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hme.c revision 1.1.10.1
      1  1.1.10.1  wrstuden /*	$NetBSD: hme.c,v 1.1.10.1 1999/12/27 18:34:47 wrstuden Exp $	*/
      2       1.1        pk 
      3       1.1        pk /*-
      4       1.1        pk  * Copyright (c) 1999 The NetBSD Foundation, Inc.
      5       1.1        pk  * All rights reserved.
      6       1.1        pk  *
      7       1.1        pk  * This code is derived from software contributed to The NetBSD Foundation
      8       1.1        pk  * by Paul Kranenburg.
      9       1.1        pk  *
     10       1.1        pk  * Redistribution and use in source and binary forms, with or without
     11       1.1        pk  * modification, are permitted provided that the following conditions
     12       1.1        pk  * are met:
     13       1.1        pk  * 1. Redistributions of source code must retain the above copyright
     14       1.1        pk  *    notice, this list of conditions and the following disclaimer.
     15       1.1        pk  * 2. Redistributions in binary form must reproduce the above copyright
     16       1.1        pk  *    notice, this list of conditions and the following disclaimer in the
     17       1.1        pk  *    documentation and/or other materials provided with the distribution.
     18       1.1        pk  * 3. All advertising materials mentioning features or use of this software
     19       1.1        pk  *    must display the following acknowledgement:
     20       1.1        pk  *        This product includes software developed by the NetBSD
     21       1.1        pk  *        Foundation, Inc. and its contributors.
     22       1.1        pk  * 4. Neither the name of The NetBSD Foundation nor the names of its
     23       1.1        pk  *    contributors may be used to endorse or promote products derived
     24       1.1        pk  *    from this software without specific prior written permission.
     25       1.1        pk  *
     26       1.1        pk  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     27       1.1        pk  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     28       1.1        pk  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     29       1.1        pk  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     30       1.1        pk  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     31       1.1        pk  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     32       1.1        pk  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     33       1.1        pk  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     34       1.1        pk  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     35       1.1        pk  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     36       1.1        pk  * POSSIBILITY OF SUCH DAMAGE.
     37       1.1        pk  */
     38       1.1        pk 
     39       1.1        pk /*
     40       1.1        pk  * HME Ethernet module driver.
     41       1.1        pk  */
     42       1.1        pk 
     43       1.1        pk #define HMEDEBUG
     44       1.1        pk 
     45       1.1        pk #include "opt_inet.h"
     46       1.1        pk #include "opt_ns.h"
     47       1.1        pk #include "bpfilter.h"
     48       1.1        pk #include "rnd.h"
     49       1.1        pk 
     50       1.1        pk #include <sys/param.h>
     51       1.1        pk #include <sys/systm.h>
     52  1.1.10.1  wrstuden #include <sys/kernel.h>
     53       1.1        pk #include <sys/mbuf.h>
     54       1.1        pk #include <sys/syslog.h>
     55       1.1        pk #include <sys/socket.h>
     56       1.1        pk #include <sys/device.h>
     57       1.1        pk #include <sys/malloc.h>
     58       1.1        pk #include <sys/ioctl.h>
     59       1.1        pk #include <sys/errno.h>
     60       1.1        pk #if NRND > 0
     61       1.1        pk #include <sys/rnd.h>
     62       1.1        pk #endif
     63       1.1        pk 
     64       1.1        pk #include <net/if.h>
     65       1.1        pk #include <net/if_dl.h>
     66       1.1        pk #include <net/if_ether.h>
     67       1.1        pk #include <net/if_media.h>
     68       1.1        pk 
     69       1.1        pk #ifdef INET
     70       1.1        pk #include <netinet/in.h>
     71       1.1        pk #include <netinet/if_inarp.h>
     72       1.1        pk #include <netinet/in_systm.h>
     73       1.1        pk #include <netinet/in_var.h>
     74       1.1        pk #include <netinet/ip.h>
     75       1.1        pk #endif
     76       1.1        pk 
     77       1.1        pk #ifdef NS
     78       1.1        pk #include <netns/ns.h>
     79       1.1        pk #include <netns/ns_if.h>
     80       1.1        pk #endif
     81       1.1        pk 
     82       1.1        pk #if NBPFILTER > 0
     83       1.1        pk #include <net/bpf.h>
     84       1.1        pk #include <net/bpfdesc.h>
     85       1.1        pk #endif
     86       1.1        pk 
     87       1.1        pk #include <dev/mii/mii.h>
     88       1.1        pk #include <dev/mii/miivar.h>
     89       1.1        pk 
     90       1.1        pk #include <machine/bus.h>
     91       1.1        pk 
     92       1.1        pk #include <dev/ic/hmereg.h>
     93       1.1        pk #include <dev/ic/hmevar.h>
     94       1.1        pk 
     95       1.1        pk void		hme_start __P((struct ifnet *));
     96       1.1        pk void		hme_stop __P((struct hme_softc *));
     97       1.1        pk int		hme_ioctl __P((struct ifnet *, u_long, caddr_t));
     98  1.1.10.1  wrstuden void		hme_tick __P((void *));
     99       1.1        pk void		hme_watchdog __P((struct ifnet *));
    100       1.1        pk void		hme_shutdown __P((void *));
    101       1.1        pk void		hme_init __P((struct hme_softc *));
    102       1.1        pk void		hme_meminit __P((struct hme_softc *));
    103  1.1.10.1  wrstuden void		hme_mifinit __P((struct hme_softc *));
    104       1.1        pk void		hme_reset __P((struct hme_softc *));
    105       1.1        pk void		hme_setladrf __P((struct hme_softc *));
    106       1.1        pk 
    107       1.1        pk /* MII methods & callbacks */
    108       1.1        pk static int	hme_mii_readreg __P((struct device *, int, int));
    109       1.1        pk static void	hme_mii_writereg __P((struct device *, int, int, int));
    110       1.1        pk static void	hme_mii_statchg __P((struct device *));
    111       1.1        pk 
    112       1.1        pk int		hme_mediachange __P((struct ifnet *));
    113       1.1        pk void		hme_mediastatus __P((struct ifnet *, struct ifmediareq *));
    114       1.1        pk 
    115       1.1        pk struct mbuf	*hme_get __P((struct hme_softc *, int, int));
    116       1.1        pk int		hme_put __P((struct hme_softc *, int, struct mbuf *));
    117       1.1        pk void		hme_read __P((struct hme_softc *, int, int));
    118       1.1        pk int		hme_eint __P((struct hme_softc *, u_int));
    119       1.1        pk int		hme_rint __P((struct hme_softc *));
    120       1.1        pk int		hme_tint __P((struct hme_softc *));
    121       1.1        pk 
    122       1.1        pk static int	ether_cmp __P((u_char *, u_char *));
    123       1.1        pk 
    124       1.1        pk /* Default buffer copy routines */
    125       1.1        pk void	hme_copytobuf_contig __P((struct hme_softc *, void *, int, int));
    126       1.1        pk void	hme_copyfrombuf_contig __P((struct hme_softc *, void *, int, int));
    127       1.1        pk void	hme_zerobuf_contig __P((struct hme_softc *, int, int));
    128       1.1        pk 
    129       1.1        pk 
    130       1.1        pk void
    131       1.1        pk hme_config(sc)
    132       1.1        pk 	struct hme_softc *sc;
    133       1.1        pk {
    134       1.1        pk 	struct ifnet *ifp = &sc->sc_ethercom.ec_if;
    135       1.1        pk 	struct mii_data *mii = &sc->sc_mii;
    136  1.1.10.1  wrstuden 	struct mii_softc *child;
    137       1.1        pk 	bus_dma_segment_t seg;
    138       1.1        pk 	bus_size_t size;
    139       1.1        pk 	int rseg, error;
    140       1.1        pk 
    141       1.1        pk 	/*
    142       1.1        pk 	 * HME common initialization.
    143       1.1        pk 	 *
    144       1.1        pk 	 * hme_softc fields that must be initialized by the front-end:
    145       1.1        pk 	 *
    146       1.1        pk 	 * the bus tag:
    147       1.1        pk 	 *	sc_bustag
    148       1.1        pk 	 *
    149       1.1        pk 	 * the dma bus tag:
    150       1.1        pk 	 *	sc_dmatag
    151       1.1        pk 	 *
    152       1.1        pk 	 * the bus handles:
    153       1.1        pk 	 *	sc_seb		(Shared Ethernet Block registers)
    154       1.1        pk 	 *	sc_erx		(Receiver Unit registers)
    155       1.1        pk 	 *	sc_etx		(Transmitter Unit registers)
    156       1.1        pk 	 *	sc_mac		(MAC registers)
    157       1.1        pk 	 *	sc_mif		(Managment Interface registers)
    158       1.1        pk 	 *
    159       1.1        pk 	 * the maximum bus burst size:
    160       1.1        pk 	 *	sc_burst
    161       1.1        pk 	 *
    162       1.1        pk 	 * (notyet:DMA capable memory for the ring descriptors & packet buffers:
    163       1.1        pk 	 *	rb_membase, rb_dmabase)
    164       1.1        pk 	 *
    165       1.1        pk 	 * the local Ethernet address:
    166       1.1        pk 	 *	sc_enaddr
    167       1.1        pk 	 *
    168       1.1        pk 	 */
    169       1.1        pk 
    170       1.1        pk 	/* Make sure the chip is stopped. */
    171       1.1        pk 	hme_stop(sc);
    172       1.1        pk 
    173       1.1        pk 
    174       1.1        pk 	/*
    175       1.1        pk 	 * Allocate descriptors and buffers
    176       1.1        pk 	 * XXX - do all this differently.. and more configurably,
    177       1.1        pk 	 * eg. use things as `dma_load_mbuf()' on transmit,
    178       1.1        pk 	 *     and a pool of `EXTMEM' mbufs (with buffers DMA-mapped
    179       1.1        pk 	 *     all the time) on the reveiver side.
    180       1.1        pk 	 */
    181       1.1        pk #define _HME_NDESC	32
    182  1.1.10.1  wrstuden #define _HME_BUFSZ	1536
    183       1.1        pk 
    184       1.1        pk 	/* Note: the # of descriptors must be a multiple of 16 */
    185       1.1        pk 	sc->sc_rb.rb_ntbuf = _HME_NDESC;
    186       1.1        pk 	sc->sc_rb.rb_nrbuf = _HME_NDESC;
    187       1.1        pk 
    188       1.1        pk 	/*
    189       1.1        pk 	 * Allocate DMA capable memory
    190       1.1        pk 	 * Buffer descriptors must be aligned on a 2048 byte boundary;
    191       1.1        pk 	 * take this into account when calculating the size. Note that
    192       1.1        pk 	 * the maximum number of descriptors (256) occupies 2048 bytes,
    193       1.1        pk 	 * so we allocate that much regardless of _HME_NDESC.
    194       1.1        pk 	 */
    195       1.1        pk 	size =	2048 +					/* TX descriptors */
    196       1.1        pk 		2048 +					/* RX descriptors */
    197       1.1        pk 		sc->sc_rb.rb_ntbuf * _HME_BUFSZ +	/* TX buffers */
    198       1.1        pk 		sc->sc_rb.rb_nrbuf * _HME_BUFSZ;	/* TX buffers */
    199       1.1        pk 	if ((error = bus_dmamem_alloc(sc->sc_dmatag, size,
    200       1.1        pk 				      2048, 0,
    201       1.1        pk 				      &seg, 1, &rseg, BUS_DMA_NOWAIT)) != 0) {
    202       1.1        pk 		printf("%s: DMA buffer alloc error %d\n",
    203       1.1        pk 			sc->sc_dev.dv_xname, error);
    204       1.1        pk 	}
    205       1.1        pk 	sc->sc_rb.rb_dmabase = seg.ds_addr;
    206       1.1        pk 
    207       1.1        pk 	/* Map DMA memory in CPU adressable space */
    208       1.1        pk 	if ((error = bus_dmamem_map(sc->sc_dmatag, &seg, rseg, size,
    209       1.1        pk 				    &sc->sc_rb.rb_membase,
    210       1.1        pk 				    BUS_DMA_NOWAIT|BUS_DMA_COHERENT)) != 0) {
    211       1.1        pk 		printf("%s: DMA buffer map error %d\n",
    212       1.1        pk 			sc->sc_dev.dv_xname, error);
    213       1.1        pk 		bus_dmamem_free(sc->sc_dmatag, &seg, rseg);
    214       1.1        pk 		return;
    215       1.1        pk 	}
    216       1.1        pk 
    217       1.1        pk #if 0
    218       1.1        pk 	/*
    219       1.1        pk 	 * Install default copy routines if not supplied.
    220       1.1        pk 	 */
    221       1.1        pk 	if (sc->sc_copytobuf == NULL)
    222       1.1        pk 		sc->sc_copytobuf = hme_copytobuf_contig;
    223       1.1        pk 
    224       1.1        pk 	if (sc->sc_copyfrombuf == NULL)
    225       1.1        pk 		sc->sc_copyfrombuf = hme_copyfrombuf_contig;
    226       1.1        pk #endif
    227       1.1        pk 
    228  1.1.10.1  wrstuden 	printf(": address %s\n", ether_sprintf(sc->sc_enaddr));
    229  1.1.10.1  wrstuden 
    230       1.1        pk 	/* Initialize ifnet structure. */
    231       1.1        pk 	bcopy(sc->sc_dev.dv_xname, ifp->if_xname, IFNAMSIZ);
    232       1.1        pk 	ifp->if_softc = sc;
    233       1.1        pk 	ifp->if_start = hme_start;
    234       1.1        pk 	ifp->if_ioctl = hme_ioctl;
    235       1.1        pk 	ifp->if_watchdog = hme_watchdog;
    236       1.1        pk 	ifp->if_flags =
    237       1.1        pk 	    IFF_BROADCAST | IFF_SIMPLEX | IFF_NOTRAILERS | IFF_MULTICAST;
    238       1.1        pk 
    239       1.1        pk 	/* Initialize ifmedia structures and MII info */
    240       1.1        pk 	mii->mii_ifp = ifp;
    241       1.1        pk 	mii->mii_readreg = hme_mii_readreg;
    242       1.1        pk 	mii->mii_writereg = hme_mii_writereg;
    243       1.1        pk 	mii->mii_statchg = hme_mii_statchg;
    244       1.1        pk 
    245       1.1        pk 	ifmedia_init(&mii->mii_media, 0, hme_mediachange, hme_mediastatus);
    246       1.1        pk 
    247  1.1.10.1  wrstuden 	hme_mifinit(sc);
    248  1.1.10.1  wrstuden 
    249  1.1.10.1  wrstuden 	mii_phy_probe(&sc->sc_dev, mii, 0xffffffff,
    250  1.1.10.1  wrstuden 			MII_PHY_ANY, MII_OFFSET_ANY);
    251  1.1.10.1  wrstuden 
    252  1.1.10.1  wrstuden 	child = LIST_FIRST(&mii->mii_phys);
    253  1.1.10.1  wrstuden 	if (child == NULL) {
    254       1.1        pk 		/* No PHY attached */
    255       1.1        pk 		ifmedia_add(&sc->sc_media, IFM_ETHER|IFM_MANUAL, 0, NULL);
    256       1.1        pk 		ifmedia_set(&sc->sc_media, IFM_ETHER|IFM_MANUAL);
    257       1.1        pk 	} else {
    258       1.1        pk 		/*
    259  1.1.10.1  wrstuden 		 * Walk along the list of attached MII devices and
    260  1.1.10.1  wrstuden 		 * establish an `MII instance' to `phy number'
    261  1.1.10.1  wrstuden 		 * mapping. We'll use this mapping in media change
    262  1.1.10.1  wrstuden 		 * requests to determine which phy to use to program
    263  1.1.10.1  wrstuden 		 * the MIF configuration register.
    264  1.1.10.1  wrstuden 		 */
    265  1.1.10.1  wrstuden 		for (; child != NULL; child = LIST_NEXT(child, mii_list)) {
    266  1.1.10.1  wrstuden 			/*
    267  1.1.10.1  wrstuden 			 * Note: we support just two PHYs: the built-in
    268  1.1.10.1  wrstuden 			 * internal device and an external on the MII
    269  1.1.10.1  wrstuden 			 * connector.
    270  1.1.10.1  wrstuden 			 */
    271  1.1.10.1  wrstuden 			if (child->mii_phy > 1 || child->mii_inst > 1) {
    272  1.1.10.1  wrstuden 				printf("%s: cannot accomodate MII device %s"
    273  1.1.10.1  wrstuden 				       " at phy %d, instance %d\n",
    274  1.1.10.1  wrstuden 				       sc->sc_dev.dv_xname,
    275  1.1.10.1  wrstuden 				       child->mii_dev.dv_xname,
    276  1.1.10.1  wrstuden 				       child->mii_phy, child->mii_inst);
    277  1.1.10.1  wrstuden 				continue;
    278  1.1.10.1  wrstuden 			}
    279  1.1.10.1  wrstuden 
    280  1.1.10.1  wrstuden 			sc->sc_phys[child->mii_inst] = child->mii_phy;
    281  1.1.10.1  wrstuden 		}
    282  1.1.10.1  wrstuden 
    283  1.1.10.1  wrstuden 		/*
    284       1.1        pk 		 * XXX - we can really do the following ONLY if the
    285       1.1        pk 		 * phy indeed has the auto negotiation capability!!
    286       1.1        pk 		 */
    287       1.1        pk 		ifmedia_set(&sc->sc_media, IFM_ETHER|IFM_AUTO);
    288       1.1        pk 	}
    289       1.1        pk 
    290       1.1        pk 	/* Attach the interface. */
    291       1.1        pk 	if_attach(ifp);
    292       1.1        pk 	ether_ifattach(ifp, sc->sc_enaddr);
    293       1.1        pk 
    294       1.1        pk #if NBPFILTER > 0
    295       1.1        pk 	bpfattach(&ifp->if_bpf, ifp, DLT_EN10MB, sizeof(struct ether_header));
    296       1.1        pk #endif
    297       1.1        pk 
    298       1.1        pk 	sc->sc_sh = shutdownhook_establish(hme_shutdown, sc);
    299       1.1        pk 	if (sc->sc_sh == NULL)
    300       1.1        pk 		panic("hme_config: can't establish shutdownhook");
    301       1.1        pk 
    302       1.1        pk #if 0
    303       1.1        pk 	printf("%s: %d receive buffers, %d transmit buffers\n",
    304       1.1        pk 	    sc->sc_dev.dv_xname, sc->sc_nrbuf, sc->sc_ntbuf);
    305       1.1        pk 	sc->sc_rbufaddr = malloc(sc->sc_nrbuf * sizeof(int), M_DEVBUF,
    306       1.1        pk 					M_WAITOK);
    307       1.1        pk 	sc->sc_tbufaddr = malloc(sc->sc_ntbuf * sizeof(int), M_DEVBUF,
    308       1.1        pk 					M_WAITOK);
    309       1.1        pk #endif
    310       1.1        pk 
    311       1.1        pk #if NRND > 0
    312       1.1        pk 	rnd_attach_source(&sc->rnd_source, sc->sc_dev.dv_xname,
    313       1.1        pk 			  RND_TYPE_NET, 0);
    314       1.1        pk #endif
    315  1.1.10.1  wrstuden 
    316  1.1.10.1  wrstuden 	/* Start the one second clock */
    317  1.1.10.1  wrstuden 	timeout(hme_tick, sc, hz);
    318  1.1.10.1  wrstuden }
    319  1.1.10.1  wrstuden 
    320  1.1.10.1  wrstuden void
    321  1.1.10.1  wrstuden hme_tick(arg)
    322  1.1.10.1  wrstuden 	void *arg;
    323  1.1.10.1  wrstuden {
    324  1.1.10.1  wrstuden 	struct hme_softc *sc = arg;
    325  1.1.10.1  wrstuden 	int s;
    326  1.1.10.1  wrstuden 
    327  1.1.10.1  wrstuden 	s = splnet();
    328  1.1.10.1  wrstuden 	mii_tick(&sc->sc_mii);
    329  1.1.10.1  wrstuden 	splx(s);
    330  1.1.10.1  wrstuden 
    331  1.1.10.1  wrstuden 	timeout(hme_tick, sc, hz);
    332       1.1        pk }
    333       1.1        pk 
    334       1.1        pk void
    335       1.1        pk hme_reset(sc)
    336       1.1        pk 	struct hme_softc *sc;
    337       1.1        pk {
    338       1.1        pk 	int s;
    339       1.1        pk 
    340       1.1        pk 	s = splnet();
    341       1.1        pk 	hme_init(sc);
    342       1.1        pk 	splx(s);
    343       1.1        pk }
    344       1.1        pk 
    345       1.1        pk void
    346       1.1        pk hme_stop(sc)
    347       1.1        pk 	struct hme_softc *sc;
    348       1.1        pk {
    349       1.1        pk 	bus_space_tag_t t = sc->sc_bustag;
    350       1.1        pk 	bus_space_handle_t seb = sc->sc_seb;
    351       1.1        pk 	int n;
    352       1.1        pk 
    353  1.1.10.1  wrstuden 	untimeout(hme_tick, sc);
    354  1.1.10.1  wrstuden 	mii_down(&sc->sc_mii);
    355  1.1.10.1  wrstuden 
    356       1.1        pk 	/* Reset transmitter and receiver */
    357       1.1        pk 	bus_space_write_4(t, seb, HME_SEBI_RESET,
    358       1.1        pk 			  (HME_SEB_RESET_ETX | HME_SEB_RESET_ERX));
    359       1.1        pk 
    360       1.1        pk 	for (n = 0; n < 20; n++) {
    361       1.1        pk 		u_int32_t v = bus_space_read_4(t, seb, HME_SEBI_RESET);
    362       1.1        pk 		if ((v & (HME_SEB_RESET_ETX | HME_SEB_RESET_ERX)) == 0)
    363       1.1        pk 			return;
    364       1.1        pk 		DELAY(20);
    365       1.1        pk 	}
    366       1.1        pk 
    367       1.1        pk 	printf("%s: hme_stop: reset failed\n", sc->sc_dev.dv_xname);
    368       1.1        pk }
    369       1.1        pk 
    370       1.1        pk void
    371       1.1        pk hme_meminit(sc)
    372       1.1        pk 	struct hme_softc *sc;
    373       1.1        pk {
    374       1.1        pk 	bus_addr_t txbufdma, rxbufdma;
    375       1.1        pk 	bus_addr_t dma;
    376       1.1        pk 	caddr_t p;
    377       1.1        pk 	unsigned int ntbuf, nrbuf, i;
    378       1.1        pk 	struct hme_ring *hr = &sc->sc_rb;
    379       1.1        pk 
    380       1.1        pk 	p = hr->rb_membase;
    381       1.1        pk 	dma = hr->rb_dmabase;
    382       1.1        pk 
    383       1.1        pk 	ntbuf = hr->rb_ntbuf;
    384       1.1        pk 	nrbuf = hr->rb_nrbuf;
    385       1.1        pk 
    386       1.1        pk 	/*
    387       1.1        pk 	 * Allocate transmit descriptors
    388       1.1        pk 	 */
    389       1.1        pk 	hr->rb_txd = p;
    390       1.1        pk 	hr->rb_txddma = dma;
    391       1.1        pk 	p += ntbuf * HME_XD_SIZE;
    392       1.1        pk 	dma += ntbuf * HME_XD_SIZE;
    393  1.1.10.1  wrstuden 	/* We have reserved descriptor space until the next 2048 byte boundary.*/
    394  1.1.10.1  wrstuden 	dma = (bus_addr_t)roundup((u_long)dma, 2048);
    395  1.1.10.1  wrstuden 	p = (caddr_t)roundup((u_long)p, 2048);
    396       1.1        pk 
    397       1.1        pk 	/*
    398       1.1        pk 	 * Allocate receive descriptors
    399       1.1        pk 	 */
    400       1.1        pk 	hr->rb_rxd = p;
    401       1.1        pk 	hr->rb_rxddma = dma;
    402       1.1        pk 	p += nrbuf * HME_XD_SIZE;
    403       1.1        pk 	dma += nrbuf * HME_XD_SIZE;
    404  1.1.10.1  wrstuden 	/* Again move forward to the next 2048 byte boundary.*/
    405  1.1.10.1  wrstuden 	dma = (bus_addr_t)roundup((u_long)dma, 2048);
    406  1.1.10.1  wrstuden 	p = (caddr_t)roundup((u_long)p, 2048);
    407       1.1        pk 
    408       1.1        pk 
    409       1.1        pk 	/*
    410       1.1        pk 	 * Allocate transmit buffers
    411       1.1        pk 	 */
    412       1.1        pk 	hr->rb_txbuf = p;
    413       1.1        pk 	txbufdma = dma;
    414       1.1        pk 	p += ntbuf * _HME_BUFSZ;
    415       1.1        pk 	dma += ntbuf * _HME_BUFSZ;
    416       1.1        pk 
    417       1.1        pk 	/*
    418       1.1        pk 	 * Allocate receive buffers
    419       1.1        pk 	 */
    420       1.1        pk 	hr->rb_rxbuf = p;
    421       1.1        pk 	rxbufdma = dma;
    422       1.1        pk 	p += nrbuf * _HME_BUFSZ;
    423       1.1        pk 	dma += nrbuf * _HME_BUFSZ;
    424       1.1        pk 
    425       1.1        pk 	/*
    426       1.1        pk 	 * Initialize transmit buffer descriptors
    427       1.1        pk 	 */
    428       1.1        pk 	for (i = 0; i < ntbuf; i++) {
    429       1.1        pk 		HME_XD_SETADDR(hr->rb_txd, i, txbufdma + i * _HME_BUFSZ);
    430       1.1        pk 		HME_XD_SETFLAGS(hr->rb_txd, i, 0);
    431       1.1        pk 	}
    432       1.1        pk 
    433       1.1        pk 	/*
    434       1.1        pk 	 * Initialize receive buffer descriptors
    435       1.1        pk 	 */
    436       1.1        pk 	for (i = 0; i < nrbuf; i++) {
    437  1.1.10.1  wrstuden 		HME_XD_SETADDR(hr->rb_rxd, i, rxbufdma + i * _HME_BUFSZ);
    438  1.1.10.1  wrstuden 		HME_XD_SETFLAGS(hr->rb_rxd, i,
    439       1.1        pk 				HME_XD_OWN | HME_XD_ENCODE_RSIZE(_HME_BUFSZ));
    440       1.1        pk 	}
    441       1.1        pk 
    442       1.1        pk 	hr->rb_tdhead = hr->rb_tdtail = 0;
    443       1.1        pk 	hr->rb_td_nbusy = 0;
    444       1.1        pk 	hr->rb_rdtail = 0;
    445       1.1        pk }
    446       1.1        pk 
    447       1.1        pk /*
    448       1.1        pk  * Initialization of interface; set up initialization block
    449       1.1        pk  * and transmit/receive descriptor rings.
    450       1.1        pk  */
    451       1.1        pk void
    452       1.1        pk hme_init(sc)
    453       1.1        pk 	struct hme_softc *sc;
    454       1.1        pk {
    455       1.1        pk 	struct ifnet *ifp = &sc->sc_ethercom.ec_if;
    456       1.1        pk 	bus_space_tag_t t = sc->sc_bustag;
    457       1.1        pk 	bus_space_handle_t seb = sc->sc_seb;
    458       1.1        pk 	bus_space_handle_t etx = sc->sc_etx;
    459       1.1        pk 	bus_space_handle_t erx = sc->sc_erx;
    460       1.1        pk 	bus_space_handle_t mac = sc->sc_mac;
    461       1.1        pk 	bus_space_handle_t mif = sc->sc_mif;
    462       1.1        pk 	u_int8_t *ea;
    463       1.1        pk 	u_int32_t v;
    464       1.1        pk 
    465       1.1        pk 	/*
    466       1.1        pk 	 * Initialization sequence. The numbered steps below correspond
    467       1.1        pk 	 * to the sequence outlined in section 6.3.5.1 in the Ethernet
    468       1.1        pk 	 * Channel Engine manual (part of the PCIO manual).
    469       1.1        pk 	 * See also the STP2002-STQ document from Sun Microsystems.
    470       1.1        pk 	 */
    471       1.1        pk 
    472       1.1        pk 	/* step 1 & 2. Reset the Ethernet Channel */
    473       1.1        pk 	hme_stop(sc);
    474       1.1        pk 
    475  1.1.10.1  wrstuden 	/* Re-initialize the MIF */
    476  1.1.10.1  wrstuden 	hme_mifinit(sc);
    477  1.1.10.1  wrstuden 
    478       1.1        pk 	/* Call MI reset function if any */
    479       1.1        pk 	if (sc->sc_hwreset)
    480       1.1        pk 		(*sc->sc_hwreset)(sc);
    481       1.1        pk 
    482       1.1        pk #if 0
    483       1.1        pk 	/* Mask all MIF interrupts, just in case */
    484       1.1        pk 	bus_space_write_4(t, mif, HME_MIFI_IMASK, 0xffff);
    485       1.1        pk #endif
    486       1.1        pk 
    487       1.1        pk 	/* step 3. Setup data structures in host memory */
    488       1.1        pk 	hme_meminit(sc);
    489       1.1        pk 
    490       1.1        pk 	/* step 4. TX MAC registers & counters */
    491       1.1        pk 	bus_space_write_4(t, mac, HME_MACI_NCCNT, 0);
    492       1.1        pk 	bus_space_write_4(t, mac, HME_MACI_FCCNT, 0);
    493       1.1        pk 	bus_space_write_4(t, mac, HME_MACI_EXCNT, 0);
    494       1.1        pk 	bus_space_write_4(t, mac, HME_MACI_LTCNT, 0);
    495       1.1        pk 
    496       1.1        pk 	/* Load station MAC address */
    497       1.1        pk 	ea = sc->sc_enaddr;
    498       1.1        pk 	bus_space_write_4(t, mac, HME_MACI_MACADDR0, (ea[0] << 8) | ea[1]);
    499       1.1        pk 	bus_space_write_4(t, mac, HME_MACI_MACADDR1, (ea[2] << 8) | ea[3]);
    500       1.1        pk 	bus_space_write_4(t, mac, HME_MACI_MACADDR2, (ea[4] << 8) | ea[5]);
    501       1.1        pk 
    502       1.1        pk 	/*
    503       1.1        pk 	 * Init seed for backoff
    504       1.1        pk 	 * (source suggested by manual: low 10 bits of MAC address)
    505       1.1        pk 	 */
    506       1.1        pk 	v = ((ea[4] << 8) | ea[5]) & 0x3fff;
    507       1.1        pk 	bus_space_write_4(t, mac, HME_MACI_RANDSEED, v);
    508       1.1        pk 
    509       1.1        pk 
    510       1.1        pk 	/* Note: Accepting power-on default for other MAC registers here.. */
    511       1.1        pk 
    512       1.1        pk 
    513       1.1        pk 	/* step 5. RX MAC registers & counters */
    514       1.1        pk 	hme_setladrf(sc);
    515       1.1        pk 
    516       1.1        pk 	/* step 6 & 7. Program Descriptor Ring Base Addresses */
    517       1.1        pk 	bus_space_write_4(t, etx, HME_ETXI_RING, sc->sc_rb.rb_txddma);
    518       1.1        pk 	bus_space_write_4(t, etx, HME_ETXI_RSIZE, sc->sc_rb.rb_ntbuf);
    519       1.1        pk 
    520       1.1        pk 	bus_space_write_4(t, erx, HME_ERXI_RING, sc->sc_rb.rb_rxddma);
    521       1.1        pk 
    522       1.1        pk 
    523       1.1        pk 	/* step 8. Global Configuration & Interrupt Mask */
    524       1.1        pk 	bus_space_write_4(t, seb, HME_SEBI_IMASK,
    525  1.1.10.1  wrstuden 			~(
    526  1.1.10.1  wrstuden 			  /*HME_SEB_STAT_GOTFRAME | HME_SEB_STAT_SENTFRAME |*/
    527  1.1.10.1  wrstuden 			  HME_SEB_STAT_HOSTTOTX |
    528  1.1.10.1  wrstuden 			  HME_SEB_STAT_RXTOHOST |
    529  1.1.10.1  wrstuden 			  HME_SEB_STAT_TXALL |
    530  1.1.10.1  wrstuden 			  HME_SEB_STAT_TXPERR |
    531  1.1.10.1  wrstuden 			  HME_SEB_STAT_RCNTEXP |
    532  1.1.10.1  wrstuden 			  HME_SEB_STAT_ALL_ERRORS ));
    533       1.1        pk 
    534       1.1        pk 	switch (sc->sc_burst) {
    535       1.1        pk 	default:
    536       1.1        pk 		v = 0;
    537       1.1        pk 		break;
    538       1.1        pk 	case 16:
    539       1.1        pk 		v = HME_SEB_CFG_BURST16;
    540       1.1        pk 		break;
    541       1.1        pk 	case 32:
    542       1.1        pk 		v = HME_SEB_CFG_BURST32;
    543       1.1        pk 		break;
    544       1.1        pk 	case 64:
    545       1.1        pk 		v = HME_SEB_CFG_BURST64;
    546       1.1        pk 		break;
    547       1.1        pk 	}
    548       1.1        pk 	bus_space_write_4(t, seb, HME_SEBI_CFG, v);
    549       1.1        pk 
    550       1.1        pk 	/* step 9. ETX Configuration: use mostly default values */
    551       1.1        pk 
    552       1.1        pk 	/* Enable DMA */
    553  1.1.10.1  wrstuden 	v = bus_space_read_4(t, etx, HME_ETXI_CFG);
    554       1.1        pk 	v |= HME_ETX_CFG_DMAENABLE;
    555  1.1.10.1  wrstuden 	bus_space_write_4(t, etx, HME_ETXI_CFG, v);
    556  1.1.10.1  wrstuden 
    557  1.1.10.1  wrstuden 	/* Transmit Descriptor ring size: in increments of 16 */
    558  1.1.10.1  wrstuden 	bus_space_write_4(t, etx, HME_ETXI_RSIZE, _HME_NDESC / 16 - 1);
    559       1.1        pk 
    560       1.1        pk 
    561  1.1.10.1  wrstuden 	/* step 10. ERX Configuration */
    562  1.1.10.1  wrstuden 	v = bus_space_read_4(t, erx, HME_ERXI_CFG);
    563       1.1        pk 
    564  1.1.10.1  wrstuden 	/* Encode Receive Descriptor ring size: four possible values */
    565  1.1.10.1  wrstuden 	switch (_HME_NDESC /*XXX*/) {
    566  1.1.10.1  wrstuden 	case 32:
    567  1.1.10.1  wrstuden 		v |= HME_ERX_CFG_RINGSIZE32;
    568  1.1.10.1  wrstuden 		break;
    569  1.1.10.1  wrstuden 	case 64:
    570  1.1.10.1  wrstuden 		v |= HME_ERX_CFG_RINGSIZE64;
    571  1.1.10.1  wrstuden 		break;
    572  1.1.10.1  wrstuden 	case 128:
    573  1.1.10.1  wrstuden 		v |= HME_ERX_CFG_RINGSIZE128;
    574  1.1.10.1  wrstuden 		break;
    575  1.1.10.1  wrstuden 	case 256:
    576  1.1.10.1  wrstuden 		v |= HME_ERX_CFG_RINGSIZE256;
    577  1.1.10.1  wrstuden 		break;
    578  1.1.10.1  wrstuden 	default:
    579  1.1.10.1  wrstuden 		printf("hme: invalid Receive Descriptor ring size\n");
    580  1.1.10.1  wrstuden 		break;
    581  1.1.10.1  wrstuden 	}
    582  1.1.10.1  wrstuden 
    583  1.1.10.1  wrstuden 	/* Enable DMA */
    584       1.1        pk 	v |= HME_ERX_CFG_DMAENABLE;
    585  1.1.10.1  wrstuden 	bus_space_write_4(t, erx, HME_ERXI_CFG, v);
    586       1.1        pk 
    587       1.1        pk 	/* step 11. XIF Configuration */
    588       1.1        pk 	v = bus_space_read_4(t, mac, HME_MACI_XIF);
    589       1.1        pk 	v |= HME_MAC_XIF_OE;
    590  1.1.10.1  wrstuden 	/* If an external transceiver is connected, enable its MII drivers */
    591  1.1.10.1  wrstuden 	if ((bus_space_read_4(t, mif, HME_MIFI_CFG) & HME_MIF_CFG_MDI1) != 0)
    592  1.1.10.1  wrstuden 		v |= HME_MAC_XIF_MIIENABLE;
    593       1.1        pk 	bus_space_write_4(t, mac, HME_MACI_XIF, v);
    594       1.1        pk 
    595  1.1.10.1  wrstuden 
    596       1.1        pk 	/* step 12. RX_MAC Configuration Register */
    597       1.1        pk 	v = bus_space_read_4(t, mac, HME_MACI_RXCFG);
    598       1.1        pk 	v |= HME_MAC_RXCFG_ENABLE;
    599       1.1        pk 	bus_space_write_4(t, mac, HME_MACI_RXCFG, v);
    600       1.1        pk 
    601       1.1        pk 	/* step 13. TX_MAC Configuration Register */
    602       1.1        pk 	v = bus_space_read_4(t, mac, HME_MACI_TXCFG);
    603  1.1.10.1  wrstuden 	v |= (HME_MAC_TXCFG_ENABLE | HME_MAC_TXCFG_DGIVEUP);
    604       1.1        pk 	bus_space_write_4(t, mac, HME_MACI_TXCFG, v);
    605       1.1        pk 
    606       1.1        pk 	/* step 14. Issue Transmit Pending command */
    607       1.1        pk 
    608       1.1        pk 	/* Call MI initialization function if any */
    609       1.1        pk 	if (sc->sc_hwinit)
    610       1.1        pk 		(*sc->sc_hwinit)(sc);
    611       1.1        pk 
    612       1.1        pk 	ifp->if_flags |= IFF_RUNNING;
    613       1.1        pk 	ifp->if_flags &= ~IFF_OACTIVE;
    614       1.1        pk 	ifp->if_timer = 0;
    615       1.1        pk 	hme_start(ifp);
    616       1.1        pk }
    617       1.1        pk 
    618       1.1        pk /*
    619       1.1        pk  * Compare two Ether/802 addresses for equality, inlined and unrolled for
    620       1.1        pk  * speed.
    621       1.1        pk  */
    622       1.1        pk static __inline__ int
    623       1.1        pk ether_cmp(a, b)
    624       1.1        pk 	u_char *a, *b;
    625       1.1        pk {
    626       1.1        pk 
    627       1.1        pk 	if (a[5] != b[5] || a[4] != b[4] || a[3] != b[3] ||
    628       1.1        pk 	    a[2] != b[2] || a[1] != b[1] || a[0] != b[0])
    629       1.1        pk 		return (0);
    630       1.1        pk 	return (1);
    631       1.1        pk }
    632       1.1        pk 
    633       1.1        pk 
    634       1.1        pk /*
    635       1.1        pk  * Routine to copy from mbuf chain to transmit buffer in
    636       1.1        pk  * network buffer memory.
    637       1.1        pk  * Returns the amount of data copied.
    638       1.1        pk  */
    639       1.1        pk int
    640       1.1        pk hme_put(sc, ri, m)
    641       1.1        pk 	struct hme_softc *sc;
    642       1.1        pk 	int ri;			/* Ring index */
    643       1.1        pk 	struct mbuf *m;
    644       1.1        pk {
    645       1.1        pk 	struct mbuf *n;
    646       1.1        pk 	int len, tlen = 0;
    647       1.1        pk 	caddr_t bp;
    648       1.1        pk 
    649       1.1        pk 	bp = sc->sc_rb.rb_txbuf + (ri % sc->sc_rb.rb_ntbuf) * _HME_BUFSZ;
    650       1.1        pk 	for (; m; m = n) {
    651       1.1        pk 		len = m->m_len;
    652       1.1        pk 		if (len == 0) {
    653       1.1        pk 			MFREE(m, n);
    654       1.1        pk 			continue;
    655       1.1        pk 		}
    656       1.1        pk 		bcopy(mtod(m, caddr_t), bp, len);
    657       1.1        pk 		bp += len;
    658       1.1        pk 		tlen += len;
    659       1.1        pk 		MFREE(m, n);
    660       1.1        pk 	}
    661       1.1        pk 	return (tlen);
    662       1.1        pk }
    663       1.1        pk 
    664       1.1        pk /*
    665       1.1        pk  * Pull data off an interface.
    666       1.1        pk  * Len is length of data, with local net header stripped.
    667       1.1        pk  * We copy the data into mbufs.  When full cluster sized units are present
    668       1.1        pk  * we copy into clusters.
    669       1.1        pk  */
    670       1.1        pk struct mbuf *
    671       1.1        pk hme_get(sc, ri, totlen)
    672       1.1        pk 	struct hme_softc *sc;
    673       1.1        pk 	int ri, totlen;
    674       1.1        pk {
    675       1.1        pk 	struct ifnet *ifp = &sc->sc_ethercom.ec_if;
    676       1.1        pk 	struct mbuf *m, *m0, *newm;
    677       1.1        pk 	caddr_t bp;
    678       1.1        pk 	int len;
    679       1.1        pk 
    680       1.1        pk 	MGETHDR(m0, M_DONTWAIT, MT_DATA);
    681       1.1        pk 	if (m0 == 0)
    682       1.1        pk 		return (0);
    683       1.1        pk 	m0->m_pkthdr.rcvif = ifp;
    684       1.1        pk 	m0->m_pkthdr.len = totlen;
    685       1.1        pk 	len = MHLEN;
    686       1.1        pk 	m = m0;
    687       1.1        pk 
    688       1.1        pk 	bp = sc->sc_rb.rb_rxbuf + (ri % sc->sc_rb.rb_nrbuf) * _HME_BUFSZ;
    689       1.1        pk 
    690       1.1        pk 	while (totlen > 0) {
    691       1.1        pk 		if (totlen >= MINCLSIZE) {
    692       1.1        pk 			MCLGET(m, M_DONTWAIT);
    693       1.1        pk 			if ((m->m_flags & M_EXT) == 0)
    694       1.1        pk 				goto bad;
    695       1.1        pk 			len = MCLBYTES;
    696       1.1        pk 		}
    697       1.1        pk 
    698       1.1        pk 		if (m == m0) {
    699       1.1        pk 			caddr_t newdata = (caddr_t)
    700       1.1        pk 			    ALIGN(m->m_data + sizeof(struct ether_header)) -
    701       1.1        pk 			    sizeof(struct ether_header);
    702       1.1        pk 			len -= newdata - m->m_data;
    703       1.1        pk 			m->m_data = newdata;
    704       1.1        pk 		}
    705       1.1        pk 
    706       1.1        pk 		m->m_len = len = min(totlen, len);
    707       1.1        pk 		bcopy(bp, mtod(m, caddr_t), len);
    708       1.1        pk 		bp += len;
    709       1.1        pk 
    710       1.1        pk 		totlen -= len;
    711       1.1        pk 		if (totlen > 0) {
    712       1.1        pk 			MGET(newm, M_DONTWAIT, MT_DATA);
    713       1.1        pk 			if (newm == 0)
    714       1.1        pk 				goto bad;
    715       1.1        pk 			len = MLEN;
    716       1.1        pk 			m = m->m_next = newm;
    717       1.1        pk 		}
    718       1.1        pk 	}
    719       1.1        pk 
    720       1.1        pk 	return (m0);
    721       1.1        pk 
    722       1.1        pk bad:
    723       1.1        pk 	m_freem(m0);
    724       1.1        pk 	return (0);
    725       1.1        pk }
    726       1.1        pk 
    727       1.1        pk /*
    728       1.1        pk  * Pass a packet to the higher levels.
    729       1.1        pk  */
    730       1.1        pk void
    731       1.1        pk hme_read(sc, ix, len)
    732       1.1        pk 	struct hme_softc *sc;
    733       1.1        pk 	int ix, len;
    734       1.1        pk {
    735       1.1        pk 	struct ifnet *ifp = &sc->sc_ethercom.ec_if;
    736       1.1        pk 	struct mbuf *m;
    737       1.1        pk 
    738       1.1        pk 	if (len <= sizeof(struct ether_header) ||
    739       1.1        pk 	    len > ETHERMTU + sizeof(struct ether_header)) {
    740       1.1        pk #ifdef HMEDEBUG
    741       1.1        pk 		printf("%s: invalid packet size %d; dropping\n",
    742       1.1        pk 		    sc->sc_dev.dv_xname, len);
    743       1.1        pk #endif
    744       1.1        pk 		ifp->if_ierrors++;
    745       1.1        pk 		return;
    746       1.1        pk 	}
    747       1.1        pk 
    748       1.1        pk 	/* Pull packet off interface. */
    749       1.1        pk 	m = hme_get(sc, ix, len);
    750       1.1        pk 	if (m == 0) {
    751       1.1        pk 		ifp->if_ierrors++;
    752       1.1        pk 		return;
    753       1.1        pk 	}
    754       1.1        pk 
    755       1.1        pk 	ifp->if_ipackets++;
    756       1.1        pk 
    757       1.1        pk #if NBPFILTER > 0
    758       1.1        pk 	/*
    759       1.1        pk 	 * Check if there's a BPF listener on this interface.
    760       1.1        pk 	 * If so, hand off the raw packet to BPF.
    761       1.1        pk 	 */
    762       1.1        pk 	if (ifp->if_bpf) {
    763  1.1.10.1  wrstuden 		struct ether_header *eh;
    764  1.1.10.1  wrstuden 
    765       1.1        pk 		bpf_mtap(ifp->if_bpf, m);
    766       1.1        pk 
    767       1.1        pk 		/*
    768       1.1        pk 		 * Note that the interface cannot be in promiscuous mode if
    769       1.1        pk 		 * there are no BPF listeners.  And if we are in promiscuous
    770       1.1        pk 		 * mode, we have to check if this packet is really ours.
    771       1.1        pk 		 */
    772  1.1.10.1  wrstuden 
    773  1.1.10.1  wrstuden 		/* We assume that the header fit entirely in one mbuf. */
    774  1.1.10.1  wrstuden 		eh = mtod(m, struct ether_header *);
    775  1.1.10.1  wrstuden 
    776       1.1        pk 		if ((ifp->if_flags & IFF_PROMISC) != 0 &&
    777       1.1        pk 		    (eh->ether_dhost[0] & 1) == 0 && /* !mcast and !bcast */
    778  1.1.10.1  wrstuden 		    ether_cmp(eh->ether_dhost, sc->sc_enaddr) == 0) {
    779       1.1        pk 			m_freem(m);
    780       1.1        pk 			return;
    781       1.1        pk 		}
    782       1.1        pk 	}
    783       1.1        pk #endif
    784       1.1        pk 
    785       1.1        pk 	/* Pass the packet up. */
    786       1.1        pk 	(*ifp->if_input)(ifp, m);
    787       1.1        pk }
    788       1.1        pk 
    789       1.1        pk void
    790       1.1        pk hme_start(ifp)
    791       1.1        pk 	struct ifnet *ifp;
    792       1.1        pk {
    793       1.1        pk 	struct hme_softc *sc = (struct hme_softc *)ifp->if_softc;
    794       1.1        pk 	caddr_t txd = sc->sc_rb.rb_txd;
    795       1.1        pk 	struct mbuf *m;
    796       1.1        pk 	unsigned int ri, len;
    797       1.1        pk 	unsigned int ntbuf = sc->sc_rb.rb_ntbuf;
    798       1.1        pk 
    799       1.1        pk 	if ((ifp->if_flags & (IFF_RUNNING | IFF_OACTIVE)) != IFF_RUNNING)
    800       1.1        pk 		return;
    801       1.1        pk 
    802       1.1        pk 	ri = sc->sc_rb.rb_tdhead;
    803       1.1        pk 
    804       1.1        pk 	for (;;) {
    805       1.1        pk 		IF_DEQUEUE(&ifp->if_snd, m);
    806       1.1        pk 		if (m == 0)
    807       1.1        pk 			break;
    808       1.1        pk 
    809       1.1        pk #if NBPFILTER > 0
    810       1.1        pk 		/*
    811       1.1        pk 		 * If BPF is listening on this interface, let it see the
    812       1.1        pk 		 * packet before we commit it to the wire.
    813       1.1        pk 		 */
    814       1.1        pk 		if (ifp->if_bpf)
    815       1.1        pk 			bpf_mtap(ifp->if_bpf, m);
    816       1.1        pk #endif
    817       1.1        pk 
    818       1.1        pk 		/*
    819       1.1        pk 		 * Copy the mbuf chain into the transmit buffer.
    820       1.1        pk 		 */
    821       1.1        pk 		len = hme_put(sc, ri, m);
    822       1.1        pk 
    823       1.1        pk 		/*
    824       1.1        pk 		 * Initialize transmit registers and start transmission
    825       1.1        pk 		 */
    826       1.1        pk 		HME_XD_SETFLAGS(txd, ri,
    827       1.1        pk 			HME_XD_OWN | HME_XD_SOP | HME_XD_EOP |
    828       1.1        pk 			HME_XD_ENCODE_TSIZE(len));
    829       1.1        pk 
    830  1.1.10.1  wrstuden 		/*if (sc->sc_rb.rb_td_nbusy <= 0)*/
    831       1.1        pk 		bus_space_write_4(sc->sc_bustag, sc->sc_etx, HME_ETXI_PENDING,
    832       1.1        pk 				  HME_ETX_TP_DMAWAKEUP);
    833       1.1        pk 
    834       1.1        pk 		if (++ri == ntbuf)
    835       1.1        pk 			ri = 0;
    836       1.1        pk 
    837       1.1        pk 		if (++sc->sc_rb.rb_td_nbusy == ntbuf) {
    838       1.1        pk 			ifp->if_flags |= IFF_OACTIVE;
    839       1.1        pk 			break;
    840       1.1        pk 		}
    841       1.1        pk 	}
    842       1.1        pk 
    843       1.1        pk 	sc->sc_rb.rb_tdhead = ri;
    844       1.1        pk }
    845       1.1        pk 
    846       1.1        pk /*
    847       1.1        pk  * Transmit interrupt.
    848       1.1        pk  */
    849       1.1        pk int
    850       1.1        pk hme_tint(sc)
    851       1.1        pk 	struct hme_softc *sc;
    852       1.1        pk {
    853       1.1        pk 	struct ifnet *ifp = &sc->sc_ethercom.ec_if;
    854       1.1        pk 	bus_space_tag_t t = sc->sc_bustag;
    855       1.1        pk 	bus_space_handle_t mac = sc->sc_mac;
    856       1.1        pk 	unsigned int ri, txflags;
    857       1.1        pk 
    858       1.1        pk 	/*
    859       1.1        pk 	 * Unload collision counters
    860       1.1        pk 	 */
    861       1.1        pk 	ifp->if_collisions +=
    862       1.1        pk 		bus_space_read_4(t, mac, HME_MACI_NCCNT) +
    863       1.1        pk 		bus_space_read_4(t, mac, HME_MACI_FCCNT) +
    864       1.1        pk 		bus_space_read_4(t, mac, HME_MACI_EXCNT) +
    865       1.1        pk 		bus_space_read_4(t, mac, HME_MACI_LTCNT);
    866       1.1        pk 
    867       1.1        pk 	/*
    868       1.1        pk 	 * then clear the hardware counters.
    869       1.1        pk 	 */
    870       1.1        pk 	bus_space_write_4(t, mac, HME_MACI_NCCNT, 0);
    871       1.1        pk 	bus_space_write_4(t, mac, HME_MACI_FCCNT, 0);
    872       1.1        pk 	bus_space_write_4(t, mac, HME_MACI_EXCNT, 0);
    873       1.1        pk 	bus_space_write_4(t, mac, HME_MACI_LTCNT, 0);
    874       1.1        pk 
    875       1.1        pk 	/* Fetch current position in the transmit ring */
    876       1.1        pk 	ri = sc->sc_rb.rb_tdtail;
    877       1.1        pk 
    878       1.1        pk 	for (;;) {
    879       1.1        pk 		if (sc->sc_rb.rb_td_nbusy <= 0)
    880       1.1        pk 			break;
    881       1.1        pk 
    882       1.1        pk 		txflags = HME_XD_GETFLAGS(sc->sc_rb.rb_txd, ri);
    883       1.1        pk 
    884       1.1        pk 		if (txflags & HME_XD_OWN)
    885       1.1        pk 			break;
    886       1.1        pk 
    887       1.1        pk 		ifp->if_flags &= ~IFF_OACTIVE;
    888       1.1        pk 		ifp->if_opackets++;
    889       1.1        pk 
    890  1.1.10.1  wrstuden 		if (++ri == sc->sc_rb.rb_ntbuf)
    891       1.1        pk 			ri = 0;
    892       1.1        pk 
    893       1.1        pk 		--sc->sc_rb.rb_td_nbusy;
    894       1.1        pk 	}
    895       1.1        pk 
    896  1.1.10.1  wrstuden 	/* Update ring */
    897       1.1        pk 	sc->sc_rb.rb_tdtail = ri;
    898       1.1        pk 
    899       1.1        pk 	hme_start(ifp);
    900       1.1        pk 
    901       1.1        pk 	if (sc->sc_rb.rb_td_nbusy == 0)
    902       1.1        pk 		ifp->if_timer = 0;
    903       1.1        pk 
    904       1.1        pk 	return (1);
    905       1.1        pk }
    906       1.1        pk 
    907       1.1        pk /*
    908       1.1        pk  * Receive interrupt.
    909       1.1        pk  */
    910       1.1        pk int
    911       1.1        pk hme_rint(sc)
    912       1.1        pk 	struct hme_softc *sc;
    913       1.1        pk {
    914       1.1        pk 	caddr_t xdr = sc->sc_rb.rb_rxd;
    915       1.1        pk 	unsigned int nrbuf = sc->sc_rb.rb_nrbuf;
    916       1.1        pk 	unsigned int ri, len;
    917       1.1        pk 	u_int32_t flags;
    918       1.1        pk 
    919       1.1        pk 	ri = sc->sc_rb.rb_rdtail;
    920       1.1        pk 
    921       1.1        pk 	/*
    922       1.1        pk 	 * Process all buffers with valid data.
    923       1.1        pk 	 */
    924       1.1        pk 	for (;;) {
    925       1.1        pk 		flags = HME_XD_GETFLAGS(xdr, ri);
    926       1.1        pk 		if (flags & HME_XD_OWN)
    927       1.1        pk 			break;
    928       1.1        pk 
    929  1.1.10.1  wrstuden 		if (flags & HME_XD_OFL) {
    930  1.1.10.1  wrstuden 			printf("%s: buffer overflow, ri=%d; flags=0x%x\n",
    931  1.1.10.1  wrstuden 					sc->sc_dev.dv_xname, ri, flags);
    932  1.1.10.1  wrstuden 		} else {
    933  1.1.10.1  wrstuden 			len = HME_XD_DECODE_RSIZE(flags);
    934  1.1.10.1  wrstuden 			hme_read(sc, ri, len);
    935  1.1.10.1  wrstuden 		}
    936       1.1        pk 
    937       1.1        pk 		/* This buffer can be used by the hardware again */
    938       1.1        pk 		HME_XD_SETFLAGS(xdr, ri,
    939       1.1        pk 				HME_XD_OWN | HME_XD_ENCODE_RSIZE(_HME_BUFSZ));
    940       1.1        pk 
    941       1.1        pk 		if (++ri == nrbuf)
    942       1.1        pk 			ri = 0;
    943       1.1        pk 	}
    944       1.1        pk 
    945       1.1        pk 	sc->sc_rb.rb_rdtail = ri;
    946       1.1        pk 
    947       1.1        pk 	return (1);
    948       1.1        pk }
    949       1.1        pk 
    950       1.1        pk int
    951       1.1        pk hme_eint(sc, status)
    952       1.1        pk 	struct hme_softc *sc;
    953       1.1        pk 	u_int status;
    954       1.1        pk {
    955       1.1        pk 	char bits[128];
    956       1.1        pk 
    957       1.1        pk 	if ((status & HME_SEB_STAT_MIFIRQ) != 0) {
    958       1.1        pk 		printf("%s: XXXlink status changed\n", sc->sc_dev.dv_xname);
    959       1.1        pk 		return (1);
    960       1.1        pk 	}
    961       1.1        pk 
    962       1.1        pk 	printf("%s: status=%s\n", sc->sc_dev.dv_xname,
    963       1.1        pk 		bitmask_snprintf(status, HME_SEB_STAT_BITS, bits,sizeof(bits)));
    964       1.1        pk 	return (1);
    965       1.1        pk }
    966       1.1        pk 
    967       1.1        pk int
    968       1.1        pk hme_intr(v)
    969       1.1        pk 	void *v;
    970       1.1        pk {
    971       1.1        pk 	struct hme_softc *sc = (struct hme_softc *)v;
    972       1.1        pk 	bus_space_tag_t t = sc->sc_bustag;
    973       1.1        pk 	bus_space_handle_t seb = sc->sc_seb;
    974       1.1        pk 	u_int32_t status;
    975       1.1        pk 	int r = 0;
    976       1.1        pk 
    977       1.1        pk 	status = bus_space_read_4(t, seb, HME_SEBI_STAT);
    978       1.1        pk 
    979       1.1        pk 	if ((status & HME_SEB_STAT_ALL_ERRORS) != 0)
    980       1.1        pk 		r |= hme_eint(sc, status);
    981       1.1        pk 
    982       1.1        pk 	if ((status & (HME_SEB_STAT_TXALL | HME_SEB_STAT_HOSTTOTX)) != 0)
    983       1.1        pk 		r |= hme_tint(sc);
    984       1.1        pk 
    985       1.1        pk 	if ((status & HME_SEB_STAT_RXTOHOST) != 0)
    986       1.1        pk 		r |= hme_rint(sc);
    987       1.1        pk 
    988       1.1        pk 	return (r);
    989       1.1        pk }
    990       1.1        pk 
    991       1.1        pk 
    992       1.1        pk void
    993       1.1        pk hme_watchdog(ifp)
    994       1.1        pk 	struct ifnet *ifp;
    995       1.1        pk {
    996       1.1        pk 	struct hme_softc *sc = ifp->if_softc;
    997       1.1        pk 
    998       1.1        pk 	log(LOG_ERR, "%s: device timeout\n", sc->sc_dev.dv_xname);
    999       1.1        pk 	++ifp->if_oerrors;
   1000       1.1        pk 
   1001       1.1        pk 	hme_reset(sc);
   1002       1.1        pk }
   1003       1.1        pk 
   1004       1.1        pk /*
   1005  1.1.10.1  wrstuden  * Initialize the MII Management Interface
   1006  1.1.10.1  wrstuden  */
   1007  1.1.10.1  wrstuden void
   1008  1.1.10.1  wrstuden hme_mifinit(sc)
   1009  1.1.10.1  wrstuden 	struct hme_softc *sc;
   1010  1.1.10.1  wrstuden {
   1011  1.1.10.1  wrstuden 	bus_space_tag_t t = sc->sc_bustag;
   1012  1.1.10.1  wrstuden 	bus_space_handle_t mif = sc->sc_mif;
   1013  1.1.10.1  wrstuden 	u_int32_t v;
   1014  1.1.10.1  wrstuden 
   1015  1.1.10.1  wrstuden 	/* Configure the MIF in frame mode */
   1016  1.1.10.1  wrstuden 	v = bus_space_read_4(t, mif, HME_MIFI_CFG);
   1017  1.1.10.1  wrstuden 	v &= ~HME_MIF_CFG_BBMODE;
   1018  1.1.10.1  wrstuden 	bus_space_write_4(t, mif, HME_MIFI_CFG, v);
   1019  1.1.10.1  wrstuden }
   1020  1.1.10.1  wrstuden 
   1021  1.1.10.1  wrstuden /*
   1022       1.1        pk  * MII interface
   1023       1.1        pk  */
   1024       1.1        pk static int
   1025       1.1        pk hme_mii_readreg(self, phy, reg)
   1026       1.1        pk 	struct device *self;
   1027       1.1        pk 	int phy, reg;
   1028       1.1        pk {
   1029       1.1        pk 	struct hme_softc *sc = (void *)self;
   1030       1.1        pk 	bus_space_tag_t t = sc->sc_bustag;
   1031       1.1        pk 	bus_space_handle_t mif = sc->sc_mif;
   1032       1.1        pk 	int n;
   1033       1.1        pk 	u_int32_t v;
   1034       1.1        pk 
   1035  1.1.10.1  wrstuden 	/* Select the desired PHY in the MIF configuration register */
   1036  1.1.10.1  wrstuden 	v = bus_space_read_4(t, mif, HME_MIFI_CFG);
   1037  1.1.10.1  wrstuden 	/* Clear PHY select bit */
   1038  1.1.10.1  wrstuden 	v &= ~HME_MIF_CFG_PHY;
   1039  1.1.10.1  wrstuden 	if (phy == HME_PHYAD_EXTERNAL)
   1040  1.1.10.1  wrstuden 		/* Set PHY select bit to get at external device */
   1041  1.1.10.1  wrstuden 		v |= HME_MIF_CFG_PHY;
   1042  1.1.10.1  wrstuden 	bus_space_write_4(t, mif, HME_MIFI_CFG, v);
   1043  1.1.10.1  wrstuden 
   1044       1.1        pk 	/* Construct the frame command */
   1045       1.1        pk 	v = (MII_COMMAND_START << HME_MIF_FO_ST_SHIFT) |
   1046       1.1        pk 	    HME_MIF_FO_TAMSB |
   1047       1.1        pk 	    (MII_COMMAND_READ << HME_MIF_FO_OPC_SHIFT) |
   1048       1.1        pk 	    (phy << HME_MIF_FO_PHYAD_SHIFT) |
   1049       1.1        pk 	    (reg << HME_MIF_FO_REGAD_SHIFT);
   1050       1.1        pk 
   1051       1.1        pk 	bus_space_write_4(t, mif, HME_MIFI_FO, v);
   1052       1.1        pk 	for (n = 0; n < 100; n++) {
   1053  1.1.10.1  wrstuden 		DELAY(1);
   1054       1.1        pk 		v = bus_space_read_4(t, mif, HME_MIFI_FO);
   1055       1.1        pk 		if (v & HME_MIF_FO_TALSB)
   1056       1.1        pk 			return (v & HME_MIF_FO_DATA);
   1057       1.1        pk 	}
   1058       1.1        pk 
   1059       1.1        pk 	printf("%s: mii_read timeout\n", sc->sc_dev.dv_xname);
   1060       1.1        pk 	return (0);
   1061       1.1        pk }
   1062       1.1        pk 
   1063       1.1        pk static void
   1064       1.1        pk hme_mii_writereg(self, phy, reg, val)
   1065       1.1        pk 	struct device *self;
   1066       1.1        pk 	int phy, reg, val;
   1067       1.1        pk {
   1068       1.1        pk 	struct hme_softc *sc = (void *)self;
   1069       1.1        pk 	bus_space_tag_t t = sc->sc_bustag;
   1070       1.1        pk 	bus_space_handle_t mif = sc->sc_mif;
   1071       1.1        pk 	int n;
   1072       1.1        pk 	u_int32_t v;
   1073       1.1        pk 
   1074  1.1.10.1  wrstuden 	/* Select the desired PHY in the MIF configuration register */
   1075  1.1.10.1  wrstuden 	v = bus_space_read_4(t, mif, HME_MIFI_CFG);
   1076  1.1.10.1  wrstuden 	/* Clear PHY select bit */
   1077  1.1.10.1  wrstuden 	v &= ~HME_MIF_CFG_PHY;
   1078  1.1.10.1  wrstuden 	if (phy == HME_PHYAD_EXTERNAL)
   1079  1.1.10.1  wrstuden 		/* Set PHY select bit to get at external device */
   1080  1.1.10.1  wrstuden 		v |= HME_MIF_CFG_PHY;
   1081  1.1.10.1  wrstuden 	bus_space_write_4(t, mif, HME_MIFI_CFG, v);
   1082  1.1.10.1  wrstuden 
   1083       1.1        pk 	/* Construct the frame command */
   1084       1.1        pk 	v = (MII_COMMAND_START << HME_MIF_FO_ST_SHIFT)	|
   1085       1.1        pk 	    HME_MIF_FO_TAMSB				|
   1086       1.1        pk 	    (MII_COMMAND_WRITE << HME_MIF_FO_OPC_SHIFT)	|
   1087       1.1        pk 	    (phy << HME_MIF_FO_PHYAD_SHIFT)		|
   1088       1.1        pk 	    (reg << HME_MIF_FO_REGAD_SHIFT)		|
   1089       1.1        pk 	    (val & HME_MIF_FO_DATA);
   1090       1.1        pk 
   1091       1.1        pk 	bus_space_write_4(t, mif, HME_MIFI_FO, v);
   1092       1.1        pk 	for (n = 0; n < 100; n++) {
   1093  1.1.10.1  wrstuden 		DELAY(1);
   1094       1.1        pk 		v = bus_space_read_4(t, mif, HME_MIFI_FO);
   1095       1.1        pk 		if (v & HME_MIF_FO_TALSB)
   1096       1.1        pk 			return;
   1097       1.1        pk 	}
   1098       1.1        pk 
   1099  1.1.10.1  wrstuden 	printf("%s: mii_write timeout\n", sc->sc_dev.dv_xname);
   1100       1.1        pk }
   1101       1.1        pk 
   1102       1.1        pk static void
   1103       1.1        pk hme_mii_statchg(dev)
   1104       1.1        pk 	struct device *dev;
   1105       1.1        pk {
   1106  1.1.10.1  wrstuden 	struct hme_softc *sc = (void *)dev;
   1107  1.1.10.1  wrstuden 	int instance = IFM_INST(sc->sc_mii.mii_media.ifm_cur->ifm_media);
   1108  1.1.10.1  wrstuden 	int phy = sc->sc_phys[instance];
   1109       1.1        pk 	bus_space_tag_t t = sc->sc_bustag;
   1110  1.1.10.1  wrstuden 	bus_space_handle_t mif = sc->sc_mif;
   1111       1.1        pk 	bus_space_handle_t mac = sc->sc_mac;
   1112       1.1        pk 	u_int32_t v;
   1113       1.1        pk 
   1114  1.1.10.1  wrstuden #ifdef HMEDEBUG
   1115  1.1.10.1  wrstuden 	if (sc->sc_debug)
   1116  1.1.10.1  wrstuden 		printf("hme_mii_statchg: status change: phy = %d\n", phy);
   1117  1.1.10.1  wrstuden #endif
   1118       1.1        pk 
   1119  1.1.10.1  wrstuden 	/* Select the current PHY in the MIF configuration register */
   1120  1.1.10.1  wrstuden 	v = bus_space_read_4(t, mif, HME_MIFI_CFG);
   1121  1.1.10.1  wrstuden 	v &= ~HME_MIF_CFG_PHY;
   1122  1.1.10.1  wrstuden 	if (phy == HME_PHYAD_EXTERNAL)
   1123  1.1.10.1  wrstuden 		v |= HME_MIF_CFG_PHY;
   1124  1.1.10.1  wrstuden 	bus_space_write_4(t, mif, HME_MIFI_CFG, v);
   1125       1.1        pk 
   1126  1.1.10.1  wrstuden 	/* Set the MAC Full Duplex bit appropriately */
   1127       1.1        pk 	v = bus_space_read_4(t, mac, HME_MACI_TXCFG);
   1128       1.1        pk 	if ((IFM_OPTIONS(sc->sc_mii.mii_media_active) & IFM_FDX) != 0)
   1129       1.1        pk 		v |= HME_MAC_TXCFG_FULLDPLX;
   1130       1.1        pk 	else
   1131       1.1        pk 		v &= ~HME_MAC_TXCFG_FULLDPLX;
   1132       1.1        pk 	bus_space_write_4(t, mac, HME_MACI_TXCFG, v);
   1133       1.1        pk 
   1134  1.1.10.1  wrstuden 	/* If an external transceiver is selected, enable its MII drivers */
   1135  1.1.10.1  wrstuden 	v = bus_space_read_4(t, mac, HME_MACI_XIF);
   1136  1.1.10.1  wrstuden 	v &= ~HME_MAC_XIF_MIIENABLE;
   1137  1.1.10.1  wrstuden 	if (phy == HME_PHYAD_EXTERNAL)
   1138  1.1.10.1  wrstuden 		v |= HME_MAC_XIF_MIIENABLE;
   1139  1.1.10.1  wrstuden 	bus_space_write_4(t, mac, HME_MACI_XIF, v);
   1140  1.1.10.1  wrstuden }
   1141  1.1.10.1  wrstuden 
   1142  1.1.10.1  wrstuden int
   1143  1.1.10.1  wrstuden hme_mediachange(ifp)
   1144  1.1.10.1  wrstuden 	struct ifnet *ifp;
   1145  1.1.10.1  wrstuden {
   1146  1.1.10.1  wrstuden 	struct hme_softc *sc = ifp->if_softc;
   1147  1.1.10.1  wrstuden 
   1148  1.1.10.1  wrstuden 	if (IFM_TYPE(sc->sc_media.ifm_media) != IFM_ETHER)
   1149  1.1.10.1  wrstuden 		return (EINVAL);
   1150  1.1.10.1  wrstuden 
   1151  1.1.10.1  wrstuden 	return (mii_mediachg(&sc->sc_mii));
   1152       1.1        pk }
   1153       1.1        pk 
   1154       1.1        pk void
   1155       1.1        pk hme_mediastatus(ifp, ifmr)
   1156       1.1        pk 	struct ifnet *ifp;
   1157       1.1        pk 	struct ifmediareq *ifmr;
   1158       1.1        pk {
   1159       1.1        pk 	struct hme_softc *sc = ifp->if_softc;
   1160       1.1        pk 
   1161       1.1        pk 	if ((ifp->if_flags & IFF_UP) == 0)
   1162       1.1        pk 		return;
   1163       1.1        pk 
   1164       1.1        pk 	mii_pollstat(&sc->sc_mii);
   1165       1.1        pk 	ifmr->ifm_active = sc->sc_mii.mii_media_active;
   1166       1.1        pk 	ifmr->ifm_status = sc->sc_mii.mii_media_status;
   1167       1.1        pk }
   1168       1.1        pk 
   1169       1.1        pk /*
   1170       1.1        pk  * Process an ioctl request.
   1171       1.1        pk  */
   1172       1.1        pk int
   1173       1.1        pk hme_ioctl(ifp, cmd, data)
   1174       1.1        pk 	struct ifnet *ifp;
   1175       1.1        pk 	u_long cmd;
   1176       1.1        pk 	caddr_t data;
   1177       1.1        pk {
   1178       1.1        pk 	struct hme_softc *sc = ifp->if_softc;
   1179       1.1        pk 	struct ifaddr *ifa = (struct ifaddr *)data;
   1180       1.1        pk 	struct ifreq *ifr = (struct ifreq *)data;
   1181       1.1        pk 	int s, error = 0;
   1182       1.1        pk 
   1183       1.1        pk 	s = splnet();
   1184       1.1        pk 
   1185       1.1        pk 	switch (cmd) {
   1186       1.1        pk 
   1187       1.1        pk 	case SIOCSIFADDR:
   1188       1.1        pk 		ifp->if_flags |= IFF_UP;
   1189       1.1        pk 
   1190       1.1        pk 		switch (ifa->ifa_addr->sa_family) {
   1191       1.1        pk #ifdef INET
   1192       1.1        pk 		case AF_INET:
   1193       1.1        pk 			hme_init(sc);
   1194       1.1        pk 			arp_ifinit(ifp, ifa);
   1195       1.1        pk 			break;
   1196       1.1        pk #endif
   1197       1.1        pk #ifdef NS
   1198       1.1        pk 		case AF_NS:
   1199       1.1        pk 		    {
   1200       1.1        pk 			struct ns_addr *ina = &IA_SNS(ifa)->sns_addr;
   1201       1.1        pk 
   1202       1.1        pk 			if (ns_nullhost(*ina))
   1203       1.1        pk 				ina->x_host =
   1204       1.1        pk 				    *(union ns_host *)LLADDR(ifp->if_sadl);
   1205       1.1        pk 			else {
   1206       1.1        pk 				bcopy(ina->x_host.c_host,
   1207       1.1        pk 				    LLADDR(ifp->if_sadl),
   1208       1.1        pk 				    sizeof(sc->sc_enaddr));
   1209       1.1        pk 			}
   1210       1.1        pk 			/* Set new address. */
   1211       1.1        pk 			hme_init(sc);
   1212       1.1        pk 			break;
   1213       1.1        pk 		    }
   1214       1.1        pk #endif
   1215       1.1        pk 		default:
   1216       1.1        pk 			hme_init(sc);
   1217       1.1        pk 			break;
   1218       1.1        pk 		}
   1219       1.1        pk 		break;
   1220       1.1        pk 
   1221       1.1        pk 	case SIOCSIFFLAGS:
   1222       1.1        pk 		if ((ifp->if_flags & IFF_UP) == 0 &&
   1223       1.1        pk 		    (ifp->if_flags & IFF_RUNNING) != 0) {
   1224       1.1        pk 			/*
   1225       1.1        pk 			 * If interface is marked down and it is running, then
   1226       1.1        pk 			 * stop it.
   1227       1.1        pk 			 */
   1228       1.1        pk 			hme_stop(sc);
   1229       1.1        pk 			ifp->if_flags &= ~IFF_RUNNING;
   1230       1.1        pk 		} else if ((ifp->if_flags & IFF_UP) != 0 &&
   1231       1.1        pk 		    	   (ifp->if_flags & IFF_RUNNING) == 0) {
   1232       1.1        pk 			/*
   1233       1.1        pk 			 * If interface is marked up and it is stopped, then
   1234       1.1        pk 			 * start it.
   1235       1.1        pk 			 */
   1236       1.1        pk 			hme_init(sc);
   1237       1.1        pk 		} else if ((ifp->if_flags & IFF_UP) != 0) {
   1238       1.1        pk 			/*
   1239       1.1        pk 			 * Reset the interface to pick up changes in any other
   1240       1.1        pk 			 * flags that affect hardware registers.
   1241       1.1        pk 			 */
   1242       1.1        pk 			/*hme_stop(sc);*/
   1243       1.1        pk 			hme_init(sc);
   1244       1.1        pk 		}
   1245       1.1        pk #ifdef HMEDEBUG
   1246       1.1        pk 		sc->sc_debug = (ifp->if_flags & IFF_DEBUG) != 0 ? 1 : 0;
   1247       1.1        pk #endif
   1248       1.1        pk 		break;
   1249       1.1        pk 
   1250       1.1        pk 	case SIOCADDMULTI:
   1251       1.1        pk 	case SIOCDELMULTI:
   1252       1.1        pk 		error = (cmd == SIOCADDMULTI) ?
   1253       1.1        pk 		    ether_addmulti(ifr, &sc->sc_ethercom) :
   1254       1.1        pk 		    ether_delmulti(ifr, &sc->sc_ethercom);
   1255       1.1        pk 
   1256       1.1        pk 		if (error == ENETRESET) {
   1257       1.1        pk 			/*
   1258       1.1        pk 			 * Multicast list has changed; set the hardware filter
   1259       1.1        pk 			 * accordingly.
   1260       1.1        pk 			 */
   1261       1.1        pk 			hme_setladrf(sc);
   1262       1.1        pk 			error = 0;
   1263       1.1        pk 		}
   1264       1.1        pk 		break;
   1265       1.1        pk 
   1266       1.1        pk 	case SIOCGIFMEDIA:
   1267       1.1        pk 	case SIOCSIFMEDIA:
   1268       1.1        pk 		error = ifmedia_ioctl(ifp, ifr, &sc->sc_media, cmd);
   1269       1.1        pk 		break;
   1270       1.1        pk 
   1271       1.1        pk 	default:
   1272       1.1        pk 		error = EINVAL;
   1273       1.1        pk 		break;
   1274       1.1        pk 	}
   1275       1.1        pk 
   1276       1.1        pk 	splx(s);
   1277       1.1        pk 	return (error);
   1278       1.1        pk }
   1279       1.1        pk 
   1280       1.1        pk void
   1281       1.1        pk hme_shutdown(arg)
   1282       1.1        pk 	void *arg;
   1283       1.1        pk {
   1284       1.1        pk 
   1285       1.1        pk 	hme_stop((struct hme_softc *)arg);
   1286       1.1        pk }
   1287       1.1        pk 
   1288       1.1        pk /*
   1289       1.1        pk  * Set up the logical address filter.
   1290       1.1        pk  */
   1291       1.1        pk void
   1292       1.1        pk hme_setladrf(sc)
   1293       1.1        pk 	struct hme_softc *sc;
   1294       1.1        pk {
   1295       1.1        pk 	struct ifnet *ifp = &sc->sc_ethercom.ec_if;
   1296       1.1        pk 	struct ether_multi *enm;
   1297       1.1        pk 	struct ether_multistep step;
   1298       1.1        pk 	struct ethercom *ec = &sc->sc_ethercom;
   1299       1.1        pk 	bus_space_tag_t t = sc->sc_bustag;
   1300       1.1        pk 	bus_space_handle_t mac = sc->sc_mac;
   1301       1.1        pk 	u_char *cp;
   1302       1.1        pk 	u_int32_t crc;
   1303       1.1        pk 	u_int32_t hash[4];
   1304       1.1        pk 	int len;
   1305       1.1        pk 
   1306       1.1        pk 	/*
   1307       1.1        pk 	 * Set up multicast address filter by passing all multicast addresses
   1308       1.1        pk 	 * through a crc generator, and then using the high order 6 bits as an
   1309       1.1        pk 	 * index into the 64 bit logical address filter.  The high order bit
   1310       1.1        pk 	 * selects the word, while the rest of the bits select the bit within
   1311       1.1        pk 	 * the word.
   1312       1.1        pk 	 */
   1313       1.1        pk 
   1314       1.1        pk 	if ((ifp->if_flags & IFF_PROMISC) != 0) {
   1315       1.1        pk 		u_int32_t v = bus_space_read_4(t, mac, HME_MACI_RXCFG);
   1316       1.1        pk 		v |= HME_MAC_RXCFG_PMISC;
   1317       1.1        pk 		bus_space_write_4(t, mac, HME_MACI_RXCFG, v);
   1318       1.1        pk 		goto allmulti;
   1319       1.1        pk 	}
   1320       1.1        pk 
   1321       1.1        pk 	/* Clear hash table */
   1322       1.1        pk 	hash[3] = hash[2] = hash[1] = hash[0] = 0;
   1323       1.1        pk 	ETHER_FIRST_MULTI(step, ec, enm);
   1324       1.1        pk 	while (enm != NULL) {
   1325       1.1        pk 		if (ether_cmp(enm->enm_addrlo, enm->enm_addrhi)) {
   1326       1.1        pk 			/*
   1327       1.1        pk 			 * We must listen to a range of multicast addresses.
   1328       1.1        pk 			 * For now, just accept all multicasts, rather than
   1329       1.1        pk 			 * trying to set only those filter bits needed to match
   1330       1.1        pk 			 * the range.  (At this time, the only use of address
   1331       1.1        pk 			 * ranges is for IP multicast routing, for which the
   1332       1.1        pk 			 * range is big enough to require all bits set.)
   1333       1.1        pk 			 */
   1334       1.1        pk 			goto allmulti;
   1335       1.1        pk 		}
   1336       1.1        pk 
   1337       1.1        pk 		cp = enm->enm_addrlo;
   1338       1.1        pk 		crc = 0xffffffff;
   1339       1.1        pk 		for (len = sizeof(enm->enm_addrlo); --len >= 0;) {
   1340       1.1        pk 			int octet = *cp++;
   1341       1.1        pk 			int i;
   1342       1.1        pk 
   1343       1.1        pk #define MC_POLY_LE	0xedb88320UL	/* mcast crc, little endian */
   1344       1.1        pk 			for (i = 0; i < 8; i++) {
   1345       1.1        pk 				if ((crc & 1) ^ (octet & 1)) {
   1346       1.1        pk 					crc >>= 1;
   1347       1.1        pk 					crc ^= MC_POLY_LE;
   1348       1.1        pk 				} else {
   1349       1.1        pk 					crc >>= 1;
   1350       1.1        pk 				}
   1351       1.1        pk 				octet >>= 1;
   1352       1.1        pk 			}
   1353       1.1        pk 		}
   1354       1.1        pk 		/* Just want the 6 most significant bits. */
   1355       1.1        pk 		crc >>= 26;
   1356       1.1        pk 
   1357       1.1        pk 		/* Set the corresponding bit in the filter. */
   1358       1.1        pk 		hash[crc >> 4] |= 1 << (crc & 0xf);
   1359       1.1        pk 
   1360       1.1        pk 		ETHER_NEXT_MULTI(step, enm);
   1361       1.1        pk 	}
   1362       1.1        pk 
   1363       1.1        pk 	/* Now load the hash table onto the chip */
   1364       1.1        pk 	bus_space_write_4(t, mac, HME_MACI_HASHTAB0, hash[0]);
   1365       1.1        pk 	bus_space_write_4(t, mac, HME_MACI_HASHTAB1, hash[1]);
   1366       1.1        pk 	bus_space_write_4(t, mac, HME_MACI_HASHTAB2, hash[2]);
   1367       1.1        pk 	bus_space_write_4(t, mac, HME_MACI_HASHTAB3, hash[3]);
   1368       1.1        pk 
   1369       1.1        pk 	ifp->if_flags &= ~IFF_ALLMULTI;
   1370       1.1        pk 	return;
   1371       1.1        pk 
   1372       1.1        pk allmulti:
   1373       1.1        pk 	ifp->if_flags |= IFF_ALLMULTI;
   1374       1.1        pk 	bus_space_write_4(t, mac, HME_MACI_HASHTAB0, 0xffff);
   1375       1.1        pk 	bus_space_write_4(t, mac, HME_MACI_HASHTAB1, 0xffff);
   1376       1.1        pk 	bus_space_write_4(t, mac, HME_MACI_HASHTAB2, 0xffff);
   1377       1.1        pk 	bus_space_write_4(t, mac, HME_MACI_HASHTAB3, 0xffff);
   1378       1.1        pk }
   1379       1.1        pk 
   1380       1.1        pk /*
   1381       1.1        pk  * Routines for accessing the transmit and receive buffers.
   1382       1.1        pk  * The various CPU and adapter configurations supported by this
   1383       1.1        pk  * driver require three different access methods for buffers
   1384       1.1        pk  * and descriptors:
   1385       1.1        pk  *	(1) contig (contiguous data; no padding),
   1386       1.1        pk  *	(2) gap2 (two bytes of data followed by two bytes of padding),
   1387       1.1        pk  *	(3) gap16 (16 bytes of data followed by 16 bytes of padding).
   1388       1.1        pk  */
   1389       1.1        pk 
   1390       1.1        pk #if 0
   1391       1.1        pk /*
   1392       1.1        pk  * contig: contiguous data with no padding.
   1393       1.1        pk  *
   1394       1.1        pk  * Buffers may have any alignment.
   1395       1.1        pk  */
   1396       1.1        pk 
   1397       1.1        pk void
   1398       1.1        pk hme_copytobuf_contig(sc, from, ri, len)
   1399       1.1        pk 	struct hme_softc *sc;
   1400       1.1        pk 	void *from;
   1401       1.1        pk 	int ri, len;
   1402       1.1        pk {
   1403       1.1        pk 	volatile caddr_t buf = sc->sc_rb.rb_txbuf + (ri * _HME_BUFSZ);
   1404       1.1        pk 
   1405       1.1        pk 	/*
   1406       1.1        pk 	 * Just call bcopy() to do the work.
   1407       1.1        pk 	 */
   1408       1.1        pk 	bcopy(from, buf, len);
   1409       1.1        pk }
   1410       1.1        pk 
   1411       1.1        pk void
   1412       1.1        pk hme_copyfrombuf_contig(sc, to, boff, len)
   1413       1.1        pk 	struct hme_softc *sc;
   1414       1.1        pk 	void *to;
   1415       1.1        pk 	int boff, len;
   1416       1.1        pk {
   1417       1.1        pk 	volatile caddr_t buf = sc->sc_rb.rb_rxbuf + (ri * _HME_BUFSZ);
   1418       1.1        pk 
   1419       1.1        pk 	/*
   1420       1.1        pk 	 * Just call bcopy() to do the work.
   1421       1.1        pk 	 */
   1422       1.1        pk 	bcopy(buf, to, len);
   1423       1.1        pk }
   1424       1.1        pk #endif
   1425