debug.h>
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#include <rte_cycles.h>
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#include <rte_memory.h>
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#include <rte_memcpy.h>
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#include <rte_launch.h>
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#include <rte_eal.h>
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#include <rte_per_lcore.h>
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#include <rte_lcore.h>
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#include <rte_branch_prediction.h>
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#include <rte_mempool.h>
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#include <rte_mbuf.h>
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#include <rte_interrupts.h>
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#include <rte_pci.h>
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#include <rte_ether.h>
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#include <rte_ethdev.h>
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#include <rte_ip.h>
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#include <rte_tcp.h>
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#include <rte_udp.h>
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#include <rte_string_fns.h>
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#include <rte_flow.h>
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#include "testpmd.h"
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static uint32_t cfg_ip_src = RTE_IPV4(10, 254, 0, 0);
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static uint32_t cfg_ip_dst = RTE_IPV4(10, 253, 0, 0);
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static uint16_t cfg_udp_src = 1000;
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static uint16_t cfg_udp_dst = 1001;
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static struct rte_ether_addr cfg_ether_src =
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{{ 0x00, 0x01, 0x02, 0x03, 0x04, 0x00 }};
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static struct rte_ether_addr cfg_ether_dst =
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{{ 0x00, 0x01, 0x02, 0x03, 0x04, 0x01 }};
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#define IP_DEFTTL 64 /* from RFC 1340. */
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RTE_DEFINE_PER_LCORE(int, _next_flow);
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/*
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* Multi-flow generation mode.
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*
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* We originate a bunch of flows (varying destination IP addresses), and
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* terminate receive traffic. Received traffic is simply discarded, but we
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* still do so in order to maintain traffic statistics.
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*/
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static void
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pkt_burst_flow_gen(struct fwd_stream *fs)
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{
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unsigned pkt_size = tx_pkt_length - 4; /* Adjust FCS */
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struct rte_mbuf *pkts_burst[MAX_PKT_BURST];
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struct rte_mempool *mbp;
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struct rte_mbuf *pkt = NULL;
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struct rte_ether_hdr *eth_hdr;
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struct rte_ipv4_hdr *ip_hdr;
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struct rte_udp_hdr *udp_hdr;
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uint16_t vlan_tci, vlan_tci_outer;
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uint64_t ol_flags = 0;
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uint16_t nb_rx;
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uint16_t nb_tx;
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uint16_t nb_dropped;
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uint16_t nb_pkt;
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uint16_t nb_clones = nb_pkt_flowgen_clones;
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uint16_t i;
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uint32_t retry;
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uint64_t tx_offloads;
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uint64_t start_tsc = 0;
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int next_flow = RTE_PER_LCORE(_next_flow);
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get_start_cycles(&start_tsc);
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/* Receive a burst of packets and discard them. */
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nb_rx = rte_eth_rx_burst(fs->rx_port, fs->rx_queue, pkts_burst,
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nb_pkt_per_burst);
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inc_rx_burst_stats(fs, nb_rx);
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fs->rx_packets += nb_rx;
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for (i = 0; i < nb_rx; i++)
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rte_pktmbuf_free(pkts_burst[i]);
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mbp = current_fwd_lcore()->mbp;
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vlan_tci = ports[fs->tx_port].tx_vlan_id;
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vlan_tci_outer = ports[fs->tx_port].tx_vlan_id_outer;
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tx_offloads = ports[fs->tx_port].dev_conf.txmode.offloads;
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if (tx_offloads & RTE_ETH_TX_OFFLOAD_VLAN_INSERT)
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ol_flags |= RTE_MBUF_F_TX_VLAN;
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if (tx_offloads & RTE_ETH_TX_OFFLOAD_QINQ_INSERT)
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ol_flags |= RTE_MBUF_F_TX_QINQ;
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if (tx_offloads & RTE_ETH_TX_OFFLOAD_MACSEC_INSERT)
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ol_flags |= RTE_MBUF_F_TX_MACSEC;
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for (nb_pkt = 0; nb_pkt < nb_pkt_per_burst; nb_pkt++) {
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if (!nb_pkt || !nb_clones) {
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nb_clones = nb_pkt_flowgen_clones;
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/* Logic limitation */
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if (nb_clones > nb_pkt_per_burst)
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nb_clones = nb_pkt_per_burst;
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pkt = rte_mbuf_raw_alloc(mbp);
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if (!pkt)
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break;
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pkt->data_len = pkt_size;
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pkt->next = NULL;
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/* Initialize Ethernet header. */
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eth_hdr = rte_pktmbuf_mtod(pkt, struct rte_ether_hdr *);
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rte_ether_addr_copy(&cfg_ether_dst, ð_hdr->dst_addr);
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rte_ether_addr_copy(&cfg_ether_src, ð_hdr->src_addr);
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eth_hdr->ether_type = rte_cpu_to_be_16(RTE_ETHER_TYPE_IPV4);
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/* Initialize IP header. */
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ip_hdr = (struct rte_ipv4_hdr *)(eth_hdr + 1);
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memset(ip_hdr, 0, sizeof(*ip_hdr));
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ip_hdr->version_ihl = RTE_IPV4_VHL_DEF;
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ip_hdr->type_of_service = 0;
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ip_hdr->fragment_offset = 0;
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ip_hdr->time_to_live = IP_DEFTTL;
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ip_hdr->next_proto_id = IPPROTO_UDP;
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ip_hdr->packet_id = 0;
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ip_hdr->src_addr = rte_cpu_to_be_32(cfg_ip_src);
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ip_hdr->dst_addr = rte_cpu_to_be_32(cfg_ip_dst +
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next_flow);
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ip_hdr->total_length = RTE_CPU_TO_BE_16(pkt_size -
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sizeof(*eth_hdr));
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ip_hdr->hdr_checksum = rte_ipv4_cksum(ip_hdr);
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/* Initialize UDP header. */
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udp_hdr = (struct rte_udp_hdr *)(ip_hdr + 1);
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udp_hdr->src_port = rte_cpu_to_be_16(cfg_udp_src);
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udp_hdr->dst_port = rte_cpu_to_be_16(cfg_udp_dst);
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udp_hdr->dgram_cksum = 0; /* No UDP checksum. */
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udp_hdr->dgram_len = RTE_CPU_TO_BE_16(pkt_size -
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sizeof(*eth_hdr) -
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sizeof(*ip_hdr));
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pkt->nb_segs = 1;
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pkt->pkt_len = pkt_size;
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pkt->ol_flags &= RTE_MBUF_F_EXTERNAL;
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pkt->ol_flags |= ol_flags;
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pkt->vlan_tci = vlan_tci;
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pkt->vlan_tci_outer = vlan_tci_outer;
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pkt->l2_len = sizeof(struct rte_ether_hdr);
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pkt->l3_len = sizeof(struct rte_ipv4_hdr);
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} else {
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nb_clones--;
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rte_mbuf_refcnt_update(pkt, 1);
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}
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pkts_burst[nb_pkt] = pkt;
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if (++next_flow >= nb_flows_flowgen)
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next_flow = 0;
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}
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nb_tx = rte_eth_tx_burst(fs->tx_port, fs->tx_queue, pkts_burst, nb_pkt);
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/*
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* Retry if necessary
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*/
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if (unlikely(nb_tx < nb_pkt) && fs->retry_enabled) {
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retry = 0;
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while (nb_tx < nb_pkt && retry++ < burst_tx_retry_num) {
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rte_delay_us(burst_tx_delay_time);
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nb_tx += rte_eth_tx_burst(fs->tx_port, fs->tx_queue,
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&pkts_burst[nb_tx], nb_pkt - nb_tx);
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}
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}
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fs->tx_packets += nb_tx;
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inc_tx_burst_stats(fs, nb_tx);
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nb_dropped = nb_pkt - nb_tx;
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if (unlikely(nb_dropped > 0)) {
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/* Back out the flow counter. */
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next_flow -= nb_dropped;
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while (next_flow < 0)
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next_flow += nb_flows_flowgen;
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fs->fwd_dropped += nb_dropped;
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do {
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rte_pktmbuf_free(pkts_burst[nb_tx]);
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} while (++nb_tx < nb_pkt);
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}
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RTE_PER_LCORE(_next_flow) = next_flow;
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get_end_cycles(fs, start_tsc);
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}
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static int
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flowgen_begin(portid_t pi)
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{
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printf(" number of flows for port %u: %d\n", pi, nb_flows_flowgen);
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return 0;
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}
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struct fwd_engine flow_gen_engine = {
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.fwd_mode_name = "flowgen",
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.port_fwd_begin = flowgen_begin,
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.port_fwd_end = NULL,
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.packet_fwd = pkt_burst_flow_gen,
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};
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