📄 e1000_82571.c
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reg |= (1 << 22); ew32(TXDCTL(0), reg); /* Transmit Descriptor Control 1 */ reg = er32(TXDCTL(1)); reg |= (1 << 22); ew32(TXDCTL(1), reg); /* Transmit Arbitration Control 0 */ reg = er32(TARC(0)); reg &= ~(0xF << 27); /* 30:27 */ switch (hw->mac.type) { case e1000_82571: case e1000_82572: reg |= (1 << 23) | (1 << 24) | (1 << 25) | (1 << 26); break; default: break; } ew32(TARC(0), reg); /* Transmit Arbitration Control 1 */ reg = er32(TARC(1)); switch (hw->mac.type) { case e1000_82571: case e1000_82572: reg &= ~((1 << 29) | (1 << 30)); reg |= (1 << 22) | (1 << 24) | (1 << 25) | (1 << 26); if (er32(TCTL) & E1000_TCTL_MULR) reg &= ~(1 << 28); else reg |= (1 << 28); ew32(TARC(1), reg); break; default: break; } /* Device Control */ if (hw->mac.type == e1000_82573 || hw->mac.type == e1000_82574) { reg = er32(CTRL); reg &= ~(1 << 29); ew32(CTRL, reg); } /* Extended Device Control */ if (hw->mac.type == e1000_82573 || hw->mac.type == e1000_82574) { reg = er32(CTRL_EXT); reg &= ~(1 << 23); reg |= (1 << 22); ew32(CTRL_EXT, reg); } if (hw->mac.type == e1000_82571) { reg = er32(PBA_ECC); reg |= E1000_PBA_ECC_CORR_EN; ew32(PBA_ECC, reg); } /* PCI-Ex Control Registers */ if (hw->mac.type == e1000_82574) { reg = er32(GCR); reg |= (1 << 22); ew32(GCR, reg); } /* * Workaround for hardware errata. * apply workaround for hardware errata documented in errata docs * Fixes issue where some error prone or unreliable PCIe completions * are occurring, particularly with ASPM enabled. * Without fix, issue can cause tx timeouts. */ if (hw->mac.type == e1000_82574) { reg = er32(GCR2); reg |= 1; ew32(GCR2, reg); } return;}/** * e1000_clear_vfta_82571 - Clear VLAN filter table * @hw: pointer to the HW structure * * Clears the register array which contains the VLAN filter table by * setting all the values to 0. **/static void e1000_clear_vfta_82571(struct e1000_hw *hw){ u32 offset; u32 vfta_value = 0; u32 vfta_offset = 0; u32 vfta_bit_in_reg = 0; if (hw->mac.type == e1000_82573 || hw->mac.type == e1000_82574) { if (hw->mng_cookie.vlan_id != 0) { /* * The VFTA is a 4096b bit-field, each identifying * a single VLAN ID. The following operations * determine which 32b entry (i.e. offset) into the * array we want to set the VLAN ID (i.e. bit) of * the manageability unit. */ vfta_offset = (hw->mng_cookie.vlan_id >> E1000_VFTA_ENTRY_SHIFT) & E1000_VFTA_ENTRY_MASK; vfta_bit_in_reg = 1 << (hw->mng_cookie.vlan_id & E1000_VFTA_ENTRY_BIT_SHIFT_MASK); } } for (offset = 0; offset < E1000_VLAN_FILTER_TBL_SIZE; offset++) { /* * If the offset we want to clear is the same offset of the * manageability VLAN ID, then clear all bits except that of * the manageability unit. */ vfta_value = (offset == vfta_offset) ? vfta_bit_in_reg : 0; E1000_WRITE_REG_ARRAY(hw, E1000_VFTA, offset, vfta_value); e1e_flush(); }}/** * e1000_check_mng_mode_82574 - Check manageability is enabled * @hw: pointer to the HW structure * * Reads the NVM Initialization Control Word 2 and returns true * (>0) if any manageability is enabled, else false (0). **/static bool e1000_check_mng_mode_82574(struct e1000_hw *hw){ u16 data; e1000_read_nvm(hw, NVM_INIT_CONTROL2_REG, 1, &data); return (data & E1000_NVM_INIT_CTRL2_MNGM) != 0;}/** * e1000_led_on_82574 - Turn LED on * @hw: pointer to the HW structure * * Turn LED on. **/static s32 e1000_led_on_82574(struct e1000_hw *hw){ u32 ctrl; u32 i; ctrl = hw->mac.ledctl_mode2; if (!(E1000_STATUS_LU & er32(STATUS))) { /* * If no link, then turn LED on by setting the invert bit * for each LED that's "on" (0x0E) in ledctl_mode2. */ for (i = 0; i < 4; i++) if (((hw->mac.ledctl_mode2 >> (i * 8)) & 0xFF) == E1000_LEDCTL_MODE_LED_ON) ctrl |= (E1000_LEDCTL_LED0_IVRT << (i * 8)); } ew32(LEDCTL, ctrl); return E1000_SUCCESS;}/** * e1000_update_mc_addr_list_82571 - Update Multicast addresses * @hw: pointer to the HW structure * @mc_addr_list: array of multicast addresses to program * @mc_addr_count: number of multicast addresses to program * @rar_used_count: the first RAR register free to program * @rar_count: total number of supported Receive Address Registers * * Updates the Receive Address Registers and Multicast Table Array. * The caller must have a packed mc_addr_list of multicast addresses. * The parameter rar_count will usually be hw->mac.rar_entry_count * unless there are workarounds that change this. **/static void e1000_update_mc_addr_list_82571(struct e1000_hw *hw, u8 *mc_addr_list, u32 mc_addr_count, u32 rar_used_count, u32 rar_count){ if (e1000e_get_laa_state_82571(hw)) rar_count--; e1000e_update_mc_addr_list_generic(hw, mc_addr_list, mc_addr_count, rar_used_count, rar_count);}/** * e1000_setup_link_82571 - Setup flow control and link settings * @hw: pointer to the HW structure * * Determines which flow control settings to use, then configures flow * control. Calls the appropriate media-specific link configuration * function. Assuming the adapter has a valid link partner, a valid link * should be established. Assumes the hardware has previously been reset * and the transmitter and receiver are not enabled. **/static s32 e1000_setup_link_82571(struct e1000_hw *hw){ /* * 82573 does not have a word in the NVM to determine * the default flow control setting, so we explicitly * set it to full. */ if ((hw->mac.type == e1000_82573 || hw->mac.type == e1000_82574) && hw->fc.requested_mode == e1000_fc_default) hw->fc.requested_mode = e1000_fc_full; return e1000e_setup_link(hw);}/** * e1000_setup_copper_link_82571 - Configure copper link settings * @hw: pointer to the HW structure * * Configures the link for auto-neg or forced speed and duplex. Then we check * for link, once link is established calls to configure collision distance * and flow control are called. **/static s32 e1000_setup_copper_link_82571(struct e1000_hw *hw){ u32 ctrl, led_ctrl; s32 ret_val; ctrl = er32(CTRL); ctrl |= E1000_CTRL_SLU; ctrl &= ~(E1000_CTRL_FRCSPD | E1000_CTRL_FRCDPX); ew32(CTRL, ctrl); switch (hw->phy.type) { case e1000_phy_m88: case e1000_phy_bm: ret_val = e1000e_copper_link_setup_m88(hw); break; case e1000_phy_igp_2: ret_val = e1000e_copper_link_setup_igp(hw); /* Setup activity LED */ led_ctrl = er32(LEDCTL); led_ctrl &= IGP_ACTIVITY_LED_MASK; led_ctrl |= (IGP_ACTIVITY_LED_ENABLE | IGP_LED3_MODE); ew32(LEDCTL, led_ctrl); break; default: ret_val = -E1000_ERR_PHY; break; } if (ret_val) goto out; ret_val = e1000e_setup_copper_link(hw);out: return ret_val;}/** * e1000_setup_fiber_serdes_link_82571 - Setup link for fiber/serdes * @hw: pointer to the HW structure * * Configures collision distance and flow control for fiber and serdes links. * Upon successful setup, poll for link. **/static s32 e1000_setup_fiber_serdes_link_82571(struct e1000_hw *hw){ switch (hw->mac.type) { case e1000_82571: case e1000_82572: /* * If SerDes loopback mode is entered, there is no form * of reset to take the adapter out of that mode. So we * have to explicitly take the adapter out of loopback * mode. This prevents drivers from twiddling their thumbs * if another tool failed to take it out of loopback mode. */ ew32(SCTL, E1000_SCTL_DISABLE_SERDES_LOOPBACK); break; default: break; } return e1000e_setup_fiber_serdes_link(hw);}/** * e1000_valid_led_default_82571 - Verify a valid default LED config * @hw: pointer to the HW structure * @data: pointer to the NVM (EEPROM) * * Read the EEPROM for the current default LED configuration. If the * LED configuration is not valid, set to a valid LED configuration. **/static s32 e1000_valid_led_default_82571(struct e1000_hw *hw, u16 *data){ s32 ret_val; ret_val = e1000_read_nvm(hw, NVM_ID_LED_SETTINGS, 1, data); if (ret_val) { e_dbg("NVM Read Error\n"); goto out; } if ((hw->mac.type == e1000_82573 || hw->mac.type == e1000_82574) && *data == ID_LED_RESERVED_F746) *data = ID_LED_DEFAULT_82573; else if (*data == ID_LED_RESERVED_0000 || *data == ID_LED_RESERVED_FFFF) *data = ID_LED_DEFAULT;out: return ret_val;}/** * e1000e_get_laa_state_82571 - Get locally administered address state * @hw: pointer to the HW structure * * Retrieve and return the current locally administered address state. **/bool e1000e_get_laa_state_82571(struct e1000_hw *hw){ if (hw->mac.type != e1000_82571) return false; return hw->dev_spec._82571.laa_is_present;}/** * e1000e_set_laa_state_82571 - Set locally administered address state * @hw: pointer to the HW structure * @state: enable/disable locally administered address * * Enable/Disable the current locally administered address state. **/void e1000e_set_laa_state_82571(struct e1000_hw *hw, bool state){ if (hw->mac.type != e1000_82571) return; hw->dev_spec._82571.laa_is_present = state; /* If workaround is activated... */ if (state) /* * Hold a copy of the LAA in RAR[14] This is done so that * between the time RAR[0] gets clobbered and the time it * gets fixed, the actual LAA is in one of the RARs and no * incoming packets directed to this port are dropped. * Eventually the LAA will be in RAR[0] and RAR[14]. */ e1000e_rar_set(hw, hw->mac.addr, hw->mac.rar_entry_count - 1); return;}/** * e1000_fix_nvm_checksum_82571 - Fix EEPROM checksum * @hw: pointer to the HW structure * * Verifies that the EEPROM has completed the update. After updating the * EEPROM, we need to check bit 15 in work 0x23 for the checksum fix. If * the checksum fix is not implemented, we need to set the bit and update * the checksum. Otherwise, if bit 15 is set and the checksum is incorrect, * we need to return bad checksum. **/static s32 e1000_fix_nvm_checksum_82571(struct e1000_hw *hw){ struct e1000_nvm_info *nvm = &hw->nvm; s32 ret_val = E1000_SUCCESS; u16 data; if (nvm->type != e1000_nvm_flash_hw) goto out; /* * Check bit 4 of word 10h. If it is 0, firmware is done updating * 10h-12h. Checksum may need to be fixed. */ ret_val = e1000_read_nvm(hw, 0x10, 1, &data); if (ret_val) goto out; if (!(data & 0x10)) { /* * Read 0x23 and check bit 15. This bit is a 1 * when the checksum has already been fixed. If * the checksum is still wrong and this bit is a * 1, we need to return bad checksum. Otherwise, * we need to set this bit to a 1 and update the * checksum. */ ret_val = e1000_read_nvm(hw, 0x23, 1, &data); if (ret_val) goto out; if (!(data & 0x8000)) { data |= 0x8000; ret_val = e1000_write_nvm(hw, 0x23, 1, &data); if (ret_val) goto out; ret_val = e1000e_update_nvm_checksum(hw); } }out: return ret_val;}/** * e1000_read_mac_addr_82571 - Read device MAC address * @hw: pointer to the HW structure **/static s32 e1000_read_mac_addr_82571(struct e1000_hw *hw){ s32 ret_val = E1000_SUCCESS; if (e1000_check_alt_mac_addr_generic(hw)) ret_val = e1000e_read_mac_addr_generic(hw); return ret_val;}/** * e1000_power_down_phy_copper_82571 - Remove link during PHY power down * @hw: pointer to the HW structure * * In the case of a PHY power down to save power, or to turn off link during a * driver unload, or wake on lan is not enabled, remove the link. **/static void e1000_power_down_phy_copper_82571(struct e1000_hw *hw){ struct e1000_phy_info *phy = &hw->phy; struct e1000_mac_info *mac = &hw->mac; if (!(phy->ops.check_reset_block)) return; /* If the management interface is not enabled, then power down */ if (!(mac->ops.check_mng_mode(hw) || e1000_check_reset_block(hw))) e1000_power_down_phy_copper(hw); return;}/** * e1000_clear_hw_cntrs_82571 - Clear device specific hardware counters * @hw: pointer to the HW structure * * Clears the hardware counters by reading the counter registers. **/static void e1000_clear_hw_cntrs_82571(struct e1000_hw *hw){ e1000e_clear_hw_cntrs_base(hw); er32(PRC64); er32(PRC127); er32(PRC255); er32(PRC511); er32(PRC1023); er32(PRC1522); er32(PTC64); er32(PTC127); er32(PTC255); er32(PTC511); er32(PTC1023); er32(PTC1522); er32(ALGNERRC); er32(RXERRC); er32(TNCRS); er32(CEXTERR); er32(TSCTC); er32(TSCTFC); er32(MGTPRC); er32(MGTPDC); er32(MGTPTC); er32(IAC); er32(ICRXOC); er32(ICRXPTC); er32(ICRXATC); er32(ICTXPTC); er32(ICTXATC); er32(ICTXQEC); er32(ICTXQMTC); er32(ICRXDMTC);}
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