stmmac_main.c 87.8 KB
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/*******************************************************************************
  This is the driver for the ST MAC 10/100/1000 on-chip Ethernet controllers.
  ST Ethernet IPs are built around a Synopsys IP Core.

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	Copyright(C) 2007-2011 STMicroelectronics Ltd
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  This program is free software; you can redistribute it and/or modify it
  under the terms and conditions of the GNU General Public License,
  version 2, as published by the Free Software Foundation.

  This program is distributed in the hope it will be useful, but WITHOUT
  ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
  FITNESS FOR A PARTICULAR PURPOSE.  See the GNU General Public License for
  more details.

  You should have received a copy of the GNU General Public License along with
  this program; if not, write to the Free Software Foundation, Inc.,
  51 Franklin St - Fifth Floor, Boston, MA 02110-1301 USA.

  The full GNU General Public License is included in this distribution in
  the file called "COPYING".

  Author: Giuseppe Cavallaro <peppe.cavallaro@st.com>

  Documentation available at:
	http://www.stlinux.com
  Support available at:
	https://bugzilla.stlinux.com/
*******************************************************************************/

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#include <linux/clk.h>
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#include <linux/kernel.h>
#include <linux/interrupt.h>
#include <linux/ip.h>
#include <linux/tcp.h>
#include <linux/skbuff.h>
#include <linux/ethtool.h>
#include <linux/if_ether.h>
#include <linux/crc32.h>
#include <linux/mii.h>
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#include <linux/if.h>
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#include <linux/if_vlan.h>
#include <linux/dma-mapping.h>
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#include <linux/slab.h>
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#include <linux/prefetch.h>
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#include <linux/pinctrl/consumer.h>
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#ifdef CONFIG_DEBUG_FS
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#include <linux/debugfs.h>
#include <linux/seq_file.h>
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#endif /* CONFIG_DEBUG_FS */
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#include <linux/net_tstamp.h>
#include "stmmac_ptp.h"
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#include "stmmac.h"
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#include <linux/reset.h>
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#define STMMAC_ALIGN(x)	L1_CACHE_ALIGN(x)

/* Module parameters */
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#define TX_TIMEO	5000
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static int watchdog = TX_TIMEO;
module_param(watchdog, int, S_IRUGO | S_IWUSR);
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MODULE_PARM_DESC(watchdog, "Transmit timeout in milliseconds (default 5s)");
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static int debug = -1;
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module_param(debug, int, S_IRUGO | S_IWUSR);
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MODULE_PARM_DESC(debug, "Message Level (-1: default, 0: no output, 16: all)");
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static int phyaddr = -1;
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module_param(phyaddr, int, S_IRUGO);
MODULE_PARM_DESC(phyaddr, "Physical device address");

#define DMA_TX_SIZE 256
static int dma_txsize = DMA_TX_SIZE;
module_param(dma_txsize, int, S_IRUGO | S_IWUSR);
MODULE_PARM_DESC(dma_txsize, "Number of descriptors in the TX list");

#define DMA_RX_SIZE 256
static int dma_rxsize = DMA_RX_SIZE;
module_param(dma_rxsize, int, S_IRUGO | S_IWUSR);
MODULE_PARM_DESC(dma_rxsize, "Number of descriptors in the RX list");

static int flow_ctrl = FLOW_OFF;
module_param(flow_ctrl, int, S_IRUGO | S_IWUSR);
MODULE_PARM_DESC(flow_ctrl, "Flow control ability [on/off]");

static int pause = PAUSE_TIME;
module_param(pause, int, S_IRUGO | S_IWUSR);
MODULE_PARM_DESC(pause, "Flow Control Pause Time");

#define TC_DEFAULT 64
static int tc = TC_DEFAULT;
module_param(tc, int, S_IRUGO | S_IWUSR);
MODULE_PARM_DESC(tc, "DMA threshold control value");

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#define	DEFAULT_BUFSIZE	1536
static int buf_sz = DEFAULT_BUFSIZE;
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module_param(buf_sz, int, S_IRUGO | S_IWUSR);
MODULE_PARM_DESC(buf_sz, "DMA buffer size");

static const u32 default_msg_level = (NETIF_MSG_DRV | NETIF_MSG_PROBE |
				      NETIF_MSG_LINK | NETIF_MSG_IFUP |
				      NETIF_MSG_IFDOWN | NETIF_MSG_TIMER);

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#define STMMAC_DEFAULT_LPI_TIMER	1000
static int eee_timer = STMMAC_DEFAULT_LPI_TIMER;
module_param(eee_timer, int, S_IRUGO | S_IWUSR);
MODULE_PARM_DESC(eee_timer, "LPI tx expiration time in msec");
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#define STMMAC_LPI_T(x) (jiffies + msecs_to_jiffies(x))
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/* By default the driver will use the ring mode to manage tx and rx descriptors
 * but passing this value so user can force to use the chain instead of the ring
 */
static unsigned int chain_mode;
module_param(chain_mode, int, S_IRUGO);
MODULE_PARM_DESC(chain_mode, "To use chain instead of ring mode");

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static irqreturn_t stmmac_interrupt(int irq, void *dev_id);

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#ifdef CONFIG_DEBUG_FS
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static int stmmac_init_fs(struct net_device *dev);
static void stmmac_exit_fs(void);
#endif

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#define STMMAC_COAL_TIMER(x) (jiffies + usecs_to_jiffies(x))

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/**
 * stmmac_verify_args - verify the driver parameters.
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 * Description: it checks the driver parameters and set a default in case of
 * errors.
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 */
static void stmmac_verify_args(void)
{
	if (unlikely(watchdog < 0))
		watchdog = TX_TIMEO;
	if (unlikely(dma_rxsize < 0))
		dma_rxsize = DMA_RX_SIZE;
	if (unlikely(dma_txsize < 0))
		dma_txsize = DMA_TX_SIZE;
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	if (unlikely((buf_sz < DEFAULT_BUFSIZE) || (buf_sz > BUF_SIZE_16KiB)))
		buf_sz = DEFAULT_BUFSIZE;
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	if (unlikely(flow_ctrl > 1))
		flow_ctrl = FLOW_AUTO;
	else if (likely(flow_ctrl < 0))
		flow_ctrl = FLOW_OFF;
	if (unlikely((pause < 0) || (pause > 0xffff)))
		pause = PAUSE_TIME;
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	if (eee_timer < 0)
		eee_timer = STMMAC_DEFAULT_LPI_TIMER;
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}

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/**
 * stmmac_clk_csr_set - dynamically set the MDC clock
 * @priv: driver private structure
 * Description: this is to dynamically set the MDC clock according to the csr
 * clock input.
 * Note:
 *	If a specific clk_csr value is passed from the platform
 *	this means that the CSR Clock Range selection cannot be
 *	changed at run-time and it is fixed (as reported in the driver
 *	documentation). Viceversa the driver will try to set the MDC
 *	clock dynamically according to the actual clock input.
 */
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static void stmmac_clk_csr_set(struct stmmac_priv *priv)
{
	u32 clk_rate;

	clk_rate = clk_get_rate(priv->stmmac_clk);

	/* Platform provided default clk_csr would be assumed valid
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	 * for all other cases except for the below mentioned ones.
	 * For values higher than the IEEE 802.3 specified frequency
	 * we can not estimate the proper divider as it is not known
	 * the frequency of clk_csr_i. So we do not change the default
	 * divider.
	 */
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	if (!(priv->clk_csr & MAC_CSR_H_FRQ_MASK)) {
		if (clk_rate < CSR_F_35M)
			priv->clk_csr = STMMAC_CSR_20_35M;
		else if ((clk_rate >= CSR_F_35M) && (clk_rate < CSR_F_60M))
			priv->clk_csr = STMMAC_CSR_35_60M;
		else if ((clk_rate >= CSR_F_60M) && (clk_rate < CSR_F_100M))
			priv->clk_csr = STMMAC_CSR_60_100M;
		else if ((clk_rate >= CSR_F_100M) && (clk_rate < CSR_F_150M))
			priv->clk_csr = STMMAC_CSR_100_150M;
		else if ((clk_rate >= CSR_F_150M) && (clk_rate < CSR_F_250M))
			priv->clk_csr = STMMAC_CSR_150_250M;
		else if ((clk_rate >= CSR_F_250M) && (clk_rate < CSR_F_300M))
			priv->clk_csr = STMMAC_CSR_250_300M;
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	}
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}

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static void print_pkt(unsigned char *buf, int len)
{
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	pr_debug("len = %d byte, buf addr: 0x%p\n", len, buf);
	print_hex_dump_bytes("", DUMP_PREFIX_OFFSET, buf, len);
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}

/* minimum number of free TX descriptors required to wake up TX process */
#define STMMAC_TX_THRESH(x)	(x->dma_tx_size/4)

static inline u32 stmmac_tx_avail(struct stmmac_priv *priv)
{
	return priv->dirty_tx + priv->dma_tx_size - priv->cur_tx - 1;
}

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/**
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 * stmmac_hw_fix_mac_speed - callback for speed selection
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 * @priv: driver private structure
 * Description: on some platforms (e.g. ST), some HW system configuraton
 * registers have to be set according to the link speed negotiated.
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 */
static inline void stmmac_hw_fix_mac_speed(struct stmmac_priv *priv)
{
	struct phy_device *phydev = priv->phydev;

	if (likely(priv->plat->fix_mac_speed))
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		priv->plat->fix_mac_speed(priv->plat->bsp_priv, phydev->speed);
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}

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/**
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 * stmmac_enable_eee_mode - check and enter in LPI mode
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 * @priv: driver private structure
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 * Description: this function is to verify and enter in LPI mode in case of
 * EEE.
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 */
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static void stmmac_enable_eee_mode(struct stmmac_priv *priv)
{
	/* Check and enter in LPI mode */
	if ((priv->dirty_tx == priv->cur_tx) &&
	    (priv->tx_path_in_lpi_mode == false))
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		priv->hw->mac->set_eee_mode(priv->hw);
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}

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/**
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 * stmmac_disable_eee_mode - disable and exit from LPI mode
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 * @priv: driver private structure
 * Description: this function is to exit and disable EEE in case of
 * LPI state is true. This is called by the xmit.
 */
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void stmmac_disable_eee_mode(struct stmmac_priv *priv)
{
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	priv->hw->mac->reset_eee_mode(priv->hw);
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	del_timer_sync(&priv->eee_ctrl_timer);
	priv->tx_path_in_lpi_mode = false;
}

/**
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 * stmmac_eee_ctrl_timer - EEE TX SW timer.
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 * @arg : data hook
 * Description:
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 *  if there is no data transfer and if we are not in LPI state,
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 *  then MAC Transmitter can be moved to LPI state.
 */
static void stmmac_eee_ctrl_timer(unsigned long arg)
{
	struct stmmac_priv *priv = (struct stmmac_priv *)arg;

	stmmac_enable_eee_mode(priv);
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	mod_timer(&priv->eee_ctrl_timer, STMMAC_LPI_T(eee_timer));
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}

/**
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 * stmmac_eee_init - init EEE
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 * @priv: driver private structure
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 * Description:
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 *  if the GMAC supports the EEE (from the HW cap reg) and the phy device
 *  can also manage EEE, this function enable the LPI state and start related
 *  timer.
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 */
bool stmmac_eee_init(struct stmmac_priv *priv)
{
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	char *phy_bus_name = priv->plat->phy_bus_name;
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	unsigned long flags;
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	bool ret = false;

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	/* Using PCS we cannot dial with the phy registers at this stage
	 * so we do not support extra feature like EEE.
	 */
	if ((priv->pcs == STMMAC_PCS_RGMII) || (priv->pcs == STMMAC_PCS_TBI) ||
	    (priv->pcs == STMMAC_PCS_RTBI))
		goto out;

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	/* Never init EEE in case of a switch is attached */
	if (phy_bus_name && (!strcmp(phy_bus_name, "fixed")))
		goto out;

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	/* MAC core supports the EEE feature. */
	if (priv->dma_cap.eee) {
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		int tx_lpi_timer = priv->tx_lpi_timer;

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		/* Check if the PHY supports EEE */
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		if (phy_init_eee(priv->phydev, 1)) {
			/* To manage at run-time if the EEE cannot be supported
			 * anymore (for example because the lp caps have been
			 * changed).
			 * In that case the driver disable own timers.
			 */
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			spin_lock_irqsave(&priv->lock, flags);
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			if (priv->eee_active) {
				pr_debug("stmmac: disable EEE\n");
				del_timer_sync(&priv->eee_ctrl_timer);
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				priv->hw->mac->set_eee_timer(priv->hw, 0,
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							     tx_lpi_timer);
			}
			priv->eee_active = 0;
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			spin_unlock_irqrestore(&priv->lock, flags);
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			goto out;
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		}
		/* Activate the EEE and start timers */
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		spin_lock_irqsave(&priv->lock, flags);
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		if (!priv->eee_active) {
			priv->eee_active = 1;
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			setup_timer(&priv->eee_ctrl_timer,
				    stmmac_eee_ctrl_timer,
				    (unsigned long)priv);
			mod_timer(&priv->eee_ctrl_timer,
				  STMMAC_LPI_T(eee_timer));
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			priv->hw->mac->set_eee_timer(priv->hw,
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						     STMMAC_DEFAULT_LIT_LS,
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						     tx_lpi_timer);
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		}
		/* Set HW EEE according to the speed */
		priv->hw->mac->set_eee_pls(priv->hw, priv->phydev->link);
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		ret = true;
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		spin_unlock_irqrestore(&priv->lock, flags);

		pr_debug("stmmac: Energy-Efficient Ethernet initialized\n");
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	}
out:
	return ret;
}

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/* stmmac_get_tx_hwtstamp - get HW TX timestamps
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 * @priv: driver private structure
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 * @entry : descriptor index to be used.
 * @skb : the socket buffer
 * Description :
 * This function will read timestamp from the descriptor & pass it to stack.
 * and also perform some sanity checks.
 */
static void stmmac_get_tx_hwtstamp(struct stmmac_priv *priv,
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				   unsigned int entry, struct sk_buff *skb)
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{
	struct skb_shared_hwtstamps shhwtstamp;
	u64 ns;
	void *desc = NULL;

	if (!priv->hwts_tx_en)
		return;

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	/* exit if skb doesn't support hw tstamp */
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	if (likely(!skb || !(skb_shinfo(skb)->tx_flags & SKBTX_IN_PROGRESS)))
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		return;

	if (priv->adv_ts)
		desc = (priv->dma_etx + entry);
	else
		desc = (priv->dma_tx + entry);

	/* check tx tstamp status */
	if (!priv->hw->desc->get_tx_timestamp_status((struct dma_desc *)desc))
		return;

	/* get the valid tstamp */
	ns = priv->hw->desc->get_timestamp(desc, priv->adv_ts);

	memset(&shhwtstamp, 0, sizeof(struct skb_shared_hwtstamps));
	shhwtstamp.hwtstamp = ns_to_ktime(ns);
	/* pass tstamp to stack */
	skb_tstamp_tx(skb, &shhwtstamp);

	return;
}

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/* stmmac_get_rx_hwtstamp - get HW RX timestamps
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 * @priv: driver private structure
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 * @entry : descriptor index to be used.
 * @skb : the socket buffer
 * Description :
 * This function will read received packet's timestamp from the descriptor
 * and pass it to stack. It also perform some sanity checks.
 */
static void stmmac_get_rx_hwtstamp(struct stmmac_priv *priv,
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				   unsigned int entry, struct sk_buff *skb)
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{
	struct skb_shared_hwtstamps *shhwtstamp = NULL;
	u64 ns;
	void *desc = NULL;

	if (!priv->hwts_rx_en)
		return;

	if (priv->adv_ts)
		desc = (priv->dma_erx + entry);
	else
		desc = (priv->dma_rx + entry);

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	/* exit if rx tstamp is not valid */
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	if (!priv->hw->desc->get_rx_timestamp_status(desc, priv->adv_ts))
		return;

	/* get valid tstamp */
	ns = priv->hw->desc->get_timestamp(desc, priv->adv_ts);
	shhwtstamp = skb_hwtstamps(skb);
	memset(shhwtstamp, 0, sizeof(struct skb_shared_hwtstamps));
	shhwtstamp->hwtstamp = ns_to_ktime(ns);
}

/**
 *  stmmac_hwtstamp_ioctl - control hardware timestamping.
 *  @dev: device pointer.
 *  @ifr: An IOCTL specefic structure, that can contain a pointer to
 *  a proprietary structure used to pass information to the driver.
 *  Description:
 *  This function configures the MAC to enable/disable both outgoing(TX)
 *  and incoming(RX) packets time stamping based on user input.
 *  Return Value:
 *  0 on success and an appropriate -ve integer on failure.
 */
static int stmmac_hwtstamp_ioctl(struct net_device *dev, struct ifreq *ifr)
{
	struct stmmac_priv *priv = netdev_priv(dev);
	struct hwtstamp_config config;
	struct timespec now;
	u64 temp = 0;
	u32 ptp_v2 = 0;
	u32 tstamp_all = 0;
	u32 ptp_over_ipv4_udp = 0;
	u32 ptp_over_ipv6_udp = 0;
	u32 ptp_over_ethernet = 0;
	u32 snap_type_sel = 0;
	u32 ts_master_en = 0;
	u32 ts_event_en = 0;
	u32 value = 0;

	if (!(priv->dma_cap.time_stamp || priv->adv_ts)) {
		netdev_alert(priv->dev, "No support for HW time stamping\n");
		priv->hwts_tx_en = 0;
		priv->hwts_rx_en = 0;

		return -EOPNOTSUPP;
	}

	if (copy_from_user(&config, ifr->ifr_data,
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			   sizeof(struct hwtstamp_config)))
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		return -EFAULT;

	pr_debug("%s config flags:0x%x, tx_type:0x%x, rx_filter:0x%x\n",
		 __func__, config.flags, config.tx_type, config.rx_filter);

	/* reserved for future extensions */
	if (config.flags)
		return -EINVAL;

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	if (config.tx_type != HWTSTAMP_TX_OFF &&
	    config.tx_type != HWTSTAMP_TX_ON)
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		return -ERANGE;

	if (priv->adv_ts) {
		switch (config.rx_filter) {
		case HWTSTAMP_FILTER_NONE:
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			/* time stamp no incoming packet at all */
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			config.rx_filter = HWTSTAMP_FILTER_NONE;
			break;

		case HWTSTAMP_FILTER_PTP_V1_L4_EVENT:
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			/* PTP v1, UDP, any kind of event packet */
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			config.rx_filter = HWTSTAMP_FILTER_PTP_V1_L4_EVENT;
			/* take time stamp for all event messages */
			snap_type_sel = PTP_TCR_SNAPTYPSEL_1;

			ptp_over_ipv4_udp = PTP_TCR_TSIPV4ENA;
			ptp_over_ipv6_udp = PTP_TCR_TSIPV6ENA;
			break;

		case HWTSTAMP_FILTER_PTP_V1_L4_SYNC:
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			/* PTP v1, UDP, Sync packet */
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			config.rx_filter = HWTSTAMP_FILTER_PTP_V1_L4_SYNC;
			/* take time stamp for SYNC messages only */
			ts_event_en = PTP_TCR_TSEVNTENA;

			ptp_over_ipv4_udp = PTP_TCR_TSIPV4ENA;
			ptp_over_ipv6_udp = PTP_TCR_TSIPV6ENA;
			break;

		case HWTSTAMP_FILTER_PTP_V1_L4_DELAY_REQ:
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			/* PTP v1, UDP, Delay_req packet */
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			config.rx_filter = HWTSTAMP_FILTER_PTP_V1_L4_DELAY_REQ;
			/* take time stamp for Delay_Req messages only */
			ts_master_en = PTP_TCR_TSMSTRENA;
			ts_event_en = PTP_TCR_TSEVNTENA;

			ptp_over_ipv4_udp = PTP_TCR_TSIPV4ENA;
			ptp_over_ipv6_udp = PTP_TCR_TSIPV6ENA;
			break;

		case HWTSTAMP_FILTER_PTP_V2_L4_EVENT:
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			/* PTP v2, UDP, any kind of event packet */
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			config.rx_filter = HWTSTAMP_FILTER_PTP_V2_L4_EVENT;
			ptp_v2 = PTP_TCR_TSVER2ENA;
			/* take time stamp for all event messages */
			snap_type_sel = PTP_TCR_SNAPTYPSEL_1;

			ptp_over_ipv4_udp = PTP_TCR_TSIPV4ENA;
			ptp_over_ipv6_udp = PTP_TCR_TSIPV6ENA;
			break;

		case HWTSTAMP_FILTER_PTP_V2_L4_SYNC:
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			/* PTP v2, UDP, Sync packet */
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			config.rx_filter = HWTSTAMP_FILTER_PTP_V2_L4_SYNC;
			ptp_v2 = PTP_TCR_TSVER2ENA;
			/* take time stamp for SYNC messages only */
			ts_event_en = PTP_TCR_TSEVNTENA;

			ptp_over_ipv4_udp = PTP_TCR_TSIPV4ENA;
			ptp_over_ipv6_udp = PTP_TCR_TSIPV6ENA;
			break;

		case HWTSTAMP_FILTER_PTP_V2_L4_DELAY_REQ:
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			/* PTP v2, UDP, Delay_req packet */
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			config.rx_filter = HWTSTAMP_FILTER_PTP_V2_L4_DELAY_REQ;
			ptp_v2 = PTP_TCR_TSVER2ENA;
			/* take time stamp for Delay_Req messages only */
			ts_master_en = PTP_TCR_TSMSTRENA;
			ts_event_en = PTP_TCR_TSEVNTENA;

			ptp_over_ipv4_udp = PTP_TCR_TSIPV4ENA;
			ptp_over_ipv6_udp = PTP_TCR_TSIPV6ENA;
			break;

		case HWTSTAMP_FILTER_PTP_V2_EVENT:
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			/* PTP v2/802.AS1 any layer, any kind of event packet */
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			config.rx_filter = HWTSTAMP_FILTER_PTP_V2_EVENT;
			ptp_v2 = PTP_TCR_TSVER2ENA;
			/* take time stamp for all event messages */
			snap_type_sel = PTP_TCR_SNAPTYPSEL_1;

			ptp_over_ipv4_udp = PTP_TCR_TSIPV4ENA;
			ptp_over_ipv6_udp = PTP_TCR_TSIPV6ENA;
			ptp_over_ethernet = PTP_TCR_TSIPENA;
			break;

		case HWTSTAMP_FILTER_PTP_V2_SYNC:
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			/* PTP v2/802.AS1, any layer, Sync packet */
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			config.rx_filter = HWTSTAMP_FILTER_PTP_V2_SYNC;
			ptp_v2 = PTP_TCR_TSVER2ENA;
			/* take time stamp for SYNC messages only */
			ts_event_en = PTP_TCR_TSEVNTENA;

			ptp_over_ipv4_udp = PTP_TCR_TSIPV4ENA;
			ptp_over_ipv6_udp = PTP_TCR_TSIPV6ENA;
			ptp_over_ethernet = PTP_TCR_TSIPENA;
			break;

		case HWTSTAMP_FILTER_PTP_V2_DELAY_REQ:
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			/* PTP v2/802.AS1, any layer, Delay_req packet */
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			config.rx_filter = HWTSTAMP_FILTER_PTP_V2_DELAY_REQ;
			ptp_v2 = PTP_TCR_TSVER2ENA;
			/* take time stamp for Delay_Req messages only */
			ts_master_en = PTP_TCR_TSMSTRENA;
			ts_event_en = PTP_TCR_TSEVNTENA;

			ptp_over_ipv4_udp = PTP_TCR_TSIPV4ENA;
			ptp_over_ipv6_udp = PTP_TCR_TSIPV6ENA;
			ptp_over_ethernet = PTP_TCR_TSIPENA;
			break;

		case HWTSTAMP_FILTER_ALL:
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			/* time stamp any incoming packet */
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			config.rx_filter = HWTSTAMP_FILTER_ALL;
			tstamp_all = PTP_TCR_TSENALL;
			break;

		default:
			return -ERANGE;
		}
	} else {
		switch (config.rx_filter) {
		case HWTSTAMP_FILTER_NONE:
			config.rx_filter = HWTSTAMP_FILTER_NONE;
			break;
		default:
			/* PTP v1, UDP, any kind of event packet */
			config.rx_filter = HWTSTAMP_FILTER_PTP_V1_L4_EVENT;
			break;
		}
	}
	priv->hwts_rx_en = ((config.rx_filter == HWTSTAMP_FILTER_NONE) ? 0 : 1);
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	priv->hwts_tx_en = config.tx_type == HWTSTAMP_TX_ON;
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	if (!priv->hwts_tx_en && !priv->hwts_rx_en)
		priv->hw->ptp->config_hw_tstamping(priv->ioaddr, 0);
	else {
		value = (PTP_TCR_TSENA | PTP_TCR_TSCFUPDT | PTP_TCR_TSCTRLSSR |
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			 tstamp_all | ptp_v2 | ptp_over_ethernet |
			 ptp_over_ipv6_udp | ptp_over_ipv4_udp | ts_event_en |
			 ts_master_en | snap_type_sel);
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		priv->hw->ptp->config_hw_tstamping(priv->ioaddr, value);

		/* program Sub Second Increment reg */
		priv->hw->ptp->config_sub_second_increment(priv->ioaddr);

		/* calculate default added value:
		 * formula is :
		 * addend = (2^32)/freq_div_ratio;
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		 * where, freq_div_ratio = clk_ptp_ref_i/50MHz
		 * hence, addend = ((2^32) * 50MHz)/clk_ptp_ref_i;
		 * NOTE: clk_ptp_ref_i should be >= 50MHz to
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		 *       achieve 20ns accuracy.
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		 *
		 * 2^x * y == (y << x), hence
		 * 2^32 * 50000000 ==> (50000000 << 32)
		 */
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		temp = (u64) (50000000ULL << 32);
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		priv->default_addend = div_u64(temp, priv->clk_ptp_rate);
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		priv->hw->ptp->config_addend(priv->ioaddr,
					     priv->default_addend);

		/* initialize system time */
		getnstimeofday(&now);
		priv->hw->ptp->init_systime(priv->ioaddr, now.tv_sec,
					    now.tv_nsec);
	}

	return copy_to_user(ifr->ifr_data, &config,
			    sizeof(struct hwtstamp_config)) ? -EFAULT : 0;
}

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/**
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 * stmmac_init_ptp - init PTP
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 * @priv: driver private structure
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 * Description: this is to verify if the HW supports the PTPv1 or PTPv2.
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 * This is done by looking at the HW cap. register.
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 * This function also registers the ptp driver.
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 */
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static int stmmac_init_ptp(struct stmmac_priv *priv)
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{
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	if (!(priv->dma_cap.time_stamp || priv->dma_cap.atime_stamp))
		return -EOPNOTSUPP;

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	/* Fall-back to main clock in case of no PTP ref is passed */
	priv->clk_ptp_ref = devm_clk_get(priv->device, "clk_ptp_ref");
	if (IS_ERR(priv->clk_ptp_ref)) {
		priv->clk_ptp_rate = clk_get_rate(priv->stmmac_clk);
		priv->clk_ptp_ref = NULL;
	} else {
		clk_prepare_enable(priv->clk_ptp_ref);
		priv->clk_ptp_rate = clk_get_rate(priv->clk_ptp_ref);
	}

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	priv->adv_ts = 0;
	if (priv->dma_cap.atime_stamp && priv->extend_desc)
		priv->adv_ts = 1;

	if (netif_msg_hw(priv) && priv->dma_cap.time_stamp)
		pr_debug("IEEE 1588-2002 Time Stamp supported\n");

	if (netif_msg_hw(priv) && priv->adv_ts)
		pr_debug("IEEE 1588-2008 Advanced Time Stamp supported\n");
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	priv->hw->ptp = &stmmac_ptp;
	priv->hwts_tx_en = 0;
	priv->hwts_rx_en = 0;
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	return stmmac_ptp_register(priv);
}

static void stmmac_release_ptp(struct stmmac_priv *priv)
{
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	if (priv->clk_ptp_ref)
		clk_disable_unprepare(priv->clk_ptp_ref);
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	stmmac_ptp_unregister(priv);
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}

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/**
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 * stmmac_adjust_link - adjusts the link parameters
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 * @dev: net device structure
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 * Description: this is the helper called by the physical abstraction layer
 * drivers to communicate the phy link status. According the speed and duplex
 * this driver can invoke registered glue-logic as well.
 * It also invoke the eee initialization because it could happen when switch
 * on different networks (that are eee capable).
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 */
static void stmmac_adjust_link(struct net_device *dev)
{
	struct stmmac_priv *priv = netdev_priv(dev);
	struct phy_device *phydev = priv->phydev;
	unsigned long flags;
	int new_state = 0;
	unsigned int fc = priv->flow_ctrl, pause_time = priv->pause;

	if (phydev == NULL)
		return;

	spin_lock_irqsave(&priv->lock, flags);
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	if (phydev->link) {
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		u32 ctrl = readl(priv->ioaddr + MAC_CTRL_REG);
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		/* Now we make sure that we can be in full duplex mode.
		 * If not, we operate in half-duplex mode. */
		if (phydev->duplex != priv->oldduplex) {
			new_state = 1;
			if (!(phydev->duplex))
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				ctrl &= ~priv->hw->link.duplex;
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			else
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				ctrl |= priv->hw->link.duplex;
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			priv->oldduplex = phydev->duplex;
		}
		/* Flow Control operation */
		if (phydev->pause)
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			priv->hw->mac->flow_ctrl(priv->hw, phydev->duplex,
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						 fc, pause_time);
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		if (phydev->speed != priv->speed) {
			new_state = 1;
			switch (phydev->speed) {
			case 1000:
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				if (likely(priv->plat->has_gmac))
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					ctrl &= ~priv->hw->link.port;
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				stmmac_hw_fix_mac_speed(priv);
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				break;
			case 100:
			case 10:
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				if (priv->plat->has_gmac) {
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					ctrl |= priv->hw->link.port;
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					if (phydev->speed == SPEED_100) {
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						ctrl |= priv->hw->link.speed;
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					} else {
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						ctrl &= ~(priv->hw->link.speed);
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					}
				} else {
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					ctrl &= ~priv->hw->link.port;
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				}
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				stmmac_hw_fix_mac_speed(priv);
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				break;
			default:
				if (netif_msg_link(priv))
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					pr_warn("%s: Speed (%d) not 10/100\n",
						dev->name, phydev->speed);
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				break;
			}

			priv->speed = phydev->speed;
		}

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		writel(ctrl, priv->ioaddr + MAC_CTRL_REG);
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		if (!priv->oldlink) {
			new_state = 1;
			priv->oldlink = 1;
		}
	} else if (priv->oldlink) {
		new_state = 1;
		priv->oldlink = 0;
		priv->speed = 0;
		priv->oldduplex = -1;
	}

	if (new_state && netif_msg_link(priv))
		phy_print_status(phydev);

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	spin_unlock_irqrestore(&priv->lock, flags);

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	/* At this stage, it could be needed to setup the EEE or adjust some
	 * MAC related HW registers.
	 */
	priv->eee_enabled = stmmac_eee_init(priv);
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}

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/**
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 * stmmac_check_pcs_mode - verify if RGMII/SGMII is supported
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 * @priv: driver private structure
 * Description: this is to verify if the HW supports the PCS.
 * Physical Coding Sublayer (PCS) interface that can be used when the MAC is
 * configured for the TBI, RTBI, or SGMII PHY interface.
 */
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static void stmmac_check_pcs_mode(struct stmmac_priv *priv)
{
	int interface = priv->plat->interface;

	if (priv->dma_cap.pcs) {
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		if ((interface == PHY_INTERFACE_MODE_RGMII) ||
		    (interface == PHY_INTERFACE_MODE_RGMII_ID) ||
		    (interface == PHY_INTERFACE_MODE_RGMII_RXID) ||
		    (interface == PHY_INTERFACE_MODE_RGMII_TXID)) {
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			pr_debug("STMMAC: PCS RGMII support enable\n");
			priv->pcs = STMMAC_PCS_RGMII;
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		} else if (interface == PHY_INTERFACE_MODE_SGMII) {
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			pr_debug("STMMAC: PCS SGMII support enable\n");
			priv->pcs = STMMAC_PCS_SGMII;
		}
	}
}

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/**
 * stmmac_init_phy - PHY initialization
 * @dev: net device structure
 * Description: it initializes the driver's PHY state, and attaches the PHY
 * to the mac driver.
 *  Return value:
 *  0 on success
 */
static int stmmac_init_phy(struct net_device *dev)
{
	struct stmmac_priv *priv = netdev_priv(dev);
	struct phy_device *phydev;
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	char phy_id_fmt[MII_BUS_ID_SIZE + 3];
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	char bus_id[MII_BUS_ID_SIZE];
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	int interface = priv->plat->interface;
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	int max_speed = priv->plat->max_speed;
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	priv->oldlink = 0;
	priv->speed = 0;
	priv->oldduplex = -1;

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	if (priv->plat->phy_bus_name)
		snprintf(bus_id, MII_BUS_ID_SIZE, "%s-%x",
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			 priv->plat->phy_bus_name, priv->plat->bus_id);
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	else
		snprintf(bus_id, MII_BUS_ID_SIZE, "stmmac-%x",
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			 priv->plat->bus_id);
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	snprintf(phy_id_fmt, MII_BUS_ID_SIZE + 3, PHY_ID_FMT, bus_id,
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		 priv->plat->phy_addr);
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	pr_debug("stmmac_init_phy:  trying to attach to %s\n", phy_id_fmt);
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	phydev = phy_connect(dev, phy_id_fmt, &stmmac_adjust_link, interface);
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	if (IS_ERR(phydev)) {
		pr_err("%s: Could not attach to PHY\n", dev->name);
		return PTR_ERR(phydev);
	}

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	/* Stop Advertising 1000BASE Capability if interface is not GMII */
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	if ((interface == PHY_INTERFACE_MODE_MII) ||
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	    (interface == PHY_INTERFACE_MODE_RMII) ||
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		(max_speed < 1000 && max_speed > 0))
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		phydev->advertising &= ~(SUPPORTED_1000baseT_Half |
					 SUPPORTED_1000baseT_Full);
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	/*
	 * Broken HW is sometimes missing the pull-up resistor on the
	 * MDIO line, which results in reads to non-existent devices returning
	 * 0 rather than 0xffff. Catch this here and treat 0 as a non-existent
	 * device as well.
	 * Note: phydev->phy_id is the result of reading the UID PHY registers.
	 */
	if (phydev->phy_id == 0) {
		phy_disconnect(phydev);
		return -ENODEV;
	}
	pr_debug("stmmac_init_phy:  %s: attached to PHY (UID 0x%x)"
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		 " Link = %d\n", dev->name, phydev->phy_id, phydev->link);
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	priv->phydev = phydev;

	return 0;
}

/**
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 * stmmac_display_ring - display ring
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 * @head: pointer to the head of the ring passed.
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 * @size: size of the ring.
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 * @extend_desc: to verify if extended descriptors are used.
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 * Description: display the control/status and buffer descriptors.
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 */
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static void stmmac_display_ring(void *head, int size, int extend_desc)
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{
	int i;
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	struct dma_extended_desc *ep = (struct dma_extended_desc *)head;
	struct dma_desc *p = (struct dma_desc *)head;
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	for (i = 0; i < size; i++) {
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		u64 x;
		if (extend_desc) {
			x = *(u64 *) ep;
			pr_info("%d [0x%x]: 0x%x 0x%x 0x%x 0x%x\n",
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				i, (unsigned int)virt_to_phys(ep),
				(unsigned int)x, (unsigned int)(x >> 32),
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				ep->basic.des2, ep->basic.des3);
			ep++;
		} else {
			x = *(u64 *) p;
			pr_info("%d [0x%x]: 0x%x 0x%x 0x%x 0x%x",
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				i, (unsigned int)virt_to_phys(p),
				(unsigned int)x, (unsigned int)(x >> 32),
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				p->des2, p->des3);
			p++;
		}
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		pr_info("\n");
	}
}

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static void stmmac_display_rings(struct stmmac_priv *priv)
{
	unsigned int txsize = priv->dma_tx_size;
	unsigned int rxsize = priv->dma_rx_size;

	if (priv->extend_desc) {
		pr_info("Extended RX descriptor ring:\n");
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		stmmac_display_ring((void *)priv->dma_erx, rxsize, 1);
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		pr_info("Extended TX descriptor ring:\n");
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		stmmac_display_ring((void *)priv->dma_etx, txsize, 1);
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	} else {
		pr_info("RX descriptor ring:\n");
		stmmac_display_ring((void *)priv->dma_rx, rxsize, 0);
		pr_info("TX descriptor ring:\n");
		stmmac_display_ring((void *)priv->dma_tx, txsize, 0);
	}
}

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static int stmmac_set_bfsize(int mtu, int bufsize)
{
	int ret = bufsize;

	if (mtu >= BUF_SIZE_4KiB)
		ret = BUF_SIZE_8KiB;
	else if (mtu >= BUF_SIZE_2KiB)
		ret = BUF_SIZE_4KiB;
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	else if (mtu > DEFAULT_BUFSIZE)
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		ret = BUF_SIZE_2KiB;
	else
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		ret = DEFAULT_BUFSIZE;
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	return ret;
}

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/**
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 * stmmac_clear_descriptors - clear descriptors
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 * @priv: driver private structure
 * Description: this function is called to clear the tx and rx descriptors
 * in case of both basic and extended descriptors are used.
 */
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static void stmmac_clear_descriptors(struct stmmac_priv *priv)
{
	int i;
	unsigned int txsize = priv->dma_tx_size;
	unsigned int rxsize = priv->dma_rx_size;

	/* Clear the Rx/Tx descriptors */
	for (i = 0; i < rxsize; i++)
		if (priv->extend_desc)
			priv->hw->desc->init_rx_desc(&priv->dma_erx[i].basic,
						     priv->use_riwt, priv->mode,
						     (i == rxsize - 1));
		else
			priv->hw->desc->init_rx_desc(&priv->dma_rx[i],
						     priv->use_riwt, priv->mode,
						     (i == rxsize - 1));
	for (i = 0; i < txsize; i++)
		if (priv->extend_desc)
			priv->hw->desc->init_tx_desc(&priv->dma_etx[i].basic,
						     priv->mode,
						     (i == txsize - 1));
		else
			priv->hw->desc->init_tx_desc(&priv->dma_tx[i],
						     priv->mode,
						     (i == txsize - 1));
}

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/**
 * stmmac_init_rx_buffers - init the RX descriptor buffer.
 * @priv: driver private structure
 * @p: descriptor pointer
 * @i: descriptor index
 * @flags: gfp flag.
 * Description: this function is called to allocate a receive buffer, perform
 * the DMA mapping and init the descriptor.
 */
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static int stmmac_init_rx_buffers(struct stmmac_priv *priv, struct dma_desc *p,
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				  int i, gfp_t flags)
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{
	struct sk_buff *skb;

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	skb = __netdev_alloc_skb_ip_align(priv->dev, priv->dma_buf_sz, flags);
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	if (!skb) {
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		pr_err("%s: Rx init fails; skb is NULL\n", __func__);
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		return -ENOMEM;
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	}
	priv->rx_skbuff[i] = skb;
	priv->rx_skbuff_dma[i] = dma_map_single(priv->device, skb->data,
						priv->dma_buf_sz,
						DMA_FROM_DEVICE);
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	if (dma_mapping_error(priv->device, priv->rx_skbuff_dma[i])) {
		pr_err("%s: DMA mapping error\n", __func__);
		dev_kfree_skb_any(skb);
		return -EINVAL;
	}
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	p->des2 = priv->rx_skbuff_dma[i];

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	if ((priv->hw->mode->init_desc3) &&
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	    (priv->dma_buf_sz == BUF_SIZE_16KiB))
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		priv->hw->mode->init_desc3(p);
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	return 0;
}

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static void stmmac_free_rx_buffers(struct stmmac_priv *priv, int i)
{
	if (priv->rx_skbuff[i]) {
		dma_unmap_single(priv->device, priv->rx_skbuff_dma[i],
				 priv->dma_buf_sz, DMA_FROM_DEVICE);
		dev_kfree_skb_any(priv->rx_skbuff[i]);
	}
	priv->rx_skbuff[i] = NULL;
}

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/**
 * init_dma_desc_rings - init the RX/TX descriptor rings
 * @dev: net device structure
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 * @flags: gfp flag.
 * Description: this function initializes the DMA RX/TX descriptors
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 * and allocates the socket buffers. It suppors the chained and ring
 * modes.
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 */
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static int init_dma_desc_rings(struct net_device *dev, gfp_t flags)
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{
	int i;
	struct stmmac_priv *priv = netdev_priv(dev);
	unsigned int txsize = priv->dma_tx_size;
	unsigned int rxsize = priv->dma_rx_size;
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	unsigned int bfsize = 0;
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	int ret = -ENOMEM;
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	if (priv->hw->mode->set_16kib_bfsize)
		bfsize = priv->hw->mode->set_16kib_bfsize(dev->mtu);
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	if (bfsize < BUF_SIZE_16KiB)
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		bfsize = stmmac_set_bfsize(dev->mtu, priv->dma_buf_sz);
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	priv->dma_buf_sz = bfsize;

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	if (netif_msg_probe(priv))
		pr_debug("%s: txsize %d, rxsize %d, bfsize %d\n", __func__,
			 txsize, rxsize, bfsize);
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	if (netif_msg_probe(priv)) {
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		pr_debug("(%s) dma_rx_phy=0x%08x dma_tx_phy=0x%08x\n", __func__,
			 (u32) priv->dma_rx_phy, (u32) priv->dma_tx_phy);
1044

1045 1046 1047
		/* RX INITIALIZATION */
		pr_debug("\tSKB addresses:\nskb\t\tskb data\tdma data\n");
	}
1048
	for (i = 0; i < rxsize; i++) {
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		struct dma_desc *p;
		if (priv->extend_desc)
			p = &((priv->dma_erx + i)->basic);
		else
			p = priv->dma_rx + i;
1054

1055
		ret = stmmac_init_rx_buffers(priv, p, i, flags);
1056 1057
		if (ret)
			goto err_init_rx_buffers;
1058

1059 1060 1061 1062
		if (netif_msg_probe(priv))
			pr_debug("[%p]\t[%p]\t[%x]\n", priv->rx_skbuff[i],
				 priv->rx_skbuff[i]->data,
				 (unsigned int)priv->rx_skbuff_dma[i]);
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	}
	priv->cur_rx = 0;
	priv->dirty_rx = (unsigned int)(i - rxsize);
	buf_sz = bfsize;

1068 1069 1070
	/* Setup the chained descriptor addresses */
	if (priv->mode == STMMAC_CHAIN_MODE) {
		if (priv->extend_desc) {
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			priv->hw->mode->init(priv->dma_erx, priv->dma_rx_phy,
					     rxsize, 1);
			priv->hw->mode->init(priv->dma_etx, priv->dma_tx_phy,
					     txsize, 1);
1075
		} else {
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			priv->hw->mode->init(priv->dma_rx, priv->dma_rx_phy,
					     rxsize, 0);
			priv->hw->mode->init(priv->dma_tx, priv->dma_tx_phy,
					     txsize, 0);
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		}
	}

1083 1084
	/* TX INITIALIZATION */
	for (i = 0; i < txsize; i++) {
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		struct dma_desc *p;
		if (priv->extend_desc)
			p = &((priv->dma_etx + i)->basic);
		else
			p = priv->dma_tx + i;
		p->des2 = 0;
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		priv->tx_skbuff_dma[i].buf = 0;
		priv->tx_skbuff_dma[i].map_as_page = false;
1093 1094
		priv->tx_skbuff[i] = NULL;
	}
1095

1096 1097
	priv->dirty_tx = 0;
	priv->cur_tx = 0;
1098
	netdev_reset_queue(priv->dev);
1099

1100
	stmmac_clear_descriptors(priv);
1101

1102 1103
	if (netif_msg_hw(priv))
		stmmac_display_rings(priv);
1104 1105 1106 1107 1108 1109

	return 0;
err_init_rx_buffers:
	while (--i >= 0)
		stmmac_free_rx_buffers(priv, i);
	return ret;
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}

static void dma_free_rx_skbufs(struct stmmac_priv *priv)
{
	int i;

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	for (i = 0; i < priv->dma_rx_size; i++)
		stmmac_free_rx_buffers(priv, i);
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}

static void dma_free_tx_skbufs(struct stmmac_priv *priv)
{
	int i;

	for (i = 0; i < priv->dma_tx_size; i++) {
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		struct dma_desc *p;

		if (priv->extend_desc)
			p = &((priv->dma_etx + i)->basic);
		else
			p = priv->dma_tx + i;

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		if (priv->tx_skbuff_dma[i].buf) {
			if (priv->tx_skbuff_dma[i].map_as_page)
				dma_unmap_page(priv->device,
					       priv->tx_skbuff_dma[i].buf,
					       priv->hw->desc->get_tx_len(p),
					       DMA_TO_DEVICE);
			else
				dma_unmap_single(priv->device,
						 priv->tx_skbuff_dma[i].buf,
						 priv->hw->desc->get_tx_len(p),
						 DMA_TO_DEVICE);
1143
		}
1144

1145
		if (priv->tx_skbuff[i] != NULL) {
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			dev_kfree_skb_any(priv->tx_skbuff[i]);
			priv->tx_skbuff[i] = NULL;
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			priv->tx_skbuff_dma[i].buf = 0;
			priv->tx_skbuff_dma[i].map_as_page = false;
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		}
	}
}

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/**
 * alloc_dma_desc_resources - alloc TX/RX resources.
 * @priv: private structure
 * Description: according to which descriptor can be used (extend or basic)
 * this function allocates the resources for TX and RX paths. In case of
 * reception, for example, it pre-allocated the RX socket buffer in order to
 * allow zero-copy mechanism.
 */
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static int alloc_dma_desc_resources(struct stmmac_priv *priv)
{
	unsigned int txsize = priv->dma_tx_size;
	unsigned int rxsize = priv->dma_rx_size;
	int ret = -ENOMEM;

	priv->rx_skbuff_dma = kmalloc_array(rxsize, sizeof(dma_addr_t),
					    GFP_KERNEL);
	if (!priv->rx_skbuff_dma)
		return -ENOMEM;

	priv->rx_skbuff = kmalloc_array(rxsize, sizeof(struct sk_buff *),
					GFP_KERNEL);
	if (!priv->rx_skbuff)
		goto err_rx_skbuff;

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	priv->tx_skbuff_dma = kmalloc_array(txsize,
					    sizeof(*priv->tx_skbuff_dma),
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					    GFP_KERNEL);
	if (!priv->tx_skbuff_dma)
		goto err_tx_skbuff_dma;

	priv->tx_skbuff = kmalloc_array(txsize, sizeof(struct sk_buff *),
					GFP_KERNEL);
	if (!priv->tx_skbuff)
		goto err_tx_skbuff;

	if (priv->extend_desc) {
		priv->dma_erx = dma_alloc_coherent(priv->device, rxsize *
						   sizeof(struct
							  dma_extended_desc),
						   &priv->dma_rx_phy,
						   GFP_KERNEL);
		if (!priv->dma_erx)
			goto err_dma;

		priv->dma_etx = dma_alloc_coherent(priv->device, txsize *
						   sizeof(struct
							  dma_extended_desc),
						   &priv->dma_tx_phy,
						   GFP_KERNEL);
		if (!priv->dma_etx) {
			dma_free_coherent(priv->device, priv->dma_rx_size *
					sizeof(struct dma_extended_desc),
					priv->dma_erx, priv->dma_rx_phy);
			goto err_dma;
		}
	} else {
		priv->dma_rx = dma_alloc_coherent(priv->device, rxsize *
						  sizeof(struct dma_desc),
						  &priv->dma_rx_phy,
						  GFP_KERNEL);
		if (!priv->dma_rx)
			goto err_dma;

		priv->dma_tx = dma_alloc_coherent(priv->device, txsize *
						  sizeof(struct dma_desc),
						  &priv->dma_tx_phy,
						  GFP_KERNEL);
		if (!priv->dma_tx) {
			dma_free_coherent(priv->device, priv->dma_rx_size *
					sizeof(struct dma_desc),
					priv->dma_rx, priv->dma_rx_phy);
			goto err_dma;
		}
	}

	return 0;

err_dma:
	kfree(priv->tx_skbuff);
err_tx_skbuff:
	kfree(priv->tx_skbuff_dma);
err_tx_skbuff_dma:
	kfree(priv->rx_skbuff);
err_rx_skbuff:
	kfree(priv->rx_skbuff_dma);
	return ret;
}

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static void free_dma_desc_resources(struct stmmac_priv *priv)
{
	/* Release the DMA TX/RX socket buffers */
	dma_free_rx_skbufs(priv);
	dma_free_tx_skbufs(priv);

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	/* Free DMA regions of consistent memory previously allocated */
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	if (!priv->extend_desc) {
		dma_free_coherent(priv->device,
				  priv->dma_tx_size * sizeof(struct dma_desc),
				  priv->dma_tx, priv->dma_tx_phy);
		dma_free_coherent(priv->device,
				  priv->dma_rx_size * sizeof(struct dma_desc),
				  priv->dma_rx, priv->dma_rx_phy);
	} else {
		dma_free_coherent(priv->device, priv->dma_tx_size *
				  sizeof(struct dma_extended_desc),
				  priv->dma_etx, priv->dma_tx_phy);
		dma_free_coherent(priv->device, priv->dma_rx_size *
				  sizeof(struct dma_extended_desc),
				  priv->dma_erx, priv->dma_rx_phy);
	}
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	kfree(priv->rx_skbuff_dma);
	kfree(priv->rx_skbuff);
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	kfree(priv->tx_skbuff_dma);
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	kfree(priv->tx_skbuff);
}

/**
 *  stmmac_dma_operation_mode - HW DMA operation mode
1272
 *  @priv: driver private structure
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 *  Description: it is used for configuring the DMA operation mode register in
 *  order to program the tx/rx DMA thresholds or Store-And-Forward mode.
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 */
static void stmmac_dma_operation_mode(struct stmmac_priv *priv)
{
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	int rxfifosz = priv->plat->rx_fifo_size;

1280
	if (priv->plat->force_thresh_dma_mode)
1281
		priv->hw->dma->dma_mode(priv->ioaddr, tc, tc, rxfifosz);
1282
	else if (priv->plat->force_sf_dma_mode || priv->plat->tx_coe) {
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		/*
		 * In case of GMAC, SF mode can be enabled
		 * to perform the TX COE in HW. This depends on:
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		 * 1) TX COE if actually supported
		 * 2) There is no bugged Jumbo frame support
		 *    that needs to not insert csum in the TDES.
		 */
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		priv->hw->dma->dma_mode(priv->ioaddr, SF_DMA_MODE, SF_DMA_MODE,
					rxfifosz);
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		priv->xstats.threshold = SF_DMA_MODE;
1293
	} else
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		priv->hw->dma->dma_mode(priv->ioaddr, tc, SF_DMA_MODE,
					rxfifosz);
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}

/**
1299
 * stmmac_tx_clean - to manage the transmission completion
1300
 * @priv: driver private structure
1301
 * Description: it reclaims the transmit resources after transmission completes.
1302
 */
1303
static void stmmac_tx_clean(struct stmmac_priv *priv)
1304 1305
{
	unsigned int txsize = priv->dma_tx_size;
1306
	unsigned int bytes_compl = 0, pkts_compl = 0;
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1308 1309
	spin_lock(&priv->tx_lock);

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	priv->xstats.tx_clean++;

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	while (priv->dirty_tx != priv->cur_tx) {
		int last;
		unsigned int entry = priv->dirty_tx % txsize;
		struct sk_buff *skb = priv->tx_skbuff[entry];
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		struct dma_desc *p;

		if (priv->extend_desc)
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			p = (struct dma_desc *)(priv->dma_etx + entry);
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		else
			p = priv->dma_tx + entry;
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		/* Check if the descriptor is owned by the DMA. */
1324
		if (priv->hw->desc->get_tx_owner(p))
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			break;

1327
		/* Verify tx error by looking at the last segment. */
1328
		last = priv->hw->desc->get_tx_ls(p);
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		if (likely(last)) {
			int tx_error =
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			    priv->hw->desc->tx_status(&priv->dev->stats,
						      &priv->xstats, p,
						      priv->ioaddr);
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			if (likely(tx_error == 0)) {
				priv->dev->stats.tx_packets++;
				priv->xstats.tx_pkt_n++;
			} else
				priv->dev->stats.tx_errors++;
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			stmmac_get_tx_hwtstamp(priv, entry, skb);
1341
		}
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		if (netif_msg_tx_done(priv))
			pr_debug("%s: curr %d, dirty %d\n", __func__,
				 priv->cur_tx, priv->dirty_tx);
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		if (likely(priv->tx_skbuff_dma[entry].buf)) {
			if (priv->tx_skbuff_dma[entry].map_as_page)
				dma_unmap_page(priv->device,
					       priv->tx_skbuff_dma[entry].buf,
					       priv->hw->desc->get_tx_len(p),
					       DMA_TO_DEVICE);
			else
				dma_unmap_single(priv->device,
						 priv->tx_skbuff_dma[entry].buf,
						 priv->hw->desc->get_tx_len(p),
						 DMA_TO_DEVICE);
			priv->tx_skbuff_dma[entry].buf = 0;
			priv->tx_skbuff_dma[entry].map_as_page = false;
1359
		}
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		priv->hw->mode->clean_desc3(priv, p);
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		if (likely(skb != NULL)) {
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			pkts_compl++;
			bytes_compl += skb->len;
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			dev_consume_skb_any(skb);
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			priv->tx_skbuff[entry] = NULL;
		}

1369
		priv->hw->desc->release_tx_desc(p, priv->mode);
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1371
		priv->dirty_tx++;
1372
	}
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	netdev_completed_queue(priv->dev, pkts_compl, bytes_compl);

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	if (unlikely(netif_queue_stopped(priv->dev) &&
		     stmmac_tx_avail(priv) > STMMAC_TX_THRESH(priv))) {
		netif_tx_lock(priv->dev);
		if (netif_queue_stopped(priv->dev) &&
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		    stmmac_tx_avail(priv) > STMMAC_TX_THRESH(priv)) {
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			if (netif_msg_tx_done(priv))
				pr_debug("%s: restart transmit\n", __func__);
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			netif_wake_queue(priv->dev);
		}
		netif_tx_unlock(priv->dev);
	}
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	if ((priv->eee_enabled) && (!priv->tx_path_in_lpi_mode)) {
		stmmac_enable_eee_mode(priv);
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		mod_timer(&priv->eee_ctrl_timer, STMMAC_LPI_T(eee_timer));
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	}
1392
	spin_unlock(&priv->tx_lock);
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}

1395
static inline void stmmac_enable_dma_irq(struct stmmac_priv *priv)
1396
{
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	priv->hw->dma->enable_dma_irq(priv->ioaddr);
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}

1400
static inline void stmmac_disable_dma_irq(struct stmmac_priv *priv)
1401
{
1402
	priv->hw->dma->disable_dma_irq(priv->ioaddr);
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}

/**
1406
 * stmmac_tx_err - to manage the tx error
1407
 * @priv: driver private structure
1408
 * Description: it cleans the descriptors and restarts the transmission
1409
 * in case of transmission errors.
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 */
static void stmmac_tx_err(struct stmmac_priv *priv)
{
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	int i;
	int txsize = priv->dma_tx_size;
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	netif_stop_queue(priv->dev);

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	priv->hw->dma->stop_tx(priv->ioaddr);
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	dma_free_tx_skbufs(priv);
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	for (i = 0; i < txsize; i++)
		if (priv->extend_desc)
			priv->hw->desc->init_tx_desc(&priv->dma_etx[i].basic,
						     priv->mode,
						     (i == txsize - 1));
		else
			priv->hw->desc->init_tx_desc(&priv->dma_tx[i],
						     priv->mode,
						     (i == txsize - 1));
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	priv->dirty_tx = 0;
	priv->cur_tx = 0;
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	netdev_reset_queue(priv->dev);
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	priv->hw->dma->start_tx(priv->ioaddr);
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	priv->dev->stats.tx_errors++;
	netif_wake_queue(priv->dev);
}

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/**
1438
 * stmmac_dma_interrupt - DMA ISR
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 * @priv: driver private structure
 * Description: this is the DMA ISR. It is called by the main ISR.
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 * It calls the dwmac dma routine and schedule poll method in case of some
 * work can be done.
1443
 */
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static void stmmac_dma_interrupt(struct stmmac_priv *priv)
{
	int status;
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	int rxfifosz = priv->plat->rx_fifo_size;
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1449
	status = priv->hw->dma->dma_interrupt(priv->ioaddr, &priv->xstats);
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	if (likely((status & handle_rx)) || (status & handle_tx)) {
		if (likely(napi_schedule_prep(&priv->napi))) {
			stmmac_disable_dma_irq(priv);
			__napi_schedule(&priv->napi);
		}
	}
	if (unlikely(status & tx_hard_error_bump_tc)) {
1457
		/* Try to bump up the dma threshold on this failure */
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		if (unlikely(priv->xstats.threshold != SF_DMA_MODE) &&
		    (tc <= 256)) {
1460
			tc += 64;
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			if (priv->plat->force_thresh_dma_mode)
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				priv->hw->dma->dma_mode(priv->ioaddr, tc, tc,
							rxfifosz);
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			else
				priv->hw->dma->dma_mode(priv->ioaddr, tc,
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							SF_DMA_MODE, rxfifosz);
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			priv->xstats.threshold = tc;
1468
		}
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	} else if (unlikely(status == tx_hard_error))
		stmmac_tx_err(priv);
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}

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/**
 * stmmac_mmc_setup: setup the Mac Management Counters (MMC)
 * @priv: driver private structure
 * Description: this masks the MMC irq, in fact, the counters are managed in SW.
 */
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static void stmmac_mmc_setup(struct stmmac_priv *priv)
{
	unsigned int mode = MMC_CNTRL_RESET_ON_READ | MMC_CNTRL_COUNTER_RESET |
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	    MMC_CNTRL_PRESET | MMC_CNTRL_FULL_HALF_PRESET;
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	dwmac_mmc_intr_all_mask(priv->ioaddr);
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	if (priv->dma_cap.rmon) {
		dwmac_mmc_ctrl(priv->ioaddr, mode);
		memset(&priv->mmc, 0, sizeof(struct stmmac_counters));
	} else
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		pr_info(" No MAC Management Counters available\n");
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}

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/**
 * stmmac_get_synopsys_id - return the SYINID.
 * @priv: driver private structure
 * Description: this simple function is to decode and return the SYINID
 * starting from the HW core register.
 */
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static u32 stmmac_get_synopsys_id(struct stmmac_priv *priv)
{
	u32 hwid = priv->hw->synopsys_uid;

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	/* Check Synopsys Id (not available on old chips) */
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	if (likely(hwid)) {
		u32 uid = ((hwid & 0x0000ff00) >> 8);
		u32 synid = (hwid & 0x000000ff);

1507
		pr_info("stmmac - user ID: 0x%x, Synopsys ID: 0x%x\n",
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			uid, synid);

		return synid;
	}
	return 0;
}
1514

1515
/**
1516
 * stmmac_selec_desc_mode - to select among: normal/alternate/extend descriptors
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 * @priv: driver private structure
 * Description: select the Enhanced/Alternate or Normal descriptors.
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 * In case of Enhanced/Alternate, it checks if the extended descriptors are
 * supported by the HW capability register.
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 */
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static void stmmac_selec_desc_mode(struct stmmac_priv *priv)
{
	if (priv->plat->enh_desc) {
		pr_info(" Enhanced/Alternate descriptors\n");
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		/* GMAC older than 3.50 has no extended descriptors */
		if (priv->synopsys_id >= DWMAC_CORE_3_50) {
			pr_info("\tEnabled extended descriptors\n");
			priv->extend_desc = 1;
		} else
			pr_warn("Extended descriptors not supported\n");

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		priv->hw->desc = &enh_desc_ops;
	} else {
		pr_info(" Normal descriptors\n");
		priv->hw->desc = &ndesc_ops;
	}
}

/**
1542
 * stmmac_get_hw_features - get MAC capabilities from the HW cap. register.
1543
 * @priv: driver private structure
1544 1545 1546 1547 1548
 * Description:
 *  new GMAC chip generations have a new register to indicate the
 *  presence of the optional feature/functions.
 *  This can be also used to override the value passed through the
 *  platform and necessary for old MAC10/100 and GMAC chips.
1549 1550 1551
 */
static int stmmac_get_hw_features(struct stmmac_priv *priv)
{
1552
	u32 hw_cap = 0;
1553

1554 1555
	if (priv->hw->dma->get_hw_feature) {
		hw_cap = priv->hw->dma->get_hw_feature(priv->ioaddr);
1556

1557 1558 1559 1560
		priv->dma_cap.mbps_10_100 = (hw_cap & DMA_HW_FEAT_MIISEL);
		priv->dma_cap.mbps_1000 = (hw_cap & DMA_HW_FEAT_GMIISEL) >> 1;
		priv->dma_cap.half_duplex = (hw_cap & DMA_HW_FEAT_HDSEL) >> 2;
		priv->dma_cap.hash_filter = (hw_cap & DMA_HW_FEAT_HASHSEL) >> 4;
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		priv->dma_cap.multi_addr = (hw_cap & DMA_HW_FEAT_ADDMAC) >> 5;
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		priv->dma_cap.pcs = (hw_cap & DMA_HW_FEAT_PCSSEL) >> 6;
		priv->dma_cap.sma_mdio = (hw_cap & DMA_HW_FEAT_SMASEL) >> 8;
		priv->dma_cap.pmt_remote_wake_up =
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		    (hw_cap & DMA_HW_FEAT_RWKSEL) >> 9;
1566
		priv->dma_cap.pmt_magic_frame =
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1567
		    (hw_cap & DMA_HW_FEAT_MGKSEL) >> 10;
1568
		/* MMC */
1569
		priv->dma_cap.rmon = (hw_cap & DMA_HW_FEAT_MMCSEL) >> 11;
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1570
		/* IEEE 1588-2002 */
1571
		priv->dma_cap.time_stamp =
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1572 1573
		    (hw_cap & DMA_HW_FEAT_TSVER1SEL) >> 12;
		/* IEEE 1588-2008 */
1574
		priv->dma_cap.atime_stamp =
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		    (hw_cap & DMA_HW_FEAT_TSVER2SEL) >> 13;
1576
		/* 802.3az - Energy-Efficient Ethernet (EEE) */
1577 1578
		priv->dma_cap.eee = (hw_cap & DMA_HW_FEAT_EEESEL) >> 14;
		priv->dma_cap.av = (hw_cap & DMA_HW_FEAT_AVSEL) >> 15;
1579
		/* TX and RX csum */
1580 1581
		priv->dma_cap.tx_coe = (hw_cap & DMA_HW_FEAT_TXCOESEL) >> 16;
		priv->dma_cap.rx_coe_type1 =
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1582
		    (hw_cap & DMA_HW_FEAT_RXTYP1COE) >> 17;
1583
		priv->dma_cap.rx_coe_type2 =
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1584
		    (hw_cap & DMA_HW_FEAT_RXTYP2COE) >> 18;
1585
		priv->dma_cap.rxfifo_over_2048 =
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1586
		    (hw_cap & DMA_HW_FEAT_RXFIFOSIZE) >> 19;
1587
		/* TX and RX number of channels */
1588
		priv->dma_cap.number_rx_channel =
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1589
		    (hw_cap & DMA_HW_FEAT_RXCHCNT) >> 20;
1590
		priv->dma_cap.number_tx_channel =
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		    (hw_cap & DMA_HW_FEAT_TXCHCNT) >> 22;
		/* Alternate (enhanced) DESC mode */
		priv->dma_cap.enh_desc = (hw_cap & DMA_HW_FEAT_ENHDESSEL) >> 24;
1594
	}
1595 1596 1597 1598

	return hw_cap;
}

1599
/**
1600
 * stmmac_check_ether_addr - check if the MAC addr is valid
1601 1602 1603 1604 1605
 * @priv: driver private structure
 * Description:
 * it is to verify if the MAC address is valid, in case of failures it
 * generates a random MAC address
 */
1606 1607 1608
static void stmmac_check_ether_addr(struct stmmac_priv *priv)
{
	if (!is_valid_ether_addr(priv->dev->dev_addr)) {
1609
		priv->hw->mac->get_umac_addr(priv->hw,
1610
					     priv->dev->dev_addr, 0);
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1611
		if (!is_valid_ether_addr(priv->dev->dev_addr))
1612
			eth_hw_addr_random(priv->dev);
1613 1614
		pr_info("%s: device MAC address %pM\n", priv->dev->name,
			priv->dev->dev_addr);
1615 1616 1617
	}
}

1618
/**
1619
 * stmmac_init_dma_engine - DMA init.
1620 1621 1622 1623 1624 1625
 * @priv: driver private structure
 * Description:
 * It inits the DMA invoking the specific MAC/GMAC callback.
 * Some DMA parameters can be passed from the platform;
 * in case of these are not passed a default is kept for the MAC or GMAC.
 */
1626 1627 1628
static int stmmac_init_dma_engine(struct stmmac_priv *priv)
{
	int pbl = DEFAULT_DMA_PBL, fixed_burst = 0, burst_len = 0;
1629
	int mixed_burst = 0;
1630
	int atds = 0;
1631 1632 1633 1634

	if (priv->plat->dma_cfg) {
		pbl = priv->plat->dma_cfg->pbl;
		fixed_burst = priv->plat->dma_cfg->fixed_burst;
1635
		mixed_burst = priv->plat->dma_cfg->mixed_burst;
1636 1637 1638
		burst_len = priv->plat->dma_cfg->burst_len;
	}

1639 1640 1641
	if (priv->extend_desc && (priv->mode == STMMAC_RING_MODE))
		atds = 1;

1642
	return priv->hw->dma->init(priv->ioaddr, pbl, fixed_burst, mixed_burst,
1643
				   burst_len, priv->dma_tx_phy,
1644
				   priv->dma_rx_phy, atds);
1645 1646
}

1647
/**
1648
 * stmmac_tx_timer - mitigation sw timer for tx.
1649 1650 1651 1652 1653 1654 1655 1656 1657 1658 1659 1660
 * @data: data pointer
 * Description:
 * This is the timer handler to directly invoke the stmmac_tx_clean.
 */
static void stmmac_tx_timer(unsigned long data)
{
	struct stmmac_priv *priv = (struct stmmac_priv *)data;

	stmmac_tx_clean(priv);
}

/**
1661
 * stmmac_init_tx_coalesce - init tx mitigation options.
1662
 * @priv: driver private structure
1663 1664 1665 1666 1667 1668 1669 1670 1671 1672 1673 1674 1675 1676 1677 1678
 * Description:
 * This inits the transmit coalesce parameters: i.e. timer rate,
 * timer handler and default threshold used for enabling the
 * interrupt on completion bit.
 */
static void stmmac_init_tx_coalesce(struct stmmac_priv *priv)
{
	priv->tx_coal_frames = STMMAC_TX_FRAMES;
	priv->tx_coal_timer = STMMAC_COAL_TX_TIMER;
	init_timer(&priv->txtimer);
	priv->txtimer.expires = STMMAC_COAL_TIMER(priv->tx_coal_timer);
	priv->txtimer.data = (unsigned long)priv;
	priv->txtimer.function = stmmac_tx_timer;
	add_timer(&priv->txtimer);
}

1679
/**
1680
 * stmmac_hw_setup - setup mac in a usable state.
1681 1682
 *  @dev : pointer to the device structure.
 *  Description:
1683 1684 1685 1686
 *  this is the main function to setup the HW in a usable state because the
 *  dma engine is reset, the core registers are configured (e.g. AXI,
 *  Checksum features, timers). The DMA is ready to start receiving and
 *  transmitting.
1687 1688 1689 1690
 *  Return value:
 *  0 on success and an appropriate (-)ve integer as defined in errno.h
 *  file on failure.
 */
1691
static int stmmac_hw_setup(struct net_device *dev, bool init_ptp)
1692 1693 1694 1695 1696 1697 1698 1699 1700 1701 1702 1703
{
	struct stmmac_priv *priv = netdev_priv(dev);
	int ret;

	/* DMA initialization and SW reset */
	ret = stmmac_init_dma_engine(priv);
	if (ret < 0) {
		pr_err("%s: DMA engine initialization failed\n", __func__);
		return ret;
	}

	/* Copy the MAC addr into the HW  */
1704
	priv->hw->mac->set_umac_addr(priv->hw, dev->dev_addr, 0);
1705 1706 1707 1708 1709 1710

	/* If required, perform hw setup of the bus. */
	if (priv->plat->bus_setup)
		priv->plat->bus_setup(priv->ioaddr);

	/* Initialize the MAC Core */
1711
	priv->hw->mac->core_init(priv->hw, dev->mtu);
1712

1713 1714 1715 1716
	ret = priv->hw->mac->rx_ipc(priv->hw);
	if (!ret) {
		pr_warn(" RX IPC Checksum Offload disabled\n");
		priv->plat->rx_coe = STMMAC_RX_COE_NONE;
1717
		priv->hw->rx_csum = 0;
1718 1719
	}

1720 1721 1722 1723 1724 1725 1726 1727
	/* Enable the MAC Rx/Tx */
	stmmac_set_mac(priv->ioaddr, true);

	/* Set the HW DMA mode and the COE */
	stmmac_dma_operation_mode(priv);

	stmmac_mmc_setup(priv);

1728 1729 1730 1731 1732
	if (init_ptp) {
		ret = stmmac_init_ptp(priv);
		if (ret && ret != -EOPNOTSUPP)
			pr_warn("%s: failed PTP initialisation\n", __func__);
	}
1733

1734
#ifdef CONFIG_DEBUG_FS
1735 1736 1737 1738 1739 1740 1741 1742 1743 1744 1745
	ret = stmmac_init_fs(dev);
	if (ret < 0)
		pr_warn("%s: failed debugFS registration\n", __func__);
#endif
	/* Start the ball rolling... */
	pr_debug("%s: DMA RX/TX processes started...\n", dev->name);
	priv->hw->dma->start_tx(priv->ioaddr);
	priv->hw->dma->start_rx(priv->ioaddr);

	/* Dump DMA/MAC registers */
	if (netif_msg_hw(priv)) {
1746
		priv->hw->mac->dump_regs(priv->hw);
1747 1748 1749 1750 1751 1752 1753 1754 1755 1756
		priv->hw->dma->dump_regs(priv->ioaddr);
	}
	priv->tx_lpi_timer = STMMAC_DEFAULT_TWT_LS;

	if ((priv->use_riwt) && (priv->hw->dma->rx_watchdog)) {
		priv->rx_riwt = MAX_DMA_RIWT;
		priv->hw->dma->rx_watchdog(priv->ioaddr, MAX_DMA_RIWT);
	}

	if (priv->pcs && priv->hw->mac->ctrl_ane)
1757
		priv->hw->mac->ctrl_ane(priv->hw, 0);
1758 1759 1760 1761

	return 0;
}

1762 1763 1764 1765 1766 1767 1768 1769 1770 1771 1772 1773 1774 1775
/**
 *  stmmac_open - open entry point of the driver
 *  @dev : pointer to the device structure.
 *  Description:
 *  This function is the open entry point of the driver.
 *  Return value:
 *  0 on success and an appropriate (-)ve integer as defined in errno.h
 *  file on failure.
 */
static int stmmac_open(struct net_device *dev)
{
	struct stmmac_priv *priv = netdev_priv(dev);
	int ret;

1776 1777
	stmmac_check_ether_addr(priv);

1778 1779
	if (priv->pcs != STMMAC_PCS_RGMII && priv->pcs != STMMAC_PCS_TBI &&
	    priv->pcs != STMMAC_PCS_RTBI) {
1780 1781 1782 1783
		ret = stmmac_init_phy(dev);
		if (ret) {
			pr_err("%s: Cannot attach to PHY (error: %d)\n",
			       __func__, ret);
1784
			return ret;
1785
		}
1786
	}
1787

1788 1789 1790 1791
	/* Extra statistics */
	memset(&priv->xstats, 0, sizeof(struct stmmac_extra_stats));
	priv->xstats.threshold = tc;

1792 1793 1794 1795
	/* Create and initialize the TX/RX descriptors chains. */
	priv->dma_tx_size = STMMAC_ALIGN(dma_txsize);
	priv->dma_rx_size = STMMAC_ALIGN(dma_rxsize);
	priv->dma_buf_sz = STMMAC_ALIGN(buf_sz);
1796

1797
	ret = alloc_dma_desc_resources(priv);
1798 1799 1800 1801 1802
	if (ret < 0) {
		pr_err("%s: DMA descriptors allocation failed\n", __func__);
		goto dma_desc_error;
	}

1803 1804 1805 1806 1807 1808
	ret = init_dma_desc_rings(dev, GFP_KERNEL);
	if (ret < 0) {
		pr_err("%s: DMA descriptors initialization failed\n", __func__);
		goto init_error;
	}

1809
	ret = stmmac_hw_setup(dev, true);
1810
	if (ret < 0) {
1811
		pr_err("%s: Hw setup failed\n", __func__);
1812
		goto init_error;
1813 1814
	}

1815 1816
	stmmac_init_tx_coalesce(priv);

1817 1818
	if (priv->phydev)
		phy_start(priv->phydev);
1819

1820 1821
	/* Request the IRQ lines */
	ret = request_irq(dev->irq, stmmac_interrupt,
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1822
			  IRQF_SHARED, dev->name, dev);
1823 1824 1825
	if (unlikely(ret < 0)) {
		pr_err("%s: ERROR: allocating the IRQ %d (error: %d)\n",
		       __func__, dev->irq, ret);
1826
		goto init_error;
1827 1828
	}

1829 1830 1831 1832 1833
	/* Request the Wake IRQ in case of another line is used for WoL */
	if (priv->wol_irq != dev->irq) {
		ret = request_irq(priv->wol_irq, stmmac_interrupt,
				  IRQF_SHARED, dev->name, dev);
		if (unlikely(ret < 0)) {
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1834 1835
			pr_err("%s: ERROR: allocating the WoL IRQ %d (%d)\n",
			       __func__, priv->wol_irq, ret);
1836
			goto wolirq_error;
1837 1838 1839
		}
	}

1840
	/* Request the IRQ lines */
1841
	if (priv->lpi_irq > 0) {
1842 1843 1844 1845 1846
		ret = request_irq(priv->lpi_irq, stmmac_interrupt, IRQF_SHARED,
				  dev->name, dev);
		if (unlikely(ret < 0)) {
			pr_err("%s: ERROR: allocating the LPI IRQ %d (%d)\n",
			       __func__, priv->lpi_irq, ret);
1847
			goto lpiirq_error;
1848 1849 1850
		}
	}

1851 1852
	napi_enable(&priv->napi);
	netif_start_queue(dev);
1853

1854
	return 0;
1855

1856
lpiirq_error:
1857 1858
	if (priv->wol_irq != dev->irq)
		free_irq(priv->wol_irq, dev);
1859
wolirq_error:
1860 1861
	free_irq(dev->irq, dev);

1862 1863
init_error:
	free_dma_desc_resources(priv);
1864
dma_desc_error:
1865 1866
	if (priv->phydev)
		phy_disconnect(priv->phydev);
1867

1868
	return ret;
1869 1870 1871 1872 1873 1874 1875 1876 1877 1878 1879 1880
}

/**
 *  stmmac_release - close entry point of the driver
 *  @dev : device pointer.
 *  Description:
 *  This is the stop entry point of the driver.
 */
static int stmmac_release(struct net_device *dev)
{
	struct stmmac_priv *priv = netdev_priv(dev);

1881 1882 1883
	if (priv->eee_enabled)
		del_timer_sync(&priv->eee_ctrl_timer);

1884 1885 1886 1887 1888 1889 1890 1891 1892 1893 1894
	/* Stop and disconnect the PHY */
	if (priv->phydev) {
		phy_stop(priv->phydev);
		phy_disconnect(priv->phydev);
		priv->phydev = NULL;
	}

	netif_stop_queue(dev);

	napi_disable(&priv->napi);

1895 1896
	del_timer_sync(&priv->txtimer);

1897 1898
	/* Free the IRQ lines */
	free_irq(dev->irq, dev);
1899 1900
	if (priv->wol_irq != dev->irq)
		free_irq(priv->wol_irq, dev);
1901
	if (priv->lpi_irq > 0)
1902
		free_irq(priv->lpi_irq, dev);
1903 1904

	/* Stop TX/RX DMA and clear the descriptors */
1905 1906
	priv->hw->dma->stop_tx(priv->ioaddr);
	priv->hw->dma->stop_rx(priv->ioaddr);
1907 1908 1909 1910

	/* Release and free the Rx/Tx resources */
	free_dma_desc_resources(priv);

1911
	/* Disable the MAC Rx/Tx */
1912
	stmmac_set_mac(priv->ioaddr, false);
1913 1914 1915

	netif_carrier_off(dev);

1916
#ifdef CONFIG_DEBUG_FS
1917 1918 1919
	stmmac_exit_fs();
#endif

1920 1921
	stmmac_release_ptp(priv);

1922 1923 1924 1925
	return 0;
}

/**
1926
 *  stmmac_xmit - Tx entry point of the driver
1927 1928
 *  @skb : the socket buffer
 *  @dev : device pointer
1929 1930 1931
 *  Description : this is the tx entry point of the driver.
 *  It programs the chain or the ring and supports oversized frames
 *  and SG feature.
1932 1933 1934 1935 1936 1937
 */
static netdev_tx_t stmmac_xmit(struct sk_buff *skb, struct net_device *dev)
{
	struct stmmac_priv *priv = netdev_priv(dev);
	unsigned int txsize = priv->dma_tx_size;
	unsigned int entry;
1938
	int i, csum_insertion = 0, is_jumbo = 0;
1939 1940
	int nfrags = skb_shinfo(skb)->nr_frags;
	struct dma_desc *desc, *first;
1941
	unsigned int nopaged_len = skb_headlen(skb);
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1942
	unsigned int enh_desc = priv->plat->enh_desc;
1943

1944 1945
	spin_lock(&priv->tx_lock);

1946
	if (unlikely(stmmac_tx_avail(priv) < nfrags + 1)) {
1947
		spin_unlock(&priv->tx_lock);
1948 1949 1950
		if (!netif_queue_stopped(dev)) {
			netif_stop_queue(dev);
			/* This is a hard error, log it. */
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1951
			pr_err("%s: Tx Ring full when queue awake\n", __func__);
1952 1953 1954 1955
		}
		return NETDEV_TX_BUSY;
	}

1956 1957 1958
	if (priv->tx_path_in_lpi_mode)
		stmmac_disable_eee_mode(priv);

1959 1960
	entry = priv->cur_tx % txsize;

1961
	csum_insertion = (skb->ip_summed == CHECKSUM_PARTIAL);
1962

1963
	if (priv->extend_desc)
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1964
		desc = (struct dma_desc *)(priv->dma_etx + entry);
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	else
		desc = priv->dma_tx + entry;

1968 1969
	first = desc;

1970
	/* To program the descriptors according to the size of the frame */
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1971 1972 1973
	if (enh_desc)
		is_jumbo = priv->hw->mode->is_jumbo_frm(skb->len, enh_desc);

1974
	if (likely(!is_jumbo)) {
1975
		desc->des2 = dma_map_single(priv->device, skb->data,
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1976
					    nopaged_len, DMA_TO_DEVICE);
1977 1978 1979
		if (dma_mapping_error(priv->device, desc->des2))
			goto dma_map_err;
		priv->tx_skbuff_dma[entry].buf = desc->des2;
1980
		priv->hw->desc->prepare_tx_desc(desc, 1, nopaged_len,
1981
						csum_insertion, priv->mode);
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1982
	} else {
1983
		desc = first;
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1984
		entry = priv->hw->mode->jumbo_frm(priv, skb, csum_insertion);
1985 1986
		if (unlikely(entry < 0))
			goto dma_map_err;
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1987
	}
1988 1989

	for (i = 0; i < nfrags; i++) {
1990 1991
		const skb_frag_t *frag = &skb_shinfo(skb)->frags[i];
		int len = skb_frag_size(frag);
1992

1993
		priv->tx_skbuff[entry] = NULL;
1994
		entry = (++priv->cur_tx) % txsize;
1995
		if (priv->extend_desc)
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1996
			desc = (struct dma_desc *)(priv->dma_etx + entry);
1997 1998
		else
			desc = priv->dma_tx + entry;
1999

2000 2001
		desc->des2 = skb_frag_dma_map(priv->device, frag, 0, len,
					      DMA_TO_DEVICE);
2002 2003 2004 2005 2006
		if (dma_mapping_error(priv->device, desc->des2))
			goto dma_map_err; /* should reuse desc w/o issues */

		priv->tx_skbuff_dma[entry].buf = desc->des2;
		priv->tx_skbuff_dma[entry].map_as_page = true;
2007 2008
		priv->hw->desc->prepare_tx_desc(desc, 0, len, csum_insertion,
						priv->mode);
2009
		wmb();
2010
		priv->hw->desc->set_tx_owner(desc);
2011
		wmb();
2012 2013
	}

2014 2015
	priv->tx_skbuff[entry] = skb;

2016
	/* Finalize the latest segment. */
2017
	priv->hw->desc->close_tx_desc(desc);
2018

2019
	wmb();
2020 2021 2022 2023 2024 2025 2026 2027 2028 2029 2030 2031
	/* According to the coalesce parameter the IC bit for the latest
	 * segment could be reset and the timer re-started to invoke the
	 * stmmac_tx function. This approach takes care about the fragments.
	 */
	priv->tx_count_frames += nfrags + 1;
	if (priv->tx_coal_frames > priv->tx_count_frames) {
		priv->hw->desc->clear_tx_ic(desc);
		priv->xstats.tx_reset_ic_bit++;
		mod_timer(&priv->txtimer,
			  STMMAC_COAL_TIMER(priv->tx_coal_timer));
	} else
		priv->tx_count_frames = 0;
2032

2033
	/* To avoid raise condition */
2034
	priv->hw->desc->set_tx_owner(first);
2035
	wmb();
2036 2037 2038 2039

	priv->cur_tx++;

	if (netif_msg_pktdata(priv)) {
2040
		pr_debug("%s: curr %d dirty=%d entry=%d, first=%p, nfrags=%d",
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2041 2042
			__func__, (priv->cur_tx % txsize),
			(priv->dirty_tx % txsize), entry, first, nfrags);
2043

2044 2045 2046 2047 2048
		if (priv->extend_desc)
			stmmac_display_ring((void *)priv->dma_etx, txsize, 1);
		else
			stmmac_display_ring((void *)priv->dma_tx, txsize, 0);

2049
		pr_debug(">>> frame to be transmitted: ");
2050 2051 2052
		print_pkt(skb->data, skb->len);
	}
	if (unlikely(stmmac_tx_avail(priv) <= (MAX_SKB_FRAGS + 1))) {
2053 2054
		if (netif_msg_hw(priv))
			pr_debug("%s: stop transmitted packets\n", __func__);
2055 2056 2057 2058 2059
		netif_stop_queue(dev);
	}

	dev->stats.tx_bytes += skb->len;

2060 2061 2062 2063 2064 2065 2066 2067 2068
	if (unlikely((skb_shinfo(skb)->tx_flags & SKBTX_HW_TSTAMP) &&
		     priv->hwts_tx_en)) {
		/* declare that device is doing timestamping */
		skb_shinfo(skb)->tx_flags |= SKBTX_IN_PROGRESS;
		priv->hw->desc->enable_tx_timestamp(first);
	}

	if (!priv->hwts_tx_en)
		skb_tx_timestamp(skb);
2069

2070
	netdev_sent_queue(dev, skb->len);
2071 2072
	priv->hw->dma->enable_dma_transmission(priv->ioaddr);

2073
	spin_unlock(&priv->tx_lock);
2074
	return NETDEV_TX_OK;
2075

2076
dma_map_err:
2077
	spin_unlock(&priv->tx_lock);
2078 2079 2080
	dev_err(priv->device, "Tx dma map failed\n");
	dev_kfree_skb(skb);
	priv->dev->stats.tx_dropped++;
2081 2082 2083
	return NETDEV_TX_OK;
}

2084 2085 2086 2087 2088 2089 2090 2091 2092 2093 2094 2095 2096 2097 2098 2099 2100
static void stmmac_rx_vlan(struct net_device *dev, struct sk_buff *skb)
{
	struct ethhdr *ehdr;
	u16 vlanid;

	if ((dev->features & NETIF_F_HW_VLAN_CTAG_RX) ==
	    NETIF_F_HW_VLAN_CTAG_RX &&
	    !__vlan_get_tag(skb, &vlanid)) {
		/* pop the vlan tag */
		ehdr = (struct ethhdr *)skb->data;
		memmove(skb->data + VLAN_HLEN, ehdr, ETH_ALEN * 2);
		skb_pull(skb, VLAN_HLEN);
		__vlan_hwaccel_put_tag(skb, htons(ETH_P_8021Q), vlanid);
	}
}


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/**
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 * stmmac_rx_refill - refill used skb preallocated buffers
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 * @priv: driver private structure
 * Description : this is to reallocate the skb for the reception process
 * that is based on zero-copy.
 */
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static inline void stmmac_rx_refill(struct stmmac_priv *priv)
{
	unsigned int rxsize = priv->dma_rx_size;
	int bfsize = priv->dma_buf_sz;

	for (; priv->cur_rx - priv->dirty_rx > 0; priv->dirty_rx++) {
		unsigned int entry = priv->dirty_rx % rxsize;
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		struct dma_desc *p;

		if (priv->extend_desc)
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			p = (struct dma_desc *)(priv->dma_erx + entry);
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		else
			p = priv->dma_rx + entry;

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		if (likely(priv->rx_skbuff[entry] == NULL)) {
			struct sk_buff *skb;

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			skb = netdev_alloc_skb_ip_align(priv->dev, bfsize);
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			if (unlikely(skb == NULL))
				break;

			priv->rx_skbuff[entry] = skb;
			priv->rx_skbuff_dma[entry] =
			    dma_map_single(priv->device, skb->data, bfsize,
					   DMA_FROM_DEVICE);
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			if (dma_mapping_error(priv->device,
					      priv->rx_skbuff_dma[entry])) {
				dev_err(priv->device, "Rx dma map failed\n");
				dev_kfree_skb(skb);
				break;
			}
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			p->des2 = priv->rx_skbuff_dma[entry];
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			priv->hw->mode->refill_desc3(priv, p);
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			if (netif_msg_rx_status(priv))
				pr_debug("\trefill entry #%d\n", entry);
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		}
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		wmb();
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		priv->hw->desc->set_rx_owner(p);
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		wmb();
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	}
}

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/**
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 * stmmac_rx - manage the receive process
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 * @priv: driver private structure
 * @limit: napi bugget.
 * Description :  this the function called by the napi poll method.
 * It gets all the frames inside the ring.
 */
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static int stmmac_rx(struct stmmac_priv *priv, int limit)
{
	unsigned int rxsize = priv->dma_rx_size;
	unsigned int entry = priv->cur_rx % rxsize;
	unsigned int next_entry;
	unsigned int count = 0;
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	int coe = priv->hw->rx_csum;
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	if (netif_msg_rx_status(priv)) {
		pr_debug("%s: descriptor ring:\n", __func__);
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		if (priv->extend_desc)
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			stmmac_display_ring((void *)priv->dma_erx, rxsize, 1);
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		else
			stmmac_display_ring((void *)priv->dma_rx, rxsize, 0);
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	}
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	while (count < limit) {
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		int status;
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		struct dma_desc *p;
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		if (priv->extend_desc)
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			p = (struct dma_desc *)(priv->dma_erx + entry);
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		else
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			p = priv->dma_rx + entry;
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		if (priv->hw->desc->get_rx_owner(p))
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			break;

		count++;

		next_entry = (++priv->cur_rx) % rxsize;
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		if (priv->extend_desc)
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			prefetch(priv->dma_erx + next_entry);
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		else
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			prefetch(priv->dma_rx + next_entry);
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		/* read the status of the incoming frame */
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		status = priv->hw->desc->rx_status(&priv->dev->stats,
						   &priv->xstats, p);
		if ((priv->extend_desc) && (priv->hw->desc->rx_extended_status))
			priv->hw->desc->rx_extended_status(&priv->dev->stats,
							   &priv->xstats,
							   priv->dma_erx +
							   entry);
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		if (unlikely(status == discard_frame)) {
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			priv->dev->stats.rx_errors++;
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			if (priv->hwts_rx_en && !priv->extend_desc) {
				/* DESC2 & DESC3 will be overwitten by device
				 * with timestamp value, hence reinitialize
				 * them in stmmac_rx_refill() function so that
				 * device can reuse it.
				 */
				priv->rx_skbuff[entry] = NULL;
				dma_unmap_single(priv->device,
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						 priv->rx_skbuff_dma[entry],
						 priv->dma_buf_sz,
						 DMA_FROM_DEVICE);
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			}
		} else {
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			struct sk_buff *skb;
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			int frame_len;
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			frame_len = priv->hw->desc->get_rx_frame_len(p, coe);

2222
			/* ACS is set; GMAC core strips PAD/FCS for IEEE 802.3
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			 * Type frames (LLC/LLC-SNAP)
			 */
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			if (unlikely(status != llc_snap))
				frame_len -= ETH_FCS_LEN;
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			if (netif_msg_rx_status(priv)) {
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				pr_debug("\tdesc: %p [entry %d] buff=0x%x\n",
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					 p, entry, p->des2);
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				if (frame_len > ETH_FRAME_LEN)
					pr_debug("\tframe size %d, COE: %d\n",
						 frame_len, status);
			}
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			skb = priv->rx_skbuff[entry];
			if (unlikely(!skb)) {
				pr_err("%s: Inconsistent Rx descriptor chain\n",
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				       priv->dev->name);
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				priv->dev->stats.rx_dropped++;
				break;
			}
			prefetch(skb->data - NET_IP_ALIGN);
			priv->rx_skbuff[entry] = NULL;

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			stmmac_get_rx_hwtstamp(priv, entry, skb);

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			skb_put(skb, frame_len);
			dma_unmap_single(priv->device,
					 priv->rx_skbuff_dma[entry],
					 priv->dma_buf_sz, DMA_FROM_DEVICE);
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			if (netif_msg_pktdata(priv)) {
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				pr_debug("frame received (%dbytes)", frame_len);
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				print_pkt(skb->data, frame_len);
			}
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			stmmac_rx_vlan(priv->dev, skb);

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			skb->protocol = eth_type_trans(skb, priv->dev);

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			if (unlikely(!coe))
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				skb_checksum_none_assert(skb);
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			else
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				skb->ip_summed = CHECKSUM_UNNECESSARY;
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			napi_gro_receive(&priv->napi, skb);
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			priv->dev->stats.rx_packets++;
			priv->dev->stats.rx_bytes += frame_len;
		}
		entry = next_entry;
	}

	stmmac_rx_refill(priv);

	priv->xstats.rx_pkt_n += count;

	return count;
}

/**
 *  stmmac_poll - stmmac poll method (NAPI)
 *  @napi : pointer to the napi structure.
 *  @budget : maximum number of packets that the current CPU can receive from
 *	      all interfaces.
 *  Description :
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 *  To look at the incoming frames and clear the tx resources.
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 */
static int stmmac_poll(struct napi_struct *napi, int budget)
{
	struct stmmac_priv *priv = container_of(napi, struct stmmac_priv, napi);
	int work_done = 0;

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	priv->xstats.napi_poll++;
	stmmac_tx_clean(priv);
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	work_done = stmmac_rx(priv, budget);
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	if (work_done < budget) {
		napi_complete(napi);
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		stmmac_enable_dma_irq(priv);
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	}
	return work_done;
}

/**
 *  stmmac_tx_timeout
 *  @dev : Pointer to net device structure
 *  Description: this function is called when a packet transmission fails to
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 *   complete within a reasonable time. The driver will mark the error in the
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 *   netdev structure and arrange for the device to be reset to a sane state
 *   in order to transmit a new packet.
 */
static void stmmac_tx_timeout(struct net_device *dev)
{
	struct stmmac_priv *priv = netdev_priv(dev);

	/* Clear Tx resources and restart transmitting again */
	stmmac_tx_err(priv);
}

/**
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 *  stmmac_set_rx_mode - entry point for multicast addressing
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 *  @dev : pointer to the device structure
 *  Description:
 *  This function is a driver entry point which gets called by the kernel
 *  whenever multicast addresses must be enabled/disabled.
 *  Return value:
 *  void.
 */
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static void stmmac_set_rx_mode(struct net_device *dev)
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{
	struct stmmac_priv *priv = netdev_priv(dev);

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	priv->hw->mac->set_filter(priv->hw, dev);
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}

/**
 *  stmmac_change_mtu - entry point to change MTU size for the device.
 *  @dev : device pointer.
 *  @new_mtu : the new MTU size for the device.
 *  Description: the Maximum Transfer Unit (MTU) is used by the network layer
 *  to drive packet transmission. Ethernet has an MTU of 1500 octets
 *  (ETH_DATA_LEN). This value can be changed with ifconfig.
 *  Return value:
 *  0 on success and an appropriate (-)ve integer as defined in errno.h
 *  file on failure.
 */
static int stmmac_change_mtu(struct net_device *dev, int new_mtu)
{
	struct stmmac_priv *priv = netdev_priv(dev);
	int max_mtu;

	if (netif_running(dev)) {
		pr_err("%s: must be stopped to change its MTU\n", dev->name);
		return -EBUSY;
	}

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	if (priv->plat->enh_desc)
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		max_mtu = JUMBO_LEN;
	else
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		max_mtu = SKB_MAX_HEAD(NET_SKB_PAD + NET_IP_ALIGN);
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	if (priv->plat->maxmtu < max_mtu)
		max_mtu = priv->plat->maxmtu;

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	if ((new_mtu < 46) || (new_mtu > max_mtu)) {
		pr_err("%s: invalid MTU, max MTU is: %d\n", dev->name, max_mtu);
		return -EINVAL;
	}

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	dev->mtu = new_mtu;
	netdev_update_features(dev);

	return 0;
}

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static netdev_features_t stmmac_fix_features(struct net_device *dev,
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					     netdev_features_t features)
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{
	struct stmmac_priv *priv = netdev_priv(dev);

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	if (priv->plat->rx_coe == STMMAC_RX_COE_NONE)
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		features &= ~NETIF_F_RXCSUM;
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	if (!priv->plat->tx_coe)
		features &= ~NETIF_F_ALL_CSUM;

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	/* Some GMAC devices have a bugged Jumbo frame support that
	 * needs to have the Tx COE disabled for oversized frames
	 * (due to limited buffer sizes). In this case we disable
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	 * the TX csum insertionin the TDES and not use SF.
	 */
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	if (priv->plat->bugged_jumbo && (dev->mtu > ETH_DATA_LEN))
		features &= ~NETIF_F_ALL_CSUM;
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	return features;
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}

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static int stmmac_set_features(struct net_device *netdev,
			       netdev_features_t features)
{
	struct stmmac_priv *priv = netdev_priv(netdev);

	/* Keep the COE Type in case of csum is supporting */
	if (features & NETIF_F_RXCSUM)
		priv->hw->rx_csum = priv->plat->rx_coe;
	else
		priv->hw->rx_csum = 0;
	/* No check needed because rx_coe has been set before and it will be
	 * fixed in case of issue.
	 */
	priv->hw->mac->rx_ipc(priv->hw);

	return 0;
}

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/**
 *  stmmac_interrupt - main ISR
 *  @irq: interrupt number.
 *  @dev_id: to pass the net device pointer.
 *  Description: this is the main driver interrupt service routine.
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 *  It can call:
 *  o DMA service routine (to manage incoming frame reception and transmission
 *    status)
 *  o Core interrupts to manage: remote wake-up, management counter, LPI
 *    interrupts.
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 */
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static irqreturn_t stmmac_interrupt(int irq, void *dev_id)
{
	struct net_device *dev = (struct net_device *)dev_id;
	struct stmmac_priv *priv = netdev_priv(dev);

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	if (priv->irq_wake)
		pm_wakeup_event(priv->device, 0);

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	if (unlikely(!dev)) {
		pr_err("%s: invalid dev pointer\n", __func__);
		return IRQ_NONE;
	}

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	/* To handle GMAC own interrupts */
	if (priv->plat->has_gmac) {
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		int status = priv->hw->mac->host_irq_status(priv->hw,
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							    &priv->xstats);
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		if (unlikely(status)) {
			/* For LPI we need to save the tx status */
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			if (status & CORE_IRQ_TX_PATH_IN_LPI_MODE)
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				priv->tx_path_in_lpi_mode = true;
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			if (status & CORE_IRQ_TX_PATH_EXIT_LPI_MODE)
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				priv->tx_path_in_lpi_mode = false;
		}
	}
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2454
	/* To handle DMA interrupts */
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	stmmac_dma_interrupt(priv);
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	return IRQ_HANDLED;
}

#ifdef CONFIG_NET_POLL_CONTROLLER
/* Polling receive - used by NETCONSOLE and other diagnostic tools
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 * to allow network I/O with interrupts disabled.
 */
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static void stmmac_poll_controller(struct net_device *dev)
{
	disable_irq(dev->irq);
	stmmac_interrupt(dev->irq, dev);
	enable_irq(dev->irq);
}
#endif

/**
 *  stmmac_ioctl - Entry point for the Ioctl
 *  @dev: Device pointer.
 *  @rq: An IOCTL specefic structure, that can contain a pointer to
 *  a proprietary structure used to pass information to the driver.
 *  @cmd: IOCTL command
 *  Description:
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 *  Currently it supports the phy_mii_ioctl(...) and HW time stamping.
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 */
static int stmmac_ioctl(struct net_device *dev, struct ifreq *rq, int cmd)
{
	struct stmmac_priv *priv = netdev_priv(dev);
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	int ret = -EOPNOTSUPP;
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	if (!netif_running(dev))
		return -EINVAL;

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	switch (cmd) {
	case SIOCGMIIPHY:
	case SIOCGMIIREG:
	case SIOCSMIIREG:
		if (!priv->phydev)
			return -EINVAL;
		ret = phy_mii_ioctl(priv->phydev, rq, cmd);
		break;
	case SIOCSHWTSTAMP:
		ret = stmmac_hwtstamp_ioctl(dev, rq);
		break;
	default:
		break;
	}
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	return ret;
}

2507
#ifdef CONFIG_DEBUG_FS
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static struct dentry *stmmac_fs_dir;
static struct dentry *stmmac_rings_status;
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static struct dentry *stmmac_dma_cap;
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static void sysfs_display_ring(void *head, int size, int extend_desc,
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			       struct seq_file *seq)
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{
	int i;
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	struct dma_extended_desc *ep = (struct dma_extended_desc *)head;
	struct dma_desc *p = (struct dma_desc *)head;
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	for (i = 0; i < size; i++) {
		u64 x;
		if (extend_desc) {
			x = *(u64 *) ep;
			seq_printf(seq, "%d [0x%x]: 0x%x 0x%x 0x%x 0x%x\n",
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				   i, (unsigned int)virt_to_phys(ep),
				   (unsigned int)x, (unsigned int)(x >> 32),
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				   ep->basic.des2, ep->basic.des3);
			ep++;
		} else {
			x = *(u64 *) p;
			seq_printf(seq, "%d [0x%x]: 0x%x 0x%x 0x%x 0x%x\n",
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				   i, (unsigned int)virt_to_phys(ep),
				   (unsigned int)x, (unsigned int)(x >> 32),
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				   p->des2, p->des3);
			p++;
		}
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		seq_printf(seq, "\n");
	}
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}
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static int stmmac_sysfs_ring_read(struct seq_file *seq, void *v)
{
	struct net_device *dev = seq->private;
	struct stmmac_priv *priv = netdev_priv(dev);
	unsigned int txsize = priv->dma_tx_size;
	unsigned int rxsize = priv->dma_rx_size;
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	if (priv->extend_desc) {
		seq_printf(seq, "Extended RX descriptor ring:\n");
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		sysfs_display_ring((void *)priv->dma_erx, rxsize, 1, seq);
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		seq_printf(seq, "Extended TX descriptor ring:\n");
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		sysfs_display_ring((void *)priv->dma_etx, txsize, 1, seq);
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	} else {
		seq_printf(seq, "RX descriptor ring:\n");
		sysfs_display_ring((void *)priv->dma_rx, rxsize, 0, seq);
		seq_printf(seq, "TX descriptor ring:\n");
		sysfs_display_ring((void *)priv->dma_tx, txsize, 0, seq);
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	}

	return 0;
}

static int stmmac_sysfs_ring_open(struct inode *inode, struct file *file)
{
	return single_open(file, stmmac_sysfs_ring_read, inode->i_private);
}

static const struct file_operations stmmac_rings_status_fops = {
	.owner = THIS_MODULE,
	.open = stmmac_sysfs_ring_open,
	.read = seq_read,
	.llseek = seq_lseek,
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	.release = single_release,
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};

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static int stmmac_sysfs_dma_cap_read(struct seq_file *seq, void *v)
{
	struct net_device *dev = seq->private;
	struct stmmac_priv *priv = netdev_priv(dev);

2580
	if (!priv->hw_cap_support) {
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		seq_printf(seq, "DMA HW features not supported\n");
		return 0;
	}

	seq_printf(seq, "==============================\n");
	seq_printf(seq, "\tDMA HW features\n");
	seq_printf(seq, "==============================\n");

	seq_printf(seq, "\t10/100 Mbps %s\n",
		   (priv->dma_cap.mbps_10_100) ? "Y" : "N");
	seq_printf(seq, "\t1000 Mbps %s\n",
		   (priv->dma_cap.mbps_1000) ? "Y" : "N");
	seq_printf(seq, "\tHalf duple %s\n",
		   (priv->dma_cap.half_duplex) ? "Y" : "N");
	seq_printf(seq, "\tHash Filter: %s\n",
		   (priv->dma_cap.hash_filter) ? "Y" : "N");
	seq_printf(seq, "\tMultiple MAC address registers: %s\n",
		   (priv->dma_cap.multi_addr) ? "Y" : "N");
	seq_printf(seq, "\tPCS (TBI/SGMII/RTBI PHY interfatces): %s\n",
		   (priv->dma_cap.pcs) ? "Y" : "N");
	seq_printf(seq, "\tSMA (MDIO) Interface: %s\n",
		   (priv->dma_cap.sma_mdio) ? "Y" : "N");
	seq_printf(seq, "\tPMT Remote wake up: %s\n",
		   (priv->dma_cap.pmt_remote_wake_up) ? "Y" : "N");
	seq_printf(seq, "\tPMT Magic Frame: %s\n",
		   (priv->dma_cap.pmt_magic_frame) ? "Y" : "N");
	seq_printf(seq, "\tRMON module: %s\n",
		   (priv->dma_cap.rmon) ? "Y" : "N");
	seq_printf(seq, "\tIEEE 1588-2002 Time Stamp: %s\n",
		   (priv->dma_cap.time_stamp) ? "Y" : "N");
	seq_printf(seq, "\tIEEE 1588-2008 Advanced Time Stamp:%s\n",
		   (priv->dma_cap.atime_stamp) ? "Y" : "N");
	seq_printf(seq, "\t802.3az - Energy-Efficient Ethernet (EEE) %s\n",
		   (priv->dma_cap.eee) ? "Y" : "N");
	seq_printf(seq, "\tAV features: %s\n", (priv->dma_cap.av) ? "Y" : "N");
	seq_printf(seq, "\tChecksum Offload in TX: %s\n",
		   (priv->dma_cap.tx_coe) ? "Y" : "N");
	seq_printf(seq, "\tIP Checksum Offload (type1) in RX: %s\n",
		   (priv->dma_cap.rx_coe_type1) ? "Y" : "N");
	seq_printf(seq, "\tIP Checksum Offload (type2) in RX: %s\n",
		   (priv->dma_cap.rx_coe_type2) ? "Y" : "N");
	seq_printf(seq, "\tRXFIFO > 2048bytes: %s\n",
		   (priv->dma_cap.rxfifo_over_2048) ? "Y" : "N");
	seq_printf(seq, "\tNumber of Additional RX channel: %d\n",
		   priv->dma_cap.number_rx_channel);
	seq_printf(seq, "\tNumber of Additional TX channel: %d\n",
		   priv->dma_cap.number_tx_channel);
	seq_printf(seq, "\tEnhanced descriptors: %s\n",
		   (priv->dma_cap.enh_desc) ? "Y" : "N");

	return 0;
}

static int stmmac_sysfs_dma_cap_open(struct inode *inode, struct file *file)
{
	return single_open(file, stmmac_sysfs_dma_cap_read, inode->i_private);
}

static const struct file_operations stmmac_dma_cap_fops = {
	.owner = THIS_MODULE,
	.open = stmmac_sysfs_dma_cap_open,
	.read = seq_read,
	.llseek = seq_lseek,
2644
	.release = single_release,
2645 2646
};

2647 2648 2649 2650 2651 2652 2653 2654 2655 2656 2657 2658 2659 2660
static int stmmac_init_fs(struct net_device *dev)
{
	/* Create debugfs entries */
	stmmac_fs_dir = debugfs_create_dir(STMMAC_RESOURCE_NAME, NULL);

	if (!stmmac_fs_dir || IS_ERR(stmmac_fs_dir)) {
		pr_err("ERROR %s, debugfs create directory failed\n",
		       STMMAC_RESOURCE_NAME);

		return -ENOMEM;
	}

	/* Entry to report DMA RX/TX rings */
	stmmac_rings_status = debugfs_create_file("descriptors_status",
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2661 2662
						  S_IRUGO, stmmac_fs_dir, dev,
						  &stmmac_rings_status_fops);
2663 2664 2665 2666 2667 2668 2669 2670

	if (!stmmac_rings_status || IS_ERR(stmmac_rings_status)) {
		pr_info("ERROR creating stmmac ring debugfs file\n");
		debugfs_remove(stmmac_fs_dir);

		return -ENOMEM;
	}

2671 2672 2673 2674 2675 2676 2677 2678 2679 2680 2681 2682
	/* Entry to report the DMA HW features */
	stmmac_dma_cap = debugfs_create_file("dma_cap", S_IRUGO, stmmac_fs_dir,
					     dev, &stmmac_dma_cap_fops);

	if (!stmmac_dma_cap || IS_ERR(stmmac_dma_cap)) {
		pr_info("ERROR creating stmmac MMC debugfs file\n");
		debugfs_remove(stmmac_rings_status);
		debugfs_remove(stmmac_fs_dir);

		return -ENOMEM;
	}

2683 2684 2685 2686 2687 2688
	return 0;
}

static void stmmac_exit_fs(void)
{
	debugfs_remove(stmmac_rings_status);
2689
	debugfs_remove(stmmac_dma_cap);
2690 2691
	debugfs_remove(stmmac_fs_dir);
}
2692
#endif /* CONFIG_DEBUG_FS */
2693

2694 2695 2696 2697 2698
static const struct net_device_ops stmmac_netdev_ops = {
	.ndo_open = stmmac_open,
	.ndo_start_xmit = stmmac_xmit,
	.ndo_stop = stmmac_release,
	.ndo_change_mtu = stmmac_change_mtu,
2699
	.ndo_fix_features = stmmac_fix_features,
2700
	.ndo_set_features = stmmac_set_features,
2701
	.ndo_set_rx_mode = stmmac_set_rx_mode,
2702 2703 2704 2705 2706 2707 2708 2709
	.ndo_tx_timeout = stmmac_tx_timeout,
	.ndo_do_ioctl = stmmac_ioctl,
#ifdef CONFIG_NET_POLL_CONTROLLER
	.ndo_poll_controller = stmmac_poll_controller,
#endif
	.ndo_set_mac_address = eth_mac_addr,
};

2710 2711
/**
 *  stmmac_hw_init - Init the MAC device
2712
 *  @priv: driver private structure
2713 2714 2715 2716
 *  Description: this function is to configure the MAC device according to
 *  some platform parameters or the HW capability register. It prepares the
 *  driver to use either ring or chain modes and to setup either enhanced or
 *  normal descriptors.
2717 2718 2719 2720 2721 2722
 */
static int stmmac_hw_init(struct stmmac_priv *priv)
{
	struct mac_device_info *mac;

	/* Identify the MAC HW device */
2723 2724
	if (priv->plat->has_gmac) {
		priv->dev->priv_flags |= IFF_UNICAST_FLT;
2725 2726 2727
		mac = dwmac1000_setup(priv->ioaddr,
				      priv->plat->multicast_filter_bins,
				      priv->plat->unicast_filter_entries);
2728
	} else {
2729
		mac = dwmac100_setup(priv->ioaddr);
2730
	}
2731 2732 2733 2734 2735 2736
	if (!mac)
		return -ENOMEM;

	priv->hw = mac;

	/* Get and dump the chip ID */
2737
	priv->synopsys_id = stmmac_get_synopsys_id(priv);
2738

2739
	/* To use the chained or ring mode */
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2740
	if (chain_mode) {
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2741
		priv->hw->mode = &chain_mode_ops;
2742 2743 2744
		pr_info(" Chain mode enabled\n");
		priv->mode = STMMAC_CHAIN_MODE;
	} else {
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		priv->hw->mode = &ring_mode_ops;
2746 2747 2748 2749
		pr_info(" Ring mode enabled\n");
		priv->mode = STMMAC_RING_MODE;
	}

2750 2751 2752 2753 2754 2755 2756 2757 2758 2759 2760 2761
	/* Get the HW capability (new GMAC newer than 3.50a) */
	priv->hw_cap_support = stmmac_get_hw_features(priv);
	if (priv->hw_cap_support) {
		pr_info(" DMA HW capability register supported");

		/* We can override some gmac/dma configuration fields: e.g.
		 * enh_desc, tx_coe (e.g. that are passed through the
		 * platform) with the values from the HW capability
		 * register (if supported).
		 */
		priv->plat->enh_desc = priv->dma_cap.enh_desc;
		priv->plat->pmt = priv->dma_cap.pmt_remote_wake_up;
2762

2763 2764 2765 2766 2767
		/* TXCOE doesn't work in thresh DMA mode */
		if (priv->plat->force_thresh_dma_mode)
			priv->plat->tx_coe = 0;
		else
			priv->plat->tx_coe = priv->dma_cap.tx_coe;
2768 2769 2770 2771 2772 2773

		if (priv->dma_cap.rx_coe_type2)
			priv->plat->rx_coe = STMMAC_RX_COE_TYPE2;
		else if (priv->dma_cap.rx_coe_type1)
			priv->plat->rx_coe = STMMAC_RX_COE_TYPE1;

2774 2775 2776
	} else
		pr_info(" No HW DMA feature register supported");

2777 2778 2779
	/* To use alternate (extended) or normal descriptor structures */
	stmmac_selec_desc_mode(priv);

2780 2781
	if (priv->plat->rx_coe) {
		priv->hw->rx_csum = priv->plat->rx_coe;
2782 2783
		pr_info(" RX Checksum Offload Engine supported (type %d)\n",
			priv->plat->rx_coe);
2784
	}
2785 2786 2787 2788 2789 2790 2791 2792
	if (priv->plat->tx_coe)
		pr_info(" TX Checksum insertion supported\n");

	if (priv->plat->pmt) {
		pr_info(" Wake-Up On Lan supported\n");
		device_set_wakeup_capable(priv->device, 1);
	}

2793
	return 0;
2794 2795
}

2796
/**
2797 2798
 * stmmac_dvr_probe
 * @device: device pointer
2799 2800
 * @plat_dat: platform data pointer
 * @addr: iobase memory address
2801 2802
 * Description: this is the main probe function used to
 * call the alloc_etherdev, allocate the priv structure.
2803 2804 2805
 * Return:
 * on success the new private structure is returned, otherwise the error
 * pointer.
2806
 */
2807
struct stmmac_priv *stmmac_dvr_probe(struct device *device,
2808 2809
				     struct plat_stmmacenet_data *plat_dat,
				     void __iomem *addr)
2810 2811
{
	int ret = 0;
2812 2813
	struct net_device *ndev = NULL;
	struct stmmac_priv *priv;
2814

2815
	ndev = alloc_etherdev(sizeof(struct stmmac_priv));
2816
	if (!ndev)
2817
		return ERR_PTR(-ENOMEM);
2818 2819 2820 2821 2822 2823

	SET_NETDEV_DEV(ndev, device);

	priv = netdev_priv(ndev);
	priv->device = device;
	priv->dev = ndev;
2824

2825
	stmmac_set_ethtool_ops(ndev);
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	priv->pause = pause;
	priv->plat = plat_dat;
	priv->ioaddr = addr;
	priv->dev->base_addr = (unsigned long)addr;

	/* Verify driver arguments */
	stmmac_verify_args();
2833

2834
	/* Override with kernel parameters if supplied XXX CRS XXX
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2835 2836
	 * this needs to have multiple instances
	 */
2837 2838 2839
	if ((phyaddr >= 0) && (phyaddr <= 31))
		priv->plat->phy_addr = phyaddr;

2840 2841 2842 2843
	priv->stmmac_clk = devm_clk_get(priv->device, STMMAC_RESOURCE_NAME);
	if (IS_ERR(priv->stmmac_clk)) {
		dev_warn(priv->device, "%s: warning: cannot get CSR clock\n",
			 __func__);
2844 2845 2846 2847 2848 2849 2850 2851 2852
		/* If failed to obtain stmmac_clk and specific clk_csr value
		 * is NOT passed from the platform, probe fail.
		 */
		if (!priv->plat->clk_csr) {
			ret = PTR_ERR(priv->stmmac_clk);
			goto error_clk_get;
		} else {
			priv->stmmac_clk = NULL;
		}
2853 2854 2855
	}
	clk_prepare_enable(priv->stmmac_clk);

2856 2857 2858 2859 2860 2861 2862 2863 2864 2865
	priv->pclk = devm_clk_get(priv->device, "pclk");
	if (IS_ERR(priv->pclk)) {
		if (PTR_ERR(priv->pclk) == -EPROBE_DEFER) {
			ret = -EPROBE_DEFER;
			goto error_pclk_get;
		}
		priv->pclk = NULL;
	}
	clk_prepare_enable(priv->pclk);

2866 2867 2868 2869 2870 2871 2872 2873 2874 2875 2876 2877 2878
	priv->stmmac_rst = devm_reset_control_get(priv->device,
						  STMMAC_RESOURCE_NAME);
	if (IS_ERR(priv->stmmac_rst)) {
		if (PTR_ERR(priv->stmmac_rst) == -EPROBE_DEFER) {
			ret = -EPROBE_DEFER;
			goto error_hw_init;
		}
		dev_info(priv->device, "no reset control found\n");
		priv->stmmac_rst = NULL;
	}
	if (priv->stmmac_rst)
		reset_control_deassert(priv->stmmac_rst);

2879
	/* Init MAC and get the capabilities */
2880 2881
	ret = stmmac_hw_init(priv);
	if (ret)
2882
		goto error_hw_init;
2883 2884

	ndev->netdev_ops = &stmmac_netdev_ops;
2885

2886 2887
	ndev->hw_features = NETIF_F_SG | NETIF_F_IP_CSUM | NETIF_F_IPV6_CSUM |
			    NETIF_F_RXCSUM;
2888 2889
	ndev->features |= ndev->hw_features | NETIF_F_HIGHDMA;
	ndev->watchdog_timeo = msecs_to_jiffies(watchdog);
2890 2891
#ifdef STMMAC_VLAN_TAG_USED
	/* Both mac100 and gmac support receive VLAN tag detection */
2892
	ndev->features |= NETIF_F_HW_VLAN_CTAG_RX;
2893 2894 2895 2896 2897 2898
#endif
	priv->msg_enable = netif_msg_init(debug, default_msg_level);

	if (flow_ctrl)
		priv->flow_ctrl = FLOW_AUTO;	/* RX/TX pause on */

2899 2900 2901 2902 2903 2904 2905 2906 2907 2908
	/* Rx Watchdog is available in the COREs newer than the 3.40.
	 * In some case, for example on bugged HW this feature
	 * has to be disable and this can be done by passing the
	 * riwt_off field from the platform.
	 */
	if ((priv->synopsys_id >= DWMAC_CORE_3_50) && (!priv->plat->riwt_off)) {
		priv->use_riwt = 1;
		pr_info(" Enable RX Mitigation via HW Watchdog Timer\n");
	}

2909
	netif_napi_add(ndev, &priv->napi, stmmac_poll, 64);
2910

2911
	spin_lock_init(&priv->lock);
2912
	spin_lock_init(&priv->tx_lock);
2913

2914
	ret = register_netdev(ndev);
2915
	if (ret) {
2916
		pr_err("%s: ERROR %i registering the device\n", __func__, ret);
2917
		goto error_netdev_register;
2918 2919
	}

2920 2921 2922 2923 2924 2925 2926 2927 2928 2929 2930
	/* If a specific clk_csr value is passed from the platform
	 * this means that the CSR Clock Range selection cannot be
	 * changed at run-time and it is fixed. Viceversa the driver'll try to
	 * set the MDC clock dynamically according to the csr actual
	 * clock input.
	 */
	if (!priv->plat->clk_csr)
		stmmac_clk_csr_set(priv);
	else
		priv->clk_csr = priv->plat->clk_csr;

2931 2932
	stmmac_check_pcs_mode(priv);

2933 2934
	if (priv->pcs != STMMAC_PCS_RGMII && priv->pcs != STMMAC_PCS_TBI &&
	    priv->pcs != STMMAC_PCS_RTBI) {
2935 2936 2937 2938 2939 2940 2941
		/* MDIO bus Registration */
		ret = stmmac_mdio_register(ndev);
		if (ret < 0) {
			pr_debug("%s: MDIO bus (id: %d) registration failed",
				 __func__, priv->plat->bus_id);
			goto error_mdio_register;
		}
2942 2943
	}

2944
	return priv;
2945

2946
error_mdio_register:
2947
	unregister_netdev(ndev);
2948 2949
error_netdev_register:
	netif_napi_del(&priv->napi);
2950
error_hw_init:
2951 2952
	clk_disable_unprepare(priv->pclk);
error_pclk_get:
2953 2954
	clk_disable_unprepare(priv->stmmac_clk);
error_clk_get:
2955
	free_netdev(ndev);
2956

2957
	return ERR_PTR(ret);
2958
}
2959
EXPORT_SYMBOL_GPL(stmmac_dvr_probe);
2960 2961 2962

/**
 * stmmac_dvr_remove
2963
 * @ndev: net device pointer
2964
 * Description: this function resets the TX/RX processes, disables the MAC RX/TX
2965
 * changes the link status, releases the DMA descriptor rings.
2966
 */
2967
int stmmac_dvr_remove(struct net_device *ndev)
2968
{
2969
	struct stmmac_priv *priv = netdev_priv(ndev);
2970 2971 2972

	pr_info("%s:\n\tremoving driver", __func__);

2973 2974
	priv->hw->dma->stop_rx(priv->ioaddr);
	priv->hw->dma->stop_tx(priv->ioaddr);
2975

2976
	stmmac_set_mac(priv->ioaddr, false);
2977 2978
	netif_carrier_off(ndev);
	unregister_netdev(ndev);
2979 2980
	if (priv->stmmac_rst)
		reset_control_assert(priv->stmmac_rst);
2981
	clk_disable_unprepare(priv->pclk);
2982
	clk_disable_unprepare(priv->stmmac_clk);
2983 2984 2985
	if (priv->pcs != STMMAC_PCS_RGMII && priv->pcs != STMMAC_PCS_TBI &&
	    priv->pcs != STMMAC_PCS_RTBI)
		stmmac_mdio_unregister(ndev);
2986 2987 2988 2989
	free_netdev(ndev);

	return 0;
}
2990
EXPORT_SYMBOL_GPL(stmmac_dvr_remove);
2991

2992 2993 2994 2995 2996 2997 2998
/**
 * stmmac_suspend - suspend callback
 * @ndev: net device pointer
 * Description: this is the function to suspend the device and it is called
 * by the platform driver to stop the network queue, release the resources,
 * program the PMT register (for WoL), clean and release driver resources.
 */
2999
int stmmac_suspend(struct net_device *ndev)
3000
{
3001
	struct stmmac_priv *priv = netdev_priv(ndev);
3002
	unsigned long flags;
3003

3004
	if (!ndev || !netif_running(ndev))
3005 3006
		return 0;

3007 3008 3009
	if (priv->phydev)
		phy_stop(priv->phydev);

3010
	spin_lock_irqsave(&priv->lock, flags);
3011

3012 3013
	netif_device_detach(ndev);
	netif_stop_queue(ndev);
3014

3015 3016 3017 3018 3019
	napi_disable(&priv->napi);

	/* Stop TX/RX DMA */
	priv->hw->dma->stop_tx(priv->ioaddr);
	priv->hw->dma->stop_rx(priv->ioaddr);
3020 3021

	stmmac_clear_descriptors(priv);
3022 3023

	/* Enable Power down mode by programming the PMT regs */
3024
	if (device_may_wakeup(priv->device)) {
3025
		priv->hw->mac->pmt(priv->hw, priv->wolopts);
3026 3027
		priv->irq_wake = 1;
	} else {
3028
		stmmac_set_mac(priv->ioaddr, false);
3029
		pinctrl_pm_select_sleep_state(priv->device);
3030
		/* Disable clock in case of PWM is off */
3031
		clk_disable(priv->pclk);
3032
		clk_disable(priv->stmmac_clk);
3033
	}
3034
	spin_unlock_irqrestore(&priv->lock, flags);
3035 3036 3037 3038

	priv->oldlink = 0;
	priv->speed = 0;
	priv->oldduplex = -1;
3039 3040
	return 0;
}
3041
EXPORT_SYMBOL_GPL(stmmac_suspend);
3042

3043 3044 3045 3046 3047 3048
/**
 * stmmac_resume - resume callback
 * @ndev: net device pointer
 * Description: when resume this function is invoked to setup the DMA and CORE
 * in a usable state.
 */
3049
int stmmac_resume(struct net_device *ndev)
3050
{
3051
	struct stmmac_priv *priv = netdev_priv(ndev);
3052
	unsigned long flags;
3053

3054
	if (!netif_running(ndev))
3055 3056
		return 0;

3057
	spin_lock_irqsave(&priv->lock, flags);
3058

3059 3060 3061 3062
	/* Power Down bit, into the PM register, is cleared
	 * automatically as soon as a magic packet or a Wake-up frame
	 * is received. Anyway, it's better to manually clear
	 * this bit because it can generate problems while resuming
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3063 3064
	 * from another devices (e.g. serial console).
	 */
3065
	if (device_may_wakeup(priv->device)) {
3066
		priv->hw->mac->pmt(priv->hw, 0);
3067
		priv->irq_wake = 0;
3068
	} else {
3069
		pinctrl_pm_select_default_state(priv->device);
3070
		/* enable the clk prevously disabled */
3071
		clk_enable(priv->stmmac_clk);
3072
		clk_enable(priv->pclk);
3073 3074 3075 3076
		/* reset the phy so that it's ready */
		if (priv->mii)
			stmmac_mdio_reset(priv->mii);
	}
3077

3078
	netif_device_attach(ndev);
3079

3080
	init_dma_desc_rings(ndev, GFP_ATOMIC);
3081
	stmmac_hw_setup(ndev, false);
3082
	stmmac_init_tx_coalesce(priv);
3083 3084 3085

	napi_enable(&priv->napi);

3086
	netif_start_queue(ndev);
3087

3088
	spin_unlock_irqrestore(&priv->lock, flags);
3089 3090 3091 3092

	if (priv->phydev)
		phy_start(priv->phydev);

3093 3094
	return 0;
}
3095
EXPORT_SYMBOL_GPL(stmmac_resume);
3096

3097 3098 3099 3100 3101 3102 3103 3104
#ifndef MODULE
static int __init stmmac_cmdline_opt(char *str)
{
	char *opt;

	if (!str || !*str)
		return -EINVAL;
	while ((opt = strsep(&str, ",")) != NULL) {
3105
		if (!strncmp(opt, "debug:", 6)) {
3106
			if (kstrtoint(opt + 6, 0, &debug))
3107 3108
				goto err;
		} else if (!strncmp(opt, "phyaddr:", 8)) {
3109
			if (kstrtoint(opt + 8, 0, &phyaddr))
3110 3111
				goto err;
		} else if (!strncmp(opt, "dma_txsize:", 11)) {
3112
			if (kstrtoint(opt + 11, 0, &dma_txsize))
3113 3114
				goto err;
		} else if (!strncmp(opt, "dma_rxsize:", 11)) {
3115
			if (kstrtoint(opt + 11, 0, &dma_rxsize))
3116 3117
				goto err;
		} else if (!strncmp(opt, "buf_sz:", 7)) {
3118
			if (kstrtoint(opt + 7, 0, &buf_sz))
3119 3120
				goto err;
		} else if (!strncmp(opt, "tc:", 3)) {
3121
			if (kstrtoint(opt + 3, 0, &tc))
3122 3123
				goto err;
		} else if (!strncmp(opt, "watchdog:", 9)) {
3124
			if (kstrtoint(opt + 9, 0, &watchdog))
3125 3126
				goto err;
		} else if (!strncmp(opt, "flow_ctrl:", 10)) {
3127
			if (kstrtoint(opt + 10, 0, &flow_ctrl))
3128 3129
				goto err;
		} else if (!strncmp(opt, "pause:", 6)) {
3130
			if (kstrtoint(opt + 6, 0, &pause))
3131
				goto err;
3132
		} else if (!strncmp(opt, "eee_timer:", 10)) {
3133 3134
			if (kstrtoint(opt + 10, 0, &eee_timer))
				goto err;
3135 3136 3137
		} else if (!strncmp(opt, "chain_mode:", 11)) {
			if (kstrtoint(opt + 11, 0, &chain_mode))
				goto err;
3138
		}
3139 3140
	}
	return 0;
3141 3142 3143 3144

err:
	pr_err("%s: ERROR broken module parameter conversion", __func__);
	return -EINVAL;
3145 3146 3147
}

__setup("stmmaceth=", stmmac_cmdline_opt);
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3148
#endif /* MODULE */
3149 3150 3151 3152

MODULE_DESCRIPTION("STMMAC 10/100/1000 Ethernet device driver");
MODULE_AUTHOR("Giuseppe Cavallaro <peppe.cavallaro@st.com>");
MODULE_LICENSE("GPL");