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cs89x0.c revision 1.19.10.1
      1  1.19.10.1      yamt /*	$NetBSD: cs89x0.c,v 1.19.10.1 2006/10/22 06:05:44 yamt Exp $	*/
      2       1.14     chris 
      3       1.14     chris /*
      4       1.14     chris  * Copyright (c) 2004 Christopher Gilbert
      5       1.14     chris  * All rights reserved.
      6       1.14     chris  *
      7       1.14     chris  * 1. Redistributions of source code must retain the above copyright
      8       1.14     chris  *    notice, this list of conditions and the following disclaimer.
      9       1.14     chris  * 2. Redistributions in binary form must reproduce the above copyright
     10       1.14     chris  *    notice, this list of conditions and the following disclaimer in the
     11       1.14     chris  *    documentation and/or other materials provided with the distribution.
     12       1.14     chris  * 3. The name of the company nor the name of the author may be used to
     13       1.14     chris  *    endorse or promote products derived from this software without specific
     14       1.14     chris  *    prior written permission.
     15       1.14     chris  *
     16       1.14     chris  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR IMPLIED
     17       1.14     chris  * WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF
     18       1.14     chris  * MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
     19       1.14     chris  * IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT,
     20       1.14     chris  * INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES
     21       1.14     chris  * (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR
     22       1.14     chris  * SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     23       1.14     chris  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     24       1.14     chris  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     25       1.14     chris  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     26       1.14     chris  * SUCH DAMAGE.
     27       1.14     chris  */
     28        1.1      yamt 
     29        1.1      yamt /*
     30        1.1      yamt  * Copyright 1997
     31        1.1      yamt  * Digital Equipment Corporation. All rights reserved.
     32        1.1      yamt  *
     33        1.1      yamt  * This software is furnished under license and may be used and
     34        1.1      yamt  * copied only in accordance with the following terms and conditions.
     35        1.1      yamt  * Subject to these conditions, you may download, copy, install,
     36        1.1      yamt  * use, modify and distribute this software in source and/or binary
     37        1.1      yamt  * form. No title or ownership is transferred hereby.
     38        1.1      yamt  *
     39        1.1      yamt  * 1) Any source code used, modified or distributed must reproduce
     40        1.1      yamt  *    and retain this copyright notice and list of conditions as
     41        1.1      yamt  *    they appear in the source file.
     42        1.1      yamt  *
     43        1.1      yamt  * 2) No right is granted to use any trade name, trademark, or logo of
     44        1.1      yamt  *    Digital Equipment Corporation. Neither the "Digital Equipment
     45        1.1      yamt  *    Corporation" name nor any trademark or logo of Digital Equipment
     46        1.1      yamt  *    Corporation may be used to endorse or promote products derived
     47        1.1      yamt  *    from this software without the prior written permission of
     48        1.1      yamt  *    Digital Equipment Corporation.
     49        1.1      yamt  *
     50        1.1      yamt  * 3) This software is provided "AS-IS" and any express or implied
     51        1.1      yamt  *    warranties, including but not limited to, any implied warranties
     52        1.1      yamt  *    of merchantability, fitness for a particular purpose, or
     53        1.1      yamt  *    non-infringement are disclaimed. In no event shall DIGITAL be
     54        1.1      yamt  *    liable for any damages whatsoever, and in particular, DIGITAL
     55        1.1      yamt  *    shall not be liable for special, indirect, consequential, or
     56        1.1      yamt  *    incidental damages or damages for lost profits, loss of
     57        1.1      yamt  *    revenue or loss of use, whether such damages arise in contract,
     58        1.1      yamt  *    negligence, tort, under statute, in equity, at law or otherwise,
     59        1.1      yamt  *    even if advised of the possibility of such damage.
     60        1.1      yamt  */
     61        1.1      yamt 
     62        1.1      yamt /*
     63        1.1      yamt **++
     64        1.1      yamt **  FACILITY
     65        1.1      yamt **
     66        1.1      yamt **     Device Driver for the Crystal CS8900 ISA Ethernet Controller.
     67        1.1      yamt **
     68        1.1      yamt **  ABSTRACT
     69        1.1      yamt **
     70        1.1      yamt **     This module provides standard ethernet access for INET protocols
     71        1.1      yamt **     only.
     72        1.1      yamt **
     73        1.1      yamt **  AUTHORS
     74        1.1      yamt **
     75        1.1      yamt **     Peter Dettori     SEA - Software Engineering.
     76        1.1      yamt **
     77        1.1      yamt **  CREATION DATE:
     78        1.1      yamt **
     79        1.1      yamt **     13-Feb-1997.
     80        1.1      yamt **
     81        1.1      yamt **  MODIFICATION HISTORY (Digital):
     82        1.1      yamt **
     83        1.1      yamt **     Revision 1.27  1998/01/20  17:59:40  cgd
     84        1.1      yamt **     update for moved headers
     85        1.1      yamt **
     86        1.1      yamt **     Revision 1.26  1998/01/12  19:29:36  cgd
     87        1.1      yamt **     use arm32/isa versions of isadma code.
     88        1.1      yamt **
     89        1.1      yamt **     Revision 1.25  1997/12/12  01:35:27  cgd
     90        1.1      yamt **     convert to use new arp code (from Brini)
     91        1.1      yamt **
     92        1.1      yamt **     Revision 1.24  1997/12/10  22:31:56  cgd
     93        1.1      yamt **     trim some fat (get rid of ability to explicitly supply enet addr, since
     94        1.1      yamt **     it was never used and added a bunch of code which really doesn't belong in
     95        1.1      yamt **     an enet driver), and clean up slightly.
     96        1.1      yamt **
     97        1.1      yamt **     Revision 1.23  1997/10/06  16:42:12  cgd
     98        1.1      yamt **     copyright notices
     99        1.1      yamt **
    100        1.1      yamt **     Revision 1.22  1997/06/20  19:38:01  chaiken
    101        1.1      yamt **     fixes some smartcard problems
    102        1.1      yamt **
    103        1.1      yamt **     Revision 1.21  1997/06/10 02:56:20  grohn
    104        1.1      yamt **     Added call to ledNetActive
    105        1.1      yamt **
    106        1.1      yamt **     Revision 1.20  1997/06/05 00:47:06  dettori
    107        1.1      yamt **     Changed cs_process_rx_dma to reset and re-initialise the
    108        1.1      yamt **     ethernet chip when DMA gets out of sync, or mbufs
    109        1.1      yamt **     can't be allocated.
    110        1.1      yamt **
    111        1.1      yamt **     Revision 1.19  1997/06/03 03:09:58  dettori
    112        1.1      yamt **     Turn off sc_txbusy flag when a transmit underrun
    113        1.1      yamt **     occurs.
    114        1.1      yamt **
    115        1.1      yamt **     Revision 1.18  1997/06/02 00:04:35  dettori
    116        1.1      yamt **     redefined the transmit table to get around the nfs_timer bug while we are
    117        1.1      yamt **     looking into it further.
    118        1.1      yamt **
    119        1.1      yamt **     Also changed interrupts from EDGE to LEVEL.
    120        1.1      yamt **
    121        1.1      yamt **     Revision 1.17  1997/05/27 23:31:01  dettori
    122        1.1      yamt **     Pulled out changes to DMAMODE defines.
    123        1.1      yamt **
    124        1.1      yamt **     Revision 1.16  1997/05/23 04:25:16  cgd
    125        1.1      yamt **     reformat log so it fits in 80cols
    126        1.1      yamt **
    127        1.1      yamt **     Revision 1.15  1997/05/23  04:22:18  cgd
    128        1.1      yamt **     remove the existing copyright notice (which Peter Dettori indicated
    129        1.1      yamt **     was incorrect, copied from an existing NetBSD file only so that the
    130        1.1      yamt **     file would have a copyright notice on it, and which he'd intended to
    131        1.1      yamt **     replace).  Replace it with a Digital copyright notice, cloned from
    132        1.1      yamt **     ess.c.  It's not really correct either (it indicates that the source
    133        1.1      yamt **     is Digital confidential!), but is better than nothing and more
    134        1.1      yamt **     correct than what was there before.
    135        1.1      yamt **
    136        1.1      yamt **     Revision 1.14  1997/05/23  04:12:50  cgd
    137        1.1      yamt **     use an adaptive transmit start algorithm: start by telling the chip
    138        1.1      yamt **     to start transmitting after 381 bytes have been fed to it.  if that
    139        1.1      yamt **     gets transmit underruns, ramp down to 1021 bytes then "whole
    140        1.1      yamt **     packet."  If successful at a given level for a while, try the next
    141        1.1      yamt **     more agressive level.  This code doesn't ever try to start
    142        1.1      yamt **     transmitting after 5 bytes have been sent to the NIC, because
    143        1.1      yamt **     that underruns rather regularly.  The back-off and ramp-up mechanism
    144        1.1      yamt **     could probably be tuned a little bit, but this works well enough to
    145        1.1      yamt **     support > 1MB/s transmit rates on a clear ethernet (which is about
    146        1.1      yamt **     20-25% better than the driver had previously been getting).
    147        1.1      yamt **
    148        1.1      yamt **     Revision 1.13  1997/05/22  21:06:54  cgd
    149        1.1      yamt **     redo cs_copy_tx_frame() from scratch.  It had a fatal flaw: it was blindly
    150        1.1      yamt **     casting from u_int8_t * to u_int16_t * without worrying about alignment
    151        1.1      yamt **     issues.  This would cause bogus data to be spit out for mbufs with
    152        1.1      yamt **     misaligned data.  For instance, it caused the following bits to appear
    153        1.1      yamt **     on the wire:
    154        1.1      yamt **     	... etBND 1S2C .SHA(K) R ...
    155        1.1      yamt **     	    11112222333344445555
    156        1.1      yamt **     which should have appeared as:
    157        1.1      yamt **     	... NetBSD 1.2C (SHARK) ...
    158        1.1      yamt **     	    11112222333344445555
    159        1.1      yamt **     Note the apparent 'rotate' of the bytes in the word, which was due to
    160        1.1      yamt **     incorrect unaligned accesses.  This data corruption was the cause of
    161        1.1      yamt **     incoming telnet/rlogin hangs.
    162        1.1      yamt **
    163        1.1      yamt **     Revision 1.12  1997/05/22  01:55:32  cgd
    164        1.1      yamt **     reformat log so it fits in 80cols
    165        1.1      yamt **
    166        1.1      yamt **     Revision 1.11  1997/05/22  01:50:27  cgd
    167        1.1      yamt **     * enable input packet address checking in the BPF+IFF_PROMISCUOUS case,
    168        1.1      yamt **       so packets aimed at other hosts don't get sent to ether_input().
    169        1.1      yamt **     * Add a static const char *rcsid initialized with an RCS Id tag, so that
    170        1.1      yamt **       you can easily tell (`strings`) what version of the driver is in your
    171        1.1      yamt **       kernel binary.
    172        1.1      yamt **     * get rid of ether_cmp().  It was inconsistently used, not necessarily
    173        1.1      yamt **       safe, and not really a performance win anyway.  (It was only used when
    174        1.1      yamt **       setting up the multicast logical address filter, which is an
    175        1.1      yamt **       infrequent event.  It could have been used in the IFF_PROMISCUOUS
    176        1.1      yamt **       address check above, but the benefit of it vs. memcmp would be
    177        1.1      yamt **       inconsequential, there.)  Use memcmp() instead.
    178        1.1      yamt **     * restructure csStartOuput to avoid the following bugs in the case where
    179        1.1      yamt **       txWait was being set:
    180        1.1      yamt **         * it would accidentally drop the outgoing packet if told to wait
    181        1.1      yamt **           but the outgoing packet queue was empty.
    182        1.1      yamt **         * it would bpf_mtap() the outgoing packet multiple times (once for
    183        1.1      yamt **           each time it was told to wait), and would also recalculate
    184        1.1      yamt **           the length of the outgoing packet each time it was told to
    185        1.1      yamt **           wait.
    186        1.1      yamt **       While there, rename txWait to txLoop, since with the new structure of
    187        1.1      yamt **       the code, the latter name makes more sense.
    188        1.1      yamt **
    189        1.1      yamt **     Revision 1.10  1997/05/19  02:03:20  cgd
    190        1.1      yamt **     Set RX_CTL in cs_set_ladr_filt(), rather than cs_initChip().  cs_initChip()
    191        1.1      yamt **     is the only caller of cs_set_ladr_filt(), and always calls it, so this
    192        1.1      yamt **     ends up being logically the same.  In cs_set_ladr_filt(), if IFF_PROMISC
    193        1.1      yamt **     is set, enable promiscuous mode (and set IFF_ALLMULTI), otherwise behave
    194        1.1      yamt **     as before.
    195        1.1      yamt **
    196        1.1      yamt **     Revision 1.9  1997/05/19  01:45:37  cgd
    197        1.1      yamt **     create a new function, cs_ether_input(), which does received-packet
    198        1.1      yamt **     BPF and ether_input processing.  This code used to be in three places,
    199        1.1      yamt **     and centralizing it will make adding IFF_PROMISC support much easier.
    200        1.1      yamt **     Also, in cs_copy_tx_frame(), put it some (currently disabled) code to
    201        1.1      yamt **     do copies with bus_space_write_region_2().  It's more correct, and
    202        1.1      yamt **     potentially more efficient.  That function needs to be gutted (to
    203        1.1      yamt **     deal properly with alignment issues, which it currently does wrong),
    204        1.1      yamt **     however, and the change doesn't gain much, so there's no point in
    205        1.1      yamt **     enabling it now.
    206        1.1      yamt **
    207        1.1      yamt **     Revision 1.8  1997/05/19  01:17:10  cgd
    208        1.1      yamt **     fix a comment re: the setting of the TxConfig register.  Clean up
    209        1.1      yamt **     interface counter maintenance (make it use standard idiom).
    210        1.1      yamt **
    211        1.1      yamt **--
    212        1.1      yamt */
    213        1.1      yamt 
    214        1.1      yamt #include <sys/cdefs.h>
    215  1.19.10.1      yamt __KERNEL_RCSID(0, "$NetBSD: cs89x0.c,v 1.19.10.1 2006/10/22 06:05:44 yamt Exp $");
    216        1.1      yamt 
    217        1.1      yamt #include "opt_inet.h"
    218        1.1      yamt 
    219        1.1      yamt #include <sys/param.h>
    220        1.1      yamt #include <sys/systm.h>
    221        1.1      yamt #include <sys/mbuf.h>
    222        1.1      yamt #include <sys/syslog.h>
    223        1.1      yamt #include <sys/socket.h>
    224        1.1      yamt #include <sys/device.h>
    225        1.1      yamt #include <sys/malloc.h>
    226        1.1      yamt #include <sys/ioctl.h>
    227        1.1      yamt #include <sys/errno.h>
    228        1.1      yamt 
    229        1.1      yamt #include "rnd.h"
    230        1.1      yamt #if NRND > 0
    231        1.1      yamt #include <sys/rnd.h>
    232        1.1      yamt #endif
    233        1.1      yamt 
    234        1.1      yamt #include <net/if.h>
    235        1.1      yamt #include <net/if_ether.h>
    236        1.1      yamt #include <net/if_media.h>
    237        1.1      yamt #ifdef INET
    238        1.1      yamt #include <netinet/in.h>
    239        1.1      yamt #include <netinet/if_inarp.h>
    240        1.1      yamt #endif
    241        1.1      yamt 
    242        1.1      yamt #include "bpfilter.h"
    243        1.1      yamt #if NBPFILTER > 0
    244        1.1      yamt #include <net/bpf.h>
    245        1.1      yamt #include <net/bpfdesc.h>
    246        1.1      yamt #endif
    247        1.1      yamt 
    248        1.1      yamt #include <uvm/uvm_extern.h>
    249        1.1      yamt 
    250        1.1      yamt #include <machine/bus.h>
    251        1.1      yamt #include <machine/intr.h>
    252        1.1      yamt 
    253        1.1      yamt #include <dev/ic/cs89x0reg.h>
    254        1.1      yamt #include <dev/ic/cs89x0var.h>
    255        1.1      yamt 
    256        1.1      yamt #ifdef SHARK
    257        1.3     pooka #include <shark/shark/sequoia.h>
    258        1.1      yamt #endif
    259        1.1      yamt 
    260        1.1      yamt /*
    261        1.1      yamt  * MACRO DEFINITIONS
    262        1.1      yamt  */
    263        1.1      yamt #define CS_OUTPUT_LOOP_MAX 100	/* max times round notorious tx loop */
    264        1.1      yamt 
    265        1.1      yamt /*
    266        1.1      yamt  * FUNCTION PROTOTYPES
    267        1.1      yamt  */
    268        1.5  augustss void	cs_get_default_media(struct cs_softc *);
    269        1.5  augustss int	cs_get_params(struct cs_softc *);
    270        1.5  augustss int	cs_get_enaddr(struct cs_softc *);
    271        1.5  augustss int	cs_reset_chip(struct cs_softc *);
    272        1.5  augustss void	cs_reset(void *);
    273        1.5  augustss int	cs_ioctl(struct ifnet *, u_long, caddr_t);
    274        1.5  augustss void	cs_initChip(struct cs_softc *);
    275        1.5  augustss void	cs_buffer_event(struct cs_softc *, u_int16_t);
    276        1.5  augustss void	cs_transmit_event(struct cs_softc *, u_int16_t);
    277        1.5  augustss void	cs_receive_event(struct cs_softc *, u_int16_t);
    278        1.5  augustss void	cs_process_receive(struct cs_softc *);
    279        1.5  augustss void	cs_process_rx_early(struct cs_softc *);
    280        1.5  augustss void	cs_start_output(struct ifnet *);
    281        1.5  augustss void	cs_copy_tx_frame(struct cs_softc *, struct mbuf *);
    282        1.5  augustss void	cs_set_ladr_filt(struct cs_softc *, struct ethercom *);
    283        1.5  augustss u_int16_t cs_hash_index(char *);
    284        1.5  augustss void	cs_counter_event(struct cs_softc *, u_int16_t);
    285        1.5  augustss 
    286        1.5  augustss int	cs_mediachange(struct ifnet *);
    287        1.5  augustss void	cs_mediastatus(struct ifnet *, struct ifmediareq *);
    288        1.5  augustss 
    289        1.5  augustss static int cs_enable(struct cs_softc *);
    290        1.5  augustss static void cs_disable(struct cs_softc *);
    291        1.5  augustss static void cs_stop(struct ifnet *, int);
    292        1.5  augustss static void cs_power(int, void *);
    293       1.14     chris static int cs_scan_eeprom(struct cs_softc *);
    294       1.14     chris static int cs_read_pktpg_from_eeprom(struct cs_softc *, int, u_int16_t *);
    295       1.14     chris 
    296        1.1      yamt 
    297        1.1      yamt /*
    298        1.1      yamt  * GLOBAL DECLARATIONS
    299        1.1      yamt  */
    300        1.1      yamt 
    301        1.1      yamt /*
    302        1.1      yamt  * Xmit-early table.
    303        1.1      yamt  *
    304        1.1      yamt  * To get better performance, we tell the chip to start packet
    305        1.1      yamt  * transmission before the whole packet is copied to the chip.
    306        1.1      yamt  * However, this can fail under load.  When it fails, we back off
    307        1.1      yamt  * to a safer setting for a little while.
    308        1.1      yamt  *
    309        1.1      yamt  * txcmd is the value of txcmd used to indicate when to start transmission.
    310        1.1      yamt  * better is the next 'better' state in the table.
    311        1.1      yamt  * better_count is the number of output packets before transition to the
    312        1.1      yamt  *   better state.
    313        1.1      yamt  * worse is the next 'worse' state in the table.
    314        1.1      yamt  *
    315        1.1      yamt  * Transition to the next worse state happens automatically when a
    316        1.1      yamt  * transmittion underrun occurs.
    317        1.1      yamt  */
    318        1.1      yamt struct cs_xmit_early {
    319        1.1      yamt 	u_int16_t       txcmd;
    320        1.1      yamt 	int             better;
    321        1.1      yamt 	int             better_count;
    322        1.1      yamt 	int             worse;
    323        1.1      yamt } cs_xmit_early_table[3] = {
    324        1.1      yamt 	{ TX_CMD_START_381,	0,	INT_MAX,	1, },
    325        1.1      yamt 	{ TX_CMD_START_1021,	0,	50000,		2, },
    326        1.1      yamt 	{ TX_CMD_START_ALL,	1,	5000,		2, },
    327        1.1      yamt };
    328        1.1      yamt 
    329        1.1      yamt int cs_default_media[] = {
    330        1.1      yamt 	IFM_ETHER|IFM_10_2,
    331        1.1      yamt 	IFM_ETHER|IFM_10_5,
    332        1.1      yamt 	IFM_ETHER|IFM_10_T,
    333        1.1      yamt 	IFM_ETHER|IFM_10_T|IFM_FDX,
    334        1.1      yamt };
    335        1.1      yamt int cs_default_nmedia = sizeof(cs_default_media) / sizeof(cs_default_media[0]);
    336        1.1      yamt 
    337       1.16     perry int
    338       1.16     perry cs_attach(struct cs_softc *sc, u_int8_t *enaddr, int *media,
    339        1.5  augustss 	  int nmedia, int defmedia)
    340        1.1      yamt {
    341        1.1      yamt 	struct ifnet *ifp = &sc->sc_ethercom.ec_if;
    342        1.1      yamt 	const char *chipname, *medname;
    343        1.1      yamt 	u_int16_t reg;
    344        1.1      yamt 	int i;
    345        1.1      yamt 
    346        1.1      yamt 	/* Start out in IO mode */
    347        1.1      yamt 	sc->sc_memorymode = FALSE;
    348        1.1      yamt 
    349        1.1      yamt 	/* make sure we're right */
    350        1.1      yamt 	for (i = 0; i < 10000; i++) {
    351        1.1      yamt 		reg = CS_READ_PACKET_PAGE(sc, PKTPG_EISA_NUM);
    352        1.1      yamt 		if (reg == EISA_NUM_CRYSTAL) {
    353        1.1      yamt 			break;
    354        1.1      yamt 		}
    355        1.1      yamt 	}
    356        1.1      yamt 	if (i == 10000) {
    357        1.1      yamt 		printf("%s: wrong id(0x%x)\n", sc->sc_dev.dv_xname, reg);
    358        1.1      yamt 		return 1; /* XXX should panic? */
    359        1.1      yamt 	}
    360        1.1      yamt 
    361        1.1      yamt 	reg = CS_READ_PACKET_PAGE(sc, PKTPG_PRODUCT_ID);
    362        1.1      yamt 	sc->sc_prodid = reg & PROD_ID_MASK;
    363        1.1      yamt 	sc->sc_prodrev = (reg & PROD_REV_MASK) >> 8;
    364        1.1      yamt 
    365        1.1      yamt 	switch (sc->sc_prodid) {
    366        1.1      yamt 	case PROD_ID_CS8900:
    367        1.1      yamt 		chipname = "CS8900";
    368        1.1      yamt 		break;
    369        1.1      yamt 	case PROD_ID_CS8920:
    370        1.1      yamt 		chipname = "CS8920";
    371        1.1      yamt 		break;
    372        1.1      yamt 	case PROD_ID_CS8920M:
    373        1.1      yamt 		chipname = "CS8920M";
    374        1.1      yamt 		break;
    375        1.1      yamt 	default:
    376        1.1      yamt 		panic("cs_attach: impossible");
    377        1.1      yamt 	}
    378        1.1      yamt 
    379        1.1      yamt 	/*
    380        1.1      yamt 	 * the first thing to do is check that the mbuf cluster size is
    381        1.1      yamt 	 * greater than the MTU for an ethernet frame. The code depends on
    382        1.1      yamt 	 * this and to port this to a OS where this was not the case would
    383        1.1      yamt 	 * not be straightforward.
    384        1.2      yamt 	 *
    385        1.2      yamt 	 * we need 1 byte spare because our
    386        1.2      yamt 	 * packet read loop can overrun.
    387        1.2      yamt 	 * and we may need pad bytes to align ip header.
    388        1.1      yamt 	 */
    389        1.2      yamt 	if (MCLBYTES < ETHER_MAX_LEN + 1 +
    390        1.2      yamt 		ALIGN(sizeof(struct ether_header)) - sizeof(struct ether_header)) {
    391        1.1      yamt 		printf("%s: MCLBYTES too small for Ethernet frame\n",
    392        1.1      yamt 		    sc->sc_dev.dv_xname);
    393        1.1      yamt 		return 1;
    394        1.1      yamt 	}
    395        1.1      yamt 
    396        1.1      yamt 	/* Start out not transmitting */
    397        1.1      yamt 	sc->sc_txbusy = FALSE;
    398        1.1      yamt 
    399        1.1      yamt 	/* Set up early transmit threshhold */
    400        1.1      yamt 	sc->sc_xe_ent = 0;
    401        1.1      yamt 	sc->sc_xe_togo = cs_xmit_early_table[sc->sc_xe_ent].better_count;
    402        1.1      yamt 
    403        1.1      yamt 	/* Initialize ifnet structure. */
    404        1.1      yamt 	strcpy(ifp->if_xname, sc->sc_dev.dv_xname);
    405        1.1      yamt 	ifp->if_softc = sc;
    406        1.1      yamt 	ifp->if_start = cs_start_output;
    407        1.1      yamt 	ifp->if_init = cs_init;
    408        1.1      yamt 	ifp->if_ioctl = cs_ioctl;
    409        1.1      yamt 	ifp->if_stop = cs_stop;
    410        1.1      yamt 	ifp->if_watchdog = NULL;	/* no watchdog at this stage */
    411        1.1      yamt 	ifp->if_flags = IFF_SIMPLEX | IFF_NOTRAILERS |
    412        1.1      yamt 	    IFF_BROADCAST | IFF_MULTICAST;
    413        1.1      yamt 	IFQ_SET_READY(&ifp->if_snd);
    414        1.1      yamt 
    415        1.1      yamt 	/* Initialize ifmedia structures. */
    416        1.1      yamt 	ifmedia_init(&sc->sc_media, 0, cs_mediachange, cs_mediastatus);
    417        1.1      yamt 
    418        1.1      yamt 	if (media != NULL) {
    419        1.1      yamt 		for (i = 0; i < nmedia; i++)
    420        1.1      yamt 			ifmedia_add(&sc->sc_media, media[i], 0, NULL);
    421        1.1      yamt 		ifmedia_set(&sc->sc_media, defmedia);
    422        1.1      yamt 	} else {
    423        1.1      yamt 		for (i = 0; i < cs_default_nmedia; i++)
    424        1.1      yamt 			ifmedia_add(&sc->sc_media, cs_default_media[i],
    425        1.1      yamt 			    0, NULL);
    426        1.1      yamt 		cs_get_default_media(sc);
    427        1.1      yamt 	}
    428       1.16     perry 
    429       1.14     chris 	if (sc->sc_cfgflags & CFGFLG_PARSE_EEPROM) {
    430       1.14     chris 		if (cs_scan_eeprom(sc) == CS_ERROR) {
    431       1.14     chris 			/* failed to scan the eeprom, pretend there isn't an eeprom */
    432       1.14     chris 			printf("%s: unable to scan EEPROM\n",
    433       1.14     chris 				    sc->sc_dev.dv_xname);
    434       1.14     chris 			sc->sc_cfgflags |= CFGFLG_NOT_EEPROM;
    435       1.14     chris 		}
    436       1.16     perry 	}
    437        1.1      yamt 
    438        1.1      yamt 	if ((sc->sc_cfgflags & CFGFLG_NOT_EEPROM) == 0) {
    439        1.1      yamt 		/* Get parameters from the EEPROM */
    440        1.1      yamt 		if (cs_get_params(sc) == CS_ERROR) {
    441        1.1      yamt 			printf("%s: unable to get settings from EEPROM\n",
    442        1.1      yamt 			    sc->sc_dev.dv_xname);
    443        1.1      yamt 			return 1;
    444        1.1      yamt 		}
    445        1.1      yamt 	}
    446        1.1      yamt 
    447        1.1      yamt 	if (enaddr != NULL)
    448        1.1      yamt 		memcpy(sc->sc_enaddr, enaddr, sizeof(sc->sc_enaddr));
    449        1.1      yamt 	else if ((sc->sc_cfgflags & CFGFLG_NOT_EEPROM) == 0) {
    450        1.1      yamt 		/* Get and store the Ethernet address */
    451        1.1      yamt 		if (cs_get_enaddr(sc) == CS_ERROR) {
    452        1.1      yamt 			printf("%s: unable to read Ethernet address\n",
    453        1.1      yamt 			    sc->sc_dev.dv_xname);
    454        1.1      yamt 			return 1;
    455        1.1      yamt 		}
    456        1.1      yamt 	} else {
    457        1.6  augustss #if 1
    458       1.17  christos 		int j;
    459        1.6  augustss 		uint v;
    460        1.6  augustss 
    461       1.17  christos 		for (j = 0; j < 6; j += 2) {
    462       1.17  christos 			v = CS_READ_PACKET_PAGE(sc, PKTPG_IND_ADDR + j);
    463       1.17  christos 			sc->sc_enaddr[j + 0] = v;
    464       1.17  christos 			sc->sc_enaddr[j + 1] = v >> 8;
    465        1.6  augustss 		}
    466        1.6  augustss #else
    467        1.1      yamt 		printf("%s: no Ethernet address!\n", sc->sc_dev.dv_xname);
    468        1.1      yamt 		return 1;
    469        1.6  augustss #endif
    470        1.1      yamt 	}
    471        1.1      yamt 
    472        1.1      yamt 	switch (IFM_SUBTYPE(sc->sc_media.ifm_cur->ifm_media)) {
    473        1.1      yamt 	case IFM_10_2:
    474        1.1      yamt 		medname = "BNC";
    475        1.1      yamt 		break;
    476        1.1      yamt 	case IFM_10_5:
    477        1.1      yamt 		medname = "AUI";
    478        1.1      yamt 		break;
    479        1.1      yamt 	case IFM_10_T:
    480        1.1      yamt 		if (sc->sc_media.ifm_cur->ifm_media & IFM_FDX)
    481        1.1      yamt 			medname = "UTP <full-duplex>";
    482        1.1      yamt 		else
    483        1.1      yamt 			medname = "UTP";
    484        1.1      yamt 		break;
    485        1.1      yamt 	default:
    486        1.1      yamt 		panic("cs_attach: impossible");
    487        1.1      yamt 	}
    488        1.1      yamt 	printf("%s: %s rev. %c, address %s, media %s\n", sc->sc_dev.dv_xname,
    489        1.1      yamt 	    chipname, sc->sc_prodrev + 'A', ether_sprintf(sc->sc_enaddr),
    490        1.1      yamt 	    medname);
    491        1.1      yamt 
    492        1.1      yamt 	if (sc->sc_dma_attach)
    493        1.1      yamt 		(*sc->sc_dma_attach)(sc);
    494        1.1      yamt 
    495        1.1      yamt 	sc->sc_sh = shutdownhook_establish(cs_reset, sc);
    496        1.1      yamt 	if (sc->sc_sh == NULL) {
    497        1.1      yamt 		printf("%s: unable to establish shutdownhook\n",
    498        1.1      yamt 		    sc->sc_dev.dv_xname);
    499        1.1      yamt 		cs_detach(sc);
    500        1.1      yamt 		return 1;
    501        1.1      yamt 	}
    502        1.1      yamt 
    503        1.1      yamt 	/* Attach the interface. */
    504        1.1      yamt 	if_attach(ifp);
    505        1.1      yamt 	ether_ifattach(ifp, sc->sc_enaddr);
    506        1.1      yamt 
    507        1.1      yamt #if NRND > 0
    508        1.1      yamt 	rnd_attach_source(&sc->rnd_source, sc->sc_dev.dv_xname,
    509        1.1      yamt 			  RND_TYPE_NET, 0);
    510        1.1      yamt #endif
    511        1.1      yamt 	sc->sc_cfgflags |= CFGFLG_ATTACHED;
    512        1.1      yamt 
    513        1.1      yamt 	/* Reset the chip */
    514        1.1      yamt 	if (cs_reset_chip(sc) == CS_ERROR) {
    515        1.1      yamt 		printf("%s: reset failed\n", sc->sc_dev.dv_xname);
    516        1.1      yamt 		cs_detach(sc);
    517        1.1      yamt 		return 1;
    518        1.1      yamt 	}
    519        1.1      yamt 
    520  1.19.10.1      yamt 	sc->sc_powerhook = powerhook_establish(sc->sc_dev.dv_xname,
    521  1.19.10.1      yamt 	    cs_power, sc);
    522        1.1      yamt 	if (sc->sc_powerhook == 0)
    523        1.1      yamt 		printf("%s: warning: powerhook_establish failed\n",
    524        1.1      yamt 			sc->sc_dev.dv_xname);
    525        1.1      yamt 
    526        1.1      yamt 	return 0;
    527        1.1      yamt }
    528        1.1      yamt 
    529        1.1      yamt int
    530        1.5  augustss cs_detach(struct cs_softc *sc)
    531        1.1      yamt {
    532        1.1      yamt 	struct ifnet *ifp = &sc->sc_ethercom.ec_if;
    533        1.1      yamt 
    534        1.1      yamt 	if (sc->sc_powerhook) {
    535        1.1      yamt 		powerhook_disestablish(sc->sc_powerhook);
    536        1.1      yamt 		sc->sc_powerhook = 0;
    537        1.1      yamt 	}
    538        1.1      yamt 
    539        1.1      yamt 	if (sc->sc_cfgflags & CFGFLG_ATTACHED) {
    540        1.1      yamt #if NRND > 0
    541        1.1      yamt 		rnd_detach_source(&sc->rnd_source);
    542        1.1      yamt #endif
    543        1.1      yamt 		ether_ifdetach(ifp);
    544        1.1      yamt 		if_detach(ifp);
    545        1.1      yamt 		sc->sc_cfgflags &= ~CFGFLG_ATTACHED;
    546        1.1      yamt 	}
    547       1.16     perry 
    548        1.1      yamt 	if (sc->sc_sh != NULL)
    549        1.1      yamt 		shutdownhook_disestablish(sc->sc_sh);
    550        1.1      yamt 
    551        1.1      yamt #if 0
    552        1.1      yamt 	/*
    553        1.1      yamt 	 * XXX not necessary
    554        1.1      yamt 	 */
    555        1.1      yamt 	if (sc->sc_cfgflags & CFGFLG_DMA_MODE) {
    556        1.1      yamt 		isa_dmamem_unmap(sc->sc_ic, sc->sc_drq, sc->sc_dmabase, sc->sc_dmasize);
    557        1.1      yamt 		isa_dmamem_free(sc->sc_ic, sc->sc_drq, sc->sc_dmaaddr, sc->sc_dmasize);
    558        1.1      yamt 		isa_dmamap_destroy(sc->sc_ic, sc->sc_drq);
    559        1.1      yamt 		sc->sc_cfgflags &= ~CFGFLG_DMA_MODE;
    560        1.1      yamt 	}
    561        1.1      yamt #endif
    562        1.1      yamt 
    563        1.1      yamt 	return 0;
    564        1.1      yamt }
    565        1.1      yamt 
    566        1.1      yamt void
    567        1.5  augustss cs_get_default_media(struct cs_softc *sc)
    568        1.1      yamt {
    569        1.1      yamt 	u_int16_t adp_cfg, xmit_ctl;
    570        1.1      yamt 
    571        1.6  augustss 	if (cs_verify_eeprom(sc) == CS_ERROR) {
    572        1.1      yamt 		printf("%s: cs_get_default_media: EEPROM missing or bad\n",
    573        1.1      yamt 		    sc->sc_dev.dv_xname);
    574        1.1      yamt 		goto fakeit;
    575        1.1      yamt 	}
    576        1.1      yamt 
    577        1.6  augustss 	if (cs_read_eeprom(sc, EEPROM_ADPTR_CFG, &adp_cfg) == CS_ERROR) {
    578        1.1      yamt 		printf("%s: unable to read adapter config from EEPROM\n",
    579        1.1      yamt 		    sc->sc_dev.dv_xname);
    580        1.1      yamt 		goto fakeit;
    581        1.1      yamt 	}
    582        1.1      yamt 
    583        1.6  augustss 	if (cs_read_eeprom(sc, EEPROM_XMIT_CTL, &xmit_ctl) == CS_ERROR) {
    584        1.1      yamt 		printf("%s: unable to read transmit control from EEPROM\n",
    585        1.1      yamt 		    sc->sc_dev.dv_xname);
    586        1.1      yamt 		goto fakeit;
    587        1.1      yamt 	}
    588        1.1      yamt 
    589        1.1      yamt 	switch (adp_cfg & ADPTR_CFG_MEDIA) {
    590        1.1      yamt 	case ADPTR_CFG_AUI:
    591        1.1      yamt 		ifmedia_set(&sc->sc_media, IFM_ETHER|IFM_10_5);
    592        1.1      yamt 		break;
    593        1.1      yamt 	case ADPTR_CFG_10BASE2:
    594        1.1      yamt 		ifmedia_set(&sc->sc_media, IFM_ETHER|IFM_10_2);
    595        1.1      yamt 		break;
    596        1.1      yamt 	case ADPTR_CFG_10BASET:
    597        1.1      yamt 	default:
    598        1.1      yamt 		if (xmit_ctl & XMIT_CTL_FDX)
    599        1.1      yamt 			ifmedia_set(&sc->sc_media, IFM_ETHER|IFM_10_T|IFM_FDX);
    600        1.1      yamt 		else
    601        1.1      yamt 			ifmedia_set(&sc->sc_media, IFM_ETHER|IFM_10_T);
    602        1.1      yamt 		break;
    603        1.1      yamt 	}
    604        1.1      yamt 	return;
    605        1.1      yamt 
    606        1.1      yamt  fakeit:
    607        1.1      yamt 	printf("%s: WARNING: default media setting may be inaccurate\n",
    608        1.1      yamt 	    sc->sc_dev.dv_xname);
    609        1.1      yamt 	/* XXX Arbitrary... */
    610        1.1      yamt 	ifmedia_set(&sc->sc_media, IFM_ETHER|IFM_10_T);
    611        1.1      yamt }
    612        1.1      yamt 
    613       1.14     chris /*
    614       1.14     chris  * cs_scan_eeprom
    615       1.14     chris  *
    616       1.14     chris  * Attempt to take a complete copy of the eeprom into main memory.
    617       1.14     chris  * this will allow faster parsing of the eeprom data.
    618       1.14     chris  *
    619       1.14     chris  * Only tested against a 8920M's eeprom, but the data sheet for the
    620       1.14     chris  * 8920A indicates that is uses the same layout.
    621       1.14     chris  */
    622       1.16     perry int
    623       1.14     chris cs_scan_eeprom(struct cs_softc *sc)
    624       1.14     chris {
    625       1.14     chris 	u_int16_t result;
    626       1.14     chris 	int	i;
    627       1.14     chris 	int	eeprom_size;
    628       1.14     chris 	u_int8_t checksum = 0;
    629       1.14     chris 
    630       1.14     chris 	if (cs_verify_eeprom(sc) == CS_ERROR) {
    631       1.14     chris 		printf("%s: cs_scan_params: EEPROM missing or bad\n",
    632       1.14     chris 				sc->sc_dev.dv_xname);
    633       1.14     chris 		return (CS_ERROR);
    634       1.14     chris 	}
    635       1.14     chris 
    636       1.16     perry 	/*
    637       1.14     chris 	 * read the 0th word from the eeprom, it will tell us the length
    638       1.14     chris 	 * and if the eeprom is valid
    639       1.14     chris 	 */
    640       1.14     chris 	cs_read_eeprom(sc, 0, &result);
    641       1.14     chris 
    642       1.14     chris 	/* check the eeprom signature */
    643       1.14     chris 	if ((result & 0xE000) != 0xA000) {
    644       1.14     chris 		/* empty eeprom */
    645       1.14     chris 		return (CS_ERROR);
    646       1.14     chris 	}
    647       1.14     chris 
    648       1.16     perry 	/*
    649       1.14     chris 	 * take the eeprom size (note the read value doesn't include the header
    650       1.14     chris 	 * word)
    651       1.14     chris 	 */
    652       1.14     chris 	eeprom_size = (result & 0xff) + 2;
    653       1.14     chris 
    654       1.14     chris 	sc->eeprom_data = malloc(eeprom_size, M_DEVBUF, M_WAITOK);
    655       1.14     chris 	if (sc->eeprom_data == NULL) {
    656       1.14     chris 		/* no memory, treat this as if there's no eeprom */
    657       1.14     chris 		return (CS_ERROR);
    658       1.14     chris 	}
    659       1.16     perry 
    660       1.14     chris 	sc->eeprom_size = eeprom_size;
    661       1.14     chris 
    662       1.14     chris 	/* read the eeprom into the buffer, also calculate the checksum  */
    663       1.14     chris 	for (i = 0; i < (eeprom_size >> 1); i++) {
    664       1.14     chris 		cs_read_eeprom(sc, i, &(sc->eeprom_data[i]));
    665       1.14     chris 		checksum += (sc->eeprom_data[i] & 0xff00) >> 8;
    666       1.14     chris 		checksum += (sc->eeprom_data[i] & 0x00ff);
    667       1.14     chris 	}
    668       1.14     chris 
    669       1.16     perry 	/*
    670       1.14     chris 	 * validate checksum calculation, the sum of all the bytes should be 0,
    671       1.14     chris 	 * as the high byte of the last word is the 2's complement of the
    672       1.14     chris 	 * sum to that point.
    673       1.14     chris 	 */
    674       1.14     chris 	if (checksum != 0) {
    675       1.14     chris 		printf("%s: eeprom checksum failure\n", sc->sc_dev.dv_xname);
    676       1.14     chris 		return (CS_ERROR);
    677       1.14     chris 	}
    678       1.14     chris 
    679       1.14     chris 	return (CS_OK);
    680       1.14     chris }
    681       1.14     chris 
    682       1.16     perry static int
    683       1.14     chris cs_read_pktpg_from_eeprom(struct cs_softc *sc, int pktpg, u_int16_t *pValue)
    684       1.14     chris {
    685       1.14     chris 	int x, maxword;
    686       1.14     chris 
    687       1.14     chris 	/* Check that we have eeprom data */
    688       1.19     chris 	if ((sc->eeprom_data == NULL) || (sc->eeprom_size < 2))
    689       1.14     chris 		return (CS_ERROR);
    690       1.14     chris 
    691       1.14     chris 	/*
    692       1.14     chris 	 * We only want to read the data words, the last word contains the
    693       1.14     chris 	 * checksum
    694       1.14     chris 	 */
    695       1.14     chris 	maxword = (sc->eeprom_size - 2) >> 1;
    696       1.14     chris 
    697       1.14     chris 	/* start 1 word in, as the first word is the length and signature */
    698       1.14     chris 	x = 1;
    699       1.14     chris 
    700       1.14     chris 	while ( x < (maxword)) {
    701       1.14     chris 		u_int16_t header;
    702       1.14     chris 		int group_size;
    703       1.14     chris 		int offset;
    704       1.14     chris 		int offset_max;
    705       1.14     chris 
    706       1.14     chris 		/* read in the group header word */
    707       1.14     chris 		header = sc->eeprom_data[x];
    708       1.14     chris 		x++;	/* skip group header */
    709       1.14     chris 
    710       1.16     perry 		/*
    711       1.14     chris 		 * size of group in words is in the top 4 bits, note that it
    712       1.14     chris 		 * is one less than the number of words
    713       1.14     chris 		 */
    714       1.14     chris 		group_size = header & 0xF000;
    715       1.14     chris 
    716       1.16     perry 		/*
    717       1.14     chris 		 * CS8900 Data sheet says this should be 0x01ff,
    718       1.16     perry 		 * but my cs8920 eeprom has higher offsets,
    719       1.16     perry 		 * perhaps the 8920 allows higher offsets, otherwise
    720       1.14     chris 		 * it's writing to places that it shouldn't
    721       1.14     chris 		 */
    722       1.14     chris 		/* work out the offsets this group covers */
    723       1.14     chris 		offset = header & 0x0FFF;
    724       1.14     chris 		offset_max = offset + (group_size << 1);
    725       1.14     chris 
    726       1.14     chris 		/* check if the pkgpg we're after is in this group */
    727       1.14     chris 		if ((offset <= pktpg) && (pktpg <= offset_max)) {
    728       1.14     chris 			/* the pkgpg value we want is in here */
    729       1.14     chris 			int eeprom_location;
    730       1.16     perry 
    731       1.14     chris 			eeprom_location = ((pktpg - offset) >> 1) ;
    732       1.16     perry 
    733       1.16     perry 			*pValue = sc->eeprom_data[x + eeprom_location];
    734       1.14     chris 			return (CS_OK);
    735       1.14     chris 		} else {
    736       1.14     chris 			/* skip this group (+ 1 for first entry) */
    737       1.14     chris 			x += group_size + 1;
    738       1.14     chris 		}
    739       1.14     chris 	}
    740       1.14     chris 
    741       1.14     chris 	/*
    742       1.14     chris 	 * if we've fallen out here then we don't have a value in the EEPROM
    743       1.16     perry 	 * for this pktpg so return an error
    744       1.14     chris 	 */
    745       1.14     chris 	return (CS_ERROR);
    746       1.14     chris }
    747       1.14     chris 
    748       1.16     perry int
    749        1.5  augustss cs_get_params(struct cs_softc *sc)
    750        1.1      yamt {
    751        1.1      yamt 	u_int16_t isaConfig;
    752        1.1      yamt 	u_int16_t adapterConfig;
    753        1.1      yamt 
    754        1.6  augustss 	if (cs_verify_eeprom(sc) == CS_ERROR) {
    755        1.1      yamt 		printf("%s: cs_get_params: EEPROM missing or bad\n",
    756        1.1      yamt 		    sc->sc_dev.dv_xname);
    757        1.1      yamt 		return (CS_ERROR);
    758        1.1      yamt 	}
    759        1.1      yamt 
    760       1.14     chris 	if (sc->sc_cfgflags & CFGFLG_PARSE_EEPROM) {
    761       1.14     chris 		/* Get ISA configuration from the EEPROM */
    762       1.14     chris 		if (cs_read_pktpg_from_eeprom(sc, PKTPG_BUS_CTL, &isaConfig)
    763       1.14     chris 			       	== CS_ERROR) {
    764       1.14     chris 			/* eeprom doesn't have this value, use data sheet default */
    765       1.14     chris 			isaConfig = 0x0017;
    766       1.14     chris 		}
    767       1.14     chris 
    768       1.14     chris 		/* Get adapter configuration from the EEPROM */
    769       1.14     chris 		if (cs_read_pktpg_from_eeprom(sc, PKTPG_SELF_CTL, &adapterConfig)
    770       1.14     chris 				== CS_ERROR) {
    771       1.14     chris 			/* eeprom doesn't have this value, use data sheet default */
    772       1.14     chris 			adapterConfig = 0x0015;
    773       1.14     chris 		}
    774       1.14     chris 
    775       1.14     chris 		/* Copy the USE_SA flag */
    776       1.14     chris 		if (isaConfig & BUS_CTL_USE_SA)
    777       1.14     chris 			sc->sc_cfgflags |= CFGFLG_USE_SA;
    778       1.14     chris 
    779       1.14     chris 		/* Copy the IO Channel Ready flag */
    780       1.14     chris 		if (isaConfig & BUS_CTL_IOCHRDY)
    781       1.14     chris 			sc->sc_cfgflags |= CFGFLG_IOCHRDY;
    782       1.14     chris 
    783       1.14     chris 		/* Copy the DC/DC Polarity flag */
    784       1.14     chris 		if (adapterConfig & SELF_CTL_HCB1)
    785       1.14     chris 			sc->sc_cfgflags |= CFGFLG_DCDC_POL;
    786       1.14     chris 	} else {
    787       1.14     chris 		/* Get ISA configuration from the EEPROM */
    788       1.14     chris 		if (cs_read_eeprom(sc, EEPROM_ISA_CFG, &isaConfig) == CS_ERROR)
    789       1.14     chris 			goto eeprom_bad;
    790       1.14     chris 
    791       1.14     chris 		/* Get adapter configuration from the EEPROM */
    792       1.14     chris 		if (cs_read_eeprom(sc, EEPROM_ADPTR_CFG, &adapterConfig) == CS_ERROR)
    793       1.14     chris 			goto eeprom_bad;
    794       1.14     chris 
    795       1.14     chris 		/* Copy the USE_SA flag */
    796       1.14     chris 		if (isaConfig & ISA_CFG_USE_SA)
    797       1.14     chris 			sc->sc_cfgflags |= CFGFLG_USE_SA;
    798       1.14     chris 
    799       1.14     chris 		/* Copy the IO Channel Ready flag */
    800       1.14     chris 		if (isaConfig & ISA_CFG_IOCHRDY)
    801       1.14     chris 			sc->sc_cfgflags |= CFGFLG_IOCHRDY;
    802       1.14     chris 
    803       1.14     chris 		/* Copy the DC/DC Polarity flag */
    804       1.14     chris 		if (adapterConfig & ADPTR_CFG_DCDC_POL)
    805       1.14     chris 			sc->sc_cfgflags |= CFGFLG_DCDC_POL;
    806       1.14     chris 	}
    807        1.1      yamt 
    808        1.1      yamt 	return (CS_OK);
    809       1.14     chris eeprom_bad:
    810        1.1      yamt 	printf("%s: cs_get_params: unable to read from EEPROM\n",
    811       1.14     chris 			sc->sc_dev.dv_xname);
    812        1.1      yamt 	return (CS_ERROR);
    813        1.1      yamt }
    814        1.1      yamt 
    815       1.16     perry int
    816        1.5  augustss cs_get_enaddr(struct cs_softc *sc)
    817        1.1      yamt {
    818        1.1      yamt 	u_int16_t *myea;
    819        1.1      yamt 
    820        1.6  augustss 	if (cs_verify_eeprom(sc) == CS_ERROR) {
    821        1.1      yamt 		printf("%s: cs_get_enaddr: EEPROM missing or bad\n",
    822        1.1      yamt 		    sc->sc_dev.dv_xname);
    823        1.1      yamt 		return (CS_ERROR);
    824        1.1      yamt 	}
    825        1.1      yamt 
    826        1.1      yamt 	myea = (u_int16_t *)sc->sc_enaddr;
    827        1.1      yamt 
    828        1.1      yamt 	/* Get Ethernet address from the EEPROM */
    829        1.1      yamt 	/* XXX this will likely lose on a big-endian machine. -- cgd */
    830       1.14     chris 	if (sc->sc_cfgflags & CFGFLG_PARSE_EEPROM) {
    831       1.14     chris 		if (cs_read_pktpg_from_eeprom(sc, PKTPG_IND_ADDR, &myea[0])
    832       1.14     chris 				== CS_ERROR)
    833       1.14     chris 			goto eeprom_bad;
    834       1.14     chris 		if (cs_read_pktpg_from_eeprom(sc, PKTPG_IND_ADDR + 2, &myea[1])
    835       1.14     chris 				== CS_ERROR)
    836       1.14     chris 			goto eeprom_bad;
    837       1.14     chris 		if (cs_read_pktpg_from_eeprom(sc, PKTPG_IND_ADDR + 4, &myea[2])
    838       1.14     chris 				== CS_ERROR)
    839       1.14     chris 			goto eeprom_bad;
    840       1.14     chris 	} else {
    841       1.14     chris 		if (cs_read_eeprom(sc, EEPROM_IND_ADDR_H, &myea[0]) == CS_ERROR)
    842       1.14     chris 			goto eeprom_bad;
    843       1.14     chris 		if (cs_read_eeprom(sc, EEPROM_IND_ADDR_M, &myea[1]) == CS_ERROR)
    844       1.14     chris 			goto eeprom_bad;
    845       1.14     chris 		if (cs_read_eeprom(sc, EEPROM_IND_ADDR_L, &myea[2]) == CS_ERROR)
    846       1.14     chris 			goto eeprom_bad;
    847       1.14     chris 	}
    848        1.1      yamt 
    849        1.1      yamt 	return (CS_OK);
    850        1.1      yamt 
    851        1.1      yamt  eeprom_bad:
    852        1.1      yamt 	printf("%s: cs_get_enaddr: unable to read from EEPROM\n",
    853        1.1      yamt 	    sc->sc_dev.dv_xname);
    854        1.1      yamt 	return (CS_ERROR);
    855        1.1      yamt }
    856        1.1      yamt 
    857       1.16     perry int
    858        1.5  augustss cs_reset_chip(struct cs_softc *sc)
    859        1.1      yamt {
    860        1.1      yamt 	int intState;
    861        1.1      yamt 	int x;
    862        1.1      yamt 
    863        1.1      yamt 	/* Disable interrupts at the CPU so reset command is atomic */
    864        1.1      yamt 	intState = splnet();
    865        1.1      yamt 
    866        1.1      yamt 	/*
    867        1.1      yamt 	 * We are now resetting the chip
    868       1.16     perry 	 *
    869        1.1      yamt 	 * A spurious interrupt is generated by the chip when it is reset. This
    870        1.1      yamt 	 * variable informs the interrupt handler to ignore this interrupt.
    871        1.1      yamt 	 */
    872        1.1      yamt 	sc->sc_resetting = TRUE;
    873        1.1      yamt 
    874        1.1      yamt 	/* Issue a reset command to the chip */
    875        1.1      yamt 	CS_WRITE_PACKET_PAGE(sc, PKTPG_SELF_CTL, SELF_CTL_RESET);
    876        1.1      yamt 
    877        1.1      yamt 	/* Re-enable interrupts at the CPU */
    878        1.1      yamt 	splx(intState);
    879        1.1      yamt 
    880        1.1      yamt 	/* The chip is always in IO mode after a reset */
    881        1.1      yamt 	sc->sc_memorymode = FALSE;
    882        1.1      yamt 
    883        1.1      yamt 	/* If transmission was in progress, it is not now */
    884        1.1      yamt 	sc->sc_txbusy = FALSE;
    885        1.1      yamt 
    886        1.1      yamt 	/*
    887        1.1      yamt 	 * there was a delay(125); here, but it seems uneccesary 125 usec is
    888        1.1      yamt 	 * 1/8000 of a second, not 1/8 of a second. the data sheet advises
    889        1.1      yamt 	 * 1/10 of a second here, but the SI_BUSY and INIT_DONE loops below
    890        1.1      yamt 	 * should be sufficient.
    891        1.1      yamt 	 */
    892        1.1      yamt 
    893        1.1      yamt 	/* Transition SBHE to switch chip from 8-bit to 16-bit */
    894        1.6  augustss 	IO_READ_1(sc, PORT_PKTPG_PTR + 0);
    895        1.6  augustss 	IO_READ_1(sc, PORT_PKTPG_PTR + 1);
    896        1.6  augustss 	IO_READ_1(sc, PORT_PKTPG_PTR + 0);
    897        1.6  augustss 	IO_READ_1(sc, PORT_PKTPG_PTR + 1);
    898        1.1      yamt 
    899        1.1      yamt 	/* Wait until the EEPROM is not busy */
    900        1.1      yamt 	for (x = 0; x < MAXLOOP; x++) {
    901        1.1      yamt 		if (!(CS_READ_PACKET_PAGE(sc, PKTPG_SELF_ST) & SELF_ST_SI_BUSY))
    902        1.1      yamt 			break;
    903        1.1      yamt 	}
    904        1.1      yamt 
    905        1.1      yamt 	if (x == MAXLOOP)
    906        1.1      yamt 		return CS_ERROR;
    907        1.1      yamt 
    908        1.1      yamt 	/* Wait until initialization is done */
    909        1.1      yamt 	for (x = 0; x < MAXLOOP; x++) {
    910        1.1      yamt 		if (CS_READ_PACKET_PAGE(sc, PKTPG_SELF_ST) & SELF_ST_INIT_DONE)
    911        1.1      yamt 			break;
    912        1.1      yamt 	}
    913        1.1      yamt 
    914        1.1      yamt 	if (x == MAXLOOP)
    915        1.1      yamt 		return CS_ERROR;
    916        1.1      yamt 
    917        1.1      yamt 	/* Reset is no longer in progress */
    918        1.1      yamt 	sc->sc_resetting = FALSE;
    919        1.1      yamt 
    920        1.1      yamt 	return CS_OK;
    921        1.1      yamt }
    922        1.1      yamt 
    923        1.1      yamt int
    924        1.6  augustss cs_verify_eeprom(struct cs_softc *sc)
    925        1.1      yamt {
    926        1.1      yamt 	u_int16_t self_status;
    927        1.1      yamt 
    928        1.1      yamt 	/* Verify that the EEPROM is present and OK */
    929        1.6  augustss 	self_status = CS_READ_PACKET_PAGE_IO(sc, PKTPG_SELF_ST);
    930        1.1      yamt 	if (((self_status & SELF_ST_EEP_PRES) &&
    931        1.1      yamt 	     (self_status & SELF_ST_EEP_OK)) == 0)
    932        1.1      yamt 		return (CS_ERROR);
    933        1.1      yamt 
    934        1.1      yamt 	return (CS_OK);
    935        1.1      yamt }
    936        1.1      yamt 
    937       1.16     perry int
    938        1.6  augustss cs_read_eeprom(struct cs_softc *sc, int offset, u_int16_t *pValue)
    939        1.1      yamt {
    940        1.1      yamt 	int x;
    941        1.1      yamt 
    942        1.1      yamt 	/* Ensure that the EEPROM is not busy */
    943        1.1      yamt 	for (x = 0; x < MAXLOOP; x++) {
    944        1.6  augustss 		if (!(CS_READ_PACKET_PAGE_IO(sc, PKTPG_SELF_ST) &
    945        1.1      yamt 		      SELF_ST_SI_BUSY))
    946        1.1      yamt 			break;
    947        1.1      yamt 	}
    948        1.1      yamt 
    949        1.1      yamt 	if (x == MAXLOOP)
    950        1.1      yamt 		return (CS_ERROR);
    951        1.1      yamt 
    952        1.1      yamt 	/* Issue the command to read the offset within the EEPROM */
    953        1.6  augustss 	CS_WRITE_PACKET_PAGE_IO(sc, PKTPG_EEPROM_CMD,
    954        1.1      yamt 	    offset | EEPROM_CMD_READ);
    955        1.1      yamt 
    956        1.1      yamt 	/* Wait until the command is completed */
    957        1.1      yamt 	for (x = 0; x < MAXLOOP; x++) {
    958        1.6  augustss 		if (!(CS_READ_PACKET_PAGE_IO(sc, PKTPG_SELF_ST) &
    959        1.1      yamt 		      SELF_ST_SI_BUSY))
    960        1.1      yamt 			break;
    961        1.1      yamt 	}
    962        1.1      yamt 
    963        1.1      yamt 	if (x == MAXLOOP)
    964        1.1      yamt 		return (CS_ERROR);
    965        1.1      yamt 
    966        1.1      yamt 	/* Get the EEPROM data from the EEPROM Data register */
    967        1.6  augustss 	*pValue = CS_READ_PACKET_PAGE_IO(sc, PKTPG_EEPROM_DATA);
    968        1.1      yamt 
    969        1.1      yamt 	return (CS_OK);
    970        1.1      yamt }
    971        1.1      yamt 
    972       1.16     perry void
    973        1.5  augustss cs_initChip(struct cs_softc *sc)
    974        1.1      yamt {
    975        1.1      yamt 	u_int16_t busCtl;
    976        1.1      yamt 	u_int16_t selfCtl;
    977        1.6  augustss 	u_int16_t v;
    978        1.1      yamt 	u_int16_t isaId;
    979        1.6  augustss 	int i;
    980        1.1      yamt 	int media = IFM_SUBTYPE(sc->sc_media.ifm_cur->ifm_media);
    981        1.1      yamt 
    982        1.1      yamt 	/* Disable reception and transmission of frames */
    983        1.1      yamt 	CS_WRITE_PACKET_PAGE(sc, PKTPG_LINE_CTL,
    984        1.1      yamt 	    CS_READ_PACKET_PAGE(sc, PKTPG_LINE_CTL) &
    985        1.1      yamt 	    ~LINE_CTL_RX_ON & ~LINE_CTL_TX_ON);
    986        1.1      yamt 
    987        1.1      yamt 	/* Disable interrupt at the chip */
    988        1.1      yamt 	CS_WRITE_PACKET_PAGE(sc, PKTPG_BUS_CTL,
    989        1.1      yamt 	    CS_READ_PACKET_PAGE(sc, PKTPG_BUS_CTL) & ~BUS_CTL_INT_ENBL);
    990        1.1      yamt 
    991        1.1      yamt 	/* If IOCHRDY is enabled then clear the bit in the busCtl register */
    992        1.1      yamt 	busCtl = CS_READ_PACKET_PAGE(sc, PKTPG_BUS_CTL);
    993        1.1      yamt 	if (sc->sc_cfgflags & CFGFLG_IOCHRDY) {
    994        1.1      yamt 		CS_WRITE_PACKET_PAGE(sc, PKTPG_BUS_CTL,
    995        1.1      yamt 		    busCtl & ~BUS_CTL_IOCHRDY);
    996        1.1      yamt 	} else {
    997        1.1      yamt 		CS_WRITE_PACKET_PAGE(sc, PKTPG_BUS_CTL,
    998        1.1      yamt 		    busCtl | BUS_CTL_IOCHRDY);
    999        1.1      yamt 	}
   1000        1.1      yamt 
   1001        1.1      yamt 	/* Set the Line Control register to match the media type */
   1002        1.1      yamt 	if (media == IFM_10_T)
   1003        1.1      yamt 		CS_WRITE_PACKET_PAGE(sc, PKTPG_LINE_CTL, LINE_CTL_10BASET);
   1004        1.1      yamt 	else
   1005        1.1      yamt 		CS_WRITE_PACKET_PAGE(sc, PKTPG_LINE_CTL, LINE_CTL_AUI_ONLY);
   1006        1.1      yamt 
   1007        1.1      yamt 	/*
   1008        1.1      yamt 	 * Set the BSTATUS/HC1 pin to be used as HC1.  HC1 is used to
   1009        1.1      yamt 	 * enable the DC/DC converter
   1010        1.1      yamt 	 */
   1011        1.1      yamt 	selfCtl = SELF_CTL_HC1E;
   1012        1.1      yamt 
   1013        1.1      yamt 	/* If the media type is 10Base2 */
   1014        1.1      yamt 	if (media == IFM_10_2) {
   1015        1.1      yamt 		/*
   1016        1.1      yamt 		 * Enable the DC/DC converter if it has a low enable.
   1017        1.1      yamt 		 */
   1018        1.1      yamt 		if ((sc->sc_cfgflags & CFGFLG_DCDC_POL) == 0)
   1019        1.1      yamt 			/*
   1020        1.1      yamt 			 * Set the HCB1 bit, which causes the HC1 pin to go
   1021        1.1      yamt 			 * low.
   1022        1.1      yamt 			 */
   1023        1.1      yamt 			selfCtl |= SELF_CTL_HCB1;
   1024        1.1      yamt 	} else { /* Media type is 10BaseT or AUI */
   1025        1.1      yamt 		/*
   1026        1.1      yamt 		 * Disable the DC/DC converter if it has a high enable.
   1027        1.1      yamt 		 */
   1028        1.1      yamt 		if ((sc->sc_cfgflags & CFGFLG_DCDC_POL) != 0) {
   1029        1.1      yamt 			/*
   1030        1.1      yamt 			 * Set the HCB1 bit, which causes the HC1 pin to go
   1031        1.1      yamt 			 * low.
   1032        1.1      yamt 			 */
   1033        1.1      yamt 			selfCtl |= SELF_CTL_HCB1;
   1034        1.1      yamt 		}
   1035        1.1      yamt 	}
   1036        1.1      yamt 	CS_WRITE_PACKET_PAGE(sc, PKTPG_SELF_CTL, selfCtl);
   1037       1.16     perry 
   1038        1.1      yamt 	/* enable normal link pulse */
   1039        1.1      yamt 	if (sc->sc_prodid == PROD_ID_CS8920 || sc->sc_prodid == PROD_ID_CS8920M)
   1040        1.1      yamt 		CS_WRITE_PACKET_PAGE(sc, PKTPG_AUTONEG_CTL, AUTOCTL_NLP_ENABLE);
   1041        1.1      yamt 
   1042        1.1      yamt 	/* Enable full-duplex, if appropriate */
   1043        1.1      yamt 	if (sc->sc_media.ifm_cur->ifm_media & IFM_FDX)
   1044        1.1      yamt 		CS_WRITE_PACKET_PAGE(sc, PKTPG_TEST_CTL, TEST_CTL_FDX);
   1045        1.1      yamt 
   1046        1.1      yamt 	/* RX_CTL set in cs_set_ladr_filt(), below */
   1047        1.1      yamt 
   1048        1.1      yamt 	/* enable all transmission interrupts */
   1049        1.1      yamt 	CS_WRITE_PACKET_PAGE(sc, PKTPG_TX_CFG, TX_CFG_ALL_IE);
   1050        1.1      yamt 
   1051        1.1      yamt 	/* Accept all receive interrupts */
   1052        1.1      yamt 	CS_WRITE_PACKET_PAGE(sc, PKTPG_RX_CFG, RX_CFG_ALL_IE);
   1053        1.1      yamt 
   1054        1.1      yamt 	/*
   1055        1.1      yamt 	 * Configure Operational Modes
   1056       1.16     perry 	 *
   1057        1.1      yamt 	 * I have turned off the BUF_CFG_RX_MISS_IE, to speed things up, this is
   1058        1.1      yamt 	 * a better way to do it because the card has a counter which can be
   1059        1.7       wiz 	 * read to update the RX_MISS counter. This saves many interrupts.
   1060       1.16     perry 	 *
   1061        1.7       wiz 	 * I have turned on the tx and rx overflow interrupts to counter using
   1062        1.1      yamt 	 * the receive miss interrupt. This is a better estimate of errors
   1063        1.1      yamt 	 * and requires lower system overhead.
   1064        1.1      yamt 	 */
   1065        1.1      yamt 	CS_WRITE_PACKET_PAGE(sc, PKTPG_BUF_CFG, BUF_CFG_TX_UNDR_IE |
   1066        1.1      yamt 			  BUF_CFG_RX_DMA_IE);
   1067        1.1      yamt 
   1068        1.1      yamt 	if (sc->sc_dma_chipinit)
   1069        1.1      yamt 		(*sc->sc_dma_chipinit)(sc);
   1070        1.1      yamt 
   1071        1.1      yamt 	/* If memory mode is enabled */
   1072        1.1      yamt 	if (sc->sc_cfgflags & CFGFLG_MEM_MODE) {
   1073        1.1      yamt 		/* If external logic is present for address decoding */
   1074        1.1      yamt 		if (CS_READ_PACKET_PAGE(sc, PKTPG_SELF_ST) & SELF_ST_EL_PRES) {
   1075        1.1      yamt 			/*
   1076        1.1      yamt 			 * Program the external logic to decode address bits
   1077        1.1      yamt 			 * SA20-SA23
   1078        1.1      yamt 			 */
   1079        1.1      yamt 			CS_WRITE_PACKET_PAGE(sc, PKTPG_EEPROM_CMD,
   1080        1.1      yamt 			    ((sc->sc_pktpgaddr & 0xffffff) >> 20) |
   1081        1.1      yamt 			    EEPROM_CMD_ELSEL);
   1082        1.1      yamt 		}
   1083        1.1      yamt 
   1084        1.1      yamt 		/*
   1085        1.1      yamt 		 * Write the packet page base physical address to the memory
   1086        1.1      yamt 		 * base register.
   1087        1.1      yamt 		 */
   1088        1.1      yamt 		CS_WRITE_PACKET_PAGE(sc, PKTPG_MEM_BASE + 0,
   1089        1.1      yamt 		    sc->sc_pktpgaddr & 0xFFFF);
   1090        1.1      yamt 		CS_WRITE_PACKET_PAGE(sc, PKTPG_MEM_BASE + 2,
   1091        1.1      yamt 		    sc->sc_pktpgaddr >> 16);
   1092        1.1      yamt 		busCtl = BUS_CTL_MEM_MODE;
   1093        1.1      yamt 
   1094        1.1      yamt 		/* tell the chip to read the addresses off the SA pins */
   1095        1.1      yamt 		if (sc->sc_cfgflags & CFGFLG_USE_SA) {
   1096        1.1      yamt 			busCtl |= BUS_CTL_USE_SA;
   1097        1.1      yamt 		}
   1098        1.1      yamt 		CS_WRITE_PACKET_PAGE(sc, PKTPG_BUS_CTL,
   1099        1.1      yamt 		    CS_READ_PACKET_PAGE(sc, PKTPG_BUS_CTL) | busCtl);
   1100        1.1      yamt 
   1101        1.1      yamt 		/* We are in memory mode now! */
   1102        1.1      yamt 		sc->sc_memorymode = TRUE;
   1103        1.1      yamt 
   1104        1.1      yamt 		/*
   1105        1.1      yamt 		 * wait here (10ms) for the chip to swap over. this is the
   1106        1.1      yamt 		 * maximum time that this could take.
   1107        1.1      yamt 		 */
   1108        1.1      yamt 		delay(10000);
   1109        1.1      yamt 
   1110        1.1      yamt 		/* Verify that we can read from the chip */
   1111        1.1      yamt 		isaId = CS_READ_PACKET_PAGE(sc, PKTPG_EISA_NUM);
   1112        1.1      yamt 
   1113        1.1      yamt 		/*
   1114        1.1      yamt 		 * As a last minute sanity check before actually using mapped
   1115        1.1      yamt 		 * memory we verify that we can read the isa number from the
   1116        1.1      yamt 		 * chip in memory mode.
   1117        1.1      yamt 		 */
   1118        1.1      yamt 		if (isaId != EISA_NUM_CRYSTAL) {
   1119        1.1      yamt 			printf("%s: failed to enable memory mode\n",
   1120        1.1      yamt 			    sc->sc_dev.dv_xname);
   1121        1.1      yamt 			sc->sc_memorymode = FALSE;
   1122        1.1      yamt 		} else {
   1123        1.1      yamt 			/*
   1124        1.1      yamt 			 * we are in memory mode so if we aren't using DMA,
   1125        1.1      yamt 			 * then program the chip to interrupt early.
   1126        1.1      yamt 			 */
   1127        1.1      yamt 			if ((sc->sc_cfgflags & CFGFLG_DMA_MODE) == 0) {
   1128        1.1      yamt 				CS_WRITE_PACKET_PAGE(sc, PKTPG_BUF_CFG,
   1129        1.1      yamt 				    BUF_CFG_RX_DEST_IE |
   1130        1.1      yamt 				    BUF_CFG_RX_MISS_OVER_IE |
   1131        1.1      yamt 				    BUF_CFG_TX_COL_OVER_IE);
   1132        1.1      yamt 			}
   1133        1.1      yamt 		}
   1134        1.1      yamt 
   1135        1.1      yamt 	}
   1136        1.1      yamt 
   1137        1.1      yamt 	/* Put Ethernet address into the Individual Address register */
   1138        1.6  augustss 	for (i = 0; i < 6; i += 2) {
   1139        1.6  augustss 		v = sc->sc_enaddr[i + 0] | (sc->sc_enaddr[i + 1]) << 8;
   1140        1.6  augustss 		CS_WRITE_PACKET_PAGE(sc, PKTPG_IND_ADDR + i, v);
   1141        1.6  augustss 	}
   1142        1.1      yamt 
   1143        1.1      yamt 	if (sc->sc_irq != -1) {
   1144        1.1      yamt 		/* Set the interrupt level in the chip */
   1145        1.1      yamt 		if (sc->sc_prodid == PROD_ID_CS8900) {
   1146        1.1      yamt 			if (sc->sc_irq == 5) {
   1147        1.1      yamt 				CS_WRITE_PACKET_PAGE(sc, PKTPG_INT_NUM, 3);
   1148        1.1      yamt 			} else {
   1149        1.1      yamt 				CS_WRITE_PACKET_PAGE(sc, PKTPG_INT_NUM, (sc->sc_irq) - 10);
   1150        1.1      yamt 			}
   1151        1.1      yamt 		}
   1152        1.1      yamt 		else { /* CS8920 */
   1153        1.1      yamt 			CS_WRITE_PACKET_PAGE(sc, PKTPG_8920_INT_NUM, sc->sc_irq);
   1154        1.1      yamt 		}
   1155        1.1      yamt 	}
   1156        1.1      yamt 
   1157        1.1      yamt 	/* write the multicast mask to the address filter register */
   1158        1.1      yamt 	cs_set_ladr_filt(sc, &sc->sc_ethercom);
   1159        1.1      yamt 
   1160        1.1      yamt 	/* Enable reception and transmission of frames */
   1161        1.1      yamt 	CS_WRITE_PACKET_PAGE(sc, PKTPG_LINE_CTL,
   1162        1.1      yamt 	    CS_READ_PACKET_PAGE(sc, PKTPG_LINE_CTL) |
   1163        1.1      yamt 	    LINE_CTL_RX_ON | LINE_CTL_TX_ON);
   1164        1.1      yamt 
   1165        1.1      yamt 	/* Enable interrupt at the chip */
   1166        1.1      yamt 	CS_WRITE_PACKET_PAGE(sc, PKTPG_BUS_CTL,
   1167        1.1      yamt 	    CS_READ_PACKET_PAGE(sc, PKTPG_BUS_CTL) | BUS_CTL_INT_ENBL);
   1168        1.1      yamt }
   1169        1.1      yamt 
   1170       1.16     perry int
   1171        1.5  augustss cs_init(struct ifnet *ifp)
   1172        1.1      yamt {
   1173        1.1      yamt 	int intState;
   1174        1.1      yamt 	int error = CS_OK;
   1175        1.1      yamt 	struct cs_softc *sc = ifp->if_softc;
   1176        1.1      yamt 
   1177        1.1      yamt 	if (cs_enable(sc))
   1178        1.1      yamt 		goto out;
   1179        1.1      yamt 
   1180        1.1      yamt 	cs_stop(ifp, 0);
   1181        1.1      yamt 
   1182        1.1      yamt 	intState = splnet();
   1183        1.1      yamt 
   1184        1.1      yamt #if 0
   1185        1.1      yamt 	/* Mark the interface as down */
   1186        1.1      yamt 	sc->sc_ethercom.ec_if.if_flags &= ~(IFF_UP | IFF_RUNNING);
   1187        1.1      yamt #endif
   1188        1.1      yamt 
   1189        1.1      yamt #ifdef CS_DEBUG
   1190        1.1      yamt 	/* Enable debugging */
   1191        1.1      yamt 	sc->sc_ethercom.ec_if.if_flags |= IFF_DEBUG;
   1192        1.1      yamt #endif
   1193        1.1      yamt 
   1194        1.1      yamt 	/* Reset the chip */
   1195        1.1      yamt 	if ((error = cs_reset_chip(sc)) == CS_OK) {
   1196        1.1      yamt 		/* Initialize the chip */
   1197        1.1      yamt 		cs_initChip(sc);
   1198        1.1      yamt 
   1199        1.1      yamt 		/* Mark the interface as running */
   1200        1.1      yamt 		sc->sc_ethercom.ec_if.if_flags |= IFF_RUNNING;
   1201        1.1      yamt 		sc->sc_ethercom.ec_if.if_flags &= ~IFF_OACTIVE;
   1202        1.1      yamt 		sc->sc_ethercom.ec_if.if_timer = 0;
   1203        1.1      yamt 
   1204        1.1      yamt 		/* Assume we have carrier until we are told otherwise. */
   1205        1.1      yamt 		sc->sc_carrier = 1;
   1206        1.1      yamt 	} else {
   1207        1.1      yamt 		printf("%s: unable to reset chip\n", sc->sc_dev.dv_xname);
   1208        1.1      yamt 	}
   1209        1.1      yamt 
   1210        1.1      yamt 	splx(intState);
   1211        1.1      yamt out:
   1212        1.1      yamt 	if (error == CS_OK)
   1213        1.1      yamt 		return 0;
   1214        1.1      yamt 	return EIO;
   1215        1.1      yamt }
   1216        1.1      yamt 
   1217       1.16     perry void
   1218        1.5  augustss cs_set_ladr_filt(struct cs_softc *sc, struct ethercom *ec)
   1219        1.1      yamt {
   1220        1.1      yamt 	struct ifnet *ifp = &ec->ec_if;
   1221        1.1      yamt 	struct ether_multi *enm;
   1222        1.1      yamt 	struct ether_multistep step;
   1223        1.1      yamt 	u_int16_t af[4];
   1224        1.1      yamt 	u_int16_t port, mask, index;
   1225        1.1      yamt 
   1226        1.1      yamt 	/*
   1227        1.1      yamt          * Set up multicast address filter by passing all multicast addresses
   1228        1.1      yamt          * through a crc generator, and then using the high order 6 bits as an
   1229        1.1      yamt          * index into the 64 bit logical address filter.  The high order bit
   1230        1.1      yamt          * selects the word, while the rest of the bits select the bit within
   1231        1.1      yamt          * the word.
   1232        1.1      yamt          */
   1233        1.1      yamt 	if (ifp->if_flags & IFF_PROMISC) {
   1234        1.1      yamt 		/* accept all valid frames. */
   1235        1.1      yamt 		CS_WRITE_PACKET_PAGE(sc, PKTPG_RX_CTL,
   1236        1.1      yamt 		    RX_CTL_PROMISC_A | RX_CTL_RX_OK_A |
   1237        1.1      yamt 		    RX_CTL_IND_A | RX_CTL_BCAST_A | RX_CTL_MCAST_A);
   1238        1.1      yamt 		ifp->if_flags |= IFF_ALLMULTI;
   1239        1.1      yamt 		return;
   1240        1.1      yamt 	}
   1241        1.1      yamt 
   1242        1.1      yamt 	/*
   1243        1.1      yamt 	 * accept frames if a. crc valid, b. individual address match c.
   1244        1.1      yamt 	 * broadcast address,and d. multicast addresses matched in the hash
   1245        1.1      yamt 	 * filter
   1246        1.1      yamt 	 */
   1247        1.1      yamt 	CS_WRITE_PACKET_PAGE(sc, PKTPG_RX_CTL,
   1248        1.1      yamt 	    RX_CTL_RX_OK_A | RX_CTL_IND_A | RX_CTL_BCAST_A | RX_CTL_MCAST_A);
   1249        1.1      yamt 
   1250        1.1      yamt 
   1251        1.1      yamt 	/*
   1252        1.1      yamt 	 * start off with all multicast flag clear, set it if we need to
   1253        1.1      yamt 	 * later, otherwise we will leave it.
   1254        1.1      yamt 	 */
   1255        1.1      yamt 	ifp->if_flags &= ~IFF_ALLMULTI;
   1256        1.1      yamt 	af[0] = af[1] = af[2] = af[3] = 0x0000;
   1257        1.1      yamt 
   1258        1.1      yamt 	/*
   1259        1.1      yamt 	 * Loop through all the multicast addresses unless we get a range of
   1260        1.1      yamt 	 * addresses, in which case we will just accept all packets.
   1261        1.1      yamt 	 * Justification for this is given in the next comment.
   1262        1.1      yamt 	 */
   1263        1.1      yamt 	ETHER_FIRST_MULTI(step, ec, enm);
   1264        1.1      yamt 	while (enm != NULL) {
   1265        1.1      yamt 		if (memcmp(enm->enm_addrlo, enm->enm_addrhi,
   1266        1.1      yamt 		    sizeof enm->enm_addrlo)) {
   1267        1.1      yamt 			/*
   1268        1.1      yamt 	                 * We must listen to a range of multicast addresses.
   1269        1.1      yamt 	                 * For now, just accept all multicasts, rather than
   1270        1.1      yamt 	                 * trying to set only those filter bits needed to match
   1271        1.1      yamt 	                 * the range.  (At this time, the only use of address
   1272        1.1      yamt 	                 * ranges is for IP multicast routing, for which the
   1273        1.1      yamt 	                 * range is big enough to require all bits set.)
   1274        1.1      yamt 	                 */
   1275        1.1      yamt 			ifp->if_flags |= IFF_ALLMULTI;
   1276        1.1      yamt 			af[0] = af[1] = af[2] = af[3] = 0xffff;
   1277        1.1      yamt 			break;
   1278        1.1      yamt 		} else {
   1279        1.1      yamt 			/*
   1280        1.1      yamt 	                 * we have got an individual address so just set that
   1281        1.1      yamt 	                 * bit.
   1282        1.1      yamt 	                 */
   1283        1.1      yamt 			index = cs_hash_index(enm->enm_addrlo);
   1284        1.1      yamt 
   1285        1.1      yamt 			/* Set the bit the Logical address filter. */
   1286        1.1      yamt 			port = (u_int16_t) (index >> 4);
   1287        1.1      yamt 			mask = (u_int16_t) (1 << (index & 0xf));
   1288        1.1      yamt 			af[port] |= mask;
   1289        1.1      yamt 
   1290        1.1      yamt 			ETHER_NEXT_MULTI(step, enm);
   1291        1.1      yamt 		}
   1292        1.1      yamt 	}
   1293        1.1      yamt 
   1294        1.1      yamt 	/* now program the chip with the addresses */
   1295        1.1      yamt 	CS_WRITE_PACKET_PAGE(sc, PKTPG_LOG_ADDR + 0, af[0]);
   1296        1.1      yamt 	CS_WRITE_PACKET_PAGE(sc, PKTPG_LOG_ADDR + 2, af[1]);
   1297        1.1      yamt 	CS_WRITE_PACKET_PAGE(sc, PKTPG_LOG_ADDR + 4, af[2]);
   1298        1.1      yamt 	CS_WRITE_PACKET_PAGE(sc, PKTPG_LOG_ADDR + 6, af[3]);
   1299        1.1      yamt 	return;
   1300        1.1      yamt }
   1301        1.1      yamt 
   1302        1.1      yamt u_int16_t
   1303        1.5  augustss cs_hash_index(char *addr)
   1304        1.1      yamt {
   1305        1.4   thorpej 	uint32_t crc;
   1306        1.4   thorpej 	uint16_t hash_code;
   1307        1.1      yamt 
   1308        1.4   thorpej 	crc = ether_crc32_le(addr, ETHER_ADDR_LEN);
   1309        1.1      yamt 
   1310        1.4   thorpej 	hash_code = crc >> 26;
   1311        1.4   thorpej 	return (hash_code);
   1312        1.1      yamt }
   1313        1.1      yamt 
   1314       1.16     perry void
   1315        1.5  augustss cs_reset(void *arg)
   1316        1.1      yamt {
   1317        1.1      yamt 	struct cs_softc *sc = arg;
   1318        1.1      yamt 
   1319        1.1      yamt 	/* Mark the interface as down */
   1320        1.1      yamt 	sc->sc_ethercom.ec_if.if_flags &= ~IFF_RUNNING;
   1321        1.1      yamt 
   1322        1.1      yamt 	/* Reset the chip */
   1323        1.1      yamt 	cs_reset_chip(sc);
   1324        1.1      yamt }
   1325        1.1      yamt 
   1326       1.16     perry int
   1327        1.5  augustss cs_ioctl(struct ifnet *ifp, u_long cmd, caddr_t data)
   1328        1.1      yamt {
   1329        1.1      yamt 	struct cs_softc *sc = ifp->if_softc;
   1330        1.1      yamt 	struct ifreq *ifr = (struct ifreq *) data;
   1331        1.1      yamt 	int state;
   1332        1.1      yamt 	int result;
   1333        1.1      yamt 
   1334        1.1      yamt 	state = splnet();
   1335        1.1      yamt 
   1336        1.1      yamt 	result = 0;		/* only set if something goes wrong */
   1337        1.1      yamt 
   1338        1.1      yamt 	switch (cmd) {
   1339        1.1      yamt 	case SIOCGIFMEDIA:
   1340        1.1      yamt 	case SIOCSIFMEDIA:
   1341        1.1      yamt 		result = ifmedia_ioctl(ifp, ifr, &sc->sc_media, cmd);
   1342        1.1      yamt 		break;
   1343        1.1      yamt 
   1344        1.1      yamt 	default:
   1345        1.1      yamt 		result = ether_ioctl(ifp, cmd, data);
   1346        1.1      yamt 		if (result == ENETRESET) {
   1347       1.15   thorpej 			if (ifp->if_flags & IFF_RUNNING) {
   1348        1.1      yamt 				/*
   1349        1.1      yamt 				 * Multicast list has changed.  Set the
   1350        1.1      yamt 				 * hardware filter accordingly.
   1351        1.1      yamt 				 */
   1352        1.1      yamt 				cs_set_ladr_filt(sc, &sc->sc_ethercom);
   1353        1.1      yamt 			}
   1354        1.1      yamt 			result = 0;
   1355        1.1      yamt 		}
   1356        1.1      yamt 		break;
   1357        1.1      yamt 	}
   1358        1.1      yamt 
   1359        1.1      yamt 	splx(state);
   1360        1.1      yamt 
   1361        1.1      yamt 	return result;
   1362        1.1      yamt }
   1363        1.1      yamt 
   1364        1.1      yamt int
   1365        1.5  augustss cs_mediachange(struct ifnet *ifp)
   1366        1.1      yamt {
   1367        1.1      yamt 
   1368        1.1      yamt 	/*
   1369        1.1      yamt 	 * Current media is already set up.  Just reset the interface
   1370        1.1      yamt 	 * to let the new value take hold.
   1371        1.1      yamt 	 */
   1372        1.1      yamt 	cs_init(ifp);
   1373        1.1      yamt 	return (0);
   1374        1.1      yamt }
   1375        1.1      yamt 
   1376        1.1      yamt void
   1377        1.5  augustss cs_mediastatus(struct ifnet *ifp, struct ifmediareq *ifmr)
   1378        1.1      yamt {
   1379        1.1      yamt 	struct cs_softc *sc = ifp->if_softc;
   1380        1.1      yamt 
   1381        1.1      yamt 	/*
   1382        1.1      yamt 	 * The currently selected media is always the active media.
   1383        1.1      yamt 	 */
   1384        1.1      yamt 	ifmr->ifm_active = sc->sc_media.ifm_cur->ifm_media;
   1385        1.1      yamt 
   1386        1.1      yamt 	if (ifp->if_flags & IFF_UP) {
   1387        1.1      yamt 		/* Interface up, status is valid. */
   1388        1.1      yamt 		ifmr->ifm_status = IFM_AVALID |
   1389        1.1      yamt 		    (sc->sc_carrier ? IFM_ACTIVE : 0);
   1390        1.1      yamt 	}
   1391        1.1      yamt 		else ifmr->ifm_status = 0;
   1392        1.1      yamt }
   1393        1.1      yamt 
   1394       1.16     perry int
   1395        1.5  augustss cs_intr(void *arg)
   1396        1.1      yamt {
   1397        1.1      yamt 	struct cs_softc *sc = arg;
   1398        1.1      yamt 	u_int16_t Event;
   1399        1.1      yamt #if NRND > 0
   1400        1.1      yamt 	u_int16_t rndEvent;
   1401        1.1      yamt #endif
   1402        1.1      yamt 
   1403        1.6  augustss /*printf("cs_intr %p\n", sc);*/
   1404        1.1      yamt 	/* Ignore any interrupts that happen while the chip is being reset */
   1405        1.1      yamt 	if (sc->sc_resetting) {
   1406        1.1      yamt 		printf("%s: cs_intr: reset in progress\n",
   1407        1.1      yamt 		    sc->sc_dev.dv_xname);
   1408        1.1      yamt 		return 1;
   1409        1.1      yamt 	}
   1410        1.1      yamt 
   1411        1.1      yamt 	/* Read an event from the Interrupt Status Queue */
   1412        1.1      yamt 	if (sc->sc_memorymode)
   1413        1.1      yamt 		Event = CS_READ_PACKET_PAGE(sc, PKTPG_ISQ);
   1414        1.1      yamt 	else
   1415        1.1      yamt 		Event = CS_READ_PORT(sc, PORT_ISQ);
   1416        1.1      yamt 
   1417        1.1      yamt 	if ((Event & REG_NUM_MASK) == 0 || Event == 0xffff)
   1418        1.1      yamt 		return 0;	/* not ours */
   1419        1.1      yamt 
   1420        1.1      yamt #if NRND > 0
   1421        1.1      yamt 	rndEvent = Event;
   1422        1.1      yamt #endif
   1423        1.1      yamt 
   1424        1.1      yamt 	/* Process all the events in the Interrupt Status Queue */
   1425        1.1      yamt 	while ((Event & REG_NUM_MASK) != 0 && Event != 0xffff) {
   1426        1.1      yamt 		/* Dispatch to an event handler based on the register number */
   1427        1.1      yamt 		switch (Event & REG_NUM_MASK) {
   1428        1.1      yamt 		case REG_NUM_RX_EVENT:
   1429        1.1      yamt 			cs_receive_event(sc, Event);
   1430        1.1      yamt 			break;
   1431        1.1      yamt 		case REG_NUM_TX_EVENT:
   1432        1.1      yamt 			cs_transmit_event(sc, Event);
   1433        1.1      yamt 			break;
   1434        1.1      yamt 		case REG_NUM_BUF_EVENT:
   1435        1.1      yamt 			cs_buffer_event(sc, Event);
   1436        1.1      yamt 			break;
   1437        1.1      yamt 		case REG_NUM_TX_COL:
   1438        1.1      yamt 		case REG_NUM_RX_MISS:
   1439        1.1      yamt 			cs_counter_event(sc, Event);
   1440        1.1      yamt 			break;
   1441        1.1      yamt 		default:
   1442        1.1      yamt 			printf("%s: unknown interrupt event 0x%x\n",
   1443        1.1      yamt 			    sc->sc_dev.dv_xname, Event);
   1444        1.1      yamt 			break;
   1445        1.1      yamt 		}
   1446        1.1      yamt 
   1447        1.1      yamt 		/* Read another event from the Interrupt Status Queue */
   1448        1.1      yamt 		if (sc->sc_memorymode)
   1449        1.1      yamt 			Event = CS_READ_PACKET_PAGE(sc, PKTPG_ISQ);
   1450        1.1      yamt 		else
   1451        1.1      yamt 			Event = CS_READ_PORT(sc, PORT_ISQ);
   1452        1.1      yamt 	}
   1453        1.1      yamt 
   1454        1.7       wiz 	/* have handled the interrupt */
   1455        1.1      yamt #if NRND > 0
   1456        1.1      yamt 	rnd_add_uint32(&sc->rnd_source, rndEvent);
   1457        1.1      yamt #endif
   1458        1.1      yamt 	return 1;
   1459        1.1      yamt }
   1460        1.1      yamt 
   1461       1.16     perry void
   1462        1.5  augustss cs_counter_event(struct cs_softc *sc, u_int16_t cntEvent)
   1463        1.1      yamt {
   1464        1.1      yamt 	struct ifnet *ifp;
   1465        1.1      yamt 	u_int16_t errorCount;
   1466        1.1      yamt 
   1467        1.1      yamt 	ifp = &sc->sc_ethercom.ec_if;
   1468        1.1      yamt 
   1469        1.1      yamt 	switch (cntEvent & REG_NUM_MASK) {
   1470        1.1      yamt 	case REG_NUM_TX_COL:
   1471        1.1      yamt 		/*
   1472        1.1      yamt 		 * the count should be read before an overflow occurs.
   1473        1.1      yamt 		 */
   1474        1.1      yamt 		errorCount = CS_READ_PACKET_PAGE(sc, PKTPG_TX_COL);
   1475        1.1      yamt 		/*
   1476        1.1      yamt 		 * the tramsit event routine always checks the number of
   1477        1.1      yamt 		 * collisions for any packet so we don't increment any
   1478        1.1      yamt 		 * counters here, as they should already have been
   1479        1.1      yamt 		 * considered.
   1480        1.1      yamt 		 */
   1481        1.1      yamt 		break;
   1482        1.1      yamt 	case REG_NUM_RX_MISS:
   1483        1.1      yamt 		/*
   1484        1.1      yamt 		 * the count should be read before an overflow occurs.
   1485        1.1      yamt 		 */
   1486        1.1      yamt 		errorCount = CS_READ_PACKET_PAGE(sc, PKTPG_RX_MISS);
   1487        1.1      yamt 		/*
   1488        1.1      yamt 		 * Increment the input error count, the first 6bits are the
   1489        1.1      yamt 		 * register id.
   1490        1.1      yamt 		 */
   1491        1.1      yamt 		ifp->if_ierrors += ((errorCount & 0xffC0) >> 6);
   1492        1.1      yamt 		break;
   1493        1.1      yamt 	default:
   1494        1.1      yamt 		/* do nothing */
   1495        1.1      yamt 		break;
   1496        1.1      yamt 	}
   1497        1.1      yamt }
   1498        1.1      yamt 
   1499       1.16     perry void
   1500        1.5  augustss cs_buffer_event(struct cs_softc *sc, u_int16_t bufEvent)
   1501        1.1      yamt {
   1502        1.1      yamt 
   1503        1.1      yamt 	/*
   1504        1.1      yamt 	 * multiple events can be in the buffer event register at one time so
   1505        1.1      yamt 	 * a standard switch statement will not suffice, here every event
   1506        1.1      yamt 	 * must be checked.
   1507        1.1      yamt 	 */
   1508        1.1      yamt 
   1509        1.1      yamt 	/*
   1510        1.1      yamt 	 * if 128 bits have been rxed by the time we get here, the dest event
   1511        1.1      yamt 	 * will be cleared and 128 event will be set.
   1512        1.1      yamt 	 */
   1513        1.1      yamt 	if ((bufEvent & (BUF_EVENT_RX_DEST | BUF_EVENT_RX_128)) != 0) {
   1514        1.1      yamt 		cs_process_rx_early(sc);
   1515        1.1      yamt 	}
   1516        1.1      yamt 
   1517        1.1      yamt 	if (bufEvent & BUF_EVENT_RX_DMA) {
   1518        1.1      yamt 		/* process the receive data */
   1519        1.1      yamt 		if (sc->sc_dma_process_rx)
   1520        1.1      yamt 			(*sc->sc_dma_process_rx)(sc);
   1521        1.1      yamt 		else
   1522        1.1      yamt 			/* should panic? */
   1523        1.9       wiz 			printf("%s: unexpected DMA event\n", sc->sc_dev.dv_xname);
   1524        1.1      yamt 	}
   1525        1.1      yamt 
   1526        1.1      yamt 	if (bufEvent & BUF_EVENT_TX_UNDR) {
   1527        1.1      yamt #if 0
   1528        1.1      yamt 		/*
   1529        1.1      yamt 		 * This can happen occasionally, and it's not worth worrying
   1530        1.1      yamt 		 * about.
   1531        1.1      yamt 		 */
   1532        1.1      yamt 		printf("%s: transmit underrun (%d -> %d)\n",
   1533        1.1      yamt 		    sc->sc_dev.dv_xname, sc->sc_xe_ent,
   1534        1.1      yamt 		    cs_xmit_early_table[sc->sc_xe_ent].worse);
   1535        1.1      yamt #endif
   1536        1.1      yamt 		sc->sc_xe_ent = cs_xmit_early_table[sc->sc_xe_ent].worse;
   1537        1.1      yamt 		sc->sc_xe_togo =
   1538        1.1      yamt 		    cs_xmit_early_table[sc->sc_xe_ent].better_count;
   1539        1.1      yamt 
   1540        1.1      yamt 		/* had an underrun, transmit is finished */
   1541        1.1      yamt 		sc->sc_txbusy = FALSE;
   1542        1.1      yamt 	}
   1543        1.1      yamt 
   1544        1.1      yamt 	if (bufEvent & BUF_EVENT_SW_INT) {
   1545        1.1      yamt 		printf("%s: software initiated interrupt\n",
   1546        1.1      yamt 		    sc->sc_dev.dv_xname);
   1547        1.1      yamt 	}
   1548        1.1      yamt }
   1549        1.1      yamt 
   1550       1.16     perry void
   1551        1.5  augustss cs_transmit_event(struct cs_softc *sc, u_int16_t txEvent)
   1552        1.1      yamt {
   1553        1.1      yamt 	struct ifnet *ifp = &sc->sc_ethercom.ec_if;
   1554        1.1      yamt 
   1555        1.1      yamt 	/* If there were any errors transmitting this frame */
   1556        1.1      yamt 	if (txEvent & (TX_EVENT_LOSS_CRS | TX_EVENT_SQE_ERR | TX_EVENT_OUT_WIN |
   1557        1.1      yamt 		       TX_EVENT_JABBER | TX_EVENT_16_COLL)) {
   1558        1.1      yamt 		/* Increment the output error count */
   1559        1.1      yamt 		ifp->if_oerrors++;
   1560        1.1      yamt 
   1561        1.1      yamt 		/* Note carrier loss. */
   1562        1.1      yamt 		if (txEvent & TX_EVENT_LOSS_CRS)
   1563        1.1      yamt 			sc->sc_carrier = 0;
   1564        1.1      yamt 
   1565        1.1      yamt 		/* If debugging is enabled then log error messages */
   1566        1.1      yamt 		if (ifp->if_flags & IFF_DEBUG) {
   1567        1.1      yamt 			if (txEvent & TX_EVENT_LOSS_CRS) {
   1568        1.1      yamt 				printf("%s: lost carrier\n",
   1569        1.1      yamt 				    sc->sc_dev.dv_xname);
   1570        1.1      yamt 			}
   1571        1.1      yamt 			if (txEvent & TX_EVENT_SQE_ERR) {
   1572        1.1      yamt 				printf("%s: SQE error\n",
   1573        1.1      yamt 				    sc->sc_dev.dv_xname);
   1574        1.1      yamt 			}
   1575        1.1      yamt 			if (txEvent & TX_EVENT_OUT_WIN) {
   1576        1.1      yamt 				printf("%s: out-of-window collision\n",
   1577        1.1      yamt 				    sc->sc_dev.dv_xname);
   1578        1.1      yamt 			}
   1579        1.1      yamt 			if (txEvent & TX_EVENT_JABBER) {
   1580        1.1      yamt 				printf("%s: jabber\n", sc->sc_dev.dv_xname);
   1581        1.1      yamt 			}
   1582        1.1      yamt 			if (txEvent & TX_EVENT_16_COLL) {
   1583        1.1      yamt 				printf("%s: 16 collisions\n",
   1584        1.1      yamt 				    sc->sc_dev.dv_xname);
   1585        1.1      yamt 			}
   1586        1.1      yamt 		}
   1587        1.1      yamt 	}
   1588        1.1      yamt 	else {
   1589        1.1      yamt 		/* Transmission successful, carrier is up. */
   1590        1.1      yamt 		sc->sc_carrier = 1;
   1591        1.1      yamt #ifdef SHARK
   1592        1.1      yamt 		ledNetActive();
   1593        1.1      yamt #endif
   1594        1.1      yamt 	}
   1595        1.1      yamt 
   1596        1.1      yamt 	/* Add the number of collisions for this frame */
   1597        1.1      yamt 	if (txEvent & TX_EVENT_16_COLL) {
   1598        1.1      yamt 		ifp->if_collisions += 16;
   1599        1.1      yamt 	} else {
   1600        1.1      yamt 		ifp->if_collisions += ((txEvent & TX_EVENT_COLL_MASK) >> 11);
   1601        1.1      yamt 	}
   1602        1.1      yamt 
   1603        1.1      yamt 	ifp->if_opackets++;
   1604        1.1      yamt 
   1605        1.1      yamt 	/* Transmission is no longer in progress */
   1606        1.1      yamt 	sc->sc_txbusy = FALSE;
   1607        1.1      yamt 
   1608        1.1      yamt 	/* If there is more to transmit */
   1609        1.1      yamt 	if (IFQ_IS_EMPTY(&ifp->if_snd) == 0) {
   1610        1.1      yamt 		/* Start the next transmission */
   1611        1.1      yamt 		cs_start_output(ifp);
   1612        1.1      yamt 	}
   1613        1.1      yamt }
   1614        1.1      yamt 
   1615        1.1      yamt void
   1616        1.5  augustss cs_print_rx_errors(struct cs_softc *sc, u_int16_t rxEvent)
   1617        1.1      yamt {
   1618        1.1      yamt 
   1619        1.1      yamt 	if (rxEvent & RX_EVENT_RUNT)
   1620        1.1      yamt 		printf("%s: runt\n", sc->sc_dev.dv_xname);
   1621        1.1      yamt 
   1622        1.1      yamt 	if (rxEvent & RX_EVENT_X_DATA)
   1623        1.1      yamt 		printf("%s: extra data\n", sc->sc_dev.dv_xname);
   1624        1.1      yamt 
   1625        1.1      yamt 	if (rxEvent & RX_EVENT_CRC_ERR) {
   1626        1.1      yamt 		if (rxEvent & RX_EVENT_DRIBBLE)
   1627        1.1      yamt 			printf("%s: alignment error\n", sc->sc_dev.dv_xname);
   1628        1.1      yamt 		else
   1629        1.1      yamt 			printf("%s: CRC error\n", sc->sc_dev.dv_xname);
   1630        1.1      yamt 	} else {
   1631        1.1      yamt 		if (rxEvent & RX_EVENT_DRIBBLE)
   1632        1.1      yamt 			printf("%s: dribble bits\n", sc->sc_dev.dv_xname);
   1633        1.1      yamt 	}
   1634        1.1      yamt }
   1635        1.1      yamt 
   1636       1.16     perry void
   1637        1.5  augustss cs_receive_event(struct cs_softc *sc, u_int16_t rxEvent)
   1638        1.1      yamt {
   1639        1.1      yamt 	struct ifnet *ifp = &sc->sc_ethercom.ec_if;
   1640        1.1      yamt 
   1641        1.1      yamt 	/* If the frame was not received OK */
   1642        1.1      yamt 	if (!(rxEvent & RX_EVENT_RX_OK)) {
   1643        1.1      yamt 		/* Increment the input error count */
   1644        1.1      yamt 		ifp->if_ierrors++;
   1645        1.1      yamt 
   1646        1.1      yamt 		/*
   1647        1.1      yamt 		 * If debugging is enabled then log error messages.
   1648        1.1      yamt 		 */
   1649        1.1      yamt 		if (ifp->if_flags & IFF_DEBUG) {
   1650        1.1      yamt 			if (rxEvent != REG_NUM_RX_EVENT) {
   1651        1.1      yamt 				cs_print_rx_errors(sc, rxEvent);
   1652        1.1      yamt 
   1653        1.1      yamt 				/*
   1654        1.1      yamt 				 * Must read the length of all received
   1655        1.1      yamt 				 * frames
   1656        1.1      yamt 				 */
   1657        1.1      yamt 				CS_READ_PACKET_PAGE(sc, PKTPG_RX_LENGTH);
   1658        1.1      yamt 
   1659        1.1      yamt 				/* Skip the received frame */
   1660        1.1      yamt 				CS_WRITE_PACKET_PAGE(sc, PKTPG_RX_CFG,
   1661        1.1      yamt 					CS_READ_PACKET_PAGE(sc, PKTPG_RX_CFG) |
   1662        1.1      yamt 						  RX_CFG_SKIP);
   1663        1.1      yamt 			} else {
   1664        1.1      yamt 				printf("%s: implied skip\n",
   1665        1.1      yamt 				    sc->sc_dev.dv_xname);
   1666        1.1      yamt 			}
   1667        1.1      yamt 		}
   1668        1.1      yamt 	} else {
   1669        1.1      yamt 		/*
   1670        1.1      yamt 		 * process the received frame and pass it up to the upper
   1671        1.1      yamt 		 * layers.
   1672        1.1      yamt 		 */
   1673        1.1      yamt 		cs_process_receive(sc);
   1674        1.1      yamt 	}
   1675        1.1      yamt }
   1676        1.1      yamt 
   1677        1.1      yamt void
   1678        1.5  augustss cs_ether_input(struct cs_softc *sc, struct mbuf *m)
   1679        1.1      yamt {
   1680        1.1      yamt 	struct ifnet *ifp = &sc->sc_ethercom.ec_if;
   1681        1.1      yamt 
   1682        1.1      yamt 	ifp->if_ipackets++;
   1683        1.1      yamt 
   1684        1.1      yamt #if NBPFILTER > 0
   1685        1.1      yamt 	/*
   1686        1.1      yamt 	 * Check if there's a BPF listener on this interface.
   1687        1.1      yamt 	 * If so, hand off the raw packet to BPF.
   1688        1.1      yamt 	 */
   1689        1.1      yamt 	if (ifp->if_bpf)
   1690        1.1      yamt 		bpf_mtap(ifp->if_bpf, m);
   1691        1.1      yamt #endif
   1692        1.1      yamt 
   1693        1.1      yamt 	/* Pass the packet up. */
   1694        1.1      yamt 	(*ifp->if_input)(ifp, m);
   1695        1.1      yamt }
   1696        1.1      yamt 
   1697       1.16     perry void
   1698        1.5  augustss cs_process_receive(struct cs_softc *sc)
   1699        1.1      yamt {
   1700        1.1      yamt 	struct ifnet *ifp;
   1701        1.1      yamt 	struct mbuf *m;
   1702        1.1      yamt 	int totlen;
   1703        1.1      yamt 	u_int16_t *pBuff, *pBuffLimit;
   1704        1.1      yamt 	int pad;
   1705       1.10  christos 	unsigned int frameOffset = 0;	/* XXX: gcc */
   1706        1.1      yamt 
   1707        1.1      yamt #ifdef SHARK
   1708        1.1      yamt 	ledNetActive();
   1709        1.1      yamt #endif
   1710        1.1      yamt 
   1711        1.1      yamt 	ifp = &sc->sc_ethercom.ec_if;
   1712        1.1      yamt 
   1713        1.1      yamt 	/* Received a packet; carrier is up. */
   1714        1.1      yamt 	sc->sc_carrier = 1;
   1715        1.1      yamt 
   1716        1.1      yamt 	if (sc->sc_memorymode) {
   1717        1.1      yamt 		/* Initialize the frame offset */
   1718        1.1      yamt 		frameOffset = PKTPG_RX_LENGTH;
   1719        1.1      yamt 
   1720        1.1      yamt 		/* Get the length of the received frame */
   1721        1.1      yamt 		totlen = CS_READ_PACKET_PAGE(sc, frameOffset);
   1722        1.1      yamt 		frameOffset += 2;
   1723        1.1      yamt 	}
   1724        1.1      yamt 	else {
   1725        1.1      yamt 		/* drop status */
   1726        1.1      yamt 		CS_READ_PORT(sc, PORT_RXTX_DATA);
   1727        1.1      yamt 
   1728        1.1      yamt 		/* Get the length of the received frame */
   1729        1.1      yamt 		totlen = CS_READ_PORT(sc, PORT_RXTX_DATA);
   1730        1.1      yamt 	}
   1731        1.1      yamt 
   1732        1.2      yamt 	if (totlen > ETHER_MAX_LEN) {
   1733       1.13      matt 		printf("%s: invalid packet length %d\n",
   1734       1.13      matt 		    sc->sc_dev.dv_xname, totlen);
   1735        1.2      yamt 
   1736        1.2      yamt 		/* skip the received frame */
   1737        1.2      yamt 		CS_WRITE_PACKET_PAGE(sc, PKTPG_RX_CFG,
   1738        1.2      yamt 			CS_READ_PACKET_PAGE(sc, PKTPG_RX_CFG) | RX_CFG_SKIP);
   1739        1.2      yamt 		return;
   1740        1.2      yamt 	}
   1741        1.2      yamt 
   1742        1.1      yamt 	MGETHDR(m, M_DONTWAIT, MT_DATA);
   1743        1.1      yamt 	if (m == 0) {
   1744        1.1      yamt 		printf("%s: cs_process_receive: unable to allocate mbuf\n",
   1745        1.1      yamt 		    sc->sc_dev.dv_xname);
   1746        1.1      yamt 		ifp->if_ierrors++;
   1747        1.1      yamt 		/*
   1748        1.1      yamt 		 * couldn't allocate an mbuf so things are not good, may as
   1749        1.1      yamt 		 * well drop the packet I think.
   1750       1.16     perry 		 *
   1751        1.1      yamt 		 * have already read the length so we should be right to skip
   1752        1.1      yamt 		 * the packet.
   1753        1.1      yamt 		 */
   1754        1.1      yamt 		CS_WRITE_PACKET_PAGE(sc, PKTPG_RX_CFG,
   1755        1.1      yamt 		    CS_READ_PACKET_PAGE(sc, PKTPG_RX_CFG) | RX_CFG_SKIP);
   1756        1.1      yamt 		return;
   1757        1.1      yamt 	}
   1758        1.1      yamt 	m->m_pkthdr.rcvif = ifp;
   1759        1.1      yamt 	m->m_pkthdr.len = totlen;
   1760        1.1      yamt 
   1761        1.2      yamt 	/* number of bytes to align ip header on word boundary for ipintr */
   1762        1.2      yamt 	pad = ALIGN(sizeof(struct ether_header)) - sizeof(struct ether_header);
   1763        1.2      yamt 
   1764        1.1      yamt 	/*
   1765        1.2      yamt 	 * alloc mbuf cluster if we need.
   1766        1.2      yamt 	 * we need 1 byte spare because following
   1767        1.2      yamt 	 * packet read loop can overrun.
   1768        1.1      yamt 	 */
   1769        1.2      yamt 	if (totlen + pad + 1 > MHLEN) {
   1770        1.2      yamt 		MCLGET(m, M_DONTWAIT);
   1771        1.2      yamt 		if ((m->m_flags & M_EXT) == 0) {
   1772        1.2      yamt 			/* couldn't allocate an mbuf cluster */
   1773        1.2      yamt 			printf("%s: cs_process_receive: unable to allocate a cluster\n",
   1774        1.2      yamt 				sc->sc_dev.dv_xname);
   1775        1.2      yamt 			m_freem(m);
   1776        1.2      yamt 
   1777        1.2      yamt 			/* skip the received frame */
   1778        1.2      yamt 			CS_WRITE_PACKET_PAGE(sc, PKTPG_RX_CFG,
   1779        1.2      yamt 				CS_READ_PACKET_PAGE(sc, PKTPG_RX_CFG) | RX_CFG_SKIP);
   1780        1.2      yamt 			return;
   1781        1.2      yamt 		}
   1782        1.1      yamt 	}
   1783        1.1      yamt 
   1784        1.1      yamt 	/* align ip header on word boundary for ipintr */
   1785        1.1      yamt 	m->m_data += pad;
   1786        1.1      yamt 
   1787        1.2      yamt 	m->m_len = totlen;
   1788        1.1      yamt 	pBuff = mtod(m, u_int16_t *);
   1789        1.1      yamt 
   1790        1.1      yamt 	/* now read the data from the chip */
   1791        1.1      yamt 	if (sc->sc_memorymode) {
   1792        1.2      yamt 		pBuffLimit = pBuff + (totlen + 1) / 2;	/* don't want to go over */
   1793        1.1      yamt 		while (pBuff < pBuffLimit) {
   1794        1.1      yamt 			*pBuff++ = CS_READ_PACKET_PAGE(sc, frameOffset);
   1795        1.1      yamt 			frameOffset += 2;
   1796        1.1      yamt 		}
   1797        1.1      yamt 	}
   1798        1.1      yamt 	else {
   1799        1.6  augustss 		IO_READ_MULTI_2(sc, PORT_RXTX_DATA, pBuff, (totlen + 1)>>1);
   1800        1.1      yamt 	}
   1801        1.1      yamt 
   1802        1.1      yamt 	cs_ether_input(sc, m);
   1803        1.1      yamt }
   1804        1.1      yamt 
   1805       1.16     perry void
   1806        1.5  augustss cs_process_rx_early(struct cs_softc *sc)
   1807        1.1      yamt {
   1808        1.1      yamt 	struct ifnet *ifp;
   1809        1.1      yamt 	struct mbuf *m;
   1810        1.1      yamt 	u_int16_t frameCount, oldFrameCount;
   1811        1.1      yamt 	u_int16_t rxEvent;
   1812        1.1      yamt 	u_int16_t *pBuff;
   1813        1.1      yamt 	int pad;
   1814        1.1      yamt 	unsigned int frameOffset;
   1815        1.1      yamt 
   1816        1.1      yamt 
   1817        1.1      yamt 	ifp = &sc->sc_ethercom.ec_if;
   1818        1.1      yamt 
   1819        1.1      yamt 	/* Initialize the frame offset */
   1820        1.1      yamt 	frameOffset = PKTPG_RX_FRAME;
   1821        1.1      yamt 	frameCount = 0;
   1822        1.1      yamt 
   1823        1.1      yamt 	MGETHDR(m, M_DONTWAIT, MT_DATA);
   1824        1.1      yamt 	if (m == 0) {
   1825        1.1      yamt 		printf("%s: cs_process_rx_early: unable to allocate mbuf\n",
   1826        1.1      yamt 		    sc->sc_dev.dv_xname);
   1827        1.1      yamt 		ifp->if_ierrors++;
   1828        1.1      yamt 		/*
   1829        1.1      yamt 		 * couldn't allocate an mbuf so things are not good, may as
   1830        1.1      yamt 		 * well drop the packet I think.
   1831       1.16     perry 		 *
   1832        1.1      yamt 		 * have already read the length so we should be right to skip
   1833        1.1      yamt 		 * the packet.
   1834        1.1      yamt 		 */
   1835        1.1      yamt 		CS_WRITE_PACKET_PAGE(sc, PKTPG_RX_CFG,
   1836        1.1      yamt 		    CS_READ_PACKET_PAGE(sc, PKTPG_RX_CFG) | RX_CFG_SKIP);
   1837        1.1      yamt 		return;
   1838        1.1      yamt 	}
   1839        1.1      yamt 	m->m_pkthdr.rcvif = ifp;
   1840        1.1      yamt 	/*
   1841        1.8       wiz 	 * save processing by always using a mbuf cluster, guaranteed to fit
   1842        1.1      yamt 	 * packet
   1843        1.1      yamt 	 */
   1844        1.1      yamt 	MCLGET(m, M_DONTWAIT);
   1845        1.1      yamt 	if ((m->m_flags & M_EXT) == 0) {
   1846        1.1      yamt 		/* couldn't allocate an mbuf cluster */
   1847        1.1      yamt 		printf("%s: cs_process_rx_early: unable to allocate a cluster\n",
   1848        1.1      yamt 		    sc->sc_dev.dv_xname);
   1849        1.1      yamt 		m_freem(m);
   1850        1.1      yamt 		/* skip the frame */
   1851        1.1      yamt 		CS_WRITE_PACKET_PAGE(sc, PKTPG_RX_CFG,
   1852        1.1      yamt 		    CS_READ_PACKET_PAGE(sc, PKTPG_RX_CFG) | RX_CFG_SKIP);
   1853        1.1      yamt 		return;
   1854        1.1      yamt 	}
   1855        1.1      yamt 
   1856        1.1      yamt 	/* align ip header on word boundary for ipintr */
   1857        1.1      yamt 	pad = ALIGN(sizeof(struct ether_header)) - sizeof(struct ether_header);
   1858        1.1      yamt 	m->m_data += pad;
   1859        1.1      yamt 
   1860        1.1      yamt 	/* set up the buffer pointer to point to the data area */
   1861        1.1      yamt 	pBuff = mtod(m, u_int16_t *);
   1862        1.1      yamt 
   1863        1.1      yamt 	/*
   1864        1.1      yamt 	 * now read the frame byte counter until we have finished reading the
   1865        1.1      yamt 	 * frame
   1866        1.1      yamt 	 */
   1867        1.1      yamt 	oldFrameCount = 0;
   1868        1.1      yamt 	frameCount = CS_READ_PACKET_PAGE(sc, PKTPG_FRAME_BYTE_COUNT);
   1869        1.1      yamt 	while ((frameCount != 0) && (frameCount < MCLBYTES)) {
   1870        1.1      yamt 		for (; oldFrameCount < frameCount; oldFrameCount += 2) {
   1871        1.1      yamt 			*pBuff++ = CS_READ_PACKET_PAGE(sc, frameOffset);
   1872        1.1      yamt 			frameOffset += 2;
   1873        1.1      yamt 		}
   1874        1.1      yamt 
   1875        1.1      yamt 		/* read the new count from the chip */
   1876        1.1      yamt 		frameCount = CS_READ_PACKET_PAGE(sc, PKTPG_FRAME_BYTE_COUNT);
   1877        1.1      yamt 	}
   1878        1.1      yamt 
   1879        1.1      yamt 	/* update the mbuf counts */
   1880        1.1      yamt 	m->m_len = oldFrameCount;
   1881        1.1      yamt 	m->m_pkthdr.len = oldFrameCount;
   1882        1.1      yamt 
   1883        1.1      yamt 	/* now check the Rx Event register */
   1884        1.1      yamt 	rxEvent = CS_READ_PACKET_PAGE(sc, PKTPG_RX_EVENT);
   1885        1.1      yamt 
   1886        1.1      yamt 	if ((rxEvent & RX_EVENT_RX_OK) != 0) {
   1887        1.1      yamt 		/*
   1888        1.1      yamt 		 * do an implied skip, it seems to be more reliable than a
   1889        1.1      yamt 		 * forced skip.
   1890        1.1      yamt 		 */
   1891        1.1      yamt 		rxEvent = CS_READ_PACKET_PAGE(sc, PKTPG_RX_STATUS);
   1892        1.1      yamt 		rxEvent = CS_READ_PACKET_PAGE(sc, PKTPG_RX_LENGTH);
   1893        1.1      yamt 
   1894        1.1      yamt 		/*
   1895        1.1      yamt 		 * now read the RX_EVENT register to perform an implied skip.
   1896        1.1      yamt 		 */
   1897        1.1      yamt 		rxEvent = CS_READ_PACKET_PAGE(sc, PKTPG_RX_EVENT);
   1898        1.1      yamt 
   1899        1.1      yamt 		cs_ether_input(sc, m);
   1900        1.1      yamt 	} else {
   1901        1.1      yamt 		m_freem(m);
   1902        1.1      yamt 		ifp->if_ierrors++;
   1903        1.1      yamt 	}
   1904        1.1      yamt }
   1905        1.1      yamt 
   1906       1.16     perry void
   1907        1.5  augustss cs_start_output(struct ifnet *ifp)
   1908        1.1      yamt {
   1909        1.1      yamt 	struct cs_softc *sc;
   1910        1.1      yamt 	struct mbuf *pMbuf;
   1911        1.1      yamt 	struct mbuf *pMbufChain;
   1912        1.1      yamt 	u_int16_t BusStatus;
   1913        1.1      yamt 	u_int16_t Length;
   1914        1.1      yamt 	int txLoop = 0;
   1915        1.1      yamt 	int dropout = 0;
   1916        1.1      yamt 
   1917        1.1      yamt 	sc = ifp->if_softc;
   1918        1.1      yamt 
   1919        1.1      yamt 	/* check that the interface is up and running */
   1920        1.1      yamt 	if ((ifp->if_flags & (IFF_RUNNING | IFF_OACTIVE)) != IFF_RUNNING) {
   1921        1.1      yamt 		return;
   1922        1.1      yamt 	}
   1923        1.1      yamt 
   1924        1.1      yamt 	/* Don't interrupt a transmission in progress */
   1925        1.1      yamt 	if (sc->sc_txbusy) {
   1926        1.1      yamt 		return;
   1927        1.1      yamt 	}
   1928        1.1      yamt 
   1929        1.1      yamt 	/* this loop will only run through once if transmission is successful */
   1930        1.1      yamt 	/*
   1931        1.1      yamt 	 * While there are packets to transmit and a transmit is not in
   1932        1.1      yamt 	 * progress
   1933        1.1      yamt 	 */
   1934        1.1      yamt 	while (sc->sc_txbusy == 0 && dropout == 0) {
   1935        1.1      yamt 		IFQ_DEQUEUE(&ifp->if_snd, pMbufChain);
   1936        1.1      yamt 		if (pMbufChain == NULL)
   1937        1.1      yamt 			break;
   1938        1.1      yamt 
   1939        1.1      yamt #if NBPFILTER > 0
   1940        1.1      yamt 		/*
   1941        1.1      yamt 	         * If BPF is listening on this interface, let it see the packet
   1942        1.1      yamt 	         * before we commit it to the wire.
   1943        1.1      yamt 	         */
   1944        1.1      yamt 		if (ifp->if_bpf)
   1945        1.1      yamt 			bpf_mtap(ifp->if_bpf, pMbufChain);
   1946        1.1      yamt #endif
   1947        1.1      yamt 
   1948        1.1      yamt 		/* Find the total length of the data to transmit */
   1949        1.1      yamt 		Length = 0;
   1950        1.1      yamt 		for (pMbuf = pMbufChain; pMbuf != NULL; pMbuf = pMbuf->m_next)
   1951        1.1      yamt 			Length += pMbuf->m_len;
   1952        1.1      yamt 
   1953        1.1      yamt 		do {
   1954        1.1      yamt 			/*
   1955        1.1      yamt 			 * Request that the transmit be started after all
   1956        1.1      yamt 			 * data has been copied
   1957       1.16     perry 			 *
   1958        1.1      yamt 			 * In IO mode must write to the IO port not the packet
   1959        1.1      yamt 			 * page address
   1960       1.16     perry 			 *
   1961        1.1      yamt 			 * If this is changed to start transmission after a
   1962        1.1      yamt 			 * small amount of data has been copied you tend to
   1963        1.1      yamt 			 * get packet missed errors i think because the ISA
   1964        1.1      yamt 			 * bus is too slow. Or possibly the copy routine is
   1965        1.1      yamt 			 * not streamlined enough.
   1966        1.1      yamt 			 */
   1967        1.1      yamt 			if (sc->sc_memorymode) {
   1968        1.1      yamt 				CS_WRITE_PACKET_PAGE(sc, PKTPG_TX_CMD,
   1969        1.1      yamt 					cs_xmit_early_table[sc->sc_xe_ent].txcmd);
   1970        1.1      yamt 				CS_WRITE_PACKET_PAGE(sc, PKTPG_TX_LENGTH, Length);
   1971        1.1      yamt 			}
   1972        1.1      yamt 			else {
   1973        1.1      yamt 				CS_WRITE_PORT(sc, PORT_TX_CMD,
   1974        1.1      yamt 					cs_xmit_early_table[sc->sc_xe_ent].txcmd);
   1975        1.1      yamt 				CS_WRITE_PORT(sc, PORT_TX_LENGTH, Length);
   1976        1.1      yamt 			}
   1977        1.1      yamt 
   1978        1.1      yamt 			/*
   1979        1.1      yamt 			 * Adjust early-transmit machinery.
   1980        1.1      yamt 			 */
   1981        1.1      yamt 			if (--sc->sc_xe_togo == 0) {
   1982        1.1      yamt 				sc->sc_xe_ent =
   1983        1.1      yamt 				    cs_xmit_early_table[sc->sc_xe_ent].better;
   1984        1.1      yamt 				sc->sc_xe_togo =
   1985        1.1      yamt 			    cs_xmit_early_table[sc->sc_xe_ent].better_count;
   1986        1.1      yamt 			}
   1987        1.1      yamt 			/*
   1988        1.1      yamt 			 * Read the BusStatus register which indicates
   1989        1.1      yamt 			 * success of the request
   1990        1.1      yamt 			 */
   1991        1.1      yamt 			BusStatus = CS_READ_PACKET_PAGE(sc, PKTPG_BUS_ST);
   1992        1.1      yamt 
   1993        1.1      yamt 			/*
   1994        1.1      yamt 			 * If there was an error in the transmit bid free the
   1995        1.1      yamt 			 * mbuf and go on. This is presuming that mbuf is
   1996        1.1      yamt 			 * corrupt.
   1997        1.1      yamt 			 */
   1998        1.1      yamt 			if (BusStatus & BUS_ST_TX_BID_ERR) {
   1999        1.1      yamt 				printf("%s: transmit bid error (too big)",
   2000        1.1      yamt 				    sc->sc_dev.dv_xname);
   2001        1.1      yamt 
   2002        1.1      yamt 				/* Discard the bad mbuf chain */
   2003        1.1      yamt 				m_freem(pMbufChain);
   2004        1.1      yamt 				sc->sc_ethercom.ec_if.if_oerrors++;
   2005        1.1      yamt 
   2006        1.1      yamt 				/* Loop up to transmit the next chain */
   2007        1.1      yamt 				txLoop = 0;
   2008        1.1      yamt 			} else {
   2009        1.1      yamt 				if (BusStatus & BUS_ST_RDY4TXNOW) {
   2010        1.1      yamt 					/*
   2011        1.1      yamt 					 * The chip is ready for transmission
   2012        1.1      yamt 					 * now
   2013        1.1      yamt 					 */
   2014        1.1      yamt 					/*
   2015        1.1      yamt 					 * Copy the frame to the chip to
   2016        1.1      yamt 					 * start transmission
   2017        1.1      yamt 					 */
   2018        1.1      yamt 					cs_copy_tx_frame(sc, pMbufChain);
   2019        1.1      yamt 
   2020        1.1      yamt 					/* Free the mbuf chain */
   2021        1.1      yamt 					m_freem(pMbufChain);
   2022        1.1      yamt 
   2023        1.1      yamt 					/* Transmission is now in progress */
   2024        1.1      yamt 					sc->sc_txbusy = TRUE;
   2025        1.1      yamt 					txLoop = 0;
   2026        1.1      yamt 				} else {
   2027        1.1      yamt 					/*
   2028        1.1      yamt 					 * if we get here we want to try
   2029        1.1      yamt 					 * again with the same mbuf, until
   2030        1.1      yamt 					 * the chip lets us transmit.
   2031        1.1      yamt 					 */
   2032        1.1      yamt 					txLoop++;
   2033        1.1      yamt 					if (txLoop > CS_OUTPUT_LOOP_MAX) {
   2034        1.1      yamt 						/* Free the mbuf chain */
   2035        1.1      yamt 						m_freem(pMbufChain);
   2036        1.1      yamt 						/*
   2037        1.1      yamt 						 * Transmission is not in
   2038        1.1      yamt 						 * progress
   2039        1.1      yamt 						 */
   2040        1.1      yamt 						sc->sc_txbusy = FALSE;
   2041        1.1      yamt 						/*
   2042        1.1      yamt 						 * Increment the output error
   2043        1.1      yamt 						 * count
   2044        1.1      yamt 						 */
   2045        1.1      yamt 						ifp->if_oerrors++;
   2046        1.1      yamt 						/*
   2047        1.1      yamt 						 * exit the routine and drop
   2048        1.1      yamt 						 * the packet.
   2049        1.1      yamt 						 */
   2050        1.1      yamt 						txLoop = 0;
   2051        1.1      yamt 						dropout = 1;
   2052        1.1      yamt 					}
   2053        1.1      yamt 				}
   2054        1.1      yamt 			}
   2055        1.1      yamt 		} while (txLoop);
   2056        1.1      yamt 	}
   2057        1.1      yamt }
   2058        1.1      yamt 
   2059       1.16     perry void
   2060        1.5  augustss cs_copy_tx_frame(struct cs_softc *sc, struct mbuf *m0)
   2061        1.1      yamt {
   2062        1.1      yamt 	struct mbuf *m;
   2063        1.1      yamt 	int len, leftover, frameoff;
   2064        1.1      yamt 	u_int16_t dbuf;
   2065        1.1      yamt 	u_int8_t *p;
   2066        1.1      yamt #ifdef DIAGNOSTIC
   2067        1.1      yamt 	u_int8_t *lim;
   2068        1.1      yamt #endif
   2069        1.1      yamt 
   2070        1.1      yamt 	/* Initialize frame pointer and data port address */
   2071        1.1      yamt 	frameoff = PKTPG_TX_FRAME;
   2072        1.1      yamt 
   2073        1.1      yamt 	/* start out with no leftover data */
   2074        1.1      yamt 	leftover = 0;
   2075        1.1      yamt 	dbuf = 0;
   2076        1.1      yamt 
   2077        1.1      yamt 	/* Process the chain of mbufs */
   2078        1.1      yamt 	for (m = m0; m != NULL; m = m->m_next) {
   2079        1.1      yamt 		/*
   2080        1.1      yamt 		 * Process all of the data in a single mbuf.
   2081        1.1      yamt 		 */
   2082        1.1      yamt 		p = mtod(m, u_int8_t *);
   2083        1.1      yamt 		len = m->m_len;
   2084        1.1      yamt #ifdef DIAGNOSTIC
   2085        1.1      yamt 		lim = p + len;
   2086        1.1      yamt #endif
   2087        1.1      yamt 
   2088        1.1      yamt 		while (len > 0) {
   2089        1.1      yamt 			if (leftover) {
   2090        1.1      yamt 				/*
   2091        1.1      yamt 				 * Data left over (from mbuf or realignment).
   2092        1.1      yamt 				 * Buffer the next byte, and write it and
   2093        1.1      yamt 				 * the leftover data out.
   2094        1.1      yamt 				 */
   2095        1.1      yamt 				dbuf |= *p++ << 8;
   2096        1.1      yamt 				len--;
   2097        1.1      yamt 				if (sc->sc_memorymode) {
   2098        1.1      yamt 					CS_WRITE_PACKET_PAGE(sc, frameoff, dbuf);
   2099        1.1      yamt 					frameoff += 2;
   2100        1.1      yamt 				}
   2101        1.1      yamt 				else {
   2102        1.1      yamt 					CS_WRITE_PORT(sc, PORT_RXTX_DATA, dbuf);
   2103        1.1      yamt 				}
   2104        1.1      yamt 				leftover = 0;
   2105        1.1      yamt 			} else if ((long) p & 1) {
   2106        1.1      yamt 				/*
   2107        1.1      yamt 				 * Misaligned data.  Buffer the next byte.
   2108        1.1      yamt 				 */
   2109        1.1      yamt 				dbuf = *p++;
   2110        1.1      yamt 				len--;
   2111        1.1      yamt 				leftover = 1;
   2112        1.1      yamt 			} else {
   2113        1.1      yamt 				/*
   2114        1.1      yamt 				 * Aligned data.  This is the case we like.
   2115        1.1      yamt 				 *
   2116        1.1      yamt 				 * Write-region out as much as we can, then
   2117        1.1      yamt 				 * buffer the remaining byte (if any).
   2118        1.1      yamt 				 */
   2119        1.1      yamt 				leftover = len & 1;
   2120        1.1      yamt 				len &= ~1;
   2121        1.1      yamt 				if (sc->sc_memorymode) {
   2122        1.6  augustss 					MEM_WRITE_REGION_2(sc, frameoff,
   2123        1.1      yamt 						(u_int16_t *) p, len >> 1);
   2124        1.1      yamt 					frameoff += len;
   2125        1.1      yamt 				}
   2126        1.1      yamt 				else {
   2127        1.6  augustss 					IO_WRITE_MULTI_2(sc,
   2128        1.1      yamt 						PORT_RXTX_DATA, (u_int16_t *)p, len >> 1);
   2129        1.1      yamt 				}
   2130        1.1      yamt 				p += len;
   2131        1.1      yamt 
   2132        1.1      yamt 				if (leftover)
   2133        1.1      yamt 					dbuf = *p++;
   2134        1.1      yamt 				len = 0;
   2135        1.1      yamt 			}
   2136        1.1      yamt 		}
   2137        1.1      yamt 		if (len < 0)
   2138        1.1      yamt 			panic("cs_copy_tx_frame: negative len");
   2139        1.1      yamt #ifdef DIAGNOSTIC
   2140        1.1      yamt 		if (p != lim)
   2141        1.1      yamt 			panic("cs_copy_tx_frame: p != lim");
   2142        1.1      yamt #endif
   2143        1.1      yamt 	}
   2144        1.1      yamt 	if (leftover) {
   2145        1.1      yamt 		if (sc->sc_memorymode) {
   2146        1.1      yamt 			CS_WRITE_PACKET_PAGE(sc, frameoff, dbuf);
   2147        1.1      yamt 		}
   2148        1.1      yamt 		else {
   2149        1.1      yamt 			CS_WRITE_PORT(sc, PORT_RXTX_DATA, dbuf);
   2150        1.1      yamt 		}
   2151        1.1      yamt 	}
   2152        1.1      yamt }
   2153        1.1      yamt 
   2154        1.1      yamt static int
   2155        1.5  augustss cs_enable(struct cs_softc *sc)
   2156        1.1      yamt {
   2157        1.1      yamt 
   2158        1.4   thorpej 	if (CS_IS_ENABLED(sc) == 0) {
   2159        1.4   thorpej 		if (sc->sc_enable != NULL) {
   2160        1.4   thorpej 			int error;
   2161        1.4   thorpej 
   2162        1.4   thorpej 			error = (*sc->sc_enable)(sc);
   2163        1.4   thorpej 			if (error)
   2164        1.4   thorpej 				return (error);
   2165        1.4   thorpej 		}
   2166        1.1      yamt 		sc->sc_cfgflags |= CFGFLG_ENABLED;
   2167        1.1      yamt 	}
   2168        1.1      yamt 
   2169        1.4   thorpej 	return (0);
   2170        1.1      yamt }
   2171        1.1      yamt 
   2172        1.1      yamt static void
   2173        1.5  augustss cs_disable(struct cs_softc *sc)
   2174        1.1      yamt {
   2175        1.4   thorpej 
   2176        1.4   thorpej 	if (CS_IS_ENABLED(sc)) {
   2177        1.4   thorpej 		if (sc->sc_disable != NULL)
   2178        1.4   thorpej 			(*sc->sc_disable)(sc);
   2179        1.1      yamt 
   2180        1.1      yamt 		sc->sc_cfgflags &= ~CFGFLG_ENABLED;
   2181        1.1      yamt 	}
   2182        1.1      yamt }
   2183        1.1      yamt 
   2184        1.1      yamt static void
   2185        1.5  augustss cs_stop(struct ifnet *ifp, int disable)
   2186        1.1      yamt {
   2187        1.1      yamt 	struct cs_softc *sc = ifp->if_softc;
   2188        1.1      yamt 
   2189        1.1      yamt 	CS_WRITE_PACKET_PAGE(sc, PKTPG_RX_CFG, 0);
   2190        1.1      yamt 	CS_WRITE_PACKET_PAGE(sc, PKTPG_TX_CFG, 0);
   2191        1.1      yamt 	CS_WRITE_PACKET_PAGE(sc, PKTPG_BUF_CFG, 0);
   2192        1.1      yamt 	CS_WRITE_PACKET_PAGE(sc, PKTPG_BUS_CTL, 0);
   2193        1.1      yamt 
   2194        1.1      yamt 	if (disable) {
   2195        1.1      yamt 		cs_disable(sc);
   2196        1.1      yamt 	}
   2197        1.1      yamt 
   2198        1.1      yamt 	ifp->if_flags &= ~(IFF_RUNNING | IFF_OACTIVE);
   2199        1.1      yamt }
   2200        1.1      yamt 
   2201        1.1      yamt int
   2202        1.5  augustss cs_activate(struct device *self, enum devact act)
   2203        1.1      yamt {
   2204        1.1      yamt 	struct cs_softc *sc = (void *)self;
   2205        1.1      yamt 	int s, error = 0;
   2206        1.1      yamt 
   2207        1.1      yamt 	s = splnet();
   2208        1.1      yamt 	switch (act) {
   2209        1.1      yamt 	case DVACT_ACTIVATE:
   2210        1.1      yamt 		error = EOPNOTSUPP;
   2211        1.1      yamt 		break;
   2212        1.1      yamt 
   2213        1.1      yamt 	case DVACT_DEACTIVATE:
   2214        1.1      yamt 		if_deactivate(&sc->sc_ethercom.ec_if);
   2215        1.1      yamt 		break;
   2216        1.1      yamt 	}
   2217        1.1      yamt 	splx(s);
   2218        1.1      yamt 
   2219        1.1      yamt 	return error;
   2220        1.1      yamt }
   2221        1.1      yamt 
   2222        1.1      yamt static void
   2223        1.5  augustss cs_power(int why, void *arg)
   2224        1.1      yamt {
   2225        1.1      yamt 	struct cs_softc *sc = arg;
   2226        1.1      yamt 	struct ifnet *ifp = &sc->sc_ethercom.ec_if;
   2227        1.1      yamt 	int s;
   2228        1.1      yamt 
   2229        1.1      yamt 	s = splnet();
   2230        1.1      yamt 	switch (why) {
   2231        1.1      yamt 	case PWR_STANDBY:
   2232        1.1      yamt 	case PWR_SUSPEND:
   2233        1.1      yamt 		cs_stop(ifp, 0);
   2234        1.1      yamt 		break;
   2235        1.1      yamt 	case PWR_RESUME:
   2236        1.1      yamt 		if (ifp->if_flags & IFF_UP) {
   2237        1.1      yamt 			cs_init(ifp);
   2238        1.1      yamt 		}
   2239        1.1      yamt 		break;
   2240        1.1      yamt 	case PWR_SOFTSUSPEND:
   2241        1.1      yamt 	case PWR_SOFTSTANDBY:
   2242        1.1      yamt 	case PWR_SOFTRESUME:
   2243        1.1      yamt 		break;
   2244        1.1      yamt 	}
   2245        1.1      yamt 	splx(s);
   2246        1.1      yamt }
   2247