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if_ae.c revision 1.24
      1  1.24   briggs /*	$NetBSD: if_ae.c,v 1.24 1995/04/19 04:43:36 briggs Exp $	*/
      2  1.14      cgd 
      3   1.1   briggs /*
      4  1.21   briggs  * Device driver for National Semiconductor DS8390/WD83C690 based ethernet
      5  1.21   briggs  * adapters.
      6   1.1   briggs  *
      7  1.21   briggs  * Copyright (c) 1994, 1995 Charles M. Hannum.  All rights reserved.
      8   1.1   briggs  *
      9  1.21   briggs  * Copyright (C) 1993, David Greenman.  This software may be used, modified,
     10  1.21   briggs  * copied, distributed, and sold, in both source and binary form provided that
     11  1.21   briggs  * the above copyright and these terms are retained.  Under no circumstances is
     12  1.21   briggs  * the author responsible for the proper functioning of this software, nor does
     13  1.21   briggs  * the author assume any responsibility for damages incurred with its use.
     14   1.1   briggs  *
     15  1.21   briggs  * Adapted for MacBSD by Brad Parker <brad (at) fcr.com>.
     16   1.1   briggs  *
     17   1.1   briggs  * Currently supports:
     18   1.1   briggs  *	Apples NB Ethernet card
     19   1.1   briggs  *	Interlan A310 Nubus Ethernet card
     20   1.1   briggs  *	Cayman Systems GatorCard
     21  1.15   briggs  *	Asante MacCon II/E
     22   1.1   briggs  */
     23   1.1   briggs 
     24   1.1   briggs #include "bpfilter.h"
     25   1.1   briggs 
     26   1.9   briggs #include <sys/param.h>
     27  1.22   briggs #include <sys/types.h>
     28   1.9   briggs #include <sys/systm.h>
     29   1.9   briggs #include <sys/errno.h>
     30   1.9   briggs #include <sys/ioctl.h>
     31   1.9   briggs #include <sys/mbuf.h>
     32   1.9   briggs #include <sys/socket.h>
     33   1.9   briggs #include <sys/syslog.h>
     34  1.21   briggs #include <sys/device.h>
     35   1.1   briggs 
     36   1.5   briggs #include <net/if.h>
     37   1.5   briggs #include <net/if_dl.h>
     38   1.5   briggs #include <net/if_types.h>
     39   1.5   briggs #include <net/netisr.h>
     40   1.1   briggs 
     41   1.1   briggs #ifdef INET
     42   1.5   briggs #include <netinet/in.h>
     43   1.5   briggs #include <netinet/in_systm.h>
     44   1.5   briggs #include <netinet/in_var.h>
     45   1.5   briggs #include <netinet/ip.h>
     46   1.5   briggs #include <netinet/if_ether.h>
     47   1.1   briggs #endif
     48   1.1   briggs 
     49   1.1   briggs #ifdef NS
     50   1.5   briggs #include <netns/ns.h>
     51   1.5   briggs #include <netns/ns_if.h>
     52   1.1   briggs #endif
     53   1.1   briggs 
     54   1.1   briggs #if NBPFILTER > 0
     55   1.5   briggs #include <net/bpf.h>
     56   1.5   briggs #include <net/bpfdesc.h>
     57   1.1   briggs #endif
     58   1.1   briggs 
     59  1.18   briggs #include "../mac68k/via.h"
     60   1.3   briggs #include "nubus.h"
     61  1.22   briggs #include <dev/ic/dp8390.h>
     62   1.1   briggs #include "if_aereg.h"
     63   1.1   briggs 
     64   1.1   briggs /*
     65   1.1   briggs  * ae_softc: per line info and status
     66   1.1   briggs  */
     67   1.1   briggs struct	ae_softc {
     68  1.21   briggs 	struct	device sc_dev;
     69  1.21   briggs /*	struct	nubusdev sc_nu;
     70  1.21   briggs 	struct	intrhand sc_ih;	*/
     71   1.3   briggs 
     72  1.21   briggs 	struct	arpcom sc_arpcom;	/* ethernet common */
     73   1.1   briggs 
     74   1.1   briggs 	char	*type_str;	/* pointer to type string */
     75   1.1   briggs 	u_char	vendor;		/* interface vendor */
     76   1.1   briggs 	u_char	type;		/* interface type code */
     77  1.15   briggs 	u_char	regs_rev;	/* registers are reversed */
     78  1.15   briggs 
     79  1.15   briggs #define	REG_MAP(sc, reg)	((sc)->regs_rev ? (0x0f-(reg))<<2 : (reg)<<2)
     80   1.1   briggs #define NIC_GET(sc, reg)	((sc)->nic_addr[REG_MAP(sc, reg)])
     81   1.1   briggs #define NIC_PUT(sc, reg, val)	((sc)->nic_addr[REG_MAP(sc, reg)] = (val))
     82   1.1   briggs 	volatile caddr_t nic_addr; /* NIC (DS8390) I/O bus address */
     83   1.1   briggs 	caddr_t	rom_addr;	/* on board prom address */
     84   1.1   briggs 
     85  1.21   briggs 	u_char	cr_proto;	/* values always set in CR */
     86  1.21   briggs 
     87  1.21   briggs 	caddr_t	mem_start;	/* shared memory start address */
     88  1.21   briggs 	caddr_t	mem_end;	/* shared memory end address */
     89  1.21   briggs 	u_long	mem_size;	/* total shared memory size */
     90  1.21   briggs 	caddr_t	mem_ring;	/* start of RX ring-buffer (in smem) */
     91  1.21   briggs 
     92  1.21   briggs 	u_char	mem_wr_short;	/* card memory requires int16 writes */
     93   1.1   briggs 
     94   1.1   briggs 	u_char	xmit_busy;	/* transmitter is busy */
     95   1.1   briggs 	u_char	txb_cnt;	/* Number of transmit buffers */
     96  1.21   briggs 	u_char	txb_inuse;	/* number of TX buffers currently in-use*/
     97  1.21   briggs 
     98  1.21   briggs 	u_char 	txb_new;	/* pointer to where new buffer will be added */
     99  1.21   briggs 	u_char	txb_next_tx;	/* pointer to next buffer ready to xmit */
    100  1.21   briggs 	u_short	txb_len[8];	/* buffered xmit buffer lengths */
    101   1.1   briggs 	u_char	tx_page_start;	/* first page of TX buffer area */
    102   1.1   briggs 	u_char	rec_page_start;	/* first page of RX ring-buffer */
    103   1.1   briggs 	u_char	rec_page_stop;	/* last page of RX ring-buffer */
    104   1.1   briggs 	u_char	next_packet;	/* pointer to next unread RX packet */
    105  1.21   briggs };
    106   1.1   briggs 
    107  1.22   briggs int aeprobe __P((struct device *, void *, void *));
    108  1.22   briggs void aeattach __P((struct device *, struct device *, void *));
    109  1.22   briggs void aeintr __P((struct ae_softc *));
    110  1.21   briggs int ae_ioctl __P((struct ifnet *, u_long, caddr_t));
    111  1.21   briggs void ae_start __P((struct ifnet *));
    112  1.21   briggs void ae_watchdog __P((/* short */));
    113  1.21   briggs void ae_reset __P((struct ae_softc *));
    114  1.21   briggs void ae_init __P((struct ae_softc *));
    115  1.21   briggs void ae_stop __P((struct ae_softc *));
    116  1.21   briggs void ae_getmcaf __P((struct arpcom *, u_long *));
    117  1.21   briggs u_short ae_put __P((struct ae_softc *, struct mbuf *, caddr_t));
    118  1.21   briggs 
    119  1.21   briggs #define inline	/* XXX for debugging porpoises */
    120  1.21   briggs 
    121  1.22   briggs void ae_get_packet __P((/* struct ae_softc *, caddr_t, u_short */));
    122  1.21   briggs static inline void ae_rint __P((struct ae_softc *));
    123  1.21   briggs static inline void ae_xmit __P((struct ae_softc *));
    124  1.21   briggs static inline caddr_t ae_ring_copy __P((/* struct ae_softc *, caddr_t, caddr_t,
    125  1.21   briggs 					u_short */));
    126   1.1   briggs 
    127  1.21   briggs struct cfdriver aecd = {
    128  1.22   briggs 	NULL, "ae", aeprobe, aeattach, DV_IFNET, sizeof(struct ae_softc)
    129  1.21   briggs };
    130   1.1   briggs 
    131   1.1   briggs #define	ETHER_MIN_LEN	64
    132   1.1   briggs #define ETHER_MAX_LEN	1518
    133   1.1   briggs #define	ETHER_ADDR_LEN	6
    134   1.1   briggs 
    135   1.1   briggs char ae_name[] = "8390 Nubus Ethernet card";
    136   1.1   briggs static char zero = 0;
    137   1.1   briggs static u_char ones = 0xff;
    138   1.1   briggs 
    139   1.8   briggs struct vendor_S {
    140   1.8   briggs 	char	*manu;
    141   1.8   briggs 	int	len;
    142   1.8   briggs 	int	vendor;
    143   1.8   briggs } vend[] = {
    144   1.8   briggs 	{ "Apple", 5, AE_VENDOR_APPLE },
    145   1.8   briggs 	{ "3Com",  4, AE_VENDOR_APPLE },
    146   1.8   briggs 	{ "Dayna", 5, AE_VENDOR_DAYNA },
    147   1.8   briggs 	{ "Inter", 5, AE_VENDOR_INTERLAN },
    148  1.15   briggs 	{ "Asant", 5, AE_VENDOR_ASANTE },
    149   1.8   briggs };
    150   1.8   briggs 
    151   1.8   briggs static int numvend = sizeof(vend)/sizeof(vend[0]);
    152   1.8   briggs 
    153  1.12  lkestel /*
    154  1.12  lkestel  * XXX These two should be moved to locore, and maybe changed to use shorts
    155  1.12  lkestel  * instead of bytes.  The reason for these is that bcopy and bzero use longs,
    156  1.12  lkestel  * which the ethernet cards can't handle.
    157  1.12  lkestel  */
    158  1.12  lkestel 
    159  1.12  lkestel void
    160  1.21   briggs bszero(u_short *addr, int len)
    161  1.12  lkestel {
    162  1.21   briggs 
    163  1.21   briggs 	while (len--)
    164  1.12  lkestel 		*addr++ = 0;
    165  1.12  lkestel }
    166  1.12  lkestel 
    167  1.21   briggs /*
    168  1.21   briggs  * Memory copy, copies word at time.
    169  1.21   briggs  */
    170  1.21   briggs static inline void
    171  1.21   briggs word_copy(a, b, len)
    172  1.21   briggs 	caddr_t a, b;
    173  1.21   briggs 	int len;
    174  1.12  lkestel {
    175  1.21   briggs 	u_short *x = (u_short *)a,
    176  1.21   briggs 		*y = (u_short *)b;
    177  1.12  lkestel 
    178  1.21   briggs 	len >>= 1;
    179  1.21   briggs 	while (len--)
    180  1.21   briggs 		*y++ = *x++;
    181  1.15   briggs }
    182  1.15   briggs 
    183  1.23   briggs /*
    184  1.23   briggs  * Memory copy, copies bytes at time.
    185  1.23   briggs  */
    186  1.23   briggs static inline void
    187  1.23   briggs byte_copy(a, b, len)
    188  1.23   briggs 	caddr_t a, b;
    189  1.23   briggs 	int len;
    190  1.23   briggs {
    191  1.23   briggs 	while (len--)
    192  1.23   briggs 		*b++ = *a++;
    193  1.23   briggs }
    194  1.23   briggs 
    195   1.8   briggs void
    196   1.8   briggs ae_id_card(nu, sc)
    197   1.8   briggs 	struct nubus_hw	*nu;
    198   1.8   briggs 	struct ae_softc	*sc;
    199   1.8   briggs {
    200  1.21   briggs 	int i;
    201   1.8   briggs 
    202   1.8   briggs 	/*
    203   1.8   briggs 	 * Try to determine what type of card this is...
    204   1.8   briggs 	 */
    205   1.8   briggs 	sc->vendor = AE_VENDOR_UNKNOWN;
    206  1.21   briggs 	for (i = 0; i < numvend; i++) {
    207  1.21   briggs 		if (!strncmp(nu->Slot.manufacturer, vend[i].manu, vend[i].len)) {
    208   1.8   briggs 			sc->vendor = vend[i].vendor;
    209   1.8   briggs 			break;
    210   1.8   briggs 		}
    211   1.8   briggs 	}
    212  1.21   briggs 	sc->type_str = (char *)(nu->Slot.manufacturer);
    213   1.8   briggs 
    214  1.15   briggs }
    215  1.15   briggs 
    216  1.15   briggs int
    217  1.15   briggs ae_size_card_memory(sc)
    218  1.15   briggs 	struct ae_softc	*sc;
    219  1.15   briggs {
    220  1.15   briggs 	u_short *p;
    221  1.15   briggs 	u_short i1, i2, i3, i4;
    222  1.15   briggs 	int size;
    223  1.21   briggs 
    224  1.21   briggs 	p = (u_short *)sc->mem_start;
    225  1.15   briggs 
    226  1.15   briggs 	/*
    227  1.15   briggs 	 * very simple size memory, assuming it's installed in 8k
    228  1.15   briggs 	 * banks; also assume it will generally mirror in upper banks
    229  1.15   briggs 	 * if not installed.
    230  1.15   briggs 	 */
    231  1.15   briggs 	i1 = (8192*0)/2;
    232  1.15   briggs 	i2 = (8192*1)/2;
    233  1.15   briggs 	i3 = (8192*2)/2;
    234  1.15   briggs 	i4 = (8192*3)/2;
    235  1.21   briggs 
    236  1.15   briggs 	p[i1] = 0x1111;
    237  1.15   briggs 	p[i2] = 0x2222;
    238  1.15   briggs 	p[i3] = 0x3333;
    239  1.15   briggs 	p[i4] = 0x4444;
    240  1.21   briggs 
    241  1.15   briggs 	if (p[i1] == 0x1111 && p[i2] == 0x2222 &&
    242  1.15   briggs 	    p[i3] == 0x3333 && p[i4] == 0x4444)
    243  1.21   briggs 		return 8192*4;
    244  1.21   briggs 
    245  1.21   briggs 	if ((p[i1] == 0x1111 && p[i2] == 0x2222) ||
    246  1.21   briggs 	    (p[i1] == 0x3333 && p[i2] == 0x4444))
    247  1.21   briggs 		return 8192*2;
    248  1.15   briggs 
    249  1.21   briggs 	if (p[i1] == 0x1111 || p[i1] == 0x4444)
    250  1.21   briggs 		return 8192;
    251  1.15   briggs 
    252  1.21   briggs 	return 0;
    253   1.8   briggs }
    254   1.8   briggs 
    255   1.1   briggs int
    256  1.22   briggs aeprobe(parent, match, aux)
    257  1.21   briggs 	struct device *parent;
    258  1.21   briggs 	void *match, *aux;
    259   1.1   briggs {
    260  1.21   briggs 	struct ae_softc *sc = match;
    261  1.21   briggs 	register struct nubus_hw *nu = aux;
    262   1.1   briggs 	int i, memsize;
    263   1.1   briggs 	int flags = 0;
    264   1.1   briggs 
    265   1.3   briggs 	if (nu->Slot.type != NUBUS_NETWORK)
    266   1.3   briggs 		return 0;
    267   1.3   briggs 
    268   1.8   briggs 	ae_id_card(nu, sc);
    269   1.1   briggs 
    270  1.15   briggs 	sc->regs_rev = 0;
    271  1.21   briggs 	sc->mem_wr_short = 0;
    272  1.15   briggs 
    273   1.1   briggs 	switch (sc->vendor) {
    274   1.1   briggs 	      case AE_VENDOR_INTERLAN:
    275   1.1   briggs 		sc->nic_addr = nu->addr + GC_NIC_OFFSET;
    276   1.1   briggs 		sc->rom_addr = nu->addr + GC_ROM_OFFSET;
    277  1.21   briggs 		sc->mem_start = nu->addr + GC_DATA_OFFSET;
    278  1.15   briggs 		if ((memsize = ae_size_card_memory(sc)) == 0)
    279  1.15   briggs 			return 0;
    280   1.1   briggs 
    281   1.1   briggs 		/* reset the NIC chip */
    282   1.1   briggs 		*((caddr_t)nu->addr + GC_RESET_OFFSET) = (char)zero;
    283  1.21   briggs 
    284   1.1   briggs 		/* Get station address from on-board ROM */
    285   1.1   briggs 		for (i = 0; i < ETHER_ADDR_LEN; ++i)
    286  1.21   briggs 			sc->sc_arpcom.ac_enaddr[i] = *(sc->rom_addr + i*4);
    287   1.1   briggs 		break;
    288   1.1   briggs 
    289  1.15   briggs 	      case AE_VENDOR_ASANTE:
    290  1.15   briggs 		/* memory writes require *(u_short *) */
    291  1.21   briggs 		sc->mem_wr_short = 1;
    292  1.15   briggs 		/* otherwise, pretend to be an apple card (fall through) */
    293  1.15   briggs 
    294   1.1   briggs 	      case AE_VENDOR_APPLE:
    295  1.15   briggs 		sc->regs_rev = 1;
    296   1.1   briggs 		sc->nic_addr = nu->addr + AE_NIC_OFFSET;
    297   1.1   briggs 		sc->rom_addr = nu->addr + AE_ROM_OFFSET;
    298  1.21   briggs 		sc->mem_start = nu->addr + AE_DATA_OFFSET;
    299  1.15   briggs 		if ((memsize = ae_size_card_memory(sc)) == 0)
    300  1.21   briggs 			return (0);
    301   1.1   briggs 
    302   1.1   briggs 		/* Get station address from on-board ROM */
    303   1.1   briggs 		for (i = 0; i < ETHER_ADDR_LEN; ++i)
    304  1.21   briggs 			sc->sc_arpcom.ac_enaddr[i] = *(sc->rom_addr + i*2);
    305   1.1   briggs 		break;
    306   1.8   briggs 
    307   1.8   briggs 	      case AE_VENDOR_DAYNA:
    308   1.9   briggs 		printf("We think we are a Dayna card, but ");
    309  1.10   briggs 		sc->nic_addr = nu->addr + DP_NIC_OFFSET;
    310  1.10   briggs 		sc->rom_addr = nu->addr + DP_ROM_OFFSET;
    311  1.21   briggs 		sc->mem_start = nu->addr + DP_DATA_OFFSET;
    312   1.8   briggs 		memsize = 8192;
    313   1.8   briggs 
    314   1.8   briggs 		/* Get station address from on-board ROM */
    315   1.8   briggs 		for (i = 0; i < ETHER_ADDR_LEN; ++i)
    316  1.21   briggs 			sc->sc_arpcom.ac_enaddr[i] = *(sc->rom_addr + i*2);
    317   1.9   briggs 		printf("it is dangerous to continue.\n");
    318  1.21   briggs 		return (0); /* Since we don't work yet... */
    319   1.8   briggs 		break;
    320   1.8   briggs 
    321   1.8   briggs 	      default:
    322  1.21   briggs 		return (0);
    323   1.8   briggs 		break;
    324   1.1   briggs 	}
    325   1.7   briggs 
    326  1.22   briggs 	sc->cr_proto = ED_CR_RD2;
    327  1.21   briggs 
    328  1.21   briggs 	/* Allocate one xmit buffer if < 16k, two buffers otherwise. */
    329  1.21   briggs 	if ((memsize < 16384) || (flags & AE_FLAGS_NO_DOUBLE_BUFFERING))
    330   1.1   briggs 		sc->txb_cnt = 1;
    331  1.21   briggs 	else
    332   1.1   briggs 		sc->txb_cnt = 2;
    333   1.1   briggs 
    334   1.1   briggs 	sc->tx_page_start = 0;
    335  1.22   briggs 	sc->rec_page_start = sc->tx_page_start + sc->txb_cnt * ED_TXBUF_SIZE;
    336  1.22   briggs 	sc->rec_page_stop = sc->tx_page_start + (memsize >> ED_PAGE_SHIFT);
    337  1.22   briggs 	sc->mem_ring = sc->mem_start + (sc->rec_page_start << ED_PAGE_SHIFT);
    338  1.21   briggs 	sc->mem_size = memsize;
    339  1.21   briggs 	sc->mem_end = sc->mem_start + memsize;
    340   1.1   briggs 
    341  1.21   briggs 	/* Now zero memory and verify that it is clear. */
    342  1.21   briggs 	bszero((u_short *)sc->mem_start, memsize / 2);
    343   1.1   briggs 
    344   1.1   briggs 	for (i = 0; i < memsize; ++i)
    345  1.21   briggs 		if (sc->mem_start[i]) {
    346  1.21   briggs 	        	printf("%s: failed to clear shared memory at %x - check configuration\n",
    347  1.21   briggs 			    sc->sc_dev.dv_xname,
    348  1.21   briggs 			    sc->mem_start + i);
    349  1.21   briggs 			return (0);
    350   1.1   briggs 		}
    351   1.1   briggs 
    352  1.21   briggs 	return (1);
    353  1.21   briggs }
    354   1.1   briggs 
    355   1.1   briggs /*
    356   1.1   briggs  * Install interface into kernel networking data structures
    357   1.1   briggs  */
    358   1.9   briggs void
    359  1.22   briggs aeattach(parent, self, aux)
    360  1.22   briggs 	struct device *parent, *self;
    361  1.21   briggs 	void *aux;
    362   1.1   briggs {
    363  1.21   briggs 	struct ae_softc *sc = (void *)self;
    364   1.3   briggs 	struct nubus_hw	*nu = aux;
    365  1.21   briggs 	struct cfdata *cf = sc->sc_dev.dv_cfdata;
    366  1.21   briggs 	struct ifnet *ifp = &sc->sc_arpcom.ac_if;
    367   1.3   briggs 
    368  1.21   briggs 	/* Set interface to stopped condition (reset). */
    369   1.3   briggs 	ae_stop(sc);
    370   1.1   briggs 
    371  1.21   briggs 	/* Initialize ifnet structure. */
    372  1.21   briggs 	ifp->if_unit = sc->sc_dev.dv_unit;
    373   1.3   briggs 	ifp->if_name = aecd.cd_name;
    374   1.1   briggs 	ifp->if_start = ae_start;
    375   1.1   briggs 	ifp->if_ioctl = ae_ioctl;
    376   1.1   briggs 	ifp->if_watchdog = ae_watchdog;
    377  1.21   briggs 	ifp->if_flags =
    378  1.21   briggs 	    IFF_BROADCAST | IFF_SIMPLEX | IFF_NOTRAILERS | IFF_MULTICAST;
    379   1.3   briggs 
    380  1.21   briggs 	/* Attach the interface. */
    381   1.1   briggs 	if_attach(ifp);
    382  1.21   briggs 	ether_ifattach(ifp);
    383   1.1   briggs 
    384  1.21   briggs 	/* Print additional info when attached. */
    385  1.21   briggs 	printf(": address %s, ", ether_sprintf(sc->sc_arpcom.ac_enaddr));
    386   1.1   briggs 
    387   1.1   briggs 	if (sc->type_str && (*sc->type_str != 0))
    388  1.15   briggs 		printf("type %s", sc->type_str);
    389   1.1   briggs 	else
    390  1.15   briggs 		printf("type unknown (0x%x)", sc->type);
    391  1.15   briggs 
    392  1.21   briggs 	printf(", %dk mem.\n", sc->mem_size / 1024);
    393   1.1   briggs 
    394   1.1   briggs #if NBPFILTER > 0
    395  1.21   briggs 	bpfattach(&ifp->if_bpf, ifp, DLT_EN10MB, sizeof(struct ether_header));
    396   1.1   briggs #endif
    397  1.21   briggs 
    398  1.21   briggs 	/* make sure interrupts are vectored to us */
    399  1.22   briggs 	add_nubus_intr( (int) sc->rom_addr & 0xFF000000, aeintr, sc);
    400   1.3   briggs }
    401   1.1   briggs 
    402   1.1   briggs /*
    403   1.1   briggs  * Reset interface.
    404   1.1   briggs  */
    405  1.21   briggs void
    406   1.3   briggs ae_reset(sc)
    407   1.3   briggs 	struct ae_softc *sc;
    408   1.1   briggs {
    409   1.1   briggs 	int s;
    410   1.1   briggs 
    411  1.21   briggs 	s = splimp();
    412   1.3   briggs 	ae_stop(sc);
    413   1.3   briggs 	ae_init(sc);
    414  1.21   briggs 	splx(s);
    415  1.21   briggs }
    416   1.1   briggs 
    417   1.1   briggs /*
    418   1.1   briggs  * Take interface offline.
    419   1.1   briggs  */
    420   1.1   briggs void
    421   1.3   briggs ae_stop(sc)
    422   1.3   briggs 	struct ae_softc *sc;
    423   1.1   briggs {
    424   1.1   briggs 	int n = 5000;
    425   1.1   briggs 
    426  1.21   briggs 	/* Stop everything on the interface, and select page 0 registers. */
    427  1.22   briggs 	NIC_PUT(sc, ED_P0_CR, sc->cr_proto | ED_CR_PAGE_0 | ED_CR_STP);
    428   1.1   briggs 
    429   1.1   briggs 	/*
    430  1.21   briggs 	 * Wait for interface to enter stopped state, but limit # of checks to
    431  1.21   briggs 	 * 'n' (about 5ms).  It shouldn't even take 5us on modern DS8390's, but
    432  1.21   briggs 	 * just in case it's an old one.
    433   1.1   briggs 	 */
    434  1.22   briggs 	while (((NIC_GET(sc, ED_P0_ISR) & ED_ISR_RST) == 0) && --n);
    435   1.1   briggs }
    436   1.1   briggs 
    437   1.1   briggs /*
    438  1.21   briggs  * Device timeout/watchdog routine.  Entered if the device neglects to generate
    439  1.21   briggs  * an interrupt after a transmit has been started on it.
    440   1.1   briggs  */
    441  1.21   briggs static	int aeintr_ctr = 0;
    442  1.20   briggs void
    443   1.1   briggs ae_watchdog(unit)
    444  1.20   briggs 	int unit;
    445   1.1   briggs {
    446  1.21   briggs 	struct ae_softc *sc = aecd.cd_devs[unit];
    447  1.15   briggs 
    448  1.18   briggs #if 1
    449  1.18   briggs /*
    450  1.18   briggs  * This is a kludge!  The via code seems to miss slot interrupts
    451  1.18   briggs  * sometimes.  This kludges around that by calling the handler
    452  1.18   briggs  * by hand if the watchdog is activated. -- XXX (akb)
    453  1.18   briggs  */
    454  1.18   briggs 	int	i;
    455  1.18   briggs 
    456  1.18   briggs 	i = aeintr_ctr;
    457  1.18   briggs 
    458  1.18   briggs 	(*via2itab[1])(1);
    459  1.18   briggs 
    460  1.19   briggs 	if (i != aeintr_ctr) {
    461  1.19   briggs 		log(LOG_ERR, "ae%d: device timeout, recovered\n", unit);
    462  1.18   briggs 		return;
    463  1.19   briggs 	}
    464  1.18   briggs #endif
    465  1.18   briggs 
    466  1.21   briggs 	log(LOG_ERR, "%s: device timeout\n", sc->sc_dev.dv_xname);
    467  1.21   briggs 	++sc->sc_arpcom.ac_if.if_oerrors;
    468  1.21   briggs 
    469  1.15   briggs 	ae_reset(sc);
    470   1.1   briggs }
    471   1.1   briggs 
    472   1.1   briggs /*
    473  1.21   briggs  * Initialize device.
    474   1.1   briggs  */
    475  1.21   briggs void
    476   1.3   briggs ae_init(sc)
    477   1.3   briggs 	struct ae_softc *sc;
    478   1.1   briggs {
    479  1.21   briggs 	struct ifnet *ifp = &sc->sc_arpcom.ac_if;
    480   1.1   briggs 	int i, s;
    481  1.21   briggs 	u_char command;
    482  1.21   briggs 	u_long mcaf[2];
    483   1.1   briggs 
    484  1.21   briggs 	/* Address not known. */
    485  1.21   briggs 	if (ifp->if_addrlist == 0)
    486  1.21   briggs 		return;
    487   1.1   briggs 
    488   1.1   briggs 	/*
    489   1.1   briggs 	 * Initialize the NIC in the exact order outlined in the NS manual.
    490  1.21   briggs 	 * This init procedure is "mandatory"...don't change what or when
    491  1.21   briggs 	 * things happen.
    492   1.1   briggs 	 */
    493  1.21   briggs 	s = splimp();
    494   1.1   briggs 
    495  1.21   briggs 	/* Reset transmitter flags. */
    496   1.1   briggs 	sc->xmit_busy = 0;
    497  1.21   briggs 	sc->sc_arpcom.ac_if.if_timer = 0;
    498   1.1   briggs 
    499  1.21   briggs 	sc->txb_inuse = 0;
    500  1.21   briggs 	sc->txb_new = 0;
    501  1.21   briggs 	sc->txb_next_tx = 0;
    502   1.1   briggs 
    503  1.21   briggs 	/* Set interface for page 0, remote DMA complete, stopped. */
    504  1.22   briggs 	NIC_PUT(sc, ED_P0_CR, sc->cr_proto | ED_CR_PAGE_0 | ED_CR_STP);
    505   1.1   briggs 
    506   1.1   briggs 	/*
    507  1.21   briggs 	 * Set FIFO threshold to 8, No auto-init Remote DMA, byte
    508  1.21   briggs 	 * order=80x86, word-wide DMA xfers,
    509   1.1   briggs 	 */
    510  1.22   briggs 	NIC_PUT(sc, ED_P0_DCR,
    511  1.22   briggs 	    ED_DCR_FT1 | ED_DCR_WTS | ED_DCR_LS);
    512   1.1   briggs 
    513  1.21   briggs 	/* Clear remote byte count registers. */
    514  1.22   briggs 	NIC_PUT(sc, ED_P0_RBCR0, 0);
    515  1.22   briggs 	NIC_PUT(sc, ED_P0_RBCR1, 0);
    516   1.1   briggs 
    517  1.21   briggs 	/* Tell RCR to do nothing for now. */
    518  1.22   briggs 	NIC_PUT(sc, ED_P0_RCR, ED_RCR_MON);
    519   1.1   briggs 
    520  1.21   briggs 	/* Place NIC in internal loopback mode. */
    521  1.22   briggs 	NIC_PUT(sc, ED_P0_TCR, ED_TCR_LB0);
    522   1.1   briggs 
    523  1.21   briggs 	/* Initialize receive buffer ring. */
    524  1.23   briggs 	NIC_PUT(sc, ED_P0_TPSR, sc->rec_page_start);
    525  1.22   briggs 	NIC_PUT(sc, ED_P0_BNRY, sc->rec_page_start);
    526  1.22   briggs 	NIC_PUT(sc, ED_P0_PSTART, sc->rec_page_start);
    527  1.22   briggs 	NIC_PUT(sc, ED_P0_PSTOP, sc->rec_page_stop);
    528   1.1   briggs 
    529   1.1   briggs 	/*
    530  1.21   briggs 	 * Clear all interrupts.  A '1' in each bit position clears the
    531  1.21   briggs 	 * corresponding flag.
    532   1.1   briggs 	 */
    533  1.22   briggs 	NIC_PUT(sc, ED_P0_ISR, 0xff);
    534  1.15   briggs 
    535   1.1   briggs 	/*
    536   1.1   briggs 	 * Enable the following interrupts: receive/transmit complete,
    537  1.21   briggs 	 * receive/transmit error, and Receiver OverWrite.
    538   1.1   briggs 	 *
    539   1.1   briggs 	 * Counter overflow and Remote DMA complete are *not* enabled.
    540   1.1   briggs 	 */
    541  1.22   briggs 	NIC_PUT(sc, ED_P0_IMR,
    542  1.22   briggs 	    ED_IMR_PRXE | ED_IMR_PTXE | ED_IMR_RXEE | ED_IMR_TXEE |
    543  1.22   briggs 	    ED_IMR_OVWE);
    544   1.1   briggs 
    545  1.21   briggs 	/* Program command register for page 1. */
    546  1.22   briggs 	NIC_PUT(sc, ED_P0_CR, sc->cr_proto | ED_CR_PAGE_1 | ED_CR_STP);
    547   1.1   briggs 
    548  1.21   briggs 	/* Copy out our station address. */
    549   1.1   briggs 	for (i = 0; i < ETHER_ADDR_LEN; ++i)
    550  1.22   briggs 		NIC_PUT(sc, ED_P1_PAR0 + i, sc->sc_arpcom.ac_enaddr[i]);
    551   1.1   briggs 
    552  1.21   briggs 	/* Set multicast filter on chip. */
    553  1.21   briggs 	ae_getmcaf(&sc->sc_arpcom, mcaf);
    554  1.21   briggs 	for (i = 0; i < 8; i++)
    555  1.22   briggs 		NIC_PUT(sc, ED_P1_MAR0 + i, ((u_char *)mcaf)[i]);
    556   1.1   briggs 
    557   1.1   briggs 	/*
    558  1.21   briggs 	 * Set current page pointer to one page after the boundary pointer, as
    559  1.21   briggs 	 * recommended in the National manual.
    560   1.1   briggs 	 */
    561  1.21   briggs 	sc->next_packet = sc->rec_page_start + 1;
    562  1.22   briggs 	NIC_PUT(sc, ED_P1_CURR, sc->next_packet);
    563   1.1   briggs 
    564  1.21   briggs 	/* Program command register for page 0. */
    565  1.22   briggs 	NIC_PUT(sc, ED_P1_CR, sc->cr_proto | ED_CR_PAGE_0 | ED_CR_STP);
    566  1.21   briggs 
    567  1.22   briggs 	i = ED_RCR_AB | ED_RCR_AM;
    568  1.21   briggs 	if (ifp->if_flags & IFF_PROMISC) {
    569  1.21   briggs 		/*
    570  1.21   briggs 		 * Set promiscuous mode.  Multicast filter was set earlier so
    571  1.21   briggs 		 * that we should receive all multicast packets.
    572  1.21   briggs 		 */
    573  1.22   briggs 		i |= ED_RCR_PRO | ED_RCR_AR | ED_RCR_SEP;
    574  1.21   briggs 	}
    575  1.22   briggs 	NIC_PUT(sc, ED_P0_RCR, i);
    576  1.21   briggs 
    577  1.21   briggs 	/* Take interface out of loopback. */
    578  1.22   briggs 	NIC_PUT(sc, ED_P0_TCR, 0);
    579   1.1   briggs 
    580  1.21   briggs 	/* Fire up the interface. */
    581  1.22   briggs 	NIC_PUT(sc, ED_P0_CR, sc->cr_proto | ED_CR_PAGE_0 | ED_CR_STA);
    582   1.1   briggs 
    583  1.21   briggs 	/* Set 'running' flag, and clear output active flag. */
    584   1.1   briggs 	ifp->if_flags |= IFF_RUNNING;
    585   1.1   briggs 	ifp->if_flags &= ~IFF_OACTIVE;
    586   1.1   briggs 
    587  1.21   briggs 	/* ...and attempt to start output. */
    588   1.1   briggs 	ae_start(ifp);
    589   1.1   briggs 
    590  1.21   briggs 	splx(s);
    591   1.1   briggs }
    592  1.21   briggs 
    593   1.1   briggs /*
    594  1.21   briggs  * This routine actually starts the transmission on the interface.
    595   1.1   briggs  */
    596  1.21   briggs static inline void
    597  1.21   briggs ae_xmit(sc)
    598  1.21   briggs 	struct ae_softc *sc;
    599   1.1   briggs {
    600  1.21   briggs 	struct ifnet *ifp = &sc->sc_arpcom.ac_if;
    601  1.21   briggs 	u_short len;
    602  1.21   briggs 
    603  1.21   briggs 	len = sc->txb_len[sc->txb_next_tx];
    604   1.1   briggs 
    605  1.21   briggs 	/* Set NIC for page 0 register access. */
    606  1.22   briggs 	NIC_PUT(sc, ED_P0_CR, sc->cr_proto | ED_CR_PAGE_0 | ED_CR_STA);
    607   1.1   briggs 
    608  1.21   briggs 	/* Set TX buffer start page. */
    609  1.22   briggs 	NIC_PUT(sc, ED_P0_TPSR, sc->tx_page_start +
    610  1.22   briggs 	    sc->txb_next_tx * ED_TXBUF_SIZE);
    611   1.1   briggs 
    612  1.21   briggs 	/* Set TX length. */
    613  1.22   briggs 	NIC_PUT(sc, ED_P0_TBCR0, len);
    614  1.22   briggs 	NIC_PUT(sc, ED_P0_TBCR1, len >> 8);
    615   1.1   briggs 
    616  1.21   briggs 	/* Set page 0, remote DMA complete, transmit packet, and *start*. */
    617  1.22   briggs 	NIC_PUT(sc, ED_P0_CR, sc->cr_proto | ED_CR_PAGE_0 | ED_CR_TXP | ED_CR_STA);
    618  1.21   briggs 	sc->xmit_busy = 1;
    619   1.1   briggs 
    620  1.21   briggs 	/* Point to next transmit buffer slot and wrap if necessary. */
    621  1.21   briggs 	sc->txb_next_tx++;
    622  1.21   briggs 	if (sc->txb_next_tx == sc->txb_cnt)
    623  1.21   briggs 		sc->txb_next_tx = 0;
    624   1.1   briggs 
    625  1.21   briggs 	/* Set a timer just in case we never hear from the board again. */
    626  1.18   briggs 	ifp->if_timer = 2;
    627   1.1   briggs }
    628   1.1   briggs 
    629   1.1   briggs /*
    630   1.1   briggs  * Start output on interface.
    631   1.1   briggs  * We make two assumptions here:
    632  1.21   briggs  *  1) that the current priority is set to splimp _before_ this code
    633   1.1   briggs  *     is called *and* is returned to the appropriate priority after
    634   1.1   briggs  *     return
    635   1.1   briggs  *  2) that the IFF_OACTIVE flag is checked before this code is called
    636   1.1   briggs  *     (i.e. that the output part of the interface is idle)
    637   1.1   briggs  */
    638  1.20   briggs void
    639   1.1   briggs ae_start(ifp)
    640   1.1   briggs 	struct ifnet *ifp;
    641   1.1   briggs {
    642  1.21   briggs 	struct ae_softc *sc = aecd.cd_devs[ifp->if_unit];
    643   1.1   briggs 	struct mbuf *m0, *m;
    644   1.1   briggs 	caddr_t buffer;
    645   1.1   briggs 	int len;
    646   1.1   briggs 
    647   1.1   briggs outloop:
    648   1.1   briggs 	/*
    649  1.21   briggs 	 * First, see if there are buffered packets and an idle transmitter -
    650  1.21   briggs 	 * should never happen at this point.
    651   1.1   briggs 	 */
    652  1.21   briggs 	if (sc->txb_inuse && (sc->xmit_busy == 0)) {
    653  1.21   briggs 		printf("%s: packets buffered, but transmitter idle\n",
    654  1.21   briggs 		    sc->sc_dev.dv_xname);
    655  1.21   briggs 		ae_xmit(sc);
    656  1.21   briggs 	}
    657  1.21   briggs 
    658  1.21   briggs 	/* See if there is room to put another packet in the buffer. */
    659  1.21   briggs 	if (sc->txb_inuse == sc->txb_cnt) {
    660  1.21   briggs 		/* No room.  Indicate this to the outside world and exit. */
    661  1.21   briggs 		ifp->if_flags |= IFF_OACTIVE;
    662  1.21   briggs 		return;
    663  1.21   briggs 	}
    664   1.1   briggs 
    665  1.21   briggs 	IF_DEQUEUE(&sc->sc_arpcom.ac_if.if_snd, m);
    666   1.1   briggs 	if (m == 0) {
    667  1.21   briggs 		/*
    668  1.21   briggs 		 * We are using the !OACTIVE flag to indicate to the outside
    669  1.21   briggs 		 * world that we can accept an additional packet rather than
    670  1.21   briggs 		 * that the transmitter is _actually_ active.  Indeed, the
    671  1.21   briggs 		 * transmitter may be active, but if we haven't filled all the
    672  1.21   briggs 		 * buffers with data then we still want to accept more.
    673  1.21   briggs 		 */
    674   1.1   briggs 		ifp->if_flags &= ~IFF_OACTIVE;
    675   1.1   briggs 		return;
    676   1.1   briggs 	}
    677   1.1   briggs 
    678  1.21   briggs 	/* Copy the mbuf chain into the transmit buffer. */
    679  1.21   briggs 	m0 = m;
    680  1.21   briggs 
    681  1.21   briggs 	/* txb_new points to next open buffer slot. */
    682  1.22   briggs 	buffer = sc->mem_start + ((sc->txb_new * ED_TXBUF_SIZE) << ED_PAGE_SHIFT);
    683  1.21   briggs 
    684  1.21   briggs 	len = ae_put(sc, m, buffer);
    685   1.1   briggs 
    686  1.21   briggs 	sc->txb_len[sc->txb_new] = max(len, ETHER_MIN_LEN);
    687  1.21   briggs 	sc->txb_inuse++;
    688   1.1   briggs 
    689  1.21   briggs 	/* Point to next buffer slot and wrap if necessary. */
    690  1.21   briggs 	if (++sc->txb_new == sc->txb_cnt)
    691  1.21   briggs 		sc->txb_new = 0;
    692   1.1   briggs 
    693   1.1   briggs 	if (sc->xmit_busy == 0)
    694  1.21   briggs 		ae_xmit(sc);
    695  1.21   briggs 
    696   1.1   briggs #if NBPFILTER > 0
    697  1.21   briggs 	/* Tap off here if there is a BPF listener. */
    698  1.21   briggs 	if (sc->sc_arpcom.ac_if.if_bpf)
    699  1.21   briggs 		bpf_mtap(sc->sc_arpcom.ac_if.if_bpf, m0);
    700   1.1   briggs #endif
    701   1.1   briggs 
    702   1.1   briggs 	m_freem(m0);
    703   1.1   briggs 
    704  1.21   briggs 	/* Loop back to the top to possibly buffer more packets. */
    705  1.21   briggs 	goto outloop;
    706   1.1   briggs }
    707  1.21   briggs 
    708   1.1   briggs /*
    709   1.1   briggs  * Ethernet interface receiver interrupt.
    710   1.1   briggs  */
    711   1.1   briggs static inline void
    712  1.21   briggs ae_rint(sc)
    713  1.21   briggs 	struct ae_softc *sc;
    714   1.1   briggs {
    715  1.21   briggs 	u_char boundary, current;
    716  1.22   briggs 	u_short len;
    717  1.21   briggs 	u_char nlen;
    718  1.24   briggs 	struct ae_ring packet_hdr;
    719  1.21   briggs 	caddr_t packet_ptr;
    720  1.21   briggs 
    721  1.21   briggs loop:
    722  1.21   briggs 	/* Set NIC to page 1 registers to get 'current' pointer. */
    723  1.22   briggs 	NIC_PUT(sc, ED_P0_CR, sc->cr_proto | ED_CR_PAGE_1 | ED_CR_STA);
    724   1.1   briggs 
    725   1.1   briggs 	/*
    726   1.1   briggs 	 * 'sc->next_packet' is the logical beginning of the ring-buffer - i.e.
    727  1.21   briggs 	 * it points to where new data has been buffered.  The 'CURR' (current)
    728  1.21   briggs 	 * register points to the logical end of the ring-buffer - i.e. it
    729  1.21   briggs 	 * points to where additional new data will be added.  We loop here
    730  1.21   briggs 	 * until the logical beginning equals the logical end (or in other
    731  1.21   briggs 	 * words, until the ring-buffer is empty).
    732   1.1   briggs 	 */
    733  1.22   briggs 	current = NIC_GET(sc, ED_P1_CURR);
    734  1.21   briggs 	if (sc->next_packet == current)
    735  1.21   briggs 		return;
    736   1.1   briggs 
    737  1.21   briggs 	/* Set NIC to page 0 registers to update boundary register. */
    738  1.22   briggs 	NIC_PUT(sc, ED_P1_CR, sc->cr_proto | ED_CR_PAGE_0 | ED_CR_STA);
    739   1.1   briggs 
    740  1.21   briggs 	do {
    741  1.21   briggs 		/* Get pointer to this buffer's header structure. */
    742  1.21   briggs 		packet_ptr = sc->mem_ring +
    743  1.22   briggs 		    ((sc->next_packet - sc->rec_page_start) << ED_PAGE_SHIFT);
    744   1.1   briggs 
    745   1.1   briggs 		/*
    746  1.21   briggs 		 * The byte count includes a 4 byte header that was added by
    747  1.21   briggs 		 * the NIC.
    748   1.1   briggs 		 */
    749  1.24   briggs 		packet_hdr = *(struct ae_ring *)packet_ptr;
    750  1.22   briggs 		packet_hdr.count =
    751  1.22   briggs 		    ((packet_hdr.count >> 8) & 0xff) |
    752  1.22   briggs 		    ((packet_hdr.count & 0xff) << 8);
    753  1.21   briggs 		len = packet_hdr.count;
    754   1.1   briggs 
    755   1.1   briggs 		/*
    756  1.21   briggs 		 * Try do deal with old, buggy chips that sometimes duplicate
    757  1.21   briggs 		 * the low byte of the length into the high byte.  We do this
    758  1.21   briggs 		 * by simply ignoring the high byte of the length and always
    759  1.21   briggs 		 * recalculating it.
    760  1.21   briggs 		 *
    761  1.21   briggs 		 * NOTE: sc->next_packet is pointing at the current packet.
    762   1.1   briggs 		 */
    763  1.21   briggs 		if (packet_hdr.next_packet >= sc->next_packet)
    764  1.21   briggs 			nlen = (packet_hdr.next_packet - sc->next_packet);
    765  1.21   briggs 		else
    766  1.21   briggs 			nlen = ((packet_hdr.next_packet - sc->rec_page_start) +
    767  1.21   briggs 				(sc->rec_page_stop - sc->next_packet));
    768  1.21   briggs 		--nlen;
    769  1.22   briggs 		if ((len & ED_PAGE_MASK) + sizeof(packet_hdr) > ED_PAGE_SIZE)
    770  1.21   briggs 			--nlen;
    771  1.22   briggs 		len = (len & ED_PAGE_MASK) | (nlen << ED_PAGE_SHIFT);
    772  1.21   briggs #ifdef DIAGNOSTIC
    773  1.22   briggs 		if (len != packet_hdr.count) {
    774  1.21   briggs 			printf("%s: length does not match next packet pointer\n",
    775  1.21   briggs 			    sc->sc_dev.dv_xname);
    776  1.21   briggs 			printf("%s: len %04x nlen %04x start %02x first %02x curr %02x next %02x stop %02x\n",
    777  1.21   briggs 			    sc->sc_dev.dv_xname, packet_hdr.count, len,
    778  1.21   briggs 			    sc->rec_page_start, sc->next_packet, current,
    779  1.21   briggs 			    packet_hdr.next_packet, sc->rec_page_stop);
    780  1.21   briggs 		}
    781  1.21   briggs #endif
    782   1.1   briggs 
    783   1.1   briggs 		/*
    784  1.21   briggs 		 * Be fairly liberal about what we allow as a "reasonable"
    785  1.21   briggs 		 * length so that a [crufty] packet will make it to BPF (and
    786  1.21   briggs 		 * can thus be analyzed).  Note that all that is really
    787  1.21   briggs 		 * important is that we have a length that will fit into one
    788  1.21   briggs 		 * mbuf cluster or less; the upper layer protocols can then
    789  1.21   briggs 		 * figure out the length from their own length field(s).
    790   1.1   briggs 		 */
    791  1.21   briggs 		if (len <= MCLBYTES &&
    792  1.21   briggs 		    packet_hdr.next_packet >= sc->rec_page_start &&
    793  1.21   briggs 		    packet_hdr.next_packet < sc->rec_page_stop) {
    794  1.21   briggs 			/* Go get packet. */
    795  1.24   briggs 			ae_get_packet(sc, packet_ptr + sizeof(struct ae_ring),
    796  1.24   briggs 			    len - sizeof(struct ae_ring));
    797  1.21   briggs 			++sc->sc_arpcom.ac_if.if_ipackets;
    798  1.21   briggs 		} else {
    799  1.21   briggs 			/* Really BAD.  The ring pointers are corrupted. */
    800  1.21   briggs 			log(LOG_ERR,
    801  1.21   briggs 			    "%s: NIC memory corrupt - invalid packet length %d\n",
    802  1.21   briggs 			    sc->sc_dev.dv_xname, len);
    803  1.21   briggs 			++sc->sc_arpcom.ac_if.if_ierrors;
    804  1.21   briggs 			ae_reset(sc);
    805  1.21   briggs 			return;
    806  1.21   briggs 		}
    807   1.1   briggs 
    808  1.21   briggs 		/* Update next packet pointer. */
    809  1.21   briggs 		sc->next_packet = packet_hdr.next_packet;
    810   1.1   briggs 
    811   1.1   briggs 		/*
    812  1.21   briggs 		 * Update NIC boundary pointer - being careful to keep it one
    813  1.21   briggs 		 * buffer behind (as recommended by NS databook).
    814   1.1   briggs 		 */
    815  1.21   briggs 		boundary = sc->next_packet - 1;
    816  1.21   briggs 		if (boundary < sc->rec_page_start)
    817  1.21   briggs 			boundary = sc->rec_page_stop - 1;
    818  1.22   briggs 		NIC_PUT(sc, ED_P0_BNRY, boundary);
    819  1.21   briggs 	} while (sc->next_packet != current);
    820  1.21   briggs 
    821  1.21   briggs 	goto loop;
    822   1.1   briggs }
    823   1.1   briggs 
    824  1.21   briggs /* Ethernet interface interrupt processor. */
    825  1.22   briggs void
    826  1.22   briggs aeintr(sc)
    827  1.22   briggs 	struct ae_softc *sc;
    828   1.1   briggs {
    829   1.1   briggs 	u_char isr;
    830   1.1   briggs 
    831  1.18   briggs 	aeintr_ctr++;
    832   1.1   briggs 
    833  1.21   briggs 	/* Set NIC to page 0 registers. */
    834  1.22   briggs 	NIC_PUT(sc, ED_P0_CR, sc->cr_proto | ED_CR_PAGE_0 | ED_CR_STA);
    835  1.21   briggs 
    836  1.22   briggs 	isr = NIC_GET(sc, ED_P0_ISR);
    837  1.21   briggs 	if (!isr)
    838  1.22   briggs 		return;
    839   1.1   briggs 
    840  1.21   briggs 	/* Loop until there are no more new interrupts. */
    841  1.21   briggs 	for (;;) {
    842   1.1   briggs 		/*
    843  1.21   briggs 		 * Reset all the bits that we are 'acknowledging' by writing a
    844  1.21   briggs 		 * '1' to each bit position that was set.
    845  1.21   briggs 		 * (Writing a '1' *clears* the bit.)
    846   1.1   briggs 		 */
    847  1.22   briggs 		NIC_PUT(sc, ED_P0_ISR, isr);
    848   1.1   briggs 
    849   1.1   briggs 		/*
    850  1.21   briggs 		 * Handle transmitter interrupts.  Handle these first because
    851  1.21   briggs 		 * the receiver will reset the board under some conditions.
    852   1.1   briggs 		 */
    853  1.22   briggs 		if (isr & (ED_ISR_PTX | ED_ISR_TXE)) {
    854  1.22   briggs 			u_char collisions = NIC_GET(sc, ED_P0_NCR) & 0x0f;
    855   1.1   briggs 
    856   1.1   briggs 			/*
    857  1.21   briggs 			 * Check for transmit error.  If a TX completed with an
    858  1.21   briggs 			 * error, we end up throwing the packet away.  Really
    859   1.1   briggs 			 * the only error that is possible is excessive
    860   1.1   briggs 			 * collisions, and in this case it is best to allow the
    861  1.21   briggs 			 * automatic mechanisms of TCP to backoff the flow.  Of
    862   1.1   briggs 			 * course, with UDP we're screwed, but this is expected
    863   1.1   briggs 			 * when a network is heavily loaded.
    864   1.1   briggs 			 */
    865  1.22   briggs 			(void) NIC_GET(sc, ED_P0_TSR);
    866  1.22   briggs 			if (isr & ED_ISR_TXE) {
    867   1.1   briggs 				/*
    868  1.21   briggs 				 * Excessive collisions (16).
    869   1.1   briggs 				 */
    870  1.22   briggs 				if ((NIC_GET(sc, ED_P0_TSR) & ED_TSR_ABT)
    871  1.21   briggs 				    && (collisions == 0)) {
    872   1.1   briggs 					/*
    873  1.21   briggs 					 * When collisions total 16, the P0_NCR
    874  1.21   briggs 					 * will indicate 0, and the TSR_ABT is
    875  1.21   briggs 					 * set.
    876   1.1   briggs 					 */
    877   1.1   briggs 					collisions = 16;
    878   1.1   briggs 				}
    879   1.1   briggs 
    880  1.21   briggs 				/* Update output errors counter. */
    881  1.21   briggs 				++sc->sc_arpcom.ac_if.if_oerrors;
    882   1.1   briggs 			} else {
    883   1.1   briggs 				/*
    884   1.1   briggs 				 * Update total number of successfully
    885  1.21   briggs 				 * transmitted packets.
    886   1.1   briggs 				 */
    887  1.21   briggs 				++sc->sc_arpcom.ac_if.if_opackets;
    888   1.1   briggs 			}
    889   1.1   briggs 
    890  1.21   briggs 			/* Reset TX busy and output active flags. */
    891   1.1   briggs 			sc->xmit_busy = 0;
    892  1.21   briggs 			sc->sc_arpcom.ac_if.if_flags &= ~IFF_OACTIVE;
    893   1.1   briggs 
    894  1.21   briggs 			/* Clear watchdog timer. */
    895  1.21   briggs 			sc->sc_arpcom.ac_if.if_timer = 0;
    896   1.1   briggs 
    897   1.1   briggs 			/*
    898   1.1   briggs 			 * Add in total number of collisions on last
    899  1.21   briggs 			 * transmission.
    900   1.1   briggs 			 */
    901  1.21   briggs 			sc->sc_arpcom.ac_if.if_collisions += collisions;
    902   1.1   briggs 
    903   1.1   briggs 			/*
    904  1.21   briggs 			 * Decrement buffer in-use count if not zero (can only
    905  1.21   briggs 			 * be zero if a transmitter interrupt occured while not
    906  1.21   briggs 			 * actually transmitting).
    907   1.1   briggs 			 * If data is ready to transmit, start it transmitting,
    908  1.21   briggs 			 * otherwise defer until after handling receiver.
    909   1.1   briggs 			 */
    910  1.21   briggs 			if (sc->txb_inuse && --sc->txb_inuse)
    911  1.21   briggs 				ae_xmit(sc);
    912   1.1   briggs 		}
    913   1.1   briggs 
    914  1.21   briggs 		/* Handle receiver interrupts. */
    915  1.22   briggs 		if (isr & (ED_ISR_PRX | ED_ISR_RXE | ED_ISR_OVW)) {
    916  1.21   briggs 			/*
    917  1.21   briggs 			 * Overwrite warning.  In order to make sure that a
    918  1.21   briggs 			 * lockup of the local DMA hasn't occurred, we reset
    919  1.21   briggs 			 * and re-init the NIC.  The NSC manual suggests only a
    920  1.21   briggs 			 * partial reset/re-init is necessary - but some chips
    921  1.21   briggs 			 * seem to want more.  The DMA lockup has been seen
    922  1.21   briggs 			 * only with early rev chips - Methinks this bug was
    923  1.21   briggs 			 * fixed in later revs.  -DG
    924  1.21   briggs 			 */
    925  1.22   briggs 			if (isr & ED_ISR_OVW) {
    926  1.21   briggs 				++sc->sc_arpcom.ac_if.if_ierrors;
    927  1.21   briggs #ifdef DIAGNOSTIC
    928   1.1   briggs 				log(LOG_WARNING,
    929  1.21   briggs 				    "%s: warning - receiver ring buffer overrun\n",
    930  1.21   briggs 				    sc->sc_dev.dv_xname);
    931  1.21   briggs #endif
    932  1.21   briggs 				/* Stop/reset/re-init NIC. */
    933  1.21   briggs 				ae_reset(sc);
    934  1.21   briggs 			} else {
    935   1.1   briggs 				/*
    936  1.21   briggs 				 * Receiver Error.  One or more of: CRC error,
    937  1.21   briggs 				 * frame alignment error FIFO overrun, or
    938  1.21   briggs 				 * missed packet.
    939   1.1   briggs 				 */
    940  1.22   briggs 				if (isr & ED_ISR_RXE) {
    941  1.21   briggs 					++sc->sc_arpcom.ac_if.if_ierrors;
    942   1.1   briggs #ifdef AE_DEBUG
    943  1.21   briggs 					printf("%s: receive error %x\n",
    944  1.21   briggs 					    sc->sc_dev.dv_xname,
    945  1.22   briggs 					    NIC_GET(sc, ED_P0_RSR));
    946   1.1   briggs #endif
    947   1.1   briggs 				}
    948   1.1   briggs 
    949   1.1   briggs 				/*
    950   1.1   briggs 				 * Go get the packet(s)
    951   1.1   briggs 				 * XXX - Doing this on an error is dubious
    952  1.21   briggs 				 * because there shouldn't be any data to get
    953  1.21   briggs 				 * (we've configured the interface to not
    954  1.21   briggs 				 * accept packets with errors).
    955   1.1   briggs 				 */
    956  1.21   briggs 				ae_rint(sc);
    957   1.1   briggs 			}
    958   1.1   briggs 		}
    959   1.1   briggs 
    960   1.1   briggs 		/*
    961  1.21   briggs 		 * If it looks like the transmitter can take more data, attempt
    962  1.21   briggs 		 * to start output on the interface.  This is done after
    963  1.21   briggs 		 * handling the receiver to give the receiver priority.
    964   1.1   briggs 		 */
    965  1.21   briggs 		if ((sc->sc_arpcom.ac_if.if_flags & IFF_OACTIVE) == 0)
    966  1.21   briggs 			ae_start(&sc->sc_arpcom.ac_if);
    967   1.1   briggs 
    968   1.1   briggs 		/*
    969  1.21   briggs 		 * Return NIC CR to standard state: page 0, remote DMA
    970  1.21   briggs 		 * complete, start (toggling the TXP bit off, even if was just
    971  1.21   briggs 		 * set in the transmit routine, is *okay* - it is 'edge'
    972  1.21   briggs 		 * triggered from low to high).
    973   1.1   briggs 		 */
    974  1.22   briggs 		NIC_PUT(sc, ED_P0_CR, sc->cr_proto | ED_CR_PAGE_0 | ED_CR_STA);
    975   1.1   briggs 
    976   1.1   briggs 		/*
    977  1.21   briggs 		 * If the Network Talley Counters overflow, read them to reset
    978  1.21   briggs 		 * them.  It appears that old 8390's won't clear the ISR flag
    979  1.21   briggs 		 * otherwise - resulting in an infinite loop.
    980   1.1   briggs 		 */
    981  1.22   briggs 		if (isr & ED_ISR_CNT) {
    982  1.22   briggs 			(void) NIC_GET(sc, ED_P0_CNTR0);
    983  1.22   briggs 			(void) NIC_GET(sc, ED_P0_CNTR1);
    984  1.22   briggs 			(void) NIC_GET(sc, ED_P0_CNTR2);
    985   1.1   briggs 		}
    986  1.21   briggs 
    987  1.22   briggs 		isr = NIC_GET(sc, ED_P0_ISR);
    988  1.21   briggs 		if (!isr)
    989  1.22   briggs 			return;
    990   1.1   briggs 	}
    991   1.1   briggs }
    992  1.21   briggs 
    993   1.1   briggs /*
    994  1.21   briggs  * Process an ioctl request.  This code needs some work - it looks pretty ugly.
    995   1.1   briggs  */
    996   1.1   briggs int
    997   1.1   briggs ae_ioctl(ifp, command, data)
    998   1.1   briggs 	register struct ifnet *ifp;
    999  1.21   briggs 	u_long command;
   1000   1.1   briggs 	caddr_t data;
   1001   1.1   briggs {
   1002  1.21   briggs 	struct ae_softc *sc = aecd.cd_devs[ifp->if_unit];
   1003   1.1   briggs 	register struct ifaddr *ifa = (struct ifaddr *)data;
   1004   1.1   briggs 	struct ifreq *ifr = (struct ifreq *)data;
   1005   1.1   briggs 	int s, error = 0;
   1006   1.1   briggs 
   1007  1.21   briggs 	s = splimp();
   1008   1.1   briggs 
   1009   1.1   briggs 	switch (command) {
   1010   1.1   briggs 
   1011   1.1   briggs 	case SIOCSIFADDR:
   1012   1.1   briggs 		ifp->if_flags |= IFF_UP;
   1013   1.1   briggs 
   1014   1.1   briggs 		switch (ifa->ifa_addr->sa_family) {
   1015   1.1   briggs #ifdef INET
   1016   1.1   briggs 		case AF_INET:
   1017  1.21   briggs 			ae_init(sc);
   1018  1.21   briggs 			arp_ifinit(&sc->sc_arpcom, ifa);
   1019   1.1   briggs 			break;
   1020   1.1   briggs #endif
   1021   1.1   briggs #ifdef NS
   1022  1.21   briggs 		/* XXX - This code is probably wrong. */
   1023   1.1   briggs 		case AF_NS:
   1024   1.1   briggs 		    {
   1025  1.21   briggs 			register struct ns_addr *ina = &IA_SNS(ifa)->sns_addr;
   1026   1.1   briggs 
   1027   1.1   briggs 			if (ns_nullhost(*ina))
   1028   1.1   briggs 				ina->x_host =
   1029  1.21   briggs 				    *(union ns_host *)(sc->sc_arpcom.ac_enaddr);
   1030  1.21   briggs 			else
   1031  1.21   briggs 				bcopy(ina->x_host.c_host,
   1032  1.21   briggs 				    sc->sc_arpcom.ac_enaddr,
   1033  1.21   briggs 				    sizeof(sc->sc_arpcom.ac_enaddr));
   1034  1.21   briggs 			/* Set new address. */
   1035  1.11   briggs 			ae_init(sc);
   1036   1.1   briggs 			break;
   1037   1.1   briggs 		    }
   1038   1.1   briggs #endif
   1039   1.1   briggs 		default:
   1040  1.11   briggs 			ae_init(sc);
   1041   1.1   briggs 			break;
   1042   1.1   briggs 		}
   1043   1.1   briggs 		break;
   1044   1.1   briggs 
   1045   1.1   briggs 	case SIOCSIFFLAGS:
   1046  1.21   briggs 		if ((ifp->if_flags & IFF_UP) == 0 &&
   1047  1.21   briggs 		    (ifp->if_flags & IFF_RUNNING) != 0) {
   1048  1.21   briggs 			/*
   1049  1.21   briggs 			 * If interface is marked down and it is running, then
   1050  1.21   briggs 			 * stop it.
   1051  1.21   briggs 			 */
   1052  1.15   briggs 			ae_stop(sc);
   1053   1.1   briggs 			ifp->if_flags &= ~IFF_RUNNING;
   1054  1.21   briggs 		} else if ((ifp->if_flags & IFF_UP) != 0 &&
   1055  1.21   briggs 			   (ifp->if_flags & IFF_RUNNING) == 0) {
   1056  1.21   briggs 			/*
   1057  1.21   briggs 			 * If interface is marked up and it is stopped, then
   1058  1.21   briggs 			 * start it.
   1059  1.21   briggs 			 */
   1060  1.21   briggs 			ae_init(sc);
   1061   1.1   briggs 		} else {
   1062   1.1   briggs 			/*
   1063  1.21   briggs 			 * Reset the interface to pick up changes in any other
   1064  1.21   briggs 			 * flags that affect hardware registers.
   1065   1.1   briggs 			 */
   1066  1.21   briggs 			ae_stop(sc);
   1067  1.21   briggs 			ae_init(sc);
   1068  1.21   briggs 		}
   1069  1.21   briggs 		break;
   1070  1.21   briggs 
   1071  1.21   briggs 	case SIOCADDMULTI:
   1072  1.21   briggs 	case SIOCDELMULTI:
   1073  1.21   briggs 		/* Update our multicast list. */
   1074  1.21   briggs 		error = (command == SIOCADDMULTI) ?
   1075  1.21   briggs 		    ether_addmulti(ifr, &sc->sc_arpcom) :
   1076  1.21   briggs 		    ether_delmulti(ifr, &sc->sc_arpcom);
   1077  1.21   briggs 
   1078  1.21   briggs 		if (error == ENETRESET) {
   1079   1.1   briggs 			/*
   1080  1.21   briggs 			 * Multicast list has changed; set the hardware filter
   1081  1.21   briggs 			 * accordingly.
   1082   1.1   briggs 			 */
   1083  1.21   briggs 			ae_stop(sc); /* XXX for ds_setmcaf? */
   1084  1.21   briggs 			ae_init(sc);
   1085  1.21   briggs 			error = 0;
   1086   1.1   briggs 		}
   1087   1.1   briggs 		break;
   1088   1.1   briggs 
   1089   1.1   briggs 	default:
   1090   1.1   briggs 		error = EINVAL;
   1091   1.1   briggs 	}
   1092  1.21   briggs 
   1093  1.21   briggs 	splx(s);
   1094   1.1   briggs 	return (error);
   1095   1.1   briggs }
   1096   1.1   briggs 
   1097   1.1   briggs /*
   1098   1.1   briggs  * Retreive packet from shared memory and send to the next level up via
   1099  1.21   briggs  * ether_input().  If there is a BPF listener, give a copy to BPF, too.
   1100   1.1   briggs  */
   1101  1.21   briggs void
   1102   1.1   briggs ae_get_packet(sc, buf, len)
   1103   1.1   briggs 	struct ae_softc *sc;
   1104  1.21   briggs 	caddr_t buf;
   1105   1.1   briggs 	u_short len;
   1106   1.1   briggs {
   1107   1.1   briggs 	struct ether_header *eh;
   1108  1.21   briggs     	struct mbuf *m, *ae_ring_to_mbuf();
   1109   1.1   briggs 
   1110  1.21   briggs 	/* Allocate a header mbuf. */
   1111   1.1   briggs 	MGETHDR(m, M_DONTWAIT, MT_DATA);
   1112   1.1   briggs 	if (m == 0)
   1113  1.21   briggs 		return;
   1114  1.21   briggs 	m->m_pkthdr.rcvif = &sc->sc_arpcom.ac_if;
   1115   1.1   briggs 	m->m_pkthdr.len = len;
   1116   1.1   briggs 	m->m_len = 0;
   1117   1.1   briggs 
   1118  1.21   briggs 	/* The following silliness is to make NFS happy. */
   1119   1.1   briggs #define EROUND	((sizeof(struct ether_header) + 3) & ~3)
   1120   1.1   briggs #define EOFF	(EROUND - sizeof(struct ether_header))
   1121   1.1   briggs 
   1122   1.1   briggs 	/*
   1123  1.21   briggs 	 * The following assumes there is room for the ether header in the
   1124  1.21   briggs 	 * header mbuf.
   1125   1.1   briggs 	 */
   1126  1.21   briggs 	m->m_data += EOFF;
   1127  1.21   briggs 	eh = mtod(m, struct ether_header *);
   1128  1.21   briggs 
   1129  1.21   briggs 	word_copy(buf, mtod(m, caddr_t), sizeof(struct ether_header));
   1130   1.1   briggs 	buf += sizeof(struct ether_header);
   1131  1.21   briggs 	m->m_len += sizeof(struct ether_header);
   1132   1.1   briggs 	len -= sizeof(struct ether_header);
   1133   1.1   briggs 
   1134  1.21   briggs 	/* Pull packet off interface. */
   1135  1.21   briggs 	if (ae_ring_to_mbuf(sc, buf, m, len) == 0) {
   1136  1.21   briggs 		m_freem(m);
   1137  1.21   briggs 		return;
   1138   1.1   briggs 	}
   1139   1.1   briggs 
   1140   1.1   briggs #if NBPFILTER > 0
   1141   1.1   briggs 	/*
   1142  1.21   briggs 	 * Check if there's a BPF listener on this interface.  If so, hand off
   1143  1.21   briggs 	 * the raw packet to bpf.
   1144   1.1   briggs 	 */
   1145  1.21   briggs 	if (sc->sc_arpcom.ac_if.if_bpf) {
   1146  1.21   briggs 		bpf_mtap(sc->sc_arpcom.ac_if.if_bpf, m);
   1147   1.1   briggs 
   1148   1.1   briggs 		/*
   1149   1.1   briggs 		 * Note that the interface cannot be in promiscuous mode if
   1150   1.1   briggs 		 * there are no BPF listeners.  And if we are in promiscuous
   1151   1.1   briggs 		 * mode, we have to check if this packet is really ours.
   1152   1.1   briggs 		 */
   1153  1.21   briggs 		if ((sc->sc_arpcom.ac_if.if_flags & IFF_PROMISC) &&
   1154  1.21   briggs 		    (eh->ether_dhost[0] & 1) == 0 && /* !mcast and !bcast */
   1155  1.21   briggs 		    bcmp(eh->ether_dhost, sc->sc_arpcom.ac_enaddr,
   1156  1.21   briggs 			    sizeof(eh->ether_dhost)) != 0) {
   1157  1.21   briggs 			m_freem(m);
   1158   1.1   briggs 			return;
   1159   1.1   briggs 		}
   1160   1.1   briggs 	}
   1161   1.1   briggs #endif
   1162   1.1   briggs 
   1163  1.21   briggs 	/* Fix up data start offset in mbuf to point past ether header. */
   1164  1.21   briggs 	m_adj(m, sizeof(struct ether_header));
   1165  1.21   briggs 	ether_input(&sc->sc_arpcom.ac_if, eh, m);
   1166   1.1   briggs }
   1167   1.1   briggs 
   1168   1.1   briggs /*
   1169  1.21   briggs  * Supporting routines.
   1170   1.1   briggs  */
   1171   1.1   briggs 
   1172   1.1   briggs /*
   1173  1.21   briggs  * Given a source and destination address, copy 'amount' of a packet from the
   1174  1.21   briggs  * ring buffer into a linear destination buffer.  Takes into account ring-wrap.
   1175   1.1   briggs  */
   1176  1.21   briggs static inline caddr_t
   1177  1.21   briggs ae_ring_copy(sc, src, dst, amount)
   1178   1.1   briggs 	struct ae_softc *sc;
   1179  1.21   briggs 	caddr_t src, dst;
   1180   1.1   briggs 	u_short	amount;
   1181   1.1   briggs {
   1182   1.1   briggs 	u_short	tmp_amount;
   1183   1.1   briggs 
   1184  1.21   briggs 	/* Does copy wrap to lower addr in ring buffer? */
   1185  1.21   briggs 	if (src + amount > sc->mem_end) {
   1186  1.21   briggs 		tmp_amount = sc->mem_end - src;
   1187  1.21   briggs 
   1188  1.21   briggs 		/* Copy amount up to end of NIC memory. */
   1189  1.23   briggs 		byte_copy(src, dst, tmp_amount);
   1190  1.21   briggs 
   1191   1.1   briggs 		amount -= tmp_amount;
   1192  1.21   briggs 		src = sc->mem_ring;
   1193   1.1   briggs 		dst += tmp_amount;
   1194   1.1   briggs 	}
   1195   1.1   briggs 
   1196  1.23   briggs 	byte_copy(src, dst, amount);
   1197   1.1   briggs 
   1198  1.21   briggs 	return (src + amount);
   1199   1.1   briggs }
   1200   1.1   briggs 
   1201   1.1   briggs /*
   1202  1.21   briggs  * Copy data from receive buffer to end of mbuf chain allocate additional mbufs
   1203  1.21   briggs  * as needed.  Return pointer to last mbuf in chain.
   1204  1.21   briggs  * sc = ae info (softc)
   1205  1.21   briggs  * src = pointer in ae ring buffer
   1206   1.1   briggs  * dst = pointer to last mbuf in mbuf chain to copy to
   1207   1.1   briggs  * amount = amount of data to copy
   1208   1.1   briggs  */
   1209   1.1   briggs struct mbuf *
   1210  1.21   briggs ae_ring_to_mbuf(sc, src, dst, total_len)
   1211   1.1   briggs 	struct ae_softc *sc;
   1212  1.21   briggs 	caddr_t src;
   1213   1.1   briggs 	struct mbuf *dst;
   1214   1.1   briggs 	u_short total_len;
   1215   1.1   briggs {
   1216   1.1   briggs 	register struct mbuf *m = dst;
   1217   1.1   briggs 
   1218   1.1   briggs 	while (total_len) {
   1219   1.1   briggs 		register u_short amount = min(total_len, M_TRAILINGSPACE(m));
   1220   1.1   briggs 
   1221  1.15   briggs 		if (amount == 0) {
   1222   1.1   briggs 			/*
   1223  1.21   briggs 			 * No more data in this mbuf; alloc another.
   1224  1.21   briggs 			 *
   1225   1.1   briggs 			 * If there is enough data for an mbuf cluster, attempt
   1226  1.21   briggs 			 * to allocate one of those, otherwise, a regular mbuf
   1227  1.21   briggs 			 * will do.
   1228   1.1   briggs 			 * Note that a regular mbuf is always required, even if
   1229  1.21   briggs 			 * we get a cluster - getting a cluster does not
   1230  1.21   briggs 			 * allocate any mbufs, and one is needed to assign the
   1231  1.21   briggs 			 * cluster to.  The mbuf that has a cluster extension
   1232  1.21   briggs 			 * can not be used to contain data - only the cluster
   1233  1.21   briggs 			 * can contain data.
   1234  1.21   briggs 			 */
   1235   1.1   briggs 			dst = m;
   1236   1.1   briggs 			MGET(m, M_DONTWAIT, MT_DATA);
   1237   1.1   briggs 			if (m == 0)
   1238   1.1   briggs 				return (0);
   1239   1.1   briggs 
   1240   1.1   briggs 			if (total_len >= MINCLSIZE)
   1241   1.1   briggs 				MCLGET(m, M_DONTWAIT);
   1242   1.1   briggs 
   1243   1.1   briggs 			m->m_len = 0;
   1244   1.1   briggs 			dst->m_next = m;
   1245   1.1   briggs 			amount = min(total_len, M_TRAILINGSPACE(m));
   1246   1.1   briggs 		}
   1247   1.1   briggs 
   1248  1.15   briggs 		src = ae_ring_copy(sc, src, mtod(m, caddr_t) + m->m_len,
   1249  1.21   briggs 		    amount);
   1250   1.1   briggs 
   1251   1.1   briggs 		m->m_len += amount;
   1252   1.1   briggs 		total_len -= amount;
   1253  1.21   briggs 	}
   1254  1.21   briggs 	return (m);
   1255  1.21   briggs }
   1256  1.21   briggs 
   1257  1.21   briggs /*
   1258  1.21   briggs  * Compute the multicast address filter from the list of multicast addresses we
   1259  1.21   briggs  * need to listen to.
   1260  1.21   briggs  */
   1261  1.21   briggs void
   1262  1.21   briggs ae_getmcaf(ac, af)
   1263  1.21   briggs 	struct arpcom *ac;
   1264  1.21   briggs 	u_long *af;
   1265  1.21   briggs {
   1266  1.21   briggs 	struct ifnet *ifp = &ac->ac_if;
   1267  1.21   briggs 	struct ether_multi *enm;
   1268  1.21   briggs 	register u_char *cp, c;
   1269  1.21   briggs 	register u_long crc;
   1270  1.21   briggs 	register int i, len;
   1271  1.21   briggs 	struct ether_multistep step;
   1272  1.21   briggs 
   1273  1.21   briggs 	/*
   1274  1.21   briggs 	 * Set up multicast address filter by passing all multicast addresses
   1275  1.21   briggs 	 * through a crc generator, and then using the high order 6 bits as an
   1276  1.21   briggs 	 * index into the 64 bit logical address filter.  The high order bit
   1277  1.21   briggs 	 * selects the word, while the rest of the bits select the bit within
   1278  1.21   briggs 	 * the word.
   1279  1.21   briggs 	 */
   1280  1.21   briggs 
   1281  1.21   briggs 	if (ifp->if_flags & IFF_PROMISC) {
   1282  1.21   briggs 		ifp->if_flags |= IFF_ALLMULTI;
   1283  1.21   briggs 		af[0] = af[1] = 0xffffffff;
   1284  1.21   briggs 		return;
   1285  1.21   briggs 	}
   1286  1.21   briggs 
   1287  1.21   briggs 	af[0] = af[1] = 0;
   1288  1.21   briggs 	ETHER_FIRST_MULTI(step, ac, enm);
   1289  1.21   briggs 	while (enm != NULL) {
   1290  1.21   briggs 		if (bcmp(enm->enm_addrlo, enm->enm_addrhi,
   1291  1.21   briggs 		    sizeof(enm->enm_addrlo)) != 0) {
   1292  1.21   briggs 			/*
   1293  1.21   briggs 			 * We must listen to a range of multicast addresses.
   1294  1.21   briggs 			 * For now, just accept all multicasts, rather than
   1295  1.21   briggs 			 * trying to set only those filter bits needed to match
   1296  1.21   briggs 			 * the range.  (At this time, the only use of address
   1297  1.21   briggs 			 * ranges is for IP multicast routing, for which the
   1298  1.21   briggs 			 * range is big enough to require all bits set.)
   1299  1.21   briggs 			 */
   1300  1.21   briggs 			ifp->if_flags |= IFF_ALLMULTI;
   1301  1.21   briggs 			af[0] = af[1] = 0xffffffff;
   1302  1.21   briggs 			return;
   1303  1.21   briggs 		}
   1304   1.1   briggs 
   1305  1.21   briggs 		cp = enm->enm_addrlo;
   1306  1.21   briggs 		crc = 0xffffffff;
   1307  1.21   briggs 		for (len = sizeof(enm->enm_addrlo); --len >= 0;) {
   1308  1.21   briggs 			c = *cp++;
   1309  1.21   briggs 			for (i = 8; --i >= 0;) {
   1310  1.21   briggs 				if (((crc & 0x80000000) ? 1 : 0) ^ (c & 0x01)) {
   1311  1.21   briggs 					crc <<= 1;
   1312  1.21   briggs 					crc ^= 0x04c11db6 | 1;
   1313  1.21   briggs 				} else
   1314  1.21   briggs 					crc <<= 1;
   1315  1.21   briggs 				c >>= 1;
   1316  1.21   briggs 			}
   1317  1.21   briggs 		}
   1318  1.21   briggs 		/* Just want the 6 most significant bits. */
   1319  1.21   briggs 		crc >>= 26;
   1320  1.21   briggs 
   1321  1.21   briggs 		/* Turn on the corresponding bit in the filter. */
   1322  1.21   briggs 		af[crc >> 5] |= 1 << ((crc & 0x1f) ^ 0);
   1323  1.21   briggs 
   1324  1.21   briggs 		ETHER_NEXT_MULTI(step, enm);
   1325   1.1   briggs 	}
   1326  1.21   briggs 	ifp->if_flags &= ~IFF_ALLMULTI;
   1327  1.21   briggs }
   1328  1.21   briggs 
   1329  1.21   briggs /*
   1330  1.21   briggs  * Copy packet from mbuf to the board memory
   1331  1.21   briggs  *
   1332  1.21   briggs  * Currently uses an extra buffer/extra memory copy,
   1333  1.21   briggs  * unless the whole packet fits in one mbuf.
   1334  1.21   briggs  *
   1335  1.21   briggs  */
   1336  1.21   briggs u_short
   1337  1.21   briggs ae_put(sc, m, buf)
   1338  1.21   briggs 	struct ae_softc *sc;
   1339  1.21   briggs 	struct mbuf *m;
   1340  1.21   briggs 	caddr_t buf;
   1341  1.21   briggs {
   1342  1.21   briggs 	u_char *data, savebyte[2];
   1343  1.21   briggs 	int len, wantbyte;
   1344  1.24   briggs 	u_short totlen=0;
   1345  1.21   briggs 
   1346  1.21   briggs 	wantbyte = 0;
   1347  1.21   briggs 
   1348  1.21   briggs 	for (; m != 0; m = m->m_next) {
   1349  1.21   briggs 		data = mtod(m, u_char *);
   1350  1.21   briggs 		len = m->m_len;
   1351  1.21   briggs 		totlen += len;
   1352  1.21   briggs 		if (len > 0) {
   1353  1.21   briggs 			/* Finish the last word. */
   1354  1.21   briggs 			if (wantbyte) {
   1355  1.21   briggs 				savebyte[1] = *data;
   1356  1.21   briggs 				word_copy(savebyte, buf, 2);
   1357  1.21   briggs 				buf += 2;
   1358  1.21   briggs 				data++;
   1359  1.21   briggs 				len--;
   1360  1.21   briggs 				wantbyte = 0;
   1361  1.21   briggs 			}
   1362  1.21   briggs 			/* Output contiguous words. */
   1363  1.21   briggs 			if (len > 1) {
   1364  1.21   briggs 				word_copy(data, buf, len);
   1365  1.21   briggs 				buf += len & ~1;
   1366  1.21   briggs 				data += len & ~1;
   1367  1.21   briggs 				len &= 1;
   1368  1.21   briggs 			}
   1369  1.21   briggs 			/* Save last byte, if necessary. */
   1370  1.21   briggs 			if (len == 1) {
   1371  1.21   briggs 				savebyte[0] = *data;
   1372  1.21   briggs 				wantbyte = 1;
   1373  1.21   briggs 			}
   1374  1.21   briggs 		}
   1375  1.21   briggs 	}
   1376  1.21   briggs 
   1377  1.21   briggs 	if (wantbyte) {
   1378  1.21   briggs 		savebyte[1] = 0;
   1379  1.21   briggs 		word_copy(savebyte, buf, 2);
   1380  1.21   briggs 	}
   1381  1.21   briggs 
   1382  1.21   briggs 	return (totlen);
   1383   1.1   briggs }
   1384