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if_de.c revision 1.32.8.1
      1  1.32.8.1  pgoyette /*	$NetBSD: if_de.c,v 1.32.8.1 2018/06/25 07:26:01 pgoyette Exp $	*/
      2       1.5     ragge 
      3       1.1     ragge /*
      4       1.1     ragge  * Copyright (c) 1982, 1986, 1989 Regents of the University of California.
      5      1.15       agc  * All rights reserved.
      6      1.15       agc  *
      7      1.15       agc  *
      8      1.15       agc  * Redistribution and use in source and binary forms, with or without
      9      1.15       agc  * modification, are permitted provided that the following conditions
     10      1.15       agc  * are met:
     11      1.15       agc  * 1. Redistributions of source code must retain the above copyright
     12      1.15       agc  *    notice, this list of conditions and the following disclaimer.
     13      1.15       agc  * 2. Redistributions in binary form must reproduce the above copyright
     14      1.15       agc  *    notice, this list of conditions and the following disclaimer in the
     15      1.15       agc  *    documentation and/or other materials provided with the distribution.
     16      1.15       agc  * 3. Neither the name of the University nor the names of its contributors
     17      1.15       agc  *    may be used to endorse or promote products derived from this software
     18      1.15       agc  *    without specific prior written permission.
     19      1.15       agc  *
     20      1.15       agc  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     21      1.15       agc  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     22      1.15       agc  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     23      1.15       agc  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     24      1.15       agc  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     25      1.15       agc  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     26      1.15       agc  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     27      1.15       agc  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     28      1.15       agc  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     29      1.15       agc  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     30      1.15       agc  * SUCH DAMAGE.
     31      1.15       agc  *
     32      1.15       agc  *	@(#)if_de.c	7.12 (Berkeley) 12/16/90
     33      1.15       agc  */
     34      1.15       agc 
     35      1.15       agc /*
     36       1.1     ragge  * Copyright (c) 2000 Ludd, University of Lule}, Sweden.
     37       1.1     ragge  * All rights reserved.
     38       1.1     ragge  *
     39       1.1     ragge  *
     40       1.1     ragge  * Redistribution and use in source and binary forms, with or without
     41       1.1     ragge  * modification, are permitted provided that the following conditions
     42       1.1     ragge  * are met:
     43       1.1     ragge  * 1. Redistributions of source code must retain the above copyright
     44       1.1     ragge  *    notice, this list of conditions and the following disclaimer.
     45       1.1     ragge  * 2. Redistributions in binary form must reproduce the above copyright
     46       1.1     ragge  *    notice, this list of conditions and the following disclaimer in the
     47       1.1     ragge  *    documentation and/or other materials provided with the distribution.
     48       1.1     ragge  *
     49       1.1     ragge  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     50       1.1     ragge  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     51       1.1     ragge  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     52       1.1     ragge  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     53       1.1     ragge  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     54       1.1     ragge  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     55       1.1     ragge  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     56       1.1     ragge  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     57       1.1     ragge  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     58       1.1     ragge  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     59       1.1     ragge  * SUCH DAMAGE.
     60       1.1     ragge  */
     61       1.1     ragge 
     62       1.1     ragge /*
     63       1.1     ragge  * DEC DEUNA interface
     64       1.1     ragge  *
     65       1.1     ragge  *	Lou Salkind
     66       1.1     ragge  *	New York University
     67       1.1     ragge  *
     68       1.2     ragge  *	Rewritten by Ragge 30 April 2000 to match new world.
     69       1.1     ragge  *
     70       1.1     ragge  * TODO:
     71       1.1     ragge  *	timeout routine (get statistics)
     72       1.1     ragge  */
     73      1.11     lukem 
     74      1.11     lukem #include <sys/cdefs.h>
     75  1.32.8.1  pgoyette __KERNEL_RCSID(0, "$NetBSD: if_de.c,v 1.32.8.1 2018/06/25 07:26:01 pgoyette Exp $");
     76       1.1     ragge 
     77       1.1     ragge #include "opt_inet.h"
     78       1.1     ragge 
     79       1.1     ragge #include <sys/param.h>
     80       1.1     ragge #include <sys/systm.h>
     81       1.1     ragge #include <sys/mbuf.h>
     82       1.1     ragge #include <sys/buf.h>
     83       1.1     ragge #include <sys/protosw.h>
     84       1.1     ragge #include <sys/socket.h>
     85       1.1     ragge #include <sys/ioctl.h>
     86       1.1     ragge #include <sys/errno.h>
     87       1.1     ragge #include <sys/syslog.h>
     88       1.1     ragge #include <sys/device.h>
     89       1.1     ragge 
     90       1.1     ragge #include <net/if.h>
     91       1.1     ragge #include <net/if_ether.h>
     92       1.1     ragge #include <net/if_dl.h>
     93  1.32.8.1  pgoyette #include <net/bpf.h>
     94       1.1     ragge 
     95       1.1     ragge #ifdef INET
     96       1.1     ragge #include <netinet/in.h>
     97       1.1     ragge #include <netinet/if_inarp.h>
     98       1.1     ragge #endif
     99       1.1     ragge 
    100      1.22        ad #include <sys/bus.h>
    101       1.1     ragge 
    102       1.1     ragge #include <dev/qbus/ubavar.h>
    103       1.1     ragge #include <dev/qbus/if_dereg.h>
    104      1.10     ragge #include <dev/qbus/if_uba.h>
    105       1.1     ragge 
    106       1.1     ragge #include "ioconf.h"
    107       1.1     ragge 
    108       1.1     ragge /*
    109       1.1     ragge  * Be careful with transmit/receive buffers, each entry steals 4 map
    110       1.1     ragge  * registers, and there is only 496 on one unibus...
    111       1.1     ragge  */
    112      1.10     ragge #define NRCV	7	/* number of receive buffers (must be > 1) */
    113      1.10     ragge #define NXMT	3	/* number of transmit buffers */
    114       1.1     ragge 
    115       1.1     ragge /*
    116       1.1     ragge  * Structure containing the elements that must be in DMA-safe memory.
    117       1.1     ragge  */
    118       1.1     ragge struct	de_cdata {
    119       1.1     ragge 	/* the following structures are always mapped in */
    120       1.1     ragge 	struct	de_pcbb dc_pcbb;	/* port control block */
    121       1.1     ragge 	struct	de_ring dc_xrent[NXMT]; /* transmit ring entrys */
    122       1.1     ragge 	struct	de_ring dc_rrent[NRCV]; /* receive ring entrys */
    123       1.1     ragge 	struct	de_udbbuf dc_udbbuf;	/* UNIBUS data buffer */
    124       1.1     ragge 	/* end mapped area */
    125       1.1     ragge };
    126       1.1     ragge 
    127       1.1     ragge /*
    128       1.1     ragge  * Ethernet software status per interface.
    129       1.1     ragge  *
    130       1.1     ragge  * Each interface is referenced by a network interface structure,
    131       1.1     ragge  * ds_if, which the routing code uses to locate the interface.
    132       1.1     ragge  * This structure contains the output queue for the interface, its address, ...
    133       1.1     ragge  * We also have, for each interface, a UBA interface structure, which
    134       1.1     ragge  * contains information about the UNIBUS resources held by the interface:
    135       1.1     ragge  * map registers, buffered data paths, etc.  Information is cached in this
    136       1.1     ragge  * structure for use by the if_uba.c routines in running the interface
    137       1.1     ragge  * efficiently.
    138       1.1     ragge  */
    139       1.1     ragge struct	de_softc {
    140      1.23      matt 	device_t sc_dev;		/* Configuration common part */
    141      1.23      matt 	struct uba_softc *sc_uh;	/* our parent */
    142      1.23      matt 	struct evcnt sc_intrcnt;	/* Interrupt counting */
    143      1.23      matt 	struct ethercom sc_ec;		/* Ethernet common part */
    144       1.1     ragge #define sc_if	sc_ec.ec_if		/* network-visible interface */
    145       1.1     ragge 	bus_space_tag_t sc_iot;
    146       1.1     ragge 	bus_addr_t sc_ioh;
    147       1.1     ragge 	bus_dma_tag_t sc_dmat;
    148      1.23      matt 	int sc_flags;
    149      1.10     ragge #define	DSF_MAPPED	1
    150       1.9     ragge 	struct ubinfo sc_ui;
    151       1.1     ragge 	struct de_cdata *sc_dedata;	/* Control structure */
    152       1.1     ragge 	struct de_cdata *sc_pdedata;	/* Bus-mapped control structure */
    153      1.23      matt 	struct ifubinfo sc_ifuba;	/* UNIBUS resources */
    154      1.23      matt 	struct ifrw sc_ifr[NRCV];	/* UNIBUS receive buffer maps */
    155      1.23      matt 	struct ifxmt sc_ifw[NXMT];	/* UNIBUS receive buffer maps */
    156      1.23      matt 
    157      1.23      matt 	int sc_xindex;			/* UNA index into transmit chain */
    158      1.23      matt 	int sc_rindex;			/* UNA index into receive chain */
    159      1.23      matt 	int sc_xfree;			/* index for next transmit buffer */
    160      1.23      matt 	int sc_nxmit;			/* # of transmits in progress */
    161       1.2     ragge 	void *sc_sh;			/* shutdownhook cookie */
    162       1.1     ragge };
    163       1.1     ragge 
    164      1.23      matt static	int dematch(device_t, cfdata_t, void *);
    165      1.23      matt static	void deattach(device_t, device_t, void *);
    166      1.17     ragge static	void dewait(struct de_softc *, const char *);
    167      1.10     ragge static	int deinit(struct ifnet *);
    168      1.21  christos static	int deioctl(struct ifnet *, u_long, void *);
    169      1.27    cegger static	void dereset(device_t);
    170      1.10     ragge static	void destop(struct ifnet *, int);
    171       1.1     ragge static	void destart(struct ifnet *);
    172       1.1     ragge static	void derecv(struct de_softc *);
    173       1.1     ragge static	void deintr(void *);
    174       1.2     ragge static	void deshutdown(void *);
    175       1.1     ragge 
    176      1.23      matt CFATTACH_DECL_NEW(de, sizeof(struct de_softc),
    177      1.14   thorpej     dematch, deattach, NULL, NULL);
    178       1.1     ragge 
    179       1.1     ragge #define DE_WCSR(csr, val) \
    180       1.1     ragge 	bus_space_write_2(sc->sc_iot, sc->sc_ioh, csr, val)
    181       1.1     ragge #define DE_WLOW(val) \
    182       1.1     ragge 	bus_space_write_1(sc->sc_iot, sc->sc_ioh, DE_PCSR0, val)
    183       1.1     ragge #define DE_WHIGH(val) \
    184       1.1     ragge 	bus_space_write_1(sc->sc_iot, sc->sc_ioh, DE_PCSR0 + 1, val)
    185       1.1     ragge #define DE_RCSR(csr) \
    186       1.1     ragge 	bus_space_read_2(sc->sc_iot, sc->sc_ioh, csr)
    187       1.1     ragge 
    188       1.1     ragge #define LOWORD(x)	((int)(x) & 0xffff)
    189       1.1     ragge #define HIWORD(x)	(((int)(x) >> 16) & 0x3)
    190       1.1     ragge /*
    191       1.1     ragge  * Interface exists: make available by filling in network interface
    192       1.1     ragge  * record.  System will initialize the interface when it is ready
    193       1.1     ragge  * to accept packets.  We get the ethernet address here.
    194       1.1     ragge  */
    195       1.1     ragge void
    196      1.23      matt deattach(device_t parent, device_t self, void *aux)
    197       1.1     ragge {
    198       1.1     ragge 	struct uba_attach_args *ua = aux;
    199      1.20   thorpej 	struct de_softc *sc = device_private(self);
    200       1.1     ragge 	struct ifnet *ifp = &sc->sc_if;
    201       1.1     ragge 	u_int8_t myaddr[ETHER_ADDR_LEN];
    202      1.10     ragge 	int csr1, error;
    203      1.17     ragge 	const char *c;
    204       1.1     ragge 
    205      1.23      matt 	sc->sc_dev = self;
    206      1.23      matt 	sc->sc_uh = device_private(parent);
    207       1.1     ragge 	sc->sc_iot = ua->ua_iot;
    208       1.1     ragge 	sc->sc_ioh = ua->ua_ioh;
    209       1.1     ragge 	sc->sc_dmat = ua->ua_dmat;
    210       1.1     ragge 
    211       1.1     ragge 	/*
    212       1.1     ragge 	 * What kind of a board is this?
    213       1.1     ragge 	 * The error bits 4-6 in pcsr1 are a device id as long as
    214       1.1     ragge 	 * the high byte is zero.
    215       1.1     ragge 	 */
    216       1.1     ragge 	csr1 = DE_RCSR(DE_PCSR1);
    217       1.1     ragge 	if (csr1 & 0xff60)
    218       1.1     ragge 		c = "broken";
    219       1.1     ragge 	else if (csr1 & 0x10)
    220       1.1     ragge 		c = "delua";
    221       1.1     ragge 	else
    222       1.1     ragge 		c = "deuna";
    223       1.1     ragge 
    224       1.1     ragge 	/*
    225       1.1     ragge 	 * Reset the board and temporarily map
    226       1.1     ragge 	 * the pcbb buffer onto the Unibus.
    227       1.1     ragge 	 */
    228       1.1     ragge 	DE_WCSR(DE_PCSR0, 0);		/* reset INTE */
    229       1.1     ragge 	DELAY(100);
    230       1.1     ragge 	DE_WCSR(DE_PCSR0, PCSR0_RSET);
    231       1.2     ragge 	dewait(sc, "reset");
    232       1.1     ragge 
    233       1.9     ragge 	sc->sc_ui.ui_size = sizeof(struct de_cdata);
    234      1.23      matt 	if ((error = ubmemalloc(sc->sc_uh, &sc->sc_ui, 0)))
    235      1.10     ragge 		return printf(": failed ubmemalloc(), error = %d\n", error);
    236       1.9     ragge 	sc->sc_dedata = (struct de_cdata *)sc->sc_ui.ui_vaddr;
    237       1.2     ragge 
    238       1.1     ragge 	/*
    239       1.1     ragge 	 * Tell the DEUNA about our PCB
    240       1.1     ragge 	 */
    241      1.10     ragge 	DE_WCSR(DE_PCSR2, LOWORD(sc->sc_ui.ui_baddr));
    242      1.10     ragge 	DE_WCSR(DE_PCSR3, HIWORD(sc->sc_ui.ui_baddr));
    243       1.1     ragge 	DE_WLOW(CMD_GETPCBB);
    244       1.2     ragge 	dewait(sc, "pcbb");
    245       1.1     ragge 
    246       1.1     ragge 	sc->sc_dedata->dc_pcbb.pcbb0 = FC_RDPHYAD;
    247       1.1     ragge 	DE_WLOW(CMD_GETCMD);
    248       1.2     ragge 	dewait(sc, "read addr ");
    249       1.1     ragge 
    250      1.26   tsutsui 	memcpy(myaddr, (void *)&sc->sc_dedata->dc_pcbb.pcbb2, sizeof (myaddr));
    251      1.23      matt 	printf(": %s, hardware address %s\n", c, ether_sprintf(myaddr));
    252       1.1     ragge 
    253      1.16    simonb 	uba_intr_establish(ua->ua_icookie, ua->ua_cvec, deintr, sc,
    254       1.5     ragge 	    &sc->sc_intrcnt);
    255      1.23      matt 	uba_reset_establish(dereset, sc->sc_dev);
    256       1.4      matt 	evcnt_attach_dynamic(&sc->sc_intrcnt, EVCNT_TYPE_INTR, ua->ua_evcnt,
    257      1.23      matt 	    device_xname(sc->sc_dev), "intr");
    258       1.1     ragge 
    259      1.23      matt 	strcpy(ifp->if_xname, device_xname(sc->sc_dev));
    260       1.1     ragge 	ifp->if_softc = sc;
    261       1.5     ragge 	ifp->if_flags = IFF_BROADCAST|IFF_SIMPLEX|IFF_MULTICAST|IFF_ALLMULTI;
    262       1.1     ragge 	ifp->if_ioctl = deioctl;
    263       1.1     ragge 	ifp->if_start = destart;
    264      1.10     ragge 	ifp->if_init = deinit;
    265      1.10     ragge 	ifp->if_stop = destop;
    266       1.8   thorpej 	IFQ_SET_READY(&ifp->if_snd);
    267       1.8   thorpej 
    268       1.1     ragge 	if_attach(ifp);
    269       1.1     ragge 	ether_ifattach(ifp, myaddr);
    270      1.23      matt 	ubmemfree(sc->sc_uh, &sc->sc_ui);
    271       1.7   thorpej 
    272       1.2     ragge 	sc->sc_sh = shutdownhook_establish(deshutdown, sc);
    273      1.10     ragge }
    274       1.1     ragge 
    275      1.10     ragge void
    276      1.10     ragge destop(struct ifnet *ifp, int a)
    277      1.10     ragge {
    278      1.10     ragge 	struct de_softc *sc = ifp->if_softc;
    279      1.10     ragge 
    280      1.10     ragge 	DE_WLOW(0);
    281      1.10     ragge 	DELAY(5000);
    282      1.10     ragge 	DE_WLOW(PCSR0_RSET);
    283       1.1     ragge }
    284       1.1     ragge 
    285      1.10     ragge 
    286       1.1     ragge /*
    287       1.1     ragge  * Reset of interface after UNIBUS reset.
    288       1.1     ragge  */
    289       1.1     ragge void
    290      1.23      matt dereset(device_t dev)
    291       1.1     ragge {
    292       1.1     ragge 	struct de_softc *sc = (void *)dev;
    293       1.1     ragge 
    294       1.1     ragge 	sc->sc_if.if_flags &= ~(IFF_RUNNING | IFF_OACTIVE);
    295      1.10     ragge 	sc->sc_flags &= ~DSF_MAPPED;
    296       1.5     ragge 	sc->sc_pdedata = NULL;	/* All mappings lost */
    297       1.1     ragge 	DE_WCSR(DE_PCSR0, PCSR0_RSET);
    298       1.2     ragge 	dewait(sc, "reset");
    299      1.10     ragge 	deinit(&sc->sc_if);
    300       1.1     ragge }
    301       1.1     ragge 
    302       1.1     ragge /*
    303       1.1     ragge  * Initialization of interface; clear recorded pending
    304       1.1     ragge  * operations, and reinitialize UNIBUS usage.
    305       1.1     ragge  */
    306      1.10     ragge int
    307      1.10     ragge deinit(struct ifnet *ifp)
    308       1.1     ragge {
    309      1.10     ragge 	struct de_softc *sc = ifp->if_softc;
    310       1.2     ragge 	struct de_cdata *dc, *pdc;
    311      1.10     ragge 	struct ifrw *ifrw;
    312      1.10     ragge 	struct ifxmt *ifxp;
    313      1.10     ragge 	struct de_ring *rp;
    314      1.10     ragge 	int s, error;
    315      1.10     ragge 
    316      1.10     ragge 	if (ifp->if_flags & IFF_RUNNING)
    317      1.10     ragge 		return 0;
    318      1.10     ragge 	if ((sc->sc_flags & DSF_MAPPED) == 0) {
    319      1.23      matt 		if (if_ubaminit(&sc->sc_ifuba, sc->sc_uh, MCLBYTES,
    320      1.23      matt 				sc->sc_ifr, NRCV, sc->sc_ifw, NXMT)) {
    321      1.23      matt 			aprint_error_dev(sc->sc_dev, " can't initialize\n");
    322      1.10     ragge 			ifp->if_flags &= ~IFF_UP;
    323      1.10     ragge 			return 0;
    324      1.10     ragge 		}
    325      1.10     ragge 		sc->sc_ui.ui_size = sizeof(struct de_cdata);
    326      1.23      matt 		if ((error = ubmemalloc(sc->sc_uh, &sc->sc_ui, 0))) {
    327      1.23      matt 			aprint_error(": unable to ubmemalloc(), error = %d\n",
    328      1.23      matt 			    error);
    329      1.10     ragge 			return 0;
    330      1.10     ragge 		}
    331      1.10     ragge 		sc->sc_pdedata = (struct de_cdata *)sc->sc_ui.ui_baddr;
    332      1.10     ragge 		sc->sc_dedata = (struct de_cdata *)sc->sc_ui.ui_vaddr;
    333      1.10     ragge 		sc->sc_flags |= DSF_MAPPED;
    334      1.10     ragge 	}
    335       1.1     ragge 
    336       1.1     ragge 	/*
    337       1.1     ragge 	 * Tell the DEUNA about our PCB
    338       1.1     ragge 	 */
    339       1.1     ragge 	DE_WCSR(DE_PCSR2, LOWORD(sc->sc_pdedata));
    340       1.1     ragge 	DE_WCSR(DE_PCSR3, HIWORD(sc->sc_pdedata));
    341       1.1     ragge 	DE_WLOW(0);		/* reset INTE */
    342       1.1     ragge 	DELAY(500);
    343       1.1     ragge 	DE_WLOW(CMD_GETPCBB);
    344       1.2     ragge 	dewait(sc, "pcbb");
    345       1.1     ragge 
    346       1.1     ragge 	dc = sc->sc_dedata;
    347       1.2     ragge 	pdc = sc->sc_pdedata;
    348       1.1     ragge 	/* set the transmit and receive ring header addresses */
    349       1.1     ragge 	dc->dc_pcbb.pcbb0 = FC_WTRING;
    350       1.2     ragge 	dc->dc_pcbb.pcbb2 = LOWORD(&pdc->dc_udbbuf);
    351       1.2     ragge 	dc->dc_pcbb.pcbb4 = HIWORD(&pdc->dc_udbbuf);
    352       1.1     ragge 
    353       1.2     ragge 	dc->dc_udbbuf.b_tdrbl = LOWORD(&pdc->dc_xrent[0]);
    354       1.2     ragge 	dc->dc_udbbuf.b_tdrbh = HIWORD(&pdc->dc_xrent[0]);
    355       1.1     ragge 	dc->dc_udbbuf.b_telen = sizeof (struct de_ring) / sizeof(u_int16_t);
    356       1.1     ragge 	dc->dc_udbbuf.b_trlen = NXMT;
    357       1.2     ragge 	dc->dc_udbbuf.b_rdrbl = LOWORD(&pdc->dc_rrent[0]);
    358       1.2     ragge 	dc->dc_udbbuf.b_rdrbh = HIWORD(&pdc->dc_rrent[0]);
    359       1.1     ragge 	dc->dc_udbbuf.b_relen = sizeof (struct de_ring) / sizeof(u_int16_t);
    360       1.1     ragge 	dc->dc_udbbuf.b_rrlen = NRCV;
    361       1.1     ragge 
    362       1.1     ragge 	DE_WLOW(CMD_GETCMD);
    363       1.2     ragge 	dewait(sc, "wtring");
    364       1.1     ragge 
    365       1.5     ragge 	sc->sc_dedata->dc_pcbb.pcbb0 = FC_WTMODE;
    366       1.5     ragge 	sc->sc_dedata->dc_pcbb.pcbb2 = MOD_TPAD|MOD_HDX|MOD_DRDC|MOD_ENAL;
    367       1.5     ragge 	DE_WLOW(CMD_GETCMD);
    368       1.5     ragge 	dewait(sc, "wtmode");
    369       1.1     ragge 
    370       1.5     ragge 	/* set up the receive and transmit ring entries */
    371      1.10     ragge 	ifxp = &sc->sc_ifw[0];
    372      1.10     ragge 	for (rp = &dc->dc_xrent[0]; rp < &dc->dc_xrent[NXMT]; rp++) {
    373      1.10     ragge 		rp->r_segbl = LOWORD(ifxp->ifw_info);
    374      1.10     ragge 		rp->r_segbh = HIWORD(ifxp->ifw_info);
    375      1.10     ragge 		rp->r_flags = 0;
    376      1.10     ragge 		ifxp++;
    377      1.10     ragge 	}
    378      1.10     ragge 	ifrw = &sc->sc_ifr[0];
    379      1.10     ragge 	for (rp = &dc->dc_rrent[0]; rp < &dc->dc_rrent[NRCV]; rp++) {
    380      1.10     ragge 		rp->r_slen = MCLBYTES - 2;
    381      1.10     ragge 		rp->r_segbl = LOWORD(ifrw->ifrw_info);
    382      1.10     ragge 		rp->r_segbh = HIWORD(ifrw->ifrw_info);
    383      1.10     ragge 		rp->r_flags = RFLG_OWN;
    384      1.10     ragge 		ifrw++;
    385      1.10     ragge 	}
    386       1.1     ragge 
    387       1.1     ragge 	/* start up the board (rah rah) */
    388       1.1     ragge 	s = splnet();
    389       1.5     ragge 	sc->sc_rindex = sc->sc_xindex = sc->sc_xfree = sc->sc_nxmit = 0;
    390       1.1     ragge 	sc->sc_if.if_flags |= IFF_RUNNING;
    391       1.5     ragge 	DE_WLOW(PCSR0_INTE);			/* avoid interlock */
    392       1.5     ragge 	destart(&sc->sc_if);		/* queue output packets */
    393       1.1     ragge 	DE_WLOW(CMD_START|PCSR0_INTE);
    394       1.1     ragge 	splx(s);
    395      1.10     ragge 	return 0;
    396       1.1     ragge }
    397       1.1     ragge 
    398       1.1     ragge /*
    399       1.1     ragge  * Setup output on interface.
    400       1.1     ragge  * Get another datagram to send off of the interface queue,
    401       1.1     ragge  * and map it to the interface before starting the output.
    402       1.1     ragge  * Must be called from ipl >= our interrupt level.
    403       1.1     ragge  */
    404       1.1     ragge void
    405       1.1     ragge destart(struct ifnet *ifp)
    406       1.1     ragge {
    407       1.1     ragge 	struct de_softc *sc = ifp->if_softc;
    408       1.2     ragge 	struct de_cdata *dc;
    409      1.10     ragge 	struct de_ring *rp;
    410       1.2     ragge 	struct mbuf *m;
    411      1.10     ragge 	int nxmit, len;
    412       1.1     ragge 
    413       1.1     ragge 	/*
    414       1.1     ragge 	 * the following test is necessary, since
    415       1.1     ragge 	 * the code is not reentrant and we have
    416       1.1     ragge 	 * multiple transmission buffers.
    417       1.1     ragge 	 */
    418       1.5     ragge 	if (sc->sc_if.if_flags & IFF_OACTIVE)
    419       1.1     ragge 		return;
    420       1.2     ragge 	dc = sc->sc_dedata;
    421       1.5     ragge 	for (nxmit = sc->sc_nxmit; nxmit < NXMT; nxmit++) {
    422       1.8   thorpej 		IFQ_DEQUEUE(&ifp->if_snd, m);
    423       1.1     ragge 		if (m == 0)
    424       1.5     ragge 			break;
    425      1.10     ragge 
    426      1.10     ragge 		rp = &dc->dc_xrent[sc->sc_xfree];
    427       1.5     ragge 		if (rp->r_flags & XFLG_OWN)
    428       1.5     ragge 			panic("deuna xmit in progress");
    429      1.29     joerg 		bpf_mtap(ifp, m);
    430       1.5     ragge 
    431      1.10     ragge 		len = if_ubaput(&sc->sc_ifuba, &sc->sc_ifw[sc->sc_xfree], m);
    432      1.10     ragge 		rp->r_slen = len;
    433      1.10     ragge 		rp->r_tdrerr = 0;
    434      1.10     ragge 		rp->r_flags = XFLG_STP|XFLG_ENP|XFLG_OWN;
    435      1.10     ragge 
    436       1.5     ragge 		sc->sc_xfree++;
    437       1.5     ragge 		if (sc->sc_xfree == NXMT)
    438       1.5     ragge 			sc->sc_xfree = 0;
    439       1.5     ragge 	}
    440      1.10     ragge 	if (sc->sc_nxmit != nxmit) {
    441       1.5     ragge 		sc->sc_nxmit = nxmit;
    442       1.5     ragge 		if (ifp->if_flags & IFF_RUNNING)
    443       1.5     ragge 			DE_WLOW(PCSR0_INTE|CMD_PDMD);
    444       1.1     ragge 	}
    445       1.1     ragge }
    446       1.1     ragge 
    447       1.1     ragge /*
    448       1.1     ragge  * Command done interrupt.
    449       1.1     ragge  */
    450       1.1     ragge void
    451       1.1     ragge deintr(void *arg)
    452       1.1     ragge {
    453      1.10     ragge 	struct ifxmt *ifxp;
    454       1.5     ragge 	struct de_cdata *dc;
    455       1.1     ragge 	struct de_softc *sc = arg;
    456       1.5     ragge 	struct de_ring *rp;
    457       1.5     ragge 	short csr0;
    458       1.1     ragge 
    459       1.1     ragge 	/* save flags right away - clear out interrupt bits */
    460       1.1     ragge 	csr0 = DE_RCSR(DE_PCSR0);
    461       1.1     ragge 	DE_WHIGH(csr0 >> 8);
    462       1.1     ragge 
    463       1.1     ragge 
    464       1.5     ragge 	sc->sc_if.if_flags |= IFF_OACTIVE;	/* prevent entering destart */
    465       1.5     ragge 	/*
    466       1.5     ragge 	 * if receive, put receive buffer on mbuf
    467       1.5     ragge 	 * and hang the request again
    468       1.5     ragge 	 */
    469       1.5     ragge 	derecv(sc);
    470       1.1     ragge 
    471       1.1     ragge 	/*
    472       1.1     ragge 	 * Poll transmit ring and check status.
    473       1.5     ragge 	 * Be careful about loopback requests.
    474       1.1     ragge 	 * Then free buffer space and check for
    475       1.1     ragge 	 * more transmit requests.
    476       1.1     ragge 	 */
    477       1.5     ragge 	dc = sc->sc_dedata;
    478       1.5     ragge 	for ( ; sc->sc_nxmit > 0; sc->sc_nxmit--) {
    479       1.5     ragge 		rp = &dc->dc_xrent[sc->sc_xindex];
    480       1.5     ragge 		if (rp->r_flags & XFLG_OWN)
    481       1.2     ragge 			break;
    482      1.10     ragge 
    483       1.5     ragge 		sc->sc_if.if_opackets++;
    484      1.10     ragge 		ifxp = &sc->sc_ifw[sc->sc_xindex];
    485       1.5     ragge 		/* check for unusual conditions */
    486       1.1     ragge 		if (rp->r_flags & (XFLG_ERRS|XFLG_MTCH|XFLG_ONE|XFLG_MORE)) {
    487       1.1     ragge 			if (rp->r_flags & XFLG_ERRS) {
    488       1.5     ragge 				/* output error */
    489       1.5     ragge 				sc->sc_if.if_oerrors++;
    490       1.1     ragge 			} else if (rp->r_flags & XFLG_ONE) {
    491       1.5     ragge 				/* one collision */
    492       1.5     ragge 				sc->sc_if.if_collisions++;
    493       1.1     ragge 			} else if (rp->r_flags & XFLG_MORE) {
    494       1.5     ragge 				/* more than one collision */
    495       1.5     ragge 				sc->sc_if.if_collisions += 2;	/* guess */
    496       1.1     ragge 			}
    497       1.1     ragge 		}
    498      1.10     ragge 		if_ubaend(&sc->sc_ifuba, ifxp);
    499       1.5     ragge 		/* check if next transmit buffer also finished */
    500       1.5     ragge 		sc->sc_xindex++;
    501       1.5     ragge 		if (sc->sc_xindex == NXMT)
    502       1.5     ragge 			sc->sc_xindex = 0;
    503       1.5     ragge 	}
    504       1.5     ragge 	sc->sc_if.if_flags &= ~IFF_OACTIVE;
    505       1.5     ragge 	destart(&sc->sc_if);
    506       1.5     ragge 
    507       1.5     ragge 	if (csr0 & PCSR0_RCBI) {
    508       1.5     ragge 		DE_WLOW(PCSR0_INTE|CMD_PDMD);
    509       1.5     ragge 	}
    510       1.1     ragge }
    511       1.1     ragge 
    512       1.1     ragge /*
    513       1.1     ragge  * Ethernet interface receiver interface.
    514       1.1     ragge  * If input error just drop packet.
    515      1.16    simonb  * Otherwise purge input buffered data path and examine
    516       1.1     ragge  * packet to determine type.  If can't determine length
    517       1.1     ragge  * from type, then have to drop packet.	 Othewise decapsulate
    518       1.1     ragge  * packet based on type and pass to type specific higher-level
    519       1.1     ragge  * input routine.
    520       1.1     ragge  */
    521       1.1     ragge void
    522       1.1     ragge derecv(struct de_softc *sc)
    523       1.1     ragge {
    524       1.1     ragge 	struct ifnet *ifp = &sc->sc_if;
    525       1.1     ragge 	struct de_ring *rp;
    526       1.5     ragge 	struct de_cdata *dc;
    527       1.1     ragge 	struct mbuf *m;
    528       1.1     ragge 	int len;
    529       1.1     ragge 
    530       1.5     ragge 	dc = sc->sc_dedata;
    531       1.5     ragge 	rp = &dc->dc_rrent[sc->sc_rindex];
    532       1.1     ragge 	while ((rp->r_flags & RFLG_OWN) == 0) {
    533       1.5     ragge 		len = (rp->r_lenerr&RERR_MLEN) - ETHER_CRC_LEN;
    534       1.1     ragge 		/* check for errors */
    535       1.1     ragge 		if ((rp->r_flags & (RFLG_ERRS|RFLG_FRAM|RFLG_OFLO|RFLG_CRC)) ||
    536       1.2     ragge 		    (rp->r_lenerr & (RERR_BUFL|RERR_UBTO))) {
    537       1.5     ragge 			sc->sc_if.if_ierrors++;
    538       1.1     ragge 			goto next;
    539       1.1     ragge 		}
    540      1.10     ragge 		m = if_ubaget(&sc->sc_ifuba, &sc->sc_ifr[sc->sc_rindex],
    541      1.10     ragge 		    ifp, len);
    542      1.10     ragge 		if (m == 0) {
    543      1.10     ragge 			sc->sc_if.if_ierrors++;
    544      1.10     ragge 			goto next;
    545      1.10     ragge 		}
    546       1.5     ragge 
    547      1.30     ozaki 		if_percpuq_enqueue(ifp->if_percpuq, m);
    548       1.1     ragge 
    549       1.1     ragge 		/* hang the receive buffer again */
    550       1.1     ragge next:		rp->r_lenerr = 0;
    551       1.1     ragge 		rp->r_flags = RFLG_OWN;
    552       1.1     ragge 
    553       1.1     ragge 		/* check next receive buffer */
    554       1.5     ragge 		sc->sc_rindex++;
    555       1.5     ragge 		if (sc->sc_rindex == NRCV)
    556       1.5     ragge 			sc->sc_rindex = 0;
    557       1.5     ragge 		rp = &dc->dc_rrent[sc->sc_rindex];
    558       1.1     ragge 	}
    559       1.1     ragge }
    560       1.1     ragge 
    561       1.1     ragge /*
    562       1.1     ragge  * Process an ioctl request.
    563       1.1     ragge  */
    564       1.1     ragge int
    565      1.21  christos deioctl(struct ifnet *ifp, u_long cmd, void *data)
    566       1.1     ragge {
    567      1.10     ragge 	int s, error = 0;
    568       1.1     ragge 
    569      1.10     ragge 	s = splnet();
    570       1.1     ragge 
    571      1.10     ragge 	error = ether_ioctl(ifp, cmd, data);
    572      1.10     ragge 	if (error == ENETRESET)
    573      1.10     ragge 		error = 0;
    574       1.2     ragge 
    575       1.1     ragge 	splx(s);
    576       1.1     ragge 	return (error);
    577       1.1     ragge }
    578       1.1     ragge 
    579       1.1     ragge /*
    580       1.1     ragge  * Await completion of the named function
    581       1.1     ragge  * and check for errors.
    582       1.1     ragge  */
    583       1.2     ragge void
    584      1.17     ragge dewait(struct de_softc *sc, const char *fn)
    585       1.1     ragge {
    586      1.23      matt 	int csr0, csr1;
    587       1.1     ragge 
    588       1.1     ragge 	while ((DE_RCSR(DE_PCSR0) & PCSR0_INTR) == 0)
    589       1.1     ragge 		;
    590       1.1     ragge 	csr0 = DE_RCSR(DE_PCSR0);
    591       1.1     ragge 	DE_WHIGH(csr0 >> 8);
    592       1.1     ragge 	if (csr0 & PCSR0_PCEI) {
    593      1.23      matt 		char bits0[64];
    594      1.23      matt 		char bits1[64];
    595      1.23      matt 		csr1 = DE_RCSR(DE_PCSR1);
    596      1.24  christos 		snprintb(bits0, sizeof(bits0), PCSR0_BITS, csr0);
    597      1.24  christos 		snprintb(bits1, sizeof(bits1), PCSR1_BITS, csr1);
    598      1.23      matt 		aprint_error_dev(sc->sc_dev, "%s failed, csr0=%s csr1=%s\n",
    599      1.24  christos 		    fn, bits0, bits1);
    600       1.1     ragge 	}
    601       1.1     ragge }
    602       1.1     ragge 
    603       1.1     ragge int
    604      1.23      matt dematch(device_t parent, cfdata_t cf, void *aux)
    605       1.1     ragge {
    606       1.1     ragge 	struct uba_attach_args *ua = aux;
    607       1.1     ragge 	struct de_softc ssc;
    608       1.1     ragge 	struct de_softc *sc = &ssc;
    609       1.1     ragge 	int i;
    610       1.1     ragge 
    611       1.1     ragge 	sc->sc_iot = ua->ua_iot;
    612       1.1     ragge 	sc->sc_ioh = ua->ua_ioh;
    613       1.1     ragge 	/*
    614       1.1     ragge 	 * Make sure self-test is finished before we screw with the board.
    615       1.1     ragge 	 * Self-test on a DELUA can take 15 seconds (argh).
    616       1.1     ragge 	 */
    617       1.1     ragge 	for (i = 0;
    618       1.1     ragge 	    (i < 160) &&
    619       1.1     ragge 	    (DE_RCSR(DE_PCSR0) & PCSR0_FATI) == 0 &&
    620       1.1     ragge 	    (DE_RCSR(DE_PCSR1) & PCSR1_STMASK) == STAT_RESET;
    621       1.1     ragge 	    ++i)
    622       1.1     ragge 		DELAY(50000);
    623       1.1     ragge 	if (((DE_RCSR(DE_PCSR0) & PCSR0_FATI) != 0) ||
    624       1.1     ragge 	    (((DE_RCSR(DE_PCSR1) & PCSR1_STMASK) != STAT_READY) &&
    625       1.1     ragge 	    ((DE_RCSR(DE_PCSR1) & PCSR1_STMASK) != STAT_RUN)))
    626       1.1     ragge 		return(0);
    627       1.1     ragge 
    628       1.1     ragge 	DE_WCSR(DE_PCSR0, 0);
    629       1.1     ragge 	DELAY(5000);
    630       1.1     ragge 	DE_WCSR(DE_PCSR0, PCSR0_RSET);
    631       1.1     ragge 	while ((DE_RCSR(DE_PCSR0) & PCSR0_INTR) == 0)
    632       1.1     ragge 		;
    633       1.1     ragge 	/* make board interrupt by executing a GETPCBB command */
    634       1.1     ragge 	DE_WCSR(DE_PCSR0, PCSR0_INTE);
    635       1.1     ragge 	DE_WCSR(DE_PCSR2, 0);
    636       1.1     ragge 	DE_WCSR(DE_PCSR3, 0);
    637       1.1     ragge 	DE_WCSR(DE_PCSR0, PCSR0_INTE|CMD_GETPCBB);
    638       1.1     ragge 	DELAY(50000);
    639       1.1     ragge 
    640       1.1     ragge 	return 1;
    641       1.1     ragge }
    642       1.2     ragge 
    643       1.2     ragge void
    644       1.2     ragge deshutdown(void *arg)
    645       1.2     ragge {
    646       1.2     ragge 	struct de_softc *sc = arg;
    647       1.2     ragge 
    648       1.5     ragge 	DE_WCSR(DE_PCSR0, 0);
    649       1.5     ragge 	DELAY(1000);
    650       1.2     ragge 	DE_WCSR(DE_PCSR0, PCSR0_RSET);
    651       1.2     ragge 	dewait(sc, "shutdown");
    652       1.2     ragge }
    653