mirror of
https://github.com/AsahiLinux/u-boot
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587 lines
14 KiB
C
587 lines
14 KiB
C
/*
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* Copyright (C) 2005-2006 Atmel Corporation
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*
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* This program is free software; you can redistribute it and/or modify
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* it under the terms of the GNU General Public License as published by
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* the Free Software Foundation; either version 2 of the License, or
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* (at your option) any later version.
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*
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* This program is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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* GNU General Public License for more details.
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*
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* You should have received a copy of the GNU General Public License
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* along with this program; if not, write to the Free Software
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* Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
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*/
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#include <common.h>
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#if defined(CONFIG_MACB) \
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&& (defined(CONFIG_CMD_NET) || defined(CONFIG_CMD_MII))
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/*
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* The u-boot networking stack is a little weird. It seems like the
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* networking core allocates receive buffers up front without any
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* regard to the hardware that's supposed to actually receive those
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* packets.
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*
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* The MACB receives packets into 128-byte receive buffers, so the
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* buffers allocated by the core isn't very practical to use. We'll
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* allocate our own, but we need one such buffer in case a packet
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* wraps around the DMA ring so that we have to copy it.
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*
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* Therefore, define CFG_RX_ETH_BUFFER to 1 in the board-specific
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* configuration header. This way, the core allocates one RX buffer
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* and one TX buffer, each of which can hold a ethernet packet of
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* maximum size.
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*
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* For some reason, the networking core unconditionally specifies a
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* 32-byte packet "alignment" (which really should be called
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* "padding"). MACB shouldn't need that, but we'll refrain from any
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* core modifications here...
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*/
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#include <net.h>
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#include <malloc.h>
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#include <linux/mii.h>
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#include <asm/io.h>
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#include <asm/dma-mapping.h>
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#include <asm/arch/clk.h>
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#include "macb.h"
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#define barrier() asm volatile("" ::: "memory")
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#define CFG_MACB_RX_BUFFER_SIZE 4096
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#define CFG_MACB_RX_RING_SIZE (CFG_MACB_RX_BUFFER_SIZE / 128)
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#define CFG_MACB_TX_RING_SIZE 16
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#define CFG_MACB_TX_TIMEOUT 1000
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#define CFG_MACB_AUTONEG_TIMEOUT 5000000
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struct macb_dma_desc {
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u32 addr;
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u32 ctrl;
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};
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#define RXADDR_USED 0x00000001
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#define RXADDR_WRAP 0x00000002
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#define RXBUF_FRMLEN_MASK 0x00000fff
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#define RXBUF_FRAME_START 0x00004000
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#define RXBUF_FRAME_END 0x00008000
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#define RXBUF_TYPEID_MATCH 0x00400000
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#define RXBUF_ADDR4_MATCH 0x00800000
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#define RXBUF_ADDR3_MATCH 0x01000000
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#define RXBUF_ADDR2_MATCH 0x02000000
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#define RXBUF_ADDR1_MATCH 0x04000000
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#define RXBUF_BROADCAST 0x80000000
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#define TXBUF_FRMLEN_MASK 0x000007ff
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#define TXBUF_FRAME_END 0x00008000
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#define TXBUF_NOCRC 0x00010000
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#define TXBUF_EXHAUSTED 0x08000000
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#define TXBUF_UNDERRUN 0x10000000
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#define TXBUF_MAXRETRY 0x20000000
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#define TXBUF_WRAP 0x40000000
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#define TXBUF_USED 0x80000000
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struct macb_device {
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void *regs;
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unsigned int rx_tail;
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unsigned int tx_head;
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unsigned int tx_tail;
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void *rx_buffer;
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void *tx_buffer;
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struct macb_dma_desc *rx_ring;
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struct macb_dma_desc *tx_ring;
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unsigned long rx_buffer_dma;
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unsigned long rx_ring_dma;
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unsigned long tx_ring_dma;
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const struct device *dev;
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struct eth_device netdev;
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unsigned short phy_addr;
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};
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#define to_macb(_nd) container_of(_nd, struct macb_device, netdev)
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static void macb_mdio_write(struct macb_device *macb, u8 reg, u16 value)
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{
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unsigned long netctl;
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unsigned long netstat;
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unsigned long frame;
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netctl = macb_readl(macb, NCR);
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netctl |= MACB_BIT(MPE);
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macb_writel(macb, NCR, netctl);
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frame = (MACB_BF(SOF, 1)
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| MACB_BF(RW, 1)
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| MACB_BF(PHYA, macb->phy_addr)
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| MACB_BF(REGA, reg)
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| MACB_BF(CODE, 2)
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| MACB_BF(DATA, value));
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macb_writel(macb, MAN, frame);
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do {
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netstat = macb_readl(macb, NSR);
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} while (!(netstat & MACB_BIT(IDLE)));
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netctl = macb_readl(macb, NCR);
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netctl &= ~MACB_BIT(MPE);
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macb_writel(macb, NCR, netctl);
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}
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static u16 macb_mdio_read(struct macb_device *macb, u8 reg)
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{
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unsigned long netctl;
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unsigned long netstat;
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unsigned long frame;
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netctl = macb_readl(macb, NCR);
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netctl |= MACB_BIT(MPE);
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macb_writel(macb, NCR, netctl);
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frame = (MACB_BF(SOF, 1)
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| MACB_BF(RW, 2)
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| MACB_BF(PHYA, macb->phy_addr)
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| MACB_BF(REGA, reg)
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| MACB_BF(CODE, 2));
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macb_writel(macb, MAN, frame);
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do {
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netstat = macb_readl(macb, NSR);
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} while (!(netstat & MACB_BIT(IDLE)));
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frame = macb_readl(macb, MAN);
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netctl = macb_readl(macb, NCR);
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netctl &= ~MACB_BIT(MPE);
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macb_writel(macb, NCR, netctl);
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return MACB_BFEXT(DATA, frame);
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}
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#if defined(CONFIG_CMD_NET)
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static int macb_send(struct eth_device *netdev, volatile void *packet,
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int length)
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{
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struct macb_device *macb = to_macb(netdev);
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unsigned long paddr, ctrl;
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unsigned int tx_head = macb->tx_head;
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int i;
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paddr = dma_map_single(packet, length, DMA_TO_DEVICE);
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ctrl = length & TXBUF_FRMLEN_MASK;
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ctrl |= TXBUF_FRAME_END;
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if (tx_head == (CFG_MACB_TX_RING_SIZE - 1)) {
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ctrl |= TXBUF_WRAP;
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macb->tx_head = 0;
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} else
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macb->tx_head++;
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macb->tx_ring[tx_head].ctrl = ctrl;
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macb->tx_ring[tx_head].addr = paddr;
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barrier();
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macb_writel(macb, NCR, MACB_BIT(TE) | MACB_BIT(RE) | MACB_BIT(TSTART));
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/*
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* I guess this is necessary because the networking core may
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* re-use the transmit buffer as soon as we return...
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*/
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for (i = 0; i <= CFG_MACB_TX_TIMEOUT; i++) {
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barrier();
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ctrl = macb->tx_ring[tx_head].ctrl;
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if (ctrl & TXBUF_USED)
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break;
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udelay(1);
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}
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dma_unmap_single(packet, length, paddr);
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if (i <= CFG_MACB_TX_TIMEOUT) {
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if (ctrl & TXBUF_UNDERRUN)
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printf("%s: TX underrun\n", netdev->name);
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if (ctrl & TXBUF_EXHAUSTED)
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printf("%s: TX buffers exhausted in mid frame\n",
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netdev->name);
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} else {
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printf("%s: TX timeout\n", netdev->name);
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}
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/* No one cares anyway */
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return 0;
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}
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static void reclaim_rx_buffers(struct macb_device *macb,
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unsigned int new_tail)
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{
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unsigned int i;
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i = macb->rx_tail;
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while (i > new_tail) {
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macb->rx_ring[i].addr &= ~RXADDR_USED;
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i++;
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if (i > CFG_MACB_RX_RING_SIZE)
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i = 0;
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}
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while (i < new_tail) {
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macb->rx_ring[i].addr &= ~RXADDR_USED;
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i++;
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}
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barrier();
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macb->rx_tail = new_tail;
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}
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static int macb_recv(struct eth_device *netdev)
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{
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struct macb_device *macb = to_macb(netdev);
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unsigned int rx_tail = macb->rx_tail;
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void *buffer;
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int length;
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int wrapped = 0;
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u32 status;
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for (;;) {
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if (!(macb->rx_ring[rx_tail].addr & RXADDR_USED))
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return -1;
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status = macb->rx_ring[rx_tail].ctrl;
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if (status & RXBUF_FRAME_START) {
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if (rx_tail != macb->rx_tail)
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reclaim_rx_buffers(macb, rx_tail);
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wrapped = 0;
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}
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if (status & RXBUF_FRAME_END) {
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buffer = macb->rx_buffer + 128 * macb->rx_tail;
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length = status & RXBUF_FRMLEN_MASK;
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if (wrapped) {
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unsigned int headlen, taillen;
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headlen = 128 * (CFG_MACB_RX_RING_SIZE
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- macb->rx_tail);
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taillen = length - headlen;
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memcpy((void *)NetRxPackets[0],
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buffer, headlen);
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memcpy((void *)NetRxPackets[0] + headlen,
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macb->rx_buffer, taillen);
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buffer = (void *)NetRxPackets[0];
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}
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NetReceive(buffer, length);
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if (++rx_tail >= CFG_MACB_RX_RING_SIZE)
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rx_tail = 0;
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reclaim_rx_buffers(macb, rx_tail);
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} else {
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if (++rx_tail >= CFG_MACB_RX_RING_SIZE) {
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wrapped = 1;
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rx_tail = 0;
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}
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}
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barrier();
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}
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return 0;
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}
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static void macb_phy_reset(struct macb_device *macb)
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{
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struct eth_device *netdev = &macb->netdev;
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int i;
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u16 status, adv;
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adv = ADVERTISE_CSMA | ADVERTISE_ALL;
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macb_mdio_write(macb, MII_ADVERTISE, adv);
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printf("%s: Starting autonegotiation...\n", netdev->name);
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macb_mdio_write(macb, MII_BMCR, (BMCR_ANENABLE
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| BMCR_ANRESTART));
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for (i = 0; i < CFG_MACB_AUTONEG_TIMEOUT / 100; i++) {
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status = macb_mdio_read(macb, MII_BMSR);
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if (status & BMSR_ANEGCOMPLETE)
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break;
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udelay(100);
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}
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if (status & BMSR_ANEGCOMPLETE)
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printf("%s: Autonegotiation complete\n", netdev->name);
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else
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printf("%s: Autonegotiation timed out (status=0x%04x)\n",
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netdev->name, status);
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}
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static int macb_phy_init(struct macb_device *macb)
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{
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struct eth_device *netdev = &macb->netdev;
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u32 ncfgr;
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u16 phy_id, status, adv, lpa;
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int media, speed, duplex;
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int i;
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/* Check if the PHY is up to snuff... */
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phy_id = macb_mdio_read(macb, MII_PHYSID1);
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if (phy_id == 0xffff) {
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printf("%s: No PHY present\n", netdev->name);
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return 0;
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}
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status = macb_mdio_read(macb, MII_BMSR);
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if (!(status & BMSR_LSTATUS)) {
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/* Try to re-negotiate if we don't have link already. */
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macb_phy_reset(macb);
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for (i = 0; i < CFG_MACB_AUTONEG_TIMEOUT / 100; i++) {
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status = macb_mdio_read(macb, MII_BMSR);
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if (status & BMSR_LSTATUS)
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break;
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udelay(100);
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}
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}
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if (!(status & BMSR_LSTATUS)) {
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printf("%s: link down (status: 0x%04x)\n",
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netdev->name, status);
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return 0;
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} else {
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adv = macb_mdio_read(macb, MII_ADVERTISE);
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lpa = macb_mdio_read(macb, MII_LPA);
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media = mii_nway_result(lpa & adv);
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speed = (media & (ADVERTISE_100FULL | ADVERTISE_100HALF)
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? 1 : 0);
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duplex = (media & ADVERTISE_FULL) ? 1 : 0;
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printf("%s: link up, %sMbps %s-duplex (lpa: 0x%04x)\n",
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netdev->name,
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speed ? "100" : "10",
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duplex ? "full" : "half",
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lpa);
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ncfgr = macb_readl(macb, NCFGR);
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ncfgr &= ~(MACB_BIT(SPD) | MACB_BIT(FD));
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if (speed)
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ncfgr |= MACB_BIT(SPD);
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if (duplex)
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ncfgr |= MACB_BIT(FD);
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macb_writel(macb, NCFGR, ncfgr);
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return 1;
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}
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}
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static int macb_init(struct eth_device *netdev, bd_t *bd)
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{
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struct macb_device *macb = to_macb(netdev);
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unsigned long paddr;
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u32 hwaddr_bottom;
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u16 hwaddr_top;
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int i;
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/*
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* macb_halt should have been called at some point before now,
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* so we'll assume the controller is idle.
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*/
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/* initialize DMA descriptors */
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paddr = macb->rx_buffer_dma;
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for (i = 0; i < CFG_MACB_RX_RING_SIZE; i++) {
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if (i == (CFG_MACB_RX_RING_SIZE - 1))
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paddr |= RXADDR_WRAP;
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macb->rx_ring[i].addr = paddr;
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macb->rx_ring[i].ctrl = 0;
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paddr += 128;
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}
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for (i = 0; i < CFG_MACB_TX_RING_SIZE; i++) {
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macb->tx_ring[i].addr = 0;
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if (i == (CFG_MACB_TX_RING_SIZE - 1))
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macb->tx_ring[i].ctrl = TXBUF_USED | TXBUF_WRAP;
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else
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macb->tx_ring[i].ctrl = TXBUF_USED;
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}
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macb->rx_tail = macb->tx_head = macb->tx_tail = 0;
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macb_writel(macb, RBQP, macb->rx_ring_dma);
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macb_writel(macb, TBQP, macb->tx_ring_dma);
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/* set hardware address */
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hwaddr_bottom = cpu_to_le32(*((u32 *)netdev->enetaddr));
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macb_writel(macb, SA1B, hwaddr_bottom);
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hwaddr_top = cpu_to_le16(*((u16 *)(netdev->enetaddr + 4)));
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macb_writel(macb, SA1T, hwaddr_top);
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/* choose RMII or MII mode. This depends on the board */
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#ifdef CONFIG_RMII
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macb_writel(macb, USRIO, 0);
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#else
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macb_writel(macb, USRIO, MACB_BIT(MII));
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#endif
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if (!macb_phy_init(macb))
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return 0;
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/* Enable TX and RX */
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macb_writel(macb, NCR, MACB_BIT(TE) | MACB_BIT(RE));
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return 1;
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}
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static void macb_halt(struct eth_device *netdev)
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{
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struct macb_device *macb = to_macb(netdev);
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u32 ncr, tsr;
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/* Halt the controller and wait for any ongoing transmission to end. */
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ncr = macb_readl(macb, NCR);
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ncr |= MACB_BIT(THALT);
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macb_writel(macb, NCR, ncr);
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do {
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tsr = macb_readl(macb, TSR);
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} while (tsr & MACB_BIT(TGO));
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/* Disable TX and RX, and clear statistics */
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macb_writel(macb, NCR, MACB_BIT(CLRSTAT));
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}
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int macb_eth_initialize(int id, void *regs, unsigned int phy_addr)
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{
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struct macb_device *macb;
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struct eth_device *netdev;
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unsigned long macb_hz;
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u32 ncfgr;
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macb = malloc(sizeof(struct macb_device));
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if (!macb) {
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printf("Error: Failed to allocate memory for MACB%d\n", id);
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return -1;
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}
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memset(macb, 0, sizeof(struct macb_device));
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netdev = &macb->netdev;
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macb->rx_buffer = dma_alloc_coherent(CFG_MACB_RX_BUFFER_SIZE,
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&macb->rx_buffer_dma);
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macb->rx_ring = dma_alloc_coherent(CFG_MACB_RX_RING_SIZE
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* sizeof(struct macb_dma_desc),
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&macb->rx_ring_dma);
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macb->tx_ring = dma_alloc_coherent(CFG_MACB_TX_RING_SIZE
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* sizeof(struct macb_dma_desc),
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&macb->tx_ring_dma);
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macb->regs = regs;
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macb->phy_addr = phy_addr;
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sprintf(netdev->name, "macb%d", id);
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netdev->init = macb_init;
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netdev->halt = macb_halt;
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netdev->send = macb_send;
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netdev->recv = macb_recv;
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/*
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* Do some basic initialization so that we at least can talk
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* to the PHY
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*/
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macb_hz = get_macb_pclk_rate(id);
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if (macb_hz < 20000000)
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ncfgr = MACB_BF(CLK, MACB_CLK_DIV8);
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else if (macb_hz < 40000000)
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ncfgr = MACB_BF(CLK, MACB_CLK_DIV16);
|
|
else if (macb_hz < 80000000)
|
|
ncfgr = MACB_BF(CLK, MACB_CLK_DIV32);
|
|
else
|
|
ncfgr = MACB_BF(CLK, MACB_CLK_DIV64);
|
|
|
|
macb_writel(macb, NCFGR, ncfgr);
|
|
|
|
eth_register(netdev);
|
|
|
|
return 0;
|
|
}
|
|
|
|
#endif
|
|
|
|
#if defined(CONFIG_CMD_MII)
|
|
|
|
int miiphy_read(unsigned char addr, unsigned char reg, unsigned short *value)
|
|
{
|
|
unsigned long netctl;
|
|
unsigned long netstat;
|
|
unsigned long frame;
|
|
int iflag;
|
|
|
|
iflag = disable_interrupts();
|
|
netctl = macb_readl(&macb, EMACB_NCR);
|
|
netctl |= MACB_BIT(MPE);
|
|
macb_writel(&macb, EMACB_NCR, netctl);
|
|
if (iflag)
|
|
enable_interrupts();
|
|
|
|
frame = (MACB_BF(SOF, 1)
|
|
| MACB_BF(RW, 2)
|
|
| MACB_BF(PHYA, addr)
|
|
| MACB_BF(REGA, reg)
|
|
| MACB_BF(CODE, 2));
|
|
macb_writel(&macb, EMACB_MAN, frame);
|
|
|
|
do {
|
|
netstat = macb_readl(&macb, EMACB_NSR);
|
|
} while (!(netstat & MACB_BIT(IDLE)));
|
|
|
|
frame = macb_readl(&macb, EMACB_MAN);
|
|
*value = MACB_BFEXT(DATA, frame);
|
|
|
|
iflag = disable_interrupts();
|
|
netctl = macb_readl(&macb, EMACB_NCR);
|
|
netctl &= ~MACB_BIT(MPE);
|
|
macb_writel(&macb, EMACB_NCR, netctl);
|
|
if (iflag)
|
|
enable_interrupts();
|
|
|
|
return 0;
|
|
}
|
|
|
|
int miiphy_write(unsigned char addr, unsigned char reg, unsigned short value)
|
|
{
|
|
unsigned long netctl;
|
|
unsigned long netstat;
|
|
unsigned long frame;
|
|
int iflag;
|
|
|
|
iflag = disable_interrupts();
|
|
netctl = macb_readl(&macb, EMACB_NCR);
|
|
netctl |= MACB_BIT(MPE);
|
|
macb_writel(&macb, EMACB_NCR, netctl);
|
|
if (iflag)
|
|
enable_interrupts();
|
|
|
|
frame = (MACB_BF(SOF, 1)
|
|
| MACB_BF(RW, 1)
|
|
| MACB_BF(PHYA, addr)
|
|
| MACB_BF(REGA, reg)
|
|
| MACB_BF(CODE, 2)
|
|
| MACB_BF(DATA, value));
|
|
macb_writel(&macb, EMACB_MAN, frame);
|
|
|
|
do {
|
|
netstat = macb_readl(&macb, EMACB_NSR);
|
|
} while (!(netstat & MACB_BIT(IDLE)));
|
|
|
|
iflag = disable_interrupts();
|
|
netctl = macb_readl(&macb, EMACB_NCR);
|
|
netctl &= ~MACB_BIT(MPE);
|
|
macb_writel(&macb, EMACB_NCR, netctl);
|
|
if (iflag)
|
|
enable_interrupts();
|
|
|
|
return 0;
|
|
}
|
|
|
|
#endif
|
|
|
|
#endif /* CONFIG_MACB */
|