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rtl8169.c revision 1.23
      1  1.23     pavel /*	$NetBSD: rtl8169.c,v 1.23 2006/05/16 22:39:24 pavel Exp $	*/
      2   1.1  jonathan 
      3   1.1  jonathan /*
      4   1.1  jonathan  * Copyright (c) 1997, 1998-2003
      5   1.1  jonathan  *	Bill Paul <wpaul (at) windriver.com>.  All rights reserved.
      6   1.1  jonathan  *
      7   1.1  jonathan  * Redistribution and use in source and binary forms, with or without
      8   1.1  jonathan  * modification, are permitted provided that the following conditions
      9   1.1  jonathan  * are met:
     10   1.1  jonathan  * 1. Redistributions of source code must retain the above copyright
     11   1.1  jonathan  *    notice, this list of conditions and the following disclaimer.
     12   1.1  jonathan  * 2. Redistributions in binary form must reproduce the above copyright
     13   1.1  jonathan  *    notice, this list of conditions and the following disclaimer in the
     14   1.1  jonathan  *    documentation and/or other materials provided with the distribution.
     15   1.1  jonathan  * 3. All advertising materials mentioning features or use of this software
     16   1.1  jonathan  *    must display the following acknowledgement:
     17   1.1  jonathan  *	This product includes software developed by Bill Paul.
     18   1.1  jonathan  * 4. Neither the name of the author nor the names of any co-contributors
     19   1.1  jonathan  *    may be used to endorse or promote products derived from this software
     20   1.1  jonathan  *    without specific prior written permission.
     21   1.1  jonathan  *
     22   1.1  jonathan  * THIS SOFTWARE IS PROVIDED BY Bill Paul AND CONTRIBUTORS ``AS IS'' AND
     23   1.1  jonathan  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     24   1.1  jonathan  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     25   1.1  jonathan  * ARE DISCLAIMED.  IN NO EVENT SHALL Bill Paul OR THE VOICES IN HIS HEAD
     26   1.1  jonathan  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     27   1.1  jonathan  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     28   1.1  jonathan  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     29   1.1  jonathan  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     30   1.1  jonathan  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     31   1.1  jonathan  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF
     32   1.1  jonathan  * THE POSSIBILITY OF SUCH DAMAGE.
     33   1.1  jonathan  */
     34   1.1  jonathan 
     35   1.1  jonathan #include <sys/cdefs.h>
     36   1.1  jonathan /* $FreeBSD: /repoman/r/ncvs/src/sys/dev/re/if_re.c,v 1.20 2004/04/11 20:34:08 ru Exp $ */
     37   1.1  jonathan 
     38   1.1  jonathan /*
     39   1.1  jonathan  * RealTek 8139C+/8169/8169S/8110S PCI NIC driver
     40   1.1  jonathan  *
     41   1.1  jonathan  * Written by Bill Paul <wpaul (at) windriver.com>
     42   1.1  jonathan  * Senior Networking Software Engineer
     43   1.1  jonathan  * Wind River Systems
     44   1.1  jonathan  */
     45   1.1  jonathan 
     46   1.1  jonathan /*
     47   1.1  jonathan  * This driver is designed to support RealTek's next generation of
     48   1.1  jonathan  * 10/100 and 10/100/1000 PCI ethernet controllers. There are currently
     49   1.1  jonathan  * four devices in this family: the RTL8139C+, the RTL8169, the RTL8169S
     50   1.1  jonathan  * and the RTL8110S.
     51   1.1  jonathan  *
     52   1.1  jonathan  * The 8139C+ is a 10/100 ethernet chip. It is backwards compatible
     53   1.1  jonathan  * with the older 8139 family, however it also supports a special
     54   1.1  jonathan  * C+ mode of operation that provides several new performance enhancing
     55   1.1  jonathan  * features. These include:
     56   1.1  jonathan  *
     57   1.1  jonathan  *	o Descriptor based DMA mechanism. Each descriptor represents
     58   1.1  jonathan  *	  a single packet fragment. Data buffers may be aligned on
     59   1.1  jonathan  *	  any byte boundary.
     60   1.1  jonathan  *
     61   1.1  jonathan  *	o 64-bit DMA
     62   1.1  jonathan  *
     63   1.1  jonathan  *	o TCP/IP checksum offload for both RX and TX
     64   1.1  jonathan  *
     65   1.1  jonathan  *	o High and normal priority transmit DMA rings
     66   1.1  jonathan  *
     67   1.1  jonathan  *	o VLAN tag insertion and extraction
     68   1.1  jonathan  *
     69   1.1  jonathan  *	o TCP large send (segmentation offload)
     70   1.1  jonathan  *
     71   1.1  jonathan  * Like the 8139, the 8139C+ also has a built-in 10/100 PHY. The C+
     72   1.1  jonathan  * programming API is fairly straightforward. The RX filtering, EEPROM
     73   1.1  jonathan  * access and PHY access is the same as it is on the older 8139 series
     74   1.1  jonathan  * chips.
     75   1.1  jonathan  *
     76   1.1  jonathan  * The 8169 is a 64-bit 10/100/1000 gigabit ethernet MAC. It has almost the
     77   1.1  jonathan  * same programming API and feature set as the 8139C+ with the following
     78   1.1  jonathan  * differences and additions:
     79   1.1  jonathan  *
     80   1.1  jonathan  *	o 1000Mbps mode
     81   1.1  jonathan  *
     82   1.1  jonathan  *	o Jumbo frames
     83   1.1  jonathan  *
     84   1.1  jonathan  * 	o GMII and TBI ports/registers for interfacing with copper
     85   1.1  jonathan  *	  or fiber PHYs
     86   1.1  jonathan  *
     87   1.1  jonathan  *      o RX and TX DMA rings can have up to 1024 descriptors
     88   1.1  jonathan  *        (the 8139C+ allows a maximum of 64)
     89   1.1  jonathan  *
     90   1.1  jonathan  *	o Slight differences in register layout from the 8139C+
     91   1.1  jonathan  *
     92   1.1  jonathan  * The TX start and timer interrupt registers are at different locations
     93   1.1  jonathan  * on the 8169 than they are on the 8139C+. Also, the status word in the
     94   1.1  jonathan  * RX descriptor has a slightly different bit layout. The 8169 does not
     95   1.1  jonathan  * have a built-in PHY. Most reference boards use a Marvell 88E1000 'Alaska'
     96   1.1  jonathan  * copper gigE PHY.
     97   1.1  jonathan  *
     98   1.1  jonathan  * The 8169S/8110S 10/100/1000 devices have built-in copper gigE PHYs
     99   1.1  jonathan  * (the 'S' stands for 'single-chip'). These devices have the same
    100   1.1  jonathan  * programming API as the older 8169, but also have some vendor-specific
    101   1.1  jonathan  * registers for the on-board PHY. The 8110S is a LAN-on-motherboard
    102   1.1  jonathan  * part designed to be pin-compatible with the RealTek 8100 10/100 chip.
    103  1.12     perry  *
    104   1.1  jonathan  * This driver takes advantage of the RX and TX checksum offload and
    105   1.1  jonathan  * VLAN tag insertion/extraction features. It also implements TX
    106   1.1  jonathan  * interrupt moderation using the timer interrupt registers, which
    107   1.1  jonathan  * significantly reduces TX interrupt load. There is also support
    108   1.1  jonathan  * for jumbo frames, however the 8169/8169S/8110S can not transmit
    109   1.1  jonathan  * jumbo frames larger than 7.5K, so the max MTU possible with this
    110   1.1  jonathan  * driver is 7500 bytes.
    111   1.1  jonathan  */
    112   1.1  jonathan 
    113   1.1  jonathan #include "bpfilter.h"
    114   1.1  jonathan #include "vlan.h"
    115   1.1  jonathan 
    116   1.1  jonathan #include <sys/param.h>
    117   1.1  jonathan #include <sys/endian.h>
    118   1.1  jonathan #include <sys/systm.h>
    119   1.1  jonathan #include <sys/sockio.h>
    120   1.1  jonathan #include <sys/mbuf.h>
    121   1.1  jonathan #include <sys/malloc.h>
    122   1.1  jonathan #include <sys/kernel.h>
    123   1.1  jonathan #include <sys/socket.h>
    124   1.1  jonathan #include <sys/device.h>
    125   1.1  jonathan 
    126   1.1  jonathan #include <net/if.h>
    127   1.1  jonathan #include <net/if_arp.h>
    128   1.1  jonathan #include <net/if_dl.h>
    129   1.1  jonathan #include <net/if_ether.h>
    130   1.1  jonathan #include <net/if_media.h>
    131   1.1  jonathan #include <net/if_vlanvar.h>
    132   1.1  jonathan 
    133  1.13      yamt #include <netinet/in_systm.h>	/* XXX for IP_MAXPACKET */
    134  1.13      yamt #include <netinet/in.h>		/* XXX for IP_MAXPACKET */
    135  1.13      yamt #include <netinet/ip.h>		/* XXX for IP_MAXPACKET */
    136  1.13      yamt 
    137   1.1  jonathan #if NBPFILTER > 0
    138   1.1  jonathan #include <net/bpf.h>
    139   1.1  jonathan #endif
    140   1.1  jonathan 
    141   1.1  jonathan #include <machine/bus.h>
    142   1.1  jonathan 
    143   1.1  jonathan #include <dev/mii/mii.h>
    144   1.1  jonathan #include <dev/mii/miivar.h>
    145   1.1  jonathan 
    146   1.1  jonathan #include <dev/pci/pcireg.h>
    147   1.1  jonathan #include <dev/pci/pcivar.h>
    148   1.1  jonathan #include <dev/pci/pcidevs.h>
    149   1.1  jonathan 
    150   1.1  jonathan #include <dev/ic/rtl81x9reg.h>
    151   1.1  jonathan #include <dev/ic/rtl81x9var.h>
    152   1.1  jonathan 
    153   1.1  jonathan #include <dev/ic/rtl8169var.h>
    154   1.1  jonathan 
    155   1.1  jonathan 
    156   1.4   kanaoka static int re_encap(struct rtk_softc *, struct mbuf *, int *);
    157   1.1  jonathan 
    158   1.4   kanaoka static int re_newbuf(struct rtk_softc *, int, struct mbuf *);
    159   1.4   kanaoka static int re_rx_list_init(struct rtk_softc *);
    160   1.4   kanaoka static int re_tx_list_init(struct rtk_softc *);
    161   1.4   kanaoka static void re_rxeof(struct rtk_softc *);
    162   1.4   kanaoka static void re_txeof(struct rtk_softc *);
    163   1.4   kanaoka static void re_tick(void *);
    164   1.4   kanaoka static void re_start(struct ifnet *);
    165   1.4   kanaoka static int re_ioctl(struct ifnet *, u_long, caddr_t);
    166   1.4   kanaoka static int re_init(struct ifnet *);
    167   1.4   kanaoka static void re_stop(struct ifnet *, int);
    168   1.4   kanaoka static void re_watchdog(struct ifnet *);
    169   1.4   kanaoka 
    170   1.4   kanaoka static void re_shutdown(void *);
    171   1.4   kanaoka static int re_enable(struct rtk_softc *);
    172   1.4   kanaoka static void re_disable(struct rtk_softc *);
    173   1.4   kanaoka static void re_power(int, void *);
    174   1.4   kanaoka 
    175   1.4   kanaoka static int re_ifmedia_upd(struct ifnet *);
    176   1.4   kanaoka static void re_ifmedia_sts(struct ifnet *, struct ifmediareq *);
    177   1.4   kanaoka 
    178   1.4   kanaoka static int re_gmii_readreg(struct device *, int, int);
    179   1.4   kanaoka static void re_gmii_writereg(struct device *, int, int, int);
    180   1.4   kanaoka 
    181   1.4   kanaoka static int re_miibus_readreg(struct device *, int, int);
    182   1.4   kanaoka static void re_miibus_writereg(struct device *, int, int, int);
    183   1.4   kanaoka static void re_miibus_statchg(struct device *);
    184   1.1  jonathan 
    185   1.4   kanaoka static void re_reset(struct rtk_softc *);
    186   1.1  jonathan 
    187   1.1  jonathan static int
    188   1.1  jonathan re_gmii_readreg(struct device *self, int phy, int reg)
    189   1.1  jonathan {
    190   1.1  jonathan 	struct rtk_softc	*sc = (void *)self;
    191   1.1  jonathan 	u_int32_t		rval;
    192   1.1  jonathan 	int			i;
    193   1.1  jonathan 
    194   1.1  jonathan 	if (phy != 7)
    195   1.4   kanaoka 		return 0;
    196   1.1  jonathan 
    197   1.1  jonathan 	/* Let the rgephy driver read the GMEDIASTAT register */
    198   1.1  jonathan 
    199   1.1  jonathan 	if (reg == RTK_GMEDIASTAT) {
    200   1.1  jonathan 		rval = CSR_READ_1(sc, RTK_GMEDIASTAT);
    201   1.4   kanaoka 		return rval;
    202   1.1  jonathan 	}
    203   1.1  jonathan 
    204   1.1  jonathan 	CSR_WRITE_4(sc, RTK_PHYAR, reg << 16);
    205   1.1  jonathan 	DELAY(1000);
    206   1.1  jonathan 
    207   1.1  jonathan 	for (i = 0; i < RTK_TIMEOUT; i++) {
    208   1.1  jonathan 		rval = CSR_READ_4(sc, RTK_PHYAR);
    209   1.1  jonathan 		if (rval & RTK_PHYAR_BUSY)
    210   1.1  jonathan 			break;
    211   1.1  jonathan 		DELAY(100);
    212   1.1  jonathan 	}
    213   1.1  jonathan 
    214   1.1  jonathan 	if (i == RTK_TIMEOUT) {
    215   1.4   kanaoka 		aprint_error("%s: PHY read failed\n", sc->sc_dev.dv_xname);
    216   1.4   kanaoka 		return 0;
    217   1.1  jonathan 	}
    218   1.1  jonathan 
    219   1.4   kanaoka 	return rval & RTK_PHYAR_PHYDATA;
    220   1.1  jonathan }
    221   1.1  jonathan 
    222   1.1  jonathan static void
    223   1.1  jonathan re_gmii_writereg(struct device *dev, int phy, int reg, int data)
    224   1.1  jonathan {
    225   1.1  jonathan 	struct rtk_softc	*sc = (void *)dev;
    226   1.1  jonathan 	u_int32_t		rval;
    227   1.1  jonathan 	int			i;
    228   1.1  jonathan 
    229   1.1  jonathan 	CSR_WRITE_4(sc, RTK_PHYAR, (reg << 16) |
    230   1.1  jonathan 	    (data & RTK_PHYAR_PHYDATA) | RTK_PHYAR_BUSY);
    231   1.1  jonathan 	DELAY(1000);
    232   1.1  jonathan 
    233   1.1  jonathan 	for (i = 0; i < RTK_TIMEOUT; i++) {
    234   1.1  jonathan 		rval = CSR_READ_4(sc, RTK_PHYAR);
    235   1.1  jonathan 		if (!(rval & RTK_PHYAR_BUSY))
    236   1.1  jonathan 			break;
    237   1.1  jonathan 		DELAY(100);
    238   1.1  jonathan 	}
    239   1.1  jonathan 
    240   1.1  jonathan 	if (i == RTK_TIMEOUT) {
    241   1.4   kanaoka 		aprint_error("%s: PHY write reg %x <- %x failed\n",
    242   1.4   kanaoka 		    sc->sc_dev.dv_xname, reg, data);
    243   1.1  jonathan 		return;
    244   1.1  jonathan 	}
    245   1.1  jonathan 
    246   1.1  jonathan 	return;
    247   1.1  jonathan }
    248   1.1  jonathan 
    249   1.1  jonathan static int
    250   1.1  jonathan re_miibus_readreg(struct device *dev, int phy, int reg)
    251   1.1  jonathan {
    252   1.1  jonathan 	struct rtk_softc	*sc = (void *)dev;
    253   1.1  jonathan 	u_int16_t		rval = 0;
    254   1.1  jonathan 	u_int16_t		re8139_reg = 0;
    255   1.1  jonathan 	int			s;
    256   1.1  jonathan 
    257   1.1  jonathan 	s = splnet();
    258   1.1  jonathan 
    259   1.1  jonathan 	if (sc->rtk_type == RTK_8169) {
    260   1.1  jonathan 		rval = re_gmii_readreg(dev, phy, reg);
    261   1.1  jonathan 		splx(s);
    262   1.4   kanaoka 		return rval;
    263   1.1  jonathan 	}
    264   1.1  jonathan 
    265   1.1  jonathan 	/* Pretend the internal PHY is only at address 0 */
    266   1.1  jonathan 	if (phy) {
    267   1.1  jonathan 		splx(s);
    268   1.4   kanaoka 		return 0;
    269   1.1  jonathan 	}
    270   1.4   kanaoka 	switch (reg) {
    271   1.1  jonathan 	case MII_BMCR:
    272   1.1  jonathan 		re8139_reg = RTK_BMCR;
    273   1.1  jonathan 		break;
    274   1.1  jonathan 	case MII_BMSR:
    275   1.1  jonathan 		re8139_reg = RTK_BMSR;
    276   1.1  jonathan 		break;
    277   1.1  jonathan 	case MII_ANAR:
    278   1.1  jonathan 		re8139_reg = RTK_ANAR;
    279   1.1  jonathan 		break;
    280   1.1  jonathan 	case MII_ANER:
    281   1.1  jonathan 		re8139_reg = RTK_ANER;
    282   1.1  jonathan 		break;
    283   1.1  jonathan 	case MII_ANLPAR:
    284   1.1  jonathan 		re8139_reg = RTK_LPAR;
    285   1.1  jonathan 		break;
    286   1.1  jonathan 	case MII_PHYIDR1:
    287   1.1  jonathan 	case MII_PHYIDR2:
    288   1.1  jonathan 		splx(s);
    289   1.4   kanaoka 		return 0;
    290   1.1  jonathan 	/*
    291   1.1  jonathan 	 * Allow the rlphy driver to read the media status
    292   1.1  jonathan 	 * register. If we have a link partner which does not
    293   1.1  jonathan 	 * support NWAY, this is the register which will tell
    294   1.1  jonathan 	 * us the results of parallel detection.
    295   1.1  jonathan 	 */
    296   1.1  jonathan 	case RTK_MEDIASTAT:
    297   1.1  jonathan 		rval = CSR_READ_1(sc, RTK_MEDIASTAT);
    298   1.1  jonathan 		splx(s);
    299   1.4   kanaoka 		return rval;
    300   1.1  jonathan 	default:
    301   1.4   kanaoka 		aprint_error("%s: bad phy register\n", sc->sc_dev.dv_xname);
    302   1.1  jonathan 		splx(s);
    303   1.4   kanaoka 		return 0;
    304   1.1  jonathan 	}
    305   1.1  jonathan 	rval = CSR_READ_2(sc, re8139_reg);
    306   1.1  jonathan 	splx(s);
    307   1.4   kanaoka 	return rval;
    308   1.1  jonathan }
    309   1.1  jonathan 
    310   1.1  jonathan static void
    311   1.1  jonathan re_miibus_writereg(struct device *dev, int phy, int reg, int data)
    312   1.1  jonathan {
    313   1.1  jonathan 	struct rtk_softc	*sc = (void *)dev;
    314   1.1  jonathan 	u_int16_t		re8139_reg = 0;
    315   1.1  jonathan 	int			s;
    316   1.1  jonathan 
    317   1.1  jonathan 	s = splnet();
    318   1.1  jonathan 
    319   1.1  jonathan 	if (sc->rtk_type == RTK_8169) {
    320   1.1  jonathan 		re_gmii_writereg(dev, phy, reg, data);
    321   1.1  jonathan 		splx(s);
    322   1.1  jonathan 		return;
    323   1.1  jonathan 	}
    324   1.1  jonathan 
    325   1.1  jonathan 	/* Pretend the internal PHY is only at address 0 */
    326   1.1  jonathan 	if (phy) {
    327   1.1  jonathan 		splx(s);
    328   1.1  jonathan 		return;
    329   1.1  jonathan 	}
    330   1.4   kanaoka 	switch (reg) {
    331   1.1  jonathan 	case MII_BMCR:
    332   1.1  jonathan 		re8139_reg = RTK_BMCR;
    333   1.1  jonathan 		break;
    334   1.1  jonathan 	case MII_BMSR:
    335   1.1  jonathan 		re8139_reg = RTK_BMSR;
    336   1.1  jonathan 		break;
    337   1.1  jonathan 	case MII_ANAR:
    338   1.1  jonathan 		re8139_reg = RTK_ANAR;
    339   1.1  jonathan 		break;
    340   1.1  jonathan 	case MII_ANER:
    341   1.1  jonathan 		re8139_reg = RTK_ANER;
    342   1.1  jonathan 		break;
    343   1.1  jonathan 	case MII_ANLPAR:
    344   1.1  jonathan 		re8139_reg = RTK_LPAR;
    345   1.1  jonathan 		break;
    346   1.1  jonathan 	case MII_PHYIDR1:
    347   1.1  jonathan 	case MII_PHYIDR2:
    348   1.1  jonathan 		splx(s);
    349   1.1  jonathan 		return;
    350   1.1  jonathan 		break;
    351   1.1  jonathan 	default:
    352   1.4   kanaoka 		aprint_error("%s: bad phy register\n", sc->sc_dev.dv_xname);
    353   1.1  jonathan 		splx(s);
    354   1.1  jonathan 		return;
    355   1.1  jonathan 	}
    356   1.1  jonathan 	CSR_WRITE_2(sc, re8139_reg, data);
    357   1.1  jonathan 	splx(s);
    358   1.1  jonathan 	return;
    359   1.1  jonathan }
    360   1.1  jonathan 
    361   1.1  jonathan static void
    362   1.1  jonathan re_miibus_statchg(struct device *dev)
    363   1.1  jonathan {
    364   1.1  jonathan 
    365   1.1  jonathan 	return;
    366   1.1  jonathan }
    367   1.1  jonathan 
    368   1.1  jonathan static void
    369   1.1  jonathan re_reset(struct rtk_softc *sc)
    370   1.1  jonathan {
    371   1.1  jonathan 	register int		i;
    372   1.1  jonathan 
    373   1.1  jonathan 	CSR_WRITE_1(sc, RTK_COMMAND, RTK_CMD_RESET);
    374   1.1  jonathan 
    375   1.1  jonathan 	for (i = 0; i < RTK_TIMEOUT; i++) {
    376   1.1  jonathan 		DELAY(10);
    377   1.1  jonathan 		if (!(CSR_READ_1(sc, RTK_COMMAND) & RTK_CMD_RESET))
    378   1.1  jonathan 			break;
    379   1.1  jonathan 	}
    380   1.1  jonathan 	if (i == RTK_TIMEOUT)
    381   1.4   kanaoka 		aprint_error("%s: reset never completed!\n",
    382   1.4   kanaoka 		    sc->sc_dev.dv_xname);
    383   1.1  jonathan 
    384   1.1  jonathan 	/*
    385   1.1  jonathan 	 * NB: Realtek-supplied Linux driver does this only for
    386   1.1  jonathan 	 * MCFG_METHOD_2, which corresponds to sc->sc_rev == 2.
    387   1.1  jonathan 	 */
    388   1.4   kanaoka 	if (1) /* XXX check softc flag for 8169s version */
    389   1.4   kanaoka 		CSR_WRITE_1(sc, 0x82, 1);
    390   1.1  jonathan 
    391   1.1  jonathan 	return;
    392   1.1  jonathan }
    393   1.1  jonathan 
    394   1.1  jonathan /*
    395   1.1  jonathan  * The following routine is designed to test for a defect on some
    396   1.1  jonathan  * 32-bit 8169 cards. Some of these NICs have the REQ64# and ACK64#
    397   1.1  jonathan  * lines connected to the bus, however for a 32-bit only card, they
    398   1.1  jonathan  * should be pulled high. The result of this defect is that the
    399   1.1  jonathan  * NIC will not work right if you plug it into a 64-bit slot: DMA
    400   1.1  jonathan  * operations will be done with 64-bit transfers, which will fail
    401   1.1  jonathan  * because the 64-bit data lines aren't connected.
    402   1.1  jonathan  *
    403   1.1  jonathan  * There's no way to work around this (short of talking a soldering
    404   1.1  jonathan  * iron to the board), however we can detect it. The method we use
    405   1.1  jonathan  * here is to put the NIC into digital loopback mode, set the receiver
    406   1.1  jonathan  * to promiscuous mode, and then try to send a frame. We then compare
    407   1.1  jonathan  * the frame data we sent to what was received. If the data matches,
    408   1.1  jonathan  * then the NIC is working correctly, otherwise we know the user has
    409   1.1  jonathan  * a defective NIC which has been mistakenly plugged into a 64-bit PCI
    410   1.1  jonathan  * slot. In the latter case, there's no way the NIC can work correctly,
    411   1.1  jonathan  * so we print out a message on the console and abort the device attach.
    412   1.1  jonathan  */
    413   1.1  jonathan 
    414   1.6   kanaoka int
    415   1.1  jonathan re_diag(struct rtk_softc *sc)
    416   1.1  jonathan {
    417   1.1  jonathan 	struct ifnet		*ifp = &sc->ethercom.ec_if;
    418   1.1  jonathan 	struct mbuf		*m0;
    419   1.1  jonathan 	struct ether_header	*eh;
    420   1.1  jonathan 	struct rtk_desc		*cur_rx;
    421   1.1  jonathan 	bus_dmamap_t		dmamap;
    422   1.1  jonathan 	u_int16_t		status;
    423   1.1  jonathan 	u_int32_t		rxstat;
    424   1.1  jonathan 	int			total_len, i, s, error = 0;
    425   1.1  jonathan 	u_int8_t		dst[] = { 0x00, 'h', 'e', 'l', 'l', 'o' };
    426   1.1  jonathan 	u_int8_t		src[] = { 0x00, 'w', 'o', 'r', 'l', 'd' };
    427   1.1  jonathan 
    428   1.1  jonathan 	/* Allocate a single mbuf */
    429   1.1  jonathan 
    430   1.1  jonathan 	MGETHDR(m0, M_DONTWAIT, MT_DATA);
    431   1.1  jonathan 	if (m0 == NULL)
    432   1.4   kanaoka 		return ENOBUFS;
    433   1.1  jonathan 
    434   1.1  jonathan 	/*
    435   1.1  jonathan 	 * Initialize the NIC in test mode. This sets the chip up
    436   1.1  jonathan 	 * so that it can send and receive frames, but performs the
    437   1.1  jonathan 	 * following special functions:
    438   1.1  jonathan 	 * - Puts receiver in promiscuous mode
    439   1.1  jonathan 	 * - Enables digital loopback mode
    440   1.1  jonathan 	 * - Leaves interrupts turned off
    441   1.1  jonathan 	 */
    442   1.1  jonathan 
    443   1.1  jonathan 	ifp->if_flags |= IFF_PROMISC;
    444   1.1  jonathan 	sc->rtk_testmode = 1;
    445   1.1  jonathan 	re_init(ifp);
    446   1.6   kanaoka 	re_stop(ifp, 0);
    447   1.1  jonathan 	DELAY(100000);
    448   1.1  jonathan 	re_init(ifp);
    449   1.1  jonathan 
    450   1.1  jonathan 	/* Put some data in the mbuf */
    451   1.1  jonathan 
    452   1.1  jonathan 	eh = mtod(m0, struct ether_header *);
    453   1.4   kanaoka 	bcopy((char *)&dst, eh->ether_dhost, ETHER_ADDR_LEN);
    454   1.4   kanaoka 	bcopy((char *)&src, eh->ether_shost, ETHER_ADDR_LEN);
    455   1.1  jonathan 	eh->ether_type = htons(ETHERTYPE_IP);
    456   1.1  jonathan 	m0->m_pkthdr.len = m0->m_len = ETHER_MIN_LEN - ETHER_CRC_LEN;
    457   1.1  jonathan 
    458   1.1  jonathan 	/*
    459   1.1  jonathan 	 * Queue the packet, start transmission.
    460   1.1  jonathan 	 */
    461   1.1  jonathan 
    462   1.1  jonathan 	CSR_WRITE_2(sc, RTK_ISR, 0xFFFF);
    463   1.1  jonathan 	s = splnet();
    464   1.1  jonathan 	IF_ENQUEUE(&ifp->if_snd, m0);
    465   1.1  jonathan 	re_start(ifp);
    466   1.1  jonathan 	splx(s);
    467   1.1  jonathan 	m0 = NULL;
    468   1.1  jonathan 
    469   1.1  jonathan 	/* Wait for it to propagate through the chip */
    470   1.1  jonathan 
    471   1.1  jonathan 	DELAY(100000);
    472   1.1  jonathan 	for (i = 0; i < RTK_TIMEOUT; i++) {
    473   1.1  jonathan 		status = CSR_READ_2(sc, RTK_ISR);
    474   1.4   kanaoka 		if ((status & (RTK_ISR_TIMEOUT_EXPIRED | RTK_ISR_RX_OK)) ==
    475   1.4   kanaoka 		    (RTK_ISR_TIMEOUT_EXPIRED | RTK_ISR_RX_OK))
    476   1.1  jonathan 			break;
    477   1.1  jonathan 		DELAY(10);
    478   1.1  jonathan 	}
    479   1.1  jonathan 	if (i == RTK_TIMEOUT) {
    480   1.4   kanaoka 		aprint_error("%s: diagnostic failed, failed to receive packet "
    481   1.1  jonathan 		    "in loopback mode\n", sc->sc_dev.dv_xname);
    482   1.1  jonathan 		error = EIO;
    483   1.1  jonathan 		goto done;
    484   1.1  jonathan 	}
    485   1.1  jonathan 
    486   1.1  jonathan 	/*
    487   1.1  jonathan 	 * The packet should have been dumped into the first
    488   1.1  jonathan 	 * entry in the RX DMA ring. Grab it from there.
    489   1.1  jonathan 	 */
    490   1.1  jonathan 
    491   1.1  jonathan 	dmamap = sc->rtk_ldata.rtk_rx_list_map;
    492   1.1  jonathan 	bus_dmamap_sync(sc->sc_dmat,
    493   1.1  jonathan 	    dmamap, 0, dmamap->dm_mapsize, BUS_DMASYNC_POSTREAD);
    494   1.1  jonathan 	dmamap = sc->rtk_ldata.rtk_rx_dmamap[0];
    495   1.1  jonathan 	bus_dmamap_sync(sc->sc_dmat, dmamap, 0, dmamap->dm_mapsize,
    496  1.20    briggs 	    BUS_DMASYNC_POSTREAD);
    497   1.1  jonathan 	bus_dmamap_unload(sc->sc_dmat,
    498   1.1  jonathan 	    sc->rtk_ldata.rtk_rx_dmamap[0]);
    499   1.1  jonathan 
    500   1.1  jonathan 	m0 = sc->rtk_ldata.rtk_rx_mbuf[0];
    501   1.1  jonathan 	sc->rtk_ldata.rtk_rx_mbuf[0] = NULL;
    502   1.1  jonathan 	eh = mtod(m0, struct ether_header *);
    503   1.1  jonathan 
    504   1.1  jonathan 	cur_rx = &sc->rtk_ldata.rtk_rx_list[0];
    505   1.1  jonathan 	total_len = RTK_RXBYTES(cur_rx);
    506   1.1  jonathan 	rxstat = le32toh(cur_rx->rtk_cmdstat);
    507   1.1  jonathan 
    508   1.1  jonathan 	if (total_len != ETHER_MIN_LEN) {
    509   1.4   kanaoka 		aprint_error("%s: diagnostic failed, received short packet\n",
    510   1.1  jonathan 		    sc->sc_dev.dv_xname);
    511   1.1  jonathan 		error = EIO;
    512   1.1  jonathan 		goto done;
    513   1.1  jonathan 	}
    514   1.1  jonathan 
    515   1.1  jonathan 	/* Test that the received packet data matches what we sent. */
    516   1.1  jonathan 
    517   1.1  jonathan 	if (bcmp((char *)&eh->ether_dhost, (char *)&dst, ETHER_ADDR_LEN) ||
    518   1.1  jonathan 	    bcmp((char *)&eh->ether_shost, (char *)&src, ETHER_ADDR_LEN) ||
    519   1.1  jonathan 	    ntohs(eh->ether_type) != ETHERTYPE_IP) {
    520   1.4   kanaoka 		aprint_error("%s: WARNING, DMA FAILURE!\n",
    521   1.4   kanaoka 		    sc->sc_dev.dv_xname);
    522   1.4   kanaoka 		aprint_error("%s: expected TX data: %s",
    523   1.1  jonathan 		    sc->sc_dev.dv_xname, ether_sprintf(dst));
    524   1.4   kanaoka 		aprint_error("/%s/0x%x\n", ether_sprintf(src), ETHERTYPE_IP);
    525   1.4   kanaoka 		aprint_error("%s: received RX data: %s",
    526   1.1  jonathan 		    sc->sc_dev.dv_xname,
    527   1.1  jonathan 		    ether_sprintf(eh->ether_dhost));
    528   1.4   kanaoka 		aprint_error("/%s/0x%x\n", ether_sprintf(eh->ether_shost),
    529   1.1  jonathan 		    ntohs(eh->ether_type));
    530   1.4   kanaoka 		aprint_error("%s: You may have a defective 32-bit NIC plugged "
    531   1.1  jonathan 		    "into a 64-bit PCI slot.\n", sc->sc_dev.dv_xname);
    532   1.4   kanaoka 		aprint_error("%s: Please re-install the NIC in a 32-bit slot "
    533   1.1  jonathan 		    "for proper operation.\n", sc->sc_dev.dv_xname);
    534   1.4   kanaoka 		aprint_error("%s: Read the re(4) man page for more details.\n",
    535   1.1  jonathan 		    sc->sc_dev.dv_xname);
    536   1.1  jonathan 		error = EIO;
    537   1.1  jonathan 	}
    538   1.1  jonathan 
    539   1.1  jonathan done:
    540   1.1  jonathan 	/* Turn interface off, release resources */
    541   1.1  jonathan 
    542   1.1  jonathan 	sc->rtk_testmode = 0;
    543   1.1  jonathan 	ifp->if_flags &= ~IFF_PROMISC;
    544   1.6   kanaoka 	re_stop(ifp, 0);
    545   1.1  jonathan 	if (m0 != NULL)
    546   1.1  jonathan 		m_freem(m0);
    547   1.1  jonathan 
    548   1.4   kanaoka 	return error;
    549   1.1  jonathan }
    550   1.1  jonathan 
    551   1.1  jonathan 
    552   1.1  jonathan /*
    553   1.1  jonathan  * Attach the interface. Allocate softc structures, do ifmedia
    554   1.1  jonathan  * setup and ethernet/BPF attach.
    555   1.1  jonathan  */
    556   1.1  jonathan void
    557   1.1  jonathan re_attach(struct rtk_softc *sc)
    558   1.1  jonathan {
    559   1.1  jonathan 	u_char			eaddr[ETHER_ADDR_LEN];
    560   1.1  jonathan 	u_int16_t		val;
    561   1.1  jonathan 	struct ifnet		*ifp;
    562   1.1  jonathan 	int			error = 0, i, addr_len;
    563   1.1  jonathan 
    564   1.5   kanaoka 
    565   1.1  jonathan 	/* XXX JRS: bus-attach-independent code begins approximately here */
    566   1.1  jonathan 
    567   1.1  jonathan 	/* Reset the adapter. */
    568   1.1  jonathan 	re_reset(sc);
    569   1.1  jonathan 
    570   1.1  jonathan 	if (sc->rtk_type == RTK_8169) {
    571   1.1  jonathan 		uint32_t hwrev;
    572   1.1  jonathan 
    573   1.1  jonathan 		/* Revision of 8169/8169S/8110s in bits 30..26, 23 */
    574   1.1  jonathan 		hwrev = CSR_READ_4(sc, RTK_TXCFG) & 0x7c800000;
    575   1.1  jonathan 		if (hwrev == (0x1 << 28)) {
    576   1.1  jonathan 			sc->sc_rev = 4;
    577   1.1  jonathan 		} else if (hwrev == (0x1 << 26)) {
    578   1.1  jonathan 			sc->sc_rev = 3;
    579   1.1  jonathan 		} else if (hwrev == (0x1 << 23)) {
    580   1.1  jonathan 			sc->sc_rev = 2;
    581   1.1  jonathan 		} else
    582   1.1  jonathan 			sc->sc_rev = 1;
    583   1.1  jonathan 
    584   1.1  jonathan 		/* Set RX length mask */
    585   1.1  jonathan 
    586   1.1  jonathan 		sc->rtk_rxlenmask = RTK_RDESC_STAT_GFRAGLEN;
    587   1.1  jonathan 
    588   1.1  jonathan 		/* Force station address autoload from the EEPROM */
    589   1.1  jonathan 
    590   1.1  jonathan 		CSR_WRITE_1(sc, RTK_EECMD, RTK_EEMODE_AUTOLOAD);
    591   1.1  jonathan 		for (i = 0; i < RTK_TIMEOUT; i++) {
    592   1.1  jonathan 			if (!(CSR_READ_1(sc, RTK_EECMD) & RTK_EEMODE_AUTOLOAD))
    593   1.1  jonathan 				break;
    594   1.1  jonathan 			DELAY(100);
    595   1.1  jonathan 		}
    596   1.1  jonathan 		if (i == RTK_TIMEOUT)
    597   1.4   kanaoka 			aprint_error("%s: eeprom autoload timed out\n",
    598   1.4   kanaoka 			    sc->sc_dev.dv_xname);
    599   1.1  jonathan 
    600   1.4   kanaoka 		for (i = 0; i < ETHER_ADDR_LEN; i++)
    601   1.4   kanaoka 			eaddr[i] = CSR_READ_1(sc, RTK_IDR0 + i);
    602  1.15      yamt 
    603  1.15      yamt 		sc->rtk_ldata.rtk_tx_desc_cnt = RTK_TX_DESC_CNT_8169;
    604   1.1  jonathan 	} else {
    605   1.1  jonathan 
    606   1.1  jonathan 		/* Set RX length mask */
    607   1.1  jonathan 
    608   1.1  jonathan 		sc->rtk_rxlenmask = RTK_RDESC_STAT_FRAGLEN;
    609   1.1  jonathan 
    610   1.1  jonathan 		if (rtk_read_eeprom(sc, RTK_EE_ID, RTK_EEADDR_LEN1) == 0x8129)
    611   1.1  jonathan 			addr_len = RTK_EEADDR_LEN1;
    612   1.1  jonathan 		else
    613   1.1  jonathan 			addr_len = RTK_EEADDR_LEN0;
    614   1.1  jonathan 
    615   1.1  jonathan 		/*
    616   1.1  jonathan 		 * Get station address from the EEPROM.
    617   1.1  jonathan 		 */
    618   1.1  jonathan 		for (i = 0; i < 3; i++) {
    619   1.1  jonathan 			val = rtk_read_eeprom(sc, RTK_EE_EADDR0 + i, addr_len);
    620   1.1  jonathan 			eaddr[(i * 2) + 0] = val & 0xff;
    621   1.1  jonathan 			eaddr[(i * 2) + 1] = val >> 8;
    622   1.1  jonathan 		}
    623  1.15      yamt 
    624  1.15      yamt 		sc->rtk_ldata.rtk_tx_desc_cnt = RTK_TX_DESC_CNT_8139;
    625   1.1  jonathan 	}
    626   1.1  jonathan 
    627   1.1  jonathan 	aprint_normal("%s: Ethernet address %s\n",
    628   1.1  jonathan 	    sc->sc_dev.dv_xname, ether_sprintf(eaddr));
    629   1.1  jonathan 
    630  1.15      yamt 	if (sc->rtk_ldata.rtk_tx_desc_cnt >
    631  1.15      yamt 	    PAGE_SIZE / sizeof(struct rtk_desc)) {
    632  1.15      yamt 		sc->rtk_ldata.rtk_tx_desc_cnt =
    633  1.15      yamt 		    PAGE_SIZE / sizeof(struct rtk_desc);
    634  1.15      yamt 	}
    635  1.15      yamt 
    636  1.15      yamt 	aprint_verbose("%s: using %d tx descriptors\n",
    637  1.15      yamt 	    sc->sc_dev.dv_xname, sc->rtk_ldata.rtk_tx_desc_cnt);
    638   1.1  jonathan 
    639   1.5   kanaoka 	/* Allocate DMA'able memory for the TX ring */
    640  1.15      yamt 	if ((error = bus_dmamem_alloc(sc->sc_dmat, RTK_TX_LIST_SZ(sc),
    641  1.12     perry 		    RTK_ETHER_ALIGN, 0, &sc->rtk_ldata.rtk_tx_listseg,
    642   1.5   kanaoka 		    1, &sc->rtk_ldata.rtk_tx_listnseg, BUS_DMA_NOWAIT)) != 0) {
    643   1.5   kanaoka 		aprint_error("%s: can't allocate tx listseg, error = %d\n",
    644   1.5   kanaoka 		    sc->sc_dev.dv_xname, error);
    645   1.5   kanaoka 		goto fail_0;
    646   1.5   kanaoka 	}
    647   1.5   kanaoka 
    648   1.5   kanaoka 	/* Load the map for the TX ring. */
    649   1.5   kanaoka 	if ((error = bus_dmamem_map(sc->sc_dmat, &sc->rtk_ldata.rtk_tx_listseg,
    650  1.15      yamt 		    sc->rtk_ldata.rtk_tx_listnseg, RTK_TX_LIST_SZ(sc),
    651   1.5   kanaoka 		    (caddr_t *)&sc->rtk_ldata.rtk_tx_list,
    652   1.5   kanaoka 		    BUS_DMA_NOWAIT)) != 0) {
    653   1.5   kanaoka 		aprint_error("%s: can't map tx list, error = %d\n",
    654   1.5   kanaoka 		    sc->sc_dev.dv_xname, error);
    655   1.5   kanaoka 	  	goto fail_1;
    656   1.5   kanaoka 	}
    657  1.15      yamt 	memset(sc->rtk_ldata.rtk_tx_list, 0, RTK_TX_LIST_SZ(sc));
    658   1.5   kanaoka 
    659  1.15      yamt 	if ((error = bus_dmamap_create(sc->sc_dmat, RTK_TX_LIST_SZ(sc), 1,
    660  1.15      yamt 		    RTK_TX_LIST_SZ(sc), 0, BUS_DMA_ALLOCNOW,
    661   1.5   kanaoka 		    &sc->rtk_ldata.rtk_tx_list_map)) != 0) {
    662   1.5   kanaoka 		aprint_error("%s: can't create tx list map, error = %d\n",
    663   1.5   kanaoka 		    sc->sc_dev.dv_xname, error);
    664   1.5   kanaoka 		goto fail_2;
    665   1.5   kanaoka 	}
    666   1.5   kanaoka 
    667   1.5   kanaoka 
    668  1.12     perry 	if ((error = bus_dmamap_load(sc->sc_dmat,
    669  1.12     perry 		    sc->rtk_ldata.rtk_tx_list_map, sc->rtk_ldata.rtk_tx_list,
    670  1.15      yamt 		    RTK_TX_LIST_SZ(sc), NULL, BUS_DMA_NOWAIT)) != 0) {
    671   1.5   kanaoka 		aprint_error("%s: can't load tx list, error = %d\n",
    672   1.5   kanaoka 		    sc->sc_dev.dv_xname, error);
    673   1.5   kanaoka 		goto fail_3;
    674   1.5   kanaoka 	}
    675   1.5   kanaoka 
    676   1.5   kanaoka 	/* Create DMA maps for TX buffers */
    677  1.15      yamt 	for (i = 0; i < RTK_TX_QLEN; i++) {
    678  1.13      yamt 		error = bus_dmamap_create(sc->sc_dmat,
    679  1.13      yamt 		    round_page(IP_MAXPACKET),
    680  1.15      yamt 		    RTK_TX_DESC_CNT(sc) - 4, RTK_TDESC_CMD_FRAGLEN,
    681  1.13      yamt 		    0, BUS_DMA_ALLOCNOW,
    682  1.15      yamt 		    &sc->rtk_ldata.rtk_txq[i].txq_dmamap);
    683   1.5   kanaoka 		if (error) {
    684   1.5   kanaoka 			aprint_error("%s: can't create DMA map for TX\n",
    685   1.5   kanaoka 			    sc->sc_dev.dv_xname);
    686   1.5   kanaoka 			goto fail_4;
    687   1.5   kanaoka 		}
    688   1.5   kanaoka 	}
    689   1.5   kanaoka 
    690   1.5   kanaoka 	/* Allocate DMA'able memory for the RX ring */
    691   1.5   kanaoka         if ((error = bus_dmamem_alloc(sc->sc_dmat, RTK_RX_LIST_SZ,
    692   1.5   kanaoka 		    RTK_RING_ALIGN, 0, &sc->rtk_ldata.rtk_rx_listseg, 1,
    693   1.5   kanaoka 		    &sc->rtk_ldata.rtk_rx_listnseg, BUS_DMA_NOWAIT)) != 0) {
    694   1.5   kanaoka 		aprint_error("%s: can't allocate rx listseg, error = %d\n",
    695   1.5   kanaoka 		    sc->sc_dev.dv_xname, error);
    696   1.5   kanaoka 		goto fail_4;
    697   1.5   kanaoka 	}
    698   1.5   kanaoka 
    699   1.5   kanaoka 	/* Load the map for the RX ring. */
    700   1.5   kanaoka 	if ((error = bus_dmamem_map(sc->sc_dmat, &sc->rtk_ldata.rtk_rx_listseg,
    701   1.5   kanaoka 		    sc->rtk_ldata.rtk_rx_listnseg, RTK_RX_LIST_SZ,
    702   1.5   kanaoka 		    (caddr_t *)&sc->rtk_ldata.rtk_rx_list,
    703   1.5   kanaoka 		    BUS_DMA_NOWAIT)) != 0) {
    704   1.5   kanaoka 		aprint_error("%s: can't map rx list, error = %d\n",
    705   1.5   kanaoka 		    sc->sc_dev.dv_xname, error);
    706   1.5   kanaoka 		goto fail_5;
    707   1.5   kanaoka 	}
    708  1.15      yamt 	memset(sc->rtk_ldata.rtk_rx_list, 0, RTK_RX_LIST_SZ);
    709   1.5   kanaoka 
    710   1.5   kanaoka 	if ((error = bus_dmamap_create(sc->sc_dmat, RTK_RX_LIST_SZ, 1,
    711   1.5   kanaoka 		    RTK_RX_LIST_SZ, 0, BUS_DMA_ALLOCNOW,
    712   1.5   kanaoka 		    &sc->rtk_ldata.rtk_rx_list_map)) != 0) {
    713   1.5   kanaoka 		aprint_error("%s: can't create rx list map, error = %d\n",
    714   1.5   kanaoka 		    sc->sc_dev.dv_xname, error);
    715   1.5   kanaoka 		goto fail_6;
    716   1.5   kanaoka 	}
    717   1.5   kanaoka 
    718   1.5   kanaoka 	if ((error = bus_dmamap_load(sc->sc_dmat,
    719   1.5   kanaoka 		    sc->rtk_ldata.rtk_rx_list_map, sc->rtk_ldata.rtk_rx_list,
    720   1.5   kanaoka 		    RTK_RX_LIST_SZ, NULL, BUS_DMA_NOWAIT)) != 0) {
    721   1.5   kanaoka 		aprint_error("%s: can't load rx list, error = %d\n",
    722   1.5   kanaoka 		    sc->sc_dev.dv_xname, error);
    723   1.5   kanaoka 		goto fail_7;
    724   1.5   kanaoka 	}
    725   1.5   kanaoka 
    726   1.5   kanaoka 	/* Create DMA maps for RX buffers */
    727   1.5   kanaoka 	for (i = 0; i < RTK_RX_DESC_CNT; i++) {
    728   1.5   kanaoka 		error = bus_dmamap_create(sc->sc_dmat, MCLBYTES, 1, MCLBYTES,
    729   1.5   kanaoka 		    0, BUS_DMA_ALLOCNOW, &sc->rtk_ldata.rtk_rx_dmamap[i]);
    730   1.5   kanaoka 		if (error) {
    731   1.5   kanaoka 			aprint_error("%s: can't create DMA map for RX\n",
    732   1.5   kanaoka 			    sc->sc_dev.dv_xname);
    733   1.5   kanaoka 			goto fail_8;
    734   1.5   kanaoka 		}
    735   1.1  jonathan 	}
    736   1.1  jonathan 
    737   1.6   kanaoka 	/*
    738   1.6   kanaoka 	 * Record interface as attached. From here, we should not fail.
    739   1.6   kanaoka 	 */
    740   1.6   kanaoka 	sc->sc_flags |= RTK_ATTACHED;
    741   1.6   kanaoka 
    742   1.1  jonathan 	ifp = &sc->ethercom.ec_if;
    743   1.1  jonathan 	ifp->if_softc = sc;
    744   1.1  jonathan 	strcpy(ifp->if_xname, sc->sc_dev.dv_xname);
    745   1.1  jonathan 	ifp->if_mtu = ETHERMTU;
    746   1.1  jonathan 	ifp->if_flags = IFF_BROADCAST | IFF_SIMPLEX | IFF_MULTICAST;
    747   1.1  jonathan 	ifp->if_ioctl = re_ioctl;
    748  1.23     pavel 	sc->ethercom.ec_capabilities |= ETHERCAP_VLAN_MTU;
    749  1.23     pavel 
    750  1.23     pavel 	/*
    751  1.23     pavel 	 * This is a way to disable hw VLAN tagging by default
    752  1.23     pavel 	 * (RE_VLAN is undefined), as it is problematic. PR 32643
    753  1.23     pavel 	 */
    754  1.23     pavel 
    755  1.23     pavel #ifdef RE_VLAN
    756  1.23     pavel 	sc->ethercom.ec_capabilities |= ETHERCAP_VLAN_HWTAGGING;
    757  1.23     pavel #endif
    758   1.1  jonathan 	ifp->if_start = re_start;
    759   1.3   kanaoka 	ifp->if_stop = re_stop;
    760  1.19      yamt 
    761  1.19      yamt 	/*
    762  1.19      yamt 	 * IFCAP_CSUM_IPv4_Tx seems broken for small packets.
    763  1.19      yamt 	 */
    764  1.19      yamt 
    765   1.1  jonathan 	ifp->if_capabilities |=
    766  1.19      yamt 	    /* IFCAP_CSUM_IPv4_Tx | */ IFCAP_CSUM_IPv4_Rx |
    767  1.18      yamt 	    IFCAP_CSUM_TCPv4_Tx | IFCAP_CSUM_TCPv4_Rx |
    768  1.18      yamt 	    IFCAP_CSUM_UDPv4_Tx | IFCAP_CSUM_UDPv4_Rx |
    769  1.13      yamt 	    IFCAP_TSOv4;
    770   1.1  jonathan 	ifp->if_watchdog = re_watchdog;
    771   1.1  jonathan 	ifp->if_init = re_init;
    772   1.1  jonathan 	if (sc->rtk_type == RTK_8169)
    773   1.1  jonathan 		ifp->if_baudrate = 1000000000;
    774   1.1  jonathan 	else
    775   1.1  jonathan 		ifp->if_baudrate = 100000000;
    776   1.1  jonathan 	ifp->if_snd.ifq_maxlen = RTK_IFQ_MAXLEN;
    777   1.1  jonathan 	ifp->if_capenable = ifp->if_capabilities;
    778   1.1  jonathan 	IFQ_SET_READY(&ifp->if_snd);
    779   1.1  jonathan 
    780   1.1  jonathan 	callout_init(&sc->rtk_tick_ch);
    781   1.1  jonathan 
    782   1.1  jonathan 	/* Do MII setup */
    783   1.1  jonathan 	sc->mii.mii_ifp = ifp;
    784   1.1  jonathan 	sc->mii.mii_readreg = re_miibus_readreg;
    785   1.1  jonathan 	sc->mii.mii_writereg = re_miibus_writereg;
    786   1.1  jonathan 	sc->mii.mii_statchg = re_miibus_statchg;
    787   1.1  jonathan 	ifmedia_init(&sc->mii.mii_media, IFM_IMASK, re_ifmedia_upd,
    788   1.1  jonathan 	    re_ifmedia_sts);
    789   1.1  jonathan 	mii_attach(&sc->sc_dev, &sc->mii, 0xffffffff, MII_PHY_ANY,
    790   1.1  jonathan 	    MII_OFFSET_ANY, 0);
    791   1.4   kanaoka 	ifmedia_set(&sc->mii.mii_media, IFM_ETHER | IFM_AUTO);
    792   1.1  jonathan 
    793   1.1  jonathan 	/*
    794   1.1  jonathan 	 * Call MI attach routine.
    795   1.1  jonathan 	 */
    796   1.1  jonathan 	if_attach(ifp);
    797   1.1  jonathan 	ether_ifattach(ifp, eaddr);
    798   1.1  jonathan 
    799   1.1  jonathan 
    800   1.1  jonathan 	/*
    801   1.1  jonathan 	 * Make sure the interface is shutdown during reboot.
    802   1.1  jonathan 	 */
    803   1.1  jonathan 	sc->sc_sdhook = shutdownhook_establish(re_shutdown, sc);
    804   1.1  jonathan 	if (sc->sc_sdhook == NULL)
    805   1.4   kanaoka 		aprint_error("%s: WARNING: unable to establish shutdown hook\n",
    806   1.1  jonathan 		    sc->sc_dev.dv_xname);
    807   1.1  jonathan 	/*
    808   1.1  jonathan 	 * Add a suspend hook to make sure we come back up after a
    809   1.1  jonathan 	 * resume.
    810   1.1  jonathan 	 */
    811   1.1  jonathan 	sc->sc_powerhook = powerhook_establish(re_power, sc);
    812   1.1  jonathan 	if (sc->sc_powerhook == NULL)
    813   1.4   kanaoka 		aprint_error("%s: WARNING: unable to establish power hook\n",
    814   1.1  jonathan 		    sc->sc_dev.dv_xname);
    815   1.1  jonathan 
    816   1.1  jonathan 
    817   1.5   kanaoka 	return;
    818   1.5   kanaoka 
    819   1.5   kanaoka fail_8:
    820   1.5   kanaoka 	/* Destroy DMA maps for RX buffers. */
    821   1.5   kanaoka 	for (i = 0; i < RTK_RX_DESC_CNT; i++)
    822   1.5   kanaoka 		if (sc->rtk_ldata.rtk_rx_dmamap[i] != NULL)
    823   1.5   kanaoka 			bus_dmamap_destroy(sc->sc_dmat,
    824   1.5   kanaoka 			    sc->rtk_ldata.rtk_rx_dmamap[i]);
    825   1.5   kanaoka 
    826   1.5   kanaoka 	/* Free DMA'able memory for the RX ring. */
    827   1.5   kanaoka 	bus_dmamap_unload(sc->sc_dmat, sc->rtk_ldata.rtk_rx_list_map);
    828   1.5   kanaoka fail_7:
    829   1.5   kanaoka 	bus_dmamap_destroy(sc->sc_dmat, sc->rtk_ldata.rtk_rx_list_map);
    830   1.5   kanaoka fail_6:
    831   1.5   kanaoka 	bus_dmamem_unmap(sc->sc_dmat,
    832   1.5   kanaoka 	    (caddr_t)sc->rtk_ldata.rtk_rx_list, RTK_RX_LIST_SZ);
    833   1.5   kanaoka fail_5:
    834   1.5   kanaoka 	bus_dmamem_free(sc->sc_dmat,
    835   1.5   kanaoka 	    &sc->rtk_ldata.rtk_rx_listseg, sc->rtk_ldata.rtk_rx_listnseg);
    836   1.5   kanaoka 
    837   1.5   kanaoka fail_4:
    838   1.5   kanaoka 	/* Destroy DMA maps for TX buffers. */
    839  1.15      yamt 	for (i = 0; i < RTK_TX_QLEN; i++)
    840  1.15      yamt 		if (sc->rtk_ldata.rtk_txq[i].txq_dmamap != NULL)
    841   1.5   kanaoka 			bus_dmamap_destroy(sc->sc_dmat,
    842  1.15      yamt 			    sc->rtk_ldata.rtk_txq[i].txq_dmamap);
    843   1.5   kanaoka 
    844   1.5   kanaoka 	/* Free DMA'able memory for the TX ring. */
    845   1.5   kanaoka 	bus_dmamap_unload(sc->sc_dmat, sc->rtk_ldata.rtk_tx_list_map);
    846   1.5   kanaoka fail_3:
    847   1.5   kanaoka 	bus_dmamap_destroy(sc->sc_dmat, sc->rtk_ldata.rtk_tx_list_map);
    848   1.5   kanaoka fail_2:
    849   1.5   kanaoka 	bus_dmamem_unmap(sc->sc_dmat,
    850  1.15      yamt 	    (caddr_t)sc->rtk_ldata.rtk_tx_list, RTK_TX_LIST_SZ(sc));
    851   1.5   kanaoka fail_1:
    852   1.5   kanaoka 	bus_dmamem_free(sc->sc_dmat,
    853   1.5   kanaoka 	    &sc->rtk_ldata.rtk_tx_listseg, sc->rtk_ldata.rtk_tx_listnseg);
    854   1.5   kanaoka fail_0:
    855   1.1  jonathan 	return;
    856   1.1  jonathan }
    857   1.1  jonathan 
    858   1.1  jonathan 
    859   1.1  jonathan /*
    860   1.1  jonathan  * re_activate:
    861   1.1  jonathan  *     Handle device activation/deactivation requests.
    862   1.1  jonathan  */
    863   1.1  jonathan int
    864   1.1  jonathan re_activate(struct device *self, enum devact act)
    865   1.1  jonathan {
    866   1.1  jonathan 	struct rtk_softc *sc = (void *) self;
    867   1.1  jonathan 	int s, error = 0;
    868   1.1  jonathan 
    869   1.1  jonathan 	s = splnet();
    870   1.1  jonathan 	switch (act) {
    871   1.1  jonathan 	case DVACT_ACTIVATE:
    872   1.1  jonathan 		error = EOPNOTSUPP;
    873   1.1  jonathan 		break;
    874   1.1  jonathan 	case DVACT_DEACTIVATE:
    875   1.1  jonathan 		mii_activate(&sc->mii, act, MII_PHY_ANY, MII_OFFSET_ANY);
    876   1.1  jonathan 		if_deactivate(&sc->ethercom.ec_if);
    877   1.1  jonathan 		break;
    878   1.1  jonathan 	}
    879   1.1  jonathan 	splx(s);
    880   1.1  jonathan 
    881   1.4   kanaoka 	return error;
    882   1.1  jonathan }
    883   1.1  jonathan 
    884   1.1  jonathan /*
    885   1.1  jonathan  * re_detach:
    886   1.1  jonathan  *     Detach a rtk interface.
    887   1.1  jonathan  */
    888   1.1  jonathan int
    889   1.1  jonathan re_detach(struct rtk_softc *sc)
    890   1.1  jonathan {
    891   1.1  jonathan 	struct ifnet *ifp = &sc->ethercom.ec_if;
    892   1.5   kanaoka 	int i;
    893   1.1  jonathan 
    894   1.1  jonathan 	/*
    895   1.1  jonathan 	 * Succeed now if there isn't any work to do.
    896   1.1  jonathan 	 */
    897   1.1  jonathan 	if ((sc->sc_flags & RTK_ATTACHED) == 0)
    898   1.4   kanaoka 		return 0;
    899   1.1  jonathan 
    900   1.1  jonathan 	/* Unhook our tick handler. */
    901   1.1  jonathan 	callout_stop(&sc->rtk_tick_ch);
    902   1.1  jonathan 
    903   1.1  jonathan 	/* Detach all PHYs. */
    904   1.1  jonathan 	mii_detach(&sc->mii, MII_PHY_ANY, MII_OFFSET_ANY);
    905   1.1  jonathan 
    906   1.1  jonathan 	/* Delete all remaining media. */
    907   1.1  jonathan 	ifmedia_delete_instance(&sc->mii.mii_media, IFM_INST_ANY);
    908   1.1  jonathan 
    909   1.1  jonathan 	ether_ifdetach(ifp);
    910   1.1  jonathan 	if_detach(ifp);
    911   1.1  jonathan 
    912   1.1  jonathan 	/* XXX undo re_allocmem() */
    913   1.1  jonathan 
    914   1.5   kanaoka 	/* Destroy DMA maps for RX buffers. */
    915   1.5   kanaoka 	for (i = 0; i < RTK_RX_DESC_CNT; i++)
    916   1.5   kanaoka 		if (sc->rtk_ldata.rtk_rx_dmamap[i] != NULL)
    917   1.5   kanaoka 			bus_dmamap_destroy(sc->sc_dmat,
    918   1.5   kanaoka 			    sc->rtk_ldata.rtk_rx_dmamap[i]);
    919   1.5   kanaoka 
    920   1.5   kanaoka 	/* Free DMA'able memory for the RX ring. */
    921   1.5   kanaoka 	bus_dmamap_unload(sc->sc_dmat, sc->rtk_ldata.rtk_rx_list_map);
    922   1.5   kanaoka 	bus_dmamap_destroy(sc->sc_dmat, sc->rtk_ldata.rtk_rx_list_map);
    923   1.5   kanaoka 	bus_dmamem_unmap(sc->sc_dmat,
    924   1.5   kanaoka 	    (caddr_t)sc->rtk_ldata.rtk_rx_list, RTK_RX_LIST_SZ);
    925   1.5   kanaoka 	bus_dmamem_free(sc->sc_dmat,
    926   1.5   kanaoka 	    &sc->rtk_ldata.rtk_rx_listseg, sc->rtk_ldata.rtk_rx_listnseg);
    927   1.5   kanaoka 
    928   1.5   kanaoka 	/* Destroy DMA maps for TX buffers. */
    929  1.15      yamt 	for (i = 0; i < RTK_TX_QLEN; i++)
    930  1.15      yamt 		if (sc->rtk_ldata.rtk_txq[i].txq_dmamap != NULL)
    931   1.5   kanaoka 			bus_dmamap_destroy(sc->sc_dmat,
    932  1.15      yamt 			    sc->rtk_ldata.rtk_txq[i].txq_dmamap);
    933   1.5   kanaoka 
    934   1.5   kanaoka 	/* Free DMA'able memory for the TX ring. */
    935   1.5   kanaoka 	bus_dmamap_unload(sc->sc_dmat, sc->rtk_ldata.rtk_tx_list_map);
    936   1.5   kanaoka 	bus_dmamap_destroy(sc->sc_dmat, sc->rtk_ldata.rtk_tx_list_map);
    937   1.5   kanaoka 	bus_dmamem_unmap(sc->sc_dmat,
    938  1.15      yamt 	    (caddr_t)sc->rtk_ldata.rtk_tx_list, RTK_TX_LIST_SZ(sc));
    939   1.5   kanaoka 	bus_dmamem_free(sc->sc_dmat,
    940   1.5   kanaoka 	    &sc->rtk_ldata.rtk_tx_listseg, sc->rtk_ldata.rtk_tx_listnseg);
    941   1.5   kanaoka 
    942  1.12     perry 
    943   1.1  jonathan 	shutdownhook_disestablish(sc->sc_sdhook);
    944   1.1  jonathan 	powerhook_disestablish(sc->sc_powerhook);
    945   1.1  jonathan 
    946   1.4   kanaoka 	return 0;
    947   1.1  jonathan }
    948   1.1  jonathan 
    949   1.1  jonathan /*
    950   1.1  jonathan  * re_enable:
    951   1.1  jonathan  *     Enable the RTL81X9 chip.
    952   1.1  jonathan  */
    953  1.12     perry static int
    954   1.1  jonathan re_enable(struct rtk_softc *sc)
    955   1.1  jonathan {
    956   1.1  jonathan 	if (RTK_IS_ENABLED(sc) == 0 && sc->sc_enable != NULL) {
    957   1.1  jonathan 		if ((*sc->sc_enable)(sc) != 0) {
    958   1.4   kanaoka 			aprint_error("%s: device enable failed\n",
    959   1.1  jonathan 			    sc->sc_dev.dv_xname);
    960   1.4   kanaoka 			return EIO;
    961   1.1  jonathan 		}
    962   1.1  jonathan 		sc->sc_flags |= RTK_ENABLED;
    963   1.1  jonathan 	}
    964   1.4   kanaoka 	return 0;
    965   1.1  jonathan }
    966   1.1  jonathan 
    967   1.1  jonathan /*
    968   1.1  jonathan  * re_disable:
    969   1.1  jonathan  *     Disable the RTL81X9 chip.
    970   1.1  jonathan  */
    971  1.12     perry static void
    972   1.1  jonathan re_disable(struct rtk_softc *sc)
    973   1.1  jonathan {
    974   1.1  jonathan 
    975   1.1  jonathan 	if (RTK_IS_ENABLED(sc) && sc->sc_disable != NULL) {
    976   1.1  jonathan 		(*sc->sc_disable)(sc);
    977   1.1  jonathan 		sc->sc_flags &= ~RTK_ENABLED;
    978   1.1  jonathan 	}
    979   1.1  jonathan }
    980   1.1  jonathan 
    981   1.1  jonathan /*
    982   1.1  jonathan  * re_power:
    983   1.1  jonathan  *     Power management (suspend/resume) hook.
    984   1.1  jonathan  */
    985  1.12     perry void
    986   1.1  jonathan re_power(int why, void *arg)
    987   1.1  jonathan {
    988   1.1  jonathan 	struct rtk_softc *sc = (void *) arg;
    989   1.1  jonathan 	struct ifnet *ifp = &sc->ethercom.ec_if;
    990   1.1  jonathan 	int s;
    991   1.1  jonathan 
    992   1.1  jonathan 	s = splnet();
    993   1.1  jonathan 	switch (why) {
    994   1.1  jonathan 	case PWR_SUSPEND:
    995   1.1  jonathan 	case PWR_STANDBY:
    996   1.3   kanaoka 		re_stop(ifp, 0);
    997   1.1  jonathan 		if (sc->sc_power != NULL)
    998   1.1  jonathan 			(*sc->sc_power)(sc, why);
    999   1.1  jonathan 		break;
   1000   1.1  jonathan 	case PWR_RESUME:
   1001   1.1  jonathan 		if (ifp->if_flags & IFF_UP) {
   1002   1.1  jonathan 			if (sc->sc_power != NULL)
   1003   1.1  jonathan 				(*sc->sc_power)(sc, why);
   1004   1.1  jonathan 			re_init(ifp);
   1005   1.1  jonathan 		}
   1006   1.1  jonathan 		break;
   1007   1.1  jonathan 	case PWR_SOFTSUSPEND:
   1008   1.1  jonathan 	case PWR_SOFTSTANDBY:
   1009   1.1  jonathan 	case PWR_SOFTRESUME:
   1010   1.1  jonathan 		break;
   1011   1.1  jonathan 	}
   1012   1.1  jonathan 	splx(s);
   1013   1.1  jonathan }
   1014   1.1  jonathan 
   1015   1.1  jonathan 
   1016   1.1  jonathan static int
   1017   1.1  jonathan re_newbuf(struct rtk_softc *sc, int idx, struct mbuf *m)
   1018   1.1  jonathan {
   1019   1.1  jonathan 	struct mbuf		*n = NULL;
   1020   1.1  jonathan 	bus_dmamap_t		map;
   1021   1.1  jonathan 	struct rtk_desc		*d;
   1022   1.1  jonathan 	u_int32_t		cmdstat;
   1023   1.1  jonathan 	int			error;
   1024   1.1  jonathan 
   1025   1.1  jonathan 	if (m == NULL) {
   1026   1.1  jonathan 		MGETHDR(n, M_DONTWAIT, MT_DATA);
   1027   1.1  jonathan 		if (n == NULL)
   1028   1.4   kanaoka 			return ENOBUFS;
   1029   1.1  jonathan 		m = n;
   1030   1.1  jonathan 
   1031   1.1  jonathan 		MCLGET(m, M_DONTWAIT);
   1032   1.4   kanaoka 		if (!(m->m_flags & M_EXT)) {
   1033   1.1  jonathan 			m_freem(m);
   1034   1.4   kanaoka 			return ENOBUFS;
   1035   1.1  jonathan 		}
   1036   1.1  jonathan 	} else
   1037   1.1  jonathan 		m->m_data = m->m_ext.ext_buf;
   1038   1.1  jonathan 
   1039   1.1  jonathan 	/*
   1040   1.1  jonathan 	 * Initialize mbuf length fields and fixup
   1041   1.1  jonathan 	 * alignment so that the frame payload is
   1042   1.1  jonathan 	 * longword aligned.
   1043   1.1  jonathan 	 */
   1044   1.1  jonathan 	m->m_len = m->m_pkthdr.len = MCLBYTES;
   1045   1.1  jonathan 	m_adj(m, RTK_ETHER_ALIGN);
   1046   1.1  jonathan 
   1047   1.1  jonathan 	map = sc->rtk_ldata.rtk_rx_dmamap[idx];
   1048  1.21      yamt 	error = bus_dmamap_load_mbuf(sc->sc_dmat, map, m,
   1049  1.21      yamt 	    BUS_DMA_READ|BUS_DMA_NOWAIT);
   1050   1.1  jonathan 
   1051   1.1  jonathan 	if (error)
   1052   1.1  jonathan 		goto out;
   1053   1.1  jonathan 
   1054   1.1  jonathan 	d = &sc->rtk_ldata.rtk_rx_list[idx];
   1055   1.1  jonathan 	if (le32toh(d->rtk_cmdstat) & RTK_RDESC_STAT_OWN)
   1056   1.1  jonathan 		goto out;
   1057   1.1  jonathan 
   1058   1.1  jonathan 	cmdstat = map->dm_segs[0].ds_len;
   1059   1.1  jonathan 	d->rtk_bufaddr_lo = htole32(RTK_ADDR_LO(map->dm_segs[0].ds_addr));
   1060   1.1  jonathan 	d->rtk_bufaddr_hi = htole32(RTK_ADDR_HI(map->dm_segs[0].ds_addr));
   1061   1.1  jonathan 	if (idx == (RTK_RX_DESC_CNT - 1))
   1062  1.15      yamt 		cmdstat |= RTK_RDESC_CMD_EOR;
   1063   1.1  jonathan 	d->rtk_cmdstat = htole32(cmdstat);
   1064   1.1  jonathan 
   1065   1.4   kanaoka 	sc->rtk_ldata.rtk_rx_list[idx].rtk_cmdstat |=
   1066   1.4   kanaoka 	    htole32(RTK_RDESC_CMD_OWN);
   1067   1.1  jonathan 	sc->rtk_ldata.rtk_rx_mbuf[idx] = m;
   1068   1.1  jonathan 
   1069   1.4   kanaoka 	bus_dmamap_sync(sc->sc_dmat, sc->rtk_ldata.rtk_rx_dmamap[idx], 0,
   1070   1.4   kanaoka 	    sc->rtk_ldata.rtk_rx_dmamap[idx]->dm_mapsize,
   1071   1.1  jonathan 	    BUS_DMASYNC_PREREAD);
   1072   1.1  jonathan 
   1073   1.1  jonathan 	return 0;
   1074   1.1  jonathan out:
   1075   1.1  jonathan 	if (n != NULL)
   1076   1.1  jonathan 		m_freem(n);
   1077   1.1  jonathan 	return ENOMEM;
   1078   1.1  jonathan }
   1079   1.1  jonathan 
   1080   1.1  jonathan static int
   1081   1.1  jonathan re_tx_list_init(struct rtk_softc *sc)
   1082   1.1  jonathan {
   1083  1.15      yamt 	int i;
   1084  1.15      yamt 
   1085  1.15      yamt 	memset(sc->rtk_ldata.rtk_tx_list, 0, RTK_TX_LIST_SZ(sc));
   1086  1.15      yamt 	for (i = 0; i < RTK_TX_QLEN; i++) {
   1087  1.15      yamt 		sc->rtk_ldata.rtk_txq[i].txq_mbuf = NULL;
   1088  1.15      yamt 	}
   1089   1.1  jonathan 
   1090   1.1  jonathan 	bus_dmamap_sync(sc->sc_dmat,
   1091   1.1  jonathan 	    sc->rtk_ldata.rtk_tx_list_map, 0,
   1092   1.1  jonathan 	    sc->rtk_ldata.rtk_tx_list_map->dm_mapsize, BUS_DMASYNC_PREWRITE);
   1093  1.15      yamt 	sc->rtk_ldata.rtk_txq_prodidx = 0;
   1094  1.15      yamt 	sc->rtk_ldata.rtk_txq_considx = 0;
   1095  1.15      yamt 	sc->rtk_ldata.rtk_tx_free = RTK_TX_DESC_CNT(sc);
   1096  1.15      yamt 	sc->rtk_ldata.rtk_tx_nextfree = 0;
   1097   1.1  jonathan 
   1098   1.4   kanaoka 	return 0;
   1099   1.1  jonathan }
   1100   1.1  jonathan 
   1101   1.1  jonathan static int
   1102   1.1  jonathan re_rx_list_init(struct rtk_softc *sc)
   1103   1.1  jonathan {
   1104   1.1  jonathan 	int			i;
   1105   1.1  jonathan 
   1106   1.1  jonathan 	memset((char *)sc->rtk_ldata.rtk_rx_list, 0, RTK_RX_LIST_SZ);
   1107   1.1  jonathan 	memset((char *)&sc->rtk_ldata.rtk_rx_mbuf, 0,
   1108   1.1  jonathan 	    (RTK_RX_DESC_CNT * sizeof(struct mbuf *)));
   1109   1.1  jonathan 
   1110   1.1  jonathan 	for (i = 0; i < RTK_RX_DESC_CNT; i++) {
   1111   1.1  jonathan 		if (re_newbuf(sc, i, NULL) == ENOBUFS)
   1112   1.4   kanaoka 			return ENOBUFS;
   1113   1.1  jonathan 	}
   1114   1.1  jonathan 
   1115   1.1  jonathan 	/* Flush the RX descriptors */
   1116   1.1  jonathan 
   1117   1.1  jonathan 	bus_dmamap_sync(sc->sc_dmat,
   1118   1.1  jonathan 	    sc->rtk_ldata.rtk_rx_list_map,
   1119   1.1  jonathan 	    0, sc->rtk_ldata.rtk_rx_list_map->dm_mapsize,
   1120   1.4   kanaoka 	    BUS_DMASYNC_PREWRITE | BUS_DMASYNC_PREREAD);
   1121   1.1  jonathan 
   1122   1.1  jonathan 	sc->rtk_ldata.rtk_rx_prodidx = 0;
   1123   1.1  jonathan 	sc->rtk_head = sc->rtk_tail = NULL;
   1124   1.1  jonathan 
   1125   1.4   kanaoka 	return 0;
   1126   1.1  jonathan }
   1127   1.1  jonathan 
   1128   1.1  jonathan /*
   1129   1.1  jonathan  * RX handler for C+ and 8169. For the gigE chips, we support
   1130   1.1  jonathan  * the reception of jumbo frames that have been fragmented
   1131   1.1  jonathan  * across multiple 2K mbuf cluster buffers.
   1132   1.1  jonathan  */
   1133   1.1  jonathan static void
   1134   1.1  jonathan re_rxeof(struct rtk_softc *sc)
   1135   1.1  jonathan {
   1136   1.1  jonathan 	struct mbuf		*m;
   1137   1.1  jonathan 	struct ifnet		*ifp;
   1138   1.1  jonathan 	int			i, total_len;
   1139   1.1  jonathan 	struct rtk_desc		*cur_rx;
   1140   1.1  jonathan 	u_int32_t		rxstat, rxvlan;
   1141   1.1  jonathan 
   1142   1.1  jonathan 	ifp = &sc->ethercom.ec_if;
   1143   1.1  jonathan 	i = sc->rtk_ldata.rtk_rx_prodidx;
   1144   1.1  jonathan 
   1145   1.1  jonathan 	/* Invalidate the descriptor memory */
   1146   1.1  jonathan 
   1147   1.1  jonathan 	bus_dmamap_sync(sc->sc_dmat,
   1148   1.1  jonathan 	    sc->rtk_ldata.rtk_rx_list_map,
   1149   1.1  jonathan 	    0, sc->rtk_ldata.rtk_rx_list_map->dm_mapsize,
   1150   1.1  jonathan 	    BUS_DMASYNC_POSTREAD);
   1151   1.1  jonathan 
   1152   1.1  jonathan 	while (!RTK_OWN(&sc->rtk_ldata.rtk_rx_list[i])) {
   1153   1.1  jonathan 
   1154   1.1  jonathan 		cur_rx = &sc->rtk_ldata.rtk_rx_list[i];
   1155   1.1  jonathan 		m = sc->rtk_ldata.rtk_rx_mbuf[i];
   1156   1.1  jonathan 		total_len = RTK_RXBYTES(cur_rx);
   1157   1.1  jonathan 		rxstat = le32toh(cur_rx->rtk_cmdstat);
   1158   1.1  jonathan 		rxvlan = le32toh(cur_rx->rtk_vlanctl);
   1159   1.1  jonathan 
   1160   1.1  jonathan 		/* Invalidate the RX mbuf and unload its map */
   1161   1.1  jonathan 
   1162   1.1  jonathan 		bus_dmamap_sync(sc->sc_dmat,
   1163   1.1  jonathan 		    sc->rtk_ldata.rtk_rx_dmamap[i],
   1164   1.1  jonathan 		    0, sc->rtk_ldata.rtk_rx_dmamap[i]->dm_mapsize,
   1165  1.20    briggs 		    BUS_DMASYNC_POSTREAD);
   1166   1.1  jonathan 		bus_dmamap_unload(sc->sc_dmat,
   1167   1.1  jonathan 		    sc->rtk_ldata.rtk_rx_dmamap[i]);
   1168   1.1  jonathan 
   1169   1.1  jonathan 		if (!(rxstat & RTK_RDESC_STAT_EOF)) {
   1170   1.1  jonathan 			m->m_len = MCLBYTES - RTK_ETHER_ALIGN;
   1171   1.1  jonathan 			if (sc->rtk_head == NULL)
   1172   1.1  jonathan 				sc->rtk_head = sc->rtk_tail = m;
   1173   1.1  jonathan 			else {
   1174   1.1  jonathan 				m->m_flags &= ~M_PKTHDR;
   1175   1.1  jonathan 				sc->rtk_tail->m_next = m;
   1176   1.1  jonathan 				sc->rtk_tail = m;
   1177   1.1  jonathan 			}
   1178   1.1  jonathan 			re_newbuf(sc, i, NULL);
   1179  1.15      yamt 			RTK_RX_DESC_INC(sc, i);
   1180   1.1  jonathan 			continue;
   1181   1.1  jonathan 		}
   1182   1.1  jonathan 
   1183   1.1  jonathan 		/*
   1184   1.1  jonathan 		 * NOTE: for the 8139C+, the frame length field
   1185   1.1  jonathan 		 * is always 12 bits in size, but for the gigE chips,
   1186   1.1  jonathan 		 * it is 13 bits (since the max RX frame length is 16K).
   1187   1.1  jonathan 		 * Unfortunately, all 32 bits in the status word
   1188   1.1  jonathan 		 * were already used, so to make room for the extra
   1189   1.1  jonathan 		 * length bit, RealTek took out the 'frame alignment
   1190   1.1  jonathan 		 * error' bit and shifted the other status bits
   1191   1.1  jonathan 		 * over one slot. The OWN, EOR, FS and LS bits are
   1192   1.1  jonathan 		 * still in the same places. We have already extracted
   1193   1.1  jonathan 		 * the frame length and checked the OWN bit, so rather
   1194   1.1  jonathan 		 * than using an alternate bit mapping, we shift the
   1195   1.1  jonathan 		 * status bits one space to the right so we can evaluate
   1196   1.1  jonathan 		 * them using the 8169 status as though it was in the
   1197   1.1  jonathan 		 * same format as that of the 8139C+.
   1198   1.1  jonathan 		 */
   1199   1.1  jonathan 		if (sc->rtk_type == RTK_8169)
   1200   1.1  jonathan 			rxstat >>= 1;
   1201   1.1  jonathan 
   1202   1.1  jonathan 		if (rxstat & RTK_RDESC_STAT_RXERRSUM) {
   1203   1.1  jonathan 			ifp->if_ierrors++;
   1204   1.1  jonathan 			/*
   1205   1.1  jonathan 			 * If this is part of a multi-fragment packet,
   1206   1.1  jonathan 			 * discard all the pieces.
   1207   1.1  jonathan 			 */
   1208   1.1  jonathan 			if (sc->rtk_head != NULL) {
   1209   1.1  jonathan 				m_freem(sc->rtk_head);
   1210   1.1  jonathan 				sc->rtk_head = sc->rtk_tail = NULL;
   1211   1.1  jonathan 			}
   1212   1.1  jonathan 			re_newbuf(sc, i, m);
   1213  1.15      yamt 			RTK_RX_DESC_INC(sc, i);
   1214   1.1  jonathan 			continue;
   1215   1.1  jonathan 		}
   1216   1.1  jonathan 
   1217   1.1  jonathan 		/*
   1218   1.1  jonathan 		 * If allocating a replacement mbuf fails,
   1219   1.1  jonathan 		 * reload the current one.
   1220   1.1  jonathan 		 */
   1221   1.1  jonathan 
   1222   1.1  jonathan 		if (re_newbuf(sc, i, NULL)) {
   1223   1.1  jonathan 			ifp->if_ierrors++;
   1224   1.1  jonathan 			if (sc->rtk_head != NULL) {
   1225   1.1  jonathan 				m_freem(sc->rtk_head);
   1226   1.1  jonathan 				sc->rtk_head = sc->rtk_tail = NULL;
   1227   1.1  jonathan 			}
   1228   1.1  jonathan 			re_newbuf(sc, i, m);
   1229  1.15      yamt 			RTK_RX_DESC_INC(sc, i);
   1230   1.1  jonathan 			continue;
   1231   1.1  jonathan 		}
   1232   1.1  jonathan 
   1233  1.15      yamt 		RTK_RX_DESC_INC(sc, i);
   1234   1.1  jonathan 
   1235   1.1  jonathan 		if (sc->rtk_head != NULL) {
   1236   1.1  jonathan 			m->m_len = total_len % (MCLBYTES - RTK_ETHER_ALIGN);
   1237  1.12     perry 			/*
   1238   1.1  jonathan 			 * Special case: if there's 4 bytes or less
   1239   1.1  jonathan 			 * in this buffer, the mbuf can be discarded:
   1240   1.1  jonathan 			 * the last 4 bytes is the CRC, which we don't
   1241   1.1  jonathan 			 * care about anyway.
   1242   1.1  jonathan 			 */
   1243   1.1  jonathan 			if (m->m_len <= ETHER_CRC_LEN) {
   1244   1.1  jonathan 				sc->rtk_tail->m_len -=
   1245   1.1  jonathan 				    (ETHER_CRC_LEN - m->m_len);
   1246   1.1  jonathan 				m_freem(m);
   1247   1.1  jonathan 			} else {
   1248   1.1  jonathan 				m->m_len -= ETHER_CRC_LEN;
   1249   1.1  jonathan 				m->m_flags &= ~M_PKTHDR;
   1250   1.1  jonathan 				sc->rtk_tail->m_next = m;
   1251   1.1  jonathan 			}
   1252   1.1  jonathan 			m = sc->rtk_head;
   1253   1.1  jonathan 			sc->rtk_head = sc->rtk_tail = NULL;
   1254   1.1  jonathan 			m->m_pkthdr.len = total_len - ETHER_CRC_LEN;
   1255   1.1  jonathan 		} else
   1256   1.1  jonathan 			m->m_pkthdr.len = m->m_len =
   1257   1.1  jonathan 			    (total_len - ETHER_CRC_LEN);
   1258   1.1  jonathan 
   1259   1.1  jonathan 		ifp->if_ipackets++;
   1260   1.1  jonathan 		m->m_pkthdr.rcvif = ifp;
   1261   1.1  jonathan 
   1262   1.1  jonathan 		/* Do RX checksumming if enabled */
   1263   1.1  jonathan 
   1264  1.18      yamt 		if (ifp->if_capenable & IFCAP_CSUM_IPv4_Rx) {
   1265   1.1  jonathan 
   1266   1.1  jonathan 			/* Check IP header checksum */
   1267   1.1  jonathan 			if (rxstat & RTK_RDESC_STAT_PROTOID)
   1268   1.1  jonathan 				m->m_pkthdr.csum_flags |= M_CSUM_IPv4;;
   1269   1.1  jonathan 			if (rxstat & RTK_RDESC_STAT_IPSUMBAD)
   1270   1.4   kanaoka 				m->m_pkthdr.csum_flags |= M_CSUM_IPv4_BAD;
   1271   1.1  jonathan 		}
   1272   1.1  jonathan 
   1273   1.1  jonathan 		/* Check TCP/UDP checksum */
   1274   1.1  jonathan 		if (RTK_TCPPKT(rxstat) &&
   1275  1.18      yamt 		    (ifp->if_capenable & IFCAP_CSUM_TCPv4_Rx)) {
   1276   1.1  jonathan 			m->m_pkthdr.csum_flags |= M_CSUM_TCPv4;
   1277   1.1  jonathan 			if (rxstat & RTK_RDESC_STAT_TCPSUMBAD)
   1278   1.1  jonathan 				m->m_pkthdr.csum_flags |= M_CSUM_TCP_UDP_BAD;
   1279   1.1  jonathan 		}
   1280   1.1  jonathan 		if (RTK_UDPPKT(rxstat) &&
   1281  1.18      yamt 		    (ifp->if_capenable & IFCAP_CSUM_UDPv4_Rx)) {
   1282   1.1  jonathan 			m->m_pkthdr.csum_flags |= M_CSUM_UDPv4;
   1283   1.1  jonathan 			if (rxstat & RTK_RDESC_STAT_UDPSUMBAD)
   1284   1.1  jonathan 				m->m_pkthdr.csum_flags |= M_CSUM_TCP_UDP_BAD;
   1285   1.1  jonathan 		}
   1286   1.1  jonathan 
   1287  1.23     pavel #ifdef RE_VLAN
   1288   1.1  jonathan 		if (rxvlan & RTK_RDESC_VLANCTL_TAG) {
   1289   1.9  jdolecek 			VLAN_INPUT_TAG(ifp, m,
   1290   1.9  jdolecek 			     be16toh(rxvlan & RTK_RDESC_VLANCTL_DATA),
   1291   1.9  jdolecek 			     continue);
   1292   1.1  jonathan 		}
   1293  1.23     pavel #endif
   1294   1.1  jonathan #if NBPFILTER > 0
   1295   1.1  jonathan 		if (ifp->if_bpf)
   1296   1.1  jonathan 			bpf_mtap(ifp->if_bpf, m);
   1297   1.1  jonathan #endif
   1298   1.1  jonathan 		(*ifp->if_input)(ifp, m);
   1299   1.1  jonathan 	}
   1300   1.1  jonathan 
   1301   1.1  jonathan 	/* Flush the RX DMA ring */
   1302   1.1  jonathan 
   1303   1.1  jonathan 	bus_dmamap_sync(sc->sc_dmat,
   1304   1.1  jonathan 	    sc->rtk_ldata.rtk_rx_list_map,
   1305   1.1  jonathan 	    0, sc->rtk_ldata.rtk_rx_list_map->dm_mapsize,
   1306   1.4   kanaoka 	    BUS_DMASYNC_PREWRITE | BUS_DMASYNC_PREREAD);
   1307   1.1  jonathan 
   1308   1.1  jonathan 	sc->rtk_ldata.rtk_rx_prodidx = i;
   1309   1.1  jonathan 
   1310   1.1  jonathan 	return;
   1311   1.1  jonathan }
   1312   1.1  jonathan 
   1313   1.1  jonathan static void
   1314   1.1  jonathan re_txeof(struct rtk_softc *sc)
   1315   1.1  jonathan {
   1316   1.1  jonathan 	struct ifnet		*ifp;
   1317   1.1  jonathan 	int			idx;
   1318   1.1  jonathan 
   1319   1.1  jonathan 	ifp = &sc->ethercom.ec_if;
   1320  1.15      yamt 	idx = sc->rtk_ldata.rtk_txq_considx;
   1321   1.1  jonathan 
   1322   1.1  jonathan 	/* Invalidate the TX descriptor list */
   1323   1.1  jonathan 
   1324   1.1  jonathan 	bus_dmamap_sync(sc->sc_dmat,
   1325   1.1  jonathan 	    sc->rtk_ldata.rtk_tx_list_map,
   1326   1.1  jonathan 	    0, sc->rtk_ldata.rtk_tx_list_map->dm_mapsize,
   1327   1.1  jonathan 	    BUS_DMASYNC_POSTREAD);
   1328   1.1  jonathan 
   1329  1.17      yamt 	while (/* CONSTCOND */ 1) {
   1330  1.15      yamt 		struct rtk_txq *txq = &sc->rtk_ldata.rtk_txq[idx];
   1331  1.17      yamt 		int descidx;
   1332  1.15      yamt 		u_int32_t txstat;
   1333  1.15      yamt 
   1334  1.17      yamt 		if (txq->txq_mbuf == NULL) {
   1335  1.17      yamt 			KASSERT(idx == sc->rtk_ldata.rtk_txq_prodidx);
   1336  1.17      yamt 			break;
   1337  1.17      yamt 		}
   1338  1.15      yamt 
   1339  1.17      yamt 		descidx = txq->txq_descidx;
   1340  1.15      yamt 		txstat =
   1341  1.15      yamt 		    le32toh(sc->rtk_ldata.rtk_tx_list[descidx].rtk_cmdstat);
   1342  1.15      yamt 		KASSERT((txstat & RTK_TDESC_CMD_EOF) != 0);
   1343   1.1  jonathan 		if (txstat & RTK_TDESC_CMD_OWN)
   1344   1.1  jonathan 			break;
   1345   1.1  jonathan 
   1346  1.15      yamt 		sc->rtk_ldata.rtk_tx_free += txq->txq_dmamap->dm_nsegs;
   1347  1.15      yamt 		KASSERT(sc->rtk_ldata.rtk_tx_free <= RTK_TX_DESC_CNT(sc));
   1348  1.15      yamt 		bus_dmamap_unload(sc->sc_dmat, txq->txq_dmamap);
   1349  1.15      yamt 		m_freem(txq->txq_mbuf);
   1350  1.15      yamt 		txq->txq_mbuf = NULL;
   1351  1.15      yamt 
   1352  1.15      yamt 		if (txstat & (RTK_TDESC_STAT_EXCESSCOL | RTK_TDESC_STAT_COLCNT))
   1353  1.15      yamt 			ifp->if_collisions++;
   1354  1.15      yamt 		if (txstat & RTK_TDESC_STAT_TXERRSUM)
   1355  1.15      yamt 			ifp->if_oerrors++;
   1356  1.15      yamt 		else
   1357  1.15      yamt 			ifp->if_opackets++;
   1358   1.1  jonathan 
   1359  1.15      yamt 		idx = (idx + 1) % RTK_TX_QLEN;
   1360   1.1  jonathan 	}
   1361   1.1  jonathan 
   1362   1.1  jonathan 	/* No changes made to the TX ring, so no flush needed */
   1363   1.1  jonathan 
   1364  1.15      yamt 	if (idx != sc->rtk_ldata.rtk_txq_considx) {
   1365  1.15      yamt 		sc->rtk_ldata.rtk_txq_considx = idx;
   1366   1.1  jonathan 		ifp->if_flags &= ~IFF_OACTIVE;
   1367   1.1  jonathan 		ifp->if_timer = 0;
   1368   1.1  jonathan 	}
   1369   1.1  jonathan 
   1370   1.1  jonathan 	/*
   1371   1.1  jonathan 	 * If not all descriptors have been released reaped yet,
   1372   1.1  jonathan 	 * reload the timer so that we will eventually get another
   1373   1.1  jonathan 	 * interrupt that will cause us to re-enter this routine.
   1374   1.1  jonathan 	 * This is done in case the transmitter has gone idle.
   1375   1.1  jonathan 	 */
   1376  1.15      yamt 	if (sc->rtk_ldata.rtk_tx_free != RTK_TX_DESC_CNT(sc))
   1377   1.4   kanaoka 		CSR_WRITE_4(sc, RTK_TIMERCNT, 1);
   1378   1.1  jonathan 
   1379   1.1  jonathan 	return;
   1380   1.1  jonathan }
   1381   1.1  jonathan 
   1382   1.1  jonathan /*
   1383   1.1  jonathan  * Stop all chip I/O so that the kernel's probe routines don't
   1384   1.1  jonathan  * get confused by errant DMAs when rebooting.
   1385   1.1  jonathan  */
   1386   1.1  jonathan static void
   1387   1.1  jonathan re_shutdown(void *vsc)
   1388   1.1  jonathan 
   1389   1.1  jonathan {
   1390   1.1  jonathan 	struct rtk_softc	*sc = (struct rtk_softc *)vsc;
   1391   1.1  jonathan 
   1392   1.3   kanaoka 	re_stop(&sc->ethercom.ec_if, 0);
   1393   1.1  jonathan }
   1394   1.1  jonathan 
   1395   1.1  jonathan 
   1396   1.1  jonathan static void
   1397   1.1  jonathan re_tick(void *xsc)
   1398   1.1  jonathan {
   1399   1.1  jonathan 	struct rtk_softc	*sc = xsc;
   1400   1.1  jonathan 	int s;
   1401   1.1  jonathan 
   1402   1.1  jonathan 	/*XXX: just return for 8169S/8110S with rev 2 or newer phy */
   1403   1.1  jonathan 	s = splnet();
   1404   1.1  jonathan 
   1405   1.1  jonathan 	mii_tick(&sc->mii);
   1406   1.1  jonathan 	splx(s);
   1407   1.1  jonathan 
   1408   1.1  jonathan 	callout_reset(&sc->rtk_tick_ch, hz, re_tick, sc);
   1409   1.1  jonathan }
   1410   1.1  jonathan 
   1411   1.1  jonathan #ifdef DEVICE_POLLING
   1412   1.1  jonathan static void
   1413   1.1  jonathan re_poll(struct ifnet *ifp, enum poll_cmd cmd, int count)
   1414   1.1  jonathan {
   1415   1.1  jonathan 	struct rtk_softc *sc = ifp->if_softc;
   1416   1.1  jonathan 
   1417   1.1  jonathan 	RTK_LOCK(sc);
   1418   1.1  jonathan 	if (!(ifp->if_capenable & IFCAP_POLLING)) {
   1419   1.1  jonathan 		ether_poll_deregister(ifp);
   1420   1.1  jonathan 		cmd = POLL_DEREGISTER;
   1421   1.1  jonathan 	}
   1422   1.1  jonathan 	if (cmd == POLL_DEREGISTER) { /* final call, enable interrupts */
   1423   1.1  jonathan 		CSR_WRITE_2(sc, RTK_IMR, RTK_INTRS_CPLUS);
   1424   1.1  jonathan 		goto done;
   1425   1.1  jonathan 	}
   1426   1.1  jonathan 
   1427   1.1  jonathan 	sc->rxcycles = count;
   1428   1.1  jonathan 	re_rxeof(sc);
   1429   1.1  jonathan 	re_txeof(sc);
   1430   1.1  jonathan 
   1431   1.1  jonathan 	if (ifp->if_snd.ifq_head != NULL)
   1432   1.1  jonathan 		(*ifp->if_start)(ifp);
   1433   1.1  jonathan 
   1434   1.1  jonathan 	if (cmd == POLL_AND_CHECK_STATUS) { /* also check status register */
   1435   1.1  jonathan 		u_int16_t       status;
   1436   1.1  jonathan 
   1437   1.1  jonathan 		status = CSR_READ_2(sc, RTK_ISR);
   1438   1.1  jonathan 		if (status == 0xffff)
   1439   1.1  jonathan 			goto done;
   1440   1.1  jonathan 		if (status)
   1441   1.1  jonathan 			CSR_WRITE_2(sc, RTK_ISR, status);
   1442   1.1  jonathan 
   1443   1.1  jonathan 		/*
   1444   1.1  jonathan 		 * XXX check behaviour on receiver stalls.
   1445   1.1  jonathan 		 */
   1446   1.1  jonathan 
   1447   1.1  jonathan 		if (status & RTK_ISR_SYSTEM_ERR) {
   1448   1.1  jonathan 			re_reset(sc);
   1449   1.1  jonathan 			re_init(sc);
   1450   1.1  jonathan 		}
   1451   1.1  jonathan 	}
   1452   1.1  jonathan done:
   1453   1.1  jonathan 	RTK_UNLOCK(sc);
   1454   1.1  jonathan }
   1455   1.1  jonathan #endif /* DEVICE_POLLING */
   1456   1.1  jonathan 
   1457   1.1  jonathan int
   1458   1.1  jonathan re_intr(void *arg)
   1459   1.1  jonathan {
   1460   1.1  jonathan 	struct rtk_softc	*sc = arg;
   1461   1.1  jonathan 	struct ifnet		*ifp;
   1462   1.1  jonathan 	u_int16_t		status;
   1463   1.1  jonathan 	int			handled = 0;
   1464   1.1  jonathan 
   1465   1.1  jonathan 	ifp = &sc->ethercom.ec_if;
   1466   1.1  jonathan 
   1467   1.1  jonathan 	if (!(ifp->if_flags & IFF_UP))
   1468   1.1  jonathan 		return 0;
   1469   1.1  jonathan 
   1470   1.1  jonathan #ifdef DEVICE_POLLING
   1471   1.4   kanaoka 	if (ifp->if_flags & IFF_POLLING)
   1472   1.1  jonathan 		goto done;
   1473   1.1  jonathan 	if ((ifp->if_capenable & IFCAP_POLLING) &&
   1474   1.1  jonathan 	    ether_poll_register(re_poll, ifp)) { /* ok, disable interrupts */
   1475   1.1  jonathan 		CSR_WRITE_2(sc, RTK_IMR, 0x0000);
   1476   1.1  jonathan 		re_poll(ifp, 0, 1);
   1477   1.1  jonathan 		goto done;
   1478   1.1  jonathan 	}
   1479   1.1  jonathan #endif /* DEVICE_POLLING */
   1480   1.1  jonathan 
   1481   1.1  jonathan 	for (;;) {
   1482   1.1  jonathan 
   1483   1.1  jonathan 		status = CSR_READ_2(sc, RTK_ISR);
   1484   1.1  jonathan 		/* If the card has gone away the read returns 0xffff. */
   1485   1.1  jonathan 		if (status == 0xffff)
   1486   1.1  jonathan 			break;
   1487   1.1  jonathan 		if (status) {
   1488   1.1  jonathan 			handled = 1;
   1489   1.1  jonathan 			CSR_WRITE_2(sc, RTK_ISR, status);
   1490   1.1  jonathan 		}
   1491   1.1  jonathan 
   1492   1.1  jonathan 		if ((status & RTK_INTRS_CPLUS) == 0)
   1493   1.1  jonathan 			break;
   1494   1.1  jonathan 
   1495   1.8  jdolecek 		if ((status & RTK_ISR_RX_OK) ||
   1496   1.8  jdolecek 		    (status & RTK_ISR_RX_ERR))
   1497   1.1  jonathan 			re_rxeof(sc);
   1498   1.1  jonathan 
   1499   1.1  jonathan 		if ((status & RTK_ISR_TIMEOUT_EXPIRED) ||
   1500   1.1  jonathan 		    (status & RTK_ISR_TX_ERR) ||
   1501   1.1  jonathan 		    (status & RTK_ISR_TX_DESC_UNAVAIL))
   1502   1.1  jonathan 			re_txeof(sc);
   1503   1.1  jonathan 
   1504   1.1  jonathan 		if (status & RTK_ISR_SYSTEM_ERR) {
   1505   1.1  jonathan 			re_reset(sc);
   1506   1.1  jonathan 			re_init(ifp);
   1507   1.1  jonathan 		}
   1508   1.1  jonathan 
   1509   1.1  jonathan 		if (status & RTK_ISR_LINKCHG) {
   1510   1.1  jonathan 			callout_stop(&sc->rtk_tick_ch);
   1511   1.1  jonathan 			re_tick(sc);
   1512   1.1  jonathan 		}
   1513   1.1  jonathan 	}
   1514   1.1  jonathan 
   1515   1.4   kanaoka 	if (ifp->if_flags & IFF_UP) /* kludge for interrupt during re_init() */
   1516   1.4   kanaoka 		if (ifp->if_snd.ifq_head != NULL)
   1517   1.4   kanaoka 			(*ifp->if_start)(ifp);
   1518   1.1  jonathan 
   1519   1.1  jonathan #ifdef DEVICE_POLLING
   1520   1.1  jonathan done:
   1521   1.1  jonathan #endif
   1522   1.1  jonathan 
   1523   1.1  jonathan 	return handled;
   1524   1.1  jonathan }
   1525   1.1  jonathan 
   1526   1.1  jonathan static int
   1527  1.13      yamt re_encap(struct rtk_softc *sc, struct mbuf *m, int *idx)
   1528   1.1  jonathan {
   1529   1.1  jonathan 	bus_dmamap_t		map;
   1530  1.15      yamt 	int			error, i, startidx, curidx;
   1531  1.23     pavel #ifdef RE_VLAN
   1532   1.1  jonathan 	struct m_tag		*mtag;
   1533  1.23     pavel #endif
   1534   1.1  jonathan 	struct rtk_desc		*d;
   1535   1.1  jonathan 	u_int32_t		cmdstat, rtk_flags;
   1536  1.15      yamt 	struct rtk_txq		*txq;
   1537   1.1  jonathan 
   1538  1.17      yamt 	if (sc->rtk_ldata.rtk_tx_free <= 4) {
   1539   1.4   kanaoka 		return EFBIG;
   1540  1.17      yamt 	}
   1541   1.1  jonathan 
   1542   1.1  jonathan 	/*
   1543   1.1  jonathan 	 * Set up checksum offload. Note: checksum offload bits must
   1544   1.1  jonathan 	 * appear in all descriptors of a multi-descriptor transmit
   1545   1.1  jonathan 	 * attempt. (This is according to testing done with an 8169
   1546   1.1  jonathan 	 * chip. I'm not sure if this is a requirement or a bug.)
   1547   1.1  jonathan 	 */
   1548   1.1  jonathan 
   1549  1.13      yamt 	if ((m->m_pkthdr.csum_flags & M_CSUM_TSOv4) != 0) {
   1550  1.13      yamt 		u_int32_t segsz = m->m_pkthdr.segsz;
   1551   1.1  jonathan 
   1552  1.13      yamt 		rtk_flags = RTK_TDESC_CMD_LGSEND |
   1553  1.13      yamt 		    (segsz << RTK_TDESC_CMD_MSSVAL_SHIFT);
   1554  1.13      yamt 	} else {
   1555  1.16      yamt 
   1556  1.16      yamt 		/*
   1557  1.16      yamt 		 * set RTK_TDESC_CMD_IPCSUM if any checksum offloading
   1558  1.16      yamt 		 * is requested.  otherwise, RTK_TDESC_CMD_TCPCSUM/
   1559  1.16      yamt 		 * RTK_TDESC_CMD_UDPCSUM doesn't make effects.
   1560  1.16      yamt 		 */
   1561  1.16      yamt 
   1562  1.13      yamt 		rtk_flags = 0;
   1563  1.16      yamt 		if ((m->m_pkthdr.csum_flags &
   1564  1.16      yamt 		    (M_CSUM_IPv4 | M_CSUM_TCPv4 | M_CSUM_UDPv4)) != 0) {
   1565  1.13      yamt 			rtk_flags |= RTK_TDESC_CMD_IPCSUM;
   1566  1.16      yamt 			if (m->m_pkthdr.csum_flags & M_CSUM_TCPv4) {
   1567  1.16      yamt 				rtk_flags |= RTK_TDESC_CMD_TCPCSUM;
   1568  1.16      yamt 			} else if (m->m_pkthdr.csum_flags & M_CSUM_UDPv4) {
   1569  1.16      yamt 				rtk_flags |= RTK_TDESC_CMD_UDPCSUM;
   1570  1.16      yamt 			}
   1571  1.16      yamt 		}
   1572  1.13      yamt 	}
   1573   1.1  jonathan 
   1574  1.15      yamt 	txq = &sc->rtk_ldata.rtk_txq[*idx];
   1575  1.15      yamt 	map = txq->txq_dmamap;
   1576  1.21      yamt 	error = bus_dmamap_load_mbuf(sc->sc_dmat, map, m,
   1577  1.21      yamt 	    BUS_DMA_WRITE|BUS_DMA_NOWAIT);
   1578   1.1  jonathan 
   1579   1.1  jonathan 	if (error) {
   1580  1.13      yamt 		/* XXX try to defrag if EFBIG? */
   1581  1.13      yamt 
   1582   1.4   kanaoka 		aprint_error("%s: can't map mbuf (error %d)\n",
   1583   1.1  jonathan 		    sc->sc_dev.dv_xname, error);
   1584  1.13      yamt 
   1585  1.14      yamt 		return error;
   1586   1.1  jonathan 	}
   1587   1.1  jonathan 
   1588  1.13      yamt 	if (map->dm_nsegs > sc->rtk_ldata.rtk_tx_free - 4) {
   1589  1.14      yamt 		error = EFBIG;
   1590  1.13      yamt 		goto fail_unload;
   1591  1.13      yamt 	}
   1592  1.20    briggs 
   1593  1.20    briggs 	/*
   1594  1.20    briggs 	 * Make sure that the caches are synchronized before we
   1595  1.20    briggs 	 * ask the chip to start DMA for the packet data.
   1596  1.20    briggs 	 */
   1597  1.20    briggs 	bus_dmamap_sync(sc->sc_dmat, map, 0, map->dm_mapsize,
   1598  1.20    briggs 		BUS_DMASYNC_PREWRITE);
   1599  1.20    briggs 
   1600   1.1  jonathan 	/*
   1601   1.1  jonathan 	 * Map the segment array into descriptors. Note that we set the
   1602   1.1  jonathan 	 * start-of-frame and end-of-frame markers for either TX or RX, but
   1603   1.1  jonathan 	 * they really only have meaning in the TX case. (In the RX case,
   1604   1.1  jonathan 	 * it's the chip that tells us where packets begin and end.)
   1605   1.1  jonathan 	 * We also keep track of the end of the ring and set the
   1606   1.1  jonathan 	 * end-of-ring bits as needed, and we set the ownership bits
   1607   1.1  jonathan 	 * in all except the very first descriptor. (The caller will
   1608   1.1  jonathan 	 * set this descriptor later when it start transmission or
   1609   1.1  jonathan 	 * reception.)
   1610   1.1  jonathan 	 */
   1611   1.1  jonathan 	i = 0;
   1612  1.15      yamt 	curidx = startidx = sc->rtk_ldata.rtk_tx_nextfree;
   1613   1.1  jonathan 	while (1) {
   1614   1.1  jonathan 		d = &sc->rtk_ldata.rtk_tx_list[curidx];
   1615  1.15      yamt 		if (le32toh(d->rtk_cmdstat) & RTK_TDESC_STAT_OWN) {
   1616  1.13      yamt 			while (i > 0) {
   1617  1.13      yamt 				sc->rtk_ldata.rtk_tx_list[
   1618  1.15      yamt 				    (curidx + RTK_TX_DESC_CNT(sc) - i) %
   1619  1.15      yamt 				    RTK_TX_DESC_CNT(sc)].rtk_cmdstat = 0;
   1620  1.13      yamt 				i--;
   1621  1.13      yamt 			}
   1622  1.13      yamt 			error = ENOBUFS;
   1623  1.13      yamt 			goto fail_unload;
   1624  1.13      yamt 		}
   1625   1.1  jonathan 
   1626   1.1  jonathan 		cmdstat = map->dm_segs[i].ds_len;
   1627   1.1  jonathan 		d->rtk_bufaddr_lo =
   1628   1.1  jonathan 		    htole32(RTK_ADDR_LO(map->dm_segs[i].ds_addr));
   1629   1.1  jonathan 		d->rtk_bufaddr_hi =
   1630   1.1  jonathan 		    htole32(RTK_ADDR_HI(map->dm_segs[i].ds_addr));
   1631   1.1  jonathan 		if (i == 0)
   1632   1.1  jonathan 			cmdstat |= RTK_TDESC_CMD_SOF;
   1633   1.1  jonathan 		else
   1634   1.1  jonathan 			cmdstat |= RTK_TDESC_CMD_OWN;
   1635  1.15      yamt 		if (curidx == (RTK_TX_DESC_CNT(sc) - 1))
   1636   1.1  jonathan 			cmdstat |= RTK_TDESC_CMD_EOR;
   1637   1.1  jonathan 		d->rtk_cmdstat = htole32(cmdstat | rtk_flags);
   1638   1.1  jonathan 		i++;
   1639   1.1  jonathan 		if (i == map->dm_nsegs)
   1640   1.1  jonathan 			break;
   1641  1.15      yamt 		RTK_TX_DESC_INC(sc, curidx);
   1642   1.1  jonathan 	}
   1643   1.1  jonathan 
   1644   1.1  jonathan 	d->rtk_cmdstat |= htole32(RTK_TDESC_CMD_EOF);
   1645   1.1  jonathan 
   1646  1.15      yamt 	txq->txq_mbuf = m;
   1647   1.1  jonathan 	sc->rtk_ldata.rtk_tx_free -= map->dm_nsegs;
   1648   1.1  jonathan 
   1649   1.1  jonathan 	/*
   1650   1.1  jonathan 	 * Set up hardware VLAN tagging. Note: vlan tag info must
   1651   1.1  jonathan 	 * appear in the first descriptor of a multi-descriptor
   1652   1.1  jonathan 	 * transmission attempt.
   1653   1.1  jonathan 	 */
   1654   1.1  jonathan 
   1655  1.23     pavel #ifdef RE_VLAN
   1656  1.13      yamt 	if ((mtag = VLAN_OUTPUT_TAG(&sc->ethercom, m)) != NULL) {
   1657  1.15      yamt 		sc->rtk_ldata.rtk_tx_list[startidx].rtk_vlanctl =
   1658   1.9  jdolecek 		    htole32(htons(VLAN_TAG_VALUE(mtag)) |
   1659   1.1  jonathan 		    RTK_TDESC_VLANCTL_TAG);
   1660   1.9  jdolecek 	}
   1661  1.23     pavel #endif
   1662   1.1  jonathan 
   1663   1.1  jonathan 	/* Transfer ownership of packet to the chip. */
   1664   1.1  jonathan 
   1665   1.1  jonathan 	sc->rtk_ldata.rtk_tx_list[curidx].rtk_cmdstat |=
   1666   1.1  jonathan 	    htole32(RTK_TDESC_CMD_OWN);
   1667  1.15      yamt 	if (startidx != curidx)
   1668  1.15      yamt 		sc->rtk_ldata.rtk_tx_list[startidx].rtk_cmdstat |=
   1669   1.1  jonathan 		    htole32(RTK_TDESC_CMD_OWN);
   1670   1.1  jonathan 
   1671  1.15      yamt 	txq->txq_descidx = curidx;
   1672  1.15      yamt 	RTK_TX_DESC_INC(sc, curidx);
   1673  1.15      yamt 	sc->rtk_ldata.rtk_tx_nextfree = curidx;
   1674  1.15      yamt 	*idx = (*idx + 1) % RTK_TX_QLEN;
   1675   1.1  jonathan 
   1676   1.1  jonathan 	return 0;
   1677  1.13      yamt 
   1678  1.13      yamt fail_unload:
   1679  1.13      yamt 	bus_dmamap_unload(sc->sc_dmat, map);
   1680  1.13      yamt 
   1681  1.13      yamt 	return error;
   1682   1.1  jonathan }
   1683   1.1  jonathan 
   1684   1.1  jonathan /*
   1685   1.1  jonathan  * Main transmit routine for C+ and gigE NICs.
   1686   1.1  jonathan  */
   1687   1.1  jonathan 
   1688   1.1  jonathan static void
   1689   1.1  jonathan re_start(struct ifnet *ifp)
   1690   1.1  jonathan {
   1691   1.1  jonathan 	struct rtk_softc	*sc;
   1692   1.1  jonathan 	int			idx;
   1693   1.1  jonathan 
   1694   1.1  jonathan 	sc = ifp->if_softc;
   1695   1.1  jonathan 
   1696  1.15      yamt 	idx = sc->rtk_ldata.rtk_txq_prodidx;
   1697  1.17      yamt 	while (/* CONSTCOND */ 1) {
   1698  1.17      yamt 		struct mbuf *m;
   1699  1.13      yamt 		int error;
   1700  1.13      yamt 
   1701  1.17      yamt 		IFQ_POLL(&ifp->if_snd, m);
   1702  1.17      yamt 		if (m == NULL)
   1703   1.1  jonathan 			break;
   1704   1.1  jonathan 
   1705  1.17      yamt 		if (sc->rtk_ldata.rtk_txq[idx].txq_mbuf != NULL) {
   1706  1.17      yamt 			KASSERT(idx == sc->rtk_ldata.rtk_txq_considx);
   1707  1.17      yamt 			ifp->if_flags |= IFF_OACTIVE;
   1708  1.17      yamt 			break;
   1709  1.17      yamt 		}
   1710  1.17      yamt 
   1711  1.17      yamt 		error = re_encap(sc, m, &idx);
   1712  1.14      yamt 		if (error == EFBIG &&
   1713  1.15      yamt 		    sc->rtk_ldata.rtk_tx_free == RTK_TX_DESC_CNT(sc)) {
   1714  1.17      yamt 			IFQ_DEQUEUE(&ifp->if_snd, m);
   1715  1.17      yamt 			m_freem(m);
   1716  1.13      yamt 			ifp->if_oerrors++;
   1717  1.13      yamt 			continue;
   1718  1.13      yamt 		}
   1719  1.13      yamt 		if (error) {
   1720   1.1  jonathan 			ifp->if_flags |= IFF_OACTIVE;
   1721   1.1  jonathan 			break;
   1722   1.1  jonathan 		}
   1723  1.17      yamt 
   1724  1.17      yamt 		IFQ_DEQUEUE(&ifp->if_snd, m);
   1725  1.17      yamt 
   1726   1.1  jonathan #if NBPFILTER > 0
   1727   1.1  jonathan 		/*
   1728   1.1  jonathan 		 * If there's a BPF listener, bounce a copy of this frame
   1729   1.1  jonathan 		 * to him.
   1730   1.1  jonathan 		 */
   1731   1.1  jonathan 		if (ifp->if_bpf)
   1732  1.17      yamt 			bpf_mtap(ifp->if_bpf, m);
   1733   1.1  jonathan #endif
   1734   1.1  jonathan 	}
   1735   1.1  jonathan 
   1736  1.17      yamt 	if (sc->rtk_ldata.rtk_txq_prodidx == idx) {
   1737  1.17      yamt 		return;
   1738  1.17      yamt 	}
   1739  1.17      yamt 	sc->rtk_ldata.rtk_txq_prodidx = idx;
   1740  1.17      yamt 
   1741   1.1  jonathan 	/* Flush the TX descriptors */
   1742   1.1  jonathan 
   1743   1.1  jonathan 	bus_dmamap_sync(sc->sc_dmat,
   1744   1.1  jonathan 	    sc->rtk_ldata.rtk_tx_list_map,
   1745   1.1  jonathan 	    0, sc->rtk_ldata.rtk_tx_list_map->dm_mapsize,
   1746   1.4   kanaoka 	    BUS_DMASYNC_PREWRITE | BUS_DMASYNC_PREREAD);
   1747   1.1  jonathan 
   1748   1.1  jonathan 	/*
   1749   1.1  jonathan 	 * RealTek put the TX poll request register in a different
   1750   1.1  jonathan 	 * location on the 8169 gigE chip. I don't know why.
   1751   1.1  jonathan 	 */
   1752   1.1  jonathan 
   1753   1.1  jonathan 	if (sc->rtk_type == RTK_8169)
   1754   1.1  jonathan 		CSR_WRITE_2(sc, RTK_GTXSTART, RTK_TXSTART_START);
   1755   1.1  jonathan 	else
   1756   1.1  jonathan 		CSR_WRITE_2(sc, RTK_TXSTART, RTK_TXSTART_START);
   1757   1.1  jonathan 
   1758   1.1  jonathan 	/*
   1759   1.1  jonathan 	 * Use the countdown timer for interrupt moderation.
   1760   1.1  jonathan 	 * 'TX done' interrupts are disabled. Instead, we reset the
   1761   1.1  jonathan 	 * countdown timer, which will begin counting until it hits
   1762   1.1  jonathan 	 * the value in the TIMERINT register, and then trigger an
   1763   1.1  jonathan 	 * interrupt. Each time we write to the TIMERCNT register,
   1764   1.1  jonathan 	 * the timer count is reset to 0.
   1765   1.1  jonathan 	 */
   1766   1.1  jonathan 	CSR_WRITE_4(sc, RTK_TIMERCNT, 1);
   1767   1.1  jonathan 
   1768   1.1  jonathan 	/*
   1769   1.1  jonathan 	 * Set a timeout in case the chip goes out to lunch.
   1770   1.1  jonathan 	 */
   1771   1.1  jonathan 	ifp->if_timer = 5;
   1772   1.1  jonathan 
   1773   1.1  jonathan 	return;
   1774   1.1  jonathan }
   1775   1.1  jonathan 
   1776   1.1  jonathan static int
   1777   1.1  jonathan re_init(struct ifnet *ifp)
   1778   1.1  jonathan {
   1779   1.1  jonathan 	struct rtk_softc	*sc = ifp->if_softc;
   1780   1.1  jonathan 	u_int32_t		rxcfg = 0;
   1781   1.1  jonathan 	u_int32_t		reg;
   1782   1.1  jonathan 	int error;
   1783  1.12     perry 
   1784   1.1  jonathan 	if ((error = re_enable(sc)) != 0)
   1785   1.1  jonathan 		goto out;
   1786   1.1  jonathan 
   1787   1.1  jonathan 	/*
   1788   1.1  jonathan 	 * Cancel pending I/O and free all RX/TX buffers.
   1789   1.1  jonathan 	 */
   1790   1.3   kanaoka 	re_stop(ifp, 0);
   1791   1.1  jonathan 
   1792   1.1  jonathan 	/*
   1793   1.1  jonathan 	 * Enable C+ RX and TX mode, as well as VLAN stripping and
   1794   1.1  jonathan 	 * RX checksum offload. We must configure the C+ register
   1795   1.1  jonathan 	 * before all others.
   1796   1.1  jonathan 	 */
   1797   1.1  jonathan 	reg = 0;
   1798   1.1  jonathan 
   1799   1.1  jonathan 	/*
   1800   1.1  jonathan 	 * XXX: Realtek docs say bits 0 and 1 are reserved, for 8169S/8110S.
   1801   1.1  jonathan 	 * FreeBSD  drivers set these bits anyway (for 8139C+?).
   1802   1.1  jonathan 	 * So far, it works.
   1803   1.1  jonathan 	 */
   1804   1.1  jonathan 
   1805   1.1  jonathan 	/*
   1806   1.1  jonathan 	 * XXX: For 8169 and 8196S revs below 2, set bit 14.
   1807   1.1  jonathan 	 * For 8169S/8110S rev 2 and above, do not set bit 14.
   1808   1.1  jonathan 	 */
   1809   1.1  jonathan 	if (sc->rtk_type == RTK_8169 && sc->sc_rev == 1)
   1810   1.4   kanaoka 		reg |= (0x1 << 14) | RTK_CPLUSCMD_PCI_MRW;;
   1811   1.1  jonathan 
   1812   1.4   kanaoka 	if (1)  {/* not for 8169S ? */
   1813  1.23     pavel 		reg |=
   1814  1.23     pavel #ifdef RE_VLAN
   1815  1.23     pavel 		    RTK_CPLUSCMD_VLANSTRIP |
   1816  1.23     pavel #endif
   1817   1.4   kanaoka 		    (ifp->if_capenable &
   1818  1.18      yamt 		    (IFCAP_CSUM_IPv4_Rx | IFCAP_CSUM_TCPv4_Rx |
   1819  1.18      yamt 		     IFCAP_CSUM_UDPv4_Rx) ?
   1820   1.4   kanaoka 		    RTK_CPLUSCMD_RXCSUM_ENB : 0);
   1821   1.4   kanaoka 	}
   1822  1.12     perry 
   1823   1.1  jonathan 	CSR_WRITE_2(sc, RTK_CPLUS_CMD,
   1824   1.4   kanaoka 	    reg | RTK_CPLUSCMD_RXENB | RTK_CPLUSCMD_TXENB);
   1825   1.1  jonathan 
   1826   1.1  jonathan 	/* XXX: from Realtek-supplied Linux driver. Wholly undocumented. */
   1827   1.1  jonathan 	if (sc->rtk_type == RTK_8169)
   1828   1.1  jonathan 		CSR_WRITE_2(sc, RTK_CPLUS_CMD+0x2, 0x0000);
   1829   1.1  jonathan 
   1830   1.1  jonathan 	DELAY(10000);
   1831   1.1  jonathan 
   1832   1.1  jonathan 	/*
   1833   1.1  jonathan 	 * Init our MAC address.  Even though the chipset
   1834   1.1  jonathan 	 * documentation doesn't mention it, we need to enter "Config
   1835   1.1  jonathan 	 * register write enable" mode to modify the ID registers.
   1836   1.1  jonathan 	 */
   1837   1.1  jonathan 	CSR_WRITE_1(sc, RTK_EECMD, RTK_EEMODE_WRITECFG);
   1838   1.1  jonathan 	memcpy(&reg, LLADDR(ifp->if_sadl), 4);
   1839   1.1  jonathan 	CSR_WRITE_STREAM_4(sc, RTK_IDR0, reg);
   1840   1.1  jonathan 	reg = 0;
   1841   1.1  jonathan 	memcpy(&reg, LLADDR(ifp->if_sadl) + 4, 4);
   1842   1.1  jonathan 	CSR_WRITE_STREAM_4(sc, RTK_IDR4, reg);
   1843   1.1  jonathan 	CSR_WRITE_1(sc, RTK_EECMD, RTK_EEMODE_OFF);
   1844   1.1  jonathan 
   1845   1.1  jonathan 	/*
   1846   1.1  jonathan 	 * For C+ mode, initialize the RX descriptors and mbufs.
   1847   1.1  jonathan 	 */
   1848   1.1  jonathan 	re_rx_list_init(sc);
   1849   1.1  jonathan 	re_tx_list_init(sc);
   1850   1.1  jonathan 
   1851   1.1  jonathan 	/*
   1852   1.1  jonathan 	 * Enable transmit and receive.
   1853   1.1  jonathan 	 */
   1854   1.4   kanaoka 	CSR_WRITE_1(sc, RTK_COMMAND, RTK_CMD_TX_ENB | RTK_CMD_RX_ENB);
   1855   1.1  jonathan 
   1856   1.1  jonathan 	/*
   1857   1.1  jonathan 	 * Set the initial TX and RX configuration.
   1858   1.1  jonathan 	 */
   1859   1.1  jonathan 	if (sc->rtk_testmode) {
   1860   1.1  jonathan 		if (sc->rtk_type == RTK_8169)
   1861   1.1  jonathan 			CSR_WRITE_4(sc, RTK_TXCFG,
   1862   1.4   kanaoka 			    RTK_TXCFG_CONFIG | RTK_LOOPTEST_ON);
   1863   1.1  jonathan 		else
   1864   1.1  jonathan 			CSR_WRITE_4(sc, RTK_TXCFG,
   1865   1.4   kanaoka 			    RTK_TXCFG_CONFIG | RTK_LOOPTEST_ON_CPLUS);
   1866   1.1  jonathan 	} else
   1867   1.1  jonathan 		CSR_WRITE_4(sc, RTK_TXCFG, RTK_TXCFG_CONFIG);
   1868   1.1  jonathan 	CSR_WRITE_4(sc, RTK_RXCFG, RTK_RXCFG_CONFIG);
   1869   1.1  jonathan 
   1870   1.1  jonathan 	/* Set the individual bit to receive frames for this host only. */
   1871   1.1  jonathan 	rxcfg = CSR_READ_4(sc, RTK_RXCFG);
   1872   1.1  jonathan 	rxcfg |= RTK_RXCFG_RX_INDIV;
   1873   1.1  jonathan 
   1874   1.1  jonathan 	/* If we want promiscuous mode, set the allframes bit. */
   1875   1.8  jdolecek 	if (ifp->if_flags & IFF_PROMISC)
   1876   1.1  jonathan 		rxcfg |= RTK_RXCFG_RX_ALLPHYS;
   1877   1.8  jdolecek 	else
   1878   1.1  jonathan 		rxcfg &= ~RTK_RXCFG_RX_ALLPHYS;
   1879   1.8  jdolecek 	CSR_WRITE_4(sc, RTK_RXCFG, rxcfg);
   1880   1.1  jonathan 
   1881   1.1  jonathan 	/*
   1882   1.1  jonathan 	 * Set capture broadcast bit to capture broadcast frames.
   1883   1.1  jonathan 	 */
   1884   1.8  jdolecek 	if (ifp->if_flags & IFF_BROADCAST)
   1885   1.1  jonathan 		rxcfg |= RTK_RXCFG_RX_BROAD;
   1886   1.8  jdolecek 	else
   1887   1.1  jonathan 		rxcfg &= ~RTK_RXCFG_RX_BROAD;
   1888   1.8  jdolecek 	CSR_WRITE_4(sc, RTK_RXCFG, rxcfg);
   1889   1.1  jonathan 
   1890   1.1  jonathan 	/*
   1891   1.1  jonathan 	 * Program the multicast filter, if necessary.
   1892   1.1  jonathan 	 */
   1893   1.1  jonathan 	rtk_setmulti(sc);
   1894   1.1  jonathan 
   1895   1.1  jonathan #ifdef DEVICE_POLLING
   1896   1.1  jonathan 	/*
   1897   1.1  jonathan 	 * Disable interrupts if we are polling.
   1898   1.1  jonathan 	 */
   1899   1.1  jonathan 	if (ifp->if_flags & IFF_POLLING)
   1900   1.1  jonathan 		CSR_WRITE_2(sc, RTK_IMR, 0);
   1901   1.1  jonathan 	else	/* otherwise ... */
   1902   1.1  jonathan #endif /* DEVICE_POLLING */
   1903   1.1  jonathan 	/*
   1904   1.1  jonathan 	 * Enable interrupts.
   1905   1.1  jonathan 	 */
   1906   1.1  jonathan 	if (sc->rtk_testmode)
   1907   1.1  jonathan 		CSR_WRITE_2(sc, RTK_IMR, 0);
   1908   1.1  jonathan 	else
   1909   1.1  jonathan 		CSR_WRITE_2(sc, RTK_IMR, RTK_INTRS_CPLUS);
   1910   1.1  jonathan 
   1911   1.1  jonathan 	/* Start RX/TX process. */
   1912   1.1  jonathan 	CSR_WRITE_4(sc, RTK_MISSEDPKT, 0);
   1913   1.1  jonathan #ifdef notdef
   1914   1.1  jonathan 	/* Enable receiver and transmitter. */
   1915   1.4   kanaoka 	CSR_WRITE_1(sc, RTK_COMMAND, RTK_CMD_TX_ENB | RTK_CMD_RX_ENB);
   1916   1.1  jonathan #endif
   1917   1.1  jonathan 	/*
   1918   1.1  jonathan 	 * Load the addresses of the RX and TX lists into the chip.
   1919   1.1  jonathan 	 */
   1920   1.1  jonathan 
   1921   1.1  jonathan 	CSR_WRITE_4(sc, RTK_RXLIST_ADDR_HI,
   1922  1.11      yamt 	    RTK_ADDR_HI(sc->rtk_ldata.rtk_rx_list_map->dm_segs[0].ds_addr));
   1923   1.1  jonathan 	CSR_WRITE_4(sc, RTK_RXLIST_ADDR_LO,
   1924  1.11      yamt 	    RTK_ADDR_LO(sc->rtk_ldata.rtk_rx_list_map->dm_segs[0].ds_addr));
   1925   1.1  jonathan 
   1926   1.1  jonathan 	CSR_WRITE_4(sc, RTK_TXLIST_ADDR_HI,
   1927  1.11      yamt 	    RTK_ADDR_HI(sc->rtk_ldata.rtk_tx_list_map->dm_segs[0].ds_addr));
   1928   1.1  jonathan 	CSR_WRITE_4(sc, RTK_TXLIST_ADDR_LO,
   1929  1.11      yamt 	    RTK_ADDR_LO(sc->rtk_ldata.rtk_tx_list_map->dm_segs[0].ds_addr));
   1930   1.1  jonathan 
   1931   1.1  jonathan 	CSR_WRITE_1(sc, RTK_EARLY_TX_THRESH, 16);
   1932   1.1  jonathan 
   1933   1.1  jonathan 	/*
   1934   1.1  jonathan 	 * Initialize the timer interrupt register so that
   1935   1.1  jonathan 	 * a timer interrupt will be generated once the timer
   1936   1.1  jonathan 	 * reaches a certain number of ticks. The timer is
   1937   1.1  jonathan 	 * reloaded on each transmit. This gives us TX interrupt
   1938   1.1  jonathan 	 * moderation, which dramatically improves TX frame rate.
   1939   1.1  jonathan 	 */
   1940   1.1  jonathan 
   1941   1.1  jonathan 	if (sc->rtk_type == RTK_8169)
   1942   1.1  jonathan 		CSR_WRITE_4(sc, RTK_TIMERINT_8169, 0x800);
   1943   1.1  jonathan 	else
   1944   1.1  jonathan 		CSR_WRITE_4(sc, RTK_TIMERINT, 0x400);
   1945   1.1  jonathan 
   1946   1.1  jonathan 	/*
   1947   1.1  jonathan 	 * For 8169 gigE NICs, set the max allowed RX packet
   1948   1.1  jonathan 	 * size so we can receive jumbo frames.
   1949   1.1  jonathan 	 */
   1950   1.1  jonathan 	if (sc->rtk_type == RTK_8169)
   1951   1.1  jonathan 		CSR_WRITE_2(sc, RTK_MAXRXPKTLEN, 16383);
   1952   1.1  jonathan 
   1953   1.1  jonathan 	if (sc->rtk_testmode)
   1954   1.1  jonathan 		return 0;
   1955   1.1  jonathan 
   1956   1.1  jonathan 	mii_mediachg(&sc->mii);
   1957   1.1  jonathan 
   1958   1.4   kanaoka 	CSR_WRITE_1(sc, RTK_CFG1, RTK_CFG1_DRVLOAD | RTK_CFG1_FULLDUPLEX);
   1959   1.1  jonathan 
   1960   1.1  jonathan 	ifp->if_flags |= IFF_RUNNING;
   1961   1.1  jonathan 	ifp->if_flags &= ~IFF_OACTIVE;
   1962   1.1  jonathan 
   1963   1.1  jonathan 	callout_reset(&sc->rtk_tick_ch, hz, re_tick, sc);
   1964   1.1  jonathan 
   1965   1.1  jonathan out:
   1966   1.1  jonathan 	if (error) {
   1967   1.4   kanaoka 		ifp->if_flags &= ~(IFF_RUNNING | IFF_OACTIVE);
   1968   1.1  jonathan 		ifp->if_timer = 0;
   1969   1.4   kanaoka 		aprint_error("%s: interface not running\n",
   1970   1.4   kanaoka 		    sc->sc_dev.dv_xname);
   1971   1.1  jonathan 	}
   1972  1.12     perry 
   1973   1.1  jonathan 	return error;
   1974   1.1  jonathan 
   1975   1.1  jonathan }
   1976   1.1  jonathan 
   1977   1.1  jonathan /*
   1978   1.1  jonathan  * Set media options.
   1979   1.1  jonathan  */
   1980   1.1  jonathan static int
   1981   1.1  jonathan re_ifmedia_upd(struct ifnet *ifp)
   1982   1.1  jonathan {
   1983   1.1  jonathan 	struct rtk_softc	*sc;
   1984   1.1  jonathan 
   1985   1.1  jonathan 	sc = ifp->if_softc;
   1986   1.1  jonathan 
   1987   1.4   kanaoka 	return mii_mediachg(&sc->mii);
   1988   1.1  jonathan }
   1989   1.1  jonathan 
   1990   1.1  jonathan /*
   1991   1.1  jonathan  * Report current media status.
   1992   1.1  jonathan  */
   1993   1.1  jonathan static void
   1994   1.1  jonathan re_ifmedia_sts(struct ifnet *ifp, struct ifmediareq *ifmr)
   1995   1.1  jonathan {
   1996   1.1  jonathan 	struct rtk_softc	*sc;
   1997   1.1  jonathan 
   1998   1.1  jonathan 	sc = ifp->if_softc;
   1999   1.1  jonathan 
   2000   1.1  jonathan 	mii_pollstat(&sc->mii);
   2001   1.1  jonathan 	ifmr->ifm_active = sc->mii.mii_media_active;
   2002   1.1  jonathan 	ifmr->ifm_status = sc->mii.mii_media_status;
   2003   1.1  jonathan 
   2004   1.1  jonathan 	return;
   2005   1.1  jonathan }
   2006   1.1  jonathan 
   2007   1.1  jonathan static int
   2008   1.1  jonathan re_ioctl(struct ifnet *ifp, u_long command, caddr_t data)
   2009   1.1  jonathan {
   2010   1.1  jonathan 	struct rtk_softc	*sc = ifp->if_softc;
   2011   1.1  jonathan 	struct ifreq		*ifr = (struct ifreq *) data;
   2012   1.1  jonathan 	int			s, error = 0;
   2013   1.1  jonathan 
   2014   1.1  jonathan 	s = splnet();
   2015   1.1  jonathan 
   2016   1.4   kanaoka 	switch (command) {
   2017   1.1  jonathan 	case SIOCSIFMTU:
   2018   1.1  jonathan 		if (ifr->ifr_mtu > RTK_JUMBO_MTU)
   2019   1.1  jonathan 			error = EINVAL;
   2020   1.1  jonathan 		ifp->if_mtu = ifr->ifr_mtu;
   2021   1.1  jonathan 		break;
   2022   1.1  jonathan 	case SIOCGIFMEDIA:
   2023   1.1  jonathan 	case SIOCSIFMEDIA:
   2024   1.1  jonathan 		error = ifmedia_ioctl(ifp, ifr, &sc->mii.mii_media, command);
   2025   1.1  jonathan 		break;
   2026   1.1  jonathan 	default:
   2027   1.1  jonathan 		error = ether_ioctl(ifp, command, data);
   2028   1.1  jonathan 		if (error == ENETRESET) {
   2029   1.2   kanaoka 			if (ifp->if_flags & IFF_RUNNING)
   2030   1.1  jonathan 				rtk_setmulti(sc);
   2031   1.1  jonathan 			error = 0;
   2032   1.1  jonathan 		}
   2033   1.1  jonathan 		break;
   2034   1.1  jonathan 	}
   2035   1.1  jonathan 
   2036   1.1  jonathan 	splx(s);
   2037   1.1  jonathan 
   2038   1.4   kanaoka 	return error;
   2039   1.1  jonathan }
   2040   1.1  jonathan 
   2041   1.1  jonathan static void
   2042   1.1  jonathan re_watchdog(struct ifnet *ifp)
   2043   1.1  jonathan {
   2044   1.1  jonathan 	struct rtk_softc	*sc;
   2045   1.1  jonathan 	int			s;
   2046   1.1  jonathan 
   2047   1.1  jonathan 	sc = ifp->if_softc;
   2048   1.1  jonathan 	s = splnet();
   2049   1.4   kanaoka 	aprint_error("%s: watchdog timeout\n", sc->sc_dev.dv_xname);
   2050   1.1  jonathan 	ifp->if_oerrors++;
   2051   1.1  jonathan 
   2052   1.1  jonathan 	re_txeof(sc);
   2053   1.1  jonathan 	re_rxeof(sc);
   2054   1.1  jonathan 
   2055   1.1  jonathan 	re_init(ifp);
   2056   1.1  jonathan 
   2057   1.1  jonathan 	splx(s);
   2058   1.1  jonathan }
   2059   1.1  jonathan 
   2060   1.1  jonathan /*
   2061   1.1  jonathan  * Stop the adapter and free any mbufs allocated to the
   2062   1.1  jonathan  * RX and TX lists.
   2063   1.1  jonathan  */
   2064   1.1  jonathan static void
   2065   1.3   kanaoka re_stop(struct ifnet *ifp, int disable)
   2066   1.1  jonathan {
   2067   1.1  jonathan 	register int		i;
   2068   1.3   kanaoka 	struct rtk_softc *sc = ifp->if_softc;
   2069   1.1  jonathan 
   2070   1.3   kanaoka 	callout_stop(&sc->rtk_tick_ch);
   2071   1.1  jonathan 
   2072   1.1  jonathan #ifdef DEVICE_POLLING
   2073   1.1  jonathan 	ether_poll_deregister(ifp);
   2074   1.1  jonathan #endif /* DEVICE_POLLING */
   2075   1.1  jonathan 
   2076   1.3   kanaoka 	mii_down(&sc->mii);
   2077   1.3   kanaoka 
   2078   1.1  jonathan 	CSR_WRITE_1(sc, RTK_COMMAND, 0x00);
   2079   1.1  jonathan 	CSR_WRITE_2(sc, RTK_IMR, 0x0000);
   2080   1.1  jonathan 
   2081   1.1  jonathan 	if (sc->rtk_head != NULL) {
   2082   1.1  jonathan 		m_freem(sc->rtk_head);
   2083   1.1  jonathan 		sc->rtk_head = sc->rtk_tail = NULL;
   2084   1.1  jonathan 	}
   2085   1.1  jonathan 
   2086   1.1  jonathan 	/* Free the TX list buffers. */
   2087  1.15      yamt 	for (i = 0; i < RTK_TX_QLEN; i++) {
   2088  1.15      yamt 		if (sc->rtk_ldata.rtk_txq[i].txq_mbuf != NULL) {
   2089   1.1  jonathan 			bus_dmamap_unload(sc->sc_dmat,
   2090  1.15      yamt 			    sc->rtk_ldata.rtk_txq[i].txq_dmamap);
   2091  1.15      yamt 			m_freem(sc->rtk_ldata.rtk_txq[i].txq_mbuf);
   2092  1.15      yamt 			sc->rtk_ldata.rtk_txq[i].txq_mbuf = NULL;
   2093   1.1  jonathan 		}
   2094   1.1  jonathan 	}
   2095   1.1  jonathan 
   2096   1.1  jonathan 	/* Free the RX list buffers. */
   2097   1.1  jonathan 	for (i = 0; i < RTK_RX_DESC_CNT; i++) {
   2098   1.1  jonathan 		if (sc->rtk_ldata.rtk_rx_mbuf[i] != NULL) {
   2099   1.1  jonathan 			bus_dmamap_unload(sc->sc_dmat,
   2100   1.1  jonathan 			    sc->rtk_ldata.rtk_rx_dmamap[i]);
   2101   1.1  jonathan 			m_freem(sc->rtk_ldata.rtk_rx_mbuf[i]);
   2102   1.1  jonathan 			sc->rtk_ldata.rtk_rx_mbuf[i] = NULL;
   2103   1.1  jonathan 		}
   2104   1.1  jonathan 	}
   2105   1.1  jonathan 
   2106   1.3   kanaoka 	if (disable)
   2107   1.3   kanaoka 		re_disable(sc);
   2108   1.3   kanaoka 
   2109   1.3   kanaoka 	ifp->if_flags &= ~(IFF_RUNNING | IFF_OACTIVE);
   2110   1.4   kanaoka 	ifp->if_timer = 0;
   2111   1.1  jonathan 
   2112   1.1  jonathan 	return;
   2113   1.1  jonathan }
   2114