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if_le_vme.c revision 1.8
      1  1.8       leo /*	$NetBSD: if_le_vme.c,v 1.8 1998/12/09 08:51:12 leo Exp $	*/
      2  1.1       leo 
      3  1.1       leo /*-
      4  1.1       leo  * Copyright (c) 1997 Leo Weppelman.  All rights reserved.
      5  1.1       leo  * Copyright (c) 1995 Charles M. Hannum.  All rights reserved.
      6  1.1       leo  * Copyright (c) 1992, 1993
      7  1.1       leo  *	The Regents of the University of California.  All rights reserved.
      8  1.1       leo  *
      9  1.1       leo  * This code is derived from software contributed to Berkeley by
     10  1.1       leo  * Ralph Campbell and Rick Macklem.
     11  1.1       leo  *
     12  1.1       leo  * Redistribution and use in source and binary forms, with or without
     13  1.1       leo  * modification, are permitted provided that the following conditions
     14  1.1       leo  * are met:
     15  1.1       leo  * 1. Redistributions of source code must retain the above copyright
     16  1.1       leo  *    notice, this list of conditions and the following disclaimer.
     17  1.1       leo  * 2. Redistributions in binary form must reproduce the above copyright
     18  1.1       leo  *    notice, this list of conditions and the following disclaimer in the
     19  1.1       leo  *    documentation and/or other materials provided with the distribution.
     20  1.1       leo  * 3. All advertising materials mentioning features or use of this software
     21  1.1       leo  *    must display the following acknowledgement:
     22  1.1       leo  *	This product includes software developed by the University of
     23  1.1       leo  *	California, Berkeley and its contributors.
     24  1.1       leo  * 4. Neither the name of the University nor the names of its contributors
     25  1.1       leo  *    may be used to endorse or promote products derived from this software
     26  1.1       leo  *    without specific prior written permission.
     27  1.1       leo  *
     28  1.1       leo  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     29  1.1       leo  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     30  1.1       leo  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     31  1.1       leo  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     32  1.1       leo  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     33  1.1       leo  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     34  1.1       leo  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     35  1.1       leo  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     36  1.1       leo  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     37  1.1       leo  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     38  1.1       leo  * SUCH DAMAGE.
     39  1.1       leo  *
     40  1.1       leo  *	@(#)if_le.c	8.2 (Berkeley) 11/16/93
     41  1.1       leo  */
     42  1.1       leo 
     43  1.5  jonathan #include "opt_inet.h"
     44  1.1       leo #include "bpfilter.h"
     45  1.1       leo 
     46  1.1       leo #include <sys/param.h>
     47  1.1       leo #include <sys/systm.h>
     48  1.1       leo #include <sys/mbuf.h>
     49  1.1       leo #include <sys/syslog.h>
     50  1.1       leo #include <sys/socket.h>
     51  1.1       leo #include <sys/device.h>
     52  1.1       leo 
     53  1.1       leo #include <net/if.h>
     54  1.3   thorpej #include <net/if_media.h>
     55  1.4       leo #include <net/if_ether.h>
     56  1.1       leo 
     57  1.1       leo #ifdef INET
     58  1.1       leo #include <netinet/in.h>
     59  1.4       leo #include <netinet/if_inarp.h>
     60  1.1       leo #endif
     61  1.1       leo 
     62  1.1       leo #include <machine/cpu.h>
     63  1.1       leo #include <machine/bus.h>
     64  1.1       leo #include <machine/iomap.h>
     65  1.1       leo #include <machine/scu.h>
     66  1.1       leo 
     67  1.1       leo #include <atari/atari/device.h>
     68  1.1       leo #include <atari/atari/intr.h>
     69  1.1       leo 
     70  1.6  drochner #include <dev/ic/lancereg.h>
     71  1.6  drochner #include <dev/ic/lancevar.h>
     72  1.1       leo #include <dev/ic/am7990reg.h>
     73  1.1       leo #include <dev/ic/am7990var.h>
     74  1.1       leo 
     75  1.1       leo #include <atari/vme/vmevar.h>
     76  1.1       leo #include <atari/vme/if_levar.h>
     77  1.1       leo 
     78  1.7       leo /*
     79  1.7       leo  * All cards except BVME410 have 64KB RAM. However.... On the Riebl cards the
     80  1.7       leo  * area between the offsets 0xee70-0xeec0 is used to store config data.
     81  1.7       leo  */
     82  1.1       leo struct le_addresses {
     83  1.1       leo 	u_long	reg_addr;
     84  1.1       leo 	u_long	mem_addr;
     85  1.1       leo 	int	irq;
     86  1.7       leo 	int	reg_size;
     87  1.7       leo 	int	mem_size;
     88  1.8       leo 	int	type_hint;
     89  1.1       leo } lestd[] = {
     90  1.8       leo 	{ 0xfe00fff0, 0xfe010000, IRQUNK, 16, 64*1024,
     91  1.8       leo 				LE_OLD_RIEBL|LE_NEW_RIEBL }, /* Riebl	*/
     92  1.8       leo 	{ 0xffcffff0, 0xffcf0000,      5, 16, 64*1024,
     93  1.8       leo 				LE_PAM },		     /* PAM	*/
     94  1.8       leo 	{ 0xfecffff0, 0xfecf0000,      5, 16, 64*1024,
     95  1.8       leo 				LE_ROTHRON },		     /* Rhotron	*/
     96  1.8       leo 	{ 0xfeff4100, 0xfe000000,      4,  8, VMECF_MEMSIZ_DEFAULT,
     97  1.8       leo 				LE_BVME410 }		     /* BVME410 */
     98  1.1       leo };
     99  1.1       leo 
    100  1.1       leo #define	NLESTD	(sizeof(lestd) / sizeof(lestd[0]))
    101  1.1       leo 
    102  1.1       leo /*
    103  1.1       leo  * Default mac for RIEBL cards without a (working) battery. The first 4 bytes
    104  1.1       leo  * are the manufacturer id.
    105  1.1       leo  */
    106  1.1       leo static u_char riebl_def_mac[] = {
    107  1.1       leo 	0x00, 0x00, 0x36, 0x04, 0x00, 0x00
    108  1.1       leo };
    109  1.1       leo 
    110  1.1       leo static int le_intr __P((struct le_softc *, int));
    111  1.1       leo static void lepseudointr __P((struct le_softc *, void *));
    112  1.1       leo static int le_vme_match __P((struct device *, struct cfdata *, void *));
    113  1.1       leo static void le_vme_attach __P((struct device *, struct device *, void *));
    114  1.1       leo static int probe_addresses __P((bus_space_tag_t *, bus_space_tag_t *,
    115  1.1       leo 				bus_space_handle_t *, bus_space_handle_t *));
    116  1.6  drochner static void riebl_skip_reserved_area __P((struct lance_softc *));
    117  1.7       leo static int nm93c06_read __P((bus_space_tag_t, bus_space_handle_t, int));
    118  1.7       leo static int bvme410_mem_size __P((bus_space_tag_t, u_long));
    119  1.7       leo static void bvme410_copytobuf __P((struct lance_softc *, void *, int, int));
    120  1.7       leo static void bvme410_zerobuf __P((struct lance_softc *, int, int));
    121  1.1       leo 
    122  1.1       leo struct cfattach le_vme_ca = {
    123  1.1       leo 	sizeof(struct le_softc), le_vme_match, le_vme_attach
    124  1.1       leo };
    125  1.1       leo 
    126  1.6  drochner #if defined(_KERNEL) && !defined(_LKM)
    127  1.6  drochner #include "opt_ddb.h"
    128  1.6  drochner #endif
    129  1.6  drochner 
    130  1.6  drochner #ifdef DDB
    131  1.6  drochner #define	integrate
    132  1.6  drochner #define hide
    133  1.6  drochner #else
    134  1.6  drochner #define	integrate	static __inline
    135  1.6  drochner #define hide		static
    136  1.6  drochner #endif
    137  1.6  drochner 
    138  1.6  drochner hide void lewrcsr __P((struct lance_softc *, u_int16_t, u_int16_t));
    139  1.6  drochner hide u_int16_t lerdcsr __P((struct lance_softc *, u_int16_t));
    140  1.1       leo 
    141  1.1       leo hide void
    142  1.1       leo lewrcsr(sc, port, val)
    143  1.6  drochner 	struct lance_softc	*sc;
    144  1.1       leo 	u_int16_t		port, val;
    145  1.1       leo {
    146  1.1       leo 	struct le_softc		*lesc = (struct le_softc *)sc;
    147  1.1       leo 	int			s;
    148  1.1       leo 
    149  1.1       leo 	s = splhigh();
    150  1.1       leo 	bus_space_write_2(lesc->sc_iot, lesc->sc_ioh, LER_RAP, port);
    151  1.1       leo 	bus_space_write_2(lesc->sc_iot, lesc->sc_ioh, LER_RDP, val);
    152  1.1       leo 	splx(s);
    153  1.1       leo }
    154  1.1       leo 
    155  1.1       leo hide u_int16_t
    156  1.1       leo lerdcsr(sc, port)
    157  1.6  drochner 	struct lance_softc	*sc;
    158  1.1       leo 	u_int16_t		port;
    159  1.1       leo {
    160  1.1       leo 	struct le_softc		*lesc = (struct le_softc *)sc;
    161  1.1       leo 	u_int16_t		val;
    162  1.1       leo 	int			s;
    163  1.1       leo 
    164  1.1       leo 	s = splhigh();
    165  1.1       leo 	bus_space_write_2(lesc->sc_iot, lesc->sc_ioh, LER_RAP, port);
    166  1.1       leo 	val = bus_space_read_2(lesc->sc_iot, lesc->sc_ioh, LER_RDP);
    167  1.1       leo 	splx(s);
    168  1.1       leo 
    169  1.1       leo 	return (val);
    170  1.1       leo }
    171  1.1       leo 
    172  1.1       leo static int
    173  1.1       leo le_vme_match(parent, cfp, aux)
    174  1.1       leo 	struct device	*parent;
    175  1.1       leo 	struct cfdata	*cfp;
    176  1.1       leo 	void		*aux;
    177  1.1       leo {
    178  1.1       leo 	struct vme_attach_args	*va = aux;
    179  1.1       leo 	int			i;
    180  1.1       leo 	bus_space_tag_t		iot;
    181  1.1       leo 	bus_space_tag_t		memt;
    182  1.1       leo 	bus_space_handle_t	ioh;
    183  1.1       leo 	bus_space_handle_t	memh;
    184  1.1       leo 
    185  1.1       leo 	iot  = va->va_iot;
    186  1.1       leo 	memt = va->va_memt;
    187  1.1       leo 
    188  1.1       leo 	for (i = 0; i < NLESTD; i++) {
    189  1.1       leo 		struct le_addresses	*le_ap = &lestd[i];
    190  1.1       leo 		int			found  = 0;
    191  1.1       leo 
    192  1.1       leo 		if ((va->va_iobase != IOBASEUNK)
    193  1.1       leo 		     && (va->va_iobase != le_ap->reg_addr))
    194  1.1       leo 			continue;
    195  1.1       leo 
    196  1.1       leo 		if ((va->va_maddr != MADDRUNK)
    197  1.1       leo 		     && (va->va_maddr != le_ap->mem_addr))
    198  1.1       leo 			continue;
    199  1.1       leo 
    200  1.1       leo 		if ((le_ap->irq != IRQUNK) && (va->va_irq != le_ap->irq))
    201  1.1       leo 			continue;
    202  1.1       leo 
    203  1.7       leo 		if (bus_space_map(iot, le_ap->reg_addr, le_ap->reg_size, 0, &ioh)) {
    204  1.1       leo 			printf("leprobe: cannot map io-area\n");
    205  1.1       leo 			return (0);
    206  1.1       leo 		}
    207  1.7       leo 		if (le_ap->mem_size == VMECF_MEMSIZ_DEFAULT) {
    208  1.7       leo 			if (bus_space_peek_2(iot, ioh, BVME410_IVEC)) {
    209  1.7       leo 				bus_space_write_2(iot, ioh, BVME410_BAR, 0x1); /* XXX */
    210  1.7       leo 				le_ap->mem_size = bvme410_mem_size(memt, le_ap->mem_addr);
    211  1.7       leo 			}
    212  1.7       leo 		}
    213  1.7       leo 		if (le_ap->mem_size == VMECF_MEMSIZ_DEFAULT) {
    214  1.7       leo 			bus_space_unmap(iot, (caddr_t)le_ap->reg_addr, le_ap->reg_size);
    215  1.7       leo 			continue;
    216  1.7       leo 		}
    217  1.7       leo 
    218  1.7       leo 		if (bus_space_map(memt, le_ap->mem_addr, le_ap->mem_size, 0, &memh)) {
    219  1.7       leo 			bus_space_unmap(iot, (caddr_t)le_ap->reg_addr, le_ap->reg_size);
    220  1.1       leo 			printf("leprobe: cannot map memory-area\n");
    221  1.1       leo 			return (0);
    222  1.1       leo 		}
    223  1.1       leo 		found = probe_addresses(&iot, &memt, &ioh, &memh);
    224  1.7       leo 		bus_space_unmap(iot, (caddr_t)le_ap->reg_addr, le_ap->reg_size);
    225  1.7       leo 		bus_space_unmap(memt, (caddr_t)le_ap->mem_addr, le_ap->mem_size);
    226  1.1       leo 
    227  1.1       leo 		if (found) {
    228  1.1       leo 			va->va_iobase = le_ap->reg_addr;
    229  1.7       leo 			va->va_iosize = le_ap->reg_size;
    230  1.1       leo 			va->va_maddr  = le_ap->mem_addr;
    231  1.7       leo 			va->va_msize  = le_ap->mem_size;
    232  1.8       leo 			va->va_aux    = le_ap;
    233  1.1       leo 			if (va->va_irq == IRQUNK)
    234  1.1       leo 				va->va_irq = le_ap->irq;
    235  1.1       leo 			return 1;
    236  1.1       leo 		}
    237  1.1       leo     }
    238  1.1       leo     return (0);
    239  1.1       leo }
    240  1.1       leo 
    241  1.1       leo static int
    242  1.1       leo probe_addresses(iot, memt, ioh, memh)
    243  1.1       leo bus_space_tag_t		*iot;
    244  1.1       leo bus_space_tag_t		*memt;
    245  1.1       leo bus_space_handle_t	*ioh;
    246  1.1       leo bus_space_handle_t	*memh;
    247  1.1       leo {
    248  1.1       leo 	/*
    249  1.1       leo 	 * Test accesibility of register and memory area
    250  1.1       leo 	 */
    251  1.1       leo 	if(!bus_space_peek_2(*iot, *ioh, LER_RDP))
    252  1.1       leo 		return 0;
    253  1.1       leo 	if(!bus_space_peek_1(*memt, *memh, 0))
    254  1.1       leo 		return 0;
    255  1.1       leo 
    256  1.1       leo 	/*
    257  1.1       leo 	 * Test for writable memory
    258  1.1       leo 	 */
    259  1.1       leo 	bus_space_write_2(*memt, *memh, 0, 0xa5a5);
    260  1.1       leo 	if (bus_space_read_2(*memt, *memh, 0) != 0xa5a5)
    261  1.1       leo 		return 0;
    262  1.1       leo 
    263  1.1       leo 	/*
    264  1.1       leo 	 * Test writability of selector port.
    265  1.1       leo 	 */
    266  1.1       leo 	bus_space_write_2(*iot, *ioh, LER_RAP, LE_CSR1);
    267  1.1       leo 	if (bus_space_read_2(*iot, *ioh, LER_RAP) != LE_CSR1)
    268  1.1       leo 		return 0;
    269  1.1       leo 
    270  1.1       leo 	/*
    271  1.1       leo 	 * Do a small register test
    272  1.1       leo 	 */
    273  1.1       leo 	bus_space_write_2(*iot, *ioh, LER_RAP, LE_CSR0);
    274  1.1       leo 	bus_space_write_2(*iot, *ioh, LER_RDP, LE_C0_INIT | LE_C0_STOP);
    275  1.1       leo 	if (bus_space_read_2(*iot, *ioh, LER_RDP) != LE_C0_STOP)
    276  1.1       leo 		return 0;
    277  1.1       leo 
    278  1.1       leo 	bus_space_write_2(*iot, *ioh, LER_RDP, LE_C0_STOP);
    279  1.1       leo 	if (bus_space_read_2(*iot, *ioh, LER_RDP) != LE_C0_STOP)
    280  1.1       leo 		return 0;
    281  1.1       leo 
    282  1.1       leo 	return 1;
    283  1.1       leo }
    284  1.1       leo 
    285  1.1       leo /*
    286  1.1       leo  * Interrupt mess. Because the card's interrupt is hardwired to either
    287  1.1       leo  * ipl5 or ipl3 (mostly on ipl5) and raising splnet to spl5() just won't do
    288  1.1       leo  * (it kills the serial at the least), we use a 2-level interrupt sceme. The
    289  1.1       leo  * card interrupt is routed to 'le_intr'. If the previous ipl was below
    290  1.1       leo  * splnet, just call the mi-function. If not, save the interrupt status,
    291  1.1       leo  * turn off card interrupts (the card is *very* persistent) and arrange
    292  1.1       leo  * for a softint 'callback' through 'lepseudointr'.
    293  1.1       leo  */
    294  1.1       leo static int
    295  1.1       leo le_intr(lesc, sr)
    296  1.1       leo 	struct le_softc	*lesc;
    297  1.1       leo 	int		 sr;
    298  1.1       leo {
    299  1.6  drochner 	struct lance_softc	*sc = &lesc->sc_am7990.lsc;
    300  1.1       leo 	u_int16_t		csr0;
    301  1.1       leo 
    302  1.1       leo 	if ((sr & PSL_IPL) < IPL_NET)
    303  1.1       leo 		am7990_intr(sc);
    304  1.1       leo 	else {
    305  1.1       leo 		sc->sc_saved_csr0 = csr0 = lerdcsr(sc, LE_CSR0);
    306  1.1       leo 		lewrcsr(sc, LE_CSR0, csr0 & ~LE_C0_INEA);
    307  1.1       leo 		add_sicallback((si_farg)lepseudointr, lesc, sc);
    308  1.1       leo 	}
    309  1.1       leo 	return 1;
    310  1.1       leo }
    311  1.1       leo 
    312  1.1       leo 
    313  1.1       leo static void
    314  1.1       leo lepseudointr(lesc, sc)
    315  1.1       leo struct le_softc	*lesc;
    316  1.1       leo void		*sc;
    317  1.1       leo {
    318  1.1       leo 	int	s;
    319  1.1       leo 
    320  1.1       leo 	s = splx(lesc->sc_splval);
    321  1.1       leo 	am7990_intr(sc);
    322  1.1       leo 	splx(s);
    323  1.1       leo }
    324  1.1       leo 
    325  1.1       leo static void
    326  1.1       leo le_vme_attach(parent, self, aux)
    327  1.1       leo 	struct device *parent, *self;
    328  1.1       leo 	void *aux;
    329  1.1       leo {
    330  1.1       leo 	struct le_softc		*lesc = (struct le_softc *)self;
    331  1.6  drochner 	struct lance_softc	*sc = &lesc->sc_am7990.lsc;
    332  1.1       leo 	struct vme_attach_args	*va = aux;
    333  1.1       leo 	bus_space_handle_t	ioh;
    334  1.1       leo 	bus_space_handle_t	memh;
    335  1.8       leo 	struct le_addresses	*le_ap;
    336  1.1       leo 	int			i;
    337  1.1       leo 
    338  1.1       leo 	printf("\n%s: ", sc->sc_dev.dv_xname);
    339  1.1       leo 
    340  1.1       leo 	if (bus_space_map(va->va_iot, va->va_iobase, va->va_iosize, 0, &ioh))
    341  1.1       leo 		panic("leattach: cannot map io-area\n");
    342  1.1       leo 	if (bus_space_map(va->va_memt, va->va_maddr, va->va_msize, 0, &memh))
    343  1.1       leo 		panic("leattach: cannot map mem-area\n");
    344  1.1       leo 
    345  1.1       leo 	lesc->sc_iot    = va->va_iot;
    346  1.1       leo 	lesc->sc_ioh    = ioh;
    347  1.1       leo 	lesc->sc_memt   = va->va_memt;
    348  1.1       leo 	lesc->sc_memh   = memh;
    349  1.1       leo 	lesc->sc_splval = (va->va_irq << 8) | PSL_S; /* XXX */
    350  1.8       leo 	le_ap           = (struct le_addresses *)va->va_aux;
    351  1.1       leo 
    352  1.1       leo 	/*
    353  1.1       leo 	 * Go on to find board type
    354  1.1       leo 	 */
    355  1.8       leo 	if ((le_ap->type_hint & LE_PAM)
    356  1.8       leo 		&& bus_space_peek_1(va->va_iot, ioh, LER_EEPROM)) {
    357  1.1       leo 		printf("PAM card");
    358  1.1       leo 		lesc->sc_type = LE_PAM;
    359  1.1       leo 		bus_space_read_1(va->va_iot, ioh, LER_MEME);
    360  1.1       leo 	}
    361  1.8       leo 	else if((le_ap->type_hint & LE_BVME410)
    362  1.8       leo 		&& bus_space_peek_2(va->va_iot, ioh, BVME410_IVEC)) {
    363  1.7       leo 		printf("BVME410");
    364  1.7       leo 		lesc->sc_type = LE_BVME410;
    365  1.7       leo 	}
    366  1.8       leo 	else if (le_ap->type_hint & (LE_NEW_RIEBL|LE_OLD_RIEBL)) {
    367  1.1       leo 		printf("Riebl card");
    368  1.1       leo 		if(bus_space_read_4(va->va_memt, memh, RIEBL_MAGIC_ADDR)
    369  1.1       leo 								== RIEBL_MAGIC)
    370  1.1       leo 			lesc->sc_type = LE_NEW_RIEBL;
    371  1.1       leo 		else {
    372  1.1       leo 			printf("(without battery) ");
    373  1.1       leo 			lesc->sc_type = LE_OLD_RIEBL;
    374  1.1       leo 		}
    375  1.1       leo 	}
    376  1.8       leo 	else printf("le_vme_attach: Unsupported card!");
    377  1.1       leo 
    378  1.7       leo 	switch (lesc->sc_type) {
    379  1.7       leo 	    case LE_BVME410:
    380  1.7       leo 		sc->sc_copytodesc   = bvme410_copytobuf;
    381  1.7       leo 		sc->sc_copyfromdesc = lance_copyfrombuf_contig;
    382  1.7       leo 		sc->sc_copytobuf    = bvme410_copytobuf;
    383  1.7       leo 		sc->sc_copyfrombuf  = lance_copyfrombuf_contig;
    384  1.7       leo 		sc->sc_zerobuf      = bvme410_zerobuf;
    385  1.7       leo 		break;
    386  1.7       leo 	    default:
    387  1.7       leo 		sc->sc_copytodesc   = lance_copytobuf_contig;
    388  1.7       leo 		sc->sc_copyfromdesc = lance_copyfrombuf_contig;
    389  1.7       leo 		sc->sc_copytobuf    = lance_copytobuf_contig;
    390  1.7       leo 		sc->sc_copyfrombuf  = lance_copyfrombuf_contig;
    391  1.7       leo 		sc->sc_zerobuf      = lance_zerobuf_contig;
    392  1.7       leo 		break;
    393  1.7       leo 	}
    394  1.1       leo 
    395  1.1       leo 	sc->sc_rdcsr   = lerdcsr;
    396  1.1       leo 	sc->sc_wrcsr   = lewrcsr;
    397  1.1       leo 	sc->sc_hwinit  = NULL;
    398  1.1       leo 	sc->sc_conf3   = LE_C3_BSWP;
    399  1.1       leo 	sc->sc_addr    = 0;
    400  1.1       leo 	sc->sc_memsize = va->va_msize;
    401  1.1       leo 	sc->sc_mem     = (void *)memh; /* XXX */
    402  1.1       leo 
    403  1.1       leo 	/*
    404  1.1       leo 	 * Get MAC address
    405  1.1       leo 	 */
    406  1.1       leo 	switch (lesc->sc_type) {
    407  1.1       leo 	    case LE_OLD_RIEBL:
    408  1.4       leo 		bcopy(riebl_def_mac, sc->sc_enaddr,
    409  1.4       leo 					sizeof(sc->sc_enaddr));
    410  1.1       leo 		break;
    411  1.1       leo 	    case LE_NEW_RIEBL:
    412  1.4       leo 		for (i = 0; i < sizeof(sc->sc_enaddr); i++)
    413  1.4       leo 		    sc->sc_enaddr[i] =
    414  1.1       leo 			bus_space_read_1(va->va_memt, memh, i + RIEBL_MAC_ADDR);
    415  1.1       leo 			break;
    416  1.1       leo 	    case LE_PAM:
    417  1.1       leo 		i = bus_space_read_1(va->va_iot, ioh, LER_EEPROM);
    418  1.4       leo 		for (i = 0; i < sizeof(sc->sc_enaddr); i++) {
    419  1.4       leo 		    sc->sc_enaddr[i] =
    420  1.1       leo 			(bus_space_read_2(va->va_memt, memh, 2 * i) << 4) |
    421  1.1       leo 			(bus_space_read_2(va->va_memt, memh, 2 * i + 1) & 0xf);
    422  1.1       leo 		}
    423  1.1       leo 		i = bus_space_read_1(va->va_iot, ioh, LER_MEME);
    424  1.1       leo 		break;
    425  1.7       leo 	    case LE_BVME410:
    426  1.7       leo 		for (i = 0; i < (sizeof(sc->sc_enaddr) >> 1); i++) {
    427  1.7       leo 		    u_int16_t tmp;
    428  1.7       leo 
    429  1.7       leo 		    tmp = nm93c06_read(va->va_iot, ioh, i);
    430  1.7       leo 		    sc->sc_enaddr[2 * i] = (tmp >> 8) & 0xff;
    431  1.7       leo 		    sc->sc_enaddr[2 * i + 1] = tmp & 0xff;
    432  1.7       leo 		}
    433  1.7       leo 		bus_space_write_2(va->va_iot, ioh, BVME410_BAR, 0x1); /* XXX */
    434  1.1       leo 	}
    435  1.1       leo 
    436  1.6  drochner 	am7990_config(&lesc->sc_am7990);
    437  1.1       leo 
    438  1.1       leo 	if ((lesc->sc_type == LE_OLD_RIEBL) || (lesc->sc_type == LE_NEW_RIEBL))
    439  1.1       leo 		riebl_skip_reserved_area(sc);
    440  1.1       leo 
    441  1.1       leo 	/*
    442  1.1       leo 	 * XXX: We always use uservector 64....
    443  1.1       leo 	 */
    444  1.1       leo 	if ((lesc->sc_intr = intr_establish(64, USER_VEC, 0,
    445  1.1       leo 				(hw_ifun_t)le_intr, lesc)) == NULL) {
    446  1.1       leo 		printf("le_vme_attach: Can't establish interrupt\n");
    447  1.1       leo 		return;
    448  1.1       leo 	}
    449  1.1       leo 
    450  1.1       leo 	/*
    451  1.1       leo 	 * Notify the card of the vector
    452  1.1       leo 	 */
    453  1.1       leo 	switch (lesc->sc_type) {
    454  1.1       leo 		case LE_OLD_RIEBL:
    455  1.1       leo 		case LE_NEW_RIEBL:
    456  1.1       leo 			bus_space_write_2(va->va_memt, memh, RIEBL_IVEC_ADDR,
    457  1.1       leo 								64 + 64);
    458  1.1       leo 			break;
    459  1.1       leo 		case LE_PAM:
    460  1.1       leo 			bus_space_write_1(va->va_iot, ioh, LER_IVEC, 64 + 64);
    461  1.1       leo 			break;
    462  1.7       leo 		case LE_BVME410:
    463  1.7       leo 			bus_space_write_2(va->va_iot, ioh, BVME410_IVEC, 64 + 64);
    464  1.7       leo 			break;
    465  1.1       leo 	}
    466  1.1       leo 
    467  1.1       leo 	/*
    468  1.1       leo 	 * Unmask the VME-interrupt we're on
    469  1.1       leo 	 */
    470  1.1       leo 	if (machineid & ATARI_TT)
    471  1.1       leo 		SCU->vme_mask |= 1 << va->va_irq;
    472  1.1       leo }
    473  1.1       leo 
    474  1.1       leo /*
    475  1.1       leo  * True if 'addr' containe within [start,len]
    476  1.1       leo  */
    477  1.1       leo #define WITHIN(start, len, addr)	\
    478  1.1       leo 		((addr >= start) && ((addr) <= ((start) + (len))))
    479  1.1       leo static void
    480  1.1       leo riebl_skip_reserved_area(sc)
    481  1.6  drochner 	struct lance_softc	*sc;
    482  1.1       leo {
    483  1.1       leo 	int	offset = 0;
    484  1.1       leo 	int	i;
    485  1.1       leo 
    486  1.1       leo 	for(i = 0; i < sc->sc_nrbuf; i++) {
    487  1.1       leo 		if (WITHIN(sc->sc_rbufaddr[i], LEBLEN, RIEBL_RES_START)
    488  1.1       leo 		    || WITHIN(sc->sc_rbufaddr[i], LEBLEN, RIEBL_RES_END)) {
    489  1.1       leo 			offset = RIEBL_RES_END - sc->sc_rbufaddr[i];
    490  1.1       leo 		}
    491  1.1       leo 		sc->sc_rbufaddr[i] += offset;
    492  1.1       leo 	}
    493  1.1       leo 
    494  1.1       leo 	for(i = 0; i < sc->sc_ntbuf; i++) {
    495  1.1       leo 		if (WITHIN(sc->sc_tbufaddr[i], LEBLEN, RIEBL_RES_START)
    496  1.1       leo 		    || WITHIN(sc->sc_tbufaddr[i], LEBLEN, RIEBL_RES_END)) {
    497  1.1       leo 			offset = RIEBL_RES_END - sc->sc_tbufaddr[i];
    498  1.1       leo 		}
    499  1.1       leo 		sc->sc_tbufaddr[i] += offset;
    500  1.1       leo 	}
    501  1.1       leo }
    502  1.7       leo 
    503  1.7       leo static int
    504  1.7       leo nm93c06_read(iot, ioh, nm93c06reg)
    505  1.7       leo 	bus_space_tag_t iot;
    506  1.7       leo 	bus_space_handle_t ioh;
    507  1.7       leo 	int nm93c06reg;
    508  1.7       leo {
    509  1.7       leo 	int bar;
    510  1.7       leo 	int shift;
    511  1.7       leo 	int bits = 0x180 | (nm93c06reg & 0xf);
    512  1.7       leo 	int data = 0;
    513  1.7       leo 
    514  1.7       leo 	bar = 1<<BVME410_CS_SHIFT;
    515  1.7       leo 	bus_space_write_2(iot, ioh, BVME410_BAR, bar);
    516  1.7       leo 	delay(1); /* tCSS = 1 us */
    517  1.7       leo 	for (shift = 9; shift >= 0; shift--) {
    518  1.7       leo 		if (((bits >> shift) & 1) == 1)
    519  1.7       leo 			bar |= 1<<BVME410_DIN_SHIFT;
    520  1.7       leo 		else
    521  1.7       leo 			bar &= ~(1<<BVME410_DIN_SHIFT);
    522  1.7       leo 		bus_space_write_2(iot, ioh, BVME410_BAR, bar);
    523  1.7       leo 		delay(1); /* tDIS = 0.4 us */
    524  1.7       leo 		bar |= 1<<BVME410_CLK_SHIFT;
    525  1.7       leo 		bus_space_write_2(iot, ioh, BVME410_BAR, bar);
    526  1.7       leo 		delay(2); /* tSKH = 1 us, tSKH + tSKL >= 4 us */
    527  1.7       leo 		bar &= ~(1<<BVME410_CLK_SHIFT);
    528  1.7       leo 		bus_space_write_2(iot, ioh, BVME410_BAR, bar);
    529  1.7       leo 		delay(2); /* tSKL = 1 us, tSKH + tSKL >= 4 us */
    530  1.7       leo 	}
    531  1.7       leo 	bar &= ~(1<<BVME410_DIN_SHIFT);
    532  1.7       leo 	for (shift = 15; shift >= 0; shift--) {
    533  1.7       leo 		delay(1); /* tDIS = 100 ns, BVM manual says 0.4 us */
    534  1.7       leo 		bar |= 1<<BVME410_CLK_SHIFT;
    535  1.7       leo 		bus_space_write_2(iot, ioh, BVME410_BAR, bar);
    536  1.7       leo 		delay(2); /* tSKH = 1 us, tSKH + tSKL >= 4 us */
    537  1.7       leo 		data |= (bus_space_read_2(iot, ioh, BVME410_BAR) & 1) << shift;
    538  1.7       leo 		bar &= ~(1<<BVME410_CLK_SHIFT);
    539  1.7       leo 		bus_space_write_2(iot, ioh, BVME410_BAR, bar);
    540  1.7       leo 		delay(2); /* tSKL = 1 us, tSKH + tSKL >= 4 us */
    541  1.7       leo 	}
    542  1.7       leo 	bar &= ~(1<<BVME410_CS_SHIFT);
    543  1.7       leo 	bus_space_write_2(iot, ioh, BVME410_BAR, bar);
    544  1.7       leo 	delay(1); /* tCS = 1 us */
    545  1.7       leo 	return data;
    546  1.7       leo }
    547  1.7       leo 
    548  1.7       leo static int
    549  1.7       leo bvme410_mem_size(memt, mem_addr)
    550  1.7       leo 	bus_space_tag_t memt;
    551  1.7       leo 	u_long mem_addr;
    552  1.7       leo {
    553  1.7       leo 	bus_space_handle_t memh;
    554  1.7       leo 	int r;
    555  1.7       leo 
    556  1.7       leo 	if (bus_space_map(memt, mem_addr, 256*1024, 0, &memh))
    557  1.7       leo 		return VMECF_MEMSIZ_DEFAULT;
    558  1.7       leo 	if (!bus_space_peek_1(memt, memh, 0)) {
    559  1.7       leo 		bus_space_unmap(memt, (caddr_t)mem_addr, 256*1024);
    560  1.7       leo 		return VMECF_MEMSIZ_DEFAULT;
    561  1.7       leo 	}
    562  1.7       leo 	bus_space_write_1(memt, memh, 0, 128);
    563  1.7       leo 	bus_space_write_1(memt, memh, 64*1024, 32);
    564  1.7       leo 	bus_space_write_1(memt, memh, 32*1024, 8);
    565  1.7       leo 	r = (int)(bus_space_read_1(memt, memh, 0) * 2048);
    566  1.7       leo 	bus_space_unmap(memt, (caddr_t)mem_addr, 256*1024);
    567  1.7       leo 	return r;
    568  1.7       leo }
    569  1.7       leo 
    570  1.7       leo /*
    571  1.7       leo  * Need to be careful when writing to the bvme410 dual port memory.
    572  1.7       leo  * Continue writing each byte until it reads back the same.
    573  1.7       leo  */
    574  1.7       leo 
    575  1.7       leo static void
    576  1.7       leo bvme410_copytobuf(sc, from, boff, len)
    577  1.7       leo 	struct lance_softc *sc;
    578  1.7       leo 	void *from;
    579  1.7       leo 	int boff, len;
    580  1.7       leo {
    581  1.7       leo 	volatile char *buf = (volatile char *) sc->sc_mem;
    582  1.7       leo 	char *f = (char *) from;
    583  1.7       leo 
    584  1.7       leo 	for (buf += boff; len; buf++,f++,len--)
    585  1.7       leo 		while (*buf != *f)
    586  1.7       leo 			*buf = *f;
    587  1.7       leo }
    588  1.7       leo 
    589  1.7       leo static void
    590  1.7       leo bvme410_zerobuf(sc, boff, len)
    591  1.7       leo 	struct lance_softc *sc;
    592  1.7       leo 	int boff, len;
    593  1.7       leo {
    594  1.7       leo 	volatile char *buf = (volatile char *)sc->sc_mem;
    595  1.7       leo 
    596  1.7       leo 	for (buf += boff; len; buf++,len--)
    597  1.7       leo 		while (*buf != '\0')
    598  1.7       leo 			*buf = '\0';
    599  1.7       leo }
    600  1.7       leo 
    601