463 lines
16 KiB
C
463 lines
16 KiB
C
/*
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* Copyright (c) 2006-2023, RT-Thread Development Team
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*
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* SPDX-License-Identifier: Apache-2.0
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*
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* Change Logs:
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* Date Author Notes
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* 2022-08-15 xjy198903 the first version
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*/
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#include <rtthread.h>
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#ifdef PHY_USING_RTL8211F
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#include <rtdevice.h>
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#include "drv_gpio.h"
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#include "drv_mdio.h"
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/*******************************************************************************
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* Definitions
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******************************************************************************/
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/*! @note The following PHY registers are the IEEE802.3 standard definition, same register and bit field may
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have different names in various PHYs, but the feature they represent should be same or very similar. */
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/*! @brief Defines the IEEE802.3 standard PHY registers. */
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#define PHY_BASICCONTROL_REG 0x00U /*!< The PHY basic control register. */
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#define PHY_BASICSTATUS_REG 0x01U /*!< The PHY basic status register. */
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#define PHY_ID1_REG 0x02U /*!< The PHY ID one register. */
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#define PHY_ID2_REG 0x03U /*!< The PHY ID two register. */
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#define PHY_AUTONEG_ADVERTISE_REG 0x04U /*!< The PHY auto-negotiate advertise register. */
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#define PHY_AUTONEG_LINKPARTNER_REG 0x05U /*!< The PHY auto negotiation link partner ability register. */
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#define PHY_AUTONEG_EXPANSION_REG 0x06U /*!< The PHY auto negotiation expansion register. */
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#define PHY_1000BASET_CONTROL_REG 0x09U /*!< The PHY 1000BASE-T control register. */
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#define PHY_MMD_ACCESS_CONTROL_REG 0x0DU /*!< The PHY MMD access control register. */
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#define PHY_MMD_ACCESS_DATA_REG 0x0EU /*!< The PHY MMD access data register. */
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/*! @brief Defines the mask flag in basic control register(Address 0x00). */
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#define PHY_BCTL_SPEED1_MASK 0x0040U /*!< The PHY speed bit mask(MSB).*/
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#define PHY_BCTL_ISOLATE_MASK 0x0400U /*!< The PHY isolate mask.*/
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#define PHY_BCTL_DUPLEX_MASK 0x0100U /*!< The PHY duplex bit mask. */
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#define PHY_BCTL_RESTART_AUTONEG_MASK 0x0200U /*!< The PHY restart auto negotiation mask. */
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#define PHY_BCTL_AUTONEG_MASK 0x1000U /*!< The PHY auto negotiation bit mask. */
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#define PHY_BCTL_SPEED0_MASK 0x2000U /*!< The PHY speed bit mask(LSB). */
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#define PHY_BCTL_LOOP_MASK 0x4000U /*!< The PHY loop bit mask. */
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#define PHY_BCTL_RESET_MASK 0x8000U /*!< The PHY reset bit mask. */
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/*! @brief Defines the mask flag in basic status register(Address 0x01). */
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#define PHY_BSTATUS_LINKSTATUS_MASK 0x0004U /*!< The PHY link status mask. */
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#define PHY_BSTATUS_AUTONEGABLE_MASK 0x0008U /*!< The PHY auto-negotiation ability mask. */
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#define PHY_BSTATUS_SPEEDUPLX_MASK 0x001CU /*!< The PHY speed and duplex mask. */
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#define PHY_BSTATUS_AUTONEGCOMP_MASK 0x0020U /*!< The PHY auto-negotiation complete mask. */
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/*! @brief Defines the mask flag in PHY auto-negotiation advertise register(Address 0x04). */
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#define PHY_100BaseT4_ABILITY_MASK 0x200U /*!< The PHY have the T4 ability. */
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#define PHY_100BASETX_FULLDUPLEX_MASK 0x100U /*!< The PHY has the 100M full duplex ability.*/
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#define PHY_100BASETX_HALFDUPLEX_MASK 0x080U /*!< The PHY has the 100M full duplex ability.*/
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#define PHY_10BASETX_FULLDUPLEX_MASK 0x040U /*!< The PHY has the 10M full duplex ability.*/
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#define PHY_10BASETX_HALFDUPLEX_MASK 0x020U /*!< The PHY has the 10M full duplex ability.*/
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#define PHY_IEEE802_3_SELECTOR_MASK 0x001U /*!< The message type being sent by Auto-Nego.*/
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/*! @brief Defines the mask flag in the 1000BASE-T control register(Address 0x09). */
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#define PHY_1000BASET_FULLDUPLEX_MASK 0x200U /*!< The PHY has the 1000M full duplex ability.*/
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#define PHY_1000BASET_HALFDUPLEX_MASK 0x100U /*!< The PHY has the 1000M half duplex ability.*/
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/*! @brief Defines the PHY RTL8211F vendor defined registers. */
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#define PHY_SPECIFIC_STATUS_REG 0x1AU /*!< The PHY specific status register. */
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#define PHY_PAGE_SELECT_REG 0x1FU /*!< The PHY page select register. */
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/*! @brief Defines the PHY RTL8211F ID number. */
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#define PHY_CONTROL_ID1 0x001CU /*!< The PHY ID1 . */
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/*! @brief Defines the mask flag in specific status register. */
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#define PHY_SSTATUS_LINKSTATUS_MASK 0x04U /*!< The PHY link status mask. */
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#define PHY_SSTATUS_LINKSPEED_MASK 0x30U /*!< The PHY link speed mask. */
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#define PHY_SSTATUS_LINKDUPLEX_MASK 0x08U /*!< The PHY link duplex mask. */
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#define PHY_SSTATUS_LINKSPEED_SHIFT 4U /*!< The link speed shift */
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/*! @brief Defines the PHY RTL8211F extra page and the registers in specified page. */
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#define PHY_PAGE_RGMII_TXRX_DELAY_ADDR 0xD08U /*!< The register page including RGMII TX/RX delay setting. */
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#define PHY_RGMII_TX_DELAY_REG 0x11U /*!< The RGMII TXC delay register. */
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#define PHY_RGMII_RX_DELAY_REG 0x15U /*!< The RGMII RXC delay register. */
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#define PHY_RGMII_TX_DELAY_MASK 0x100U /*!< The RGMII TXC delay mask. */
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#define PHY_RGMII_RX_DELAY_MASK 0x8U /*!< The RGMII RXC delay mask. */
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/*! @brief MDIO MMD Devices .*/
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#define PHY_MDIO_MMD_PCS 3U
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#define PHY_MDIO_MMD_AN 7U
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/*! @brief MDIO MMD Physical Coding layer device registers .*/
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#define PHY_MDIO_PCS_EEE_CAP 0x14U /* EEE capability */
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/*! @brief MDIO MMD AutoNegotiation device registers .*/
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#define PHY_MDIO_AN_EEE_ADV 0x3CU /* EEE advertisement */
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/*! @brief MDIO MMD EEE mask flags. (common for adv and cap) */
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#define PHY_MDIO_EEE_100TX 0x2U
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#define PHY_MDIO_EEE_1000T 0x4U
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/*! @brief Defines the timeout macro. */
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#define PHY_READID_TIMEOUT_COUNT 1000U
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/* defined the Reset pin, PORT and PIN config by menuconfig */
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#define RESET_PIN GET_PIN(PHY_RESET_RTL8211F_PORT, PHY_RESET_RTL8211F_PIN)
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/*! @brief Defines the PHY MMD data access mode. */
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typedef enum _phy_mmd_access_mode
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{
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kPHY_MMDAccessNoPostIncrement = (1U << 14), /*!< ENET PHY MMD access data with no address post increment. */
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kPHY_MMDAccessRdWrPostIncrement =
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(2U << 14), /*!< ENET PHY MMD access data with Read/Write address post increment. */
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kPHY_MMDAccessWrPostIncrement = (3U << 14), /*!< ENET PHY MMD access data with Write address post increment. */
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} phy_mmd_access_mode_t;
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/*******************************************************************************
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* Prototypes
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******************************************************************************/
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/*******************************************************************************
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* Variables
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******************************************************************************/
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static struct rt_phy_device phy_rtl8211f;
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/*******************************************************************************
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* Code
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******************************************************************************/
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static inline rt_bool_t read_reg(rt_mdio_t *bus, rt_uint32_t addr, rt_uint32_t reg_id, rt_uint32_t *value)
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{
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if (4 != bus->ops->read(bus, addr, reg_id, value, 4))
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{
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return RT_FALSE;
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}
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return RT_TRUE;
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}
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static inline rt_bool_t write_reg(rt_mdio_t *bus, rt_uint32_t addr, rt_uint32_t reg_id, rt_uint32_t value)
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{
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if (4 != bus->ops->write(bus, addr, reg_id, &value, 4))
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{
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return RT_FALSE;
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}
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return RT_TRUE;
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}
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static inline status_t PHY_RTL8211F_MMD_WriteData(uint32_t data)
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{
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return phy_rtl8211f.ops->write(PHY_MMD_ACCESS_DATA_REG, data);
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}
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static status_t PHY_RTL8211F_MMD_SetDevice(uint8_t device,
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uint16_t addr,
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phy_mmd_access_mode_t mode)
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{
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status_t result = PHY_STATUS_OK;
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/* Set Function mode of address access(b00) and device address. */
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result = phy_rtl8211f.ops->write(PHY_MMD_ACCESS_CONTROL_REG, device);
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if (result != PHY_STATUS_OK)
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{
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return result;
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}
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/* Set register address. */
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result = phy_rtl8211f.ops->write(PHY_MMD_ACCESS_DATA_REG, addr);
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if (result != PHY_STATUS_OK)
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{
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return result;
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}
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/* Set Function mode of data access(b01~11) and device address. */
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result = phy_rtl8211f.ops->write(PHY_MMD_ACCESS_CONTROL_REG, (uint32_t)mode | (uint32_t)device);
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return result;
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}
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static status_t PHY_RTL8211F_MMD_Write(uint8_t device, uint16_t addr, uint32_t data)
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{
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status_t result = PHY_STATUS_OK;
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result = PHY_RTL8211F_MMD_SetDevice(device, addr, kPHY_MMDAccessNoPostIncrement);
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if (result == PHY_STATUS_OK)
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{
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result = PHY_RTL8211F_MMD_WriteData(data);
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}
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return result;
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}
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static rt_phy_status rt_phy_init(void *object, rt_uint32_t phy_addr, rt_uint32_t src_clock_hz)
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{
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rt_bool_t ret;
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rt_phy_status result;
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rt_uint32_t counter = PHY_READID_TIMEOUT_COUNT;
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rt_uint32_t regValue = 0U;
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// reset phy device by gpio
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rt_pin_mode(RESET_PIN, PIN_MODE_OUTPUT);
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rt_pin_write(RESET_PIN, PIN_LOW);
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rt_thread_mdelay(10);
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rt_pin_write(RESET_PIN, PIN_HIGH);
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rt_thread_mdelay(30);
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rt_mdio_t *mdio_bus = rt_hw_mdio_register(object, "phy_mdio");
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if (RT_NULL == mdio_bus)
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{
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return PHY_STATUS_FAIL;
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}
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phy_rtl8211f.bus = mdio_bus;
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phy_rtl8211f.addr = phy_addr;
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ret = mdio_bus->ops->init(mdio_bus, src_clock_hz);
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if (!ret)
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{
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return PHY_STATUS_FAIL;
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}
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/* Check PHY ID. */
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do
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{
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result = phy_rtl8211f.ops->read(PHY_ID1_REG, ®Value);
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if (result != PHY_STATUS_OK)
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{
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return result;
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}
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counter--;
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} while ((regValue != PHY_CONTROL_ID1) && (counter != 0U));
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if (counter == 0U)
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{
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return PHY_STATUS_FAIL;
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}
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/* Reset PHY. */
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result = phy_rtl8211f.ops->write(PHY_BASICCONTROL_REG, PHY_BCTL_RESET_MASK);
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if (result != PHY_STATUS_OK)
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{
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return result;
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}
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/* The RGMII specifies output TXC/RXC and TXD/RXD without any clock skew. Need to add skew on clock line
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to make sure the other side sample right data. This can also be done in PCB traces. */
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result = phy_rtl8211f.ops->write(PHY_PAGE_SELECT_REG, PHY_PAGE_RGMII_TXRX_DELAY_ADDR);
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if (PHY_STATUS_OK != result)
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{
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return result;
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}
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/* Set Tx Delay */
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result = phy_rtl8211f.ops->read(PHY_RGMII_TX_DELAY_REG, ®Value);
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if (PHY_STATUS_OK == result)
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{
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regValue |= PHY_RGMII_TX_DELAY_MASK;
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result = phy_rtl8211f.ops->write(PHY_RGMII_TX_DELAY_REG, regValue);
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if (result != PHY_STATUS_OK)
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{
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return result;
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}
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}
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else
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{
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return result;
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}
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/* Set Rx Delay */
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result = phy_rtl8211f.ops->read(PHY_RGMII_RX_DELAY_REG, ®Value);
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if (PHY_STATUS_OK == result)
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{
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regValue |= PHY_RGMII_RX_DELAY_MASK;
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result = phy_rtl8211f.ops->write(PHY_RGMII_RX_DELAY_REG, regValue);
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if (result != PHY_STATUS_OK)
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{
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return result;
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}
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}
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else
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{
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return result;
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}
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/* Restore to default page 0 */
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result = phy_rtl8211f.ops->write(PHY_PAGE_SELECT_REG, 0x0);
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if (result != PHY_STATUS_OK)
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{
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return result;
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}
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// disabled EEE
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result = PHY_RTL8211F_MMD_Write(PHY_MDIO_MMD_AN, PHY_MDIO_AN_EEE_ADV, 0);
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if (result != PHY_STATUS_OK)
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{
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return result;
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}
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/* Set the auto-negotiation. */
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result = phy_rtl8211f.ops->write(PHY_AUTONEG_ADVERTISE_REG,
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PHY_100BASETX_FULLDUPLEX_MASK | PHY_100BASETX_HALFDUPLEX_MASK | PHY_10BASETX_FULLDUPLEX_MASK |
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PHY_10BASETX_HALFDUPLEX_MASK | PHY_IEEE802_3_SELECTOR_MASK);
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if (result == PHY_STATUS_OK)
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{
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result = phy_rtl8211f.ops->write(PHY_1000BASET_CONTROL_REG, PHY_1000BASET_FULLDUPLEX_MASK);
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if (result == PHY_STATUS_OK)
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{
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result = phy_rtl8211f.ops->read(PHY_BASICCONTROL_REG, ®Value);
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if (result == PHY_STATUS_OK)
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{
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result = phy_rtl8211f.ops->write(PHY_BASICCONTROL_REG, (regValue | PHY_BCTL_AUTONEG_MASK | PHY_BCTL_RESTART_AUTONEG_MASK));
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}
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}
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}
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return result;
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}
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static rt_phy_status rt_phy_read(rt_uint32_t reg, rt_uint32_t *data)
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{
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rt_mdio_t *mdio_bus = phy_rtl8211f.bus;
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rt_uint32_t device_id = phy_rtl8211f.addr;
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if (read_reg(mdio_bus, device_id, reg, data))
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{
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return PHY_STATUS_OK;
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}
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return PHY_STATUS_FAIL;
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}
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static rt_phy_status rt_phy_write(rt_uint32_t reg, rt_uint32_t data)
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{
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rt_mdio_t *mdio_bus = phy_rtl8211f.bus;
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rt_uint32_t device_id = phy_rtl8211f.addr;
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if (write_reg(mdio_bus, device_id, reg, data))
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{
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return PHY_STATUS_OK;
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}
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return PHY_STATUS_FAIL;
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}
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static rt_phy_status rt_phy_loopback(rt_uint32_t mode, rt_uint32_t speed, rt_bool_t enable)
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{
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/* This PHY only supports local loopback. */
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// rt_assert(mode == PHY_LOCAL_LOOP);
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status_t result;
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uint32_t regValue;
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/* Set the loop mode. */
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if (enable)
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{
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if (speed == PHY_SPEED_1000M)
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{
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regValue = PHY_BCTL_SPEED1_MASK | PHY_BCTL_DUPLEX_MASK | PHY_BCTL_LOOP_MASK;
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}
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else if (speed == PHY_SPEED_100M)
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{
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regValue = PHY_BCTL_SPEED0_MASK | PHY_BCTL_DUPLEX_MASK | PHY_BCTL_LOOP_MASK;
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}
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else
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{
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regValue = PHY_BCTL_DUPLEX_MASK | PHY_BCTL_LOOP_MASK;
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}
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result = phy_rtl8211f.ops->write(PHY_BASICCONTROL_REG, regValue);
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}
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else
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{
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/* First read the current status in control register. */
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result = phy_rtl8211f.ops->read(PHY_BASICCONTROL_REG, ®Value);
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if (result == PHY_STATUS_OK)
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{
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regValue &= ~PHY_BCTL_LOOP_MASK;
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result = phy_rtl8211f.ops->write(PHY_BASICCONTROL_REG, (regValue | PHY_BCTL_RESTART_AUTONEG_MASK));
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}
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}
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return result;
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}
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static rt_phy_status get_link_status(rt_bool_t *status)
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{
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// assert(status);
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status_t result;
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uint32_t regValue;
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/* Read the basic status register. */
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result = phy_rtl8211f.ops->read(PHY_SPECIFIC_STATUS_REG, ®Value);
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if (result == PHY_STATUS_OK)
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{
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if ((PHY_SSTATUS_LINKSTATUS_MASK & regValue) != 0U)
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{
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/* Link up. */
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*status = true;
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}
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else
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{
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/* Link down. */
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*status = false;
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}
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}
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return result;
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}
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static rt_phy_status get_link_speed_duplex(rt_uint32_t *speed, rt_uint32_t *duplex)
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{
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// assert(!((speed == NULL) && (duplex == NULL)));
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status_t result;
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uint32_t regValue;
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/* Read the status register. */
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result = phy_rtl8211f.ops->read(PHY_SPECIFIC_STATUS_REG, ®Value);
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if (result == PHY_STATUS_OK)
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{
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if (speed != NULL)
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{
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switch ((regValue & PHY_SSTATUS_LINKSPEED_MASK) >> PHY_SSTATUS_LINKSPEED_SHIFT)
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{
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case (uint32_t)PHY_SPEED_10M:
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*speed = PHY_SPEED_10M;
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break;
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case (uint32_t)PHY_SPEED_100M:
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*speed = PHY_SPEED_100M;
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break;
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case (uint32_t)PHY_SPEED_1000M:
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*speed = PHY_SPEED_1000M;
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break;
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default:
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*speed = PHY_SPEED_10M;
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break;
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}
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}
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if (duplex != NULL)
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{
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if ((regValue & PHY_SSTATUS_LINKDUPLEX_MASK) != 0U)
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{
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*duplex = PHY_FULL_DUPLEX;
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}
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else
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{
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*duplex = PHY_HALF_DUPLEX;
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}
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}
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}
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return result;
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}
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static struct rt_phy_ops phy_ops =
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{
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.init = rt_phy_init,
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.read = rt_phy_read,
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.write = rt_phy_write,
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.loopback = rt_phy_loopback,
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.get_link_status = get_link_status,
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.get_link_speed_duplex = get_link_speed_duplex,
|
|
};
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|
|
|
static int rt_phy_rtl8211f_register(void)
|
|
{
|
|
phy_rtl8211f.ops = &phy_ops;
|
|
rt_hw_phy_register(&phy_rtl8211f, "rtl8211f");
|
|
return 1;
|
|
}
|
|
|
|
INIT_DEVICE_EXPORT(rt_phy_rtl8211f_register);
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|
#endif /* PHY_USING_RTL8211F */
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