109e4dd1bd
Currently, firmware adds the function of sending message to PF driver through mailbox when the link status is changed, hns3 PMD driver can usually recognize link state change faster through the message. And in some extreme cases, this way is not faster than existing method regularly updating link status by issuing the command every second in PF driver, because of the parallel processing of mailbox and command messages in firmware. So we reserve updating link status using timers in PF driver, and add querying link status by issuing command to the firmware in '.link_update' ops implementation function named hns3_dev_link_update to solve the out of date link status. Signed-off-by: Hongbo Zheng <zhenghongbo3@huawei.com> Signed-off-by: Wei Hu (Xavier) <xavier.huwei@huawei.com> Signed-off-by: Huisong Li <lihuisong@huawei.com>
389 lines
9.7 KiB
C
389 lines
9.7 KiB
C
/* SPDX-License-Identifier: BSD-3-Clause
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* Copyright(c) 2018-2019 Hisilicon Limited.
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*/
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#include <errno.h>
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#include <stdbool.h>
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#include <stdint.h>
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#include <stdio.h>
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#include <string.h>
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#include <inttypes.h>
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#include <unistd.h>
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#include <rte_byteorder.h>
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#include <rte_common.h>
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#include <rte_cycles.h>
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#include <rte_dev.h>
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#include <rte_ethdev_driver.h>
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#include <rte_io.h>
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#include <rte_spinlock.h>
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#include <rte_pci.h>
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#include <rte_bus_pci.h>
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#include "hns3_ethdev.h"
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#include "hns3_regs.h"
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#include "hns3_logs.h"
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#include "hns3_intr.h"
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#define HNS3_CMD_CODE_OFFSET 2
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static const struct errno_respcode_map err_code_map[] = {
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{0, 0},
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{1, -EPERM},
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{2, -ENOENT},
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{5, -EIO},
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{11, -EAGAIN},
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{12, -ENOMEM},
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{16, -EBUSY},
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{22, -EINVAL},
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{28, -ENOSPC},
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{95, -EOPNOTSUPP},
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};
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static int
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hns3_resp_to_errno(uint16_t resp_code)
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{
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uint32_t i, num;
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num = sizeof(err_code_map) / sizeof(struct errno_respcode_map);
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for (i = 0; i < num; i++) {
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if (err_code_map[i].resp_code == resp_code)
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return err_code_map[i].err_no;
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}
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return -EIO;
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}
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static void
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hns3_poll_all_sync_msg(void)
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{
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struct rte_eth_dev *eth_dev;
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struct hns3_adapter *adapter;
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const char *name;
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uint16_t port_id;
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RTE_ETH_FOREACH_DEV(port_id) {
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eth_dev = &rte_eth_devices[port_id];
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name = eth_dev->device->driver->name;
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if (strcmp(name, "net_hns3") && strcmp(name, "net_hns3_vf"))
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continue;
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adapter = eth_dev->data->dev_private;
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if (!adapter || adapter->hw.adapter_state == HNS3_NIC_CLOSED)
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continue;
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/* Synchronous msg, the mbx_resp.req_msg_data is non-zero */
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if (adapter->hw.mbx_resp.req_msg_data)
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hns3_dev_handle_mbx_msg(&adapter->hw);
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}
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}
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static int
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hns3_get_mbx_resp(struct hns3_hw *hw, uint16_t code0, uint16_t code1,
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uint8_t *resp_data, uint16_t resp_len)
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{
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#define HNS3_MAX_RETRY_MS 500
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struct hns3_adapter *hns = HNS3_DEV_HW_TO_ADAPTER(hw);
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struct hns3_mbx_resp_status *mbx_resp;
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bool in_irq = false;
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uint64_t now;
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uint64_t end;
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if (resp_len > HNS3_MBX_MAX_RESP_DATA_SIZE) {
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hns3_err(hw, "VF mbx response len(=%d) exceeds maximum(=%d)",
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resp_len, HNS3_MBX_MAX_RESP_DATA_SIZE);
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return -EINVAL;
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}
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now = get_timeofday_ms();
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end = now + HNS3_MAX_RETRY_MS;
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while ((hw->mbx_resp.head != hw->mbx_resp.tail + hw->mbx_resp.lost) &&
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(now < end)) {
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if (rte_atomic16_read(&hw->reset.disable_cmd)) {
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hns3_err(hw, "Don't wait for mbx respone because of "
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"disable_cmd");
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return -EBUSY;
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}
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if (is_reset_pending(hns)) {
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hw->mbx_resp.req_msg_data = 0;
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hns3_err(hw, "Don't wait for mbx respone because of "
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"reset pending");
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return -EIO;
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}
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/*
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* The mbox response is running on the interrupt thread.
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* Sending mbox in the interrupt thread cannot wait for the
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* response, so polling the mbox response on the irq thread.
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*/
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if (pthread_equal(hw->irq_thread_id, pthread_self())) {
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in_irq = true;
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hns3_poll_all_sync_msg();
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} else {
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rte_delay_ms(HNS3_POLL_RESPONE_MS);
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}
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now = get_timeofday_ms();
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}
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hw->mbx_resp.req_msg_data = 0;
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if (now >= end) {
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hw->mbx_resp.lost++;
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hns3_err(hw,
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"VF could not get mbx(%d,%d) head(%d) tail(%d) lost(%d) from PF in_irq:%d",
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code0, code1, hw->mbx_resp.head, hw->mbx_resp.tail,
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hw->mbx_resp.lost, in_irq);
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return -ETIME;
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}
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rte_io_rmb();
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mbx_resp = &hw->mbx_resp;
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if (mbx_resp->resp_status)
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return mbx_resp->resp_status;
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if (resp_data)
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memcpy(resp_data, &mbx_resp->additional_info[0], resp_len);
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return 0;
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}
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int
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hns3_send_mbx_msg(struct hns3_hw *hw, uint16_t code, uint16_t subcode,
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const uint8_t *msg_data, uint8_t msg_len, bool need_resp,
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uint8_t *resp_data, uint16_t resp_len)
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{
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struct hns3_mbx_vf_to_pf_cmd *req;
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struct hns3_cmd_desc desc;
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int ret;
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req = (struct hns3_mbx_vf_to_pf_cmd *)desc.data;
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/* first two bytes are reserved for code & subcode */
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if (msg_len > (HNS3_MBX_MAX_MSG_SIZE - HNS3_CMD_CODE_OFFSET)) {
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hns3_err(hw,
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"VF send mbx msg fail, msg len %d exceeds max payload len %d",
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msg_len, HNS3_MBX_MAX_MSG_SIZE - HNS3_CMD_CODE_OFFSET);
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return -EINVAL;
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}
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hns3_cmd_setup_basic_desc(&desc, HNS3_OPC_MBX_VF_TO_PF, false);
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req->msg[0] = code;
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req->msg[1] = subcode;
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if (msg_data)
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memcpy(&req->msg[HNS3_CMD_CODE_OFFSET], msg_data, msg_len);
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/* synchronous send */
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if (need_resp) {
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req->mbx_need_resp |= HNS3_MBX_NEED_RESP_BIT;
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rte_spinlock_lock(&hw->mbx_resp.lock);
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hw->mbx_resp.req_msg_data = (uint32_t)code << 16 | subcode;
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hw->mbx_resp.head++;
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ret = hns3_cmd_send(hw, &desc, 1);
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if (ret) {
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rte_spinlock_unlock(&hw->mbx_resp.lock);
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hns3_err(hw, "VF failed(=%d) to send mbx message to PF",
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ret);
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return ret;
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}
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ret = hns3_get_mbx_resp(hw, code, subcode, resp_data, resp_len);
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rte_spinlock_unlock(&hw->mbx_resp.lock);
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} else {
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/* asynchronous send */
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ret = hns3_cmd_send(hw, &desc, 1);
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if (ret) {
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hns3_err(hw, "VF failed(=%d) to send mbx message to PF",
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ret);
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return ret;
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}
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}
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return ret;
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}
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static bool
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hns3_cmd_crq_empty(struct hns3_hw *hw)
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{
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uint32_t tail = hns3_read_dev(hw, HNS3_CMDQ_RX_TAIL_REG);
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return tail == hw->cmq.crq.next_to_use;
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}
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static void
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hns3_mbx_handler(struct hns3_hw *hw)
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{
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struct hns3_mac *mac = &hw->mac;
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enum hns3_reset_level reset_level;
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uint16_t *msg_q;
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uint32_t tail;
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tail = hw->arq.tail;
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/* process all the async queue messages */
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while (tail != hw->arq.head) {
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msg_q = hw->arq.msg_q[hw->arq.head];
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switch (msg_q[0]) {
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case HNS3_MBX_LINK_STAT_CHANGE:
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memcpy(&mac->link_speed, &msg_q[2],
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sizeof(mac->link_speed));
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mac->link_status = rte_le_to_cpu_16(msg_q[1]);
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mac->link_duplex = (uint8_t)rte_le_to_cpu_16(msg_q[4]);
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break;
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case HNS3_MBX_ASSERTING_RESET:
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/* PF has asserted reset hence VF should go in pending
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* state and poll for the hardware reset status till it
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* has been completely reset. After this stack should
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* eventually be re-initialized.
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*/
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reset_level = rte_le_to_cpu_16(msg_q[1]);
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hns3_atomic_set_bit(reset_level, &hw->reset.pending);
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hns3_warn(hw, "PF inform reset level %d", reset_level);
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hw->reset.stats.request_cnt++;
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hns3_schedule_reset(HNS3_DEV_HW_TO_ADAPTER(hw));
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break;
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default:
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hns3_err(hw, "Fetched unsupported(%d) message from arq",
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msg_q[0]);
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break;
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}
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hns3_mbx_head_ptr_move_arq(hw->arq);
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msg_q = hw->arq.msg_q[hw->arq.head];
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}
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}
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/*
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* Case1: receive response after timeout, req_msg_data
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* is 0, not equal resp_msg, do lost--
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* Case2: receive last response during new send_mbx_msg,
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* req_msg_data is different with resp_msg, let
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* lost--, continue to wait for response.
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*/
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static void
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hns3_update_resp_position(struct hns3_hw *hw, uint32_t resp_msg)
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{
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struct hns3_mbx_resp_status *resp = &hw->mbx_resp;
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uint32_t tail = resp->tail + 1;
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if (tail > resp->head)
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tail = resp->head;
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if (resp->req_msg_data != resp_msg) {
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if (resp->lost)
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resp->lost--;
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hns3_warn(hw, "Received a mismatched response req_msg(%x) "
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"resp_msg(%x) head(%d) tail(%d) lost(%d)",
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resp->req_msg_data, resp_msg, resp->head, tail,
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resp->lost);
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} else if (tail + resp->lost > resp->head) {
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resp->lost--;
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hns3_warn(hw, "Received a new response again resp_msg(%x) "
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"head(%d) tail(%d) lost(%d)", resp_msg,
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resp->head, tail, resp->lost);
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}
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rte_io_wmb();
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resp->tail = tail;
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}
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static void
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hns3_link_fail_parse(struct hns3_hw *hw, uint8_t link_fail_code)
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{
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switch (link_fail_code) {
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case HNS3_MBX_LF_NORMAL:
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break;
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case HNS3_MBX_LF_REF_CLOCK_LOST:
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hns3_warn(hw, "Reference clock lost!");
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break;
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case HNS3_MBX_LF_XSFP_TX_DISABLE:
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hns3_warn(hw, "SFP tx is disabled!");
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break;
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case HNS3_MBX_LF_XSFP_ABSENT:
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hns3_warn(hw, "SFP is absent!");
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break;
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default:
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hns3_warn(hw, "Unknown fail code:%u!", link_fail_code);
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break;
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}
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}
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static void
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hns3_handle_link_change_event(struct hns3_hw *hw,
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struct hns3_mbx_pf_to_vf_cmd *req)
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{
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#define LINK_STATUS_OFFSET 1
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#define LINK_FAIL_CODE_OFFSET 2
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if (!req->msg[LINK_STATUS_OFFSET])
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hns3_link_fail_parse(hw, req->msg[LINK_FAIL_CODE_OFFSET]);
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hns3_update_link_status(hw);
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}
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void
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hns3_dev_handle_mbx_msg(struct hns3_hw *hw)
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{
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struct hns3_mbx_resp_status *resp = &hw->mbx_resp;
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struct hns3_cmq_ring *crq = &hw->cmq.crq;
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struct hns3_mbx_pf_to_vf_cmd *req;
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struct hns3_cmd_desc *desc;
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uint32_t msg_data;
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uint16_t *msg_q;
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uint16_t flag;
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uint8_t *temp;
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int i;
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while (!hns3_cmd_crq_empty(hw)) {
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if (rte_atomic16_read(&hw->reset.disable_cmd))
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return;
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desc = &crq->desc[crq->next_to_use];
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req = (struct hns3_mbx_pf_to_vf_cmd *)desc->data;
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flag = rte_le_to_cpu_16(crq->desc[crq->next_to_use].flag);
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if (unlikely(!hns3_get_bit(flag, HNS3_CMDQ_RX_OUTVLD_B))) {
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hns3_warn(hw,
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"dropped invalid mailbox message, code = %d",
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req->msg[0]);
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/* dropping/not processing this invalid message */
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crq->desc[crq->next_to_use].flag = 0;
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hns3_mbx_ring_ptr_move_crq(crq);
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continue;
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}
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switch (req->msg[0]) {
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case HNS3_MBX_PF_VF_RESP:
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resp->resp_status = hns3_resp_to_errno(req->msg[3]);
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temp = (uint8_t *)&req->msg[4];
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for (i = 0; i < HNS3_MBX_MAX_RESP_DATA_SIZE; i++) {
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resp->additional_info[i] = *temp;
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temp++;
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}
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msg_data = (uint32_t)req->msg[1] << 16 | req->msg[2];
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hns3_update_resp_position(hw, msg_data);
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break;
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case HNS3_MBX_LINK_STAT_CHANGE:
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case HNS3_MBX_ASSERTING_RESET:
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msg_q = hw->arq.msg_q[hw->arq.tail];
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memcpy(&msg_q[0], req->msg,
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HNS3_MBX_MAX_ARQ_MSG_SIZE * sizeof(uint16_t));
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hns3_mbx_tail_ptr_move_arq(hw->arq);
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hns3_mbx_handler(hw);
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break;
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case HNS3_MBX_PUSH_LINK_STATUS:
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hns3_handle_link_change_event(hw, req);
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break;
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default:
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hns3_err(hw,
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"VF received unsupported(%d) mbx msg from PF",
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req->msg[0]);
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break;
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}
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crq->desc[crq->next_to_use].flag = 0;
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hns3_mbx_ring_ptr_move_crq(crq);
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}
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/* Write back CMDQ_RQ header pointer, IMP need this pointer */
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hns3_write_dev(hw, HNS3_CMDQ_RX_HEAD_REG, crq->next_to_use);
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}
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