1 /* SPDX-License-Identifier: BSD-3-Clause
3 * Copyright (c) 2016-2018 Solarflare Communications Inc.
6 * This software was jointly developed between OKTET Labs (under contract
7 * for Solarflare) and Solarflare Communications, Inc.
11 #include <rte_ethdev_driver.h>
12 #include <rte_ethdev_pci.h>
14 #include <rte_bus_pci.h>
15 #include <rte_errno.h>
16 #include <rte_string_fns.h>
21 #include "sfc_debug.h"
23 #include "sfc_kvargs.h"
29 #include "sfc_dp_rx.h"
31 uint32_t sfc_logtype_driver;
33 static struct sfc_dp_list sfc_dp_head =
34 TAILQ_HEAD_INITIALIZER(sfc_dp_head);
37 sfc_fw_version_get(struct rte_eth_dev *dev, char *fw_version, size_t fw_size)
39 struct sfc_adapter *sa = dev->data->dev_private;
40 efx_nic_fw_info_t enfi;
45 * Return value of the callback is likely supposed to be
46 * equal to or greater than 0, nevertheless, if an error
47 * occurs, it will be desirable to pass it to the caller
49 if ((fw_version == NULL) || (fw_size == 0))
52 rc = efx_nic_get_fw_version(sa->nic, &enfi);
56 ret = snprintf(fw_version, fw_size,
57 "%" PRIu16 ".%" PRIu16 ".%" PRIu16 ".%" PRIu16,
58 enfi.enfi_mc_fw_version[0], enfi.enfi_mc_fw_version[1],
59 enfi.enfi_mc_fw_version[2], enfi.enfi_mc_fw_version[3]);
63 if (enfi.enfi_dpcpu_fw_ids_valid) {
64 size_t dpcpu_fw_ids_offset = MIN(fw_size - 1, (size_t)ret);
67 ret_extra = snprintf(fw_version + dpcpu_fw_ids_offset,
68 fw_size - dpcpu_fw_ids_offset,
69 " rx%" PRIx16 " tx%" PRIx16,
70 enfi.enfi_rx_dpcpu_fw_id,
71 enfi.enfi_tx_dpcpu_fw_id);
78 if (fw_size < (size_t)(++ret))
85 sfc_dev_infos_get(struct rte_eth_dev *dev, struct rte_eth_dev_info *dev_info)
87 struct sfc_adapter *sa = dev->data->dev_private;
88 struct sfc_rss *rss = &sa->rss;
89 uint64_t txq_offloads_def = 0;
91 sfc_log_init(sa, "entry");
93 dev_info->max_rx_pktlen = EFX_MAC_PDU_MAX;
95 /* Autonegotiation may be disabled */
96 dev_info->speed_capa = ETH_LINK_SPEED_FIXED;
97 if (sa->port.phy_adv_cap_mask & EFX_PHY_CAP_1000FDX)
98 dev_info->speed_capa |= ETH_LINK_SPEED_1G;
99 if (sa->port.phy_adv_cap_mask & EFX_PHY_CAP_10000FDX)
100 dev_info->speed_capa |= ETH_LINK_SPEED_10G;
101 if (sa->port.phy_adv_cap_mask & EFX_PHY_CAP_25000FDX)
102 dev_info->speed_capa |= ETH_LINK_SPEED_25G;
103 if (sa->port.phy_adv_cap_mask & EFX_PHY_CAP_40000FDX)
104 dev_info->speed_capa |= ETH_LINK_SPEED_40G;
105 if (sa->port.phy_adv_cap_mask & EFX_PHY_CAP_50000FDX)
106 dev_info->speed_capa |= ETH_LINK_SPEED_50G;
107 if (sa->port.phy_adv_cap_mask & EFX_PHY_CAP_100000FDX)
108 dev_info->speed_capa |= ETH_LINK_SPEED_100G;
110 dev_info->max_rx_queues = sa->rxq_max;
111 dev_info->max_tx_queues = sa->txq_max;
113 /* By default packets are dropped if no descriptors are available */
114 dev_info->default_rxconf.rx_drop_en = 1;
116 dev_info->rx_queue_offload_capa = sfc_rx_get_queue_offload_caps(sa);
119 * rx_offload_capa includes both device and queue offloads since
120 * the latter may be requested on a per device basis which makes
121 * sense when some offloads are needed to be set on all queues.
123 dev_info->rx_offload_capa = sfc_rx_get_dev_offload_caps(sa) |
124 dev_info->rx_queue_offload_capa;
126 dev_info->tx_queue_offload_capa = sfc_tx_get_queue_offload_caps(sa);
129 * tx_offload_capa includes both device and queue offloads since
130 * the latter may be requested on a per device basis which makes
131 * sense when some offloads are needed to be set on all queues.
133 dev_info->tx_offload_capa = sfc_tx_get_dev_offload_caps(sa) |
134 dev_info->tx_queue_offload_capa;
136 if (dev_info->tx_offload_capa & DEV_TX_OFFLOAD_MBUF_FAST_FREE)
137 txq_offloads_def |= DEV_TX_OFFLOAD_MBUF_FAST_FREE;
139 dev_info->default_txconf.offloads |= txq_offloads_def;
141 if (rss->context_type != EFX_RX_SCALE_UNAVAILABLE) {
145 for (i = 0; i < rss->hf_map_nb_entries; ++i)
146 rte_hf |= rss->hf_map[i].rte;
148 dev_info->reta_size = EFX_RSS_TBL_SIZE;
149 dev_info->hash_key_size = EFX_RSS_KEY_SIZE;
150 dev_info->flow_type_rss_offloads = rte_hf;
153 /* Initialize to hardware limits */
154 dev_info->rx_desc_lim.nb_max = EFX_RXQ_MAXNDESCS;
155 dev_info->rx_desc_lim.nb_min = EFX_RXQ_MINNDESCS;
156 /* The RXQ hardware requires that the descriptor count is a power
157 * of 2, but rx_desc_lim cannot properly describe that constraint.
159 dev_info->rx_desc_lim.nb_align = EFX_RXQ_MINNDESCS;
161 /* Initialize to hardware limits */
162 dev_info->tx_desc_lim.nb_max = sa->txq_max_entries;
163 dev_info->tx_desc_lim.nb_min = EFX_TXQ_MINNDESCS;
165 * The TXQ hardware requires that the descriptor count is a power
166 * of 2, but tx_desc_lim cannot properly describe that constraint
168 dev_info->tx_desc_lim.nb_align = EFX_TXQ_MINNDESCS;
170 if (sa->dp_rx->get_dev_info != NULL)
171 sa->dp_rx->get_dev_info(dev_info);
172 if (sa->dp_tx->get_dev_info != NULL)
173 sa->dp_tx->get_dev_info(dev_info);
175 dev_info->dev_capa = RTE_ETH_DEV_CAPA_RUNTIME_RX_QUEUE_SETUP |
176 RTE_ETH_DEV_CAPA_RUNTIME_TX_QUEUE_SETUP;
179 static const uint32_t *
180 sfc_dev_supported_ptypes_get(struct rte_eth_dev *dev)
182 struct sfc_adapter *sa = dev->data->dev_private;
183 const efx_nic_cfg_t *encp = efx_nic_cfg_get(sa->nic);
184 uint32_t tunnel_encaps = encp->enc_tunnel_encapsulations_supported;
186 return sa->dp_rx->supported_ptypes_get(tunnel_encaps);
190 sfc_dev_configure(struct rte_eth_dev *dev)
192 struct rte_eth_dev_data *dev_data = dev->data;
193 struct sfc_adapter *sa = dev_data->dev_private;
196 sfc_log_init(sa, "entry n_rxq=%u n_txq=%u",
197 dev_data->nb_rx_queues, dev_data->nb_tx_queues);
199 sfc_adapter_lock(sa);
201 case SFC_ADAPTER_CONFIGURED:
203 case SFC_ADAPTER_INITIALIZED:
204 rc = sfc_configure(sa);
207 sfc_err(sa, "unexpected adapter state %u to configure",
212 sfc_adapter_unlock(sa);
214 sfc_log_init(sa, "done %d", rc);
220 sfc_dev_start(struct rte_eth_dev *dev)
222 struct sfc_adapter *sa = dev->data->dev_private;
225 sfc_log_init(sa, "entry");
227 sfc_adapter_lock(sa);
229 sfc_adapter_unlock(sa);
231 sfc_log_init(sa, "done %d", rc);
237 sfc_dev_link_update(struct rte_eth_dev *dev, int wait_to_complete)
239 struct sfc_adapter *sa = dev->data->dev_private;
240 struct rte_eth_link current_link;
243 sfc_log_init(sa, "entry");
245 if (sa->state != SFC_ADAPTER_STARTED) {
246 sfc_port_link_mode_to_info(EFX_LINK_UNKNOWN, ¤t_link);
247 } else if (wait_to_complete) {
248 efx_link_mode_t link_mode;
250 if (efx_port_poll(sa->nic, &link_mode) != 0)
251 link_mode = EFX_LINK_UNKNOWN;
252 sfc_port_link_mode_to_info(link_mode, ¤t_link);
255 sfc_ev_mgmt_qpoll(sa);
256 rte_eth_linkstatus_get(dev, ¤t_link);
259 ret = rte_eth_linkstatus_set(dev, ¤t_link);
261 sfc_notice(sa, "Link status is %s",
262 current_link.link_status ? "UP" : "DOWN");
268 sfc_dev_stop(struct rte_eth_dev *dev)
270 struct sfc_adapter *sa = dev->data->dev_private;
272 sfc_log_init(sa, "entry");
274 sfc_adapter_lock(sa);
276 sfc_adapter_unlock(sa);
278 sfc_log_init(sa, "done");
282 sfc_dev_set_link_up(struct rte_eth_dev *dev)
284 struct sfc_adapter *sa = dev->data->dev_private;
287 sfc_log_init(sa, "entry");
289 sfc_adapter_lock(sa);
291 sfc_adapter_unlock(sa);
298 sfc_dev_set_link_down(struct rte_eth_dev *dev)
300 struct sfc_adapter *sa = dev->data->dev_private;
302 sfc_log_init(sa, "entry");
304 sfc_adapter_lock(sa);
306 sfc_adapter_unlock(sa);
312 sfc_dev_close(struct rte_eth_dev *dev)
314 struct sfc_adapter *sa = dev->data->dev_private;
316 sfc_log_init(sa, "entry");
318 sfc_adapter_lock(sa);
320 case SFC_ADAPTER_STARTED:
322 SFC_ASSERT(sa->state == SFC_ADAPTER_CONFIGURED);
324 case SFC_ADAPTER_CONFIGURED:
326 SFC_ASSERT(sa->state == SFC_ADAPTER_INITIALIZED);
328 case SFC_ADAPTER_INITIALIZED:
331 sfc_err(sa, "unexpected adapter state %u on close", sa->state);
334 sfc_adapter_unlock(sa);
336 sfc_log_init(sa, "done");
340 sfc_dev_filter_set(struct rte_eth_dev *dev, enum sfc_dev_filter_mode mode,
343 struct sfc_port *port;
345 struct sfc_adapter *sa = dev->data->dev_private;
346 boolean_t allmulti = (mode == SFC_DEV_FILTER_MODE_ALLMULTI);
347 const char *desc = (allmulti) ? "all-multi" : "promiscuous";
349 sfc_adapter_lock(sa);
352 toggle = (allmulti) ? (&port->allmulti) : (&port->promisc);
354 if (*toggle != enabled) {
357 if (port->isolated) {
358 sfc_warn(sa, "isolated mode is active on the port");
359 sfc_warn(sa, "the change is to be applied on the next "
360 "start provided that isolated mode is "
361 "disabled prior the next start");
362 } else if ((sa->state == SFC_ADAPTER_STARTED) &&
363 (sfc_set_rx_mode(sa) != 0)) {
364 *toggle = !(enabled);
365 sfc_warn(sa, "Failed to %s %s mode",
366 ((enabled) ? "enable" : "disable"), desc);
370 sfc_adapter_unlock(sa);
374 sfc_dev_promisc_enable(struct rte_eth_dev *dev)
376 sfc_dev_filter_set(dev, SFC_DEV_FILTER_MODE_PROMISC, B_TRUE);
380 sfc_dev_promisc_disable(struct rte_eth_dev *dev)
382 sfc_dev_filter_set(dev, SFC_DEV_FILTER_MODE_PROMISC, B_FALSE);
386 sfc_dev_allmulti_enable(struct rte_eth_dev *dev)
388 sfc_dev_filter_set(dev, SFC_DEV_FILTER_MODE_ALLMULTI, B_TRUE);
392 sfc_dev_allmulti_disable(struct rte_eth_dev *dev)
394 sfc_dev_filter_set(dev, SFC_DEV_FILTER_MODE_ALLMULTI, B_FALSE);
398 sfc_rx_queue_setup(struct rte_eth_dev *dev, uint16_t rx_queue_id,
399 uint16_t nb_rx_desc, unsigned int socket_id,
400 const struct rte_eth_rxconf *rx_conf,
401 struct rte_mempool *mb_pool)
403 struct sfc_adapter *sa = dev->data->dev_private;
406 sfc_log_init(sa, "RxQ=%u nb_rx_desc=%u socket_id=%u",
407 rx_queue_id, nb_rx_desc, socket_id);
409 sfc_adapter_lock(sa);
411 rc = sfc_rx_qinit(sa, rx_queue_id, nb_rx_desc, socket_id,
416 dev->data->rx_queues[rx_queue_id] = sa->rxq_info[rx_queue_id].rxq->dp;
418 sfc_adapter_unlock(sa);
423 sfc_adapter_unlock(sa);
429 sfc_rx_queue_release(void *queue)
431 struct sfc_dp_rxq *dp_rxq = queue;
433 struct sfc_adapter *sa;
434 unsigned int sw_index;
439 rxq = sfc_rxq_by_dp_rxq(dp_rxq);
441 sfc_adapter_lock(sa);
443 sw_index = sfc_rxq_sw_index(rxq);
445 sfc_log_init(sa, "RxQ=%u", sw_index);
447 sa->eth_dev->data->rx_queues[sw_index] = NULL;
449 sfc_rx_qfini(sa, sw_index);
451 sfc_adapter_unlock(sa);
455 sfc_tx_queue_setup(struct rte_eth_dev *dev, uint16_t tx_queue_id,
456 uint16_t nb_tx_desc, unsigned int socket_id,
457 const struct rte_eth_txconf *tx_conf)
459 struct sfc_adapter *sa = dev->data->dev_private;
462 sfc_log_init(sa, "TxQ = %u, nb_tx_desc = %u, socket_id = %u",
463 tx_queue_id, nb_tx_desc, socket_id);
465 sfc_adapter_lock(sa);
467 rc = sfc_tx_qinit(sa, tx_queue_id, nb_tx_desc, socket_id, tx_conf);
471 dev->data->tx_queues[tx_queue_id] = sa->txq_info[tx_queue_id].txq->dp;
473 sfc_adapter_unlock(sa);
477 sfc_adapter_unlock(sa);
483 sfc_tx_queue_release(void *queue)
485 struct sfc_dp_txq *dp_txq = queue;
487 unsigned int sw_index;
488 struct sfc_adapter *sa;
493 txq = sfc_txq_by_dp_txq(dp_txq);
494 sw_index = sfc_txq_sw_index(txq);
496 SFC_ASSERT(txq->evq != NULL);
499 sfc_log_init(sa, "TxQ = %u", sw_index);
501 sfc_adapter_lock(sa);
503 SFC_ASSERT(sw_index < sa->eth_dev->data->nb_tx_queues);
504 sa->eth_dev->data->tx_queues[sw_index] = NULL;
506 sfc_tx_qfini(sa, sw_index);
508 sfc_adapter_unlock(sa);
512 sfc_stats_get(struct rte_eth_dev *dev, struct rte_eth_stats *stats)
514 struct sfc_adapter *sa = dev->data->dev_private;
515 struct sfc_port *port = &sa->port;
519 rte_spinlock_lock(&port->mac_stats_lock);
521 ret = sfc_port_update_mac_stats(sa);
525 mac_stats = port->mac_stats_buf;
527 if (EFX_MAC_STAT_SUPPORTED(port->mac_stats_mask,
528 EFX_MAC_VADAPTER_RX_UNICAST_PACKETS)) {
530 mac_stats[EFX_MAC_VADAPTER_RX_UNICAST_PACKETS] +
531 mac_stats[EFX_MAC_VADAPTER_RX_MULTICAST_PACKETS] +
532 mac_stats[EFX_MAC_VADAPTER_RX_BROADCAST_PACKETS];
534 mac_stats[EFX_MAC_VADAPTER_TX_UNICAST_PACKETS] +
535 mac_stats[EFX_MAC_VADAPTER_TX_MULTICAST_PACKETS] +
536 mac_stats[EFX_MAC_VADAPTER_TX_BROADCAST_PACKETS];
538 mac_stats[EFX_MAC_VADAPTER_RX_UNICAST_BYTES] +
539 mac_stats[EFX_MAC_VADAPTER_RX_MULTICAST_BYTES] +
540 mac_stats[EFX_MAC_VADAPTER_RX_BROADCAST_BYTES];
542 mac_stats[EFX_MAC_VADAPTER_TX_UNICAST_BYTES] +
543 mac_stats[EFX_MAC_VADAPTER_TX_MULTICAST_BYTES] +
544 mac_stats[EFX_MAC_VADAPTER_TX_BROADCAST_BYTES];
545 stats->imissed = mac_stats[EFX_MAC_VADAPTER_RX_OVERFLOW];
546 stats->ierrors = mac_stats[EFX_MAC_VADAPTER_RX_BAD_PACKETS];
547 stats->oerrors = mac_stats[EFX_MAC_VADAPTER_TX_BAD_PACKETS];
549 stats->ipackets = mac_stats[EFX_MAC_RX_PKTS];
550 stats->opackets = mac_stats[EFX_MAC_TX_PKTS];
551 stats->ibytes = mac_stats[EFX_MAC_RX_OCTETS];
552 stats->obytes = mac_stats[EFX_MAC_TX_OCTETS];
554 * Take into account stats which are whenever supported
555 * on EF10. If some stat is not supported by current
556 * firmware variant or HW revision, it is guaranteed
557 * to be zero in mac_stats.
560 mac_stats[EFX_MAC_RX_NODESC_DROP_CNT] +
561 mac_stats[EFX_MAC_PM_TRUNC_BB_OVERFLOW] +
562 mac_stats[EFX_MAC_PM_DISCARD_BB_OVERFLOW] +
563 mac_stats[EFX_MAC_PM_TRUNC_VFIFO_FULL] +
564 mac_stats[EFX_MAC_PM_DISCARD_VFIFO_FULL] +
565 mac_stats[EFX_MAC_PM_TRUNC_QBB] +
566 mac_stats[EFX_MAC_PM_DISCARD_QBB] +
567 mac_stats[EFX_MAC_PM_DISCARD_MAPPING] +
568 mac_stats[EFX_MAC_RXDP_Q_DISABLED_PKTS] +
569 mac_stats[EFX_MAC_RXDP_DI_DROPPED_PKTS];
571 mac_stats[EFX_MAC_RX_FCS_ERRORS] +
572 mac_stats[EFX_MAC_RX_ALIGN_ERRORS] +
573 mac_stats[EFX_MAC_RX_JABBER_PKTS];
574 /* no oerrors counters supported on EF10 */
578 rte_spinlock_unlock(&port->mac_stats_lock);
579 SFC_ASSERT(ret >= 0);
584 sfc_stats_reset(struct rte_eth_dev *dev)
586 struct sfc_adapter *sa = dev->data->dev_private;
587 struct sfc_port *port = &sa->port;
590 if (sa->state != SFC_ADAPTER_STARTED) {
592 * The operation cannot be done if port is not started; it
593 * will be scheduled to be done during the next port start
595 port->mac_stats_reset_pending = B_TRUE;
599 rc = sfc_port_reset_mac_stats(sa);
601 sfc_err(sa, "failed to reset statistics (rc = %d)", rc);
605 sfc_xstats_get(struct rte_eth_dev *dev, struct rte_eth_xstat *xstats,
606 unsigned int xstats_count)
608 struct sfc_adapter *sa = dev->data->dev_private;
609 struct sfc_port *port = &sa->port;
615 rte_spinlock_lock(&port->mac_stats_lock);
617 rc = sfc_port_update_mac_stats(sa);
624 mac_stats = port->mac_stats_buf;
626 for (i = 0; i < EFX_MAC_NSTATS; ++i) {
627 if (EFX_MAC_STAT_SUPPORTED(port->mac_stats_mask, i)) {
628 if (xstats != NULL && nstats < (int)xstats_count) {
629 xstats[nstats].id = nstats;
630 xstats[nstats].value = mac_stats[i];
637 rte_spinlock_unlock(&port->mac_stats_lock);
643 sfc_xstats_get_names(struct rte_eth_dev *dev,
644 struct rte_eth_xstat_name *xstats_names,
645 unsigned int xstats_count)
647 struct sfc_adapter *sa = dev->data->dev_private;
648 struct sfc_port *port = &sa->port;
650 unsigned int nstats = 0;
652 for (i = 0; i < EFX_MAC_NSTATS; ++i) {
653 if (EFX_MAC_STAT_SUPPORTED(port->mac_stats_mask, i)) {
654 if (xstats_names != NULL && nstats < xstats_count)
655 strlcpy(xstats_names[nstats].name,
656 efx_mac_stat_name(sa->nic, i),
657 sizeof(xstats_names[0].name));
666 sfc_xstats_get_by_id(struct rte_eth_dev *dev, const uint64_t *ids,
667 uint64_t *values, unsigned int n)
669 struct sfc_adapter *sa = dev->data->dev_private;
670 struct sfc_port *port = &sa->port;
672 unsigned int nb_supported = 0;
673 unsigned int nb_written = 0;
678 if (unlikely(values == NULL) ||
679 unlikely((ids == NULL) && (n < port->mac_stats_nb_supported)))
680 return port->mac_stats_nb_supported;
682 rte_spinlock_lock(&port->mac_stats_lock);
684 rc = sfc_port_update_mac_stats(sa);
691 mac_stats = port->mac_stats_buf;
693 for (i = 0; (i < EFX_MAC_NSTATS) && (nb_written < n); ++i) {
694 if (!EFX_MAC_STAT_SUPPORTED(port->mac_stats_mask, i))
697 if ((ids == NULL) || (ids[nb_written] == nb_supported))
698 values[nb_written++] = mac_stats[i];
706 rte_spinlock_unlock(&port->mac_stats_lock);
712 sfc_xstats_get_names_by_id(struct rte_eth_dev *dev,
713 struct rte_eth_xstat_name *xstats_names,
714 const uint64_t *ids, unsigned int size)
716 struct sfc_adapter *sa = dev->data->dev_private;
717 struct sfc_port *port = &sa->port;
718 unsigned int nb_supported = 0;
719 unsigned int nb_written = 0;
722 if (unlikely(xstats_names == NULL) ||
723 unlikely((ids == NULL) && (size < port->mac_stats_nb_supported)))
724 return port->mac_stats_nb_supported;
726 for (i = 0; (i < EFX_MAC_NSTATS) && (nb_written < size); ++i) {
727 if (!EFX_MAC_STAT_SUPPORTED(port->mac_stats_mask, i))
730 if ((ids == NULL) || (ids[nb_written] == nb_supported)) {
731 char *name = xstats_names[nb_written++].name;
733 strlcpy(name, efx_mac_stat_name(sa->nic, i),
734 sizeof(xstats_names[0].name));
744 sfc_flow_ctrl_get(struct rte_eth_dev *dev, struct rte_eth_fc_conf *fc_conf)
746 struct sfc_adapter *sa = dev->data->dev_private;
747 unsigned int wanted_fc, link_fc;
749 memset(fc_conf, 0, sizeof(*fc_conf));
751 sfc_adapter_lock(sa);
753 if (sa->state == SFC_ADAPTER_STARTED)
754 efx_mac_fcntl_get(sa->nic, &wanted_fc, &link_fc);
756 link_fc = sa->port.flow_ctrl;
760 fc_conf->mode = RTE_FC_NONE;
762 case EFX_FCNTL_RESPOND:
763 fc_conf->mode = RTE_FC_RX_PAUSE;
765 case EFX_FCNTL_GENERATE:
766 fc_conf->mode = RTE_FC_TX_PAUSE;
768 case (EFX_FCNTL_RESPOND | EFX_FCNTL_GENERATE):
769 fc_conf->mode = RTE_FC_FULL;
772 sfc_err(sa, "%s: unexpected flow control value %#x",
776 fc_conf->autoneg = sa->port.flow_ctrl_autoneg;
778 sfc_adapter_unlock(sa);
784 sfc_flow_ctrl_set(struct rte_eth_dev *dev, struct rte_eth_fc_conf *fc_conf)
786 struct sfc_adapter *sa = dev->data->dev_private;
787 struct sfc_port *port = &sa->port;
791 if (fc_conf->high_water != 0 || fc_conf->low_water != 0 ||
792 fc_conf->pause_time != 0 || fc_conf->send_xon != 0 ||
793 fc_conf->mac_ctrl_frame_fwd != 0) {
794 sfc_err(sa, "unsupported flow control settings specified");
799 switch (fc_conf->mode) {
803 case RTE_FC_RX_PAUSE:
804 fcntl = EFX_FCNTL_RESPOND;
806 case RTE_FC_TX_PAUSE:
807 fcntl = EFX_FCNTL_GENERATE;
810 fcntl = EFX_FCNTL_RESPOND | EFX_FCNTL_GENERATE;
817 sfc_adapter_lock(sa);
819 if (sa->state == SFC_ADAPTER_STARTED) {
820 rc = efx_mac_fcntl_set(sa->nic, fcntl, fc_conf->autoneg);
822 goto fail_mac_fcntl_set;
825 port->flow_ctrl = fcntl;
826 port->flow_ctrl_autoneg = fc_conf->autoneg;
828 sfc_adapter_unlock(sa);
833 sfc_adapter_unlock(sa);
840 sfc_dev_set_mtu(struct rte_eth_dev *dev, uint16_t mtu)
842 struct sfc_adapter *sa = dev->data->dev_private;
843 size_t pdu = EFX_MAC_PDU(mtu);
847 sfc_log_init(sa, "mtu=%u", mtu);
850 if (pdu < EFX_MAC_PDU_MIN) {
851 sfc_err(sa, "too small MTU %u (PDU size %u less than min %u)",
852 (unsigned int)mtu, (unsigned int)pdu,
856 if (pdu > EFX_MAC_PDU_MAX) {
857 sfc_err(sa, "too big MTU %u (PDU size %u greater than max %u)",
858 (unsigned int)mtu, (unsigned int)pdu,
863 sfc_adapter_lock(sa);
865 if (pdu != sa->port.pdu) {
866 if (sa->state == SFC_ADAPTER_STARTED) {
869 old_pdu = sa->port.pdu;
880 * The driver does not use it, but other PMDs update jumbo frame
881 * flag and max_rx_pkt_len when MTU is set.
883 if (mtu > ETHER_MAX_LEN) {
884 struct rte_eth_rxmode *rxmode = &dev->data->dev_conf.rxmode;
885 rxmode->offloads |= DEV_RX_OFFLOAD_JUMBO_FRAME;
888 dev->data->dev_conf.rxmode.max_rx_pkt_len = sa->port.pdu;
890 sfc_adapter_unlock(sa);
892 sfc_log_init(sa, "done");
896 sa->port.pdu = old_pdu;
897 if (sfc_start(sa) != 0)
898 sfc_err(sa, "cannot start with neither new (%u) nor old (%u) "
899 "PDU max size - port is stopped",
900 (unsigned int)pdu, (unsigned int)old_pdu);
901 sfc_adapter_unlock(sa);
904 sfc_log_init(sa, "failed %d", rc);
909 sfc_mac_addr_set(struct rte_eth_dev *dev, struct ether_addr *mac_addr)
911 struct sfc_adapter *sa = dev->data->dev_private;
912 const efx_nic_cfg_t *encp = efx_nic_cfg_get(sa->nic);
913 struct sfc_port *port = &sa->port;
914 struct ether_addr *old_addr = &dev->data->mac_addrs[0];
917 sfc_adapter_lock(sa);
920 * Copy the address to the device private data so that
921 * it could be recalled in the case of adapter restart.
923 ether_addr_copy(mac_addr, &port->default_mac_addr);
926 * Neither of the two following checks can return
927 * an error. The new MAC address is preserved in
928 * the device private data and can be activated
929 * on the next port start if the user prevents
930 * isolated mode from being enabled.
932 if (port->isolated) {
933 sfc_warn(sa, "isolated mode is active on the port");
934 sfc_warn(sa, "will not set MAC address");
938 if (sa->state != SFC_ADAPTER_STARTED) {
939 sfc_notice(sa, "the port is not started");
940 sfc_notice(sa, "the new MAC address will be set on port start");
945 if (encp->enc_allow_set_mac_with_installed_filters) {
946 rc = efx_mac_addr_set(sa->nic, mac_addr->addr_bytes);
948 sfc_err(sa, "cannot set MAC address (rc = %u)", rc);
953 * Changing the MAC address by means of MCDI request
954 * has no effect on received traffic, therefore
955 * we also need to update unicast filters
957 rc = sfc_set_rx_mode(sa);
959 sfc_err(sa, "cannot set filter (rc = %u)", rc);
960 /* Rollback the old address */
961 (void)efx_mac_addr_set(sa->nic, old_addr->addr_bytes);
962 (void)sfc_set_rx_mode(sa);
965 sfc_warn(sa, "cannot set MAC address with filters installed");
966 sfc_warn(sa, "adapter will be restarted to pick the new MAC");
967 sfc_warn(sa, "(some traffic may be dropped)");
970 * Since setting MAC address with filters installed is not
971 * allowed on the adapter, the new MAC address will be set
972 * by means of adapter restart. sfc_start() shall retrieve
973 * the new address from the device private data and set it.
978 sfc_err(sa, "cannot restart adapter (rc = %u)", rc);
983 ether_addr_copy(old_addr, &port->default_mac_addr);
985 sfc_adapter_unlock(sa);
993 sfc_set_mc_addr_list(struct rte_eth_dev *dev, struct ether_addr *mc_addr_set,
996 struct sfc_adapter *sa = dev->data->dev_private;
997 struct sfc_port *port = &sa->port;
998 uint8_t *mc_addrs = port->mcast_addrs;
1002 if (port->isolated) {
1003 sfc_err(sa, "isolated mode is active on the port");
1004 sfc_err(sa, "will not set multicast address list");
1008 if (mc_addrs == NULL)
1011 if (nb_mc_addr > port->max_mcast_addrs) {
1012 sfc_err(sa, "too many multicast addresses: %u > %u",
1013 nb_mc_addr, port->max_mcast_addrs);
1017 for (i = 0; i < nb_mc_addr; ++i) {
1018 rte_memcpy(mc_addrs, mc_addr_set[i].addr_bytes,
1020 mc_addrs += EFX_MAC_ADDR_LEN;
1023 port->nb_mcast_addrs = nb_mc_addr;
1025 if (sa->state != SFC_ADAPTER_STARTED)
1028 rc = efx_mac_multicast_list_set(sa->nic, port->mcast_addrs,
1029 port->nb_mcast_addrs);
1031 sfc_err(sa, "cannot set multicast address list (rc = %u)", rc);
1033 SFC_ASSERT(rc >= 0);
1038 * The function is used by the secondary process as well. It must not
1039 * use any process-local pointers from the adapter data.
1042 sfc_rx_queue_info_get(struct rte_eth_dev *dev, uint16_t rx_queue_id,
1043 struct rte_eth_rxq_info *qinfo)
1045 struct sfc_adapter *sa = dev->data->dev_private;
1046 struct sfc_rxq_info *rxq_info;
1047 struct sfc_rxq *rxq;
1049 sfc_adapter_lock(sa);
1051 SFC_ASSERT(rx_queue_id < sa->rxq_count);
1053 rxq_info = &sa->rxq_info[rx_queue_id];
1054 rxq = rxq_info->rxq;
1055 SFC_ASSERT(rxq != NULL);
1057 qinfo->mp = rxq->refill_mb_pool;
1058 qinfo->conf.rx_free_thresh = rxq->refill_threshold;
1059 qinfo->conf.rx_drop_en = 1;
1060 qinfo->conf.rx_deferred_start = rxq_info->deferred_start;
1061 qinfo->conf.offloads = dev->data->dev_conf.rxmode.offloads;
1062 if (rxq_info->type_flags & EFX_RXQ_FLAG_SCATTER) {
1063 qinfo->conf.offloads |= DEV_RX_OFFLOAD_SCATTER;
1064 qinfo->scattered_rx = 1;
1066 qinfo->nb_desc = rxq_info->entries;
1068 sfc_adapter_unlock(sa);
1072 * The function is used by the secondary process as well. It must not
1073 * use any process-local pointers from the adapter data.
1076 sfc_tx_queue_info_get(struct rte_eth_dev *dev, uint16_t tx_queue_id,
1077 struct rte_eth_txq_info *qinfo)
1079 struct sfc_adapter *sa = dev->data->dev_private;
1080 struct sfc_txq_info *txq_info;
1082 sfc_adapter_lock(sa);
1084 SFC_ASSERT(tx_queue_id < sa->txq_count);
1086 txq_info = &sa->txq_info[tx_queue_id];
1087 SFC_ASSERT(txq_info->txq != NULL);
1089 memset(qinfo, 0, sizeof(*qinfo));
1091 qinfo->conf.offloads = txq_info->txq->offloads;
1092 qinfo->conf.tx_free_thresh = txq_info->txq->free_thresh;
1093 qinfo->conf.tx_deferred_start = txq_info->deferred_start;
1094 qinfo->nb_desc = txq_info->entries;
1096 sfc_adapter_unlock(sa);
1100 sfc_rx_queue_count(struct rte_eth_dev *dev, uint16_t rx_queue_id)
1102 struct sfc_adapter *sa = dev->data->dev_private;
1104 sfc_log_init(sa, "RxQ=%u", rx_queue_id);
1106 return sfc_rx_qdesc_npending(sa, rx_queue_id);
1110 sfc_rx_descriptor_done(void *queue, uint16_t offset)
1112 struct sfc_dp_rxq *dp_rxq = queue;
1114 return sfc_rx_qdesc_done(dp_rxq, offset);
1118 sfc_rx_descriptor_status(void *queue, uint16_t offset)
1120 struct sfc_dp_rxq *dp_rxq = queue;
1121 struct sfc_rxq *rxq = sfc_rxq_by_dp_rxq(dp_rxq);
1123 return rxq->evq->sa->dp_rx->qdesc_status(dp_rxq, offset);
1127 sfc_tx_descriptor_status(void *queue, uint16_t offset)
1129 struct sfc_dp_txq *dp_txq = queue;
1130 struct sfc_txq *txq = sfc_txq_by_dp_txq(dp_txq);
1132 return txq->evq->sa->dp_tx->qdesc_status(dp_txq, offset);
1136 sfc_rx_queue_start(struct rte_eth_dev *dev, uint16_t rx_queue_id)
1138 struct sfc_adapter *sa = dev->data->dev_private;
1141 sfc_log_init(sa, "RxQ=%u", rx_queue_id);
1143 sfc_adapter_lock(sa);
1146 if (sa->state != SFC_ADAPTER_STARTED)
1147 goto fail_not_started;
1149 if (sa->rxq_info[rx_queue_id].rxq == NULL)
1150 goto fail_not_setup;
1152 rc = sfc_rx_qstart(sa, rx_queue_id);
1154 goto fail_rx_qstart;
1156 sa->rxq_info[rx_queue_id].deferred_started = B_TRUE;
1158 sfc_adapter_unlock(sa);
1165 sfc_adapter_unlock(sa);
1171 sfc_rx_queue_stop(struct rte_eth_dev *dev, uint16_t rx_queue_id)
1173 struct sfc_adapter *sa = dev->data->dev_private;
1175 sfc_log_init(sa, "RxQ=%u", rx_queue_id);
1177 sfc_adapter_lock(sa);
1178 sfc_rx_qstop(sa, rx_queue_id);
1180 sa->rxq_info[rx_queue_id].deferred_started = B_FALSE;
1182 sfc_adapter_unlock(sa);
1188 sfc_tx_queue_start(struct rte_eth_dev *dev, uint16_t tx_queue_id)
1190 struct sfc_adapter *sa = dev->data->dev_private;
1193 sfc_log_init(sa, "TxQ = %u", tx_queue_id);
1195 sfc_adapter_lock(sa);
1198 if (sa->state != SFC_ADAPTER_STARTED)
1199 goto fail_not_started;
1201 if (sa->txq_info[tx_queue_id].txq == NULL)
1202 goto fail_not_setup;
1204 rc = sfc_tx_qstart(sa, tx_queue_id);
1206 goto fail_tx_qstart;
1208 sa->txq_info[tx_queue_id].deferred_started = B_TRUE;
1210 sfc_adapter_unlock(sa);
1217 sfc_adapter_unlock(sa);
1223 sfc_tx_queue_stop(struct rte_eth_dev *dev, uint16_t tx_queue_id)
1225 struct sfc_adapter *sa = dev->data->dev_private;
1227 sfc_log_init(sa, "TxQ = %u", tx_queue_id);
1229 sfc_adapter_lock(sa);
1231 sfc_tx_qstop(sa, tx_queue_id);
1233 sa->txq_info[tx_queue_id].deferred_started = B_FALSE;
1235 sfc_adapter_unlock(sa);
1239 static efx_tunnel_protocol_t
1240 sfc_tunnel_rte_type_to_efx_udp_proto(enum rte_eth_tunnel_type rte_type)
1243 case RTE_TUNNEL_TYPE_VXLAN:
1244 return EFX_TUNNEL_PROTOCOL_VXLAN;
1245 case RTE_TUNNEL_TYPE_GENEVE:
1246 return EFX_TUNNEL_PROTOCOL_GENEVE;
1248 return EFX_TUNNEL_NPROTOS;
1252 enum sfc_udp_tunnel_op_e {
1253 SFC_UDP_TUNNEL_ADD_PORT,
1254 SFC_UDP_TUNNEL_DEL_PORT,
1258 sfc_dev_udp_tunnel_op(struct rte_eth_dev *dev,
1259 struct rte_eth_udp_tunnel *tunnel_udp,
1260 enum sfc_udp_tunnel_op_e op)
1262 struct sfc_adapter *sa = dev->data->dev_private;
1263 efx_tunnel_protocol_t tunnel_proto;
1266 sfc_log_init(sa, "%s udp_port=%u prot_type=%u",
1267 (op == SFC_UDP_TUNNEL_ADD_PORT) ? "add" :
1268 (op == SFC_UDP_TUNNEL_DEL_PORT) ? "delete" : "unknown",
1269 tunnel_udp->udp_port, tunnel_udp->prot_type);
1272 sfc_tunnel_rte_type_to_efx_udp_proto(tunnel_udp->prot_type);
1273 if (tunnel_proto >= EFX_TUNNEL_NPROTOS) {
1275 goto fail_bad_proto;
1278 sfc_adapter_lock(sa);
1281 case SFC_UDP_TUNNEL_ADD_PORT:
1282 rc = efx_tunnel_config_udp_add(sa->nic,
1283 tunnel_udp->udp_port,
1286 case SFC_UDP_TUNNEL_DEL_PORT:
1287 rc = efx_tunnel_config_udp_remove(sa->nic,
1288 tunnel_udp->udp_port,
1299 if (sa->state == SFC_ADAPTER_STARTED) {
1300 rc = efx_tunnel_reconfigure(sa->nic);
1303 * Configuration is accepted by FW and MC reboot
1304 * is initiated to apply the changes. MC reboot
1305 * will be handled in a usual way (MC reboot
1306 * event on management event queue and adapter
1310 } else if (rc != 0) {
1311 goto fail_reconfigure;
1315 sfc_adapter_unlock(sa);
1319 /* Remove/restore entry since the change makes the trouble */
1321 case SFC_UDP_TUNNEL_ADD_PORT:
1322 (void)efx_tunnel_config_udp_remove(sa->nic,
1323 tunnel_udp->udp_port,
1326 case SFC_UDP_TUNNEL_DEL_PORT:
1327 (void)efx_tunnel_config_udp_add(sa->nic,
1328 tunnel_udp->udp_port,
1335 sfc_adapter_unlock(sa);
1343 sfc_dev_udp_tunnel_port_add(struct rte_eth_dev *dev,
1344 struct rte_eth_udp_tunnel *tunnel_udp)
1346 return sfc_dev_udp_tunnel_op(dev, tunnel_udp, SFC_UDP_TUNNEL_ADD_PORT);
1350 sfc_dev_udp_tunnel_port_del(struct rte_eth_dev *dev,
1351 struct rte_eth_udp_tunnel *tunnel_udp)
1353 return sfc_dev_udp_tunnel_op(dev, tunnel_udp, SFC_UDP_TUNNEL_DEL_PORT);
1357 sfc_dev_rss_hash_conf_get(struct rte_eth_dev *dev,
1358 struct rte_eth_rss_conf *rss_conf)
1360 struct sfc_adapter *sa = dev->data->dev_private;
1361 struct sfc_rss *rss = &sa->rss;
1362 struct sfc_port *port = &sa->port;
1364 if (rss->context_type != EFX_RX_SCALE_EXCLUSIVE || port->isolated)
1367 if (rss->channels == 0)
1370 sfc_adapter_lock(sa);
1373 * Mapping of hash configuration between RTE and EFX is not one-to-one,
1374 * hence, conversion is done here to derive a correct set of ETH_RSS
1375 * flags which corresponds to the active EFX configuration stored
1376 * locally in 'sfc_adapter' and kept up-to-date
1378 rss_conf->rss_hf = sfc_rx_hf_efx_to_rte(sa, rss->hash_types);
1379 rss_conf->rss_key_len = EFX_RSS_KEY_SIZE;
1380 if (rss_conf->rss_key != NULL)
1381 rte_memcpy(rss_conf->rss_key, rss->key, EFX_RSS_KEY_SIZE);
1383 sfc_adapter_unlock(sa);
1389 sfc_dev_rss_hash_update(struct rte_eth_dev *dev,
1390 struct rte_eth_rss_conf *rss_conf)
1392 struct sfc_adapter *sa = dev->data->dev_private;
1393 struct sfc_rss *rss = &sa->rss;
1394 struct sfc_port *port = &sa->port;
1395 unsigned int efx_hash_types;
1401 if (rss->context_type != EFX_RX_SCALE_EXCLUSIVE) {
1402 sfc_err(sa, "RSS is not available");
1406 if (rss->channels == 0) {
1407 sfc_err(sa, "RSS is not configured");
1411 if ((rss_conf->rss_key != NULL) &&
1412 (rss_conf->rss_key_len != sizeof(rss->key))) {
1413 sfc_err(sa, "RSS key size is wrong (should be %lu)",
1418 sfc_adapter_lock(sa);
1420 rc = sfc_rx_hf_rte_to_efx(sa, rss_conf->rss_hf, &efx_hash_types);
1422 goto fail_rx_hf_rte_to_efx;
1424 rc = efx_rx_scale_mode_set(sa->nic, EFX_RSS_CONTEXT_DEFAULT,
1425 rss->hash_alg, efx_hash_types, B_TRUE);
1427 goto fail_scale_mode_set;
1429 if (rss_conf->rss_key != NULL) {
1430 if (sa->state == SFC_ADAPTER_STARTED) {
1431 rc = efx_rx_scale_key_set(sa->nic,
1432 EFX_RSS_CONTEXT_DEFAULT,
1436 goto fail_scale_key_set;
1439 rte_memcpy(rss->key, rss_conf->rss_key, sizeof(rss->key));
1442 rss->hash_types = efx_hash_types;
1444 sfc_adapter_unlock(sa);
1449 if (efx_rx_scale_mode_set(sa->nic, EFX_RSS_CONTEXT_DEFAULT,
1450 EFX_RX_HASHALG_TOEPLITZ,
1451 rss->hash_types, B_TRUE) != 0)
1452 sfc_err(sa, "failed to restore RSS mode");
1454 fail_scale_mode_set:
1455 fail_rx_hf_rte_to_efx:
1456 sfc_adapter_unlock(sa);
1461 sfc_dev_rss_reta_query(struct rte_eth_dev *dev,
1462 struct rte_eth_rss_reta_entry64 *reta_conf,
1465 struct sfc_adapter *sa = dev->data->dev_private;
1466 struct sfc_rss *rss = &sa->rss;
1467 struct sfc_port *port = &sa->port;
1470 if (rss->context_type != EFX_RX_SCALE_EXCLUSIVE || port->isolated)
1473 if (rss->channels == 0)
1476 if (reta_size != EFX_RSS_TBL_SIZE)
1479 sfc_adapter_lock(sa);
1481 for (entry = 0; entry < reta_size; entry++) {
1482 int grp = entry / RTE_RETA_GROUP_SIZE;
1483 int grp_idx = entry % RTE_RETA_GROUP_SIZE;
1485 if ((reta_conf[grp].mask >> grp_idx) & 1)
1486 reta_conf[grp].reta[grp_idx] = rss->tbl[entry];
1489 sfc_adapter_unlock(sa);
1495 sfc_dev_rss_reta_update(struct rte_eth_dev *dev,
1496 struct rte_eth_rss_reta_entry64 *reta_conf,
1499 struct sfc_adapter *sa = dev->data->dev_private;
1500 struct sfc_rss *rss = &sa->rss;
1501 struct sfc_port *port = &sa->port;
1502 unsigned int *rss_tbl_new;
1510 if (rss->context_type != EFX_RX_SCALE_EXCLUSIVE) {
1511 sfc_err(sa, "RSS is not available");
1515 if (rss->channels == 0) {
1516 sfc_err(sa, "RSS is not configured");
1520 if (reta_size != EFX_RSS_TBL_SIZE) {
1521 sfc_err(sa, "RETA size is wrong (should be %u)",
1526 rss_tbl_new = rte_zmalloc("rss_tbl_new", sizeof(rss->tbl), 0);
1527 if (rss_tbl_new == NULL)
1530 sfc_adapter_lock(sa);
1532 rte_memcpy(rss_tbl_new, rss->tbl, sizeof(rss->tbl));
1534 for (entry = 0; entry < reta_size; entry++) {
1535 int grp_idx = entry % RTE_RETA_GROUP_SIZE;
1536 struct rte_eth_rss_reta_entry64 *grp;
1538 grp = &reta_conf[entry / RTE_RETA_GROUP_SIZE];
1540 if (grp->mask & (1ull << grp_idx)) {
1541 if (grp->reta[grp_idx] >= rss->channels) {
1543 goto bad_reta_entry;
1545 rss_tbl_new[entry] = grp->reta[grp_idx];
1549 if (sa->state == SFC_ADAPTER_STARTED) {
1550 rc = efx_rx_scale_tbl_set(sa->nic, EFX_RSS_CONTEXT_DEFAULT,
1551 rss_tbl_new, EFX_RSS_TBL_SIZE);
1553 goto fail_scale_tbl_set;
1556 rte_memcpy(rss->tbl, rss_tbl_new, sizeof(rss->tbl));
1560 sfc_adapter_unlock(sa);
1562 rte_free(rss_tbl_new);
1564 SFC_ASSERT(rc >= 0);
1569 sfc_dev_filter_ctrl(struct rte_eth_dev *dev, enum rte_filter_type filter_type,
1570 enum rte_filter_op filter_op,
1573 struct sfc_adapter *sa = dev->data->dev_private;
1576 sfc_log_init(sa, "entry");
1578 switch (filter_type) {
1579 case RTE_ETH_FILTER_NONE:
1580 sfc_err(sa, "Global filters configuration not supported");
1582 case RTE_ETH_FILTER_MACVLAN:
1583 sfc_err(sa, "MACVLAN filters not supported");
1585 case RTE_ETH_FILTER_ETHERTYPE:
1586 sfc_err(sa, "EtherType filters not supported");
1588 case RTE_ETH_FILTER_FLEXIBLE:
1589 sfc_err(sa, "Flexible filters not supported");
1591 case RTE_ETH_FILTER_SYN:
1592 sfc_err(sa, "SYN filters not supported");
1594 case RTE_ETH_FILTER_NTUPLE:
1595 sfc_err(sa, "NTUPLE filters not supported");
1597 case RTE_ETH_FILTER_TUNNEL:
1598 sfc_err(sa, "Tunnel filters not supported");
1600 case RTE_ETH_FILTER_FDIR:
1601 sfc_err(sa, "Flow Director filters not supported");
1603 case RTE_ETH_FILTER_HASH:
1604 sfc_err(sa, "Hash filters not supported");
1606 case RTE_ETH_FILTER_GENERIC:
1607 if (filter_op != RTE_ETH_FILTER_GET) {
1610 *(const void **)arg = &sfc_flow_ops;
1615 sfc_err(sa, "Unknown filter type %u", filter_type);
1619 sfc_log_init(sa, "exit: %d", -rc);
1620 SFC_ASSERT(rc >= 0);
1625 sfc_pool_ops_supported(struct rte_eth_dev *dev, const char *pool)
1627 struct sfc_adapter *sa = dev->data->dev_private;
1630 * If Rx datapath does not provide callback to check mempool,
1631 * all pools are supported.
1633 if (sa->dp_rx->pool_ops_supported == NULL)
1636 return sa->dp_rx->pool_ops_supported(pool);
1639 static const struct eth_dev_ops sfc_eth_dev_ops = {
1640 .dev_configure = sfc_dev_configure,
1641 .dev_start = sfc_dev_start,
1642 .dev_stop = sfc_dev_stop,
1643 .dev_set_link_up = sfc_dev_set_link_up,
1644 .dev_set_link_down = sfc_dev_set_link_down,
1645 .dev_close = sfc_dev_close,
1646 .promiscuous_enable = sfc_dev_promisc_enable,
1647 .promiscuous_disable = sfc_dev_promisc_disable,
1648 .allmulticast_enable = sfc_dev_allmulti_enable,
1649 .allmulticast_disable = sfc_dev_allmulti_disable,
1650 .link_update = sfc_dev_link_update,
1651 .stats_get = sfc_stats_get,
1652 .stats_reset = sfc_stats_reset,
1653 .xstats_get = sfc_xstats_get,
1654 .xstats_reset = sfc_stats_reset,
1655 .xstats_get_names = sfc_xstats_get_names,
1656 .dev_infos_get = sfc_dev_infos_get,
1657 .dev_supported_ptypes_get = sfc_dev_supported_ptypes_get,
1658 .mtu_set = sfc_dev_set_mtu,
1659 .rx_queue_start = sfc_rx_queue_start,
1660 .rx_queue_stop = sfc_rx_queue_stop,
1661 .tx_queue_start = sfc_tx_queue_start,
1662 .tx_queue_stop = sfc_tx_queue_stop,
1663 .rx_queue_setup = sfc_rx_queue_setup,
1664 .rx_queue_release = sfc_rx_queue_release,
1665 .rx_queue_count = sfc_rx_queue_count,
1666 .rx_descriptor_done = sfc_rx_descriptor_done,
1667 .rx_descriptor_status = sfc_rx_descriptor_status,
1668 .tx_descriptor_status = sfc_tx_descriptor_status,
1669 .tx_queue_setup = sfc_tx_queue_setup,
1670 .tx_queue_release = sfc_tx_queue_release,
1671 .flow_ctrl_get = sfc_flow_ctrl_get,
1672 .flow_ctrl_set = sfc_flow_ctrl_set,
1673 .mac_addr_set = sfc_mac_addr_set,
1674 .udp_tunnel_port_add = sfc_dev_udp_tunnel_port_add,
1675 .udp_tunnel_port_del = sfc_dev_udp_tunnel_port_del,
1676 .reta_update = sfc_dev_rss_reta_update,
1677 .reta_query = sfc_dev_rss_reta_query,
1678 .rss_hash_update = sfc_dev_rss_hash_update,
1679 .rss_hash_conf_get = sfc_dev_rss_hash_conf_get,
1680 .filter_ctrl = sfc_dev_filter_ctrl,
1681 .set_mc_addr_list = sfc_set_mc_addr_list,
1682 .rxq_info_get = sfc_rx_queue_info_get,
1683 .txq_info_get = sfc_tx_queue_info_get,
1684 .fw_version_get = sfc_fw_version_get,
1685 .xstats_get_by_id = sfc_xstats_get_by_id,
1686 .xstats_get_names_by_id = sfc_xstats_get_names_by_id,
1687 .pool_ops_supported = sfc_pool_ops_supported,
1691 * Duplicate a string in potentially shared memory required for
1692 * multi-process support.
1694 * strdup() allocates from process-local heap/memory.
1697 sfc_strdup(const char *str)
1705 size = strlen(str) + 1;
1706 copy = rte_malloc(__func__, size, 0);
1708 rte_memcpy(copy, str, size);
1714 sfc_eth_dev_set_ops(struct rte_eth_dev *dev)
1716 struct sfc_adapter *sa = dev->data->dev_private;
1717 const efx_nic_cfg_t *encp;
1718 unsigned int avail_caps = 0;
1719 const char *rx_name = NULL;
1720 const char *tx_name = NULL;
1723 switch (sa->family) {
1724 case EFX_FAMILY_HUNTINGTON:
1725 case EFX_FAMILY_MEDFORD:
1726 case EFX_FAMILY_MEDFORD2:
1727 avail_caps |= SFC_DP_HW_FW_CAP_EF10;
1733 encp = efx_nic_cfg_get(sa->nic);
1734 if (encp->enc_rx_es_super_buffer_supported)
1735 avail_caps |= SFC_DP_HW_FW_CAP_RX_ES_SUPER_BUFFER;
1737 rc = sfc_kvargs_process(sa, SFC_KVARG_RX_DATAPATH,
1738 sfc_kvarg_string_handler, &rx_name);
1740 goto fail_kvarg_rx_datapath;
1742 if (rx_name != NULL) {
1743 sa->dp_rx = sfc_dp_find_rx_by_name(&sfc_dp_head, rx_name);
1744 if (sa->dp_rx == NULL) {
1745 sfc_err(sa, "Rx datapath %s not found", rx_name);
1749 if (!sfc_dp_match_hw_fw_caps(&sa->dp_rx->dp, avail_caps)) {
1751 "Insufficient Hw/FW capabilities to use Rx datapath %s",
1754 goto fail_dp_rx_caps;
1757 sa->dp_rx = sfc_dp_find_rx_by_caps(&sfc_dp_head, avail_caps);
1758 if (sa->dp_rx == NULL) {
1759 sfc_err(sa, "Rx datapath by caps %#x not found",
1766 sa->dp_rx_name = sfc_strdup(sa->dp_rx->dp.name);
1767 if (sa->dp_rx_name == NULL) {
1769 goto fail_dp_rx_name;
1772 sfc_notice(sa, "use %s Rx datapath", sa->dp_rx_name);
1774 dev->rx_pkt_burst = sa->dp_rx->pkt_burst;
1776 rc = sfc_kvargs_process(sa, SFC_KVARG_TX_DATAPATH,
1777 sfc_kvarg_string_handler, &tx_name);
1779 goto fail_kvarg_tx_datapath;
1781 if (tx_name != NULL) {
1782 sa->dp_tx = sfc_dp_find_tx_by_name(&sfc_dp_head, tx_name);
1783 if (sa->dp_tx == NULL) {
1784 sfc_err(sa, "Tx datapath %s not found", tx_name);
1788 if (!sfc_dp_match_hw_fw_caps(&sa->dp_tx->dp, avail_caps)) {
1790 "Insufficient Hw/FW capabilities to use Tx datapath %s",
1793 goto fail_dp_tx_caps;
1796 sa->dp_tx = sfc_dp_find_tx_by_caps(&sfc_dp_head, avail_caps);
1797 if (sa->dp_tx == NULL) {
1798 sfc_err(sa, "Tx datapath by caps %#x not found",
1805 sa->dp_tx_name = sfc_strdup(sa->dp_tx->dp.name);
1806 if (sa->dp_tx_name == NULL) {
1808 goto fail_dp_tx_name;
1811 sfc_notice(sa, "use %s Tx datapath", sa->dp_tx_name);
1813 dev->tx_pkt_burst = sa->dp_tx->pkt_burst;
1815 dev->dev_ops = &sfc_eth_dev_ops;
1824 fail_kvarg_tx_datapath:
1825 rte_free(sa->dp_rx_name);
1826 sa->dp_rx_name = NULL;
1833 fail_kvarg_rx_datapath:
1838 sfc_eth_dev_clear_ops(struct rte_eth_dev *dev)
1840 struct sfc_adapter *sa = dev->data->dev_private;
1842 dev->dev_ops = NULL;
1843 dev->rx_pkt_burst = NULL;
1844 dev->tx_pkt_burst = NULL;
1846 rte_free(sa->dp_tx_name);
1847 sa->dp_tx_name = NULL;
1850 rte_free(sa->dp_rx_name);
1851 sa->dp_rx_name = NULL;
1855 static const struct eth_dev_ops sfc_eth_dev_secondary_ops = {
1856 .rxq_info_get = sfc_rx_queue_info_get,
1857 .txq_info_get = sfc_tx_queue_info_get,
1861 sfc_eth_dev_secondary_set_ops(struct rte_eth_dev *dev)
1864 * Device private data has really many process-local pointers.
1865 * Below code should be extremely careful to use data located
1866 * in shared memory only.
1868 struct sfc_adapter *sa = dev->data->dev_private;
1869 const struct sfc_dp_rx *dp_rx;
1870 const struct sfc_dp_tx *dp_tx;
1873 dp_rx = sfc_dp_find_rx_by_name(&sfc_dp_head, sa->dp_rx_name);
1874 if (dp_rx == NULL) {
1875 sfc_err(sa, "cannot find %s Rx datapath", sa->dp_tx_name);
1879 if (~dp_rx->features & SFC_DP_RX_FEAT_MULTI_PROCESS) {
1880 sfc_err(sa, "%s Rx datapath does not support multi-process",
1883 goto fail_dp_rx_multi_process;
1886 dp_tx = sfc_dp_find_tx_by_name(&sfc_dp_head, sa->dp_tx_name);
1887 if (dp_tx == NULL) {
1888 sfc_err(sa, "cannot find %s Tx datapath", sa->dp_tx_name);
1892 if (~dp_tx->features & SFC_DP_TX_FEAT_MULTI_PROCESS) {
1893 sfc_err(sa, "%s Tx datapath does not support multi-process",
1896 goto fail_dp_tx_multi_process;
1899 dev->rx_pkt_burst = dp_rx->pkt_burst;
1900 dev->tx_pkt_burst = dp_tx->pkt_burst;
1901 dev->dev_ops = &sfc_eth_dev_secondary_ops;
1905 fail_dp_tx_multi_process:
1907 fail_dp_rx_multi_process:
1913 sfc_eth_dev_secondary_clear_ops(struct rte_eth_dev *dev)
1915 dev->dev_ops = NULL;
1916 dev->tx_pkt_burst = NULL;
1917 dev->rx_pkt_burst = NULL;
1921 sfc_register_dp(void)
1924 if (TAILQ_EMPTY(&sfc_dp_head)) {
1925 /* Prefer EF10 datapath */
1926 sfc_dp_register(&sfc_dp_head, &sfc_ef10_essb_rx.dp);
1927 sfc_dp_register(&sfc_dp_head, &sfc_ef10_rx.dp);
1928 sfc_dp_register(&sfc_dp_head, &sfc_efx_rx.dp);
1930 sfc_dp_register(&sfc_dp_head, &sfc_ef10_tx.dp);
1931 sfc_dp_register(&sfc_dp_head, &sfc_efx_tx.dp);
1932 sfc_dp_register(&sfc_dp_head, &sfc_ef10_simple_tx.dp);
1937 sfc_eth_dev_init(struct rte_eth_dev *dev)
1939 struct sfc_adapter *sa = dev->data->dev_private;
1940 struct rte_pci_device *pci_dev = RTE_ETH_DEV_TO_PCI(dev);
1942 const efx_nic_cfg_t *encp;
1943 const struct ether_addr *from;
1947 if (rte_eal_process_type() != RTE_PROC_PRIMARY)
1948 return -sfc_eth_dev_secondary_set_ops(dev);
1950 /* Required for logging */
1951 sa->pci_addr = pci_dev->addr;
1952 sa->port_id = dev->data->port_id;
1956 /* Copy PCI device info to the dev->data */
1957 rte_eth_copy_pci_info(dev, pci_dev);
1959 sa->logtype_main = sfc_register_logtype(sa, SFC_LOGTYPE_MAIN_STR,
1962 rc = sfc_kvargs_parse(sa);
1964 goto fail_kvargs_parse;
1966 sfc_log_init(sa, "entry");
1968 dev->data->mac_addrs = rte_zmalloc("sfc", ETHER_ADDR_LEN, 0);
1969 if (dev->data->mac_addrs == NULL) {
1971 goto fail_mac_addrs;
1974 sfc_adapter_lock_init(sa);
1975 sfc_adapter_lock(sa);
1977 sfc_log_init(sa, "probing");
1982 sfc_log_init(sa, "set device ops");
1983 rc = sfc_eth_dev_set_ops(dev);
1987 sfc_log_init(sa, "attaching");
1988 rc = sfc_attach(sa);
1992 encp = efx_nic_cfg_get(sa->nic);
1995 * The arguments are really reverse order in comparison to
1996 * Linux kernel. Copy from NIC config to Ethernet device data.
1998 from = (const struct ether_addr *)(encp->enc_mac_addr);
1999 ether_addr_copy(from, &dev->data->mac_addrs[0]);
2001 sfc_adapter_unlock(sa);
2003 sfc_log_init(sa, "done");
2007 sfc_eth_dev_clear_ops(dev);
2013 sfc_adapter_unlock(sa);
2014 sfc_adapter_lock_fini(sa);
2015 rte_free(dev->data->mac_addrs);
2016 dev->data->mac_addrs = NULL;
2019 sfc_kvargs_cleanup(sa);
2022 sfc_log_init(sa, "failed %d", rc);
2028 sfc_eth_dev_uninit(struct rte_eth_dev *dev)
2030 struct sfc_adapter *sa;
2032 if (rte_eal_process_type() != RTE_PROC_PRIMARY) {
2033 sfc_eth_dev_secondary_clear_ops(dev);
2037 sa = dev->data->dev_private;
2038 sfc_log_init(sa, "entry");
2040 sfc_adapter_lock(sa);
2042 sfc_eth_dev_clear_ops(dev);
2047 rte_free(dev->data->mac_addrs);
2048 dev->data->mac_addrs = NULL;
2050 sfc_kvargs_cleanup(sa);
2052 sfc_adapter_unlock(sa);
2053 sfc_adapter_lock_fini(sa);
2055 sfc_log_init(sa, "done");
2057 /* Required for logging, so cleanup last */
2062 static const struct rte_pci_id pci_id_sfc_efx_map[] = {
2063 { RTE_PCI_DEVICE(EFX_PCI_VENID_SFC, EFX_PCI_DEVID_FARMINGDALE) },
2064 { RTE_PCI_DEVICE(EFX_PCI_VENID_SFC, EFX_PCI_DEVID_FARMINGDALE_VF) },
2065 { RTE_PCI_DEVICE(EFX_PCI_VENID_SFC, EFX_PCI_DEVID_GREENPORT) },
2066 { RTE_PCI_DEVICE(EFX_PCI_VENID_SFC, EFX_PCI_DEVID_GREENPORT_VF) },
2067 { RTE_PCI_DEVICE(EFX_PCI_VENID_SFC, EFX_PCI_DEVID_MEDFORD) },
2068 { RTE_PCI_DEVICE(EFX_PCI_VENID_SFC, EFX_PCI_DEVID_MEDFORD_VF) },
2069 { RTE_PCI_DEVICE(EFX_PCI_VENID_SFC, EFX_PCI_DEVID_MEDFORD2) },
2070 { RTE_PCI_DEVICE(EFX_PCI_VENID_SFC, EFX_PCI_DEVID_MEDFORD2_VF) },
2071 { .vendor_id = 0 /* sentinel */ }
2074 static int sfc_eth_dev_pci_probe(struct rte_pci_driver *pci_drv __rte_unused,
2075 struct rte_pci_device *pci_dev)
2077 return rte_eth_dev_pci_generic_probe(pci_dev,
2078 sizeof(struct sfc_adapter), sfc_eth_dev_init);
2081 static int sfc_eth_dev_pci_remove(struct rte_pci_device *pci_dev)
2083 return rte_eth_dev_pci_generic_remove(pci_dev, sfc_eth_dev_uninit);
2086 static struct rte_pci_driver sfc_efx_pmd = {
2087 .id_table = pci_id_sfc_efx_map,
2089 RTE_PCI_DRV_INTR_LSC |
2090 RTE_PCI_DRV_NEED_MAPPING,
2091 .probe = sfc_eth_dev_pci_probe,
2092 .remove = sfc_eth_dev_pci_remove,
2095 RTE_PMD_REGISTER_PCI(net_sfc_efx, sfc_efx_pmd);
2096 RTE_PMD_REGISTER_PCI_TABLE(net_sfc_efx, pci_id_sfc_efx_map);
2097 RTE_PMD_REGISTER_KMOD_DEP(net_sfc_efx, "* igb_uio | uio_pci_generic | vfio-pci");
2098 RTE_PMD_REGISTER_PARAM_STRING(net_sfc_efx,
2099 SFC_KVARG_RX_DATAPATH "=" SFC_KVARG_VALUES_RX_DATAPATH " "
2100 SFC_KVARG_TX_DATAPATH "=" SFC_KVARG_VALUES_TX_DATAPATH " "
2101 SFC_KVARG_PERF_PROFILE "=" SFC_KVARG_VALUES_PERF_PROFILE " "
2102 SFC_KVARG_FW_VARIANT "=" SFC_KVARG_VALUES_FW_VARIANT " "
2103 SFC_KVARG_RXD_WAIT_TIMEOUT_NS "=<long> "
2104 SFC_KVARG_STATS_UPDATE_PERIOD_MS "=<long>");
2106 RTE_INIT(sfc_driver_register_logtype)
2110 ret = rte_log_register_type_and_pick_level(SFC_LOGTYPE_PREFIX "driver",
2112 sfc_logtype_driver = (ret < 0) ? RTE_LOGTYPE_PMD : ret;