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xy.c revision 1.22
      1  1.22       gwr /*	$NetBSD: xy.c,v 1.22 1998/07/23 23:48:33 gwr Exp $	*/
      2   1.1       gwr 
      3   1.1       gwr /*
      4   1.1       gwr  *
      5   1.1       gwr  * Copyright (c) 1995 Charles D. Cranor
      6   1.1       gwr  * All rights reserved.
      7   1.1       gwr  *
      8   1.1       gwr  * Redistribution and use in source and binary forms, with or without
      9   1.1       gwr  * modification, are permitted provided that the following conditions
     10   1.1       gwr  * are met:
     11   1.1       gwr  * 1. Redistributions of source code must retain the above copyright
     12   1.1       gwr  *    notice, this list of conditions and the following disclaimer.
     13   1.1       gwr  * 2. Redistributions in binary form must reproduce the above copyright
     14   1.1       gwr  *    notice, this list of conditions and the following disclaimer in the
     15   1.1       gwr  *    documentation and/or other materials provided with the distribution.
     16   1.1       gwr  * 3. All advertising materials mentioning features or use of this software
     17   1.1       gwr  *    must display the following acknowledgement:
     18   1.1       gwr  *      This product includes software developed by Charles D. Cranor.
     19   1.1       gwr  * 4. The name of the author may not be used to endorse or promote products
     20   1.1       gwr  *    derived from this software without specific prior written permission.
     21   1.1       gwr  *
     22   1.1       gwr  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
     23   1.1       gwr  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
     24   1.1       gwr  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
     25   1.1       gwr  * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
     26   1.1       gwr  * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
     27   1.1       gwr  * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
     28   1.1       gwr  * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
     29   1.1       gwr  * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
     30   1.1       gwr  * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
     31   1.1       gwr  * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
     32   1.1       gwr  */
     33   1.1       gwr 
     34   1.1       gwr /*
     35   1.1       gwr  *
     36   1.1       gwr  * x y . c   x y l o g i c s   4 5 0 / 4 5 1   s m d   d r i v e r
     37   1.1       gwr  *
     38   1.1       gwr  * author: Chuck Cranor <chuck (at) ccrc.wustl.edu>
     39  1.19       gwr  * id: &Id: xy.c,v 1.1 1995/09/25 20:35:14 chuck Exp &
     40   1.1       gwr  * started: 14-Sep-95
     41   1.1       gwr  * references: [1] Xylogics Model 753 User's Manual
     42   1.1       gwr  *                 part number: 166-753-001, Revision B, May 21, 1988.
     43   1.1       gwr  *                 "Your Partner For Performance"
     44   1.1       gwr  *             [2] other NetBSD disk device drivers
     45   1.1       gwr  *	       [3] Xylogics Model 450 User's Manual
     46   1.1       gwr  *		   part number: 166-017-001, Revision B, 1983.
     47  1.17       gwr  *	       [4] Addendum to Xylogics Model 450 Disk Controller User's
     48   1.1       gwr  *			Manual, Jan. 1985.
     49   1.1       gwr  *	       [5] The 451 Controller, Rev. B3, September 2, 1986.
     50   1.1       gwr  *	       [6] David Jones <dej (at) achilles.net>'s unfinished 450/451 driver
     51   1.1       gwr  *
     52   1.1       gwr  */
     53   1.1       gwr 
     54   1.1       gwr #undef XYC_DEBUG		/* full debug */
     55   1.1       gwr #undef XYC_DIAG			/* extra sanity checks */
     56   1.1       gwr #if defined(DIAGNOSTIC) && !defined(XYC_DIAG)
     57   1.1       gwr #define XYC_DIAG		/* link in with master DIAG option */
     58   1.1       gwr #endif
     59   1.1       gwr 
     60   1.1       gwr #include <sys/param.h>
     61   1.1       gwr #include <sys/proc.h>
     62   1.1       gwr #include <sys/systm.h>
     63   1.1       gwr #include <sys/kernel.h>
     64   1.1       gwr #include <sys/file.h>
     65   1.1       gwr #include <sys/stat.h>
     66   1.1       gwr #include <sys/ioctl.h>
     67   1.1       gwr #include <sys/buf.h>
     68   1.1       gwr #include <sys/uio.h>
     69   1.1       gwr #include <sys/malloc.h>
     70   1.1       gwr #include <sys/device.h>
     71   1.1       gwr #include <sys/disklabel.h>
     72   1.1       gwr #include <sys/disk.h>
     73   1.1       gwr #include <sys/syslog.h>
     74   1.1       gwr #include <sys/dkbad.h>
     75  1.13       gwr #include <sys/conf.h>
     76  1.13       gwr 
     77   1.1       gwr #include <vm/vm.h>
     78   1.1       gwr #include <vm/vm_kern.h>
     79   1.1       gwr 
     80  1.21       mrg #include <dev/sun/disklabel.h>
     81  1.21       mrg 
     82   1.1       gwr #include <machine/autoconf.h>
     83   1.1       gwr #include <machine/dvma.h>
     84   1.1       gwr 
     85   1.1       gwr #include <sun3/dev/xyreg.h>
     86   1.1       gwr #include <sun3/dev/xyvar.h>
     87   1.1       gwr #include <sun3/dev/xio.h>
     88   1.1       gwr 
     89  1.17       gwr #include "locators.h"
     90  1.22       gwr 
     91  1.22       gwr /*
     92  1.22       gwr  * Print a complaint when no xy children were specified
     93  1.22       gwr  * in the config file.  Better than a link error...
     94  1.22       gwr  *
     95  1.22       gwr  * XXX: Some folks say this driver should be split in two,
     96  1.22       gwr  * but that seems pointless with ONLY one type of child.
     97  1.22       gwr  */
     98  1.22       gwr #include "xy.h"
     99  1.22       gwr #if NXY == 0
    100  1.22       gwr #error "xyc but no xy?"
    101  1.22       gwr #endif
    102  1.17       gwr 
    103   1.1       gwr /*
    104   1.1       gwr  * macros
    105   1.1       gwr  */
    106   1.1       gwr 
    107   1.1       gwr /*
    108   1.1       gwr  * XYC_GO: start iopb ADDR (DVMA addr in a u_long) on XYC
    109   1.1       gwr  */
    110   1.1       gwr #define XYC_GO(XYC, ADDR) { \
    111   1.1       gwr 	(XYC)->xyc_addr_lo = ((ADDR) & 0xff); \
    112   1.1       gwr 	(ADDR) = ((ADDR) >> 8); \
    113   1.1       gwr 	(XYC)->xyc_addr_hi = ((ADDR) & 0xff); \
    114   1.1       gwr 	(ADDR) = ((ADDR) >> 8); \
    115   1.1       gwr 	(XYC)->xyc_reloc_lo = ((ADDR) & 0xff); \
    116   1.1       gwr 	(ADDR) = ((ADDR) >> 8); \
    117   1.1       gwr 	(XYC)->xyc_reloc_hi = (ADDR); \
    118   1.7     chuck 	(XYC)->xyc_csr = XYC_GBSY; /* go! */ \
    119   1.1       gwr }
    120   1.1       gwr 
    121   1.1       gwr /*
    122   1.1       gwr  * XYC_DONE: don't need IORQ, get error code and free (done after xyc_cmd)
    123   1.1       gwr  */
    124   1.1       gwr 
    125   1.1       gwr #define XYC_DONE(SC,ER) { \
    126   1.1       gwr 	if ((ER) == XY_ERR_AOK) { \
    127   1.1       gwr 		(ER) = (SC)->ciorq->errno; \
    128   1.1       gwr 		(SC)->ciorq->mode = XY_SUB_FREE; \
    129   1.1       gwr 		wakeup((SC)->ciorq); \
    130   1.1       gwr 	} \
    131   1.1       gwr 	}
    132   1.1       gwr 
    133   1.1       gwr /*
    134   1.1       gwr  * XYC_ADVANCE: advance iorq's pointers by a number of sectors
    135   1.1       gwr  */
    136   1.1       gwr 
    137   1.1       gwr #define XYC_ADVANCE(IORQ, N) { \
    138   1.1       gwr 	if (N) { \
    139   1.1       gwr 		(IORQ)->sectcnt -= (N); \
    140   1.1       gwr 		(IORQ)->blockno += (N); \
    141   1.1       gwr 		(IORQ)->dbuf += ((N)*XYFM_BPS); \
    142   1.1       gwr 	} \
    143   1.1       gwr }
    144   1.1       gwr 
    145   1.1       gwr /*
    146   1.1       gwr  * note - addresses you can sleep on:
    147   1.1       gwr  *   [1] & of xy_softc's "state" (waiting for a chance to attach a drive)
    148   1.1       gwr  *   [2] & an iorq (waiting for an XY_SUB_WAIT iorq to finish)
    149   1.1       gwr  */
    150   1.1       gwr 
    151   1.1       gwr 
    152   1.1       gwr /*
    153   1.1       gwr  * function prototypes
    154   1.1       gwr  * "xyc_*" functions are internal, all others are external interfaces
    155   1.1       gwr  */
    156   1.1       gwr 
    157   1.1       gwr /* internals */
    158   1.1       gwr struct xy_iopb *xyc_chain __P((struct xyc_softc *, struct xy_iorq *));
    159   1.1       gwr int	xyc_cmd __P((struct xyc_softc *, int, int, int, int, int, char *, int));
    160   1.1       gwr char   *xyc_e2str __P((int));
    161   1.1       gwr int	xyc_entoact __P((int));
    162   1.1       gwr int	xyc_error __P((struct xyc_softc *, struct xy_iorq *,
    163   1.1       gwr 		   struct xy_iopb *, int));
    164   1.1       gwr int	xyc_ioctlcmd __P((struct xy_softc *, dev_t dev, struct xd_iocmd *));
    165   1.1       gwr void	xyc_perror __P((struct xy_iorq *, struct xy_iopb *, int));
    166   1.1       gwr int	xyc_piodriver __P((struct xyc_softc *, struct xy_iorq *));
    167   1.1       gwr int	xyc_remove_iorq __P((struct xyc_softc *));
    168  1.17       gwr int	xyc_reset __P((struct xyc_softc *, int, struct xy_iorq *, int,
    169   1.1       gwr 			struct xy_softc *));
    170   1.1       gwr inline void xyc_rqinit __P((struct xy_iorq *, struct xyc_softc *,
    171   1.1       gwr 			    struct xy_softc *, int, u_long, int,
    172   1.1       gwr 			    caddr_t, struct buf *));
    173   1.1       gwr void	xyc_rqtopb __P((struct xy_iorq *, struct xy_iopb *, int, int));
    174  1.17       gwr void	xyc_start __P((struct xyc_softc *, struct xy_iorq *));
    175   1.1       gwr int	xyc_startbuf __P((struct xyc_softc *, struct xy_softc *, struct buf *));
    176   1.1       gwr int	xyc_submit_iorq __P((struct xyc_softc *, struct xy_iorq *, int));
    177   1.1       gwr void	xyc_tick __P((void *));
    178   1.1       gwr int	xyc_unbusy __P((struct xyc *, int));
    179  1.17       gwr void	xyc_xyreset __P((struct xyc_softc *, struct xy_softc *));
    180   1.1       gwr 
    181   1.1       gwr /* machine interrupt hook */
    182   1.1       gwr int	xycintr __P((void *));
    183   1.1       gwr 
    184  1.13       gwr /* bdevsw, cdevsw */
    185  1.13       gwr bdev_decl(xy);
    186  1.13       gwr cdev_decl(xy);
    187   1.1       gwr 
    188   1.1       gwr /* autoconf */
    189  1.17       gwr static int	xycmatch __P((struct device *, struct cfdata *, void *));
    190  1.17       gwr static void	xycattach __P((struct device *, struct device *, void *));
    191  1.17       gwr static int  xyc_print __P((void *, const char *name));
    192  1.17       gwr 
    193  1.17       gwr static int	xymatch __P((struct device *, struct cfdata *, void *));
    194  1.17       gwr static void	xyattach __P((struct device *, struct device *, void *));
    195  1.17       gwr static void xy_init __P((struct xy_softc *));
    196   1.1       gwr 
    197   1.1       gwr static	void xydummystrat __P((struct buf *));
    198   1.1       gwr int	xygetdisklabel __P((struct xy_softc *, void *));
    199   1.1       gwr 
    200   1.1       gwr /*
    201  1.18   thorpej  * cfattach's: device driver interface to autoconfig
    202   1.1       gwr  */
    203   1.1       gwr 
    204   1.9   thorpej struct cfattach xyc_ca = {
    205   1.9   thorpej 	sizeof(struct xyc_softc), xycmatch, xycattach
    206   1.1       gwr };
    207   1.1       gwr 
    208   1.9   thorpej struct cfattach xy_ca = {
    209   1.9   thorpej 	sizeof(struct xy_softc), xymatch, xyattach
    210   1.9   thorpej };
    211   1.9   thorpej 
    212  1.18   thorpej extern struct cfdriver xy_cd;
    213   1.1       gwr 
    214   1.1       gwr struct xyc_attach_args {	/* this is the "aux" args to xyattach */
    215   1.1       gwr 	int	driveno;	/* unit number */
    216   1.1       gwr };
    217   1.1       gwr 
    218   1.1       gwr /*
    219   1.1       gwr  * dkdriver
    220   1.1       gwr  */
    221   1.1       gwr 
    222   1.1       gwr struct dkdriver xydkdriver = { xystrategy };
    223   1.1       gwr 
    224   1.1       gwr /*
    225   1.1       gwr  * start: disk label fix code (XXX)
    226   1.1       gwr  */
    227   1.1       gwr 
    228   1.1       gwr static void *xy_labeldata;
    229   1.1       gwr 
    230   1.1       gwr static void
    231   1.1       gwr xydummystrat(bp)
    232   1.1       gwr 	struct buf *bp;
    233   1.1       gwr {
    234   1.1       gwr 	if (bp->b_bcount != XYFM_BPS)
    235   1.1       gwr 		panic("xydummystrat");
    236   1.1       gwr 	bcopy(xy_labeldata, bp->b_un.b_addr, XYFM_BPS);
    237   1.1       gwr 	bp->b_flags |= B_DONE;
    238   1.1       gwr 	bp->b_flags &= ~B_BUSY;
    239   1.1       gwr }
    240   1.1       gwr 
    241   1.1       gwr int
    242   1.1       gwr xygetdisklabel(xy, b)
    243   1.1       gwr 	struct xy_softc *xy;
    244   1.1       gwr 	void *b;
    245   1.1       gwr {
    246   1.1       gwr 	char *err;
    247   1.1       gwr 	struct sun_disklabel *sdl;
    248   1.1       gwr 
    249   1.1       gwr 	/* We already have the label data in `b'; setup for dummy strategy */
    250   1.1       gwr 	xy_labeldata = b;
    251   1.1       gwr 
    252   1.1       gwr 	/* Required parameter for readdisklabel() */
    253   1.2   thorpej 	xy->sc_dk.dk_label->d_secsize = XYFM_BPS;
    254   1.1       gwr 
    255   1.1       gwr 	err = readdisklabel(MAKEDISKDEV(0, xy->sc_dev.dv_unit, RAW_PART),
    256   1.1       gwr 					xydummystrat,
    257   1.2   thorpej 				xy->sc_dk.dk_label, xy->sc_dk.dk_cpulabel);
    258   1.1       gwr 	if (err) {
    259  1.11  christos 		printf("%s: %s\n", xy->sc_dev.dv_xname, err);
    260   1.1       gwr 		return(XY_ERR_FAIL);
    261   1.1       gwr 	}
    262   1.1       gwr 
    263   1.1       gwr 	/* Ok, we have the label; fill in `pcyl' if there's SunOS magic */
    264   1.2   thorpej 	sdl = (struct sun_disklabel *)xy->sc_dk.dk_cpulabel->cd_block;
    265   1.1       gwr 	if (sdl->sl_magic == SUN_DKMAGIC)
    266   1.1       gwr 		xy->pcyl = sdl->sl_pcyl;
    267   1.1       gwr 	else {
    268  1.17       gwr 		printf("%s: WARNING: no `pcyl' in disk label.\n",
    269  1.17       gwr 			   xy->sc_dev.dv_xname);
    270   1.2   thorpej 		xy->pcyl = xy->sc_dk.dk_label->d_ncylinders +
    271   1.2   thorpej 			xy->sc_dk.dk_label->d_acylinders;
    272  1.17       gwr 		printf("%s: WARNING: guessing pcyl=%d (ncyl+acyl)\n",
    273   1.1       gwr 		xy->sc_dev.dv_xname, xy->pcyl);
    274   1.1       gwr 	}
    275   1.1       gwr 
    276   1.2   thorpej 	xy->ncyl = xy->sc_dk.dk_label->d_ncylinders;
    277   1.2   thorpej 	xy->acyl = xy->sc_dk.dk_label->d_acylinders;
    278   1.2   thorpej 	xy->nhead = xy->sc_dk.dk_label->d_ntracks;
    279   1.2   thorpej 	xy->nsect = xy->sc_dk.dk_label->d_nsectors;
    280   1.1       gwr 	xy->sectpercyl = xy->nhead * xy->nsect;
    281   1.2   thorpej 	xy->sc_dk.dk_label->d_secsize = XYFM_BPS; /* not handled by
    282   1.1       gwr                                           	  * sun->bsd */
    283   1.1       gwr 	return(XY_ERR_AOK);
    284   1.1       gwr }
    285   1.1       gwr 
    286   1.1       gwr /*
    287   1.1       gwr  * end: disk label fix code (XXX)
    288   1.1       gwr  */
    289   1.1       gwr 
    290   1.1       gwr /*
    291   1.1       gwr  * a u t o c o n f i g   f u n c t i o n s
    292   1.1       gwr  */
    293   1.1       gwr 
    294   1.1       gwr /*
    295   1.1       gwr  * xycmatch: determine if xyc is present or not.   we do a
    296   1.1       gwr  * soft reset to detect the xyc.
    297   1.1       gwr  */
    298  1.17       gwr static int
    299  1.17       gwr xycmatch(parent, cf, aux)
    300   1.1       gwr 	struct device *parent;
    301  1.12       gwr 	struct cfdata *cf;
    302  1.17       gwr 	void *aux;
    303   1.1       gwr {
    304   1.1       gwr 	struct confargs *ca = aux;
    305   1.1       gwr 
    306  1.17       gwr 	/* No default VME address. */
    307  1.17       gwr 	if (ca->ca_paddr == -1)
    308   1.1       gwr 		return (0);
    309   1.1       gwr 
    310  1.17       gwr 	/* Make sure something is there... */
    311  1.17       gwr 	if (bus_peek(ca->ca_bustype, ca->ca_paddr + 5, 1) == -1)
    312  1.17       gwr 		return (0);
    313  1.17       gwr 
    314  1.17       gwr 	/* Default interrupt priority. */
    315   1.1       gwr 	if (ca->ca_intpri == -1)
    316   1.1       gwr 		ca->ca_intpri = 2;
    317   1.1       gwr 
    318   1.1       gwr 	return (1);
    319   1.1       gwr }
    320   1.1       gwr 
    321   1.1       gwr /*
    322   1.1       gwr  * xycattach: attach controller
    323   1.1       gwr  */
    324  1.17       gwr static void
    325   1.1       gwr xycattach(parent, self, aux)
    326   1.1       gwr 	struct device *parent, *self;
    327   1.1       gwr 	void   *aux;
    328   1.1       gwr {
    329   1.1       gwr 	struct xyc_softc *xyc = (void *) self;
    330   1.1       gwr 	struct confargs *ca = aux;
    331   1.1       gwr 	struct xyc_attach_args xa;
    332  1.17       gwr 	int     lcv, err, res, pbsz;
    333   1.1       gwr 	void	*tmp, *tmp2;
    334   1.1       gwr 	u_long	ultmp;
    335   1.1       gwr 
    336   1.1       gwr 	/* get addressing and intr level stuff from autoconfig and load it
    337   1.1       gwr 	 * into our xyc_softc. */
    338   1.1       gwr 
    339   1.1       gwr 	xyc->xyc = (struct xyc *)
    340   1.1       gwr 		bus_mapin(ca->ca_bustype, ca->ca_paddr, sizeof(struct xyc));
    341  1.19       gwr 	xyc->bustype = ca->ca_bustype;
    342  1.19       gwr 	xyc->ipl     = ca->ca_intpri;
    343  1.19       gwr 	xyc->vector  = ca->ca_intvec;
    344   1.1       gwr 	xyc->no_ols = 0; /* XXX should be from config */
    345   1.1       gwr 
    346   1.1       gwr 	for (lcv = 0; lcv < XYC_MAXDEV; lcv++)
    347   1.1       gwr 		xyc->sc_drives[lcv] = (struct xy_softc *) 0;
    348   1.1       gwr 
    349  1.17       gwr 	/*
    350   1.1       gwr 	 * allocate and zero buffers
    351  1.17       gwr 	 * check boundaries of the KVA's ... all IOPBs must reside in
    352  1.17       gwr  	 * the same 64K region.
    353   1.1       gwr 	 */
    354   1.1       gwr 
    355   1.1       gwr 	pbsz = XYC_MAXIOPB * sizeof(struct xy_iopb);
    356   1.1       gwr 	tmp = tmp2 = (struct xy_iopb *) dvma_malloc(pbsz);	/* KVA */
    357   1.1       gwr 	ultmp = (u_long) tmp;
    358   1.1       gwr 	if ((ultmp & 0xffff0000) != ((ultmp + pbsz) & 0xffff0000)) {
    359   1.1       gwr 		tmp = (struct xy_iopb *) dvma_malloc(pbsz); /* retry! */
    360   1.1       gwr 		dvma_free(tmp2, pbsz);
    361   1.1       gwr 		ultmp = (u_long) tmp;
    362   1.1       gwr 		if ((ultmp & 0xffff0000) != ((ultmp + pbsz) & 0xffff0000)) {
    363  1.17       gwr 			printf("%s: can't alloc IOPB mem in 64K\n",
    364   1.1       gwr 				xyc->sc_dev.dv_xname);
    365   1.1       gwr 			return;
    366   1.1       gwr 		}
    367   1.1       gwr 	}
    368   1.4       gwr 	bzero(tmp, pbsz);
    369   1.1       gwr 	xyc->iopbase = tmp;
    370   1.1       gwr 	xyc->dvmaiopb = (struct xy_iopb *)
    371  1.19       gwr 		dvma_kvtopa(xyc->iopbase, xyc->bustype);
    372   1.1       gwr 	xyc->reqs = (struct xy_iorq *)
    373   1.1       gwr 	    malloc(XYC_MAXIOPB * sizeof(struct xy_iorq), M_DEVBUF, M_NOWAIT);
    374   1.1       gwr 	if (xyc->reqs == NULL)
    375   1.1       gwr 		panic("xyc malloc");
    376   1.7     chuck 	bzero(xyc->reqs, XYC_MAXIOPB * sizeof(struct xy_iorq));
    377   1.1       gwr 
    378  1.17       gwr 	/*
    379   1.1       gwr 	 * init iorq to iopb pointers, and non-zero fields in the
    380  1.17       gwr 	 * iopb which never change.
    381   1.1       gwr 	 */
    382   1.1       gwr 
    383   1.1       gwr 	for (lcv = 0; lcv < XYC_MAXIOPB; lcv++) {
    384   1.1       gwr 		xyc->xy_chain[lcv] = NULL;
    385   1.1       gwr 		xyc->reqs[lcv].iopb = &xyc->iopbase[lcv];
    386   1.1       gwr 		xyc->iopbase[lcv].asr = 1;	/* always the same */
    387   1.1       gwr 		xyc->iopbase[lcv].eef = 1;	/* always the same */
    388   1.1       gwr 		xyc->iopbase[lcv].ecm = XY_ECM;	/* always the same */
    389   1.1       gwr 		xyc->iopbase[lcv].aud = 1;	/* always the same */
    390   1.1       gwr 		xyc->iopbase[lcv].relo = 1;	/* always the same */
    391   1.1       gwr 		xyc->iopbase[lcv].thro = XY_THRO;/* always the same */
    392   1.1       gwr 	}
    393   1.1       gwr 	xyc->ciorq = &xyc->reqs[XYC_CTLIOPB];    /* short hand name */
    394   1.1       gwr 	xyc->ciopb = &xyc->iopbase[XYC_CTLIOPB]; /* short hand name */
    395   1.1       gwr 	xyc->xy_hand = 0;
    396   1.1       gwr 
    397   1.1       gwr 	/* read controller parameters and insure we have a 450/451 */
    398   1.1       gwr 
    399   1.1       gwr 	err = xyc_cmd(xyc, XYCMD_ST, 0, 0, 0, 0, 0, XY_SUB_POLL);
    400   1.1       gwr 	res = xyc->ciopb->ctyp;
    401   1.1       gwr 	XYC_DONE(xyc, err);
    402   1.1       gwr 	if (res != XYCT_450) {
    403   1.1       gwr 		if (err)
    404  1.11  christos 			printf(": %s: ", xyc_e2str(err));
    405  1.11  christos 		printf(": doesn't identify as a 450/451\n");
    406   1.1       gwr 		return;
    407   1.1       gwr 	}
    408  1.11  christos 	printf(": Xylogics 450/451");
    409   1.1       gwr 	if (xyc->no_ols)
    410  1.11  christos 		printf(" [OLS disabled]"); /* 450 doesn't overlap seek right */
    411  1.11  christos 	printf("\n");
    412   1.1       gwr 	if (err) {
    413  1.11  christos 		printf("%s: error: %s\n", xyc->sc_dev.dv_xname,
    414   1.1       gwr 				xyc_e2str(err));
    415   1.1       gwr 		return;
    416   1.1       gwr 	}
    417   1.1       gwr 	if ((xyc->xyc->xyc_csr & XYC_ADRM) == 0) {
    418  1.17       gwr 		printf("%s: 24 bit addressing turned off\n",
    419  1.17       gwr 			   xyc->sc_dev.dv_xname);
    420  1.11  christos 		printf("please set hardware jumpers JM1-JM2=in, JM3-JM4=out\n");
    421  1.11  christos 		printf("to enable 24 bit mode and this driver\n");
    422   1.1       gwr 		return;
    423   1.1       gwr 	}
    424   1.1       gwr 
    425   1.1       gwr 	/* link in interrupt with higher level software */
    426   1.1       gwr 	isr_add_vectored(xycintr, (void *)xyc,
    427   1.1       gwr 	                 ca->ca_intpri, ca->ca_intvec);
    428   1.1       gwr 	evcnt_attach(&xyc->sc_dev, "intr", &xyc->sc_intrcnt);
    429   1.1       gwr 
    430   1.1       gwr 	/* now we must look for disks using autoconfig */
    431   1.1       gwr 	for (xa.driveno = 0; xa.driveno < XYC_MAXDEV; xa.driveno++)
    432  1.13       gwr 		(void) config_found(self, (void *) &xa, xyc_print);
    433   1.1       gwr 
    434   1.1       gwr 	/* start the watchdog clock */
    435   1.1       gwr 	timeout(xyc_tick, xyc, XYC_TICKCNT);
    436  1.13       gwr }
    437  1.13       gwr 
    438  1.17       gwr static int
    439  1.13       gwr xyc_print(aux, name)
    440  1.13       gwr 	void *aux;
    441  1.17       gwr 	const char *name;
    442  1.13       gwr {
    443  1.13       gwr 	struct xyc_attach_args *xa = aux;
    444  1.13       gwr 
    445  1.13       gwr 	if (name != NULL)
    446  1.13       gwr 		printf("%s: ", name);
    447  1.13       gwr 
    448  1.13       gwr 	if (xa->driveno != -1)
    449  1.13       gwr 		printf(" drive %d", xa->driveno);
    450  1.13       gwr 
    451  1.13       gwr 	return UNCONF;
    452   1.1       gwr }
    453   1.1       gwr 
    454   1.1       gwr /*
    455   1.1       gwr  * xymatch: probe for disk.
    456   1.1       gwr  *
    457   1.1       gwr  * note: we almost always say disk is present.   this allows us to
    458   1.1       gwr  * spin up and configure a disk after the system is booted (we can
    459  1.17       gwr  * call xyattach!).  Also, wire down the relationship between the
    460  1.17       gwr  * xy* and xyc* devices, to simplify boot device identification.
    461   1.1       gwr  */
    462  1.17       gwr static int
    463  1.12       gwr xymatch(parent, cf, aux)
    464   1.1       gwr 	struct device *parent;
    465  1.12       gwr 	struct cfdata *cf;
    466  1.17       gwr 	void *aux;
    467   1.1       gwr {
    468   1.1       gwr 	struct xyc_attach_args *xa = aux;
    469  1.17       gwr 	int xy_unit;
    470   1.1       gwr 
    471  1.17       gwr 	/* Match only on the "wired-down" controller+disk. */
    472  1.17       gwr 	xy_unit = parent->dv_unit * 2 + xa->driveno;
    473  1.17       gwr 	if (cf->cf_unit != xy_unit)
    474  1.17       gwr 		return (0);
    475   1.1       gwr 
    476  1.17       gwr 	return (1);
    477   1.1       gwr }
    478   1.1       gwr 
    479   1.1       gwr /*
    480  1.17       gwr  * xyattach: attach a disk.
    481   1.1       gwr  */
    482  1.17       gwr static void
    483   1.1       gwr xyattach(parent, self, aux)
    484   1.1       gwr 	struct device *parent, *self;
    485   1.1       gwr 	void   *aux;
    486   1.1       gwr {
    487  1.17       gwr 	struct xy_softc *xy = (void *) self;
    488   1.1       gwr 	struct xyc_softc *xyc = (void *) parent;
    489   1.1       gwr 	struct xyc_attach_args *xa = aux;
    490  1.17       gwr 
    491  1.17       gwr 	printf("\n");
    492   1.1       gwr 
    493   1.2   thorpej 	/*
    494   1.2   thorpej 	 * Always re-initialize the disk structure.  We want statistics
    495   1.2   thorpej 	 * to start with a clean slate.
    496   1.2   thorpej 	 */
    497   1.2   thorpej 	bzero(&xy->sc_dk, sizeof(xy->sc_dk));
    498   1.2   thorpej 	xy->sc_dk.dk_driver = &xydkdriver;
    499   1.2   thorpej 	xy->sc_dk.dk_name = xy->sc_dev.dv_xname;
    500   1.2   thorpej 
    501  1.17       gwr 	xy->state = XY_DRIVE_UNKNOWN;	/* to start */
    502  1.17       gwr 	xy->flags = 0;
    503  1.17       gwr 	xy->parent = xyc;
    504  1.17       gwr 
    505  1.17       gwr 	/* init queue of waiting bufs */
    506  1.17       gwr 	xy->xyq.b_active = 0;
    507  1.17       gwr 	xy->xyq.b_actf = 0;
    508  1.17       gwr 	xy->xyq.b_actb = &xy->xyq.b_actf; /* XXX b_actb: not used? */
    509  1.17       gwr 	xy->xyrq = &xyc->reqs[xa->driveno];
    510   1.1       gwr 
    511   1.1       gwr 	xy->xy_drive = xa->driveno;
    512   1.1       gwr 	xyc->sc_drives[xa->driveno] = xy;
    513   1.1       gwr 
    514  1.17       gwr 	/* Do init work common to attach and open. */
    515  1.17       gwr 	xy_init(xy);
    516  1.17       gwr 	dk_establish(&xy->sc_dk, &xy->sc_dev);
    517  1.17       gwr }
    518  1.17       gwr 
    519  1.17       gwr /*
    520  1.17       gwr  * end of autoconfig functions
    521  1.17       gwr  */
    522   1.1       gwr 
    523  1.17       gwr /*
    524  1.17       gwr  * Initialize a disk.  This can be called from both autoconf and
    525  1.17       gwr  * also from xyopen/xystrategy.
    526  1.17       gwr  */
    527  1.17       gwr static void
    528  1.17       gwr xy_init(xy)
    529  1.17       gwr 	struct xy_softc *xy;
    530  1.17       gwr {
    531  1.17       gwr 	struct xyc_softc *xyc;
    532  1.17       gwr 	struct dkbad *dkb;
    533  1.17       gwr 	void *dvmabuf;
    534  1.17       gwr 	int err, spt, mb, blk, lcv, fullmode, newstate;
    535  1.17       gwr 	extern int cold;
    536   1.1       gwr 
    537  1.17       gwr 	xyc = xy->parent;
    538   1.1       gwr 	xy->state = XY_DRIVE_ATTACHING;
    539   1.1       gwr 	newstate = XY_DRIVE_UNKNOWN;
    540  1.17       gwr 	fullmode = (cold) ? XY_SUB_POLL : XY_SUB_WAIT;
    541  1.17       gwr 	dvmabuf  = dvma_malloc(XYFM_BPS);
    542   1.1       gwr 
    543   1.1       gwr 	/* first try and reset the drive */
    544   1.1       gwr 
    545  1.17       gwr 	err = xyc_cmd(xyc, XYCMD_RST, 0, xy->xy_drive, 0, 0, 0, fullmode);
    546   1.1       gwr 	XYC_DONE(xyc, err);
    547   1.1       gwr 	if (err == XY_ERR_DNRY) {
    548  1.17       gwr 		printf("%s: drive %d: off-line\n",
    549  1.17       gwr 			   xy->sc_dev.dv_xname, xy->xy_drive);
    550   1.1       gwr 		goto done;
    551   1.1       gwr 	}
    552   1.1       gwr 	if (err) {
    553  1.17       gwr 		printf("%s: ERROR 0x%02x (%s)\n",
    554  1.17       gwr 			   xy->sc_dev.dv_xname, err, xyc_e2str(err));
    555   1.1       gwr 		goto done;
    556   1.1       gwr 	}
    557  1.17       gwr 	printf("%s: drive %d ready",
    558  1.17       gwr 		   xy->sc_dev.dv_xname, xy->xy_drive);
    559   1.1       gwr 
    560   1.1       gwr 	/*
    561   1.1       gwr 	 * now set drive parameters (to semi-bogus values) so we can read the
    562   1.1       gwr 	 * disk label.
    563   1.1       gwr 	 */
    564   1.1       gwr 	xy->pcyl = xy->ncyl = 1;
    565   1.1       gwr 	xy->acyl = 0;
    566   1.1       gwr 	xy->nhead = 1;
    567   1.1       gwr 	xy->nsect = 1;
    568   1.1       gwr 	xy->sectpercyl = 1;
    569   1.1       gwr 	for (lcv = 0; lcv < 126; lcv++)	/* init empty bad144 table */
    570  1.17       gwr 		xy->dkb.bt_bad[lcv].bt_cyl =
    571   1.1       gwr 			xy->dkb.bt_bad[lcv].bt_trksec = 0xffff;
    572   1.1       gwr 
    573   1.1       gwr 	/* read disk label */
    574  1.17       gwr 	for (xy->drive_type = 0 ; xy->drive_type <= XYC_MAXDT ;
    575   1.1       gwr 						xy->drive_type++) {
    576  1.17       gwr 		err = xyc_cmd(xyc, XYCMD_RD, 0, xy->xy_drive, 0, 1,
    577  1.17       gwr 						dvmabuf, fullmode);
    578   1.1       gwr 		XYC_DONE(xyc, err);
    579   1.1       gwr 		if (err == XY_ERR_AOK) break;
    580   1.1       gwr 	}
    581   1.1       gwr 
    582   1.1       gwr 	if (err != XY_ERR_AOK) {
    583  1.17       gwr 		printf("%s: reading disk label failed: %s\n",
    584   1.1       gwr 			xy->sc_dev.dv_xname, xyc_e2str(err));
    585   1.1       gwr 		goto done;
    586   1.1       gwr 	}
    587  1.17       gwr 	printf("%s: drive type %d\n",
    588  1.17       gwr 		   xy->sc_dev.dv_xname, xy->drive_type);
    589   1.1       gwr 
    590   1.1       gwr 	newstate = XY_DRIVE_NOLABEL;
    591   1.1       gwr 
    592   1.1       gwr 	xy->hw_spt = spt = 0; /* XXX needed ? */
    593   1.3     chuck 	/* Attach the disk: must be before getdisklabel to malloc label */
    594   1.3     chuck 	disk_attach(&xy->sc_dk);
    595   1.3     chuck 
    596  1.17       gwr 	if (xygetdisklabel(xy, dvmabuf) != XY_ERR_AOK)
    597   1.1       gwr 		goto done;
    598   1.1       gwr 
    599   1.1       gwr 	/* inform the user of what is up */
    600  1.17       gwr 	printf("%s: <%s>, pcyl %d\n",
    601  1.17       gwr 		   xy->sc_dev.dv_xname,
    602  1.17       gwr 		   (char *)dvmabuf, xy->pcyl);
    603   1.1       gwr 	mb = xy->ncyl * (xy->nhead * xy->nsect) / (1048576 / XYFM_BPS);
    604  1.17       gwr 	printf("%s: %dMB, %d cyl, %d head, %d sec\n",
    605  1.17       gwr 		xy->sc_dev.dv_xname, mb,
    606  1.17       gwr 		xy->ncyl, xy->nhead, xy->nsect);
    607   1.1       gwr 
    608   1.1       gwr 	/*
    609   1.1       gwr 	 * 450/451 stupidity: the drive type is encoded into the format
    610   1.1       gwr 	 * of the disk.   the drive type in the IOPB must match the drive
    611   1.1       gwr 	 * type in the format, or you will not be able to do I/O to the
    612  1.17       gwr 	 * disk (you get header not found errors).  if you have two drives
    613  1.17       gwr 	 * of different sizes that have the same drive type in their
    614  1.17       gwr 	 * formatting then you are out of luck.
    615   1.1       gwr 	 *
    616   1.1       gwr 	 * this problem was corrected in the 753/7053.
    617   1.1       gwr 	 */
    618   1.1       gwr 
    619   1.1       gwr 	for (lcv = 0 ; lcv < XYC_MAXDEV ; lcv++) {
    620  1.17       gwr 		struct xy_softc *oxy;
    621  1.17       gwr 
    622   1.1       gwr 		oxy = xyc->sc_drives[lcv];
    623   1.1       gwr 		if (oxy == NULL || oxy == xy) continue;
    624   1.1       gwr 		if (oxy->drive_type != xy->drive_type) continue;
    625   1.1       gwr 		if (xy->nsect != oxy->nsect || xy->pcyl != oxy->pcyl ||
    626   1.1       gwr 			xy->nhead != oxy->nhead) {
    627  1.11  christos 			printf("%s: %s and %s must be the same size!\n",
    628  1.17       gwr 				xyc->sc_dev.dv_xname,
    629  1.17       gwr 				xy ->sc_dev.dv_xname,
    630   1.1       gwr 				oxy->sc_dev.dv_xname);
    631   1.1       gwr 			panic("xy drive size mismatch");
    632   1.1       gwr 		}
    633   1.1       gwr 	}
    634  1.17       gwr 
    635   1.1       gwr 
    636   1.1       gwr 	/* now set the real drive parameters! */
    637   1.1       gwr 	blk = (xy->nsect - 1) +
    638   1.1       gwr 		((xy->nhead - 1) * xy->nsect) +
    639   1.1       gwr 		((xy->pcyl - 1) * xy->nsect * xy->nhead);
    640  1.17       gwr 	err = xyc_cmd(xyc, XYCMD_SDS, 0, xy->xy_drive, blk, 0, 0, fullmode);
    641   1.1       gwr 	XYC_DONE(xyc, err);
    642   1.1       gwr 	if (err) {
    643  1.11  christos 		printf("%s: write drive size failed: %s\n",
    644   1.1       gwr 			xy->sc_dev.dv_xname, xyc_e2str(err));
    645   1.1       gwr 		goto done;
    646   1.1       gwr 	}
    647   1.1       gwr 	newstate = XY_DRIVE_ONLINE;
    648   1.1       gwr 
    649   1.1       gwr 	/*
    650   1.1       gwr 	 * read bad144 table. this table resides on the first sector of the
    651   1.1       gwr 	 * last track of the disk (i.e. second cyl of "acyl" area).
    652   1.1       gwr 	 */
    653  1.17       gwr 	blk = (xy->ncyl + xy->acyl - 1) * (xy->nhead * xy->nsect) +
    654   1.1       gwr 								/* last cyl */
    655   1.1       gwr 	    (xy->nhead - 1) * xy->nsect;	/* last head */
    656  1.17       gwr 	err = xyc_cmd(xyc, XYCMD_RD, 0, xy->xy_drive, blk, 1,
    657  1.17       gwr 						dvmabuf, fullmode);
    658   1.1       gwr 	XYC_DONE(xyc, err);
    659   1.1       gwr 	if (err) {
    660  1.11  christos 		printf("%s: reading bad144 failed: %s\n",
    661   1.1       gwr 			xy->sc_dev.dv_xname, xyc_e2str(err));
    662   1.1       gwr 		goto done;
    663   1.1       gwr 	}
    664   1.1       gwr 
    665   1.1       gwr 	/* check dkbad for sanity */
    666  1.17       gwr 	dkb = (struct dkbad *) dvmabuf;
    667   1.1       gwr 	for (lcv = 0; lcv < 126; lcv++) {
    668   1.1       gwr 		if ((dkb->bt_bad[lcv].bt_cyl == 0xffff ||
    669   1.1       gwr 				dkb->bt_bad[lcv].bt_cyl == 0) &&
    670   1.1       gwr 		     dkb->bt_bad[lcv].bt_trksec == 0xffff)
    671   1.1       gwr 			continue;	/* blank */
    672   1.1       gwr 		if (dkb->bt_bad[lcv].bt_cyl >= xy->ncyl)
    673   1.1       gwr 			break;
    674   1.1       gwr 		if ((dkb->bt_bad[lcv].bt_trksec >> 8) >= xy->nhead)
    675   1.1       gwr 			break;
    676   1.1       gwr 		if ((dkb->bt_bad[lcv].bt_trksec & 0xff) >= xy->nsect)
    677   1.1       gwr 			break;
    678   1.1       gwr 	}
    679   1.1       gwr 	if (lcv != 126) {
    680  1.11  christos 		printf("%s: warning: invalid bad144 sector!\n",
    681   1.1       gwr 			xy->sc_dev.dv_xname);
    682   1.1       gwr 	} else {
    683  1.17       gwr 		bcopy(dvmabuf, &xy->dkb, XYFM_BPS);
    684   1.1       gwr 	}
    685   1.1       gwr 
    686   1.1       gwr done:
    687   1.1       gwr 	xy->state = newstate;
    688  1.17       gwr 	dvma_free(dvmabuf, XYFM_BPS);
    689   1.1       gwr }
    690   1.1       gwr 
    691   1.1       gwr /*
    692   1.1       gwr  * { b , c } d e v s w   f u n c t i o n s
    693   1.1       gwr  */
    694   1.1       gwr 
    695   1.1       gwr /*
    696   1.1       gwr  * xyclose: close device
    697   1.1       gwr  */
    698  1.17       gwr int
    699  1.17       gwr xyclose(dev, flag, fmt, p)
    700   1.1       gwr 	dev_t   dev;
    701   1.1       gwr 	int     flag, fmt;
    702  1.17       gwr 	struct proc *p;
    703   1.1       gwr {
    704   1.9   thorpej 	struct xy_softc *xy = xy_cd.cd_devs[DISKUNIT(dev)];
    705   1.1       gwr 	int     part = DISKPART(dev);
    706   1.1       gwr 
    707   1.1       gwr 	/* clear mask bits */
    708   1.1       gwr 
    709   1.1       gwr 	switch (fmt) {
    710   1.1       gwr 	case S_IFCHR:
    711   1.1       gwr 		xy->sc_dk.dk_copenmask &= ~(1 << part);
    712   1.1       gwr 		break;
    713   1.1       gwr 	case S_IFBLK:
    714   1.1       gwr 		xy->sc_dk.dk_bopenmask &= ~(1 << part);
    715   1.1       gwr 		break;
    716   1.1       gwr 	}
    717   1.1       gwr 	xy->sc_dk.dk_openmask = xy->sc_dk.dk_copenmask | xy->sc_dk.dk_bopenmask;
    718   1.1       gwr 
    719   1.1       gwr 	return 0;
    720   1.1       gwr }
    721   1.1       gwr 
    722   1.1       gwr /*
    723   1.1       gwr  * xydump: crash dump system
    724   1.1       gwr  */
    725  1.17       gwr int
    726  1.17       gwr xydump(dev, blkno, va, sz)
    727  1.17       gwr 	dev_t dev;
    728  1.17       gwr 	daddr_t blkno;
    729  1.17       gwr 	caddr_t va;
    730  1.17       gwr 	size_t sz;
    731   1.1       gwr {
    732   1.1       gwr 	int     unit, part;
    733   1.1       gwr 	struct xy_softc *xy;
    734   1.1       gwr 
    735   1.1       gwr 	unit = DISKUNIT(dev);
    736   1.9   thorpej 	if (unit >= xy_cd.cd_ndevs)
    737   1.1       gwr 		return ENXIO;
    738   1.1       gwr 	part = DISKPART(dev);
    739   1.1       gwr 
    740   1.9   thorpej 	xy = xy_cd.cd_devs[unit];
    741   1.1       gwr 
    742  1.11  christos 	printf("%s%c: crash dump not supported (yet)\n", xy->sc_dev.dv_xname,
    743   1.1       gwr 	    'a' + part);
    744   1.1       gwr 
    745   1.1       gwr 	return ENXIO;
    746   1.1       gwr 
    747   1.1       gwr 	/* outline: globals: "dumplo" == sector number of partition to start
    748   1.1       gwr 	 * dump at (convert to physical sector with partition table)
    749   1.1       gwr 	 * "dumpsize" == size of dump in clicks "physmem" == size of physical
    750   1.1       gwr 	 * memory (clicks, ctob() to get bytes) (normal case: dumpsize ==
    751   1.1       gwr 	 * physmem)
    752  1.17       gwr 	 *
    753   1.1       gwr 	 * dump a copy of physical memory to the dump device starting at sector
    754   1.1       gwr 	 * "dumplo" in the swap partition (make sure > 0).   map in pages as
    755   1.1       gwr 	 * we go.   use polled I/O.
    756  1.17       gwr 	 *
    757  1.17       gwr 	 * XXX how to handle NON_CONTIG?
    758  1.17       gwr 	 */
    759   1.1       gwr }
    760   1.1       gwr 
    761   1.1       gwr /*
    762   1.1       gwr  * xyioctl: ioctls on XY drives.   based on ioctl's of other netbsd disks.
    763   1.1       gwr  */
    764  1.17       gwr int
    765   1.1       gwr xyioctl(dev, command, addr, flag, p)
    766   1.1       gwr 	dev_t   dev;
    767   1.1       gwr 	u_long  command;
    768   1.1       gwr 	caddr_t addr;
    769   1.1       gwr 	int     flag;
    770   1.1       gwr 	struct proc *p;
    771   1.1       gwr 
    772   1.1       gwr {
    773   1.1       gwr 	struct xy_softc *xy;
    774   1.1       gwr 	struct xd_iocmd *xio;
    775   1.1       gwr 	int     error, s, unit;
    776   1.1       gwr 
    777   1.1       gwr 	unit = DISKUNIT(dev);
    778   1.1       gwr 
    779   1.9   thorpej 	if (unit >= xy_cd.cd_ndevs || (xy = xy_cd.cd_devs[unit]) == NULL)
    780   1.1       gwr 		return (ENXIO);
    781   1.1       gwr 
    782   1.1       gwr 	/* switch on ioctl type */
    783   1.1       gwr 
    784   1.1       gwr 	switch (command) {
    785   1.1       gwr 	case DIOCSBAD:		/* set bad144 info */
    786   1.1       gwr 		if ((flag & FWRITE) == 0)
    787   1.1       gwr 			return EBADF;
    788   1.1       gwr 		s = splbio();
    789   1.1       gwr 		bcopy(addr, &xy->dkb, sizeof(xy->dkb));
    790   1.1       gwr 		splx(s);
    791   1.1       gwr 		return 0;
    792   1.1       gwr 
    793   1.1       gwr 	case DIOCGDINFO:	/* get disk label */
    794   1.2   thorpej 		bcopy(xy->sc_dk.dk_label, addr, sizeof(struct disklabel));
    795   1.1       gwr 		return 0;
    796   1.1       gwr 
    797   1.1       gwr 	case DIOCGPART:	/* get partition info */
    798   1.2   thorpej 		((struct partinfo *) addr)->disklab = xy->sc_dk.dk_label;
    799   1.1       gwr 		((struct partinfo *) addr)->part =
    800   1.2   thorpej 		    &xy->sc_dk.dk_label->d_partitions[DISKPART(dev)];
    801   1.1       gwr 		return 0;
    802   1.1       gwr 
    803   1.1       gwr 	case DIOCSDINFO:	/* set disk label */
    804   1.1       gwr 		if ((flag & FWRITE) == 0)
    805   1.1       gwr 			return EBADF;
    806   1.2   thorpej 		error = setdisklabel(xy->sc_dk.dk_label,
    807   1.1       gwr 		    (struct disklabel *) addr, /* xy->sc_dk.dk_openmask : */ 0,
    808   1.2   thorpej 		    xy->sc_dk.dk_cpulabel);
    809   1.1       gwr 		if (error == 0) {
    810   1.1       gwr 			if (xy->state == XY_DRIVE_NOLABEL)
    811   1.1       gwr 				xy->state = XY_DRIVE_ONLINE;
    812   1.1       gwr 		}
    813   1.1       gwr 		return error;
    814   1.1       gwr 
    815   1.1       gwr 	case DIOCWLABEL:	/* change write status of disk label */
    816   1.1       gwr 		if ((flag & FWRITE) == 0)
    817   1.1       gwr 			return EBADF;
    818   1.1       gwr 		if (*(int *) addr)
    819   1.1       gwr 			xy->flags |= XY_WLABEL;
    820   1.1       gwr 		else
    821   1.1       gwr 			xy->flags &= ~XY_WLABEL;
    822   1.1       gwr 		return 0;
    823   1.1       gwr 
    824   1.1       gwr 	case DIOCWDINFO:	/* write disk label */
    825   1.1       gwr 		if ((flag & FWRITE) == 0)
    826   1.1       gwr 			return EBADF;
    827   1.2   thorpej 		error = setdisklabel(xy->sc_dk.dk_label,
    828   1.1       gwr 		    (struct disklabel *) addr, /* xy->sc_dk.dk_openmask : */ 0,
    829   1.2   thorpej 		    xy->sc_dk.dk_cpulabel);
    830   1.1       gwr 		if (error == 0) {
    831   1.1       gwr 			if (xy->state == XY_DRIVE_NOLABEL)
    832   1.1       gwr 				xy->state = XY_DRIVE_ONLINE;
    833   1.1       gwr 
    834   1.1       gwr 			/* Simulate opening partition 0 so write succeeds. */
    835   1.1       gwr 			xy->sc_dk.dk_openmask |= (1 << 0);
    836   1.1       gwr 			error = writedisklabel(MAKEDISKDEV(major(dev), DISKUNIT(dev), RAW_PART),
    837   1.2   thorpej 			    xystrategy, xy->sc_dk.dk_label,
    838   1.2   thorpej 			    xy->sc_dk.dk_cpulabel);
    839   1.1       gwr 			xy->sc_dk.dk_openmask =
    840   1.1       gwr 			    xy->sc_dk.dk_copenmask | xy->sc_dk.dk_bopenmask;
    841   1.1       gwr 		}
    842   1.1       gwr 		return error;
    843   1.1       gwr 
    844   1.1       gwr 	case DIOSXDCMD:
    845   1.1       gwr 		xio = (struct xd_iocmd *) addr;
    846   1.1       gwr 		if ((error = suser(p->p_ucred, &p->p_acflag)) != 0)
    847   1.1       gwr 			return (error);
    848   1.1       gwr 		return (xyc_ioctlcmd(xy, dev, xio));
    849   1.1       gwr 
    850   1.1       gwr 	default:
    851   1.1       gwr 		return ENOTTY;
    852   1.1       gwr 	}
    853   1.1       gwr }
    854   1.1       gwr 
    855   1.1       gwr /*
    856   1.1       gwr  * xyopen: open drive
    857   1.1       gwr  */
    858  1.17       gwr int
    859  1.17       gwr xyopen(dev, flag, fmt, p)
    860   1.1       gwr 	dev_t   dev;
    861   1.1       gwr 	int     flag, fmt;
    862  1.17       gwr 	struct proc *p;
    863   1.1       gwr {
    864  1.17       gwr 	int err, unit, part, s;
    865   1.1       gwr 	struct xy_softc *xy;
    866   1.1       gwr 
    867   1.1       gwr 	/* first, could it be a valid target? */
    868   1.1       gwr 	unit = DISKUNIT(dev);
    869   1.9   thorpej 	if (unit >= xy_cd.cd_ndevs || (xy = xy_cd.cd_devs[unit]) == NULL)
    870   1.1       gwr 		return (ENXIO);
    871   1.1       gwr 	part = DISKPART(dev);
    872  1.17       gwr 	err = 0;
    873   1.1       gwr 
    874  1.17       gwr 	/*
    875  1.17       gwr 	 * If some other processing is doing init, sleep.
    876  1.17       gwr 	 */
    877  1.17       gwr 	s = splbio();
    878  1.17       gwr 	while (xy->state == XY_DRIVE_ATTACHING) {
    879  1.17       gwr 		if (tsleep(&xy->state, PRIBIO, "xyopen", 0)) {
    880  1.17       gwr 			err = EINTR;
    881  1.17       gwr 			goto done;
    882  1.17       gwr 		}
    883  1.17       gwr 	}
    884  1.17       gwr 	/* Do we need to init the drive? */
    885  1.17       gwr 	if (xy->state == XY_DRIVE_UNKNOWN) {
    886  1.17       gwr 		xy_init(xy);
    887  1.17       gwr 		wakeup(&xy->state);
    888  1.17       gwr 	}
    889  1.17       gwr 	/* Was the init successful? */
    890   1.1       gwr 	if (xy->state == XY_DRIVE_UNKNOWN) {
    891  1.17       gwr 		err = EIO;
    892  1.17       gwr 		goto done;
    893   1.1       gwr 	}
    894  1.17       gwr 
    895   1.1       gwr 	/* check for partition */
    896   1.1       gwr 	if (part != RAW_PART &&
    897   1.2   thorpej 	    (part >= xy->sc_dk.dk_label->d_npartitions ||
    898   1.2   thorpej 		xy->sc_dk.dk_label->d_partitions[part].p_fstype == FS_UNUSED)) {
    899  1.17       gwr 		err = ENXIO;
    900  1.17       gwr 		goto done;
    901   1.1       gwr 	}
    902  1.17       gwr 
    903   1.1       gwr 	/* set open masks */
    904   1.1       gwr 	switch (fmt) {
    905   1.1       gwr 	case S_IFCHR:
    906   1.1       gwr 		xy->sc_dk.dk_copenmask |= (1 << part);
    907   1.1       gwr 		break;
    908   1.1       gwr 	case S_IFBLK:
    909   1.1       gwr 		xy->sc_dk.dk_bopenmask |= (1 << part);
    910   1.1       gwr 		break;
    911   1.1       gwr 	}
    912   1.1       gwr 	xy->sc_dk.dk_openmask = xy->sc_dk.dk_copenmask | xy->sc_dk.dk_bopenmask;
    913   1.1       gwr 
    914  1.17       gwr done:
    915  1.17       gwr 	splx(s);
    916  1.17       gwr 	return (err);
    917   1.1       gwr }
    918   1.1       gwr 
    919   1.1       gwr int
    920  1.17       gwr xyread(dev, uio, flags)
    921   1.1       gwr 	dev_t   dev;
    922   1.1       gwr 	struct uio *uio;
    923  1.17       gwr 	int flags;
    924   1.1       gwr {
    925   1.1       gwr 
    926   1.1       gwr 	return (physio(xystrategy, NULL, dev, B_READ, minphys, uio));
    927   1.1       gwr }
    928   1.1       gwr 
    929   1.1       gwr int
    930  1.17       gwr xywrite(dev, uio, flags)
    931   1.1       gwr 	dev_t   dev;
    932   1.1       gwr 	struct uio *uio;
    933  1.17       gwr 	int flags;
    934   1.1       gwr {
    935   1.1       gwr 
    936   1.1       gwr 	return (physio(xystrategy, NULL, dev, B_WRITE, minphys, uio));
    937   1.1       gwr }
    938   1.1       gwr 
    939   1.1       gwr 
    940   1.1       gwr /*
    941   1.1       gwr  * xysize: return size of a partition for a dump
    942   1.1       gwr  */
    943   1.1       gwr 
    944  1.14        pk int
    945   1.1       gwr xysize(dev)
    946   1.1       gwr 	dev_t   dev;
    947   1.1       gwr 
    948   1.1       gwr {
    949   1.1       gwr 	struct xy_softc *xysc;
    950  1.14        pk 	int     unit, part, size, omask;
    951   1.1       gwr 
    952  1.14        pk 	/* valid unit? */
    953  1.14        pk 	unit = DISKUNIT(dev);
    954  1.14        pk 	if (unit >= xy_cd.cd_ndevs || (xysc = xy_cd.cd_devs[unit]) == NULL)
    955  1.14        pk 		return (-1);
    956   1.1       gwr 
    957  1.14        pk 	part = DISKPART(dev);
    958  1.14        pk 	omask = xysc->sc_dk.dk_openmask & (1 << part);
    959  1.14        pk 
    960  1.17       gwr 	if (omask == 0 && xyopen(dev, 0, S_IFBLK, NULL) != 0)
    961   1.1       gwr 		return (-1);
    962   1.1       gwr 
    963   1.1       gwr 	/* do it */
    964   1.2   thorpej 	if (xysc->sc_dk.dk_label->d_partitions[part].p_fstype != FS_SWAP)
    965   1.1       gwr 		size = -1;	/* only give valid size for swap partitions */
    966   1.1       gwr 	else
    967  1.15   thorpej 		size = xysc->sc_dk.dk_label->d_partitions[part].p_size *
    968  1.15   thorpej 		    (xysc->sc_dk.dk_label->d_secsize / DEV_BSIZE);
    969  1.17       gwr 	if (omask == 0 && xyclose(dev, 0, S_IFBLK, NULL) != 0)
    970  1.14        pk 		return (-1);
    971  1.14        pk 	return (size);
    972   1.1       gwr }
    973   1.1       gwr 
    974   1.1       gwr /*
    975   1.1       gwr  * xystrategy: buffering system interface to xy.
    976   1.1       gwr  */
    977  1.17       gwr void
    978   1.1       gwr xystrategy(bp)
    979   1.1       gwr 	struct buf *bp;
    980   1.1       gwr 
    981   1.1       gwr {
    982   1.1       gwr 	struct xy_softc *xy;
    983   1.1       gwr 	int     s, unit;
    984   1.1       gwr 
    985   1.1       gwr 	unit = DISKUNIT(bp->b_dev);
    986   1.1       gwr 
    987   1.1       gwr 	/* check for live device */
    988   1.1       gwr 
    989   1.9   thorpej 	if (unit >= xy_cd.cd_ndevs || (xy = xy_cd.cd_devs[unit]) == 0 ||
    990   1.1       gwr 	    bp->b_blkno < 0 ||
    991   1.2   thorpej 	    (bp->b_bcount % xy->sc_dk.dk_label->d_secsize) != 0) {
    992   1.1       gwr 		bp->b_error = EINVAL;
    993   1.1       gwr 		goto bad;
    994   1.1       gwr 	}
    995   1.1       gwr 
    996  1.17       gwr 	/* There should always be an open first. */
    997   1.1       gwr 	if (xy->state == XY_DRIVE_UNKNOWN) {
    998  1.17       gwr 		bp->b_error = EIO;
    999  1.17       gwr 		goto bad;
   1000   1.1       gwr 	}
   1001   1.1       gwr 	if (xy->state != XY_DRIVE_ONLINE && DISKPART(bp->b_dev) != RAW_PART) {
   1002   1.1       gwr 		/* no I/O to unlabeled disks, unless raw partition */
   1003   1.1       gwr 		bp->b_error = EIO;
   1004   1.1       gwr 		goto bad;
   1005   1.1       gwr 	}
   1006   1.1       gwr 	/* short circuit zero length request */
   1007   1.1       gwr 
   1008   1.1       gwr 	if (bp->b_bcount == 0)
   1009   1.1       gwr 		goto done;
   1010   1.1       gwr 
   1011   1.1       gwr 	/* check bounds with label (disksubr.c).  Determine the size of the
   1012   1.1       gwr 	 * transfer, and make sure it is within the boundaries of the
   1013   1.1       gwr 	 * partition. Adjust transfer if needed, and signal errors or early
   1014   1.1       gwr 	 * completion. */
   1015   1.1       gwr 
   1016   1.2   thorpej 	if (bounds_check_with_label(bp, xy->sc_dk.dk_label,
   1017   1.1       gwr 		(xy->flags & XY_WLABEL) != 0) <= 0)
   1018   1.1       gwr 		goto done;
   1019   1.1       gwr 
   1020   1.1       gwr 	/*
   1021   1.1       gwr 	 * now we know we have a valid buf structure that we need to do I/O
   1022   1.1       gwr 	 * on.
   1023   1.1       gwr 	 */
   1024   1.1       gwr 
   1025   1.1       gwr 	s = splbio();		/* protect the queues */
   1026   1.1       gwr 
   1027   1.1       gwr 	disksort(&xy->xyq, bp);
   1028   1.1       gwr 
   1029   1.1       gwr 	/* start 'em up */
   1030   1.1       gwr 
   1031   1.1       gwr 	xyc_start(xy->parent, NULL);
   1032   1.1       gwr 
   1033   1.1       gwr 	/* done! */
   1034   1.1       gwr 
   1035   1.1       gwr 	splx(s);
   1036   1.1       gwr 	return;
   1037   1.1       gwr 
   1038   1.1       gwr bad:				/* tells upper layers we have an error */
   1039   1.1       gwr 	bp->b_flags |= B_ERROR;
   1040   1.1       gwr done:				/* tells upper layers we are done with this
   1041   1.1       gwr 				 * buf */
   1042   1.1       gwr 	bp->b_resid = bp->b_bcount;
   1043   1.1       gwr 	biodone(bp);
   1044   1.1       gwr }
   1045   1.1       gwr /*
   1046   1.1       gwr  * end of {b,c}devsw functions
   1047   1.1       gwr  */
   1048   1.1       gwr 
   1049   1.1       gwr /*
   1050   1.1       gwr  * i n t e r r u p t   f u n c t i o n
   1051   1.1       gwr  *
   1052   1.1       gwr  * xycintr: hardware interrupt.
   1053   1.1       gwr  */
   1054  1.17       gwr int
   1055   1.1       gwr xycintr(v)
   1056   1.1       gwr 	void   *v;
   1057   1.1       gwr 
   1058   1.1       gwr {
   1059   1.1       gwr 	struct xyc_softc *xycsc = v;
   1060   1.1       gwr 
   1061   1.1       gwr 	/* kick the event counter */
   1062   1.1       gwr 	xycsc->sc_intrcnt.ev_count++;
   1063   1.1       gwr 
   1064   1.1       gwr 	/* remove as many done IOPBs as possible */
   1065   1.1       gwr 	xyc_remove_iorq(xycsc);
   1066   1.1       gwr 
   1067   1.1       gwr 	/* start any iorq's already waiting */
   1068   1.1       gwr 	xyc_start(xycsc, NULL);
   1069   1.1       gwr 
   1070   1.1       gwr 	return (1);
   1071   1.1       gwr }
   1072   1.1       gwr /*
   1073   1.1       gwr  * end of interrupt function
   1074   1.1       gwr  */
   1075   1.1       gwr 
   1076   1.1       gwr /*
   1077   1.1       gwr  * i n t e r n a l   f u n c t i o n s
   1078   1.1       gwr  */
   1079   1.1       gwr 
   1080   1.1       gwr /*
   1081   1.1       gwr  * xyc_rqinit: fill out the fields of an I/O request
   1082   1.1       gwr  */
   1083   1.1       gwr 
   1084  1.17       gwr inline void
   1085   1.1       gwr xyc_rqinit(rq, xyc, xy, md, blk, cnt, db, bp)
   1086   1.1       gwr 	struct xy_iorq *rq;
   1087   1.1       gwr 	struct xyc_softc *xyc;
   1088   1.1       gwr 	struct xy_softc *xy;
   1089   1.1       gwr 	int     md;
   1090   1.1       gwr 	u_long  blk;
   1091   1.1       gwr 	int     cnt;
   1092   1.1       gwr 	caddr_t db;
   1093   1.1       gwr 	struct buf *bp;
   1094   1.1       gwr {
   1095   1.1       gwr 	rq->xyc = xyc;
   1096   1.1       gwr 	rq->xy = xy;
   1097   1.1       gwr 	rq->ttl = XYC_MAXTTL + 10;
   1098   1.1       gwr 	rq->mode = md;
   1099   1.1       gwr 	rq->tries = rq->errno = rq->lasterror = 0;
   1100   1.1       gwr 	rq->blockno = blk;
   1101   1.1       gwr 	rq->sectcnt = cnt;
   1102   1.1       gwr 	rq->dbuf = rq->dbufbase = db;
   1103   1.1       gwr 	rq->buf = bp;
   1104   1.1       gwr }
   1105   1.1       gwr 
   1106   1.1       gwr /*
   1107   1.1       gwr  * xyc_rqtopb: load up an IOPB based on an iorq
   1108   1.1       gwr  */
   1109   1.1       gwr 
   1110  1.17       gwr void
   1111   1.1       gwr xyc_rqtopb(iorq, iopb, cmd, subfun)
   1112   1.1       gwr 	struct xy_iorq *iorq;
   1113   1.1       gwr 	struct xy_iopb *iopb;
   1114   1.1       gwr 	int     cmd, subfun;
   1115   1.1       gwr 
   1116   1.1       gwr {
   1117   1.1       gwr 	u_long  block, dp;
   1118   1.1       gwr 
   1119   1.1       gwr 	/* normal IOPB case, standard stuff */
   1120   1.1       gwr 
   1121   1.1       gwr 	/* chain bit handled later */
   1122   1.1       gwr 	iopb->ien = (XY_STATE(iorq->mode) == XY_SUB_POLL) ? 0 : 1;
   1123   1.1       gwr 	iopb->com = cmd;
   1124   1.1       gwr 	iopb->errno = 0;
   1125   1.1       gwr 	iopb->errs = 0;
   1126   1.1       gwr 	iopb->done = 0;
   1127   1.1       gwr 	if (iorq->xy) {
   1128   1.1       gwr 		iopb->unit = iorq->xy->xy_drive;
   1129   1.1       gwr 		iopb->dt = iorq->xy->drive_type;
   1130   1.1       gwr 	} else {
   1131   1.1       gwr 		iopb->unit = 0;
   1132   1.1       gwr 		iopb->dt = 0;
   1133   1.1       gwr 	}
   1134   1.1       gwr 	block = iorq->blockno;
   1135   1.1       gwr 	if (iorq->xy == NULL || block == 0) {
   1136   1.1       gwr 		iopb->sect = iopb->head = iopb->cyl = 0;
   1137   1.1       gwr 	} else {
   1138   1.1       gwr 		iopb->sect = block % iorq->xy->nsect;
   1139   1.1       gwr 		block = block / iorq->xy->nsect;
   1140   1.1       gwr 		iopb->head = block % iorq->xy->nhead;
   1141   1.1       gwr 		block = block / iorq->xy->nhead;
   1142   1.1       gwr 		iopb->cyl = block;
   1143   1.1       gwr 	}
   1144   1.1       gwr 	iopb->scnt = iorq->sectcnt;
   1145   1.1       gwr 	if (iorq->dbuf == NULL) {
   1146   1.1       gwr 		iopb->dataa = 0;
   1147   1.1       gwr 		iopb->datar = 0;
   1148   1.1       gwr 	} else {
   1149  1.19       gwr 		dp = dvma_kvtopa(iorq->dbuf, iorq->xyc->bustype);
   1150   1.1       gwr 		iopb->dataa = (dp & 0xffff);
   1151   1.1       gwr 		iopb->datar = ((dp & 0xff0000) >> 16);
   1152   1.1       gwr 	}
   1153   1.1       gwr 	iopb->subfn = subfun;
   1154   1.1       gwr }
   1155   1.1       gwr 
   1156   1.1       gwr 
   1157   1.1       gwr /*
   1158   1.1       gwr  * xyc_unbusy: wait for the xyc to go unbusy, or timeout.
   1159   1.1       gwr  */
   1160   1.1       gwr 
   1161   1.1       gwr int
   1162   1.1       gwr xyc_unbusy(xyc, del)
   1163   1.1       gwr 
   1164   1.1       gwr struct xyc *xyc;
   1165   1.1       gwr int del;
   1166   1.1       gwr 
   1167   1.1       gwr {
   1168   1.1       gwr 	while (del-- > 0) {
   1169   1.1       gwr 		if ((xyc->xyc_csr & XYC_GBSY) == 0)
   1170   1.1       gwr 			break;
   1171   1.1       gwr 		DELAY(1);
   1172   1.1       gwr 	}
   1173   1.1       gwr 	return(del == 0 ? XY_ERR_FAIL : XY_ERR_AOK);
   1174   1.1       gwr }
   1175   1.1       gwr 
   1176   1.1       gwr /*
   1177   1.1       gwr  * xyc_cmd: front end for POLL'd and WAIT'd commands.  Returns 0 or error.
   1178   1.1       gwr  * note that NORM requests are handled seperately.
   1179   1.1       gwr  */
   1180  1.17       gwr int
   1181   1.1       gwr xyc_cmd(xycsc, cmd, subfn, unit, block, scnt, dptr, fullmode)
   1182   1.1       gwr 	struct xyc_softc *xycsc;
   1183   1.1       gwr 	int     cmd, subfn, unit, block, scnt;
   1184   1.1       gwr 	char   *dptr;
   1185   1.1       gwr 	int     fullmode;
   1186   1.1       gwr {
   1187   1.1       gwr 	struct xy_iorq *iorq = xycsc->ciorq;
   1188   1.1       gwr 	struct xy_iopb *iopb = xycsc->ciopb;
   1189  1.17       gwr 	int submode = XY_STATE(fullmode);
   1190   1.1       gwr 
   1191   1.1       gwr 	/*
   1192   1.1       gwr 	 * is someone else using the control iopq wait for it if we can
   1193   1.1       gwr 	 */
   1194   1.1       gwr start:
   1195   1.1       gwr 	if (submode == XY_SUB_WAIT && XY_STATE(iorq->mode) != XY_SUB_FREE) {
   1196  1.17       gwr 		if (tsleep(iorq, PRIBIO, "xyc_cmd", 0))
   1197   1.1       gwr                                 return(XY_ERR_FAIL);
   1198   1.1       gwr 		goto start;
   1199   1.1       gwr 	}
   1200   1.1       gwr 
   1201   1.1       gwr 	if (XY_STATE(iorq->mode) != XY_SUB_FREE) {
   1202   1.1       gwr 		DELAY(1000000);		/* XY_SUB_POLL: steal the iorq */
   1203   1.1       gwr 		iorq->mode = XY_SUB_FREE;
   1204  1.11  christos 		printf("%s: stole control iopb\n", xycsc->sc_dev.dv_xname);
   1205   1.1       gwr 	}
   1206   1.1       gwr 
   1207   1.1       gwr 	/* init iorq/iopb */
   1208   1.1       gwr 
   1209   1.1       gwr 	xyc_rqinit(iorq, xycsc,
   1210   1.1       gwr 	    (unit == XYC_NOUNIT) ? NULL : xycsc->sc_drives[unit],
   1211   1.1       gwr 	    fullmode, block, scnt, dptr, NULL);
   1212   1.1       gwr 
   1213   1.1       gwr 	/* load IOPB from iorq */
   1214   1.1       gwr 
   1215   1.1       gwr 	xyc_rqtopb(iorq, iopb, cmd, subfn);
   1216   1.1       gwr 
   1217   1.1       gwr 	/* submit it for processing */
   1218   1.1       gwr 
   1219   1.1       gwr 	xyc_submit_iorq(xycsc, iorq, fullmode);	/* error code will be in iorq */
   1220   1.1       gwr 
   1221   1.1       gwr 	return(XY_ERR_AOK);
   1222   1.1       gwr }
   1223   1.1       gwr 
   1224   1.1       gwr /*
   1225   1.1       gwr  * xyc_startbuf
   1226   1.1       gwr  * start a buffer for running
   1227   1.1       gwr  */
   1228   1.1       gwr 
   1229  1.17       gwr int
   1230   1.1       gwr xyc_startbuf(xycsc, xysc, bp)
   1231   1.1       gwr 	struct xyc_softc *xycsc;
   1232   1.1       gwr 	struct xy_softc *xysc;
   1233   1.1       gwr 	struct buf *bp;
   1234   1.1       gwr 
   1235   1.1       gwr {
   1236   1.1       gwr 	int     partno;
   1237   1.1       gwr 	struct xy_iorq *iorq;
   1238   1.1       gwr 	struct xy_iopb *iopb;
   1239  1.17       gwr 	u_long  block;
   1240   1.1       gwr 	caddr_t dbuf;
   1241   1.1       gwr 
   1242   1.1       gwr 	iorq = xysc->xyrq;
   1243   1.1       gwr 	iopb = iorq->iopb;
   1244   1.1       gwr 
   1245   1.1       gwr 	/* get buf */
   1246   1.1       gwr 
   1247  1.17       gwr 	if (bp == NULL)
   1248   1.1       gwr 		panic("xyc_startbuf null buf");
   1249   1.1       gwr 
   1250   1.1       gwr 	partno = DISKPART(bp->b_dev);
   1251   1.1       gwr #ifdef XYC_DEBUG
   1252  1.11  christos 	printf("xyc_startbuf: %s%c: %s block %d\n", xysc->sc_dev.dv_xname,
   1253   1.1       gwr 	    'a' + partno, (bp->b_flags & B_READ) ? "read" : "write", bp->b_blkno);
   1254  1.11  christos 	printf("xyc_startbuf: b_bcount %d, b_data 0x%x\n",
   1255   1.1       gwr 	    bp->b_bcount, bp->b_data);
   1256   1.1       gwr #endif
   1257   1.1       gwr 
   1258   1.1       gwr 	/*
   1259   1.1       gwr 	 * load request.  we have to calculate the correct block number based
   1260   1.1       gwr 	 * on partition info.
   1261  1.17       gwr 	 *
   1262   1.1       gwr 	 * also, note that there are two kinds of buf structures, those with
   1263   1.1       gwr 	 * B_PHYS set and those without B_PHYS.   if B_PHYS is set, then it is
   1264   1.1       gwr 	 * a raw I/O (to a cdevsw) and we are doing I/O directly to the users'
   1265   1.1       gwr 	 * buffer which has already been mapped into DVMA space. (Not on sun3)
   1266   1.1       gwr 	 * However, if B_PHYS is not set, then the buffer is a normal system
   1267   1.1       gwr 	 * buffer which does *not* live in DVMA space.  In that case we call
   1268   1.1       gwr 	 * dvma_mapin to map it into DVMA space so we can do the DMA to it.
   1269  1.17       gwr 	 *
   1270   1.1       gwr 	 * in cases where we do a dvma_mapin, note that iorq points to the buffer
   1271   1.1       gwr 	 * as mapped into DVMA space, where as the bp->b_data points to its
   1272   1.1       gwr 	 * non-DVMA mapping.
   1273   1.1       gwr 	 *
   1274   1.1       gwr 	 * XXX - On the sun3, B_PHYS does NOT mean the buffer is mapped
   1275   1.1       gwr 	 * into dvma space, only that it was remapped into the kernel.
   1276   1.1       gwr 	 * We ALWAYS have to remap the kernel buf into DVMA space.
   1277   1.1       gwr 	 * (It is done inexpensively, using whole segments!)
   1278   1.1       gwr 	 */
   1279   1.1       gwr 
   1280   1.1       gwr 	block = bp->b_blkno + ((partno == RAW_PART) ? 0 :
   1281   1.2   thorpej 	    xysc->sc_dk.dk_label->d_partitions[partno].p_offset);
   1282   1.1       gwr 
   1283  1.17       gwr 	dbuf = dvma_mapin(bp->b_data, bp->b_bcount, 0);
   1284   1.1       gwr 	if (dbuf == NULL) {	/* out of DVMA space */
   1285  1.17       gwr 		printf("%s: warning: out of DVMA space\n",
   1286   1.1       gwr 			   xycsc->sc_dev.dv_xname);
   1287   1.1       gwr 		return (XY_ERR_FAIL);	/* XXX: need some sort of
   1288   1.1       gwr 		                         * call-back scheme here? */
   1289   1.1       gwr 	}
   1290   1.1       gwr 
   1291   1.1       gwr 	/* init iorq and load iopb from it */
   1292   1.1       gwr 
   1293   1.1       gwr 	xyc_rqinit(iorq, xycsc, xysc, XY_SUB_NORM | XY_MODE_VERBO, block,
   1294   1.1       gwr 	    bp->b_bcount / XYFM_BPS, dbuf, bp);
   1295   1.1       gwr 
   1296   1.1       gwr 	xyc_rqtopb(iorq, iopb, (bp->b_flags & B_READ) ? XYCMD_RD : XYCMD_WR, 0);
   1297   1.1       gwr 
   1298   1.5     chuck 	/* Instrumentation. */
   1299   1.5     chuck 	disk_busy(&xysc->sc_dk);
   1300   1.5     chuck 
   1301   1.1       gwr 	return (XY_ERR_AOK);
   1302   1.1       gwr }
   1303   1.1       gwr 
   1304   1.1       gwr 
   1305   1.1       gwr /*
   1306   1.1       gwr  * xyc_submit_iorq: submit an iorq for processing.  returns XY_ERR_AOK
   1307   1.1       gwr  * if ok.  if it fail returns an error code.  type is XY_SUB_*.
   1308   1.1       gwr  *
   1309   1.1       gwr  * note: caller frees iorq in all cases except NORM
   1310   1.1       gwr  *
   1311   1.1       gwr  * return value:
   1312   1.1       gwr  *   NORM: XY_AOK (req pending), XY_FAIL (couldn't submit request)
   1313   1.1       gwr  *   WAIT: XY_AOK (success), <error-code> (failed)
   1314   1.1       gwr  *   POLL: <same as WAIT>
   1315   1.1       gwr  *   NOQ : <same as NORM>
   1316   1.1       gwr  *
   1317   1.1       gwr  * there are three sources for i/o requests:
   1318   1.1       gwr  * [1] xystrategy: normal block I/O, using "struct buf" system.
   1319   1.1       gwr  * [2] autoconfig/crash dump: these are polled I/O requests, no interrupts.
   1320   1.1       gwr  * [3] open/ioctl: these are I/O requests done in the context of a process,
   1321   1.1       gwr  *                 and the process should block until they are done.
   1322   1.1       gwr  *
   1323   1.1       gwr  * software state is stored in the iorq structure.  each iorq has an
   1324   1.1       gwr  * iopb structure.  the hardware understands the iopb structure.
   1325   1.1       gwr  * every command must go through an iopb.  a 450 handles one iopb at a
   1326   1.1       gwr  * time, where as a 451 can take them in chains.  [the 450 claims it
   1327   1.1       gwr  * can handle chains, but is appears to be buggy...]   iopb are allocated
   1328   1.1       gwr  * in DVMA space at boot up time.  each disk gets one iopb, and the
   1329  1.17       gwr  * controller gets one (for POLL and WAIT commands).  what happens if
   1330  1.17       gwr  * the iopb is busy?  for i/o type [1], the buffers are queued at the
   1331  1.17       gwr  * "buff" layer and * picked up later by the interrupt routine.  for case
   1332   1.1       gwr  * [2] we can only be blocked if there is a WAIT type I/O request being
   1333   1.1       gwr  * run.   since this can only happen when we are crashing, we wait a sec
   1334   1.1       gwr  * and then steal the IOPB.  for case [3] the process can sleep
   1335   1.1       gwr  * on the iorq free list until some iopbs are avaliable.
   1336   1.1       gwr  */
   1337   1.1       gwr 
   1338   1.1       gwr 
   1339  1.17       gwr int
   1340   1.1       gwr xyc_submit_iorq(xycsc, iorq, type)
   1341   1.1       gwr 	struct xyc_softc *xycsc;
   1342   1.1       gwr 	struct xy_iorq *iorq;
   1343   1.1       gwr 	int     type;
   1344   1.1       gwr 
   1345   1.1       gwr {
   1346   1.1       gwr 	struct xy_iopb *iopb;
   1347   1.1       gwr 	u_long  iopbaddr;
   1348   1.1       gwr 
   1349   1.1       gwr #ifdef XYC_DEBUG
   1350  1.17       gwr 	printf("xyc_submit_iorq(%s, addr=0x%x, type=%d)\n",
   1351   1.1       gwr 		xycsc->sc_dev.dv_xname, iorq, type);
   1352   1.1       gwr #endif
   1353   1.1       gwr 
   1354   1.1       gwr 	/* first check and see if controller is busy */
   1355   1.1       gwr 	if ((xycsc->xyc->xyc_csr & XYC_GBSY) != 0) {
   1356   1.1       gwr #ifdef XYC_DEBUG
   1357  1.11  christos 		printf("xyc_submit_iorq: XYC not ready (BUSY)\n");
   1358   1.1       gwr #endif
   1359   1.1       gwr 		if (type == XY_SUB_NOQ)
   1360   1.1       gwr 			return (XY_ERR_FAIL);	/* failed */
   1361   1.1       gwr 		switch (type) {
   1362   1.1       gwr 		case XY_SUB_NORM:
   1363   1.1       gwr 			return XY_ERR_AOK;	/* success */
   1364   1.1       gwr 		case XY_SUB_WAIT:
   1365   1.1       gwr 			while (iorq->iopb->done == 0) {
   1366   1.1       gwr 				sleep(iorq, PRIBIO);
   1367   1.1       gwr 			}
   1368   1.1       gwr 			return (iorq->errno);
   1369   1.1       gwr 		case XY_SUB_POLL:		/* steal controller */
   1370   1.1       gwr 			iopbaddr = xycsc->xyc->xyc_rsetup; /* RESET */
   1371   1.1       gwr 			if (xyc_unbusy(xycsc->xyc,XYC_RESETUSEC) == XY_ERR_FAIL)
   1372   1.1       gwr 				panic("xyc_submit_iorq: stuck xyc");
   1373  1.11  christos 			printf("%s: stole controller\n",
   1374   1.1       gwr 				xycsc->sc_dev.dv_xname);
   1375   1.1       gwr 			break;
   1376   1.1       gwr 		default:
   1377   1.1       gwr 			panic("xyc_submit_iorq adding");
   1378   1.1       gwr 		}
   1379   1.1       gwr 	}
   1380   1.1       gwr 
   1381   1.1       gwr 	iopb = xyc_chain(xycsc, iorq);	 /* build chain */
   1382   1.1       gwr 	if (iopb == NULL) { /* nothing doing? */
   1383  1.17       gwr 		if (type == XY_SUB_NORM || type == XY_SUB_NOQ)
   1384   1.1       gwr 			return(XY_ERR_AOK);
   1385   1.1       gwr 		panic("xyc_submit_iorq: xyc_chain failed!\n");
   1386   1.1       gwr 	}
   1387  1.19       gwr 	iopbaddr = dvma_kvtopa(iopb, xycsc->bustype);
   1388  1.17       gwr 
   1389   1.1       gwr 	XYC_GO(xycsc->xyc, iopbaddr);
   1390   1.1       gwr 
   1391   1.1       gwr 	/* command now running, wrap it up */
   1392   1.1       gwr 	switch (type) {
   1393   1.1       gwr 	case XY_SUB_NORM:
   1394   1.1       gwr 	case XY_SUB_NOQ:
   1395   1.1       gwr 		return (XY_ERR_AOK);	/* success */
   1396   1.1       gwr 	case XY_SUB_WAIT:
   1397   1.1       gwr 		while (iorq->iopb->done == 0) {
   1398   1.1       gwr 			sleep(iorq, PRIBIO);
   1399   1.1       gwr 		}
   1400   1.1       gwr 		return (iorq->errno);
   1401   1.1       gwr 	case XY_SUB_POLL:
   1402   1.1       gwr 		return (xyc_piodriver(xycsc, iorq));
   1403   1.1       gwr 	default:
   1404   1.1       gwr 		panic("xyc_submit_iorq wrap up");
   1405   1.1       gwr 	}
   1406   1.1       gwr 	panic("xyc_submit_iorq");
   1407   1.1       gwr 	return 0;	/* not reached */
   1408   1.1       gwr }
   1409   1.1       gwr 
   1410   1.1       gwr 
   1411   1.1       gwr /*
   1412   1.1       gwr  * xyc_chain: build a chain.  return dvma address of first element in
   1413   1.1       gwr  * the chain.   iorq != NULL: means we only want that item on the chain.
   1414   1.1       gwr  */
   1415   1.1       gwr 
   1416   1.1       gwr struct xy_iopb *
   1417   1.1       gwr xyc_chain(xycsc, iorq)
   1418  1.19       gwr 	struct xyc_softc *xycsc;
   1419  1.19       gwr 	struct xy_iorq *iorq;
   1420   1.1       gwr {
   1421  1.17       gwr 	int togo, chain, hand;
   1422  1.17       gwr 	struct xy_iopb *iopb, *prev_iopb;
   1423  1.17       gwr 	bzero(xycsc->xy_chain, sizeof(xycsc->xy_chain));
   1424  1.17       gwr 
   1425  1.17       gwr 	/*
   1426  1.17       gwr 	 * promote control IOPB to the top
   1427  1.17       gwr 	 */
   1428  1.17       gwr 	if (iorq == NULL) {
   1429  1.17       gwr 		if ((XY_STATE(xycsc->reqs[XYC_CTLIOPB].mode) == XY_SUB_POLL ||
   1430  1.17       gwr 			 XY_STATE(xycsc->reqs[XYC_CTLIOPB].mode) == XY_SUB_WAIT) &&
   1431  1.17       gwr 			xycsc->iopbase[XYC_CTLIOPB].done == 0)
   1432  1.17       gwr 		  iorq = &xycsc->reqs[XYC_CTLIOPB];
   1433  1.17       gwr 	}
   1434  1.17       gwr 	/*
   1435  1.17       gwr 	 * special case: if iorq != NULL then we have a POLL or WAIT request.
   1436  1.17       gwr 	 * we let these take priority and do them first.
   1437  1.17       gwr 	 */
   1438  1.17       gwr 	if (iorq) {
   1439  1.17       gwr 		xycsc->xy_chain[0] = iorq;
   1440  1.17       gwr 		iorq->iopb->chen = 0;
   1441  1.17       gwr 		return(iorq->iopb);
   1442  1.17       gwr 	}
   1443  1.17       gwr 
   1444  1.17       gwr 	/*
   1445  1.17       gwr 	 * NORM case: do round robin and maybe chain (if allowed and possible)
   1446  1.17       gwr 	 */
   1447  1.17       gwr 
   1448  1.17       gwr 	chain = 0;
   1449  1.17       gwr 	hand = xycsc->xy_hand;
   1450  1.17       gwr 	xycsc->xy_hand = (xycsc->xy_hand + 1) % XYC_MAXIOPB;
   1451  1.17       gwr 
   1452  1.17       gwr 	for (togo = XYC_MAXIOPB ;
   1453  1.17       gwr 		 togo > 0 ;
   1454  1.17       gwr 		 togo--, hand = (hand + 1) % XYC_MAXIOPB)
   1455  1.17       gwr 	{
   1456  1.17       gwr 
   1457  1.17       gwr 		if (XY_STATE(xycsc->reqs[hand].mode) != XY_SUB_NORM ||
   1458  1.17       gwr 			xycsc->iopbase[hand].done)
   1459  1.17       gwr 			continue;   /* not ready-for-i/o */
   1460  1.17       gwr 
   1461  1.17       gwr 		xycsc->xy_chain[chain] = &xycsc->reqs[hand];
   1462  1.17       gwr 		iopb = xycsc->xy_chain[chain]->iopb;
   1463  1.17       gwr 		iopb->chen = 0;
   1464  1.17       gwr 		if (chain != 0) {   /* adding a link to a chain? */
   1465  1.17       gwr 			prev_iopb = xycsc->xy_chain[chain-1]->iopb;
   1466  1.17       gwr 			prev_iopb->chen = 1;
   1467  1.17       gwr 			prev_iopb->nxtiopb = 0xffff &
   1468  1.19       gwr 			  dvma_kvtopa(iopb, xycsc->bustype);
   1469  1.17       gwr 		} else {            /* head of chain */
   1470  1.17       gwr 			iorq = xycsc->xy_chain[chain];
   1471  1.17       gwr 		}
   1472  1.17       gwr 		chain++;
   1473  1.17       gwr 		if (xycsc->no_ols) break;   /* quit if chaining dis-allowed */
   1474  1.17       gwr 	}
   1475  1.17       gwr 	return(iorq ? iorq->iopb : NULL);
   1476   1.1       gwr }
   1477   1.1       gwr 
   1478   1.1       gwr /*
   1479   1.1       gwr  * xyc_piodriver
   1480   1.1       gwr  *
   1481   1.1       gwr  * programmed i/o driver.   this function takes over the computer
   1482   1.1       gwr  * and drains off the polled i/o request.   it returns the status of the iorq
   1483  1.17       gwr  * the caller is interesting in.
   1484   1.1       gwr  */
   1485  1.17       gwr int
   1486   1.1       gwr xyc_piodriver(xycsc, iorq)
   1487   1.1       gwr 	struct xyc_softc *xycsc;
   1488   1.1       gwr 	struct xy_iorq  *iorq;
   1489   1.1       gwr 
   1490   1.1       gwr {
   1491   1.1       gwr 	int     nreset = 0;
   1492   1.1       gwr 	int     retval = 0;
   1493   1.1       gwr 	u_long  res;
   1494  1.17       gwr 
   1495   1.1       gwr #ifdef XYC_DEBUG
   1496  1.11  christos 	printf("xyc_piodriver(%s, 0x%x)\n", xycsc->sc_dev.dv_xname, iorq);
   1497   1.1       gwr #endif
   1498   1.1       gwr 
   1499   1.1       gwr 	while (iorq->iopb->done == 0) {
   1500   1.1       gwr 
   1501   1.1       gwr 		res = xyc_unbusy(xycsc->xyc, XYC_MAXTIME);
   1502   1.1       gwr 
   1503   1.1       gwr 		/* we expect some progress soon */
   1504   1.1       gwr 		if (res == XY_ERR_FAIL && nreset >= 2) {
   1505   1.1       gwr 			xyc_reset(xycsc, 0, XY_RSET_ALL, XY_ERR_FAIL, 0);
   1506   1.1       gwr #ifdef XYC_DEBUG
   1507  1.11  christos 			printf("xyc_piodriver: timeout\n");
   1508   1.1       gwr #endif
   1509   1.1       gwr 			return (XY_ERR_FAIL);
   1510   1.1       gwr 		}
   1511   1.1       gwr 		if (res == XY_ERR_FAIL) {
   1512   1.1       gwr 			if (xyc_reset(xycsc, 0,
   1513   1.1       gwr 				      (nreset++ == 0) ? XY_RSET_NONE : iorq,
   1514   1.1       gwr 				      XY_ERR_FAIL,
   1515   1.1       gwr 				      0) == XY_ERR_FAIL)
   1516   1.1       gwr 				return (XY_ERR_FAIL);	/* flushes all but POLL
   1517   1.1       gwr 							 * requests, resets */
   1518   1.1       gwr 			continue;
   1519   1.1       gwr 		}
   1520   1.1       gwr 
   1521   1.1       gwr 		xyc_remove_iorq(xycsc);	 /* may resubmit request */
   1522   1.1       gwr 
   1523   1.1       gwr 		if (iorq->iopb->done == 0)
   1524   1.1       gwr 			xyc_start(xycsc, iorq);
   1525   1.1       gwr 	}
   1526   1.1       gwr 
   1527   1.1       gwr 	/* get return value */
   1528   1.1       gwr 
   1529   1.1       gwr 	retval = iorq->errno;
   1530   1.1       gwr 
   1531   1.1       gwr #ifdef XYC_DEBUG
   1532  1.11  christos 	printf("xyc_piodriver: done, retval = 0x%x (%s)\n",
   1533   1.1       gwr 	    iorq->errno, xyc_e2str(iorq->errno));
   1534   1.1       gwr #endif
   1535   1.1       gwr 
   1536   1.1       gwr 	/* start up any bufs that have queued */
   1537   1.1       gwr 
   1538  1.17       gwr 	xyc_start(xycsc, NULL);
   1539   1.1       gwr 
   1540   1.1       gwr 	return (retval);
   1541   1.1       gwr }
   1542   1.1       gwr 
   1543   1.1       gwr /*
   1544   1.1       gwr  * xyc_xyreset: reset one drive.   NOTE: assumes xyc was just reset.
   1545   1.1       gwr  * we steal iopb[XYC_CTLIOPB] for this, but we put it back when we are done.
   1546   1.1       gwr  */
   1547  1.17       gwr void
   1548   1.1       gwr xyc_xyreset(xycsc, xysc)
   1549   1.1       gwr 	struct xyc_softc *xycsc;
   1550   1.1       gwr 	struct xy_softc *xysc;
   1551   1.1       gwr 
   1552   1.1       gwr {
   1553   1.1       gwr 	struct xy_iopb tmpiopb;
   1554   1.1       gwr 	u_long  addr;
   1555   1.1       gwr 	int     del;
   1556   1.1       gwr 	bcopy(xycsc->ciopb, &tmpiopb, sizeof(tmpiopb));
   1557   1.1       gwr 	xycsc->ciopb->chen = xycsc->ciopb->done = xycsc->ciopb->errs = 0;
   1558   1.1       gwr 	xycsc->ciopb->ien = 0;
   1559   1.1       gwr 	xycsc->ciopb->com = XYCMD_RST;
   1560   1.1       gwr 	xycsc->ciopb->unit = xysc->xy_drive;
   1561  1.19       gwr 	addr = dvma_kvtopa(xycsc->ciopb, xycsc->bustype);
   1562   1.1       gwr 
   1563   1.1       gwr 	XYC_GO(xycsc->xyc, addr);
   1564   1.1       gwr 
   1565   1.1       gwr 	del = XYC_RESETUSEC;
   1566   1.1       gwr 	while (del > 0) {
   1567   1.1       gwr 		if ((xycsc->xyc->xyc_csr & XYC_GBSY) == 0) break;
   1568   1.1       gwr 		DELAY(1);
   1569   1.1       gwr 		del--;
   1570   1.1       gwr 	}
   1571   1.1       gwr 
   1572   1.1       gwr 	if (del <= 0 || xycsc->ciopb->errs) {
   1573  1.11  christos 		printf("%s: off-line: %s\n", xycsc->sc_dev.dv_xname,
   1574   1.1       gwr 		    xyc_e2str(xycsc->ciopb->errno));
   1575   1.1       gwr 		del = xycsc->xyc->xyc_rsetup;
   1576   1.1       gwr 		if (xyc_unbusy(xycsc->xyc, XYC_RESETUSEC) == XY_ERR_FAIL)
   1577   1.1       gwr 			panic("xyc_reset");
   1578   1.1       gwr 	} else {
   1579   1.7     chuck 		xycsc->xyc->xyc_csr = XYC_IPND;	/* clear IPND */
   1580   1.1       gwr 	}
   1581   1.1       gwr 	bcopy(&tmpiopb, xycsc->ciopb, sizeof(tmpiopb));
   1582   1.1       gwr }
   1583   1.1       gwr 
   1584   1.1       gwr 
   1585   1.1       gwr /*
   1586   1.1       gwr  * xyc_reset: reset everything: requests are marked as errors except
   1587   1.1       gwr  * a polled request (which is resubmitted)
   1588   1.1       gwr  */
   1589  1.17       gwr int
   1590   1.1       gwr xyc_reset(xycsc, quiet, blastmode, error, xysc)
   1591   1.1       gwr 	struct xyc_softc *xycsc;
   1592   1.1       gwr 	int     quiet, error;
   1593   1.1       gwr 	struct xy_iorq *blastmode;
   1594   1.1       gwr 	struct xy_softc *xysc;
   1595   1.1       gwr 
   1596   1.1       gwr {
   1597  1.17       gwr 	int     del = 0, lcv, retval = XY_ERR_AOK;
   1598   1.1       gwr 	struct xy_iorq *iorq;
   1599   1.1       gwr 
   1600   1.1       gwr 	/* soft reset hardware */
   1601   1.1       gwr 
   1602   1.1       gwr 	if (!quiet)
   1603  1.11  christos 		printf("%s: soft reset\n", xycsc->sc_dev.dv_xname);
   1604   1.1       gwr 	del = xycsc->xyc->xyc_rsetup;
   1605   1.1       gwr 	del = xyc_unbusy(xycsc->xyc, XYC_RESETUSEC);
   1606   1.1       gwr 	if (del == XY_ERR_FAIL) {
   1607   1.1       gwr 		blastmode = XY_RSET_ALL;	/* dead, flush all requests */
   1608   1.1       gwr 		retval = XY_ERR_FAIL;
   1609   1.1       gwr 	}
   1610   1.1       gwr 	if (xysc)
   1611   1.1       gwr 		xyc_xyreset(xycsc, xysc);
   1612   1.1       gwr 
   1613   1.1       gwr 	/* fix queues based on "blast-mode" */
   1614   1.1       gwr 
   1615   1.1       gwr 	for (lcv = 0; lcv < XYC_MAXIOPB; lcv++) {
   1616   1.1       gwr 		iorq = &xycsc->reqs[lcv];
   1617   1.1       gwr 
   1618   1.1       gwr 		if (XY_STATE(iorq->mode) != XY_SUB_POLL &&
   1619   1.1       gwr 		    XY_STATE(iorq->mode) != XY_SUB_WAIT &&
   1620   1.1       gwr 		    XY_STATE(iorq->mode) != XY_SUB_NORM)
   1621   1.1       gwr 			/* is it active? */
   1622   1.1       gwr 			continue;
   1623   1.1       gwr 
   1624  1.17       gwr 		if (blastmode == XY_RSET_ALL ||
   1625   1.1       gwr 				blastmode != iorq) {
   1626   1.1       gwr 			/* failed */
   1627   1.1       gwr 			iorq->errno = error;
   1628   1.1       gwr 			xycsc->iopbase[lcv].done = xycsc->iopbase[lcv].errs = 1;
   1629   1.1       gwr 			switch (XY_STATE(iorq->mode)) {
   1630   1.1       gwr 			case XY_SUB_NORM:
   1631   1.1       gwr 			    iorq->buf->b_error = EIO;
   1632   1.1       gwr 			    iorq->buf->b_flags |= B_ERROR;
   1633   1.1       gwr 			    iorq->buf->b_resid =
   1634   1.1       gwr 			       iorq->sectcnt * XYFM_BPS;
   1635   1.1       gwr 				/* Sun3: map/unmap regardless of B_PHYS */
   1636   1.1       gwr 				dvma_mapout(iorq->dbufbase,
   1637   1.1       gwr 				            iorq->buf->b_bcount);
   1638   1.1       gwr 			    iorq->xy->xyq.b_actf =
   1639   1.4       gwr 					iorq->buf->b_actf;
   1640   1.2   thorpej 			    disk_unbusy(&iorq->xy->sc_dk,
   1641   1.4       gwr 					        (iorq->buf->b_bcount -
   1642   1.4       gwr 					         iorq->buf->b_resid));
   1643   1.1       gwr 			    biodone(iorq->buf);
   1644   1.1       gwr 			    iorq->mode = XY_SUB_FREE;
   1645   1.1       gwr 			    break;
   1646   1.1       gwr 			case XY_SUB_WAIT:
   1647   1.1       gwr 			    wakeup(iorq);
   1648   1.1       gwr 			case XY_SUB_POLL:
   1649   1.1       gwr 			    iorq->mode =
   1650   1.1       gwr 				XY_NEWSTATE(iorq->mode, XY_SUB_DONE);
   1651   1.1       gwr 			    break;
   1652   1.1       gwr 			}
   1653   1.1       gwr 
   1654   1.1       gwr 		} else {
   1655   1.1       gwr 
   1656   1.1       gwr 			/* resubmit, no need to do anything here */
   1657   1.1       gwr 		}
   1658   1.1       gwr 	}
   1659   1.1       gwr 
   1660   1.1       gwr 	/*
   1661   1.1       gwr 	 * now, if stuff is waiting, start it.
   1662   1.1       gwr 	 * since we just reset it should go
   1663   1.1       gwr 	 */
   1664   1.1       gwr 	xyc_start(xycsc, NULL);
   1665   1.1       gwr 
   1666   1.1       gwr 	return (retval);
   1667   1.1       gwr }
   1668   1.1       gwr 
   1669   1.1       gwr /*
   1670   1.1       gwr  * xyc_start: start waiting buffers
   1671   1.1       gwr  */
   1672   1.1       gwr 
   1673  1.17       gwr void
   1674   1.1       gwr xyc_start(xycsc, iorq)
   1675   1.1       gwr 	struct xyc_softc *xycsc;
   1676   1.1       gwr 	struct xy_iorq *iorq;
   1677   1.1       gwr 
   1678   1.1       gwr {
   1679   1.1       gwr 	int lcv;
   1680   1.1       gwr 	struct xy_softc *xy;
   1681   1.1       gwr 
   1682   1.1       gwr 	if (iorq == NULL) {
   1683   1.1       gwr 		for (lcv = 0; lcv < XYC_MAXDEV ; lcv++) {
   1684   1.1       gwr 			if ((xy = xycsc->sc_drives[lcv]) == NULL) continue;
   1685   1.1       gwr 			if (xy->xyq.b_actf == NULL) continue;
   1686   1.1       gwr 			if (xy->xyrq->mode != XY_SUB_FREE) continue;
   1687   1.1       gwr 			xyc_startbuf(xycsc, xy, xy->xyq.b_actf);
   1688   1.1       gwr 		}
   1689   1.1       gwr 	}
   1690   1.1       gwr 	xyc_submit_iorq(xycsc, iorq, XY_SUB_NOQ);
   1691   1.1       gwr }
   1692   1.1       gwr 
   1693   1.1       gwr /*
   1694  1.17       gwr  * xyc_remove_iorq: remove "done" IOPB's.
   1695   1.1       gwr  */
   1696   1.1       gwr 
   1697  1.17       gwr int
   1698   1.1       gwr xyc_remove_iorq(xycsc)
   1699   1.1       gwr 	struct xyc_softc *xycsc;
   1700   1.1       gwr 
   1701   1.1       gwr {
   1702   1.1       gwr 	int     errno, rq, comm, errs;
   1703   1.1       gwr 	struct xyc *xyc = xycsc->xyc;
   1704   1.1       gwr 	u_long  addr;
   1705   1.1       gwr 	struct xy_iopb *iopb;
   1706   1.1       gwr 	struct xy_iorq *iorq;
   1707   1.1       gwr 	struct buf *bp;
   1708   1.1       gwr 
   1709   1.1       gwr 	if (xyc->xyc_csr & XYC_DERR) {
   1710   1.1       gwr 		/*
   1711   1.1       gwr 		 * DOUBLE ERROR: should never happen under normal use. This
   1712   1.1       gwr 		 * error is so bad, you can't even tell which IOPB is bad, so
   1713   1.1       gwr 		 * we dump them all.
   1714   1.1       gwr 		 */
   1715   1.1       gwr 		errno = XY_ERR_DERR;
   1716  1.11  christos 		printf("%s: DOUBLE ERROR!\n", xycsc->sc_dev.dv_xname);
   1717   1.1       gwr 		if (xyc_reset(xycsc, 0, XY_RSET_ALL, errno, 0) != XY_ERR_AOK) {
   1718  1.11  christos 			printf("%s: soft reset failed!\n",
   1719   1.1       gwr 				xycsc->sc_dev.dv_xname);
   1720   1.1       gwr 			panic("xyc_remove_iorq: controller DEAD");
   1721   1.1       gwr 		}
   1722   1.1       gwr 		return (XY_ERR_AOK);
   1723   1.1       gwr 	}
   1724   1.1       gwr 
   1725   1.1       gwr 	/*
   1726   1.1       gwr 	 * get iopb that is done, loop down the chain
   1727   1.1       gwr 	 */
   1728   1.1       gwr 
   1729   1.1       gwr 	if (xyc->xyc_csr & XYC_ERR) {
   1730   1.7     chuck 		xyc->xyc_csr = XYC_ERR; /* clear error condition */
   1731   1.1       gwr 	}
   1732   1.1       gwr 	if (xyc->xyc_csr & XYC_IPND) {
   1733   1.7     chuck 		xyc->xyc_csr = XYC_IPND; /* clear interrupt */
   1734   1.1       gwr 	}
   1735   1.1       gwr 
   1736   1.1       gwr 	for (rq = 0; rq < XYC_MAXIOPB; rq++) {
   1737   1.1       gwr 		iorq = xycsc->xy_chain[rq];
   1738   1.1       gwr 		if (iorq == NULL) break; /* done ! */
   1739   1.1       gwr 		if (iorq->mode == 0 || XY_STATE(iorq->mode) == XY_SUB_DONE)
   1740   1.1       gwr 			continue;	/* free, or done */
   1741   1.1       gwr 		iopb = iorq->iopb;
   1742   1.1       gwr 		if (iopb->done == 0)
   1743   1.1       gwr 			continue;	/* not done yet */
   1744   1.1       gwr 
   1745   1.1       gwr 		comm = iopb->com;
   1746   1.1       gwr 		errs = iopb->errs;
   1747   1.1       gwr 
   1748   1.1       gwr 		if (errs)
   1749   1.1       gwr 			iorq->errno = iopb->errno;
   1750   1.1       gwr 		else
   1751   1.1       gwr 			iorq->errno = 0;
   1752   1.1       gwr 
   1753   1.1       gwr 		/* handle non-fatal errors */
   1754   1.1       gwr 
   1755   1.1       gwr 		if (errs &&
   1756   1.1       gwr 		    xyc_error(xycsc, iorq, iopb, comm) == XY_ERR_AOK)
   1757   1.1       gwr 			continue;	/* AOK: we resubmitted it */
   1758   1.1       gwr 
   1759   1.1       gwr 
   1760   1.1       gwr 		/* this iorq is now done (hasn't been restarted or anything) */
   1761   1.1       gwr 
   1762   1.1       gwr 		if ((iorq->mode & XY_MODE_VERBO) && iorq->lasterror)
   1763   1.1       gwr 			xyc_perror(iorq, iopb, 0);
   1764   1.1       gwr 
   1765   1.1       gwr 		/* now, if read/write check to make sure we got all the data
   1766   1.1       gwr 		 * we needed. (this may not be the case if we got an error in
   1767   1.1       gwr 		 * the middle of a multisector request).   */
   1768   1.1       gwr 
   1769   1.1       gwr 		if ((iorq->mode & XY_MODE_B144) != 0 && errs == 0 &&
   1770   1.1       gwr 		    (comm == XYCMD_RD || comm == XYCMD_WR)) {
   1771   1.1       gwr 			/* we just successfully processed a bad144 sector
   1772   1.1       gwr 			 * note: if we are in bad 144 mode, the pointers have
   1773   1.1       gwr 			 * been advanced already (see above) and are pointing
   1774   1.1       gwr 			 * at the bad144 sector.   to exit bad144 mode, we
   1775   1.1       gwr 			 * must advance the pointers 1 sector and issue a new
   1776   1.1       gwr 			 * request if there are still sectors left to process
   1777  1.17       gwr 			 *
   1778   1.1       gwr 			 */
   1779   1.1       gwr 			XYC_ADVANCE(iorq, 1);	/* advance 1 sector */
   1780   1.1       gwr 
   1781   1.1       gwr 			/* exit b144 mode */
   1782   1.1       gwr 			iorq->mode = iorq->mode & (~XY_MODE_B144);
   1783   1.1       gwr 
   1784   1.1       gwr 			if (iorq->sectcnt) {	/* more to go! */
   1785   1.1       gwr 				iorq->lasterror = iorq->errno = iopb->errno = 0;
   1786   1.1       gwr 				iopb->errs = iopb->done = 0;
   1787   1.1       gwr 				iorq->tries = 0;
   1788   1.1       gwr 				iopb->scnt = iorq->sectcnt;
   1789   1.1       gwr 				iopb->cyl = iorq->blockno /
   1790   1.1       gwr 						iorq->xy->sectpercyl;
   1791   1.1       gwr 				iopb->head =
   1792   1.1       gwr 					(iorq->blockno / iorq->xy->nhead) %
   1793   1.1       gwr 						iorq->xy->nhead;
   1794   1.1       gwr 				iopb->sect = iorq->blockno % XYFM_BPS;
   1795  1.19       gwr 				addr = dvma_kvtopa(iorq->dbuf, xycsc->bustype);
   1796   1.1       gwr 				iopb->dataa = (addr & 0xffff);
   1797   1.1       gwr 				iopb->datar = ((addr & 0xff0000) >> 16);
   1798   1.1       gwr 				/* will resubit at end */
   1799   1.1       gwr 				continue;
   1800   1.1       gwr 			}
   1801   1.1       gwr 		}
   1802   1.1       gwr 		/* final cleanup, totally done with this request */
   1803   1.1       gwr 
   1804   1.1       gwr 		switch (XY_STATE(iorq->mode)) {
   1805   1.1       gwr 		case XY_SUB_NORM:
   1806   1.1       gwr 			bp = iorq->buf;
   1807   1.1       gwr 			if (errs) {
   1808   1.1       gwr 				bp->b_error = EIO;
   1809   1.1       gwr 				bp->b_flags |= B_ERROR;
   1810   1.1       gwr 				bp->b_resid = iorq->sectcnt * XYFM_BPS;
   1811   1.1       gwr 			} else {
   1812   1.1       gwr 				bp->b_resid = 0;	/* done */
   1813   1.1       gwr 			}
   1814   1.1       gwr 			/* Sun3: map/unmap regardless of B_PHYS */
   1815   1.1       gwr 			dvma_mapout(iorq->dbufbase,
   1816   1.1       gwr 					    iorq->buf->b_bcount);
   1817   1.1       gwr 			iorq->xy->xyq.b_actf = bp->b_actf;
   1818   1.2   thorpej 			disk_unbusy(&iorq->xy->sc_dk,
   1819   1.2   thorpej 			    (bp->b_bcount - bp->b_resid));
   1820  1.17       gwr 			iorq->mode = XY_SUB_FREE;
   1821   1.1       gwr 			biodone(bp);
   1822   1.1       gwr 			break;
   1823   1.1       gwr 		case XY_SUB_WAIT:
   1824   1.1       gwr 			iorq->mode = XY_NEWSTATE(iorq->mode, XY_SUB_DONE);
   1825   1.1       gwr 			wakeup(iorq);
   1826   1.1       gwr 			break;
   1827   1.1       gwr 		case XY_SUB_POLL:
   1828   1.1       gwr 			iorq->mode = XY_NEWSTATE(iorq->mode, XY_SUB_DONE);
   1829   1.1       gwr 			break;
   1830   1.1       gwr 		}
   1831   1.1       gwr 	}
   1832   1.1       gwr 
   1833   1.1       gwr 	return (XY_ERR_AOK);
   1834   1.1       gwr }
   1835   1.1       gwr 
   1836   1.1       gwr /*
   1837   1.1       gwr  * xyc_perror: print error.
   1838   1.1       gwr  * - if still_trying is true: we got an error, retried and got a
   1839   1.1       gwr  *   different error.  in that case lasterror is the old error,
   1840   1.1       gwr  *   and errno is the new one.
   1841   1.1       gwr  * - if still_trying is not true, then if we ever had an error it
   1842   1.1       gwr  *   is in lasterror. also, if iorq->errno == 0, then we recovered
   1843   1.1       gwr  *   from that error (otherwise iorq->errno == iorq->lasterror).
   1844   1.1       gwr  */
   1845  1.17       gwr void
   1846   1.1       gwr xyc_perror(iorq, iopb, still_trying)
   1847   1.1       gwr 	struct xy_iorq *iorq;
   1848   1.1       gwr 	struct xy_iopb *iopb;
   1849   1.1       gwr 	int     still_trying;
   1850   1.1       gwr 
   1851   1.1       gwr {
   1852   1.1       gwr 
   1853   1.1       gwr 	int     error = iorq->lasterror;
   1854   1.1       gwr 
   1855  1.11  christos 	printf("%s", (iorq->xy) ? iorq->xy->sc_dev.dv_xname
   1856   1.1       gwr 	    : iorq->xyc->sc_dev.dv_xname);
   1857   1.1       gwr 	if (iorq->buf)
   1858  1.11  christos 		printf("%c: ", 'a' + DISKPART(iorq->buf->b_dev));
   1859   1.1       gwr 	if (iopb->com == XYCMD_RD || iopb->com == XYCMD_WR)
   1860  1.11  christos 		printf("%s %d/%d/%d: ",
   1861   1.1       gwr 			(iopb->com == XYCMD_RD) ? "read" : "write",
   1862   1.1       gwr 			iopb->cyl, iopb->head, iopb->sect);
   1863  1.11  christos 	printf("%s", xyc_e2str(error));
   1864   1.1       gwr 
   1865   1.1       gwr 	if (still_trying)
   1866  1.11  christos 		printf(" [still trying, new error=%s]", xyc_e2str(iorq->errno));
   1867   1.1       gwr 	else
   1868   1.1       gwr 		if (iorq->errno == 0)
   1869  1.11  christos 			printf(" [recovered in %d tries]", iorq->tries);
   1870   1.1       gwr 
   1871  1.11  christos 	printf("\n");
   1872   1.1       gwr }
   1873   1.1       gwr 
   1874   1.1       gwr /*
   1875   1.1       gwr  * xyc_error: non-fatal error encountered... recover.
   1876   1.1       gwr  * return AOK if resubmitted, return FAIL if this iopb is done
   1877   1.1       gwr  */
   1878  1.17       gwr int
   1879   1.1       gwr xyc_error(xycsc, iorq, iopb, comm)
   1880   1.1       gwr 	struct xyc_softc *xycsc;
   1881   1.1       gwr 	struct xy_iorq *iorq;
   1882   1.1       gwr 	struct xy_iopb *iopb;
   1883   1.1       gwr 	int     comm;
   1884   1.1       gwr 
   1885   1.1       gwr {
   1886   1.1       gwr 	int     errno = iorq->errno;
   1887   1.1       gwr 	int     erract = xyc_entoact(errno);
   1888   1.1       gwr 	int     oldmode, advance, i;
   1889   1.1       gwr 
   1890   1.1       gwr 	if (erract == XY_ERA_RSET) {	/* some errors require a reset */
   1891   1.1       gwr 		oldmode = iorq->mode;
   1892   1.1       gwr 		iorq->mode = XY_SUB_DONE | (~XY_SUB_MASK & oldmode);
   1893   1.1       gwr 		/* make xyc_start ignore us */
   1894   1.1       gwr 		xyc_reset(xycsc, 1, XY_RSET_NONE, errno, iorq->xy);
   1895   1.1       gwr 		iorq->mode = oldmode;
   1896   1.1       gwr 	}
   1897   1.1       gwr 	/* check for read/write to a sector in bad144 table if bad: redirect
   1898   1.1       gwr 	 * request to bad144 area */
   1899   1.1       gwr 
   1900   1.1       gwr 	if ((comm == XYCMD_RD || comm == XYCMD_WR) &&
   1901   1.1       gwr 	    (iorq->mode & XY_MODE_B144) == 0) {
   1902   1.1       gwr 		advance = iorq->sectcnt - iopb->scnt;
   1903   1.1       gwr 		XYC_ADVANCE(iorq, advance);
   1904   1.1       gwr 		if ((i = isbad(&iorq->xy->dkb, iorq->blockno / iorq->xy->sectpercyl,
   1905   1.1       gwr 			    (iorq->blockno / iorq->xy->nsect) % iorq->xy->nhead,
   1906   1.1       gwr 			    iorq->blockno % iorq->xy->nsect)) != -1) {
   1907   1.1       gwr 			iorq->mode |= XY_MODE_B144;	/* enter bad144 mode &
   1908   1.1       gwr 							 * redirect */
   1909   1.1       gwr 			iopb->errno = iopb->done = iopb->errs = 0;
   1910   1.1       gwr 			iopb->scnt = 1;
   1911   1.1       gwr 			iopb->cyl = (iorq->xy->ncyl + iorq->xy->acyl) - 2;
   1912   1.1       gwr 			/* second to last acyl */
   1913   1.1       gwr 			i = iorq->xy->sectpercyl - 1 - i;	/* follow bad144
   1914   1.1       gwr 								 * standard */
   1915   1.1       gwr 			iopb->head = i / iorq->xy->nhead;
   1916   1.1       gwr 			iopb->sect = i % iorq->xy->nhead;
   1917   1.1       gwr 			/* will resubmit when we come out of remove_iorq */
   1918   1.1       gwr 			return (XY_ERR_AOK);	/* recovered! */
   1919   1.1       gwr 		}
   1920   1.1       gwr 	}
   1921   1.1       gwr 
   1922   1.1       gwr 	/*
   1923   1.1       gwr 	 * it isn't a bad144 sector, must be real error! see if we can retry
   1924   1.1       gwr 	 * it?
   1925   1.1       gwr 	 */
   1926   1.1       gwr 	if ((iorq->mode & XY_MODE_VERBO) && iorq->lasterror)
   1927   1.1       gwr 		xyc_perror(iorq, iopb, 1);	/* inform of error state
   1928   1.1       gwr 						 * change */
   1929   1.1       gwr 	iorq->lasterror = errno;
   1930   1.1       gwr 
   1931   1.1       gwr 	if ((erract == XY_ERA_RSET || erract == XY_ERA_HARD)
   1932   1.1       gwr 	    && iorq->tries < XYC_MAXTRIES) {	/* retry? */
   1933   1.1       gwr 		iorq->tries++;
   1934   1.1       gwr 		iorq->errno = iopb->errno = iopb->done = iopb->errs = 0;
   1935   1.1       gwr 		/* will resubmit at end of remove_iorq */
   1936   1.1       gwr 		return (XY_ERR_AOK);	/* recovered! */
   1937   1.1       gwr 	}
   1938   1.1       gwr 
   1939   1.1       gwr 	/* failed to recover from this error */
   1940   1.1       gwr 	return (XY_ERR_FAIL);
   1941   1.1       gwr }
   1942   1.1       gwr 
   1943   1.1       gwr /*
   1944   1.1       gwr  * xyc_tick: make sure xy is still alive and ticking (err, kicking).
   1945   1.1       gwr  */
   1946  1.17       gwr void
   1947   1.1       gwr xyc_tick(arg)
   1948   1.1       gwr 	void   *arg;
   1949   1.1       gwr 
   1950   1.1       gwr {
   1951   1.1       gwr 	struct xyc_softc *xycsc = arg;
   1952   1.1       gwr 	int     lcv, s, reset = 0;
   1953   1.1       gwr 
   1954   1.1       gwr 	/* reduce ttl for each request if one goes to zero, reset xyc */
   1955   1.1       gwr 	s = splbio();
   1956   1.1       gwr 	for (lcv = 0; lcv < XYC_MAXIOPB; lcv++) {
   1957   1.1       gwr 		if (xycsc->reqs[lcv].mode == 0 ||
   1958   1.1       gwr 		    XY_STATE(xycsc->reqs[lcv].mode) == XY_SUB_DONE)
   1959   1.1       gwr 			continue;
   1960   1.1       gwr 		xycsc->reqs[lcv].ttl--;
   1961   1.1       gwr 		if (xycsc->reqs[lcv].ttl == 0)
   1962   1.1       gwr 			reset = 1;
   1963   1.1       gwr 	}
   1964   1.1       gwr 	if (reset) {
   1965  1.11  christos 		printf("%s: watchdog timeout\n", xycsc->sc_dev.dv_xname);
   1966   1.1       gwr 		xyc_reset(xycsc, 0, XY_RSET_NONE, XY_ERR_FAIL, NULL);
   1967   1.1       gwr 	}
   1968   1.1       gwr 	splx(s);
   1969   1.1       gwr 
   1970   1.1       gwr 	/* until next time */
   1971   1.1       gwr 
   1972   1.1       gwr 	timeout(xyc_tick, xycsc, XYC_TICKCNT);
   1973   1.1       gwr }
   1974   1.1       gwr 
   1975   1.1       gwr /*
   1976   1.1       gwr  * xyc_ioctlcmd: this function provides a user level interface to the
   1977   1.1       gwr  * controller via ioctl.   this allows "format" programs to be written
   1978   1.1       gwr  * in user code, and is also useful for some debugging.   we return
   1979   1.1       gwr  * an error code.   called at user priority.
   1980   1.1       gwr  *
   1981   1.1       gwr  * XXX missing a few commands (see the 7053 driver for ideas)
   1982   1.1       gwr  */
   1983  1.17       gwr int
   1984   1.1       gwr xyc_ioctlcmd(xy, dev, xio)
   1985   1.1       gwr 	struct xy_softc *xy;
   1986   1.1       gwr 	dev_t   dev;
   1987   1.1       gwr 	struct xd_iocmd *xio;
   1988   1.1       gwr 
   1989   1.1       gwr {
   1990  1.17       gwr 	int     s, err, rqno;
   1991  1.17       gwr 	void * dvmabuf = NULL;
   1992   1.1       gwr 	struct xyc_softc *xycsc;
   1993   1.1       gwr 
   1994   1.1       gwr 	/* check sanity of requested command */
   1995   1.1       gwr 
   1996   1.1       gwr 	switch (xio->cmd) {
   1997   1.1       gwr 
   1998   1.1       gwr 	case XYCMD_NOP:	/* no op: everything should be zero */
   1999   1.1       gwr 		if (xio->subfn || xio->dptr || xio->dlen ||
   2000   1.1       gwr 		    xio->block || xio->sectcnt)
   2001   1.1       gwr 			return (EINVAL);
   2002   1.1       gwr 		break;
   2003   1.1       gwr 
   2004   1.1       gwr 	case XYCMD_RD:		/* read / write sectors (up to XD_IOCMD_MAXS) */
   2005   1.1       gwr 	case XYCMD_WR:
   2006   1.1       gwr 		if (xio->subfn || xio->sectcnt > XD_IOCMD_MAXS ||
   2007   1.1       gwr 		    xio->sectcnt * XYFM_BPS != xio->dlen || xio->dptr == NULL)
   2008   1.1       gwr 			return (EINVAL);
   2009   1.1       gwr 		break;
   2010   1.1       gwr 
   2011   1.1       gwr 	case XYCMD_SK:		/* seek: doesn't seem useful to export this */
   2012   1.1       gwr 		return (EINVAL);
   2013   1.1       gwr 
   2014   1.1       gwr 		break;
   2015   1.1       gwr 
   2016   1.1       gwr 	default:
   2017   1.1       gwr 		return (EINVAL);/* ??? */
   2018   1.1       gwr 	}
   2019   1.1       gwr 
   2020   1.1       gwr 	/* create DVMA buffer for request if needed */
   2021   1.1       gwr 
   2022   1.1       gwr 	if (xio->dlen) {
   2023   1.1       gwr 		dvmabuf = dvma_malloc(xio->dlen);
   2024   1.1       gwr 		if (xio->cmd == XYCMD_WR) {
   2025  1.17       gwr 			err = copyin(xio->dptr, dvmabuf, xio->dlen);
   2026  1.17       gwr 			if (err) {
   2027   1.1       gwr 				dvma_free(dvmabuf, xio->dlen);
   2028   1.1       gwr 				return (err);
   2029   1.1       gwr 			}
   2030   1.1       gwr 		}
   2031   1.1       gwr 	}
   2032   1.1       gwr 	/* do it! */
   2033   1.1       gwr 
   2034   1.1       gwr 	err = 0;
   2035   1.1       gwr 	xycsc = xy->parent;
   2036   1.1       gwr 	s = splbio();
   2037   1.1       gwr 	rqno = xyc_cmd(xycsc, xio->cmd, xio->subfn, xy->xy_drive, xio->block,
   2038   1.1       gwr 	    xio->sectcnt, dvmabuf, XY_SUB_WAIT);
   2039   1.1       gwr 	if (rqno == XY_ERR_FAIL) {
   2040   1.1       gwr 		err = EIO;
   2041   1.1       gwr 		goto done;
   2042   1.1       gwr 	}
   2043   1.1       gwr 	xio->errno = xycsc->ciorq->errno;
   2044   1.1       gwr 	xio->tries = xycsc->ciorq->tries;
   2045  1.17       gwr 	XYC_DONE(xycsc, err);
   2046   1.1       gwr 
   2047   1.1       gwr 	if (xio->cmd == XYCMD_RD)
   2048   1.1       gwr 		err = copyout(dvmabuf, xio->dptr, xio->dlen);
   2049   1.1       gwr 
   2050   1.1       gwr done:
   2051   1.1       gwr 	splx(s);
   2052   1.1       gwr 	if (dvmabuf)
   2053   1.1       gwr 		dvma_free(dvmabuf, xio->dlen);
   2054   1.1       gwr 	return (err);
   2055   1.1       gwr }
   2056   1.1       gwr 
   2057   1.1       gwr /*
   2058   1.1       gwr  * xyc_e2str: convert error code number into an error string
   2059   1.1       gwr  */
   2060   1.1       gwr char *
   2061   1.1       gwr xyc_e2str(no)
   2062   1.1       gwr 	int     no;
   2063   1.1       gwr {
   2064   1.1       gwr 	switch (no) {
   2065   1.1       gwr 	case XY_ERR_FAIL:
   2066   1.1       gwr 		return ("Software fatal error");
   2067   1.1       gwr 	case XY_ERR_DERR:
   2068   1.1       gwr 		return ("DOUBLE ERROR");
   2069   1.1       gwr 	case XY_ERR_AOK:
   2070   1.1       gwr 		return ("Successful completion");
   2071   1.1       gwr 	case XY_ERR_IPEN:
   2072   1.1       gwr 		return("Interrupt pending");
   2073   1.1       gwr 	case XY_ERR_BCFL:
   2074   1.1       gwr 		return("Busy conflict");
   2075   1.1       gwr 	case XY_ERR_TIMO:
   2076   1.1       gwr 		return("Operation timeout");
   2077   1.1       gwr 	case XY_ERR_NHDR:
   2078   1.1       gwr 		return("Header not found");
   2079   1.1       gwr 	case XY_ERR_HARD:
   2080   1.1       gwr 		return("Hard ECC error");
   2081   1.1       gwr 	case XY_ERR_ICYL:
   2082   1.1       gwr 		return("Illegal cylinder address");
   2083   1.1       gwr 	case XY_ERR_ISEC:
   2084   1.1       gwr 		return("Illegal sector address");
   2085   1.1       gwr 	case XY_ERR_SMAL:
   2086   1.1       gwr 		return("Last sector too small");
   2087   1.1       gwr 	case XY_ERR_SACK:
   2088   1.1       gwr 		return("Slave ACK error (non-existent memory)");
   2089   1.1       gwr 	case XY_ERR_CHER:
   2090   1.1       gwr 		return("Cylinder and head/header error");
   2091   1.1       gwr 	case XY_ERR_SRTR:
   2092   1.1       gwr 		return("Auto-seek retry successful");
   2093   1.1       gwr 	case XY_ERR_WPRO:
   2094   1.1       gwr 		return("Write-protect error");
   2095   1.1       gwr 	case XY_ERR_UIMP:
   2096   1.1       gwr 		return("Unimplemented command");
   2097   1.1       gwr 	case XY_ERR_DNRY:
   2098   1.1       gwr 		return("Drive not ready");
   2099   1.1       gwr 	case XY_ERR_SZER:
   2100   1.1       gwr 		return("Sector count zero");
   2101   1.1       gwr 	case XY_ERR_DFLT:
   2102   1.1       gwr 		return("Drive faulted");
   2103   1.1       gwr 	case XY_ERR_ISSZ:
   2104   1.1       gwr 		return("Illegal sector size");
   2105   1.1       gwr 	case XY_ERR_SLTA:
   2106   1.1       gwr 		return("Self test A");
   2107   1.1       gwr 	case XY_ERR_SLTB:
   2108   1.1       gwr 		return("Self test B");
   2109   1.1       gwr 	case XY_ERR_SLTC:
   2110   1.1       gwr 		return("Self test C");
   2111   1.1       gwr 	case XY_ERR_SOFT:
   2112   1.1       gwr 		return("Soft ECC error");
   2113   1.1       gwr 	case XY_ERR_SFOK:
   2114   1.1       gwr 		return("Soft ECC error recovered");
   2115   1.1       gwr 	case XY_ERR_IHED:
   2116   1.1       gwr 		return("Illegal head");
   2117   1.1       gwr 	case XY_ERR_DSEQ:
   2118   1.1       gwr 		return("Disk sequencer error");
   2119   1.1       gwr 	case XY_ERR_SEEK:
   2120   1.1       gwr 		return("Seek error");
   2121   1.1       gwr 	default:
   2122   1.1       gwr 		return ("Unknown error");
   2123   1.1       gwr 	}
   2124   1.1       gwr }
   2125   1.1       gwr 
   2126   1.1       gwr int
   2127   1.1       gwr xyc_entoact(errno)
   2128   1.1       gwr 
   2129   1.1       gwr int errno;
   2130   1.1       gwr 
   2131   1.1       gwr {
   2132   1.1       gwr   switch (errno) {
   2133   1.1       gwr     case XY_ERR_FAIL:	case XY_ERR_DERR:	case XY_ERR_IPEN:
   2134   1.1       gwr     case XY_ERR_BCFL:	case XY_ERR_ICYL:	case XY_ERR_ISEC:
   2135   1.1       gwr     case XY_ERR_UIMP:	case XY_ERR_SZER:	case XY_ERR_ISSZ:
   2136   1.1       gwr     case XY_ERR_SLTA:	case XY_ERR_SLTB:	case XY_ERR_SLTC:
   2137   1.1       gwr     case XY_ERR_IHED:	case XY_ERR_SACK:	case XY_ERR_SMAL:
   2138   1.1       gwr 
   2139   1.1       gwr 	return(XY_ERA_PROG); /* program error ! */
   2140   1.1       gwr 
   2141   1.1       gwr     case XY_ERR_TIMO:	case XY_ERR_NHDR:	case XY_ERR_HARD:
   2142   1.1       gwr     case XY_ERR_DNRY:	case XY_ERR_CHER:	case XY_ERR_SEEK:
   2143   1.1       gwr     case XY_ERR_SOFT:
   2144   1.1       gwr 
   2145   1.1       gwr 	return(XY_ERA_HARD); /* hard error, retry */
   2146   1.1       gwr 
   2147   1.1       gwr     case XY_ERR_DFLT:	case XY_ERR_DSEQ:
   2148   1.1       gwr 
   2149   1.1       gwr 	return(XY_ERA_RSET); /* hard error reset */
   2150   1.1       gwr 
   2151   1.1       gwr     case XY_ERR_SRTR:	case XY_ERR_SFOK:	case XY_ERR_AOK:
   2152   1.1       gwr 
   2153   1.1       gwr 	return(XY_ERA_SOFT); /* an FYI error */
   2154   1.1       gwr 
   2155  1.17       gwr     case XY_ERR_WPRO:
   2156   1.1       gwr 
   2157   1.1       gwr 	return(XY_ERA_WPRO); /* write protect */
   2158   1.1       gwr   }
   2159   1.1       gwr 
   2160   1.1       gwr   return(XY_ERA_PROG); /* ??? */
   2161   1.1       gwr }
   2162