cd1dadeb9b
Use rxtx callback to demonstrate a way to use rte_eth_read_clock to convert the hardware timestamps to an amount of cycles. This allows to get the amount of time the packet spent since its entry in the device. While the regular latency only shows the latency from when it entered the software stack. Signed-off-by: Tom Barbette <barbette@kth.se> Reviewed-by: Ferruh Yigit <ferruh.yigit@intel.com>
294 lines
7.3 KiB
C
294 lines
7.3 KiB
C
/* SPDX-License-Identifier: BSD-3-Clause
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* Copyright(c) 2010-2015 Intel Corporation
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*/
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#include <stdint.h>
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#include <inttypes.h>
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#include <getopt.h>
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#include <rte_eal.h>
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#include <rte_ethdev.h>
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#include <rte_cycles.h>
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#include <rte_lcore.h>
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#include <rte_mbuf.h>
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#define RX_RING_SIZE 1024
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#define TX_RING_SIZE 1024
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#define NUM_MBUFS 8191
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#define MBUF_CACHE_SIZE 250
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#define BURST_SIZE 32
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static const char usage[] =
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"%s EAL_ARGS -- [-t]\n";
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static const struct rte_eth_conf port_conf_default = {
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.rxmode = {
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.max_rx_pkt_len = RTE_ETHER_MAX_LEN,
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},
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};
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static struct {
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uint64_t total_cycles;
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uint64_t total_queue_cycles;
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uint64_t total_pkts;
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} latency_numbers;
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int hw_timestamping;
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#define TICKS_PER_CYCLE_SHIFT 16
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static uint64_t ticks_per_cycle_mult;
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static uint16_t
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add_timestamps(uint16_t port __rte_unused, uint16_t qidx __rte_unused,
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struct rte_mbuf **pkts, uint16_t nb_pkts,
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uint16_t max_pkts __rte_unused, void *_ __rte_unused)
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{
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unsigned i;
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uint64_t now = rte_rdtsc();
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for (i = 0; i < nb_pkts; i++)
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pkts[i]->udata64 = now;
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return nb_pkts;
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}
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static uint16_t
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calc_latency(uint16_t port, uint16_t qidx __rte_unused,
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struct rte_mbuf **pkts, uint16_t nb_pkts, void *_ __rte_unused)
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{
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uint64_t cycles = 0;
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uint64_t queue_ticks = 0;
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uint64_t now = rte_rdtsc();
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uint64_t ticks;
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unsigned i;
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if (hw_timestamping)
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rte_eth_read_clock(port, &ticks);
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for (i = 0; i < nb_pkts; i++) {
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cycles += now - pkts[i]->udata64;
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if (hw_timestamping)
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queue_ticks += ticks - pkts[i]->timestamp;
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}
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latency_numbers.total_cycles += cycles;
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if (hw_timestamping)
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latency_numbers.total_queue_cycles += (queue_ticks
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* ticks_per_cycle_mult) >> TICKS_PER_CYCLE_SHIFT;
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latency_numbers.total_pkts += nb_pkts;
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if (latency_numbers.total_pkts > (100 * 1000 * 1000ULL)) {
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printf("Latency = %"PRIu64" cycles\n",
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latency_numbers.total_cycles / latency_numbers.total_pkts);
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if (hw_timestamping) {
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printf("Latency from HW = %"PRIu64" cycles\n",
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latency_numbers.total_queue_cycles
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/ latency_numbers.total_pkts);
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}
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latency_numbers.total_cycles = 0;
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latency_numbers.total_queue_cycles = 0;
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latency_numbers.total_pkts = 0;
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}
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return nb_pkts;
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}
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/*
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* Initialises a given port using global settings and with the rx buffers
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* coming from the mbuf_pool passed as parameter
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*/
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static inline int
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port_init(uint16_t port, struct rte_mempool *mbuf_pool)
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{
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struct rte_eth_conf port_conf = port_conf_default;
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const uint16_t rx_rings = 1, tx_rings = 1;
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uint16_t nb_rxd = RX_RING_SIZE;
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uint16_t nb_txd = TX_RING_SIZE;
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int retval;
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uint16_t q;
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struct rte_eth_dev_info dev_info;
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struct rte_eth_rxconf rxconf;
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struct rte_eth_txconf txconf;
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if (!rte_eth_dev_is_valid_port(port))
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return -1;
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rte_eth_dev_info_get(port, &dev_info);
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if (dev_info.tx_offload_capa & DEV_TX_OFFLOAD_MBUF_FAST_FREE)
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port_conf.txmode.offloads |=
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DEV_TX_OFFLOAD_MBUF_FAST_FREE;
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retval = rte_eth_dev_configure(port, rx_rings, tx_rings, &port_conf);
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if (retval != 0)
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return retval;
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retval = rte_eth_dev_adjust_nb_rx_tx_desc(port, &nb_rxd, &nb_txd);
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if (retval != 0)
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return retval;
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rxconf = dev_info.default_rxconf;
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if (hw_timestamping) {
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if (!(dev_info.rx_offload_capa & DEV_RX_OFFLOAD_TIMESTAMP)) {
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printf("\nERROR: Port %u does not support hardware timestamping\n"
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, port);
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return -1;
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}
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rxconf.offloads |= DEV_RX_OFFLOAD_TIMESTAMP;
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}
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for (q = 0; q < rx_rings; q++) {
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retval = rte_eth_rx_queue_setup(port, q, nb_rxd,
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rte_eth_dev_socket_id(port), &rxconf, mbuf_pool);
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if (retval < 0)
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return retval;
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}
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txconf = dev_info.default_txconf;
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txconf.offloads = port_conf.txmode.offloads;
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for (q = 0; q < tx_rings; q++) {
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retval = rte_eth_tx_queue_setup(port, q, nb_txd,
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rte_eth_dev_socket_id(port), &txconf);
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if (retval < 0)
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return retval;
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}
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retval = rte_eth_dev_start(port);
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if (retval < 0)
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return retval;
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if (hw_timestamping && ticks_per_cycle_mult == 0) {
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uint64_t cycles_base = rte_rdtsc();
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uint64_t ticks_base;
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retval = rte_eth_read_clock(port, &ticks_base);
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if (retval != 0)
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return retval;
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rte_delay_ms(100);
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uint64_t cycles = rte_rdtsc();
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uint64_t ticks;
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rte_eth_read_clock(port, &ticks);
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uint64_t c_freq = cycles - cycles_base;
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uint64_t t_freq = ticks - ticks_base;
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double freq_mult = (double)c_freq / t_freq;
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printf("TSC Freq ~= %" PRIu64
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"\nHW Freq ~= %" PRIu64
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"\nRatio : %f\n",
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c_freq * 10, t_freq * 10, freq_mult);
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/* TSC will be faster than internal ticks so freq_mult is > 0
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* We convert the multiplication to an integer shift & mult
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*/
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ticks_per_cycle_mult = (1 << TICKS_PER_CYCLE_SHIFT) / freq_mult;
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}
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struct rte_ether_addr addr;
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rte_eth_macaddr_get(port, &addr);
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printf("Port %u MAC: %02"PRIx8" %02"PRIx8" %02"PRIx8
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" %02"PRIx8" %02"PRIx8" %02"PRIx8"\n",
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(unsigned)port,
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addr.addr_bytes[0], addr.addr_bytes[1],
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addr.addr_bytes[2], addr.addr_bytes[3],
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addr.addr_bytes[4], addr.addr_bytes[5]);
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rte_eth_promiscuous_enable(port);
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rte_eth_add_rx_callback(port, 0, add_timestamps, NULL);
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rte_eth_add_tx_callback(port, 0, calc_latency, NULL);
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return 0;
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}
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/*
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* Main thread that does the work, reading from INPUT_PORT
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* and writing to OUTPUT_PORT
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*/
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static __attribute__((noreturn)) void
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lcore_main(void)
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{
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uint16_t port;
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RTE_ETH_FOREACH_DEV(port)
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if (rte_eth_dev_socket_id(port) > 0 &&
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rte_eth_dev_socket_id(port) !=
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(int)rte_socket_id())
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printf("WARNING, port %u is on remote NUMA node to "
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"polling thread.\n\tPerformance will "
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"not be optimal.\n", port);
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printf("\nCore %u forwarding packets. [Ctrl+C to quit]\n",
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rte_lcore_id());
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for (;;) {
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RTE_ETH_FOREACH_DEV(port) {
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struct rte_mbuf *bufs[BURST_SIZE];
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const uint16_t nb_rx = rte_eth_rx_burst(port, 0,
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bufs, BURST_SIZE);
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if (unlikely(nb_rx == 0))
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continue;
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const uint16_t nb_tx = rte_eth_tx_burst(port ^ 1, 0,
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bufs, nb_rx);
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if (unlikely(nb_tx < nb_rx)) {
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uint16_t buf;
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for (buf = nb_tx; buf < nb_rx; buf++)
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rte_pktmbuf_free(bufs[buf]);
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}
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}
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}
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}
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/* Main function, does initialisation and calls the per-lcore functions */
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int
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main(int argc, char *argv[])
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{
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struct rte_mempool *mbuf_pool;
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uint16_t nb_ports;
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uint16_t portid;
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struct option lgopts[] = {
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{ NULL, 0, 0, 0 }
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};
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int opt, option_index;
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/* init EAL */
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int ret = rte_eal_init(argc, argv);
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if (ret < 0)
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rte_exit(EXIT_FAILURE, "Error with EAL initialization\n");
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argc -= ret;
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argv += ret;
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while ((opt = getopt_long(argc, argv, "t", lgopts, &option_index))
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!= EOF)
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switch (opt) {
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case 't':
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hw_timestamping = 1;
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break;
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default:
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printf(usage, argv[0]);
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return -1;
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}
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optind = 1; /* reset getopt lib */
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nb_ports = rte_eth_dev_count_avail();
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if (nb_ports < 2 || (nb_ports & 1))
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rte_exit(EXIT_FAILURE, "Error: number of ports must be even\n");
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mbuf_pool = rte_pktmbuf_pool_create("MBUF_POOL",
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NUM_MBUFS * nb_ports, MBUF_CACHE_SIZE, 0,
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RTE_MBUF_DEFAULT_BUF_SIZE, rte_socket_id());
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if (mbuf_pool == NULL)
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rte_exit(EXIT_FAILURE, "Cannot create mbuf pool\n");
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/* initialize all ports */
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RTE_ETH_FOREACH_DEV(portid)
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if (port_init(portid, mbuf_pool) != 0)
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rte_exit(EXIT_FAILURE, "Cannot init port %"PRIu8"\n",
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portid);
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if (rte_lcore_count() > 1)
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printf("\nWARNING: Too much enabled lcores - "
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"App uses only 1 lcore\n");
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/* call lcore_main on master core only */
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lcore_main();
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return 0;
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}
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