93de39f50a
JUMP is an in-house term for so-called "tunnel_set" flows. On parsing, they are identified by virtue of actions MARK (PMD-internal) and JUMP. The action MARK associates a given flow with its tunnel context. Such a flow is represented by a MAE outer rule (OR) which has its recirculation ID set. This ID is also associated with the tunnel context. The OR is supposed to set this ID in 8 high bits of Rx mark in matching packets. It also counts the packets. Packets that hit the OR but miss in action rule (AR) table, should go to MAE admin PF (that is, to DPDK) by default. Support for the use of action COUNT in JUMP flows will be introduced by later patches. Signed-off-by: Ivan Malov <ivan.malov@oktetlabs.ru> Reviewed-by: Andrew Rybchenko <andrew.rybchenko@oktetlabs.ru>
457 lines
11 KiB
C
457 lines
11 KiB
C
/* SPDX-License-Identifier: BSD-3-Clause
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*
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* Copyright(c) 2019-2021 Xilinx, Inc.
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* Copyright(c) 2016-2019 Solarflare Communications Inc.
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*
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* This software was jointly developed between OKTET Labs (under contract
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* for Solarflare) and Solarflare Communications, Inc.
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*/
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#ifndef _SFC_H
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#define _SFC_H
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#include <stdbool.h>
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#include <rte_pci.h>
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#include <rte_bus_pci.h>
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#include <ethdev_driver.h>
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#include <rte_kvargs.h>
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#include <rte_spinlock.h>
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#include <rte_atomic.h>
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#include "efx.h"
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#include "sfc_efx_mcdi.h"
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#include "sfc_efx.h"
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#include "sfc_debug.h"
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#include "sfc_log.h"
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#include "sfc_filter.h"
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#include "sfc_flow_tunnel.h"
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#include "sfc_sriov.h"
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#include "sfc_mae.h"
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#include "sfc_dp.h"
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#include "sfc_sw_stats.h"
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#include "sfc_repr_proxy.h"
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#include "sfc_service.h"
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#include "sfc_ethdev_state.h"
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#ifdef __cplusplus
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extern "C" {
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#endif
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enum sfc_dev_filter_mode {
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SFC_DEV_FILTER_MODE_PROMISC = 0,
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SFC_DEV_FILTER_MODE_ALLMULTI,
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SFC_DEV_FILTER_NMODES
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};
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struct sfc_intr {
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efx_intr_type_t type;
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rte_intr_callback_fn handler;
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boolean_t lsc_intr;
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boolean_t rxq_intr;
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};
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struct sfc_rxq;
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struct sfc_txq;
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struct sfc_rxq_info;
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struct sfc_txq_info;
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struct sfc_dp_rx;
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struct sfc_port {
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unsigned int lsc_seq;
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uint32_t phy_adv_cap_mask;
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uint32_t phy_adv_cap;
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unsigned int flow_ctrl;
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boolean_t flow_ctrl_autoneg;
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size_t pdu;
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/*
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* Flow API isolated mode overrides promisc and allmulti settings;
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* they won't be applied if isolated mode is active
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*/
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boolean_t promisc;
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boolean_t allmulti;
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struct rte_ether_addr default_mac_addr;
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unsigned int max_mcast_addrs;
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unsigned int nb_mcast_addrs;
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uint8_t *mcast_addrs;
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uint64_t *mac_stats_buf;
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unsigned int mac_stats_nb_supported;
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efsys_mem_t mac_stats_dma_mem;
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boolean_t mac_stats_reset_pending;
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uint16_t mac_stats_update_period_ms;
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uint32_t mac_stats_update_generation;
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boolean_t mac_stats_periodic_dma_supported;
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uint64_t mac_stats_last_request_timestamp;
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uint32_t mac_stats_mask[EFX_MAC_STATS_MASK_NPAGES];
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unsigned int mac_stats_by_id[EFX_MAC_NSTATS];
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uint64_t ipackets;
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};
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struct sfc_rss_hf_rte_to_efx {
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uint64_t rte;
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efx_rx_hash_type_t efx;
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};
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struct sfc_rss {
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unsigned int channels;
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efx_rx_scale_context_type_t context_type;
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efx_rx_hash_support_t hash_support;
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efx_rx_hash_alg_t hash_alg;
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unsigned int hf_map_nb_entries;
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struct sfc_rss_hf_rte_to_efx *hf_map;
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efx_rx_hash_type_t hash_types;
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unsigned int tbl[EFX_RSS_TBL_SIZE];
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uint8_t key[EFX_RSS_KEY_SIZE];
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uint32_t dummy_rss_context;
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};
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/* Adapter private data shared by primary and secondary processes */
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struct sfc_adapter_shared {
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unsigned int rxq_count;
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struct sfc_rxq_info *rxq_info;
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unsigned int ethdev_rxq_count;
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unsigned int txq_count;
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struct sfc_txq_info *txq_info;
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unsigned int ethdev_txq_count;
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struct sfc_rss rss;
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boolean_t isolated;
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uint32_t tunnel_encaps;
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char log_prefix[SFC_LOG_PREFIX_MAX];
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struct rte_pci_addr pci_addr;
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uint16_t port_id;
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char *dp_rx_name;
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char *dp_tx_name;
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bool counters_rxq_allocated;
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unsigned int nb_repr_rxq;
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unsigned int nb_repr_txq;
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};
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/* Adapter process private data */
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struct sfc_adapter_priv {
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struct sfc_adapter_shared *shared;
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const struct sfc_dp_rx *dp_rx;
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const struct sfc_dp_tx *dp_tx;
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uint32_t logtype_main;
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};
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static inline struct sfc_adapter_priv *
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sfc_adapter_priv_by_eth_dev(struct rte_eth_dev *eth_dev)
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{
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struct sfc_adapter_priv *sap = eth_dev->process_private;
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SFC_ASSERT(sap != NULL);
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return sap;
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}
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/* RxQ dedicated for counters (counter only RxQ) data */
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struct sfc_counter_rxq {
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unsigned int state;
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#define SFC_COUNTER_RXQ_ATTACHED 0x1
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#define SFC_COUNTER_RXQ_INITIALIZED 0x2
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sfc_sw_index_t sw_index;
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struct rte_mempool *mp;
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};
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struct sfc_sw_stat_data {
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const struct sfc_sw_stat_descr *descr;
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/* Cache fragment */
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uint64_t *cache;
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};
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struct sfc_sw_stats {
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/* Number extended statistics provided by SW stats */
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unsigned int xstats_count;
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/* Supported SW statistics */
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struct sfc_sw_stat_data *supp;
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unsigned int supp_count;
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/* Cache for all supported SW statistics */
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uint64_t *cache;
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unsigned int cache_count;
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uint64_t *reset_vals;
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/* Location of per-queue reset values for packets/bytes in reset_vals */
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uint64_t *reset_rx_pkts;
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uint64_t *reset_rx_bytes;
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uint64_t *reset_tx_pkts;
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uint64_t *reset_tx_bytes;
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rte_spinlock_t queues_bitmap_lock;
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void *queues_bitmap_mem;
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struct rte_bitmap *queues_bitmap;
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};
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/* Adapter private data */
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struct sfc_adapter {
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/*
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* It must be the first field of the sfc_adapter structure since
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* sfc_adapter is the primary process private data (i.e. process
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* private data plus additional primary process specific data).
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*/
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struct sfc_adapter_priv priv;
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/*
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* PMD setup and configuration is not thread safe. Since it is not
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* performance sensitive, it is better to guarantee thread-safety
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* and add device level lock. Adapter control operations which
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* change its state should acquire the lock.
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*/
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rte_spinlock_t lock;
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enum sfc_ethdev_state state;
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struct rte_eth_dev *eth_dev;
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struct rte_kvargs *kvargs;
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int socket_id;
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efsys_bar_t mem_bar;
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/* Function control window offset */
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efsys_dma_addr_t fcw_offset;
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efx_family_t family;
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efx_nic_t *nic;
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rte_spinlock_t nic_lock;
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rte_atomic32_t restart_required;
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struct sfc_efx_mcdi mcdi;
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struct sfc_sriov sriov;
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struct sfc_intr intr;
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struct sfc_port port;
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struct sfc_sw_stats sw_stats;
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/* Registry of tunnel offload contexts */
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struct sfc_flow_tunnel flow_tunnels[SFC_FT_MAX_NTUNNELS];
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struct sfc_filter filter;
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struct sfc_mae mae;
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struct sfc_repr_proxy repr_proxy;
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struct sfc_flow_list flow_list;
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unsigned int rxq_max;
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unsigned int txq_max;
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unsigned int rxq_max_entries;
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unsigned int rxq_min_entries;
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unsigned int txq_max_entries;
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unsigned int txq_min_entries;
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unsigned int evq_max_entries;
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unsigned int evq_min_entries;
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uint32_t evq_flags;
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unsigned int evq_count;
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unsigned int mgmt_evq_index;
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/*
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* The lock is used to serialise management event queue polling
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* which can be done from different context. Also the lock
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* guarantees that mgmt_evq_running is preserved while the lock
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* is held. It is used to serialise polling and start/stop
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* operations.
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*
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* Locks which may be held when the lock is acquired:
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* - adapter lock, when:
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* - device start/stop to change mgmt_evq_running
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* - any control operations in client side MCDI proxy handling to
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* poll management event queue waiting for proxy response
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* - MCDI lock, when:
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* - any control operations in client side MCDI proxy handling to
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* poll management event queue waiting for proxy response
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*
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* Locks which are acquired with the lock held:
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* - nic_lock, when:
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* - MC event processing on management event queue polling
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* (e.g. MC REBOOT or BADASSERT events)
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*/
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rte_spinlock_t mgmt_evq_lock;
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bool mgmt_evq_running;
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struct sfc_evq *mgmt_evq;
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struct sfc_counter_rxq counter_rxq;
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struct sfc_rxq *rxq_ctrl;
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struct sfc_txq *txq_ctrl;
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boolean_t tso;
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boolean_t tso_encap;
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uint64_t negotiated_rx_metadata;
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uint32_t rxd_wait_timeout_ns;
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bool switchdev;
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};
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static inline struct sfc_adapter_shared *
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sfc_adapter_shared_by_eth_dev(struct rte_eth_dev *eth_dev)
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{
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struct sfc_adapter_shared *sas = eth_dev->data->dev_private;
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return sas;
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}
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static inline struct sfc_adapter *
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sfc_adapter_by_eth_dev(struct rte_eth_dev *eth_dev)
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{
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struct sfc_adapter_priv *sap = sfc_adapter_priv_by_eth_dev(eth_dev);
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SFC_ASSERT(rte_eal_process_type() == RTE_PROC_PRIMARY);
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return container_of(sap, struct sfc_adapter, priv);
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}
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static inline struct sfc_adapter_shared *
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sfc_sa2shared(struct sfc_adapter *sa)
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{
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return sa->priv.shared;
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}
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/*
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* Add wrapper functions to acquire/release lock to be able to remove or
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* change the lock in one place.
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*/
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static inline void
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sfc_adapter_lock_init(struct sfc_adapter *sa)
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{
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rte_spinlock_init(&sa->lock);
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}
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static inline int
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sfc_adapter_is_locked(struct sfc_adapter *sa)
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{
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return rte_spinlock_is_locked(&sa->lock);
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}
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static inline void
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sfc_adapter_lock(struct sfc_adapter *sa)
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{
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rte_spinlock_lock(&sa->lock);
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}
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static inline int
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sfc_adapter_trylock(struct sfc_adapter *sa)
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{
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return rte_spinlock_trylock(&sa->lock);
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}
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static inline void
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sfc_adapter_unlock(struct sfc_adapter *sa)
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{
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rte_spinlock_unlock(&sa->lock);
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}
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static inline void
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sfc_adapter_lock_fini(__rte_unused struct sfc_adapter *sa)
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{
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/* Just for symmetry of the API */
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}
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static inline unsigned int
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sfc_nb_counter_rxq(const struct sfc_adapter_shared *sas)
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{
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return sas->counters_rxq_allocated ? 1 : 0;
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}
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bool sfc_repr_supported(const struct sfc_adapter *sa);
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bool sfc_repr_available(const struct sfc_adapter_shared *sas);
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static inline unsigned int
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sfc_repr_nb_rxq(const struct sfc_adapter_shared *sas)
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{
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return sas->nb_repr_rxq;
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}
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static inline unsigned int
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sfc_repr_nb_txq(const struct sfc_adapter_shared *sas)
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{
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return sas->nb_repr_txq;
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}
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/** Get the number of milliseconds since boot from the default timer */
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static inline uint64_t
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sfc_get_system_msecs(void)
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{
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return rte_get_timer_cycles() * MS_PER_S / rte_get_timer_hz();
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}
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int sfc_dma_alloc(const struct sfc_adapter *sa, const char *name, uint16_t id,
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size_t len, int socket_id, efsys_mem_t *esmp);
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void sfc_dma_free(const struct sfc_adapter *sa, efsys_mem_t *esmp);
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uint32_t sfc_register_logtype(const struct rte_pci_addr *pci_addr,
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const char *lt_prefix_str,
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uint32_t ll_default);
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int sfc_probe(struct sfc_adapter *sa);
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void sfc_unprobe(struct sfc_adapter *sa);
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int sfc_attach(struct sfc_adapter *sa);
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void sfc_pre_detach(struct sfc_adapter *sa);
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void sfc_detach(struct sfc_adapter *sa);
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int sfc_start(struct sfc_adapter *sa);
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void sfc_stop(struct sfc_adapter *sa);
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void sfc_schedule_restart(struct sfc_adapter *sa);
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int sfc_mcdi_init(struct sfc_adapter *sa);
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void sfc_mcdi_fini(struct sfc_adapter *sa);
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int sfc_configure(struct sfc_adapter *sa);
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void sfc_close(struct sfc_adapter *sa);
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int sfc_intr_attach(struct sfc_adapter *sa);
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void sfc_intr_detach(struct sfc_adapter *sa);
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int sfc_intr_configure(struct sfc_adapter *sa);
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void sfc_intr_close(struct sfc_adapter *sa);
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int sfc_intr_start(struct sfc_adapter *sa);
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void sfc_intr_stop(struct sfc_adapter *sa);
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int sfc_port_attach(struct sfc_adapter *sa);
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void sfc_port_detach(struct sfc_adapter *sa);
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int sfc_port_configure(struct sfc_adapter *sa);
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void sfc_port_close(struct sfc_adapter *sa);
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int sfc_port_start(struct sfc_adapter *sa);
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void sfc_port_stop(struct sfc_adapter *sa);
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void sfc_port_link_mode_to_info(efx_link_mode_t link_mode,
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struct rte_eth_link *link_info);
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int sfc_port_update_mac_stats(struct sfc_adapter *sa, boolean_t manual_update);
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int sfc_port_get_mac_stats(struct sfc_adapter *sa, struct rte_eth_xstat *xstats,
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unsigned int xstats_count, unsigned int *nb_written);
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int sfc_port_get_mac_stats_by_id(struct sfc_adapter *sa, const uint64_t *ids,
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uint64_t *values, unsigned int n);
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int sfc_port_reset_mac_stats(struct sfc_adapter *sa);
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int sfc_set_rx_mode(struct sfc_adapter *sa);
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int sfc_set_rx_mode_unchecked(struct sfc_adapter *sa);
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struct sfc_hw_switch_id;
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int sfc_hw_switch_id_init(struct sfc_adapter *sa,
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struct sfc_hw_switch_id **idp);
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void sfc_hw_switch_id_fini(struct sfc_adapter *sa,
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struct sfc_hw_switch_id *idp);
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bool sfc_hw_switch_ids_equal(const struct sfc_hw_switch_id *left,
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const struct sfc_hw_switch_id *right);
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#ifdef __cplusplus
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}
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#endif
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#endif /* _SFC_H */
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