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fd.c revision 1.26
      1  1.26   minoura /*	$NetBSD: fd.c,v 1.26 1999/03/18 16:15:53 minoura Exp $	*/
      2  1.22   mycroft 
      3  1.22   mycroft /*-
      4  1.22   mycroft  * Copyright (c) 1998 The NetBSD Foundation, Inc.
      5  1.22   mycroft  * All rights reserved.
      6  1.22   mycroft  *
      7  1.22   mycroft  * This code is derived from software contributed to The NetBSD Foundation
      8  1.25   minoura  * by Charles M. Hannum and Minoura Makoto.
      9  1.22   mycroft  *
     10  1.22   mycroft  * Redistribution and use in source and binary forms, with or without
     11  1.22   mycroft  * modification, are permitted provided that the following conditions
     12  1.22   mycroft  * are met:
     13  1.22   mycroft  * 1. Redistributions of source code must retain the above copyright
     14  1.22   mycroft  *    notice, this list of conditions and the following disclaimer.
     15  1.22   mycroft  * 2. Redistributions in binary form must reproduce the above copyright
     16  1.22   mycroft  *    notice, this list of conditions and the following disclaimer in the
     17  1.22   mycroft  *    documentation and/or other materials provided with the distribution.
     18  1.22   mycroft  * 3. All advertising materials mentioning features or use of this software
     19  1.22   mycroft  *    must display the following acknowledgement:
     20  1.22   mycroft  *        This product includes software developed by the NetBSD
     21  1.22   mycroft  *        Foundation, Inc. and its contributors.
     22  1.22   mycroft  * 4. Neither the name of The NetBSD Foundation nor the names of its
     23  1.22   mycroft  *    contributors may be used to endorse or promote products derived
     24  1.22   mycroft  *    from this software without specific prior written permission.
     25  1.22   mycroft  *
     26  1.22   mycroft  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     27  1.22   mycroft  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     28  1.22   mycroft  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     29  1.22   mycroft  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     30  1.22   mycroft  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     31  1.22   mycroft  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     32  1.22   mycroft  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     33  1.22   mycroft  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     34  1.22   mycroft  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     35  1.22   mycroft  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     36  1.22   mycroft  * POSSIBILITY OF SUCH DAMAGE.
     37  1.22   mycroft  */
     38   1.1       oki 
     39   1.1       oki /*-
     40   1.1       oki  * Copyright (c) 1990 The Regents of the University of California.
     41   1.1       oki  * All rights reserved.
     42   1.1       oki  *
     43   1.1       oki  * This code is derived from software contributed to Berkeley by
     44   1.1       oki  * Don Ahn.
     45   1.1       oki  *
     46   1.1       oki  * Redistribution and use in source and binary forms, with or without
     47   1.1       oki  * modification, are permitted provided that the following conditions
     48   1.1       oki  * are met:
     49   1.1       oki  * 1. Redistributions of source code must retain the above copyright
     50   1.1       oki  *    notice, this list of conditions and the following disclaimer.
     51   1.1       oki  * 2. Redistributions in binary form must reproduce the above copyright
     52   1.1       oki  *    notice, this list of conditions and the following disclaimer in the
     53   1.1       oki  *    documentation and/or other materials provided with the distribution.
     54   1.1       oki  * 3. All advertising materials mentioning features or use of this software
     55   1.1       oki  *    must display the following acknowledgement:
     56   1.1       oki  *	This product includes software developed by the University of
     57   1.1       oki  *	California, Berkeley and its contributors.
     58   1.1       oki  * 4. Neither the name of the University nor the names of its contributors
     59   1.1       oki  *    may be used to endorse or promote products derived from this software
     60   1.1       oki  *    without specific prior written permission.
     61   1.1       oki  *
     62   1.1       oki  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     63   1.1       oki  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     64   1.1       oki  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     65   1.1       oki  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     66   1.1       oki  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     67   1.1       oki  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     68   1.1       oki  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     69   1.1       oki  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     70   1.1       oki  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     71   1.1       oki  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     72   1.1       oki  * SUCH DAMAGE.
     73   1.1       oki  *
     74   1.1       oki  *	@(#)fd.c	7.4 (Berkeley) 5/25/91
     75   1.1       oki  */
     76  1.19  jonathan 
     77  1.25   minoura #include "rnd.h"
     78  1.19  jonathan #include "opt_ddb.h"
     79  1.25   minoura #include "opt_uvm.h"
     80   1.1       oki 
     81   1.1       oki #include <sys/param.h>
     82   1.1       oki #include <sys/systm.h>
     83   1.1       oki #include <sys/kernel.h>
     84   1.1       oki #include <sys/conf.h>
     85   1.1       oki #include <sys/file.h>
     86   1.1       oki #include <sys/stat.h>
     87   1.1       oki #include <sys/ioctl.h>
     88   1.1       oki #include <sys/malloc.h>
     89   1.1       oki #include <sys/device.h>
     90   1.1       oki #include <sys/disklabel.h>
     91   1.1       oki #include <sys/dkstat.h>
     92   1.1       oki #include <sys/disk.h>
     93   1.1       oki #include <sys/buf.h>
     94   1.1       oki #include <sys/uio.h>
     95   1.1       oki #include <sys/syslog.h>
     96   1.1       oki #include <sys/queue.h>
     97  1.25   minoura #include <sys/fdio.h>
     98  1.25   minoura #if NRND > 0
     99  1.25   minoura #include <sys/rnd.h>
    100  1.25   minoura #endif
    101  1.25   minoura 
    102  1.25   minoura #if defined(UVM)
    103  1.25   minoura #include <vm/vm.h>
    104  1.25   minoura #include <uvm/uvm_extern.h>
    105  1.25   minoura #endif
    106   1.1       oki 
    107  1.25   minoura #include <machine/bus.h>
    108   1.1       oki #include <machine/cpu.h>
    109   1.1       oki 
    110  1.25   minoura #include <arch/x68k/dev/intiovar.h>
    111  1.25   minoura #include <arch/x68k/dev/dmacvar.h>
    112  1.25   minoura #include <arch/x68k/dev/fdreg.h>
    113  1.25   minoura #include <arch/x68k/dev/opmreg.h> /* for CT1 access */
    114   1.1       oki 
    115  1.12       jtk #include "locators.h"
    116  1.12       jtk 
    117  1.25   minoura #ifdef FDDEBUG
    118   1.8  christos #define DPRINTF(x)      if (fddebug) printf x
    119   1.1       oki int     fddebug = 0;
    120   1.1       oki #else
    121   1.1       oki #define DPRINTF(x)
    122   1.1       oki #endif
    123   1.1       oki 
    124   1.1       oki #define FDUNIT(dev)	(minor(dev) / 8)
    125   1.1       oki #define FDTYPE(dev)	(minor(dev) % 8)
    126   1.1       oki 
    127   1.1       oki #define b_cylin b_resid
    128   1.1       oki 
    129   1.1       oki enum fdc_state {
    130   1.1       oki 	DEVIDLE = 0,
    131   1.1       oki 	MOTORWAIT,
    132   1.1       oki 	DOSEEK,
    133   1.1       oki 	SEEKWAIT,
    134   1.1       oki 	SEEKTIMEDOUT,
    135   1.1       oki 	SEEKCOMPLETE,
    136   1.1       oki 	DOIO,
    137   1.1       oki 	IOCOMPLETE,
    138   1.1       oki 	IOTIMEDOUT,
    139   1.1       oki 	DORESET,
    140   1.1       oki 	RESETCOMPLETE,
    141   1.1       oki 	RESETTIMEDOUT,
    142   1.1       oki 	DORECAL,
    143   1.1       oki 	RECALWAIT,
    144   1.1       oki 	RECALTIMEDOUT,
    145   1.1       oki 	RECALCOMPLETE,
    146   1.1       oki 	DOCOPY,
    147   1.1       oki 	DOIOHALF,
    148   1.1       oki 	COPYCOMPLETE,
    149   1.1       oki };
    150   1.1       oki 
    151   1.1       oki /* software state, per controller */
    152   1.1       oki struct fdc_softc {
    153   1.1       oki 	struct device sc_dev;		/* boilerplate */
    154  1.25   minoura 
    155  1.25   minoura 	bus_space_tag_t sc_iot;		/* intio i/o space identifier */
    156  1.25   minoura 	bus_space_handle_t sc_ioh;	/* intio io handle */
    157  1.25   minoura 	bus_dma_tag_t sc_dmat;		/* intio dma tag */
    158  1.25   minoura 	bus_dmamap_t sc_dmamap;		/* dma map */
    159  1.25   minoura 	u_int8_t *sc_addr;			/* physical address */
    160  1.25   minoura 	struct dmac_channel_stat *sc_dmachan; /* intio dma channel */
    161  1.25   minoura 	struct dmac_dma_xfer *sc_xfer;	/* dma transfer */
    162   1.1       oki 
    163   1.1       oki 	struct fd_softc *sc_fd[4];	/* pointers to children */
    164   1.1       oki 	TAILQ_HEAD(drivehead, fd_softc) sc_drives;
    165   1.1       oki 	enum fdc_state sc_state;
    166   1.1       oki 	int sc_errors;			/* number of retries so far */
    167   1.1       oki 	u_char sc_status[7];		/* copy of registers */
    168   1.1       oki } fdc_softc;
    169   1.1       oki 
    170  1.14       oki bdev_decl(fd);
    171  1.14       oki cdev_decl(fd);
    172  1.14       oki 
    173  1.25   minoura int fdcintr __P((void*));
    174  1.25   minoura void fdcreset __P((struct fdc_softc *));
    175   1.1       oki 
    176   1.1       oki /* controller driver configuration */
    177  1.20   minoura int fdcprobe __P((struct device *, struct cfdata *, void *));
    178   1.1       oki void fdcattach __P((struct device *, struct device *, void *));
    179  1.13       oki int fdprint __P((void *, const char *));
    180   1.1       oki 
    181   1.1       oki struct cfattach fdc_ca = {
    182   1.1       oki 	sizeof(struct fdc_softc), fdcprobe, fdcattach
    183   1.1       oki };
    184  1.18   msaitoh 
    185  1.18   msaitoh extern struct cfdriver fdc_cd;
    186   1.1       oki 
    187   1.1       oki /*
    188   1.1       oki  * Floppies come in various flavors, e.g., 1.2MB vs 1.44MB; here is how
    189   1.1       oki  * we tell them apart.
    190   1.1       oki  */
    191   1.1       oki struct fd_type {
    192   1.1       oki 	int	sectrac;	/* sectors per track */
    193   1.1       oki 	int	heads;		/* number of heads */
    194   1.1       oki 	int	seccyl;		/* sectors per cylinder */
    195   1.1       oki 	int	secsize;	/* size code for sectors */
    196   1.1       oki 	int	datalen;	/* data len when secsize = 0 */
    197   1.1       oki 	int	steprate;	/* step rate and head unload time */
    198   1.1       oki 	int	gap1;		/* gap len between sectors */
    199   1.1       oki 	int	gap2;		/* formatting gap */
    200  1.25   minoura 	int	cyls;		/* total num of cylinders */
    201   1.1       oki 	int	size;		/* size of disk in sectors */
    202   1.1       oki 	int	step;		/* steps per cylinder */
    203   1.1       oki 	int	rate;		/* transfer speed code */
    204   1.1       oki 	char	*name;
    205   1.1       oki };
    206   1.1       oki 
    207   1.1       oki /* The order of entries in the following table is important -- BEWARE! */
    208   1.1       oki struct fd_type fd_types[] = {
    209   1.1       oki         {  8,2,16,3,0xff,0xdf,0x35,0x74,77,1232,1,FDC_500KBPS, "1.2MB/[1024bytes/sector]"    }, /* 1.2 MB japanese format */
    210   1.1       oki         { 18,2,36,2,0xff,0xcf,0x1b,0x6c,80,2880,1,FDC_500KBPS,"1.44MB"    }, /* 1.44MB diskette */
    211   1.1       oki         { 15,2,30,2,0xff,0xdf,0x1b,0x54,80,2400,1,FDC_500KBPS, "1.2MB"    }, /* 1.2 MB AT-diskettes */
    212   1.1       oki         {  9,2,18,2,0xff,0xdf,0x23,0x50,40, 720,2,FDC_300KBPS, "360KB/AT" }, /* 360kB in 1.2MB drive */
    213   1.1       oki         {  9,2,18,2,0xff,0xdf,0x2a,0x50,40, 720,1,FDC_250KBPS, "360KB/PC" }, /* 360kB PC diskettes */
    214   1.1       oki         {  9,2,18,2,0xff,0xdf,0x2a,0x50,80,1440,1,FDC_250KBPS, "720KB"    }, /* 3.5" 720kB diskette */
    215   1.1       oki         {  9,2,18,2,0xff,0xdf,0x23,0x50,80,1440,1,FDC_300KBPS, "720KB/x"  }, /* 720kB in 1.2MB drive */
    216   1.1       oki         {  9,2,18,2,0xff,0xdf,0x2a,0x50,40, 720,2,FDC_250KBPS, "360KB/x"  }, /* 360kB in 720kB drive */
    217   1.1       oki };
    218   1.1       oki 
    219   1.1       oki /* software state, per disk (with up to 4 disks per ctlr) */
    220   1.1       oki struct fd_softc {
    221   1.1       oki 	struct device sc_dev;
    222   1.1       oki 	struct disk sc_dk;
    223   1.1       oki 
    224   1.1       oki 	struct fd_type *sc_deftype;	/* default type descriptor */
    225   1.1       oki 	struct fd_type *sc_type;	/* current type descriptor */
    226   1.1       oki 
    227   1.1       oki 	daddr_t	sc_blkno;	/* starting block number */
    228   1.1       oki 	int sc_bcount;		/* byte count left */
    229  1.25   minoura  	int sc_opts;			/* user-set options */
    230   1.1       oki 	int sc_skip;		/* bytes already transferred */
    231   1.1       oki 	int sc_nblks;		/* number of blocks currently tranferring */
    232   1.1       oki 	int sc_nbytes;		/* number of bytes currently tranferring */
    233   1.1       oki 
    234   1.1       oki 	int sc_drive;		/* physical unit number */
    235   1.1       oki 	int sc_flags;
    236   1.1       oki #define	FD_BOPEN	0x01		/* it's open */
    237   1.1       oki #define	FD_COPEN	0x02		/* it's open */
    238   1.1       oki #define	FD_OPEN		(FD_BOPEN|FD_COPEN)	/* it's open */
    239   1.1       oki #define	FD_MOTOR	0x04		/* motor should be on */
    240   1.1       oki #define	FD_MOTOR_WAIT	0x08		/* motor coming up */
    241   1.1       oki #define	FD_ALIVE	0x10		/* alive */
    242   1.1       oki 	int sc_cylin;		/* where we think the head is */
    243   1.1       oki 
    244   1.1       oki 	TAILQ_ENTRY(fd_softc) sc_drivechain;
    245   1.1       oki 	int sc_ops;		/* I/O ops since last switch */
    246   1.1       oki 	struct buf sc_q;	/* head of buf chain */
    247   1.1       oki 	u_char *sc_copybuf;	/* for secsize >=3 */
    248   1.1       oki 	u_char sc_part;		/* for secsize >=3 */
    249   1.1       oki #define	SEC_P10	0x02		/* first part */
    250   1.1       oki #define	SEC_P01	0x01		/* second part */
    251   1.1       oki #define	SEC_P11	0x03		/* both part */
    252  1.25   minoura 
    253  1.25   minoura #if NRND > 0
    254  1.25   minoura 	rndsource_element_t	rnd_source;
    255  1.25   minoura #endif
    256   1.1       oki };
    257   1.1       oki 
    258   1.1       oki /* floppy driver configuration */
    259  1.20   minoura int fdprobe __P((struct device *, struct cfdata *, void *));
    260   1.1       oki void fdattach __P((struct device *, struct device *, void *));
    261   1.1       oki 
    262   1.1       oki struct cfattach fd_ca = {
    263   1.1       oki 	sizeof(struct fd_softc), fdprobe, fdattach
    264   1.1       oki };
    265   1.1       oki 
    266  1.15   thorpej extern struct cfdriver fd_cd;
    267   1.1       oki 
    268  1.13       oki void fdstrategy __P((struct buf *));
    269   1.1       oki void fdstart __P((struct fd_softc *fd));
    270   1.1       oki 
    271   1.1       oki struct dkdriver fddkdriver = { fdstrategy };
    272   1.1       oki 
    273   1.1       oki void fd_set_motor __P((struct fdc_softc *fdc, int reset));
    274   1.1       oki void fd_motor_off __P((void *arg));
    275   1.1       oki void fd_motor_on __P((void *arg));
    276   1.1       oki int fdcresult __P((struct fdc_softc *fdc));
    277  1.25   minoura int out_fdc __P((bus_space_tag_t, bus_space_handle_t, u_char x));
    278   1.1       oki void fdcstart __P((struct fdc_softc *fdc));
    279   1.1       oki void fdcstatus __P((struct device *dv, int n, char *s));
    280   1.1       oki void fdctimeout __P((void *arg));
    281   1.1       oki void fdcpseudointr __P((void *arg));
    282   1.1       oki void fdcretry __P((struct fdc_softc *fdc));
    283   1.1       oki void fdfinish __P((struct fd_softc *fd, struct buf *bp));
    284  1.13       oki __inline struct fd_type *fd_dev_to_type __P((struct fd_softc *, dev_t));
    285  1.13       oki static int fdcpoll __P((struct fdc_softc *));
    286   1.1       oki static int fdgetdisklabel __P((struct fd_softc *, dev_t));
    287  1.25   minoura static void fd_do_eject __P((struct fdc_softc *, int));
    288  1.13       oki 
    289   1.4       oki void fd_mountroot_hook __P((struct device *));
    290   1.1       oki 
    291  1.14       oki /* dma transfer routines */
    292  1.25   minoura __inline static void fdc_dmastart __P((struct fdc_softc*, int,
    293  1.25   minoura 				       caddr_t, vsize_t));
    294  1.25   minoura static int fdcdmaintr __P((void*));
    295  1.25   minoura static int fdcdmaerrintr __P((void*));
    296   1.1       oki 
    297  1.13       oki __inline static void
    298  1.25   minoura fdc_dmastart(fdc, read, addr, count)
    299  1.25   minoura 	struct fdc_softc *fdc;
    300   1.1       oki 	int read;
    301   1.1       oki 	caddr_t addr;
    302  1.23   minoura 	vsize_t count;
    303   1.1       oki {
    304  1.25   minoura 	int error;
    305   1.1       oki 
    306   1.2       oki 	DPRINTF(("fdc_dmastart: (%s, addr = %p, count = %d\n",
    307  1.23   minoura 		 read ? "read" : "write", (caddr_t) addr, count));
    308   1.1       oki 
    309  1.25   minoura 	error = bus_dmamap_load(fdc->sc_dmat, fdc->sc_dmamap, addr, count,
    310  1.25   minoura 				0, BUS_DMA_NOWAIT);
    311  1.25   minoura 	if (error) {
    312  1.25   minoura 		panic ("fdc_dmastart: cannot load dmamap");
    313  1.25   minoura 	}
    314  1.25   minoura 
    315  1.25   minoura 	bus_dmamap_sync(fdc->sc_dmat, fdc->sc_dmamap, 0, count,
    316  1.25   minoura 			read?BUS_DMASYNC_PREREAD:BUS_DMASYNC_PREWRITE);
    317  1.25   minoura 
    318  1.25   minoura 	fdc->sc_xfer = dmac_prepare_xfer(fdc->sc_dmachan, fdc->sc_dmat,
    319  1.25   minoura 					 fdc->sc_dmamap,
    320  1.25   minoura 					 (read?
    321  1.25   minoura 					  DMAC_OCR_DIR_DTM:DMAC_OCR_DIR_MTD),
    322  1.25   minoura 					 (DMAC_SCR_MAC_COUNT_UP|
    323  1.25   minoura 					  DMAC_SCR_DAC_NO_COUNT),
    324  1.25   minoura 					 (u_int8_t*) (fdc->sc_addr +
    325  1.25   minoura 						      fddata));	/* XXX */
    326  1.13       oki #if defined(M68040) || defined(M68060)
    327  1.25   minoura 	if (mmutype == MMU_68040)
    328  1.25   minoura 		dma_cachectl(addr, count);
    329   1.1       oki #endif
    330  1.25   minoura 
    331  1.25   minoura 	dmac_start_xfer(fdc->sc_dmachan->ch_softc, fdc->sc_xfer);
    332   1.1       oki }
    333   1.1       oki 
    334  1.25   minoura static int
    335  1.25   minoura fdcdmaintr(arg)
    336  1.25   minoura 	void *arg;
    337   1.1       oki {
    338  1.25   minoura 	struct fdc_softc *fdc = arg;
    339  1.25   minoura 
    340  1.25   minoura 	bus_dmamap_unload(fdc->sc_dmat, fdc->sc_dmamap);
    341  1.25   minoura 
    342  1.25   minoura 	return 0;
    343   1.1       oki }
    344   1.1       oki 
    345  1.25   minoura static int
    346  1.25   minoura fdcdmaerrintr(dummy)
    347  1.25   minoura 	void *dummy;
    348   1.1       oki {
    349  1.25   minoura 	DPRINTF(("fdcdmaerrintr\n"));
    350  1.25   minoura 
    351  1.25   minoura 	return 0;
    352   1.1       oki }
    353   1.1       oki 
    354  1.20   minoura /* ARGSUSED */
    355   1.1       oki int
    356  1.20   minoura fdcprobe(parent, cf, aux)
    357   1.1       oki 	struct device *parent;
    358  1.20   minoura 	struct cfdata *cf;
    359  1.20   minoura 	void *aux;
    360   1.1       oki {
    361  1.25   minoura 	struct intio_attach_args *ia = aux;
    362  1.25   minoura 
    363  1.25   minoura 	if (strcmp(ia->ia_name, "fdc") != 0)
    364   1.1       oki 		return 0;
    365  1.25   minoura 
    366  1.25   minoura 	if (ia->ia_addr == INTIOCF_ADDR_DEFAULT)
    367  1.25   minoura 		ia->ia_addr = FDC_ADDR;
    368  1.25   minoura 	if (ia->ia_intr == INTIOCF_INTR_DEFAULT)
    369  1.25   minoura 		ia->ia_intr = FDC_INTR;
    370  1.25   minoura 	if (ia->ia_dma == INTIOCF_DMA_DEFAULT)
    371  1.25   minoura 		ia->ia_dma = FDC_DMA;
    372  1.25   minoura 	if (ia->ia_dmaintr == INTIOCF_DMAINTR_DEFAULT)
    373  1.25   minoura 		ia->ia_dmaintr = FDC_DMAINTR;
    374  1.25   minoura 
    375  1.25   minoura 	if (ia->ia_intr & 0x03 != 0)
    376  1.25   minoura 		return 0;
    377  1.25   minoura 
    378  1.25   minoura 	ia->ia_size = 0x2000;
    379  1.25   minoura 	if (intio_map_allocate_region (parent, ia, INTIO_MAP_TESTONLY))
    380  1.25   minoura 		return 0;
    381  1.25   minoura 
    382  1.25   minoura 	/* builtin device; always there */
    383   1.1       oki 	return 1;
    384   1.1       oki }
    385   1.1       oki 
    386   1.1       oki /*
    387   1.1       oki  * Arguments passed between fdcattach and fdprobe.
    388   1.1       oki  */
    389   1.1       oki struct fdc_attach_args {
    390   1.1       oki 	int fa_drive;
    391   1.1       oki 	struct fd_type *fa_deftype;
    392   1.1       oki };
    393   1.1       oki 
    394   1.1       oki /*
    395   1.1       oki  * Print the location of a disk drive (called just before attaching the
    396   1.1       oki  * the drive).  If `fdc' is not NULL, the drive was found but was not
    397   1.1       oki  * in the system config file; print the drive name as well.
    398   1.1       oki  * Return QUIET (config_find ignores this if the device was configured) to
    399   1.1       oki  * avoid printing `fdN not configured' messages.
    400   1.1       oki  */
    401   1.1       oki int
    402   1.1       oki fdprint(aux, fdc)
    403   1.1       oki 	void *aux;
    404   1.6       cgd 	const char *fdc;
    405   1.1       oki {
    406   1.1       oki 	register struct fdc_attach_args *fa = aux;
    407   1.1       oki 
    408   1.1       oki 	if (!fdc)
    409   1.8  christos 		printf(" drive %d", fa->fa_drive);
    410   1.1       oki 	return QUIET;
    411   1.1       oki }
    412   1.1       oki 
    413   1.1       oki void
    414   1.1       oki fdcattach(parent, self, aux)
    415   1.1       oki 	struct device *parent, *self;
    416   1.1       oki 	void *aux;
    417   1.1       oki {
    418   1.1       oki 	struct fdc_softc *fdc = (void *)self;
    419  1.25   minoura 	bus_space_tag_t iot;
    420  1.25   minoura 	bus_space_handle_t ioh;
    421  1.25   minoura 	struct intio_attach_args *ia = aux;
    422   1.1       oki 	struct fdc_attach_args fa;
    423   1.1       oki 
    424  1.25   minoura 	iot = ia->ia_bst;
    425  1.25   minoura 
    426  1.25   minoura 	printf("\n");
    427  1.25   minoura 
    428  1.25   minoura 	/* Re-map the I/O space. */
    429  1.25   minoura 	bus_space_map(iot, ia->ia_addr, 0x2000, BUS_SPACE_MAP_SHIFTED, &ioh);
    430  1.25   minoura 
    431  1.25   minoura 	fdc->sc_iot = iot;
    432  1.25   minoura 	fdc->sc_ioh = ioh;
    433  1.25   minoura 	fdc->sc_addr = (void*) ia->ia_addr;
    434  1.25   minoura 
    435  1.25   minoura 	fdc->sc_dmat = ia->ia_dmat;
    436   1.1       oki 	fdc->sc_state = DEVIDLE;
    437   1.1       oki 	TAILQ_INIT(&fdc->sc_drives);
    438   1.1       oki 
    439  1.25   minoura 	/* Initialize DMAC channel */
    440  1.25   minoura 	fdc->sc_dmachan = dmac_alloc_channel(parent, ia->ia_dma, "fdc",
    441  1.25   minoura 					     ia->ia_dmaintr, fdcdmaintr, fdc,
    442  1.25   minoura 					     ia->ia_dmaintr+1, fdcdmaerrintr,
    443  1.25   minoura 					     fdc);
    444  1.25   minoura 	if (bus_dmamap_create(fdc->sc_dmat, FDC_MAXIOSIZE, 16, 0xf000, 0,
    445  1.25   minoura 			      BUS_DMA_NOWAIT|BUS_DMA_ALLOCNOW,
    446  1.25   minoura 			      &fdc->sc_dmamap)) {
    447  1.25   minoura 		printf("%s: can't set up intio DMA map\n",
    448  1.25   minoura 		    fdc->sc_dev.dv_xname);
    449  1.25   minoura 		return;
    450  1.25   minoura 	}
    451  1.25   minoura 
    452  1.25   minoura 	if (intio_intr_establish(ia->ia_intr, "fdc", fdcintr, fdc))
    453  1.25   minoura 		panic ("Could not establish interrupt (duplicated vector?).");
    454  1.25   minoura 	intio_set_ivec(ia->ia_intr);
    455   1.1       oki 
    456   1.1       oki 	/* reset */
    457  1.25   minoura 	intio_disable_intr(SICILIAN_INTR_FDD);
    458  1.25   minoura 	intio_enable_intr(SICILIAN_INTR_FDC);
    459   1.1       oki 	fdcresult(fdc);
    460  1.25   minoura 	fdcreset(fdc);
    461   1.1       oki 
    462  1.25   minoura 	printf("%s: uPD72065 FDC\n", fdc->sc_dev.dv_xname);
    463  1.25   minoura 	out_fdc(iot, ioh, NE7CMD_SPECIFY);/* specify command */
    464  1.25   minoura 	out_fdc(iot, ioh, 0xd0);
    465  1.25   minoura 	out_fdc(iot, ioh, 0x10);
    466   1.1       oki 
    467   1.1       oki 	/* physical limit: four drives per controller. */
    468   1.1       oki 	for (fa.fa_drive = 0; fa.fa_drive < 4; fa.fa_drive++) {
    469   1.1       oki 		(void)config_found(self, (void *)&fa, fdprint);
    470   1.1       oki 	}
    471  1.25   minoura 
    472  1.25   minoura 	intio_enable_intr(SICILIAN_INTR_FDC);
    473   1.1       oki }
    474   1.1       oki 
    475   1.1       oki void
    476  1.25   minoura fdcreset(fdc)
    477  1.25   minoura 	struct fdc_softc *fdc;
    478   1.1       oki {
    479  1.25   minoura 	bus_space_write_1(fdc->sc_iot, fdc->sc_ioh, fdsts, NE7CMD_RESET);
    480   1.1       oki }
    481   1.1       oki 
    482   1.1       oki static int
    483   1.1       oki fdcpoll(fdc)
    484   1.1       oki 	struct fdc_softc *fdc;
    485   1.1       oki {
    486  1.25   minoura 	int i = 25000, n;
    487   1.1       oki 	while (--i > 0) {
    488  1.25   minoura 		if ((intio_get_sicilian_intr() & SICILIAN_STAT_FDC)) {
    489  1.25   minoura 			out_fdc(fdc->sc_iot, fdc->sc_ioh, NE7CMD_SENSEI);
    490  1.25   minoura 			n = fdcresult(fdc);
    491   1.1       oki 			break;
    492   1.1       oki 		}
    493   1.1       oki 		DELAY(100);
    494   1.1       oki 	}
    495   1.1       oki 	return i;
    496   1.1       oki }
    497   1.1       oki 
    498   1.1       oki int
    499  1.20   minoura fdprobe(parent, cf, aux)
    500   1.1       oki 	struct device *parent;
    501  1.20   minoura 	struct cfdata *cf;
    502  1.20   minoura 	void *aux;
    503   1.1       oki {
    504   1.1       oki 	struct fdc_softc *fdc = (void *)parent;
    505   1.1       oki 	struct fd_type *type;
    506  1.25   minoura 	struct fdc_attach_args *fa = aux;
    507  1.25   minoura 	int drive = fa->fa_drive;
    508  1.25   minoura 	bus_space_tag_t iot = fdc->sc_iot;
    509  1.25   minoura 	bus_space_handle_t ioh = fdc->sc_ioh;
    510   1.1       oki 	int n;
    511   1.1       oki 	int found = 0;
    512   1.1       oki 	int i;
    513   1.1       oki 
    514  1.12       jtk 	if (cf->cf_loc[FDCCF_UNIT] != FDCCF_UNIT_DEFAULT &&
    515  1.12       jtk 	    cf->cf_loc[FDCCF_UNIT] != drive)
    516   1.1       oki 		return 0;
    517   1.1       oki 
    518   1.1       oki 	type = &fd_types[0];	/* XXX 1.2MB */
    519   1.1       oki 
    520  1.25   minoura 	intio_disable_intr(SICILIAN_INTR_FDC);
    521   1.1       oki 
    522   1.1       oki 	/* select drive and turn on motor */
    523  1.25   minoura 	bus_space_write_1(iot, ioh, fdctl, 0x80 | (type->rate << 4)| drive);
    524   1.1       oki 	fdc_force_ready(FDCRDY);
    525   1.1       oki 	fdcpoll(fdc);
    526   1.1       oki 
    527   1.1       oki retry:
    528  1.25   minoura 	out_fdc(iot, ioh, NE7CMD_RECAL);
    529  1.25   minoura 	out_fdc(iot, ioh, drive);
    530   1.1       oki 
    531   1.1       oki 	i = 25000;
    532   1.1       oki 	while (--i > 0) {
    533  1.25   minoura 		if ((intio_get_sicilian_intr() & SICILIAN_STAT_FDC)) {
    534  1.25   minoura 			out_fdc(iot, ioh, NE7CMD_SENSEI);
    535   1.1       oki 			n = fdcresult(fdc);
    536   1.1       oki 			break;
    537   1.1       oki 		}
    538   1.1       oki 		DELAY(100);
    539   1.1       oki 	}
    540   1.1       oki 
    541   1.1       oki #ifdef FDDEBUG
    542   1.1       oki 	{
    543   1.1       oki 		int i;
    544  1.25   minoura 		DPRINTF(("fdprobe: status"));
    545   1.1       oki 		for (i = 0; i < n; i++)
    546  1.25   minoura 			DPRINTF((" %x", fdc->sc_status[i]));
    547  1.25   minoura 		DPRINTF(("\n"));
    548   1.1       oki 	}
    549   1.1       oki #endif
    550   1.1       oki 
    551   1.1       oki 	if (n == 2) {
    552   1.1       oki 		if ((fdc->sc_status[0] & 0xf0) == 0x20) {
    553   1.1       oki 			found = 1;
    554   1.1       oki 		} else if ((fdc->sc_status[0] & 0xf0) == 0xc0) {
    555   1.1       oki 			goto retry;
    556   1.1       oki 		}
    557   1.1       oki 	}
    558   1.1       oki 
    559   1.1       oki 	/* turn off motor */
    560  1.25   minoura 	bus_space_write_1(fdc->sc_iot, fdc->sc_ioh,
    561  1.25   minoura 			  fdctl, (type->rate << 4)| drive);
    562   1.1       oki 	fdc_force_ready(FDCSTBY);
    563   1.1       oki 	if (!found) {
    564  1.25   minoura 		intio_enable_intr(SICILIAN_INTR_FDC);
    565   1.1       oki 		return 0;
    566   1.1       oki 	}
    567   1.1       oki 
    568   1.1       oki 	return 1;
    569   1.1       oki }
    570   1.1       oki 
    571  1.25   minoura /*
    572  1.25   minoura  * Controller is working, and drive responded.  Attach it.
    573  1.25   minoura  */
    574   1.1       oki void
    575   1.1       oki fdattach(parent, self, aux)
    576  1.25   minoura 	struct device *parent, *self;
    577   1.1       oki 	void *aux;
    578   1.1       oki {
    579   1.1       oki 	struct fdc_softc *fdc = (void *)parent;
    580  1.25   minoura 	struct fd_softc *fd = (void *)self;
    581   1.1       oki 	struct fdc_attach_args *fa = aux;
    582  1.25   minoura 	struct fd_type *type = &fd_types[0];	/* XXX 1.2MB */
    583   1.1       oki 	int drive = fa->fa_drive;
    584   1.1       oki 
    585   1.1       oki 	fd->sc_flags = 0;
    586   1.1       oki 
    587   1.1       oki 	if (type)
    588  1.25   minoura 		printf(": %s, %d cyl, %d head, %d sec\n", type->name,
    589  1.25   minoura 		       type->cyls, type->heads, type->sectrac);
    590   1.1       oki 	else
    591   1.8  christos 		printf(": density unknown\n");
    592   1.1       oki 
    593   1.1       oki 	fd->sc_cylin = -1;
    594   1.1       oki 	fd->sc_drive = drive;
    595   1.1       oki 	fd->sc_deftype = type;
    596   1.1       oki 	fdc->sc_fd[drive] = fd;
    597   1.1       oki 
    598   1.1       oki 	fd->sc_copybuf = (u_char *)malloc(NBPG, M_DEVBUF, M_WAITOK);
    599   1.1       oki 	if (fd->sc_copybuf == 0)
    600   1.8  christos 		printf("fdprobe: WARNING!! malloc() failed.\n");
    601   1.1       oki 	fd->sc_flags |= FD_ALIVE;
    602   1.1       oki 
    603   1.1       oki 	/*
    604   1.1       oki 	 * Initialize and attach the disk structure.
    605   1.1       oki 	 */
    606   1.1       oki 	fd->sc_dk.dk_name = fd->sc_dev.dv_xname;
    607   1.1       oki 	fd->sc_dk.dk_driver = &fddkdriver;
    608   1.1       oki 	disk_attach(&fd->sc_dk);
    609   1.4       oki 
    610   1.4       oki 	/*
    611   1.4       oki 	 * Establish a mountroot_hook anyway in case we booted
    612   1.4       oki 	 * with RB_ASKNAME and get selected as the boot device.
    613   1.4       oki 	 */
    614   1.9   thorpej 	mountroothook_establish(fd_mountroot_hook, &fd->sc_dev);
    615  1.25   minoura 
    616  1.25   minoura #if NRND > 0
    617  1.26   minoura 	rnd_attach_source(&fd->rnd_source, fd->sc_dev.dv_xname,
    618  1.26   minoura 			  RND_TYPE_DISK, 0);
    619  1.25   minoura #endif
    620   1.1       oki }
    621   1.1       oki 
    622  1.13       oki __inline struct fd_type *
    623   1.1       oki fd_dev_to_type(fd, dev)
    624   1.1       oki 	struct fd_softc *fd;
    625   1.1       oki 	dev_t dev;
    626   1.1       oki {
    627   1.1       oki 	int type = FDTYPE(dev);
    628   1.1       oki 
    629   1.1       oki 	if (type > (sizeof(fd_types) / sizeof(fd_types[0])))
    630   1.1       oki 		return NULL;
    631   1.1       oki 	return &fd_types[type];
    632   1.1       oki }
    633   1.1       oki 
    634   1.1       oki void
    635   1.1       oki fdstrategy(bp)
    636   1.1       oki 	register struct buf *bp;	/* IO operation to perform */
    637   1.1       oki {
    638   1.1       oki 	struct fd_softc *fd;
    639   1.1       oki 	int unit = FDUNIT(bp->b_dev);
    640   1.1       oki 	int sz;
    641   1.1       oki  	int s;
    642   1.1       oki 
    643   1.1       oki 	if (unit >= fd_cd.cd_ndevs ||
    644   1.1       oki 	    (fd = fd_cd.cd_devs[unit]) == 0 ||
    645   1.1       oki 	    bp->b_blkno < 0 ||
    646   1.1       oki 	    (bp->b_bcount % FDC_BSIZE) != 0) {
    647  1.25   minoura 		DPRINTF(("fdstrategy: unit=%d, blkno=%d, bcount=%d\n", unit,
    648  1.25   minoura 			 bp->b_blkno, bp->b_bcount));
    649   1.1       oki 		bp->b_error = EINVAL;
    650   1.1       oki 		goto bad;
    651   1.1       oki 	}
    652   1.1       oki 
    653   1.1       oki 	/* If it's a null transfer, return immediately. */
    654   1.1       oki 	if (bp->b_bcount == 0)
    655   1.1       oki 		goto done;
    656   1.1       oki 
    657   1.1       oki 	sz = howmany(bp->b_bcount, FDC_BSIZE);
    658   1.1       oki 
    659   1.1       oki 	if (bp->b_blkno + sz > (fd->sc_type->size << (fd->sc_type->secsize - 2))) {
    660   1.1       oki 		sz = (fd->sc_type->size << (fd->sc_type->secsize - 2)) - bp->b_blkno;
    661   1.1       oki 		if (sz == 0) {
    662   1.1       oki 			/* If exactly at end of disk, return EOF. */
    663   1.1       oki 			bp->b_resid = bp->b_bcount;
    664   1.1       oki 			goto done;
    665   1.1       oki 		}
    666   1.1       oki 		if (sz < 0) {
    667   1.1       oki 			/* If past end of disk, return EINVAL. */
    668   1.1       oki 			bp->b_error = EINVAL;
    669   1.1       oki 			goto bad;
    670   1.1       oki 		}
    671   1.1       oki 		/* Otherwise, truncate request. */
    672   1.1       oki 		bp->b_bcount = sz << DEV_BSHIFT;
    673   1.1       oki 	}
    674   1.1       oki 
    675   1.1       oki  	bp->b_cylin = bp->b_blkno / (FDC_BSIZE / DEV_BSIZE)
    676   1.1       oki 		/ (fd->sc_type->seccyl * (1 << (fd->sc_type->secsize - 2)));
    677   1.1       oki 
    678   1.2       oki 	DPRINTF(("fdstrategy: %s b_blkno %d b_bcount %ld cylin %ld\n",
    679   1.1       oki 		 bp->b_flags & B_READ ? "read" : "write",
    680   1.1       oki 		 bp->b_blkno, bp->b_bcount, bp->b_cylin));
    681   1.1       oki 	/* Queue transfer on drive, activate drive and controller if idle. */
    682   1.1       oki 	s = splbio();
    683   1.1       oki 	disksort(&fd->sc_q, bp);
    684   1.1       oki 	untimeout(fd_motor_off, fd); /* a good idea */
    685   1.1       oki 	if (!fd->sc_q.b_active)
    686   1.1       oki 		fdstart(fd);
    687   1.1       oki #ifdef DIAGNOSTIC
    688   1.1       oki 	else {
    689  1.20   minoura 		struct fdc_softc *fdc = (void *)fd->sc_dev.dv_parent;
    690   1.1       oki 		if (fdc->sc_state == DEVIDLE) {
    691   1.8  christos 			printf("fdstrategy: controller inactive\n");
    692   1.1       oki 			fdcstart(fdc);
    693   1.1       oki 		}
    694   1.1       oki 	}
    695   1.1       oki #endif
    696   1.1       oki 	splx(s);
    697   1.1       oki 	return;
    698   1.1       oki 
    699   1.1       oki bad:
    700   1.1       oki 	bp->b_flags |= B_ERROR;
    701   1.1       oki done:
    702   1.1       oki 	/* Toss transfer; we're done early. */
    703   1.1       oki 	biodone(bp);
    704   1.1       oki }
    705   1.1       oki 
    706   1.1       oki void
    707   1.1       oki fdstart(fd)
    708   1.1       oki 	struct fd_softc *fd;
    709   1.1       oki {
    710   1.1       oki 	struct fdc_softc *fdc = (void *)fd->sc_dev.dv_parent;
    711   1.1       oki 	int active = fdc->sc_drives.tqh_first != 0;
    712   1.1       oki 
    713   1.1       oki 	/* Link into controller queue. */
    714   1.1       oki 	fd->sc_q.b_active = 1;
    715   1.1       oki 	TAILQ_INSERT_TAIL(&fdc->sc_drives, fd, sc_drivechain);
    716   1.1       oki 
    717   1.1       oki 	/* If controller not already active, start it. */
    718   1.1       oki 	if (!active)
    719   1.1       oki 		fdcstart(fdc);
    720   1.1       oki }
    721   1.1       oki 
    722   1.1       oki void
    723   1.1       oki fdfinish(fd, bp)
    724   1.1       oki 	struct fd_softc *fd;
    725   1.1       oki 	struct buf *bp;
    726   1.1       oki {
    727   1.1       oki 	struct fdc_softc *fdc = (void *)fd->sc_dev.dv_parent;
    728   1.1       oki 
    729   1.1       oki 	/*
    730   1.1       oki 	 * Move this drive to the end of the queue to give others a `fair'
    731   1.1       oki 	 * chance.  We only force a switch if N operations are completed while
    732   1.1       oki 	 * another drive is waiting to be serviced, since there is a long motor
    733   1.1       oki 	 * startup delay whenever we switch.
    734   1.1       oki 	 */
    735   1.1       oki 	if (fd->sc_drivechain.tqe_next && ++fd->sc_ops >= 8) {
    736   1.1       oki 		fd->sc_ops = 0;
    737   1.1       oki 		TAILQ_REMOVE(&fdc->sc_drives, fd, sc_drivechain);
    738   1.1       oki 		if (bp->b_actf) {
    739   1.1       oki 			TAILQ_INSERT_TAIL(&fdc->sc_drives, fd, sc_drivechain);
    740   1.1       oki 		} else
    741   1.1       oki 			fd->sc_q.b_active = 0;
    742   1.1       oki 	}
    743   1.1       oki 	bp->b_resid = fd->sc_bcount;
    744   1.1       oki 	fd->sc_skip = 0;
    745   1.1       oki 	fd->sc_q.b_actf = bp->b_actf;
    746  1.25   minoura 
    747  1.25   minoura #if NRND > 0
    748  1.25   minoura 	rnd_add_uint32(&fd->rnd_source, bp->b_blkno);
    749  1.25   minoura #endif
    750  1.25   minoura 
    751   1.1       oki 	biodone(bp);
    752   1.1       oki 	/* turn off motor 5s from now */
    753   1.1       oki 	timeout(fd_motor_off, fd, 5 * hz);
    754   1.1       oki 	fdc->sc_state = DEVIDLE;
    755   1.1       oki }
    756   1.1       oki 
    757   1.1       oki int
    758  1.14       oki fdread(dev, uio, flags)
    759   1.1       oki 	dev_t dev;
    760   1.1       oki 	struct uio *uio;
    761  1.14       oki 	int flags;
    762   1.1       oki {
    763   1.1       oki 
    764   1.1       oki 	return (physio(fdstrategy, NULL, dev, B_READ, minphys, uio));
    765   1.1       oki }
    766   1.1       oki 
    767   1.1       oki int
    768  1.14       oki fdwrite(dev, uio, flags)
    769   1.1       oki 	dev_t dev;
    770   1.1       oki 	struct uio *uio;
    771  1.14       oki 	int flags;
    772   1.1       oki {
    773   1.1       oki 
    774   1.1       oki 	return (physio(fdstrategy, NULL, dev, B_WRITE, minphys, uio));
    775   1.1       oki }
    776   1.1       oki 
    777   1.1       oki void
    778   1.1       oki fd_set_motor(fdc, reset)
    779   1.1       oki 	struct fdc_softc *fdc;
    780   1.1       oki 	int reset;
    781   1.1       oki {
    782   1.1       oki 	struct fd_softc *fd;
    783   1.1       oki 	int n;
    784   1.1       oki 
    785   1.1       oki 	DPRINTF(("fd_set_motor:\n"));
    786   1.1       oki 	for (n = 0; n < 4; n++)
    787   1.1       oki 		if ((fd = fdc->sc_fd[n]) && (fd->sc_flags & FD_MOTOR)) {
    788  1.25   minoura 			bus_space_write_1(fdc->sc_iot, fdc->sc_ioh, fdctl,
    789  1.25   minoura 					  0x80 | (fd->sc_type->rate << 4)| n);
    790   1.1       oki 		}
    791   1.1       oki }
    792   1.1       oki 
    793   1.1       oki void
    794   1.1       oki fd_motor_off(arg)
    795   1.1       oki 	void *arg;
    796   1.1       oki {
    797   1.1       oki 	struct fd_softc *fd = arg;
    798  1.25   minoura 	struct fdc_softc *fdc = (struct fdc_softc*) fd->sc_dev.dv_parent;
    799   1.1       oki 	int s;
    800   1.1       oki 
    801   1.1       oki 	DPRINTF(("fd_motor_off:\n"));
    802   1.1       oki 
    803   1.1       oki 	s = splbio();
    804   1.1       oki 	fd->sc_flags &= ~(FD_MOTOR | FD_MOTOR_WAIT);
    805  1.25   minoura 	bus_space_write_1 (fdc->sc_iot, fdc->sc_ioh, fdctl,
    806  1.25   minoura 			   (fd->sc_type->rate << 4) | fd->sc_drive);
    807   1.1       oki #if 0
    808  1.25   minoura 	fd_set_motor(fdc, 0); /* XXX */
    809   1.1       oki #endif
    810   1.1       oki 	splx(s);
    811   1.1       oki }
    812   1.1       oki 
    813   1.1       oki void
    814   1.1       oki fd_motor_on(arg)
    815   1.1       oki 	void *arg;
    816   1.1       oki {
    817   1.1       oki 	struct fd_softc *fd = arg;
    818   1.1       oki 	struct fdc_softc *fdc = (void *)fd->sc_dev.dv_parent;
    819   1.1       oki 	int s;
    820   1.1       oki 
    821   1.1       oki 	DPRINTF(("fd_motor_on:\n"));
    822   1.1       oki 
    823   1.1       oki 	s = splbio();
    824   1.1       oki 	fd->sc_flags &= ~FD_MOTOR_WAIT;
    825   1.1       oki 	if ((fdc->sc_drives.tqh_first == fd) && (fdc->sc_state == MOTORWAIT))
    826  1.25   minoura 		(void) fdcintr(fdc);
    827   1.1       oki 	splx(s);
    828   1.1       oki }
    829   1.1       oki 
    830   1.1       oki int
    831   1.1       oki fdcresult(fdc)
    832   1.1       oki 	struct fdc_softc *fdc;
    833   1.1       oki {
    834  1.25   minoura 	bus_space_tag_t iot = fdc->sc_iot;
    835  1.25   minoura 	bus_space_handle_t ioh = fdc->sc_ioh;
    836   1.1       oki 	u_char i;
    837   1.1       oki 	int j = 100000,
    838   1.1       oki 	    n = 0;
    839   1.1       oki 
    840   1.1       oki 	for (; j; j--) {
    841  1.25   minoura 		i = bus_space_read_1(iot, ioh, fdsts) &
    842  1.25   minoura 		  (NE7_DIO | NE7_RQM | NE7_CB);
    843   1.1       oki 
    844   1.1       oki 		if (i == NE7_RQM)
    845   1.1       oki 			return n;
    846   1.1       oki 		if (i == (NE7_DIO | NE7_RQM | NE7_CB)) {
    847   1.1       oki 			if (n >= sizeof(fdc->sc_status)) {
    848   1.1       oki 				log(LOG_ERR, "fdcresult: overrun\n");
    849   1.1       oki 				return -1;
    850   1.1       oki 			}
    851  1.25   minoura 			fdc->sc_status[n++] =
    852  1.25   minoura 			  bus_space_read_1(iot, ioh, fddata);
    853   1.1       oki 		}
    854  1.25   minoura 		delay(10);
    855   1.1       oki 	}
    856   1.1       oki 	log(LOG_ERR, "fdcresult: timeout\n");
    857   1.1       oki 	return -1;
    858   1.1       oki }
    859   1.1       oki 
    860   1.1       oki int
    861  1.25   minoura out_fdc(iot, ioh, x)
    862  1.25   minoura 	bus_space_tag_t iot;
    863  1.25   minoura 	bus_space_handle_t ioh;
    864   1.1       oki 	u_char x;
    865   1.1       oki {
    866   1.1       oki 	int i = 100000;
    867   1.1       oki 
    868  1.25   minoura 	while ((bus_space_read_1(iot, ioh, fdsts) & NE7_DIO) && i-- > 0);
    869   1.1       oki 	if (i <= 0)
    870   1.1       oki 		return -1;
    871  1.25   minoura 	while ((bus_space_read_1(iot, ioh, fdsts) & NE7_RQM) == 0 && i-- > 0);
    872   1.1       oki 	if (i <= 0)
    873   1.1       oki 		return -1;
    874  1.25   minoura 	bus_space_write_1(iot, ioh, fddata, x);
    875   1.1       oki 	return 0;
    876   1.1       oki }
    877   1.1       oki 
    878   1.1       oki int
    879  1.14       oki fdopen(dev, flags, mode, p)
    880   1.1       oki 	dev_t dev;
    881  1.14       oki 	int flags, mode;
    882  1.14       oki 	struct proc *p;
    883   1.1       oki {
    884   1.1       oki  	int unit;
    885   1.1       oki 	struct fd_softc *fd;
    886   1.1       oki 	struct fd_type *type;
    887  1.25   minoura 	struct fdc_softc *fdc;
    888   1.1       oki 
    889   1.1       oki 	unit = FDUNIT(dev);
    890   1.1       oki 	if (unit >= fd_cd.cd_ndevs)
    891   1.1       oki 		return ENXIO;
    892   1.1       oki 	fd = fd_cd.cd_devs[unit];
    893   1.1       oki 	if (fd == 0)
    894   1.1       oki 		return ENXIO;
    895   1.1       oki 	type = fd_dev_to_type(fd, dev);
    896   1.1       oki 	if (type == NULL)
    897   1.1       oki 		return ENXIO;
    898   1.1       oki 
    899   1.1       oki 	if ((fd->sc_flags & FD_OPEN) != 0 &&
    900   1.1       oki 	    fd->sc_type != type)
    901   1.1       oki 		return EBUSY;
    902   1.1       oki 
    903  1.25   minoura 	fdc = (void *)fd->sc_dev.dv_parent;
    904   1.1       oki 	if ((fd->sc_flags & FD_OPEN) == 0) {
    905   1.1       oki 		/* Lock eject button */
    906  1.25   minoura 		bus_space_write_1(fdc->sc_iot, fdc->sc_ioh, fdout,
    907  1.25   minoura 				  0x40 | ( 1 << unit));
    908  1.25   minoura 		bus_space_write_1(fdc->sc_iot, fdc->sc_ioh, fdout, 0x40);
    909   1.1       oki 	}
    910   1.1       oki 
    911   1.1       oki 	fd->sc_type = type;
    912   1.1       oki 	fd->sc_cylin = -1;
    913   1.1       oki 
    914  1.14       oki 	switch (mode) {
    915   1.1       oki 	case S_IFCHR:
    916   1.1       oki 		fd->sc_flags |= FD_COPEN;
    917   1.1       oki 		break;
    918   1.1       oki 	case S_IFBLK:
    919   1.1       oki 		fd->sc_flags |= FD_BOPEN;
    920   1.1       oki 		break;
    921   1.1       oki 	}
    922   1.1       oki 
    923   1.1       oki 	fdgetdisklabel(fd, dev);
    924   1.1       oki 
    925   1.1       oki 	return 0;
    926   1.1       oki }
    927   1.1       oki 
    928   1.1       oki int
    929  1.14       oki fdclose(dev, flags, mode, p)
    930   1.1       oki 	dev_t dev;
    931  1.14       oki 	int flags, mode;
    932  1.14       oki 	struct proc *p;
    933   1.1       oki {
    934   1.1       oki  	int unit = FDUNIT(dev);
    935  1.25   minoura 	struct fd_softc *fd = fd_cd.cd_devs[unit];
    936  1.25   minoura 	struct fdc_softc *fdc = (void *)fd->sc_dev.dv_parent;
    937   1.1       oki 
    938   1.1       oki 	DPRINTF(("fdclose %d\n", unit));
    939   1.1       oki 
    940  1.14       oki 	switch (mode) {
    941   1.1       oki 	case S_IFCHR:
    942   1.1       oki 		fd->sc_flags &= ~FD_COPEN;
    943   1.1       oki 		break;
    944   1.1       oki 	case S_IFBLK:
    945   1.1       oki 		fd->sc_flags &= ~FD_BOPEN;
    946   1.1       oki 		break;
    947   1.1       oki 	}
    948   1.1       oki 
    949   1.1       oki 	if ((fd->sc_flags & FD_OPEN) == 0) {
    950  1.25   minoura 		bus_space_write_1(fdc->sc_iot, fdc->sc_ioh, fdout,
    951  1.25   minoura 				  ( 1 << unit));
    952  1.25   minoura 		bus_space_write_1(fdc->sc_iot, fdc->sc_ioh, fdout, 0);
    953   1.1       oki 	}
    954   1.1       oki 	return 0;
    955   1.1       oki }
    956   1.1       oki 
    957   1.1       oki void
    958   1.1       oki fdcstart(fdc)
    959   1.1       oki 	struct fdc_softc *fdc;
    960   1.1       oki {
    961   1.1       oki 
    962   1.1       oki #ifdef DIAGNOSTIC
    963   1.1       oki 	/* only got here if controller's drive queue was inactive; should
    964   1.1       oki 	   be in idle state */
    965   1.1       oki 	if (fdc->sc_state != DEVIDLE) {
    966   1.8  christos 		printf("fdcstart: not idle\n");
    967   1.1       oki 		return;
    968   1.1       oki 	}
    969   1.1       oki #endif
    970  1.25   minoura 	(void) fdcintr(fdc);
    971   1.1       oki }
    972   1.1       oki 
    973   1.1       oki void
    974   1.1       oki fdcstatus(dv, n, s)
    975   1.1       oki 	struct device *dv;
    976   1.1       oki 	int n;
    977   1.1       oki 	char *s;
    978   1.1       oki {
    979   1.1       oki 	struct fdc_softc *fdc = (void *)dv->dv_parent;
    980  1.10       oki 	char bits[64];
    981   1.1       oki 
    982   1.1       oki 	if (n == 0) {
    983  1.25   minoura 		out_fdc(fdc->sc_iot, fdc->sc_ioh, NE7CMD_SENSEI);
    984   1.1       oki 		(void) fdcresult(fdc);
    985   1.1       oki 		n = 2;
    986   1.1       oki 	}
    987   1.1       oki 
    988   1.8  christos 	printf("%s: %s: state %d", dv->dv_xname, s, fdc->sc_state);
    989   1.1       oki 
    990   1.1       oki 	switch (n) {
    991   1.1       oki 	case 0:
    992   1.8  christos 		printf("\n");
    993   1.1       oki 		break;
    994   1.1       oki 	case 2:
    995  1.10       oki 		printf(" (st0 %s cyl %d)\n",
    996  1.10       oki 		    bitmask_snprintf(fdc->sc_status[0], NE7_ST0BITS,
    997  1.10       oki 		    bits, sizeof(bits)), fdc->sc_status[1]);
    998   1.1       oki 		break;
    999   1.1       oki 	case 7:
   1000  1.10       oki 		printf(" (st0 %s", bitmask_snprintf(fdc->sc_status[0],
   1001  1.10       oki 		    NE7_ST0BITS, bits, sizeof(bits)));
   1002  1.10       oki 		printf(" st1 %s", bitmask_snprintf(fdc->sc_status[1],
   1003  1.10       oki 		    NE7_ST1BITS, bits, sizeof(bits)));
   1004  1.10       oki 		printf(" st2 %s", bitmask_snprintf(fdc->sc_status[2],
   1005  1.10       oki 		    NE7_ST2BITS, bits, sizeof(bits)));
   1006  1.10       oki 		printf(" cyl %d head %d sec %d)\n",
   1007   1.1       oki 		    fdc->sc_status[3], fdc->sc_status[4], fdc->sc_status[5]);
   1008   1.1       oki 		break;
   1009   1.1       oki #ifdef DIAGNOSTIC
   1010   1.1       oki 	default:
   1011   1.8  christos 		printf(" fdcstatus: weird size: %d\n", n);
   1012   1.1       oki 		break;
   1013   1.1       oki #endif
   1014   1.1       oki 	}
   1015   1.1       oki }
   1016   1.1       oki 
   1017   1.1       oki void
   1018   1.1       oki fdctimeout(arg)
   1019   1.1       oki 	void *arg;
   1020   1.1       oki {
   1021   1.1       oki 	struct fdc_softc *fdc = arg;
   1022   1.1       oki 	struct fd_softc *fd = fdc->sc_drives.tqh_first;
   1023   1.1       oki 	int s;
   1024   1.1       oki 
   1025   1.1       oki 	s = splbio();
   1026   1.1       oki 	fdcstatus(&fd->sc_dev, 0, "timeout");
   1027   1.1       oki 
   1028   1.1       oki 	if (fd->sc_q.b_actf)
   1029   1.1       oki 		fdc->sc_state++;
   1030   1.1       oki 	else
   1031   1.1       oki 		fdc->sc_state = DEVIDLE;
   1032   1.1       oki 
   1033  1.25   minoura 	(void) fdcintr(fdc);
   1034   1.1       oki 	splx(s);
   1035   1.1       oki }
   1036   1.1       oki 
   1037  1.25   minoura #if 0
   1038   1.1       oki void
   1039   1.1       oki fdcpseudointr(arg)
   1040   1.1       oki 	void *arg;
   1041   1.1       oki {
   1042   1.1       oki 	int s;
   1043  1.25   minoura 	struct fdc_softc *fdc = arg;
   1044   1.1       oki 
   1045   1.1       oki 	/* just ensure it has the right spl */
   1046   1.1       oki 	s = splbio();
   1047  1.25   minoura 	(void) fdcintr(fdc);
   1048   1.1       oki 	splx(s);
   1049   1.1       oki }
   1050  1.25   minoura #endif
   1051   1.1       oki 
   1052   1.1       oki int
   1053  1.25   minoura fdcintr(arg)
   1054  1.25   minoura 	void *arg;
   1055   1.1       oki {
   1056  1.25   minoura 	struct fdc_softc *fdc = arg;
   1057   1.1       oki #define	st0	fdc->sc_status[0]
   1058   1.1       oki #define	cyl	fdc->sc_status[1]
   1059   1.1       oki 	struct fd_softc *fd;
   1060   1.1       oki 	struct buf *bp;
   1061  1.25   minoura 	bus_space_tag_t iot = fdc->sc_iot;
   1062  1.25   minoura 	bus_space_handle_t ioh = fdc->sc_ioh;
   1063   1.1       oki 	int read, head, sec, pos, i, sectrac, nblks;
   1064   1.1       oki 	int	tmp;
   1065   1.1       oki 	struct fd_type *type;
   1066   1.1       oki 
   1067   1.1       oki loop:
   1068   1.1       oki 	fd = fdc->sc_drives.tqh_first;
   1069   1.1       oki 	if (fd == NULL) {
   1070   1.1       oki 		DPRINTF(("fdcintr: set DEVIDLE\n"));
   1071   1.1       oki 		if (fdc->sc_state == DEVIDLE) {
   1072  1.25   minoura 			if (intio_get_sicilian_intr() & SICILIAN_STAT_FDC) {
   1073  1.25   minoura 				out_fdc(iot, ioh, NE7CMD_SENSEI);
   1074  1.25   minoura 				if ((tmp = fdcresult(fdc)) != 2 ||
   1075  1.25   minoura 				    (st0 & 0xf8) != 0x20) {
   1076   1.1       oki 					goto loop;
   1077   1.1       oki 				}
   1078   1.1       oki 			}
   1079   1.1       oki 		}
   1080   1.1       oki 		/* no drives waiting; end */
   1081   1.1       oki 		fdc->sc_state = DEVIDLE;
   1082   1.1       oki  		return 1;
   1083   1.1       oki 	}
   1084   1.1       oki 
   1085   1.1       oki 	/* Is there a transfer to this drive?  If not, deactivate drive. */
   1086   1.1       oki 	bp = fd->sc_q.b_actf;
   1087   1.1       oki 	if (bp == NULL) {
   1088   1.1       oki 		fd->sc_ops = 0;
   1089   1.1       oki 		TAILQ_REMOVE(&fdc->sc_drives, fd, sc_drivechain);
   1090   1.1       oki 		fd->sc_q.b_active = 0;
   1091   1.1       oki 		goto loop;
   1092   1.1       oki 	}
   1093   1.1       oki 
   1094   1.1       oki 	switch (fdc->sc_state) {
   1095   1.1       oki 	case DEVIDLE:
   1096   1.1       oki 		DPRINTF(("fdcintr: in DEVIDLE\n"));
   1097   1.1       oki 		fdc->sc_errors = 0;
   1098   1.1       oki 		fd->sc_skip = 0;
   1099   1.1       oki 		fd->sc_bcount = bp->b_bcount;
   1100   1.1       oki 		fd->sc_blkno = bp->b_blkno / (FDC_BSIZE / DEV_BSIZE);
   1101   1.1       oki 		untimeout(fd_motor_off, fd);
   1102   1.1       oki 		if ((fd->sc_flags & FD_MOTOR_WAIT) != 0) {
   1103   1.1       oki 			fdc->sc_state = MOTORWAIT;
   1104   1.1       oki 			return 1;
   1105   1.1       oki 		}
   1106   1.1       oki 		if ((fd->sc_flags & FD_MOTOR) == 0) {
   1107   1.5       oki 			/* Turn on the motor */
   1108   1.5       oki 			/* being careful about other drives. */
   1109   1.5       oki 			for (i = 0; i < 4; i++) {
   1110   1.5       oki 				struct fd_softc *ofd = fdc->sc_fd[i];
   1111   1.5       oki 				if (ofd && ofd->sc_flags & FD_MOTOR) {
   1112   1.5       oki 					untimeout(fd_motor_off, ofd);
   1113   1.5       oki 					ofd->sc_flags &= ~(FD_MOTOR | FD_MOTOR_WAIT);
   1114   1.5       oki 					break;
   1115   1.5       oki 				}
   1116   1.1       oki 			}
   1117   1.1       oki 			fd->sc_flags |= FD_MOTOR | FD_MOTOR_WAIT;
   1118   1.1       oki 			fd_set_motor(fdc, 0);
   1119   1.1       oki 			fdc->sc_state = MOTORWAIT;
   1120   1.1       oki 			/* allow .5s for motor to stabilize */
   1121   1.1       oki 			timeout(fd_motor_on, fd, hz / 2);
   1122   1.1       oki 			return 1;
   1123   1.1       oki 		}
   1124   1.1       oki 		/* Make sure the right drive is selected. */
   1125   1.1       oki 		fd_set_motor(fdc, 0);
   1126   1.1       oki 
   1127   1.1       oki 		/* fall through */
   1128   1.1       oki 	case DOSEEK:
   1129   1.1       oki 	doseek:
   1130   1.1       oki 		DPRINTF(("fdcintr: in DOSEEK\n"));
   1131   1.1       oki 		if (fd->sc_cylin == bp->b_cylin)
   1132   1.1       oki 			goto doio;
   1133   1.1       oki 
   1134  1.25   minoura 		out_fdc(iot, ioh, NE7CMD_SPECIFY);/* specify command */
   1135  1.25   minoura 		out_fdc(iot, ioh, 0xd0);	/* XXX const */
   1136  1.25   minoura 		out_fdc(iot, ioh, 0x10);
   1137  1.25   minoura 
   1138  1.25   minoura 		out_fdc(iot, ioh, NE7CMD_SEEK);	/* seek function */
   1139  1.25   minoura 		out_fdc(iot, ioh, fd->sc_drive);	/* drive number */
   1140  1.25   minoura 		out_fdc(iot, ioh, bp->b_cylin * fd->sc_type->step);
   1141   1.1       oki 
   1142   1.1       oki 		fd->sc_cylin = -1;
   1143   1.1       oki 		fdc->sc_state = SEEKWAIT;
   1144   1.1       oki 
   1145   1.1       oki 		fd->sc_dk.dk_seek++;
   1146   1.1       oki 		disk_busy(&fd->sc_dk);
   1147   1.1       oki 
   1148   1.1       oki 		timeout(fdctimeout, fdc, 4 * hz);
   1149   1.1       oki 		return 1;
   1150   1.1       oki 
   1151   1.1       oki 	case DOIO:
   1152   1.1       oki 	doio:
   1153   1.1       oki 		DPRINTF(("fdcintr: DOIO: "));
   1154   1.1       oki 		type = fd->sc_type;
   1155   1.1       oki 		sectrac = type->sectrac;
   1156   1.1       oki 		pos = fd->sc_blkno % (sectrac * (1 << (type->secsize - 2)));
   1157   1.1       oki 		sec = pos / (1 << (type->secsize - 2));
   1158   1.1       oki 		if (type->secsize == 2) {
   1159   1.1       oki 			fd->sc_part = SEC_P11;
   1160   1.1       oki 			nblks = (sectrac - sec) << (type->secsize - 2);
   1161   1.1       oki 			nblks = min(nblks, fd->sc_bcount / FDC_BSIZE);
   1162   1.1       oki 			DPRINTF(("nblks(0)"));
   1163   1.1       oki 		} else if ((fd->sc_blkno % 2) == 0) {
   1164   1.1       oki 			if (fd->sc_bcount & 0x00000200) {
   1165   1.1       oki 				if (fd->sc_bcount == FDC_BSIZE) {
   1166   1.1       oki 					fd->sc_part = SEC_P10;
   1167   1.1       oki 					nblks = 1;
   1168   1.1       oki 					DPRINTF(("nblks(1)"));
   1169   1.1       oki 				} else {
   1170   1.1       oki 					fd->sc_part = SEC_P11;
   1171   1.1       oki 					nblks = (sectrac - sec) * 2;
   1172   1.1       oki 					nblks = min(nblks, fd->sc_bcount
   1173   1.1       oki 						    / FDC_BSIZE - 1);
   1174   1.1       oki 					DPRINTF(("nblks(2)"));
   1175   1.1       oki 				}
   1176   1.1       oki 			} else {
   1177   1.1       oki 				fd->sc_part = SEC_P11;
   1178   1.1       oki 				nblks = (sectrac - sec)
   1179   1.1       oki 					<< (type->secsize - 2);
   1180   1.1       oki 				nblks = min(nblks, fd->sc_bcount / FDC_BSIZE);
   1181   1.1       oki 				DPRINTF(("nblks(3)"));
   1182   1.1       oki 			}
   1183   1.1       oki 		} else {
   1184   1.1       oki 			fd->sc_part = SEC_P01;
   1185   1.1       oki 			nblks = 1;
   1186   1.1       oki 			DPRINTF(("nblks(4)"));
   1187   1.1       oki 		}
   1188   1.1       oki 		nblks = min(nblks, FDC_MAXIOSIZE / FDC_BSIZE);
   1189   1.1       oki 		DPRINTF((" %d\n", nblks));
   1190   1.1       oki 		fd->sc_nblks = nblks;
   1191   1.1       oki 		fd->sc_nbytes = nblks * FDC_BSIZE;
   1192   1.1       oki 		head = (fd->sc_blkno
   1193   1.1       oki 			% (type->seccyl * (1 << (type->secsize - 2))))
   1194   1.1       oki 			 / (type->sectrac * (1 << (type->secsize - 2)));
   1195   1.1       oki 
   1196   1.1       oki #ifdef DIAGNOSTIC
   1197   1.1       oki 		{int block;
   1198   1.1       oki 		 block = ((fd->sc_cylin * type->heads + head) * type->sectrac
   1199   1.1       oki 			  + sec) * (1 << (type->secsize - 2));
   1200   1.1       oki 		 block += (fd->sc_part == SEC_P01) ? 1 : 0;
   1201   1.1       oki 		 if (block != fd->sc_blkno) {
   1202   1.8  christos 			 printf("C H R N: %d %d %d %d\n", fd->sc_cylin, head, sec, type->secsize);
   1203   1.8  christos 			 printf("fdcintr: doio: block %d != blkno %d\n", block, fd->sc_blkno);
   1204   1.1       oki #ifdef DDB
   1205   1.1       oki 			 Debugger();
   1206   1.1       oki #endif
   1207   1.1       oki 		 }}
   1208   1.1       oki #endif
   1209   1.1       oki 		read = bp->b_flags & B_READ;
   1210   1.1       oki 		DPRINTF(("fdcintr: %s drive %d track %d head %d sec %d nblks %d, skip %d\n",
   1211   1.1       oki 			 read ? "read" : "write", fd->sc_drive, fd->sc_cylin,
   1212   1.1       oki 			 head, sec, nblks, fd->sc_skip));
   1213   1.1       oki 		DPRINTF(("C H R N: %d %d %d %d\n", fd->sc_cylin, head, sec,
   1214   1.1       oki 			 type->secsize));
   1215   1.1       oki 
   1216   1.1       oki 		if (fd->sc_part != SEC_P11)
   1217   1.1       oki 			goto docopy;
   1218   1.1       oki 
   1219  1.25   minoura 		fdc_dmastart(fdc,
   1220  1.25   minoura 			     read, bp->b_data + fd->sc_skip, fd->sc_nbytes);
   1221   1.1       oki 		if (read)
   1222  1.25   minoura 			out_fdc(iot, ioh, NE7CMD_READ);	/* READ */
   1223   1.1       oki 		else
   1224  1.25   minoura 			out_fdc(iot, ioh, NE7CMD_WRITE); /* WRITE */
   1225  1.25   minoura 		out_fdc(iot, ioh, (head << 2) | fd->sc_drive);
   1226  1.25   minoura 		out_fdc(iot, ioh, bp->b_cylin);		/* cylinder */
   1227  1.25   minoura 		out_fdc(iot, ioh, head);
   1228  1.25   minoura 		out_fdc(iot, ioh, sec + 1);		/* sector +1 */
   1229  1.25   minoura 		out_fdc(iot, ioh, type->secsize);	/* sector size */
   1230  1.25   minoura 		out_fdc(iot, ioh, type->sectrac);	/* sectors/track */
   1231  1.25   minoura 		out_fdc(iot, ioh, type->gap1);		/* gap1 size */
   1232  1.25   minoura 		out_fdc(iot, ioh, type->datalen);	/* data length */
   1233   1.1       oki 		fdc->sc_state = IOCOMPLETE;
   1234   1.1       oki 
   1235   1.1       oki 		disk_busy(&fd->sc_dk);
   1236   1.1       oki 
   1237   1.1       oki 		/* allow 2 seconds for operation */
   1238   1.1       oki 		timeout(fdctimeout, fdc, 2 * hz);
   1239   1.1       oki 		return 1;				/* will return later */
   1240   1.1       oki 
   1241   1.1       oki 	case DOCOPY:
   1242   1.1       oki 	docopy:
   1243   1.1       oki 		DPRINTF(("fdcintr: DOCOPY:\n"));
   1244  1.25   minoura 		fdc_dmastart(fdc, B_READ, fd->sc_copybuf, 1024);
   1245  1.25   minoura 		out_fdc(iot, ioh, NE7CMD_READ);		/* READ */
   1246  1.25   minoura 		out_fdc(iot, ioh, (head << 2) | fd->sc_drive);
   1247  1.25   minoura 		out_fdc(iot, ioh, bp->b_cylin);		/* cylinder */
   1248  1.25   minoura 		out_fdc(iot, ioh, head);
   1249  1.25   minoura 		out_fdc(iot, ioh, sec + 1);		/* sector +1 */
   1250  1.25   minoura 		out_fdc(iot, ioh, type->secsize);	/* sector size */
   1251  1.25   minoura 		out_fdc(iot, ioh, type->sectrac);	/* sectors/track */
   1252  1.25   minoura 		out_fdc(iot, ioh, type->gap1);		/* gap1 size */
   1253  1.25   minoura 		out_fdc(iot, ioh, type->datalen);	/* data length */
   1254   1.1       oki 		fdc->sc_state = COPYCOMPLETE;
   1255   1.1       oki 		/* allow 2 seconds for operation */
   1256   1.1       oki 		timeout(fdctimeout, fdc, 2 * hz);
   1257   1.1       oki 		return 1;				/* will return later */
   1258   1.1       oki 
   1259   1.1       oki 	case DOIOHALF:
   1260   1.1       oki 	doiohalf:
   1261   1.1       oki 		DPRINTF((" DOIOHALF:\n"));
   1262   1.1       oki 
   1263   1.1       oki #ifdef DIAGNOSTIC
   1264   1.1       oki 		type = fd->sc_type;
   1265   1.1       oki 		sectrac = type->sectrac;
   1266   1.1       oki 		pos = fd->sc_blkno % (sectrac * (1 << (type->secsize - 2)));
   1267   1.1       oki 		sec = pos / (1 << (type->secsize - 2));
   1268   1.1       oki 		head = (fd->sc_blkno
   1269   1.1       oki 			% (type->seccyl * (1 << (type->secsize - 2))))
   1270   1.1       oki 			 / (type->sectrac * (1 << (type->secsize - 2)));
   1271   1.1       oki 		{int block;
   1272   1.1       oki 		 block = ((fd->sc_cylin * type->heads + head) * type->sectrac + sec)
   1273   1.1       oki 			 * (1 << (type->secsize - 2));
   1274   1.1       oki 		 block += (fd->sc_part == SEC_P01) ? 1 : 0;
   1275   1.1       oki 		 if (block != fd->sc_blkno) {
   1276   1.8  christos 			 printf("fdcintr: block %d != blkno %d\n", block, fd->sc_blkno);
   1277   1.1       oki #ifdef DDB
   1278   1.1       oki 			 Debugger();
   1279   1.1       oki #endif
   1280   1.1       oki 		 }}
   1281   1.1       oki #endif
   1282   1.1       oki 		if (read = bp->b_flags & B_READ) {
   1283   1.1       oki 			bcopy(fd->sc_copybuf
   1284   1.1       oki 			      + (fd->sc_part & SEC_P01 ? FDC_BSIZE : 0),
   1285   1.1       oki 			      bp->b_data + fd->sc_skip,
   1286   1.1       oki 			      FDC_BSIZE);
   1287   1.1       oki 			fdc->sc_state = IOCOMPLETE;
   1288   1.1       oki 			goto iocomplete2;
   1289   1.1       oki 		} else {
   1290   1.1       oki 			bcopy(bp->b_data + fd->sc_skip,
   1291   1.1       oki 			      fd->sc_copybuf
   1292   1.1       oki 			      + (fd->sc_part & SEC_P01 ? FDC_BSIZE : 0),
   1293   1.1       oki 			      FDC_BSIZE);
   1294  1.25   minoura 			fdc_dmastart(fdc, read, fd->sc_copybuf, 1024);
   1295   1.1       oki 		}
   1296  1.25   minoura 		out_fdc(iot, ioh, NE7CMD_WRITE);	/* WRITE */
   1297  1.25   minoura 		out_fdc(iot, ioh, (head << 2) | fd->sc_drive);
   1298  1.25   minoura 		out_fdc(iot, ioh, bp->b_cylin);		/* cylinder */
   1299  1.25   minoura 		out_fdc(iot, ioh, head);
   1300  1.25   minoura 		out_fdc(iot, ioh, sec + 1);		/* sector +1 */
   1301  1.25   minoura 		out_fdc(iot, ioh, fd->sc_type->secsize); /* sector size */
   1302  1.25   minoura 		out_fdc(iot, ioh, sectrac);		/* sectors/track */
   1303  1.25   minoura 		out_fdc(iot, ioh, fd->sc_type->gap1);	/* gap1 size */
   1304  1.25   minoura 		out_fdc(iot, ioh, fd->sc_type->datalen); /* data length */
   1305   1.1       oki 		fdc->sc_state = IOCOMPLETE;
   1306   1.1       oki 		/* allow 2 seconds for operation */
   1307   1.1       oki 		timeout(fdctimeout, fdc, 2 * hz);
   1308   1.1       oki 		return 1;				/* will return later */
   1309   1.1       oki 
   1310   1.1       oki 	case SEEKWAIT:
   1311   1.1       oki 		untimeout(fdctimeout, fdc);
   1312   1.1       oki 		fdc->sc_state = SEEKCOMPLETE;
   1313   1.1       oki 		/* allow 1/50 second for heads to settle */
   1314  1.25   minoura #if 0
   1315  1.25   minoura 		timeout(fdcpseudointr, fdc, hz / 50);
   1316  1.25   minoura #endif
   1317   1.1       oki 		return 1;
   1318   1.1       oki 
   1319   1.1       oki 	case SEEKCOMPLETE:
   1320   1.1       oki 		/* Make sure seek really happened */
   1321   1.1       oki 		DPRINTF(("fdcintr: SEEKCOMPLETE: FDC status = %x\n",
   1322  1.25   minoura 			 bus_space_read_1(fdc->sc_iot, fdc->sc_ioh, fdsts)));
   1323  1.25   minoura 		out_fdc(iot, ioh, NE7CMD_SENSEI);
   1324   1.1       oki 		tmp = fdcresult(fdc);
   1325   1.1       oki 		if ((st0 & 0xf8) == 0xc0) {
   1326   1.1       oki 			DPRINTF(("fdcintr: first seek!\n"));
   1327   1.1       oki 			fdc->sc_state = DORECAL;
   1328   1.1       oki 			goto loop;
   1329  1.25   minoura 		} else if (tmp != 2 ||
   1330  1.25   minoura 			   (st0 & 0xf8) != 0x20 ||
   1331  1.25   minoura 			   cyl != bp->b_cylin) {
   1332   1.1       oki #ifdef FDDEBUG
   1333   1.1       oki 			fdcstatus(&fd->sc_dev, 2, "seek failed");
   1334   1.1       oki #endif
   1335   1.1       oki 			fdcretry(fdc);
   1336   1.1       oki 			goto loop;
   1337   1.1       oki 		}
   1338   1.1       oki 		fd->sc_cylin = bp->b_cylin;
   1339   1.1       oki 		goto doio;
   1340   1.1       oki 
   1341   1.1       oki 	case IOTIMEDOUT:
   1342   1.1       oki #if 0
   1343   1.1       oki 		isa_dmaabort(fdc->sc_drq);
   1344   1.1       oki #endif
   1345   1.1       oki 	case SEEKTIMEDOUT:
   1346   1.1       oki 	case RECALTIMEDOUT:
   1347   1.1       oki 	case RESETTIMEDOUT:
   1348   1.1       oki 		fdcretry(fdc);
   1349   1.1       oki 		goto loop;
   1350   1.1       oki 
   1351   1.1       oki 	case IOCOMPLETE: /* IO DONE, post-analyze */
   1352   1.1       oki 		untimeout(fdctimeout, fdc);
   1353   1.1       oki 		DPRINTF(("fdcintr: in IOCOMPLETE\n"));
   1354   1.1       oki 		if ((tmp = fdcresult(fdc)) != 7 || (st0 & 0xf8) != 0) {
   1355   1.8  christos 			printf("fdcintr: resnum=%d, st0=%x\n", tmp, st0);
   1356   1.1       oki #if 0
   1357   1.1       oki 			isa_dmaabort(fdc->sc_drq);
   1358   1.1       oki #endif
   1359   1.1       oki 			fdcstatus(&fd->sc_dev, 7, bp->b_flags & B_READ ?
   1360   1.1       oki 				  "read failed" : "write failed");
   1361   1.8  christos 			printf("blkno %d nblks %d\n",
   1362   1.1       oki 			    fd->sc_blkno, fd->sc_nblks);
   1363   1.1       oki 			fdcretry(fdc);
   1364   1.1       oki 			goto loop;
   1365   1.1       oki 		}
   1366   1.1       oki #if 0
   1367   1.1       oki 		isa_dmadone(bp->b_flags & B_READ, bp->b_data + fd->sc_skip,
   1368   1.1       oki 		    nblks * FDC_BSIZE, fdc->sc_drq);
   1369   1.1       oki #endif
   1370   1.1       oki 	iocomplete2:
   1371   1.1       oki 		if (fdc->sc_errors) {
   1372  1.25   minoura 			diskerr(bp, "fd", "soft error (corrected)", LOG_PRINTF,
   1373   1.1       oki 			    fd->sc_skip / FDC_BSIZE, (struct disklabel *)NULL);
   1374   1.8  christos 			printf("\n");
   1375   1.1       oki 			fdc->sc_errors = 0;
   1376   1.1       oki 		}
   1377   1.1       oki 		fd->sc_blkno += fd->sc_nblks;
   1378   1.1       oki 		fd->sc_skip += fd->sc_nbytes;
   1379   1.1       oki 		fd->sc_bcount -= fd->sc_nbytes;
   1380   1.1       oki 		DPRINTF(("fd->sc_bcount = %d\n", fd->sc_bcount));
   1381   1.1       oki 		if (fd->sc_bcount > 0) {
   1382   1.1       oki 			bp->b_cylin = fd->sc_blkno
   1383   1.1       oki 				/ (fd->sc_type->seccyl
   1384   1.1       oki 				   * (1 << (fd->sc_type->secsize - 2)));
   1385   1.1       oki 			goto doseek;
   1386   1.1       oki 		}
   1387   1.1       oki 		fdfinish(fd, bp);
   1388   1.1       oki 		goto loop;
   1389   1.1       oki 
   1390   1.1       oki 	case COPYCOMPLETE: /* IO DONE, post-analyze */
   1391   1.1       oki 		DPRINTF(("fdcintr: COPYCOMPLETE:"));
   1392   1.1       oki 		untimeout(fdctimeout, fdc);
   1393   1.1       oki 		if ((tmp = fdcresult(fdc)) != 7 || (st0 & 0xf8) != 0) {
   1394   1.8  christos 			printf("fdcintr: resnum=%d, st0=%x\n", tmp, st0);
   1395   1.1       oki #if 0
   1396   1.1       oki 			isa_dmaabort(fdc->sc_drq);
   1397   1.1       oki #endif
   1398   1.1       oki 			fdcstatus(&fd->sc_dev, 7, bp->b_flags & B_READ ?
   1399   1.1       oki 				  "read failed" : "write failed");
   1400   1.8  christos 			printf("blkno %d nblks %d\n",
   1401   1.1       oki 			    fd->sc_blkno, fd->sc_nblks);
   1402   1.1       oki 			fdcretry(fdc);
   1403   1.1       oki 			goto loop;
   1404   1.1       oki 		}
   1405   1.1       oki 		goto doiohalf;
   1406   1.1       oki 
   1407   1.1       oki 	case DORESET:
   1408   1.1       oki 		DPRINTF(("fdcintr: in DORESET\n"));
   1409   1.1       oki 		/* try a reset, keep motor on */
   1410   1.1       oki 		fd_set_motor(fdc, 1);
   1411   1.1       oki 		DELAY(100);
   1412   1.1       oki 		fd_set_motor(fdc, 0);
   1413   1.1       oki 		fdc->sc_state = RESETCOMPLETE;
   1414   1.1       oki 		timeout(fdctimeout, fdc, hz / 2);
   1415   1.1       oki 		return 1;			/* will return later */
   1416   1.1       oki 
   1417   1.1       oki 	case RESETCOMPLETE:
   1418   1.1       oki 		DPRINTF(("fdcintr: in RESETCOMPLETE\n"));
   1419   1.1       oki 		untimeout(fdctimeout, fdc);
   1420   1.1       oki 		/* clear the controller output buffer */
   1421   1.1       oki 		for (i = 0; i < 4; i++) {
   1422  1.25   minoura 			out_fdc(iot, ioh, NE7CMD_SENSEI);
   1423   1.1       oki 			(void) fdcresult(fdc);
   1424   1.1       oki 		}
   1425   1.1       oki 
   1426   1.1       oki 		/* fall through */
   1427   1.1       oki 	case DORECAL:
   1428   1.1       oki 		DPRINTF(("fdcintr: in DORECAL\n"));
   1429  1.25   minoura 		out_fdc(iot, ioh, NE7CMD_RECAL);	/* recalibrate function */
   1430  1.25   minoura 		out_fdc(iot, ioh, fd->sc_drive);
   1431   1.1       oki 		fdc->sc_state = RECALWAIT;
   1432   1.1       oki 		timeout(fdctimeout, fdc, 5 * hz);
   1433   1.1       oki 		return 1;			/* will return later */
   1434   1.1       oki 
   1435   1.1       oki 	case RECALWAIT:
   1436   1.1       oki 		DPRINTF(("fdcintr: in RECALWAIT\n"));
   1437   1.1       oki 		untimeout(fdctimeout, fdc);
   1438   1.1       oki 		fdc->sc_state = RECALCOMPLETE;
   1439   1.1       oki 		/* allow 1/30 second for heads to settle */
   1440  1.25   minoura #if 0
   1441  1.25   minoura 		timeout(fdcpseudointr, fdc, hz / 30);
   1442  1.25   minoura #endif
   1443   1.1       oki 		return 1;			/* will return later */
   1444   1.1       oki 
   1445   1.1       oki 	case RECALCOMPLETE:
   1446   1.1       oki 		DPRINTF(("fdcintr: in RECALCOMPLETE\n"));
   1447  1.25   minoura 		out_fdc(iot, ioh, NE7CMD_SENSEI);
   1448   1.1       oki 		tmp = fdcresult(fdc);
   1449   1.1       oki 		if ((st0 & 0xf8) == 0xc0) {
   1450   1.1       oki 			DPRINTF(("fdcintr: first seek!\n"));
   1451   1.1       oki 			fdc->sc_state = DORECAL;
   1452   1.1       oki 			goto loop;
   1453   1.1       oki 		} else if (tmp != 2 || (st0 & 0xf8) != 0x20 || cyl != 0) {
   1454   1.1       oki #ifdef FDDEBUG
   1455   1.1       oki 			fdcstatus(&fd->sc_dev, 2, "recalibrate failed");
   1456   1.1       oki #endif
   1457   1.1       oki 			fdcretry(fdc);
   1458   1.1       oki 			goto loop;
   1459   1.1       oki 		}
   1460   1.1       oki 		fd->sc_cylin = 0;
   1461   1.1       oki 		goto doseek;
   1462   1.1       oki 
   1463   1.1       oki 	case MOTORWAIT:
   1464   1.1       oki 		if (fd->sc_flags & FD_MOTOR_WAIT)
   1465   1.1       oki 			return 1;		/* time's not up yet */
   1466   1.1       oki 		goto doseek;
   1467   1.1       oki 
   1468   1.1       oki 	default:
   1469   1.1       oki 		fdcstatus(&fd->sc_dev, 0, "stray interrupt");
   1470   1.1       oki 		return 1;
   1471   1.1       oki 	}
   1472   1.1       oki #ifdef DIAGNOSTIC
   1473   1.1       oki 	panic("fdcintr: impossible");
   1474   1.1       oki #endif
   1475   1.1       oki #undef	st0
   1476   1.1       oki #undef	cyl
   1477   1.1       oki }
   1478   1.1       oki 
   1479   1.1       oki void
   1480   1.1       oki fdcretry(fdc)
   1481   1.1       oki 	struct fdc_softc *fdc;
   1482   1.1       oki {
   1483   1.1       oki 	struct fd_softc *fd;
   1484   1.1       oki 	struct buf *bp;
   1485  1.11       oki 	char bits[64];
   1486   1.1       oki 
   1487   1.1       oki 	DPRINTF(("fdcretry:\n"));
   1488   1.1       oki 	fd = fdc->sc_drives.tqh_first;
   1489   1.1       oki 	bp = fd->sc_q.b_actf;
   1490   1.1       oki 
   1491   1.1       oki 	switch (fdc->sc_errors) {
   1492   1.1       oki 	case 0:
   1493   1.1       oki 		/* try again */
   1494   1.1       oki 		fdc->sc_state = SEEKCOMPLETE;
   1495   1.1       oki 		break;
   1496   1.1       oki 
   1497   1.1       oki 	case 1: case 2: case 3:
   1498   1.1       oki 		/* didn't work; try recalibrating */
   1499   1.1       oki 		fdc->sc_state = DORECAL;
   1500   1.1       oki 		break;
   1501   1.1       oki 
   1502   1.1       oki 	case 4:
   1503   1.1       oki 		/* still no go; reset the bastard */
   1504   1.1       oki 		fdc->sc_state = DORESET;
   1505   1.1       oki 		break;
   1506   1.1       oki 
   1507   1.1       oki 	default:
   1508   1.1       oki 		diskerr(bp, "fd", "hard error", LOG_PRINTF,
   1509   1.1       oki 			fd->sc_skip, (struct disklabel *)NULL);
   1510  1.10       oki 		printf(" (st0 %s", bitmask_snprintf(fdc->sc_status[0],
   1511  1.10       oki 						    NE7_ST0BITS, bits,
   1512  1.10       oki 						    sizeof(bits)));
   1513  1.10       oki 		printf(" st1 %s", bitmask_snprintf(fdc->sc_status[1],
   1514  1.10       oki 						   NE7_ST1BITS, bits,
   1515  1.10       oki 						   sizeof(bits)));
   1516  1.10       oki 		printf(" st2 %s", bitmask_snprintf(fdc->sc_status[2],
   1517  1.10       oki 						   NE7_ST2BITS, bits,
   1518  1.10       oki 						   sizeof(bits)));
   1519  1.10       oki 		printf(" cyl %d head %d sec %d)\n",
   1520  1.10       oki 		       fdc->sc_status[3],
   1521  1.10       oki 		       fdc->sc_status[4],
   1522  1.10       oki 		       fdc->sc_status[5]);
   1523   1.1       oki 
   1524   1.1       oki 		bp->b_flags |= B_ERROR;
   1525   1.1       oki 		bp->b_error = EIO;
   1526   1.1       oki 		fdfinish(fd, bp);
   1527   1.1       oki 	}
   1528   1.1       oki 	fdc->sc_errors++;
   1529   1.1       oki }
   1530   1.1       oki 
   1531   1.1       oki int
   1532   1.1       oki fdsize(dev)
   1533   1.1       oki 	dev_t dev;
   1534   1.1       oki {
   1535   1.1       oki 
   1536   1.1       oki 	/* Swapping to floppies would not make sense. */
   1537   1.1       oki 	return -1;
   1538   1.1       oki }
   1539   1.1       oki 
   1540   1.1       oki int
   1541   1.1       oki fddump(dev, blkno, va, size)
   1542   1.1       oki 	dev_t dev;
   1543   1.1       oki 	daddr_t blkno;
   1544   1.1       oki 	caddr_t va;
   1545   1.1       oki 	size_t size;
   1546   1.1       oki {
   1547   1.1       oki 
   1548   1.1       oki 	/* Not implemented. */
   1549   1.1       oki 	return ENXIO;
   1550   1.1       oki }
   1551   1.1       oki 
   1552   1.1       oki int
   1553  1.14       oki fdioctl(dev, cmd, addr, flag, p)
   1554   1.1       oki 	dev_t dev;
   1555   1.1       oki 	u_long cmd;
   1556   1.1       oki 	caddr_t addr;
   1557   1.1       oki 	int flag;
   1558  1.14       oki 	struct proc *p;
   1559   1.1       oki {
   1560   1.1       oki 	struct fd_softc *fd = fd_cd.cd_devs[FDUNIT(dev)];
   1561  1.25   minoura 	struct fdc_softc *fdc = (void*) fd->sc_dev.dv_parent;
   1562   1.1       oki 	int unit = FDUNIT(dev);
   1563  1.24    bouyer 	int part = DISKPART(dev);
   1564   1.1       oki 	struct disklabel buffer;
   1565   1.1       oki 	int error;
   1566   1.1       oki 
   1567   1.1       oki 	DPRINTF(("fdioctl:\n"));
   1568   1.1       oki 	switch (cmd) {
   1569   1.1       oki 	case DIOCGDINFO:
   1570   1.1       oki #if 1
   1571   1.1       oki 		*(struct disklabel *)addr = *(fd->sc_dk.dk_label);
   1572   1.1       oki 		return(0);
   1573   1.1       oki #else
   1574  1.25   minoura 		memset(&buffer, 0, sizeof(buffer));
   1575   1.1       oki 
   1576   1.1       oki 		buffer.d_secpercyl = fd->sc_type->seccyl;
   1577   1.1       oki 		buffer.d_type = DTYPE_FLOPPY;
   1578   1.1       oki 		buffer.d_secsize = 128 << fd->sc_type->secsize;
   1579   1.1       oki 
   1580   1.1       oki 		if (readdisklabel(dev, fdstrategy, &buffer, NULL) != NULL)
   1581   1.1       oki 			return EINVAL;
   1582   1.1       oki 
   1583   1.1       oki 		*(struct disklabel *)addr = buffer;
   1584   1.1       oki 		return 0;
   1585   1.1       oki #endif
   1586   1.1       oki 
   1587   1.1       oki 	case DIOCGPART:
   1588   1.1       oki 		((struct partinfo *)addr)->disklab = fd->sc_dk.dk_label;
   1589   1.1       oki 		((struct partinfo *)addr)->part =
   1590  1.24    bouyer 		    &fd->sc_dk.dk_label->d_partitions[part];
   1591   1.1       oki 		return(0);
   1592   1.1       oki 
   1593   1.1       oki 	case DIOCWLABEL:
   1594   1.1       oki 		if ((flag & FWRITE) == 0)
   1595   1.1       oki 			return EBADF;
   1596   1.1       oki 		/* XXX do something */
   1597   1.1       oki 		return 0;
   1598   1.1       oki 
   1599   1.1       oki 	case DIOCWDINFO:
   1600   1.1       oki 		if ((flag & FWRITE) == 0)
   1601   1.1       oki 			return EBADF;
   1602   1.1       oki 
   1603   1.1       oki 		error = setdisklabel(&buffer, (struct disklabel *)addr, 0, NULL);
   1604   1.1       oki 		if (error)
   1605   1.1       oki 			return error;
   1606   1.1       oki 
   1607   1.1       oki 		error = writedisklabel(dev, fdstrategy, &buffer, NULL);
   1608   1.1       oki 		return error;
   1609   1.1       oki 
   1610   1.1       oki 	case DIOCLOCK:
   1611   1.1       oki 		/*
   1612   1.1       oki 		 * Nothing to do here, really.
   1613   1.1       oki 		 */
   1614   1.1       oki 		return 0; /* XXX */
   1615   1.1       oki 
   1616   1.1       oki 	case DIOCEJECT:
   1617  1.24    bouyer 		if (*(int *)addr == 0) {
   1618  1.24    bouyer 			/*
   1619  1.24    bouyer 			 * Don't force eject: check that we are the only
   1620  1.24    bouyer 			 * partition open. If so, unlock it.
   1621  1.24    bouyer 			 */
   1622  1.24    bouyer 			if ((fd->sc_dk.dk_openmask & ~(1 << part)) != 0 ||
   1623  1.24    bouyer 			    fd->sc_dk.dk_bopenmask + fd->sc_dk.dk_copenmask !=
   1624  1.24    bouyer 			    fd->sc_dk.dk_openmask) {
   1625  1.24    bouyer 				return (EBUSY);
   1626  1.24    bouyer 			}
   1627  1.24    bouyer 		}
   1628  1.24    bouyer 		/* FALLTHROUGH */
   1629  1.24    bouyer 	case ODIOCEJECT:
   1630  1.25   minoura 		fd_do_eject(fdc, unit);
   1631   1.1       oki 		return 0;
   1632   1.1       oki 
   1633   1.1       oki 	default:
   1634   1.1       oki 		return ENOTTY;
   1635   1.1       oki 	}
   1636   1.1       oki 
   1637   1.1       oki #ifdef DIAGNOSTIC
   1638   1.1       oki 	panic("fdioctl: impossible");
   1639   1.1       oki #endif
   1640   1.1       oki }
   1641   1.1       oki 
   1642   1.1       oki void
   1643  1.25   minoura fd_do_eject(fdc, unit)
   1644  1.25   minoura 	struct fdc_softc *fdc;
   1645   1.1       oki 	int unit;
   1646   1.1       oki {
   1647  1.25   minoura 	bus_space_write_1(fdc->sc_iot, fdc->sc_ioh, fdout,
   1648  1.25   minoura 			  0x20 | ( 1 << unit));
   1649   1.1       oki 	DELAY(1); /* XXX */
   1650  1.25   minoura 	bus_space_write_1(fdc->sc_iot, fdc->sc_ioh, fdout, 0x20);
   1651   1.1       oki }
   1652   1.1       oki 
   1653   1.1       oki /*
   1654   1.1       oki  * Build disk label. For now we only create a label from what we know
   1655   1.1       oki  * from 'sc'.
   1656   1.1       oki  */
   1657   1.1       oki static int
   1658   1.1       oki fdgetdisklabel(sc, dev)
   1659   1.1       oki 	struct fd_softc *sc;
   1660   1.1       oki 	dev_t dev;
   1661   1.1       oki {
   1662   1.1       oki 	struct disklabel *lp;
   1663   1.1       oki 	int part;
   1664   1.1       oki 
   1665  1.25   minoura 	DPRINTF(("fdgetdisklabel()\n"));
   1666   1.1       oki 
   1667   1.1       oki 	part = DISKPART(dev);
   1668   1.1       oki 	lp = sc->sc_dk.dk_label;
   1669   1.1       oki 	bzero(lp, sizeof(struct disklabel));
   1670   1.1       oki 
   1671   1.1       oki 	lp->d_secsize     = 128 << sc->sc_type->secsize;
   1672   1.1       oki 	lp->d_ntracks     = sc->sc_type->heads;
   1673   1.1       oki 	lp->d_nsectors    = sc->sc_type->sectrac;
   1674   1.1       oki 	lp->d_secpercyl   = lp->d_ntracks * lp->d_nsectors;
   1675   1.1       oki 	lp->d_ncylinders  = sc->sc_type->size / lp->d_secpercyl;
   1676   1.1       oki 	lp->d_secperunit  = sc->sc_type->size;
   1677   1.1       oki 
   1678   1.1       oki 	lp->d_type        = DTYPE_FLOPPY;
   1679   1.1       oki 	lp->d_rpm         = 300; 	/* XXX */
   1680   1.1       oki 	lp->d_interleave  = 1;		/* FIXME: is this OK?		*/
   1681   1.1       oki 	lp->d_bbsize      = 0;
   1682   1.1       oki 	lp->d_sbsize      = 0;
   1683   1.1       oki 	lp->d_npartitions = part + 1;
   1684   1.1       oki #define STEP_DELAY	6000	/* 6ms (6000us) delay after stepping	*/
   1685   1.1       oki 	lp->d_trkseek     = STEP_DELAY; /* XXX */
   1686   1.1       oki 	lp->d_magic       = DISKMAGIC;
   1687   1.1       oki 	lp->d_magic2      = DISKMAGIC;
   1688   1.1       oki 	lp->d_checksum    = dkcksum(lp);
   1689   1.1       oki 	lp->d_partitions[part].p_size   = lp->d_secperunit;
   1690   1.1       oki 	lp->d_partitions[part].p_fstype = FS_UNUSED;
   1691   1.1       oki 	lp->d_partitions[part].p_fsize  = 1024;
   1692   1.1       oki 	lp->d_partitions[part].p_frag   = 8;
   1693   1.1       oki 
   1694   1.1       oki 	return(0);
   1695   1.1       oki }
   1696   1.1       oki 
   1697  1.14       oki /*
   1698  1.14       oki  * Mountroot hook: prompt the user to enter the root file system
   1699  1.14       oki  * floppy.
   1700  1.14       oki  */
   1701   1.4       oki void
   1702   1.4       oki fd_mountroot_hook(dev)
   1703   1.4       oki 	struct device *dev;
   1704   1.4       oki {
   1705  1.25   minoura 	struct fd_softc *fd = (void*) dev;
   1706  1.25   minoura 	struct fdc_softc *fdc = (void*) fd->sc_dev.dv_parent;
   1707   1.4       oki 	int c;
   1708   1.4       oki 
   1709  1.25   minoura 	fd_do_eject(fdc, dev->dv_unit);
   1710   1.8  christos 	printf("Insert filesystem floppy and press return.");
   1711   1.4       oki 	for (;;) {
   1712   1.4       oki 		c = cngetc();
   1713   1.4       oki 		if ((c == '\r') || (c == '\n')) {
   1714   1.8  christos 			printf("\n");
   1715  1.14       oki 			break;
   1716   1.4       oki 		}
   1717   1.4       oki 	}
   1718   1.4       oki }
   1719