xilinx_axienet_main.c 56.7 KB
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// SPDX-License-Identifier: GPL-2.0-only
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/*
 * Xilinx Axi Ethernet device driver
 *
 * Copyright (c) 2008 Nissin Systems Co., Ltd.,  Yoshio Kashiwagi
 * Copyright (c) 2005-2008 DLA Systems,  David H. Lynch Jr. <dhlii@dlasys.net>
 * Copyright (c) 2008-2009 Secret Lab Technologies Ltd.
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 * Copyright (c) 2010 - 2011 Michal Simek <monstr@monstr.eu>
 * Copyright (c) 2010 - 2011 PetaLogix
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 * Copyright (c) 2019 SED Systems, a division of Calian Ltd.
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 * Copyright (c) 2010 - 2012 Xilinx, Inc. All rights reserved.
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 *
 * This is a driver for the Xilinx Axi Ethernet which is used in the Virtex6
 * and Spartan6.
 *
 * TODO:
 *  - Add Axi Fifo support.
 *  - Factor out Axi DMA code into separate driver.
 *  - Test and fix basic multicast filtering.
 *  - Add support for extended multicast filtering.
 *  - Test basic VLAN support.
 *  - Add support for extended VLAN support.
 */

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#include <linux/clk.h>
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#include <linux/delay.h>
#include <linux/etherdevice.h>
#include <linux/module.h>
#include <linux/netdevice.h>
#include <linux/of_mdio.h>
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#include <linux/of_net.h>
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#include <linux/of_platform.h>
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#include <linux/of_irq.h>
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#include <linux/of_address.h>
#include <linux/skbuff.h>
#include <linux/spinlock.h>
#include <linux/phy.h>
#include <linux/mii.h>
#include <linux/ethtool.h>

#include "xilinx_axienet.h"

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/* Descriptors defines for Tx and Rx DMA */
#define TX_BD_NUM_DEFAULT		64
#define RX_BD_NUM_DEFAULT		1024
#define TX_BD_NUM_MAX			4096
#define RX_BD_NUM_MAX			4096
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/* Must be shorter than length of ethtool_drvinfo.driver field to fit */
#define DRIVER_NAME		"xaxienet"
#define DRIVER_DESCRIPTION	"Xilinx Axi Ethernet driver"
#define DRIVER_VERSION		"1.00a"

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#define AXIENET_REGS_N		40
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/* Match table for of_platform binding */
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static const struct of_device_id axienet_of_match[] = {
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	{ .compatible = "xlnx,axi-ethernet-1.00.a", },
	{ .compatible = "xlnx,axi-ethernet-1.01.a", },
	{ .compatible = "xlnx,axi-ethernet-2.01.a", },
	{},
};

MODULE_DEVICE_TABLE(of, axienet_of_match);

/* Option table for setting up Axi Ethernet hardware options */
static struct axienet_option axienet_options[] = {
	/* Turn on jumbo packet support for both Rx and Tx */
	{
		.opt = XAE_OPTION_JUMBO,
		.reg = XAE_TC_OFFSET,
		.m_or = XAE_TC_JUM_MASK,
	}, {
		.opt = XAE_OPTION_JUMBO,
		.reg = XAE_RCW1_OFFSET,
		.m_or = XAE_RCW1_JUM_MASK,
	}, { /* Turn on VLAN packet support for both Rx and Tx */
		.opt = XAE_OPTION_VLAN,
		.reg = XAE_TC_OFFSET,
		.m_or = XAE_TC_VLAN_MASK,
	}, {
		.opt = XAE_OPTION_VLAN,
		.reg = XAE_RCW1_OFFSET,
		.m_or = XAE_RCW1_VLAN_MASK,
	}, { /* Turn on FCS stripping on receive packets */
		.opt = XAE_OPTION_FCS_STRIP,
		.reg = XAE_RCW1_OFFSET,
		.m_or = XAE_RCW1_FCS_MASK,
	}, { /* Turn on FCS insertion on transmit packets */
		.opt = XAE_OPTION_FCS_INSERT,
		.reg = XAE_TC_OFFSET,
		.m_or = XAE_TC_FCS_MASK,
	}, { /* Turn off length/type field checking on receive packets */
		.opt = XAE_OPTION_LENTYPE_ERR,
		.reg = XAE_RCW1_OFFSET,
		.m_or = XAE_RCW1_LT_DIS_MASK,
	}, { /* Turn on Rx flow control */
		.opt = XAE_OPTION_FLOW_CONTROL,
		.reg = XAE_FCC_OFFSET,
		.m_or = XAE_FCC_FCRX_MASK,
	}, { /* Turn on Tx flow control */
		.opt = XAE_OPTION_FLOW_CONTROL,
		.reg = XAE_FCC_OFFSET,
		.m_or = XAE_FCC_FCTX_MASK,
	}, { /* Turn on promiscuous frame filtering */
		.opt = XAE_OPTION_PROMISC,
		.reg = XAE_FMI_OFFSET,
		.m_or = XAE_FMI_PM_MASK,
	}, { /* Enable transmitter */
		.opt = XAE_OPTION_TXEN,
		.reg = XAE_TC_OFFSET,
		.m_or = XAE_TC_TX_MASK,
	}, { /* Enable receiver */
		.opt = XAE_OPTION_RXEN,
		.reg = XAE_RCW1_OFFSET,
		.m_or = XAE_RCW1_RX_MASK,
	},
	{}
};

/**
 * axienet_dma_in32 - Memory mapped Axi DMA register read
 * @lp:		Pointer to axienet local structure
 * @reg:	Address offset from the base address of the Axi DMA core
 *
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 * Return: The contents of the Axi DMA register
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 *
 * This function returns the contents of the corresponding Axi DMA register.
 */
static inline u32 axienet_dma_in32(struct axienet_local *lp, off_t reg)
{
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	return ioread32(lp->dma_regs + reg);
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}

/**
 * axienet_dma_out32 - Memory mapped Axi DMA register write.
 * @lp:		Pointer to axienet local structure
 * @reg:	Address offset from the base address of the Axi DMA core
 * @value:	Value to be written into the Axi DMA register
 *
 * This function writes the desired value into the corresponding Axi DMA
 * register.
 */
static inline void axienet_dma_out32(struct axienet_local *lp,
				     off_t reg, u32 value)
{
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	iowrite32(value, lp->dma_regs + reg);
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}

/**
 * axienet_dma_bd_release - Release buffer descriptor rings
 * @ndev:	Pointer to the net_device structure
 *
 * This function is used to release the descriptors allocated in
 * axienet_dma_bd_init. axienet_dma_bd_release is called when Axi Ethernet
 * driver stop api is called.
 */
static void axienet_dma_bd_release(struct net_device *ndev)
{
	int i;
	struct axienet_local *lp = netdev_priv(ndev);

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	for (i = 0; i < lp->rx_bd_num; i++) {
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		dma_unmap_single(ndev->dev.parent, lp->rx_bd_v[i].phys,
				 lp->max_frm_size, DMA_FROM_DEVICE);
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		dev_kfree_skb(lp->rx_bd_v[i].skb);
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	}

	if (lp->rx_bd_v) {
		dma_free_coherent(ndev->dev.parent,
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				  sizeof(*lp->rx_bd_v) * lp->rx_bd_num,
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				  lp->rx_bd_v,
				  lp->rx_bd_p);
	}
	if (lp->tx_bd_v) {
		dma_free_coherent(ndev->dev.parent,
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				  sizeof(*lp->tx_bd_v) * lp->tx_bd_num,
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				  lp->tx_bd_v,
				  lp->tx_bd_p);
	}
}

/**
 * axienet_dma_bd_init - Setup buffer descriptor rings for Axi DMA
 * @ndev:	Pointer to the net_device structure
 *
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 * Return: 0, on success -ENOMEM, on failure
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 *
 * This function is called to initialize the Rx and Tx DMA descriptor
 * rings. This initializes the descriptors with required default values
 * and is called when Axi Ethernet driver reset is called.
 */
static int axienet_dma_bd_init(struct net_device *ndev)
{
	u32 cr;
	int i;
	struct sk_buff *skb;
	struct axienet_local *lp = netdev_priv(ndev);

	/* Reset the indexes which are used for accessing the BDs */
	lp->tx_bd_ci = 0;
	lp->tx_bd_tail = 0;
	lp->rx_bd_ci = 0;

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	/* Allocate the Tx and Rx buffer descriptors. */
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	lp->tx_bd_v = dma_alloc_coherent(ndev->dev.parent,
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					 sizeof(*lp->tx_bd_v) * lp->tx_bd_num,
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					 &lp->tx_bd_p, GFP_KERNEL);
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	if (!lp->tx_bd_v)
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		goto out;

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	lp->rx_bd_v = dma_alloc_coherent(ndev->dev.parent,
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					 sizeof(*lp->rx_bd_v) * lp->rx_bd_num,
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					 &lp->rx_bd_p, GFP_KERNEL);
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	if (!lp->rx_bd_v)
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		goto out;

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	for (i = 0; i < lp->tx_bd_num; i++) {
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		lp->tx_bd_v[i].next = lp->tx_bd_p +
				      sizeof(*lp->tx_bd_v) *
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				      ((i + 1) % lp->tx_bd_num);
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	}

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	for (i = 0; i < lp->rx_bd_num; i++) {
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		lp->rx_bd_v[i].next = lp->rx_bd_p +
				      sizeof(*lp->rx_bd_v) *
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				      ((i + 1) % lp->rx_bd_num);
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		skb = netdev_alloc_skb_ip_align(ndev, lp->max_frm_size);
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		if (!skb)
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			goto out;

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		lp->rx_bd_v[i].skb = skb;
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		lp->rx_bd_v[i].phys = dma_map_single(ndev->dev.parent,
						     skb->data,
						     lp->max_frm_size,
						     DMA_FROM_DEVICE);
		lp->rx_bd_v[i].cntrl = lp->max_frm_size;
	}

	/* Start updating the Rx channel control register */
	cr = axienet_dma_in32(lp, XAXIDMA_RX_CR_OFFSET);
	/* Update the interrupt coalesce count */
	cr = ((cr & ~XAXIDMA_COALESCE_MASK) |
	      ((lp->coalesce_count_rx) << XAXIDMA_COALESCE_SHIFT));
	/* Update the delay timer count */
	cr = ((cr & ~XAXIDMA_DELAY_MASK) |
	      (XAXIDMA_DFT_RX_WAITBOUND << XAXIDMA_DELAY_SHIFT));
	/* Enable coalesce, delay timer and error interrupts */
	cr |= XAXIDMA_IRQ_ALL_MASK;
	/* Write to the Rx channel control register */
	axienet_dma_out32(lp, XAXIDMA_RX_CR_OFFSET, cr);

	/* Start updating the Tx channel control register */
	cr = axienet_dma_in32(lp, XAXIDMA_TX_CR_OFFSET);
	/* Update the interrupt coalesce count */
	cr = (((cr & ~XAXIDMA_COALESCE_MASK)) |
	      ((lp->coalesce_count_tx) << XAXIDMA_COALESCE_SHIFT));
	/* Update the delay timer count */
	cr = (((cr & ~XAXIDMA_DELAY_MASK)) |
	      (XAXIDMA_DFT_TX_WAITBOUND << XAXIDMA_DELAY_SHIFT));
	/* Enable coalesce, delay timer and error interrupts */
	cr |= XAXIDMA_IRQ_ALL_MASK;
	/* Write to the Tx channel control register */
	axienet_dma_out32(lp, XAXIDMA_TX_CR_OFFSET, cr);

	/* Populate the tail pointer and bring the Rx Axi DMA engine out of
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	 * halted state. This will make the Rx side ready for reception.
	 */
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	axienet_dma_out32(lp, XAXIDMA_RX_CDESC_OFFSET, lp->rx_bd_p);
	cr = axienet_dma_in32(lp, XAXIDMA_RX_CR_OFFSET);
	axienet_dma_out32(lp, XAXIDMA_RX_CR_OFFSET,
			  cr | XAXIDMA_CR_RUNSTOP_MASK);
	axienet_dma_out32(lp, XAXIDMA_RX_TDESC_OFFSET, lp->rx_bd_p +
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			  (sizeof(*lp->rx_bd_v) * (lp->rx_bd_num - 1)));
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	/* Write to the RS (Run-stop) bit in the Tx channel control register.
	 * Tx channel is now ready to run. But only after we write to the
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	 * tail pointer register that the Tx channel will start transmitting.
	 */
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	axienet_dma_out32(lp, XAXIDMA_TX_CDESC_OFFSET, lp->tx_bd_p);
	cr = axienet_dma_in32(lp, XAXIDMA_TX_CR_OFFSET);
	axienet_dma_out32(lp, XAXIDMA_TX_CR_OFFSET,
			  cr | XAXIDMA_CR_RUNSTOP_MASK);

	return 0;
out:
	axienet_dma_bd_release(ndev);
	return -ENOMEM;
}

/**
 * axienet_set_mac_address - Write the MAC address
 * @ndev:	Pointer to the net_device structure
 * @address:	6 byte Address to be written as MAC address
 *
 * This function is called to initialize the MAC address of the Axi Ethernet
 * core. It writes to the UAW0 and UAW1 registers of the core.
 */
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static void axienet_set_mac_address(struct net_device *ndev,
				    const void *address)
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{
	struct axienet_local *lp = netdev_priv(ndev);

	if (address)
		memcpy(ndev->dev_addr, address, ETH_ALEN);
	if (!is_valid_ether_addr(ndev->dev_addr))
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		eth_hw_addr_random(ndev);
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	/* Set up unicast MAC address filter set its mac address */
	axienet_iow(lp, XAE_UAW0_OFFSET,
		    (ndev->dev_addr[0]) |
		    (ndev->dev_addr[1] << 8) |
		    (ndev->dev_addr[2] << 16) |
		    (ndev->dev_addr[3] << 24));
	axienet_iow(lp, XAE_UAW1_OFFSET,
		    (((axienet_ior(lp, XAE_UAW1_OFFSET)) &
		      ~XAE_UAW1_UNICASTADDR_MASK) |
		     (ndev->dev_addr[4] |
		     (ndev->dev_addr[5] << 8))));
}

/**
 * netdev_set_mac_address - Write the MAC address (from outside the driver)
 * @ndev:	Pointer to the net_device structure
 * @p:		6 byte Address to be written as MAC address
 *
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 * Return: 0 for all conditions. Presently, there is no failure case.
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 *
 * This function is called to initialize the MAC address of the Axi Ethernet
 * core. It calls the core specific axienet_set_mac_address. This is the
 * function that goes into net_device_ops structure entry ndo_set_mac_address.
 */
static int netdev_set_mac_address(struct net_device *ndev, void *p)
{
	struct sockaddr *addr = p;
	axienet_set_mac_address(ndev, addr->sa_data);
	return 0;
}

/**
 * axienet_set_multicast_list - Prepare the multicast table
 * @ndev:	Pointer to the net_device structure
 *
 * This function is called to initialize the multicast table during
 * initialization. The Axi Ethernet basic multicast support has a four-entry
 * multicast table which is initialized here. Additionally this function
 * goes into the net_device_ops structure entry ndo_set_multicast_list. This
 * means whenever the multicast table entries need to be updated this
 * function gets called.
 */
static void axienet_set_multicast_list(struct net_device *ndev)
{
	int i;
	u32 reg, af0reg, af1reg;
	struct axienet_local *lp = netdev_priv(ndev);

	if (ndev->flags & (IFF_ALLMULTI | IFF_PROMISC) ||
	    netdev_mc_count(ndev) > XAE_MULTICAST_CAM_TABLE_NUM) {
		/* We must make the kernel realize we had to move into
		 * promiscuous mode. If it was a promiscuous mode request
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		 * the flag is already set. If not we set it.
		 */
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		ndev->flags |= IFF_PROMISC;
		reg = axienet_ior(lp, XAE_FMI_OFFSET);
		reg |= XAE_FMI_PM_MASK;
		axienet_iow(lp, XAE_FMI_OFFSET, reg);
		dev_info(&ndev->dev, "Promiscuous mode enabled.\n");
	} else if (!netdev_mc_empty(ndev)) {
		struct netdev_hw_addr *ha;

		i = 0;
		netdev_for_each_mc_addr(ha, ndev) {
			if (i >= XAE_MULTICAST_CAM_TABLE_NUM)
				break;

			af0reg = (ha->addr[0]);
			af0reg |= (ha->addr[1] << 8);
			af0reg |= (ha->addr[2] << 16);
			af0reg |= (ha->addr[3] << 24);

			af1reg = (ha->addr[4]);
			af1reg |= (ha->addr[5] << 8);

			reg = axienet_ior(lp, XAE_FMI_OFFSET) & 0xFFFFFF00;
			reg |= i;

			axienet_iow(lp, XAE_FMI_OFFSET, reg);
			axienet_iow(lp, XAE_AF0_OFFSET, af0reg);
			axienet_iow(lp, XAE_AF1_OFFSET, af1reg);
			i++;
		}
	} else {
		reg = axienet_ior(lp, XAE_FMI_OFFSET);
		reg &= ~XAE_FMI_PM_MASK;

		axienet_iow(lp, XAE_FMI_OFFSET, reg);

		for (i = 0; i < XAE_MULTICAST_CAM_TABLE_NUM; i++) {
			reg = axienet_ior(lp, XAE_FMI_OFFSET) & 0xFFFFFF00;
			reg |= i;

			axienet_iow(lp, XAE_FMI_OFFSET, reg);
			axienet_iow(lp, XAE_AF0_OFFSET, 0);
			axienet_iow(lp, XAE_AF1_OFFSET, 0);
		}

		dev_info(&ndev->dev, "Promiscuous mode disabled.\n");
	}
}

/**
 * axienet_setoptions - Set an Axi Ethernet option
 * @ndev:	Pointer to the net_device structure
 * @options:	Option to be enabled/disabled
 *
 * The Axi Ethernet core has multiple features which can be selectively turned
 * on or off. The typical options could be jumbo frame option, basic VLAN
 * option, promiscuous mode option etc. This function is used to set or clear
 * these options in the Axi Ethernet hardware. This is done through
 * axienet_option structure .
 */
static void axienet_setoptions(struct net_device *ndev, u32 options)
{
	int reg;
	struct axienet_local *lp = netdev_priv(ndev);
	struct axienet_option *tp = &axienet_options[0];

	while (tp->opt) {
		reg = ((axienet_ior(lp, tp->reg)) & ~(tp->m_or));
		if (options & tp->opt)
			reg |= tp->m_or;
		axienet_iow(lp, tp->reg, reg);
		tp++;
	}

	lp->options |= options;
}

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static void __axienet_device_reset(struct axienet_local *lp)
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{
	u32 timeout;
	/* Reset Axi DMA. This would reset Axi Ethernet core as well. The reset
	 * process of Axi DMA takes a while to complete as all pending
	 * commands/transfers will be flushed or completed during this
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	 * reset process.
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	 * Note that even though both TX and RX have their own reset register,
	 * they both reset the entire DMA core, so only one needs to be used.
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	 */
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	axienet_dma_out32(lp, XAXIDMA_TX_CR_OFFSET, XAXIDMA_CR_RESET_MASK);
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	timeout = DELAY_OF_ONE_MILLISEC;
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	while (axienet_dma_in32(lp, XAXIDMA_TX_CR_OFFSET) &
				XAXIDMA_CR_RESET_MASK) {
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		udelay(1);
		if (--timeout == 0) {
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			netdev_err(lp->ndev, "%s: DMA reset timeout!\n",
				   __func__);
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			break;
		}
	}
}

/**
 * axienet_device_reset - Reset and initialize the Axi Ethernet hardware.
 * @ndev:	Pointer to the net_device structure
 *
 * This function is called to reset and initialize the Axi Ethernet core. This
 * is typically called during initialization. It does a reset of the Axi DMA
 * Rx/Tx channels and initializes the Axi DMA BDs. Since Axi DMA reset lines
 * areconnected to Axi Ethernet reset lines, this in turn resets the Axi
 * Ethernet core. No separate hardware reset is done for the Axi Ethernet
 * core.
 */
static void axienet_device_reset(struct net_device *ndev)
{
	u32 axienet_status;
	struct axienet_local *lp = netdev_priv(ndev);

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	__axienet_device_reset(lp);
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	lp->max_frm_size = XAE_MAX_VLAN_FRAME_SIZE;
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	lp->options |= XAE_OPTION_VLAN;
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	lp->options &= (~XAE_OPTION_JUMBO);

	if ((ndev->mtu > XAE_MTU) &&
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		(ndev->mtu <= XAE_JUMBO_MTU)) {
		lp->max_frm_size = ndev->mtu + VLAN_ETH_HLEN +
					XAE_TRL_SIZE;

		if (lp->max_frm_size <= lp->rxmem)
			lp->options |= XAE_OPTION_JUMBO;
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	}

	if (axienet_dma_bd_init(ndev)) {
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		netdev_err(ndev, "%s: descriptor allocation failed\n",
			   __func__);
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	}

	axienet_status = axienet_ior(lp, XAE_RCW1_OFFSET);
	axienet_status &= ~XAE_RCW1_RX_MASK;
	axienet_iow(lp, XAE_RCW1_OFFSET, axienet_status);

	axienet_status = axienet_ior(lp, XAE_IP_OFFSET);
	if (axienet_status & XAE_INT_RXRJECT_MASK)
		axienet_iow(lp, XAE_IS_OFFSET, XAE_INT_RXRJECT_MASK);
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	axienet_iow(lp, XAE_IE_OFFSET, lp->eth_irq > 0 ?
		    XAE_INT_RECV_ERROR_MASK : 0);
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	axienet_iow(lp, XAE_FCC_OFFSET, XAE_FCC_FCRX_MASK);

	/* Sync default options with HW but leave receiver and
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	 * transmitter disabled.
	 */
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	axienet_setoptions(ndev, lp->options &
			   ~(XAE_OPTION_TXEN | XAE_OPTION_RXEN));
	axienet_set_mac_address(ndev, NULL);
	axienet_set_multicast_list(ndev);
	axienet_setoptions(ndev, lp->options);

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	netif_trans_update(ndev);
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}

/**
 * axienet_start_xmit_done - Invoked once a transmit is completed by the
 * Axi DMA Tx channel.
 * @ndev:	Pointer to the net_device structure
 *
 * This function is invoked from the Axi DMA Tx isr to notify the completion
 * of transmit operation. It clears fields in the corresponding Tx BDs and
 * unmaps the corresponding buffer so that CPU can regain ownership of the
 * buffer. It finally invokes "netif_wake_queue" to restart transmission if
 * required.
 */
static void axienet_start_xmit_done(struct net_device *ndev)
{
	u32 size = 0;
	u32 packets = 0;
	struct axienet_local *lp = netdev_priv(ndev);
	struct axidma_bd *cur_p;
	unsigned int status = 0;

	cur_p = &lp->tx_bd_v[lp->tx_bd_ci];
	status = cur_p->status;
	while (status & XAXIDMA_BD_STS_COMPLETE_MASK) {
		dma_unmap_single(ndev->dev.parent, cur_p->phys,
				(cur_p->cntrl & XAXIDMA_BD_CTRL_LENGTH_MASK),
				DMA_TO_DEVICE);
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		if (cur_p->skb)
			dev_consume_skb_irq(cur_p->skb);
550 551 552 553 554 555
		/*cur_p->phys = 0;*/
		cur_p->app0 = 0;
		cur_p->app1 = 0;
		cur_p->app2 = 0;
		cur_p->app4 = 0;
		cur_p->status = 0;
556
		cur_p->skb = NULL;
557 558 559 560

		size += status & XAXIDMA_BD_STS_ACTUAL_LEN_MASK;
		packets++;

561 562
		if (++lp->tx_bd_ci >= lp->tx_bd_num)
			lp->tx_bd_ci = 0;
563 564 565 566 567 568
		cur_p = &lp->tx_bd_v[lp->tx_bd_ci];
		status = cur_p->status;
	}

	ndev->stats.tx_packets += packets;
	ndev->stats.tx_bytes += size;
569 570 571 572

	/* Matches barrier in axienet_start_xmit */
	smp_mb();

573 574 575 576 577 578 579 580
	netif_wake_queue(ndev);
}

/**
 * axienet_check_tx_bd_space - Checks if a BD/group of BDs are currently busy
 * @lp:		Pointer to the axienet_local structure
 * @num_frag:	The number of BDs to check for
 *
581
 * Return: 0, on success
582 583 584 585 586 587 588 589 590 591 592
 *	    NETDEV_TX_BUSY, if any of the descriptors are not free
 *
 * This function is invoked before BDs are allocated and transmission starts.
 * This function returns 0 if a BD or group of BDs can be allocated for
 * transmission. If the BD or any of the BDs are not free the function
 * returns a busy status. This is invoked from axienet_start_xmit.
 */
static inline int axienet_check_tx_bd_space(struct axienet_local *lp,
					    int num_frag)
{
	struct axidma_bd *cur_p;
593
	cur_p = &lp->tx_bd_v[(lp->tx_bd_tail + num_frag) % lp->tx_bd_num];
594 595 596 597 598 599 600 601 602 603
	if (cur_p->status & XAXIDMA_BD_STS_ALL_MASK)
		return NETDEV_TX_BUSY;
	return 0;
}

/**
 * axienet_start_xmit - Starts the transmission.
 * @skb:	sk_buff pointer that contains data to be Txed.
 * @ndev:	Pointer to net_device structure.
 *
604
 * Return: NETDEV_TX_OK, on success
605 606 607 608 609 610 611
 *	    NETDEV_TX_BUSY, if any of the descriptors are not free
 *
 * This function is invoked from upper layers to initiate transmission. The
 * function uses the next available free BDs and populates their fields to
 * start the transmission. Additionally if checksum offloading is supported,
 * it populates AXI Stream Control fields with appropriate values.
 */
612 613
static netdev_tx_t
axienet_start_xmit(struct sk_buff *skb, struct net_device *ndev)
614 615 616 617 618 619 620 621 622 623 624 625 626 627
{
	u32 ii;
	u32 num_frag;
	u32 csum_start_off;
	u32 csum_index_off;
	skb_frag_t *frag;
	dma_addr_t tail_p;
	struct axienet_local *lp = netdev_priv(ndev);
	struct axidma_bd *cur_p;

	num_frag = skb_shinfo(skb)->nr_frags;
	cur_p = &lp->tx_bd_v[lp->tx_bd_tail];

	if (axienet_check_tx_bd_space(lp, num_frag)) {
628 629 630 631 632 633 634 635 636 637 638 639 640
		if (netif_queue_stopped(ndev))
			return NETDEV_TX_BUSY;

		netif_stop_queue(ndev);

		/* Matches barrier in axienet_start_xmit_done */
		smp_mb();

		/* Space might have just been freed - check again */
		if (axienet_check_tx_bd_space(lp, num_frag))
			return NETDEV_TX_BUSY;

		netif_wake_queue(ndev);
641 642 643 644 645 646 647 648 649 650 651 652 653 654 655 656 657 658 659 660 661 662
	}

	if (skb->ip_summed == CHECKSUM_PARTIAL) {
		if (lp->features & XAE_FEATURE_FULL_TX_CSUM) {
			/* Tx Full Checksum Offload Enabled */
			cur_p->app0 |= 2;
		} else if (lp->features & XAE_FEATURE_PARTIAL_RX_CSUM) {
			csum_start_off = skb_transport_offset(skb);
			csum_index_off = csum_start_off + skb->csum_offset;
			/* Tx Partial Checksum Offload Enabled */
			cur_p->app0 |= 1;
			cur_p->app1 = (csum_start_off << 16) | csum_index_off;
		}
	} else if (skb->ip_summed == CHECKSUM_UNNECESSARY) {
		cur_p->app0 |= 2; /* Tx Full Checksum Offload Enabled */
	}

	cur_p->cntrl = skb_headlen(skb) | XAXIDMA_BD_CTRL_TXSOF_MASK;
	cur_p->phys = dma_map_single(ndev->dev.parent, skb->data,
				     skb_headlen(skb), DMA_TO_DEVICE);

	for (ii = 0; ii < num_frag; ii++) {
663 664
		if (++lp->tx_bd_tail >= lp->tx_bd_num)
			lp->tx_bd_tail = 0;
665 666 667 668 669 670 671 672 673 674
		cur_p = &lp->tx_bd_v[lp->tx_bd_tail];
		frag = &skb_shinfo(skb)->frags[ii];
		cur_p->phys = dma_map_single(ndev->dev.parent,
					     skb_frag_address(frag),
					     skb_frag_size(frag),
					     DMA_TO_DEVICE);
		cur_p->cntrl = skb_frag_size(frag);
	}

	cur_p->cntrl |= XAXIDMA_BD_CTRL_TXEOF_MASK;
675
	cur_p->skb = skb;
676 677 678 679

	tail_p = lp->tx_bd_p + sizeof(*lp->tx_bd_v) * lp->tx_bd_tail;
	/* Start the transfer */
	axienet_dma_out32(lp, XAXIDMA_TX_TDESC_OFFSET, tail_p);
680 681
	if (++lp->tx_bd_tail >= lp->tx_bd_num)
		lp->tx_bd_tail = 0;
682 683 684 685 686 687 688 689 690 691 692 693 694 695 696 697 698 699 700

	return NETDEV_TX_OK;
}

/**
 * axienet_recv - Is called from Axi DMA Rx Isr to complete the received
 *		  BD processing.
 * @ndev:	Pointer to net_device structure.
 *
 * This function is invoked from the Axi DMA Rx isr to process the Rx BDs. It
 * does minimal processing and invokes "netif_rx" to complete further
 * processing.
 */
static void axienet_recv(struct net_device *ndev)
{
	u32 length;
	u32 csumstatus;
	u32 size = 0;
	u32 packets = 0;
701
	dma_addr_t tail_p = 0;
702 703 704 705 706 707 708
	struct axienet_local *lp = netdev_priv(ndev);
	struct sk_buff *skb, *new_skb;
	struct axidma_bd *cur_p;

	cur_p = &lp->rx_bd_v[lp->rx_bd_ci];

	while ((cur_p->status & XAXIDMA_BD_STS_COMPLETE_MASK)) {
709
		tail_p = lp->rx_bd_p + sizeof(*lp->rx_bd_v) * lp->rx_bd_ci;
710 711 712 713 714

		dma_unmap_single(ndev->dev.parent, cur_p->phys,
				 lp->max_frm_size,
				 DMA_FROM_DEVICE);

715 716 717 718
		skb = cur_p->skb;
		cur_p->skb = NULL;
		length = cur_p->app4 & 0x0000FFFF;

719 720 721 722 723 724 725 726 727 728 729 730 731 732
		skb_put(skb, length);
		skb->protocol = eth_type_trans(skb, ndev);
		/*skb_checksum_none_assert(skb);*/
		skb->ip_summed = CHECKSUM_NONE;

		/* if we're doing Rx csum offload, set it up */
		if (lp->features & XAE_FEATURE_FULL_RX_CSUM) {
			csumstatus = (cur_p->app2 &
				      XAE_FULL_CSUM_STATUS_MASK) >> 3;
			if ((csumstatus == XAE_IP_TCP_CSUM_VALIDATED) ||
			    (csumstatus == XAE_IP_UDP_CSUM_VALIDATED)) {
				skb->ip_summed = CHECKSUM_UNNECESSARY;
			}
		} else if ((lp->features & XAE_FEATURE_PARTIAL_RX_CSUM) != 0 &&
733
			   skb->protocol == htons(ETH_P_IP) &&
734 735 736 737 738 739 740 741 742 743 744
			   skb->len > 64) {
			skb->csum = be32_to_cpu(cur_p->app3 & 0xFFFF);
			skb->ip_summed = CHECKSUM_COMPLETE;
		}

		netif_rx(skb);

		size += length;
		packets++;

		new_skb = netdev_alloc_skb_ip_align(ndev, lp->max_frm_size);
745
		if (!new_skb)
746
			return;
747

748 749 750 751 752
		cur_p->phys = dma_map_single(ndev->dev.parent, new_skb->data,
					     lp->max_frm_size,
					     DMA_FROM_DEVICE);
		cur_p->cntrl = lp->max_frm_size;
		cur_p->status = 0;
753
		cur_p->skb = new_skb;
754

755 756
		if (++lp->rx_bd_ci >= lp->rx_bd_num)
			lp->rx_bd_ci = 0;
757 758 759 760 761 762
		cur_p = &lp->rx_bd_v[lp->rx_bd_ci];
	}

	ndev->stats.rx_packets += packets;
	ndev->stats.rx_bytes += size;

763 764
	if (tail_p)
		axienet_dma_out32(lp, XAXIDMA_RX_TDESC_OFFSET, tail_p);
765 766 767 768 769 770 771
}

/**
 * axienet_tx_irq - Tx Done Isr.
 * @irq:	irq number
 * @_ndev:	net_device pointer
 *
772
 * Return: IRQ_HANDLED if device generated a TX interrupt, IRQ_NONE otherwise.
773 774 775 776 777 778 779 780 781 782 783 784 785
 *
 * This is the Axi DMA Tx done Isr. It invokes "axienet_start_xmit_done"
 * to complete the BD processing.
 */
static irqreturn_t axienet_tx_irq(int irq, void *_ndev)
{
	u32 cr;
	unsigned int status;
	struct net_device *ndev = _ndev;
	struct axienet_local *lp = netdev_priv(ndev);

	status = axienet_dma_in32(lp, XAXIDMA_TX_SR_OFFSET);
	if (status & (XAXIDMA_IRQ_IOC_MASK | XAXIDMA_IRQ_DELAY_MASK)) {
786
		axienet_dma_out32(lp, XAXIDMA_TX_SR_OFFSET, status);
787 788 789 790
		axienet_start_xmit_done(lp->ndev);
		goto out;
	}
	if (!(status & XAXIDMA_IRQ_ALL_MASK))
791
		return IRQ_NONE;
792 793 794 795 796 797 798 799 800 801 802 803 804 805 806 807 808 809
	if (status & XAXIDMA_IRQ_ERROR_MASK) {
		dev_err(&ndev->dev, "DMA Tx error 0x%x\n", status);
		dev_err(&ndev->dev, "Current BD is at: 0x%x\n",
			(lp->tx_bd_v[lp->tx_bd_ci]).phys);

		cr = axienet_dma_in32(lp, XAXIDMA_TX_CR_OFFSET);
		/* Disable coalesce, delay timer and error interrupts */
		cr &= (~XAXIDMA_IRQ_ALL_MASK);
		/* Write to the Tx channel control register */
		axienet_dma_out32(lp, XAXIDMA_TX_CR_OFFSET, cr);

		cr = axienet_dma_in32(lp, XAXIDMA_RX_CR_OFFSET);
		/* Disable coalesce, delay timer and error interrupts */
		cr &= (~XAXIDMA_IRQ_ALL_MASK);
		/* Write to the Rx channel control register */
		axienet_dma_out32(lp, XAXIDMA_RX_CR_OFFSET, cr);

		tasklet_schedule(&lp->dma_err_tasklet);
810
		axienet_dma_out32(lp, XAXIDMA_TX_SR_OFFSET, status);
811 812 813 814 815 816 817 818 819 820
	}
out:
	return IRQ_HANDLED;
}

/**
 * axienet_rx_irq - Rx Isr.
 * @irq:	irq number
 * @_ndev:	net_device pointer
 *
821
 * Return: IRQ_HANDLED if device generated a RX interrupt, IRQ_NONE otherwise.
822 823 824 825 826 827 828 829 830 831 832 833 834
 *
 * This is the Axi DMA Rx Isr. It invokes "axienet_recv" to complete the BD
 * processing.
 */
static irqreturn_t axienet_rx_irq(int irq, void *_ndev)
{
	u32 cr;
	unsigned int status;
	struct net_device *ndev = _ndev;
	struct axienet_local *lp = netdev_priv(ndev);

	status = axienet_dma_in32(lp, XAXIDMA_RX_SR_OFFSET);
	if (status & (XAXIDMA_IRQ_IOC_MASK | XAXIDMA_IRQ_DELAY_MASK)) {
835
		axienet_dma_out32(lp, XAXIDMA_RX_SR_OFFSET, status);
836 837 838 839
		axienet_recv(lp->ndev);
		goto out;
	}
	if (!(status & XAXIDMA_IRQ_ALL_MASK))
840
		return IRQ_NONE;
841 842 843 844 845 846 847 848 849 850 851 852 853 854 855 856 857 858
	if (status & XAXIDMA_IRQ_ERROR_MASK) {
		dev_err(&ndev->dev, "DMA Rx error 0x%x\n", status);
		dev_err(&ndev->dev, "Current BD is at: 0x%x\n",
			(lp->rx_bd_v[lp->rx_bd_ci]).phys);

		cr = axienet_dma_in32(lp, XAXIDMA_TX_CR_OFFSET);
		/* Disable coalesce, delay timer and error interrupts */
		cr &= (~XAXIDMA_IRQ_ALL_MASK);
		/* Finally write to the Tx channel control register */
		axienet_dma_out32(lp, XAXIDMA_TX_CR_OFFSET, cr);

		cr = axienet_dma_in32(lp, XAXIDMA_RX_CR_OFFSET);
		/* Disable coalesce, delay timer and error interrupts */
		cr &= (~XAXIDMA_IRQ_ALL_MASK);
		/* write to the Rx channel control register */
		axienet_dma_out32(lp, XAXIDMA_RX_CR_OFFSET, cr);

		tasklet_schedule(&lp->dma_err_tasklet);
859
		axienet_dma_out32(lp, XAXIDMA_RX_SR_OFFSET, status);
860 861 862 863 864
	}
out:
	return IRQ_HANDLED;
}

865 866 867 868 869 870 871 872 873 874 875 876 877 878 879 880 881 882 883 884 885 886 887 888 889 890 891 892 893
/**
 * axienet_eth_irq - Ethernet core Isr.
 * @irq:	irq number
 * @_ndev:	net_device pointer
 *
 * Return: IRQ_HANDLED if device generated a core interrupt, IRQ_NONE otherwise.
 *
 * Handle miscellaneous conditions indicated by Ethernet core IRQ.
 */
static irqreturn_t axienet_eth_irq(int irq, void *_ndev)
{
	struct net_device *ndev = _ndev;
	struct axienet_local *lp = netdev_priv(ndev);
	unsigned int pending;

	pending = axienet_ior(lp, XAE_IP_OFFSET);
	if (!pending)
		return IRQ_NONE;

	if (pending & XAE_INT_RXFIFOOVR_MASK)
		ndev->stats.rx_missed_errors++;

	if (pending & XAE_INT_RXRJECT_MASK)
		ndev->stats.rx_frame_errors++;

	axienet_iow(lp, XAE_IS_OFFSET, pending);
	return IRQ_HANDLED;
}

J
Jeff Mahoney 已提交
894 895
static void axienet_dma_err_handler(unsigned long data);

896 897 898 899
/**
 * axienet_open - Driver open routine.
 * @ndev:	Pointer to net_device structure
 *
900
 * Return: 0, on success.
901 902
 *	    non-zero error value on failure
 *
903 904
 * This is the driver open routine. It calls phylink_start to start the
 * PHY device.
905 906 907 908 909 910
 * It also allocates interrupt service routines, enables the interrupt lines
 * and ISR handling. Axi Ethernet core is reset through Axi DMA core. Buffer
 * descriptors are initialized.
 */
static int axienet_open(struct net_device *ndev)
{
911
	int ret;
912 913 914 915 916 917
	struct axienet_local *lp = netdev_priv(ndev);

	dev_dbg(&ndev->dev, "axienet_open()\n");

	/* Disable the MDIO interface till Axi Ethernet Reset is completed.
	 * When we do an Axi Ethernet reset, it resets the complete core
918 919 920
	 * including the MDIO. MDIO must be disabled before resetting
	 * and re-enabled afterwards.
	 * Hold MDIO bus lock to avoid MDIO accesses during the reset.
M
Michal Simek 已提交
921
	 */
922 923
	mutex_lock(&lp->mii_bus->mdio_lock);
	axienet_mdio_disable(lp);
924
	axienet_device_reset(ndev);
925 926
	ret = axienet_mdio_enable(lp);
	mutex_unlock(&lp->mii_bus->mdio_lock);
927 928 929
	if (ret < 0)
		return ret;

930 931 932 933
	ret = phylink_of_phy_connect(lp->phylink, lp->dev->of_node, 0);
	if (ret) {
		dev_err(lp->dev, "phylink_of_phy_connect() failed: %d\n", ret);
		return ret;
934 935
	}

936 937
	phylink_start(lp->phylink);

938 939 940 941
	/* Enable tasklets for Axi DMA error handling */
	tasklet_init(&lp->dma_err_tasklet, axienet_dma_err_handler,
		     (unsigned long) lp);

942
	/* Enable interrupts for Axi DMA Tx */
943 944
	ret = request_irq(lp->tx_irq, axienet_tx_irq, IRQF_SHARED,
			  ndev->name, ndev);
945 946 947
	if (ret)
		goto err_tx_irq;
	/* Enable interrupts for Axi DMA Rx */
948 949
	ret = request_irq(lp->rx_irq, axienet_rx_irq, IRQF_SHARED,
			  ndev->name, ndev);
950 951
	if (ret)
		goto err_rx_irq;
952 953 954 955 956 957 958
	/* Enable interrupts for Axi Ethernet core (if defined) */
	if (lp->eth_irq > 0) {
		ret = request_irq(lp->eth_irq, axienet_eth_irq, IRQF_SHARED,
				  ndev->name, ndev);
		if (ret)
			goto err_eth_irq;
	}
959

960 961
	return 0;

962 963
err_eth_irq:
	free_irq(lp->rx_irq, ndev);
964 965 966
err_rx_irq:
	free_irq(lp->tx_irq, ndev);
err_tx_irq:
967 968
	phylink_stop(lp->phylink);
	phylink_disconnect_phy(lp->phylink);
969
	tasklet_kill(&lp->dma_err_tasklet);
970 971 972 973 974 975 976 977
	dev_err(lp->dev, "request_irq() failed\n");
	return ret;
}

/**
 * axienet_stop - Driver stop routine.
 * @ndev:	Pointer to net_device structure
 *
978
 * Return: 0, on success.
979
 *
980
 * This is the driver stop routine. It calls phylink_disconnect to stop the PHY
981 982 983 984 985
 * device. It also removes the interrupt handlers and disables the interrupts.
 * The Axi DMA Tx/Rx BDs are released.
 */
static int axienet_stop(struct net_device *ndev)
{
986 987
	u32 cr, sr;
	int count;
988 989 990 991
	struct axienet_local *lp = netdev_priv(ndev);

	dev_dbg(&ndev->dev, "axienet_close()\n");

992 993 994
	phylink_stop(lp->phylink);
	phylink_disconnect_phy(lp->phylink);

995 996 997
	axienet_setoptions(ndev, lp->options &
			   ~(XAE_OPTION_TXEN | XAE_OPTION_RXEN));

998 999 1000 1001 1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012 1013 1014 1015 1016 1017 1018 1019 1020 1021 1022 1023 1024 1025 1026 1027
	cr = axienet_dma_in32(lp, XAXIDMA_RX_CR_OFFSET);
	cr &= ~(XAXIDMA_CR_RUNSTOP_MASK | XAXIDMA_IRQ_ALL_MASK);
	axienet_dma_out32(lp, XAXIDMA_RX_CR_OFFSET, cr);

	cr = axienet_dma_in32(lp, XAXIDMA_TX_CR_OFFSET);
	cr &= ~(XAXIDMA_CR_RUNSTOP_MASK | XAXIDMA_IRQ_ALL_MASK);
	axienet_dma_out32(lp, XAXIDMA_TX_CR_OFFSET, cr);

	axienet_iow(lp, XAE_IE_OFFSET, 0);

	/* Give DMAs a chance to halt gracefully */
	sr = axienet_dma_in32(lp, XAXIDMA_RX_SR_OFFSET);
	for (count = 0; !(sr & XAXIDMA_SR_HALT_MASK) && count < 5; ++count) {
		msleep(20);
		sr = axienet_dma_in32(lp, XAXIDMA_RX_SR_OFFSET);
	}

	sr = axienet_dma_in32(lp, XAXIDMA_TX_SR_OFFSET);
	for (count = 0; !(sr & XAXIDMA_SR_HALT_MASK) && count < 5; ++count) {
		msleep(20);
		sr = axienet_dma_in32(lp, XAXIDMA_TX_SR_OFFSET);
	}

	/* Do a reset to ensure DMA is really stopped */
	mutex_lock(&lp->mii_bus->mdio_lock);
	axienet_mdio_disable(lp);
	__axienet_device_reset(lp);
	axienet_mdio_enable(lp);
	mutex_unlock(&lp->mii_bus->mdio_lock);

1028
	tasklet_kill(&lp->dma_err_tasklet);
1029

1030 1031
	if (lp->eth_irq > 0)
		free_irq(lp->eth_irq, ndev);
1032 1033 1034 1035 1036 1037 1038 1039 1040 1041 1042 1043
	free_irq(lp->tx_irq, ndev);
	free_irq(lp->rx_irq, ndev);

	axienet_dma_bd_release(ndev);
	return 0;
}

/**
 * axienet_change_mtu - Driver change mtu routine.
 * @ndev:	Pointer to net_device structure
 * @new_mtu:	New mtu value to be applied
 *
1044
 * Return: Always returns 0 (success).
1045 1046 1047 1048 1049 1050 1051 1052 1053 1054 1055
 *
 * This is the change mtu driver routine. It checks if the Axi Ethernet
 * hardware supports jumbo frames before changing the mtu. This can be
 * called only when the device is not up.
 */
static int axienet_change_mtu(struct net_device *ndev, int new_mtu)
{
	struct axienet_local *lp = netdev_priv(ndev);

	if (netif_running(ndev))
		return -EBUSY;
1056 1057 1058 1059 1060 1061

	if ((new_mtu + VLAN_ETH_HLEN +
		XAE_TRL_SIZE) > lp->rxmem)
		return -EINVAL;

	ndev->mtu = new_mtu;
1062 1063 1064 1065 1066 1067 1068 1069 1070 1071 1072 1073 1074 1075 1076 1077 1078 1079 1080 1081 1082 1083 1084 1085 1086 1087 1088 1089 1090 1091 1092 1093 1094 1095 1096 1097 1098 1099 1100 1101 1102 1103 1104 1105 1106 1107 1108 1109

	return 0;
}

#ifdef CONFIG_NET_POLL_CONTROLLER
/**
 * axienet_poll_controller - Axi Ethernet poll mechanism.
 * @ndev:	Pointer to net_device structure
 *
 * This implements Rx/Tx ISR poll mechanisms. The interrupts are disabled prior
 * to polling the ISRs and are enabled back after the polling is done.
 */
static void axienet_poll_controller(struct net_device *ndev)
{
	struct axienet_local *lp = netdev_priv(ndev);
	disable_irq(lp->tx_irq);
	disable_irq(lp->rx_irq);
	axienet_rx_irq(lp->tx_irq, ndev);
	axienet_tx_irq(lp->rx_irq, ndev);
	enable_irq(lp->tx_irq);
	enable_irq(lp->rx_irq);
}
#endif

static const struct net_device_ops axienet_netdev_ops = {
	.ndo_open = axienet_open,
	.ndo_stop = axienet_stop,
	.ndo_start_xmit = axienet_start_xmit,
	.ndo_change_mtu	= axienet_change_mtu,
	.ndo_set_mac_address = netdev_set_mac_address,
	.ndo_validate_addr = eth_validate_addr,
	.ndo_set_rx_mode = axienet_set_multicast_list,
#ifdef CONFIG_NET_POLL_CONTROLLER
	.ndo_poll_controller = axienet_poll_controller,
#endif
};

/**
 * axienet_ethtools_get_drvinfo - Get various Axi Ethernet driver information.
 * @ndev:	Pointer to net_device structure
 * @ed:		Pointer to ethtool_drvinfo structure
 *
 * This implements ethtool command for getting the driver information.
 * Issue "ethtool -i ethX" under linux prompt to execute this function.
 */
static void axienet_ethtools_get_drvinfo(struct net_device *ndev,
					 struct ethtool_drvinfo *ed)
{
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	strlcpy(ed->driver, DRIVER_NAME, sizeof(ed->driver));
	strlcpy(ed->version, DRIVER_VERSION, sizeof(ed->version));
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}

/**
 * axienet_ethtools_get_regs_len - Get the total regs length present in the
 *				   AxiEthernet core.
 * @ndev:	Pointer to net_device structure
 *
 * This implements ethtool command for getting the total register length
 * information.
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 *
 * Return: the total regs length
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 */
static int axienet_ethtools_get_regs_len(struct net_device *ndev)
{
	return sizeof(u32) * AXIENET_REGS_N;
}

/**
 * axienet_ethtools_get_regs - Dump the contents of all registers present
 *			       in AxiEthernet core.
 * @ndev:	Pointer to net_device structure
 * @regs:	Pointer to ethtool_regs structure
 * @ret:	Void pointer used to return the contents of the registers.
 *
 * This implements ethtool command for getting the Axi Ethernet register dump.
 * Issue "ethtool -d ethX" to execute this function.
 */
static void axienet_ethtools_get_regs(struct net_device *ndev,
				      struct ethtool_regs *regs, void *ret)
{
	u32 *data = (u32 *) ret;
	size_t len = sizeof(u32) * AXIENET_REGS_N;
	struct axienet_local *lp = netdev_priv(ndev);

	regs->version = 0;
	regs->len = len;

	memset(data, 0, len);
	data[0] = axienet_ior(lp, XAE_RAF_OFFSET);
	data[1] = axienet_ior(lp, XAE_TPF_OFFSET);
	data[2] = axienet_ior(lp, XAE_IFGP_OFFSET);
	data[3] = axienet_ior(lp, XAE_IS_OFFSET);
	data[4] = axienet_ior(lp, XAE_IP_OFFSET);
	data[5] = axienet_ior(lp, XAE_IE_OFFSET);
	data[6] = axienet_ior(lp, XAE_TTAG_OFFSET);
	data[7] = axienet_ior(lp, XAE_RTAG_OFFSET);
	data[8] = axienet_ior(lp, XAE_UAWL_OFFSET);
	data[9] = axienet_ior(lp, XAE_UAWU_OFFSET);
	data[10] = axienet_ior(lp, XAE_TPID0_OFFSET);
	data[11] = axienet_ior(lp, XAE_TPID1_OFFSET);
	data[12] = axienet_ior(lp, XAE_PPST_OFFSET);
	data[13] = axienet_ior(lp, XAE_RCW0_OFFSET);
	data[14] = axienet_ior(lp, XAE_RCW1_OFFSET);
	data[15] = axienet_ior(lp, XAE_TC_OFFSET);
	data[16] = axienet_ior(lp, XAE_FCC_OFFSET);
	data[17] = axienet_ior(lp, XAE_EMMC_OFFSET);
	data[18] = axienet_ior(lp, XAE_PHYC_OFFSET);
	data[19] = axienet_ior(lp, XAE_MDIO_MC_OFFSET);
	data[20] = axienet_ior(lp, XAE_MDIO_MCR_OFFSET);
	data[21] = axienet_ior(lp, XAE_MDIO_MWD_OFFSET);
	data[22] = axienet_ior(lp, XAE_MDIO_MRD_OFFSET);
	data[23] = axienet_ior(lp, XAE_MDIO_MIS_OFFSET);
	data[24] = axienet_ior(lp, XAE_MDIO_MIP_OFFSET);
	data[25] = axienet_ior(lp, XAE_MDIO_MIE_OFFSET);
	data[26] = axienet_ior(lp, XAE_MDIO_MIC_OFFSET);
	data[27] = axienet_ior(lp, XAE_UAW0_OFFSET);
	data[28] = axienet_ior(lp, XAE_UAW1_OFFSET);
	data[29] = axienet_ior(lp, XAE_FMI_OFFSET);
	data[30] = axienet_ior(lp, XAE_AF0_OFFSET);
	data[31] = axienet_ior(lp, XAE_AF1_OFFSET);
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	data[32] = axienet_dma_in32(lp, XAXIDMA_TX_CR_OFFSET);
	data[33] = axienet_dma_in32(lp, XAXIDMA_TX_SR_OFFSET);
	data[34] = axienet_dma_in32(lp, XAXIDMA_TX_CDESC_OFFSET);
	data[35] = axienet_dma_in32(lp, XAXIDMA_TX_TDESC_OFFSET);
	data[36] = axienet_dma_in32(lp, XAXIDMA_RX_CR_OFFSET);
	data[37] = axienet_dma_in32(lp, XAXIDMA_RX_SR_OFFSET);
	data[38] = axienet_dma_in32(lp, XAXIDMA_RX_CDESC_OFFSET);
	data[39] = axienet_dma_in32(lp, XAXIDMA_RX_TDESC_OFFSET);
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}

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static void axienet_ethtools_get_ringparam(struct net_device *ndev,
					   struct ethtool_ringparam *ering)
{
	struct axienet_local *lp = netdev_priv(ndev);

	ering->rx_max_pending = RX_BD_NUM_MAX;
	ering->rx_mini_max_pending = 0;
	ering->rx_jumbo_max_pending = 0;
	ering->tx_max_pending = TX_BD_NUM_MAX;
	ering->rx_pending = lp->rx_bd_num;
	ering->rx_mini_pending = 0;
	ering->rx_jumbo_pending = 0;
	ering->tx_pending = lp->tx_bd_num;
}

static int axienet_ethtools_set_ringparam(struct net_device *ndev,
					  struct ethtool_ringparam *ering)
{
	struct axienet_local *lp = netdev_priv(ndev);

	if (ering->rx_pending > RX_BD_NUM_MAX ||
	    ering->rx_mini_pending ||
	    ering->rx_jumbo_pending ||
	    ering->rx_pending > TX_BD_NUM_MAX)
		return -EINVAL;

	if (netif_running(ndev))
		return -EBUSY;

	lp->rx_bd_num = ering->rx_pending;
	lp->tx_bd_num = ering->tx_pending;
	return 0;
}

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/**
 * axienet_ethtools_get_pauseparam - Get the pause parameter setting for
 *				     Tx and Rx paths.
 * @ndev:	Pointer to net_device structure
 * @epauseparm:	Pointer to ethtool_pauseparam structure.
 *
 * This implements ethtool command for getting axi ethernet pause frame
 * setting. Issue "ethtool -a ethX" to execute this function.
 */
static void
axienet_ethtools_get_pauseparam(struct net_device *ndev,
				struct ethtool_pauseparam *epauseparm)
{
	struct axienet_local *lp = netdev_priv(ndev);
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	phylink_ethtool_get_pauseparam(lp->phylink, epauseparm);
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}

/**
 * axienet_ethtools_set_pauseparam - Set device pause parameter(flow control)
 *				     settings.
 * @ndev:	Pointer to net_device structure
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 * @epauseparm:Pointer to ethtool_pauseparam structure
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 *
 * This implements ethtool command for enabling flow control on Rx and Tx
 * paths. Issue "ethtool -A ethX tx on|off" under linux prompt to execute this
 * function.
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 *
 * Return: 0 on success, -EFAULT if device is running
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 */
static int
axienet_ethtools_set_pauseparam(struct net_device *ndev,
				struct ethtool_pauseparam *epauseparm)
{
	struct axienet_local *lp = netdev_priv(ndev);

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	return phylink_ethtool_set_pauseparam(lp->phylink, epauseparm);
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}

/**
 * axienet_ethtools_get_coalesce - Get DMA interrupt coalescing count.
 * @ndev:	Pointer to net_device structure
 * @ecoalesce:	Pointer to ethtool_coalesce structure
 *
 * This implements ethtool command for getting the DMA interrupt coalescing
 * count on Tx and Rx paths. Issue "ethtool -c ethX" under linux prompt to
 * execute this function.
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 *
 * Return: 0 always
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 */
static int axienet_ethtools_get_coalesce(struct net_device *ndev,
					 struct ethtool_coalesce *ecoalesce)
{
	u32 regval = 0;
	struct axienet_local *lp = netdev_priv(ndev);
	regval = axienet_dma_in32(lp, XAXIDMA_RX_CR_OFFSET);
	ecoalesce->rx_max_coalesced_frames = (regval & XAXIDMA_COALESCE_MASK)
					     >> XAXIDMA_COALESCE_SHIFT;
	regval = axienet_dma_in32(lp, XAXIDMA_TX_CR_OFFSET);
	ecoalesce->tx_max_coalesced_frames = (regval & XAXIDMA_COALESCE_MASK)
					     >> XAXIDMA_COALESCE_SHIFT;
	return 0;
}

/**
 * axienet_ethtools_set_coalesce - Set DMA interrupt coalescing count.
 * @ndev:	Pointer to net_device structure
 * @ecoalesce:	Pointer to ethtool_coalesce structure
 *
 * This implements ethtool command for setting the DMA interrupt coalescing
 * count on Tx and Rx paths. Issue "ethtool -C ethX rx-frames 5" under linux
 * prompt to execute this function.
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 *
 * Return: 0, on success, Non-zero error value on failure.
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 */
static int axienet_ethtools_set_coalesce(struct net_device *ndev,
					 struct ethtool_coalesce *ecoalesce)
{
	struct axienet_local *lp = netdev_priv(ndev);

	if (netif_running(ndev)) {
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		netdev_err(ndev,
			   "Please stop netif before applying configuration\n");
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		return -EFAULT;
	}

	if ((ecoalesce->rx_coalesce_usecs) ||
	    (ecoalesce->rx_coalesce_usecs_irq) ||
	    (ecoalesce->rx_max_coalesced_frames_irq) ||
	    (ecoalesce->tx_coalesce_usecs) ||
	    (ecoalesce->tx_coalesce_usecs_irq) ||
	    (ecoalesce->tx_max_coalesced_frames_irq) ||
	    (ecoalesce->stats_block_coalesce_usecs) ||
	    (ecoalesce->use_adaptive_rx_coalesce) ||
	    (ecoalesce->use_adaptive_tx_coalesce) ||
	    (ecoalesce->pkt_rate_low) ||
	    (ecoalesce->rx_coalesce_usecs_low) ||
	    (ecoalesce->rx_max_coalesced_frames_low) ||
	    (ecoalesce->tx_coalesce_usecs_low) ||
	    (ecoalesce->tx_max_coalesced_frames_low) ||
	    (ecoalesce->pkt_rate_high) ||
	    (ecoalesce->rx_coalesce_usecs_high) ||
	    (ecoalesce->rx_max_coalesced_frames_high) ||
	    (ecoalesce->tx_coalesce_usecs_high) ||
	    (ecoalesce->tx_max_coalesced_frames_high) ||
	    (ecoalesce->rate_sample_interval))
		return -EOPNOTSUPP;
	if (ecoalesce->rx_max_coalesced_frames)
		lp->coalesce_count_rx = ecoalesce->rx_max_coalesced_frames;
	if (ecoalesce->tx_max_coalesced_frames)
		lp->coalesce_count_tx = ecoalesce->tx_max_coalesced_frames;

	return 0;
}

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static int
axienet_ethtools_get_link_ksettings(struct net_device *ndev,
				    struct ethtool_link_ksettings *cmd)
{
	struct axienet_local *lp = netdev_priv(ndev);

	return phylink_ethtool_ksettings_get(lp->phylink, cmd);
}

static int
axienet_ethtools_set_link_ksettings(struct net_device *ndev,
				    const struct ethtool_link_ksettings *cmd)
{
	struct axienet_local *lp = netdev_priv(ndev);

	return phylink_ethtool_ksettings_set(lp->phylink, cmd);
}

1359
static const struct ethtool_ops axienet_ethtool_ops = {
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	.get_drvinfo    = axienet_ethtools_get_drvinfo,
	.get_regs_len   = axienet_ethtools_get_regs_len,
	.get_regs       = axienet_ethtools_get_regs,
	.get_link       = ethtool_op_get_link,
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	.get_ringparam	= axienet_ethtools_get_ringparam,
	.set_ringparam	= axienet_ethtools_set_ringparam,
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	.get_pauseparam = axienet_ethtools_get_pauseparam,
	.set_pauseparam = axienet_ethtools_set_pauseparam,
	.get_coalesce   = axienet_ethtools_get_coalesce,
	.set_coalesce   = axienet_ethtools_set_coalesce,
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	.get_link_ksettings = axienet_ethtools_get_link_ksettings,
	.set_link_ksettings = axienet_ethtools_set_link_ksettings,
};

static void axienet_validate(struct phylink_config *config,
			     unsigned long *supported,
			     struct phylink_link_state *state)
{
	struct net_device *ndev = to_net_dev(config->dev);
	struct axienet_local *lp = netdev_priv(ndev);
	__ETHTOOL_DECLARE_LINK_MODE_MASK(mask) = { 0, };

	/* Only support the mode we are configured for */
	if (state->interface != PHY_INTERFACE_MODE_NA &&
	    state->interface != lp->phy_mode) {
		netdev_warn(ndev, "Cannot use PHY mode %s, supported: %s\n",
			    phy_modes(state->interface),
			    phy_modes(lp->phy_mode));
		bitmap_zero(supported, __ETHTOOL_LINK_MODE_MASK_NBITS);
		return;
	}

	phylink_set(mask, Autoneg);
	phylink_set_port_modes(mask);

	phylink_set(mask, Asym_Pause);
	phylink_set(mask, Pause);
	phylink_set(mask, 1000baseX_Full);
	phylink_set(mask, 10baseT_Full);
	phylink_set(mask, 100baseT_Full);
	phylink_set(mask, 1000baseT_Full);

	bitmap_and(supported, supported, mask,
		   __ETHTOOL_LINK_MODE_MASK_NBITS);
	bitmap_and(state->advertising, state->advertising, mask,
		   __ETHTOOL_LINK_MODE_MASK_NBITS);
}

static int axienet_mac_link_state(struct phylink_config *config,
				  struct phylink_link_state *state)
{
	struct net_device *ndev = to_net_dev(config->dev);
	struct axienet_local *lp = netdev_priv(ndev);
	u32 emmc_reg, fcc_reg;

	state->interface = lp->phy_mode;

	emmc_reg = axienet_ior(lp, XAE_EMMC_OFFSET);
	if (emmc_reg & XAE_EMMC_LINKSPD_1000)
		state->speed = SPEED_1000;
	else if (emmc_reg & XAE_EMMC_LINKSPD_100)
		state->speed = SPEED_100;
	else
		state->speed = SPEED_10;

	state->pause = 0;
	fcc_reg = axienet_ior(lp, XAE_FCC_OFFSET);
	if (fcc_reg & XAE_FCC_FCTX_MASK)
		state->pause |= MLO_PAUSE_TX;
	if (fcc_reg & XAE_FCC_FCRX_MASK)
		state->pause |= MLO_PAUSE_RX;

	state->an_complete = 0;
	state->duplex = 1;

	return 1;
}

static void axienet_mac_an_restart(struct phylink_config *config)
{
	/* Unsupported, do nothing */
}

static void axienet_mac_config(struct phylink_config *config, unsigned int mode,
			       const struct phylink_link_state *state)
{
	struct net_device *ndev = to_net_dev(config->dev);
	struct axienet_local *lp = netdev_priv(ndev);
	u32 emmc_reg, fcc_reg;

	emmc_reg = axienet_ior(lp, XAE_EMMC_OFFSET);
	emmc_reg &= ~XAE_EMMC_LINKSPEED_MASK;

	switch (state->speed) {
	case SPEED_1000:
		emmc_reg |= XAE_EMMC_LINKSPD_1000;
		break;
	case SPEED_100:
		emmc_reg |= XAE_EMMC_LINKSPD_100;
		break;
	case SPEED_10:
		emmc_reg |= XAE_EMMC_LINKSPD_10;
		break;
	default:
		dev_err(&ndev->dev,
			"Speed other than 10, 100 or 1Gbps is not supported\n");
		break;
	}

	axienet_iow(lp, XAE_EMMC_OFFSET, emmc_reg);

	fcc_reg = axienet_ior(lp, XAE_FCC_OFFSET);
	if (state->pause & MLO_PAUSE_TX)
		fcc_reg |= XAE_FCC_FCTX_MASK;
	else
		fcc_reg &= ~XAE_FCC_FCTX_MASK;
	if (state->pause & MLO_PAUSE_RX)
		fcc_reg |= XAE_FCC_FCRX_MASK;
	else
		fcc_reg &= ~XAE_FCC_FCRX_MASK;
	axienet_iow(lp, XAE_FCC_OFFSET, fcc_reg);
}

static void axienet_mac_link_down(struct phylink_config *config,
				  unsigned int mode,
				  phy_interface_t interface)
{
	/* nothing meaningful to do */
}

static void axienet_mac_link_up(struct phylink_config *config,
				unsigned int mode,
				phy_interface_t interface,
				struct phy_device *phy)
{
	/* nothing meaningful to do */
}

static const struct phylink_mac_ops axienet_phylink_ops = {
	.validate = axienet_validate,
	.mac_link_state = axienet_mac_link_state,
	.mac_an_restart = axienet_mac_an_restart,
	.mac_config = axienet_mac_config,
	.mac_link_down = axienet_mac_link_down,
	.mac_link_up = axienet_mac_link_up,
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};

/**
 * axienet_dma_err_handler - Tasklet handler for Axi DMA Error
 * @data:	Data passed
 *
 * Resets the Axi DMA and Axi Ethernet devices, and reconfigures the
 * Tx/Rx BDs.
 */
static void axienet_dma_err_handler(unsigned long data)
{
	u32 axienet_status;
	u32 cr, i;
	struct axienet_local *lp = (struct axienet_local *) data;
	struct net_device *ndev = lp->ndev;
	struct axidma_bd *cur_p;

	axienet_setoptions(ndev, lp->options &
			   ~(XAE_OPTION_TXEN | XAE_OPTION_RXEN));
	/* Disable the MDIO interface till Axi Ethernet Reset is completed.
	 * When we do an Axi Ethernet reset, it resets the complete core
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	 * including the MDIO. MDIO must be disabled before resetting
	 * and re-enabled afterwards.
	 * Hold MDIO bus lock to avoid MDIO accesses during the reset.
M
Michal Simek 已提交
1529
	 */
1530 1531
	mutex_lock(&lp->mii_bus->mdio_lock);
	axienet_mdio_disable(lp);
1532
	__axienet_device_reset(lp);
1533 1534
	axienet_mdio_enable(lp);
	mutex_unlock(&lp->mii_bus->mdio_lock);
1535

1536
	for (i = 0; i < lp->tx_bd_num; i++) {
1537 1538 1539 1540 1541 1542
		cur_p = &lp->tx_bd_v[i];
		if (cur_p->phys)
			dma_unmap_single(ndev->dev.parent, cur_p->phys,
					 (cur_p->cntrl &
					  XAXIDMA_BD_CTRL_LENGTH_MASK),
					 DMA_TO_DEVICE);
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		if (cur_p->skb)
			dev_kfree_skb_irq(cur_p->skb);
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		cur_p->phys = 0;
		cur_p->cntrl = 0;
		cur_p->status = 0;
		cur_p->app0 = 0;
		cur_p->app1 = 0;
		cur_p->app2 = 0;
		cur_p->app3 = 0;
		cur_p->app4 = 0;
1553
		cur_p->skb = NULL;
1554 1555
	}

1556
	for (i = 0; i < lp->rx_bd_num; i++) {
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		cur_p = &lp->rx_bd_v[i];
		cur_p->status = 0;
		cur_p->app0 = 0;
		cur_p->app1 = 0;
		cur_p->app2 = 0;
		cur_p->app3 = 0;
		cur_p->app4 = 0;
	}

	lp->tx_bd_ci = 0;
	lp->tx_bd_tail = 0;
	lp->rx_bd_ci = 0;

	/* Start updating the Rx channel control register */
	cr = axienet_dma_in32(lp, XAXIDMA_RX_CR_OFFSET);
	/* Update the interrupt coalesce count */
	cr = ((cr & ~XAXIDMA_COALESCE_MASK) |
	      (XAXIDMA_DFT_RX_THRESHOLD << XAXIDMA_COALESCE_SHIFT));
	/* Update the delay timer count */
	cr = ((cr & ~XAXIDMA_DELAY_MASK) |
	      (XAXIDMA_DFT_RX_WAITBOUND << XAXIDMA_DELAY_SHIFT));
	/* Enable coalesce, delay timer and error interrupts */
	cr |= XAXIDMA_IRQ_ALL_MASK;
	/* Finally write to the Rx channel control register */
	axienet_dma_out32(lp, XAXIDMA_RX_CR_OFFSET, cr);

	/* Start updating the Tx channel control register */
	cr = axienet_dma_in32(lp, XAXIDMA_TX_CR_OFFSET);
	/* Update the interrupt coalesce count */
	cr = (((cr & ~XAXIDMA_COALESCE_MASK)) |
	      (XAXIDMA_DFT_TX_THRESHOLD << XAXIDMA_COALESCE_SHIFT));
	/* Update the delay timer count */
	cr = (((cr & ~XAXIDMA_DELAY_MASK)) |
	      (XAXIDMA_DFT_TX_WAITBOUND << XAXIDMA_DELAY_SHIFT));
	/* Enable coalesce, delay timer and error interrupts */
	cr |= XAXIDMA_IRQ_ALL_MASK;
	/* Finally write to the Tx channel control register */
	axienet_dma_out32(lp, XAXIDMA_TX_CR_OFFSET, cr);

	/* Populate the tail pointer and bring the Rx Axi DMA engine out of
M
Michal Simek 已提交
1597 1598
	 * halted state. This will make the Rx side ready for reception.
	 */
1599 1600 1601 1602 1603
	axienet_dma_out32(lp, XAXIDMA_RX_CDESC_OFFSET, lp->rx_bd_p);
	cr = axienet_dma_in32(lp, XAXIDMA_RX_CR_OFFSET);
	axienet_dma_out32(lp, XAXIDMA_RX_CR_OFFSET,
			  cr | XAXIDMA_CR_RUNSTOP_MASK);
	axienet_dma_out32(lp, XAXIDMA_RX_TDESC_OFFSET, lp->rx_bd_p +
1604
			  (sizeof(*lp->rx_bd_v) * (lp->rx_bd_num - 1)));
1605 1606 1607

	/* Write to the RS (Run-stop) bit in the Tx channel control register.
	 * Tx channel is now ready to run. But only after we write to the
M
Michal Simek 已提交
1608 1609
	 * tail pointer register that the Tx channel will start transmitting
	 */
1610 1611 1612 1613 1614 1615 1616 1617 1618 1619 1620 1621
	axienet_dma_out32(lp, XAXIDMA_TX_CDESC_OFFSET, lp->tx_bd_p);
	cr = axienet_dma_in32(lp, XAXIDMA_TX_CR_OFFSET);
	axienet_dma_out32(lp, XAXIDMA_TX_CR_OFFSET,
			  cr | XAXIDMA_CR_RUNSTOP_MASK);

	axienet_status = axienet_ior(lp, XAE_RCW1_OFFSET);
	axienet_status &= ~XAE_RCW1_RX_MASK;
	axienet_iow(lp, XAE_RCW1_OFFSET, axienet_status);

	axienet_status = axienet_ior(lp, XAE_IP_OFFSET);
	if (axienet_status & XAE_INT_RXRJECT_MASK)
		axienet_iow(lp, XAE_IS_OFFSET, XAE_INT_RXRJECT_MASK);
1622 1623
	axienet_iow(lp, XAE_IE_OFFSET, lp->eth_irq > 0 ?
		    XAE_INT_RECV_ERROR_MASK : 0);
1624 1625 1626
	axienet_iow(lp, XAE_FCC_OFFSET, XAE_FCC_FCRX_MASK);

	/* Sync default options with HW but leave receiver and
M
Michal Simek 已提交
1627 1628
	 * transmitter disabled.
	 */
1629 1630 1631 1632 1633 1634 1635 1636
	axienet_setoptions(ndev, lp->options &
			   ~(XAE_OPTION_TXEN | XAE_OPTION_RXEN));
	axienet_set_mac_address(ndev, NULL);
	axienet_set_multicast_list(ndev);
	axienet_setoptions(ndev, lp->options);
}

/**
1637
 * axienet_probe - Axi Ethernet probe function.
1638
 * @pdev:	Pointer to platform device structure.
1639
 *
1640
 * Return: 0, on success
1641 1642 1643 1644 1645 1646 1647
 *	    Non-zero error value on failure.
 *
 * This is the probe routine for Axi Ethernet driver. This is called before
 * any other driver routines are invoked. It allocates and sets up the Ethernet
 * device. Parses through device tree and populates fields of
 * axienet_local. It registers the Ethernet device.
 */
1648
static int axienet_probe(struct platform_device *pdev)
1649
{
1650
	int ret;
1651 1652 1653
	struct device_node *np;
	struct axienet_local *lp;
	struct net_device *ndev;
1654
	const void *mac_addr;
1655
	struct resource *ethres;
1656
	u32 value;
1657 1658

	ndev = alloc_etherdev(sizeof(*lp));
1659
	if (!ndev)
1660 1661
		return -ENOMEM;

1662
	platform_set_drvdata(pdev, ndev);
1663

1664
	SET_NETDEV_DEV(ndev, &pdev->dev);
1665
	ndev->flags &= ~IFF_MULTICAST;  /* clear multicast */
1666
	ndev->features = NETIF_F_SG;
1667 1668 1669
	ndev->netdev_ops = &axienet_netdev_ops;
	ndev->ethtool_ops = &axienet_ethtool_ops;

1670 1671 1672 1673
	/* MTU range: 64 - 9000 */
	ndev->min_mtu = 64;
	ndev->max_mtu = XAE_JUMBO_MTU;

1674 1675
	lp = netdev_priv(ndev);
	lp->ndev = ndev;
1676
	lp->dev = &pdev->dev;
1677
	lp->options = XAE_OPTION_DEFAULTS;
1678 1679
	lp->rx_bd_num = RX_BD_NUM_DEFAULT;
	lp->tx_bd_num = TX_BD_NUM_DEFAULT;
1680
	/* Map device registers */
1681 1682
	ethres = platform_get_resource(pdev, IORESOURCE_MEM, 0);
	lp->regs = devm_ioremap_resource(&pdev->dev, ethres);
1683
	if (IS_ERR(lp->regs)) {
1684
		dev_err(&pdev->dev, "could not map Axi Ethernet regs.\n");
1685
		ret = PTR_ERR(lp->regs);
1686
		goto free_netdev;
1687
	}
1688
	lp->regs_start = ethres->start;
1689

1690 1691 1692
	/* Setup checksum offload, but default to off if not specified */
	lp->features = 0;

1693 1694 1695
	ret = of_property_read_u32(pdev->dev.of_node, "xlnx,txcsum", &value);
	if (!ret) {
		switch (value) {
1696 1697 1698 1699 1700 1701 1702 1703 1704 1705 1706 1707 1708 1709 1710 1711 1712 1713
		case 1:
			lp->csum_offload_on_tx_path =
				XAE_FEATURE_PARTIAL_TX_CSUM;
			lp->features |= XAE_FEATURE_PARTIAL_TX_CSUM;
			/* Can checksum TCP/UDP over IPv4. */
			ndev->features |= NETIF_F_IP_CSUM;
			break;
		case 2:
			lp->csum_offload_on_tx_path =
				XAE_FEATURE_FULL_TX_CSUM;
			lp->features |= XAE_FEATURE_FULL_TX_CSUM;
			/* Can checksum TCP/UDP over IPv4. */
			ndev->features |= NETIF_F_IP_CSUM;
			break;
		default:
			lp->csum_offload_on_tx_path = XAE_NO_CSUM_OFFLOAD;
		}
	}
1714 1715 1716
	ret = of_property_read_u32(pdev->dev.of_node, "xlnx,rxcsum", &value);
	if (!ret) {
		switch (value) {
1717 1718 1719 1720 1721 1722 1723 1724 1725 1726 1727 1728 1729 1730 1731
		case 1:
			lp->csum_offload_on_rx_path =
				XAE_FEATURE_PARTIAL_RX_CSUM;
			lp->features |= XAE_FEATURE_PARTIAL_RX_CSUM;
			break;
		case 2:
			lp->csum_offload_on_rx_path =
				XAE_FEATURE_FULL_RX_CSUM;
			lp->features |= XAE_FEATURE_FULL_RX_CSUM;
			break;
		default:
			lp->csum_offload_on_rx_path = XAE_NO_CSUM_OFFLOAD;
		}
	}
	/* For supporting jumbo frames, the Axi Ethernet hardware must have
1732 1733 1734 1735 1736
	 * a larger Rx/Tx Memory. Typically, the size must be large so that
	 * we can enable jumbo option and start supporting jumbo frames.
	 * Here we check for memory allocated for Rx/Tx in the hardware from
	 * the device-tree and accordingly set flags.
	 */
1737
	of_property_read_u32(pdev->dev.of_node, "xlnx,rxmem", &lp->rxmem);
1738 1739 1740 1741 1742 1743 1744 1745 1746 1747 1748 1749 1750 1751 1752 1753 1754 1755 1756 1757 1758 1759 1760 1761 1762 1763 1764

	/* Start with the proprietary, and broken phy_type */
	ret = of_property_read_u32(pdev->dev.of_node, "xlnx,phy-type", &value);
	if (!ret) {
		netdev_warn(ndev, "Please upgrade your device tree binary blob to use phy-mode");
		switch (value) {
		case XAE_PHY_TYPE_MII:
			lp->phy_mode = PHY_INTERFACE_MODE_MII;
			break;
		case XAE_PHY_TYPE_GMII:
			lp->phy_mode = PHY_INTERFACE_MODE_GMII;
			break;
		case XAE_PHY_TYPE_RGMII_2_0:
			lp->phy_mode = PHY_INTERFACE_MODE_RGMII_ID;
			break;
		case XAE_PHY_TYPE_SGMII:
			lp->phy_mode = PHY_INTERFACE_MODE_SGMII;
			break;
		case XAE_PHY_TYPE_1000BASE_X:
			lp->phy_mode = PHY_INTERFACE_MODE_1000BASEX;
			break;
		default:
			ret = -EINVAL;
			goto free_netdev;
		}
	} else {
		lp->phy_mode = of_get_phy_mode(pdev->dev.of_node);
1765
		if ((int)lp->phy_mode < 0) {
1766 1767 1768 1769
			ret = -EINVAL;
			goto free_netdev;
		}
	}
1770 1771

	/* Find the DMA node, map the DMA registers, and decode the DMA IRQs */
1772
	np = of_parse_phandle(pdev->dev.of_node, "axistream-connected", 0);
1773 1774 1775 1776 1777 1778 1779 1780 1781 1782 1783 1784 1785 1786
	if (np) {
		struct resource dmares;

		ret = of_address_to_resource(np, 0, &dmares);
		if (ret) {
			dev_err(&pdev->dev,
				"unable to get DMA resource\n");
			of_node_put(np);
			goto free_netdev;
		}
		lp->dma_regs = devm_ioremap_resource(&pdev->dev,
						     &dmares);
		lp->rx_irq = irq_of_parse_and_map(np, 1);
		lp->tx_irq = irq_of_parse_and_map(np, 0);
1787
		of_node_put(np);
1788 1789 1790 1791 1792 1793 1794 1795 1796 1797 1798 1799 1800
		lp->eth_irq = platform_get_irq(pdev, 0);
	} else {
		/* Check for these resources directly on the Ethernet node. */
		struct resource *res = platform_get_resource(pdev,
							     IORESOURCE_MEM, 1);
		if (!res) {
			dev_err(&pdev->dev, "unable to get DMA memory resource\n");
			goto free_netdev;
		}
		lp->dma_regs = devm_ioremap_resource(&pdev->dev, res);
		lp->rx_irq = platform_get_irq(pdev, 1);
		lp->tx_irq = platform_get_irq(pdev, 0);
		lp->eth_irq = platform_get_irq(pdev, 2);
1801
	}
1802
	if (IS_ERR(lp->dma_regs)) {
1803
		dev_err(&pdev->dev, "could not map DMA regs\n");
1804
		ret = PTR_ERR(lp->dma_regs);
1805
		goto free_netdev;
1806
	}
1807
	if ((lp->rx_irq <= 0) || (lp->tx_irq <= 0)) {
1808
		dev_err(&pdev->dev, "could not determine irqs\n");
1809
		ret = -ENOMEM;
1810
		goto free_netdev;
1811 1812
	}

1813 1814 1815 1816
	/* Check for Ethernet core IRQ (optional) */
	if (lp->eth_irq <= 0)
		dev_info(&pdev->dev, "Ethernet core IRQ not defined\n");

1817
	/* Retrieve the MAC address */
1818
	mac_addr = of_get_mac_address(pdev->dev.of_node);
1819
	if (IS_ERR(mac_addr)) {
1820 1821 1822
		dev_warn(&pdev->dev, "could not find MAC address property: %ld\n",
			 PTR_ERR(mac_addr));
		mac_addr = NULL;
1823
	}
1824
	axienet_set_mac_address(ndev, mac_addr);
1825 1826 1827 1828

	lp->coalesce_count_rx = XAXIDMA_DFT_RX_THRESHOLD;
	lp->coalesce_count_tx = XAXIDMA_DFT_TX_THRESHOLD;

1829
	lp->phy_node = of_parse_phandle(pdev->dev.of_node, "phy-handle", 0);
1830
	if (lp->phy_node) {
1831 1832 1833 1834 1835 1836 1837 1838 1839 1840 1841 1842 1843 1844 1845
		lp->clk = devm_clk_get(&pdev->dev, NULL);
		if (IS_ERR(lp->clk)) {
			dev_warn(&pdev->dev, "Failed to get clock: %ld\n",
				 PTR_ERR(lp->clk));
			lp->clk = NULL;
		} else {
			ret = clk_prepare_enable(lp->clk);
			if (ret) {
				dev_err(&pdev->dev, "Unable to enable clock: %d\n",
					ret);
				goto free_netdev;
			}
		}

		ret = axienet_mdio_setup(lp);
1846
		if (ret)
1847 1848
			dev_warn(&pdev->dev,
				 "error registering MDIO bus: %d\n", ret);
1849
	}
1850

1851 1852 1853 1854 1855 1856 1857 1858 1859 1860 1861 1862
	lp->phylink_config.dev = &ndev->dev;
	lp->phylink_config.type = PHYLINK_NETDEV;

	lp->phylink = phylink_create(&lp->phylink_config, pdev->dev.fwnode,
				     lp->phy_mode,
				     &axienet_phylink_ops);
	if (IS_ERR(lp->phylink)) {
		ret = PTR_ERR(lp->phylink);
		dev_err(&pdev->dev, "phylink_create error (%i)\n", ret);
		goto free_netdev;
	}

1863 1864 1865
	ret = register_netdev(lp->ndev);
	if (ret) {
		dev_err(lp->dev, "register_netdev() error (%i)\n", ret);
1866
		goto free_netdev;
1867 1868 1869 1870
	}

	return 0;

1871
free_netdev:
1872
	free_netdev(ndev);
1873

1874 1875 1876
	return ret;
}

1877
static int axienet_remove(struct platform_device *pdev)
1878
{
1879
	struct net_device *ndev = platform_get_drvdata(pdev);
1880 1881 1882
	struct axienet_local *lp = netdev_priv(ndev);

	unregister_netdev(ndev);
1883 1884 1885 1886

	if (lp->phylink)
		phylink_destroy(lp->phylink);

1887
	axienet_mdio_teardown(lp);
1888

1889 1890 1891
	if (lp->clk)
		clk_disable_unprepare(lp->clk);

1892
	of_node_put(lp->phy_node);
1893 1894 1895 1896 1897 1898 1899
	lp->phy_node = NULL;

	free_netdev(ndev);

	return 0;
}

1900 1901 1902 1903 1904 1905 1906 1907 1908 1909 1910 1911 1912
static void axienet_shutdown(struct platform_device *pdev)
{
	struct net_device *ndev = platform_get_drvdata(pdev);

	rtnl_lock();
	netif_device_detach(ndev);

	if (netif_running(ndev))
		dev_close(ndev);

	rtnl_unlock();
}

1913 1914 1915
static struct platform_driver axienet_driver = {
	.probe = axienet_probe,
	.remove = axienet_remove,
1916
	.shutdown = axienet_shutdown,
1917 1918 1919 1920 1921 1922
	.driver = {
		 .name = "xilinx_axienet",
		 .of_match_table = axienet_of_match,
	},
};

1923
module_platform_driver(axienet_driver);
1924 1925 1926 1927

MODULE_DESCRIPTION("Xilinx Axi Ethernet driver");
MODULE_AUTHOR("Xilinx");
MODULE_LICENSE("GPL");