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aic79xx_inline.h revision 1.16.4.1
      1  1.16.4.1      yamt /*	$NetBSD: aic79xx_inline.h,v 1.16.4.1 2009/05/04 08:12:40 yamt Exp $	*/
      2       1.1      fvdl 
      3       1.1      fvdl /*
      4       1.1      fvdl  * Inline routines shareable across OS platforms.
      5       1.1      fvdl  *
      6       1.1      fvdl  * Copyright (c) 1994-2001 Justin T. Gibbs.
      7       1.1      fvdl  * Copyright (c) 2000-2003 Adaptec Inc.
      8       1.1      fvdl  * All rights reserved.
      9       1.1      fvdl  *
     10       1.1      fvdl  * Redistribution and use in source and binary forms, with or without
     11       1.1      fvdl  * modification, are permitted provided that the following conditions
     12       1.1      fvdl  * are met:
     13       1.1      fvdl  * 1. Redistributions of source code must retain the above copyright
     14       1.1      fvdl  *    notice, this list of conditions, and the following disclaimer,
     15       1.1      fvdl  *    without modification.
     16       1.1      fvdl  * 2. Redistributions in binary form must reproduce at minimum a disclaimer
     17       1.1      fvdl  *    substantially similar to the "NO WARRANTY" disclaimer below
     18       1.1      fvdl  *    ("Disclaimer") and any redistribution must be conditioned upon
     19       1.1      fvdl  *    including a substantially similar Disclaimer requirement for further
     20       1.1      fvdl  *    binary redistribution.
     21       1.1      fvdl  * 3. Neither the names of the above-listed copyright holders nor the names
     22       1.1      fvdl  *    of any contributors may be used to endorse or promote products derived
     23       1.1      fvdl  *    from this software without specific prior written permission.
     24       1.1      fvdl  *
     25       1.1      fvdl  * Alternatively, this software may be distributed under the terms of the
     26       1.1      fvdl  * GNU General Public License ("GPL") version 2 as published by the Free
     27       1.1      fvdl  * Software Foundation.
     28       1.1      fvdl  *
     29       1.1      fvdl  * NO WARRANTY
     30       1.1      fvdl  * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
     31       1.1      fvdl  * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
     32       1.1      fvdl  * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTIBILITY AND FITNESS FOR
     33       1.1      fvdl  * A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
     34       1.1      fvdl  * HOLDERS OR CONTRIBUTORS BE LIABLE FOR SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     35       1.1      fvdl  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     36       1.1      fvdl  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     37       1.1      fvdl  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT,
     38       1.1      fvdl  * STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING
     39       1.1      fvdl  * IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     40       1.1      fvdl  * POSSIBILITY OF SUCH DAMAGES.
     41       1.1      fvdl  *
     42       1.8   thorpej  * Id: //depot/aic7xxx/aic7xxx/aic79xx_inline.h#51 $
     43       1.1      fvdl  *
     44       1.8   thorpej  * $FreeBSD: src/sys/dev/aic7xxx/aic79xx_inline.h,v 1.12 2003/06/28 04:43:19 gibbs Exp $
     45       1.1      fvdl  */
     46       1.1      fvdl /*
     47       1.1      fvdl  * Ported from FreeBSD by Pascal Renauld, Network Storage Solutions, Inc. - April 2003
     48       1.1      fvdl  */
     49       1.1      fvdl 
     50       1.1      fvdl #ifndef _AIC79XX_INLINE_H_
     51       1.1      fvdl #define _AIC79XX_INLINE_H_
     52       1.1      fvdl 
     53       1.1      fvdl /******************************** Debugging ***********************************/
     54      1.16    dyoung static __inline const char *ahd_name(struct ahd_softc *);
     55       1.1      fvdl 
     56      1.16    dyoung static __inline const char *
     57       1.1      fvdl ahd_name(struct ahd_softc *ahd)
     58       1.1      fvdl {
     59       1.1      fvdl 	return (ahd->name);
     60       1.1      fvdl }
     61       1.1      fvdl 
     62       1.1      fvdl /************************ Sequencer Execution Control *************************/
     63      1.13     perry static __inline void ahd_known_modes(struct ahd_softc *, ahd_mode, ahd_mode);
     64      1.13     perry static __inline ahd_mode_state ahd_build_mode_state(struct ahd_softc *,
     65       1.3    itojun     ahd_mode, ahd_mode);
     66      1.13     perry static __inline void ahd_extract_mode_state(struct ahd_softc *,
     67       1.3    itojun     ahd_mode_state, ahd_mode *, ahd_mode *);
     68      1.13     perry static __inline void ahd_set_modes(struct ahd_softc *, ahd_mode, ahd_mode);
     69      1.13     perry static __inline void ahd_update_modes(struct ahd_softc *);
     70      1.13     perry static __inline void ahd_assert_modes(struct ahd_softc *, ahd_mode,
     71       1.3    itojun     ahd_mode, const char *, int);
     72      1.13     perry static __inline ahd_mode_state ahd_save_modes(struct ahd_softc *);
     73      1.13     perry static __inline void ahd_restore_modes(struct ahd_softc *, ahd_mode_state);
     74      1.13     perry static __inline int  ahd_is_paused(struct ahd_softc *);
     75      1.13     perry static __inline void ahd_pause(struct ahd_softc *);
     76      1.13     perry static __inline void ahd_unpause(struct ahd_softc *);
     77       1.1      fvdl 
     78      1.13     perry static __inline void
     79       1.1      fvdl ahd_known_modes(struct ahd_softc *ahd, ahd_mode src, ahd_mode dst)
     80       1.1      fvdl {
     81       1.1      fvdl 	ahd->src_mode = src;
     82       1.1      fvdl 	ahd->dst_mode = dst;
     83       1.1      fvdl 	ahd->saved_src_mode = src;
     84       1.1      fvdl 	ahd->saved_dst_mode = dst;
     85       1.1      fvdl }
     86       1.1      fvdl 
     87      1.13     perry static __inline ahd_mode_state
     88      1.15  christos ahd_build_mode_state(struct ahd_softc *ahd, ahd_mode src, ahd_mode dst)
     89       1.1      fvdl {
     90       1.1      fvdl 	return ((src << SRC_MODE_SHIFT) | (dst << DST_MODE_SHIFT));
     91       1.1      fvdl }
     92       1.1      fvdl 
     93      1.13     perry static __inline void
     94      1.15  christos ahd_extract_mode_state(struct ahd_softc *ahd, ahd_mode_state state,
     95       1.1      fvdl 		       ahd_mode *src, ahd_mode *dst)
     96       1.1      fvdl {
     97       1.1      fvdl 	*src = (state & SRC_MODE) >> SRC_MODE_SHIFT;
     98       1.1      fvdl 	*dst = (state & DST_MODE) >> DST_MODE_SHIFT;
     99       1.1      fvdl }
    100       1.1      fvdl 
    101      1.13     perry static __inline void
    102       1.1      fvdl ahd_set_modes(struct ahd_softc *ahd, ahd_mode src, ahd_mode dst)
    103       1.1      fvdl {
    104       1.1      fvdl 	if (ahd->src_mode == src && ahd->dst_mode == dst)
    105       1.1      fvdl 		return;
    106       1.1      fvdl #ifdef AHD_DEBUG
    107       1.1      fvdl 	if (ahd->src_mode == AHD_MODE_UNKNOWN
    108       1.1      fvdl 	 || ahd->dst_mode == AHD_MODE_UNKNOWN)
    109       1.1      fvdl 		panic("Setting mode prior to saving it.\n");
    110       1.1      fvdl 	if ((ahd_debug & AHD_SHOW_MODEPTR) != 0)
    111       1.1      fvdl 		printf("%s: Setting mode 0x%x\n", ahd_name(ahd),
    112       1.1      fvdl 		       ahd_build_mode_state(ahd, src, dst));
    113       1.1      fvdl #endif
    114       1.1      fvdl 	ahd_outb(ahd, MODE_PTR, ahd_build_mode_state(ahd, src, dst));
    115       1.1      fvdl 	ahd->src_mode = src;
    116       1.1      fvdl 	ahd->dst_mode = dst;
    117       1.1      fvdl }
    118       1.1      fvdl 
    119      1.13     perry static __inline void
    120       1.1      fvdl ahd_update_modes(struct ahd_softc *ahd)
    121       1.1      fvdl {
    122       1.1      fvdl 	ahd_mode_state mode_ptr;
    123       1.1      fvdl 	ahd_mode src;
    124       1.1      fvdl 	ahd_mode dst;
    125       1.1      fvdl 
    126       1.1      fvdl 	mode_ptr = ahd_inb(ahd, MODE_PTR);
    127       1.1      fvdl #ifdef AHD_DEBUG
    128       1.1      fvdl 	if ((ahd_debug & AHD_SHOW_MODEPTR) != 0)
    129       1.1      fvdl 		printf("Reading mode 0x%x\n", mode_ptr);
    130       1.1      fvdl #endif
    131       1.1      fvdl 	ahd_extract_mode_state(ahd, mode_ptr, &src, &dst);
    132       1.1      fvdl 	ahd_known_modes(ahd, src, dst);
    133       1.1      fvdl }
    134       1.1      fvdl 
    135      1.13     perry static __inline void
    136      1.15  christos ahd_assert_modes(struct ahd_softc *ahd, ahd_mode srcmode,
    137      1.15  christos      ahd_mode dstmode, const char *file, int line)
    138       1.1      fvdl {
    139       1.1      fvdl #ifdef AHD_DEBUG
    140       1.1      fvdl 	if ((srcmode & AHD_MK_MSK(ahd->src_mode)) == 0
    141       1.1      fvdl 	 || (dstmode & AHD_MK_MSK(ahd->dst_mode)) == 0) {
    142       1.1      fvdl 		panic("%s:%s:%d: Mode assertion failed.\n",
    143       1.1      fvdl 		       ahd_name(ahd), file, line);
    144       1.1      fvdl 	}
    145       1.1      fvdl #endif
    146       1.1      fvdl }
    147       1.1      fvdl 
    148      1.13     perry static __inline ahd_mode_state
    149       1.1      fvdl ahd_save_modes(struct ahd_softc *ahd)
    150       1.1      fvdl {
    151       1.1      fvdl 	if (ahd->src_mode == AHD_MODE_UNKNOWN
    152       1.1      fvdl 	 || ahd->dst_mode == AHD_MODE_UNKNOWN)
    153       1.1      fvdl 		ahd_update_modes(ahd);
    154       1.1      fvdl 
    155       1.1      fvdl 	return (ahd_build_mode_state(ahd, ahd->src_mode, ahd->dst_mode));
    156       1.1      fvdl }
    157       1.1      fvdl 
    158      1.13     perry static __inline void
    159       1.1      fvdl ahd_restore_modes(struct ahd_softc *ahd, ahd_mode_state state)
    160       1.1      fvdl {
    161       1.1      fvdl 	ahd_mode src;
    162       1.1      fvdl 	ahd_mode dst;
    163       1.1      fvdl 
    164       1.1      fvdl 	ahd_extract_mode_state(ahd, state, &src, &dst);
    165       1.1      fvdl 	ahd_set_modes(ahd, src, dst);
    166       1.1      fvdl }
    167       1.1      fvdl 
    168       1.1      fvdl #define AHD_ASSERT_MODES(ahd, source, dest) \
    169       1.1      fvdl 	ahd_assert_modes(ahd, source, dest, __FILE__, __LINE__);
    170       1.1      fvdl 
    171       1.1      fvdl /*
    172       1.1      fvdl  * Determine whether the sequencer has halted code execution.
    173       1.1      fvdl  * Returns non-zero status if the sequencer is stopped.
    174       1.1      fvdl  */
    175      1.13     perry static __inline int
    176       1.1      fvdl ahd_is_paused(struct ahd_softc *ahd)
    177       1.1      fvdl {
    178       1.1      fvdl 	return ((ahd_inb(ahd, HCNTRL) & PAUSE) != 0);
    179       1.1      fvdl }
    180       1.1      fvdl 
    181       1.1      fvdl /*
    182       1.1      fvdl  * Request that the sequencer stop and wait, indefinitely, for it
    183       1.1      fvdl  * to stop.  The sequencer will only acknowledge that it is paused
    184       1.1      fvdl  * once it has reached an instruction boundary and PAUSEDIS is
    185       1.1      fvdl  * cleared in the SEQCTL register.  The sequencer may use PAUSEDIS
    186       1.1      fvdl  * for critical sections.
    187       1.1      fvdl  */
    188      1.13     perry static __inline void
    189       1.1      fvdl ahd_pause(struct ahd_softc *ahd)
    190       1.1      fvdl {
    191       1.1      fvdl 	ahd_outb(ahd, HCNTRL, ahd->pause);
    192       1.1      fvdl 
    193       1.1      fvdl 	/*
    194       1.1      fvdl 	 * Since the sequencer can disable pausing in a critical section, we
    195       1.1      fvdl 	 * must loop until it actually stops.
    196       1.1      fvdl 	 */
    197       1.1      fvdl 	while (ahd_is_paused(ahd) == 0)
    198       1.1      fvdl 		;
    199       1.1      fvdl }
    200       1.1      fvdl 
    201       1.1      fvdl /*
    202       1.1      fvdl  * Allow the sequencer to continue program execution.
    203       1.1      fvdl  * We check here to ensure that no additional interrupt
    204       1.1      fvdl  * sources that would cause the sequencer to halt have been
    205       1.1      fvdl  * asserted.  If, for example, a SCSI bus reset is detected
    206       1.1      fvdl  * while we are fielding a different, pausing, interrupt type,
    207       1.1      fvdl  * we don't want to release the sequencer before going back
    208       1.1      fvdl  * into our interrupt handler and dealing with this new
    209       1.1      fvdl  * condition.
    210       1.1      fvdl  */
    211      1.13     perry static __inline void
    212       1.1      fvdl ahd_unpause(struct ahd_softc *ahd)
    213       1.1      fvdl {
    214       1.1      fvdl 	/*
    215       1.1      fvdl 	 * Automatically restore our modes to those saved
    216       1.1      fvdl 	 * prior to the first change of the mode.
    217       1.1      fvdl 	 */
    218       1.1      fvdl 	if (ahd->saved_src_mode != AHD_MODE_UNKNOWN
    219       1.1      fvdl 	 && ahd->saved_dst_mode != AHD_MODE_UNKNOWN) {
    220       1.1      fvdl 		if ((ahd->flags & AHD_UPDATE_PEND_CMDS) != 0)
    221       1.1      fvdl 			ahd_reset_cmds_pending(ahd);
    222       1.1      fvdl 		ahd_set_modes(ahd, ahd->saved_src_mode, ahd->saved_dst_mode);
    223       1.1      fvdl 	}
    224       1.1      fvdl 
    225       1.5   thorpej 	if ((ahd_inb(ahd, INTSTAT) & ~CMDCMPLT) == 0)
    226       1.1      fvdl 		ahd_outb(ahd, HCNTRL, ahd->unpause);
    227       1.1      fvdl 
    228       1.1      fvdl 	ahd_known_modes(ahd, AHD_MODE_UNKNOWN, AHD_MODE_UNKNOWN);
    229       1.1      fvdl }
    230       1.1      fvdl 
    231       1.1      fvdl /*********************** Scatter Gather List Handling *************************/
    232      1.13     perry static __inline void	*ahd_sg_setup(struct ahd_softc *, struct scb *,
    233       1.3    itojun 			    void *, bus_addr_t, bus_size_t, int);
    234      1.13     perry static __inline void	 ahd_setup_scb_common(struct ahd_softc *, struct scb *);
    235      1.13     perry static __inline void	 ahd_setup_data_scb(struct ahd_softc *, struct scb *);
    236      1.13     perry static __inline void	 ahd_setup_noxfer_scb(struct ahd_softc *, struct scb *);
    237       1.1      fvdl 
    238      1.13     perry static __inline void *
    239       1.1      fvdl ahd_sg_setup(struct ahd_softc *ahd, struct scb *scb,
    240       1.1      fvdl 	     void *sgptr, bus_addr_t addr, bus_size_t len, int last)
    241       1.1      fvdl {
    242       1.1      fvdl 	scb->sg_count++;
    243       1.1      fvdl 	if (sizeof(bus_addr_t) > 4
    244       1.1      fvdl 	 && (ahd->flags & AHD_64BIT_ADDRESSING) != 0) {
    245       1.1      fvdl 		struct ahd_dma64_seg *sg;
    246       1.1      fvdl 
    247       1.1      fvdl 		sg = (struct ahd_dma64_seg *)sgptr;
    248       1.1      fvdl 		sg->addr = ahd_htole64(addr);
    249       1.1      fvdl 		sg->len = ahd_htole32(len | (last ? AHD_DMA_LAST_SEG : 0));
    250       1.1      fvdl 		return (sg + 1);
    251       1.1      fvdl 	} else {
    252       1.1      fvdl 		struct ahd_dma_seg *sg;
    253       1.1      fvdl 
    254       1.1      fvdl 		sg = (struct ahd_dma_seg *)sgptr;
    255       1.1      fvdl 		sg->addr = ahd_htole32(addr & 0xFFFFFFFF);
    256       1.1      fvdl 		sg->len = ahd_htole32(len | ((addr >> 8) & 0x7F000000)
    257       1.1      fvdl 				    | (last ? AHD_DMA_LAST_SEG : 0));
    258       1.1      fvdl 		return (sg + 1);
    259       1.1      fvdl 	}
    260       1.1      fvdl }
    261       1.1      fvdl 
    262      1.13     perry static __inline void
    263      1.15  christos ahd_setup_scb_common(struct ahd_softc *ahd, struct scb *scb)
    264       1.1      fvdl {
    265       1.1      fvdl 	/* XXX Handle target mode SCBs. */
    266       1.1      fvdl 	scb->crc_retry_count = 0;
    267       1.1      fvdl 	if ((scb->flags & SCB_PACKETIZED) != 0) {
    268       1.1      fvdl 		/* XXX what about ACA??  It is type 4, but TAG_TYPE == 0x3. */
    269       1.7   thorpej 		scb->hscb->task_attribute = scb->hscb->control & SCB_TAG_TYPE;
    270       1.7   thorpej 	} else {
    271       1.7   thorpej 		if (ahd_get_transfer_length(scb) & 0x01)
    272       1.7   thorpej 			scb->hscb->task_attribute = SCB_XFERLEN_ODD;
    273       1.7   thorpej 		else
    274       1.7   thorpej 			scb->hscb->task_attribute = 0;
    275       1.1      fvdl 	}
    276       1.1      fvdl 
    277       1.1      fvdl 	if (scb->hscb->cdb_len <= MAX_CDB_LEN_WITH_SENSE_ADDR
    278       1.1      fvdl 	 || (scb->hscb->cdb_len & SCB_CDB_LEN_PTR) != 0)
    279       1.1      fvdl 		scb->hscb->shared_data.idata.cdb_plus_saddr.sense_addr =
    280       1.1      fvdl 		    ahd_htole32(scb->sense_busaddr);
    281       1.1      fvdl }
    282       1.1      fvdl 
    283      1.13     perry static __inline void
    284       1.1      fvdl ahd_setup_data_scb(struct ahd_softc *ahd, struct scb *scb)
    285       1.1      fvdl {
    286       1.1      fvdl 	/*
    287       1.1      fvdl 	 * Copy the first SG into the "current" data ponter area.
    288       1.1      fvdl 	 */
    289       1.1      fvdl 	if ((ahd->flags & AHD_64BIT_ADDRESSING) != 0) {
    290       1.1      fvdl 		struct ahd_dma64_seg *sg;
    291       1.1      fvdl 
    292       1.1      fvdl 		sg = (struct ahd_dma64_seg *)scb->sg_list;
    293       1.1      fvdl 		scb->hscb->dataptr = sg->addr;
    294       1.1      fvdl 		scb->hscb->datacnt = sg->len;
    295       1.1      fvdl 	} else {
    296       1.1      fvdl 		struct ahd_dma_seg *sg;
    297       1.5   thorpej 		uint32_t *dataptr_words;
    298       1.1      fvdl 
    299       1.1      fvdl 		sg = (struct ahd_dma_seg *)scb->sg_list;
    300       1.5   thorpej 		dataptr_words = (uint32_t*)&scb->hscb->dataptr;
    301       1.5   thorpej 		dataptr_words[0] = sg->addr;
    302       1.5   thorpej 		dataptr_words[1] = 0;
    303       1.1      fvdl 		if ((ahd->flags & AHD_39BIT_ADDRESSING) != 0) {
    304       1.1      fvdl 			uint64_t high_addr;
    305       1.1      fvdl 
    306       1.1      fvdl 			high_addr = ahd_le32toh(sg->len) & 0x7F000000;
    307       1.1      fvdl 			scb->hscb->dataptr |= ahd_htole64(high_addr << 8);
    308       1.1      fvdl 		}
    309       1.1      fvdl 		scb->hscb->datacnt = sg->len;
    310       1.1      fvdl 	}
    311       1.1      fvdl 	/*
    312       1.1      fvdl 	 * Note where to find the SG entries in bus space.
    313      1.10     perry 	 * We also set the full residual flag which the
    314       1.1      fvdl 	 * sequencer will clear as soon as a data transfer
    315       1.1      fvdl 	 * occurs.
    316       1.1      fvdl 	 */
    317       1.1      fvdl 	scb->hscb->sgptr = ahd_htole32(scb->sg_list_busaddr|SG_FULL_RESID);
    318       1.1      fvdl }
    319       1.1      fvdl 
    320      1.13     perry static __inline void
    321      1.15  christos ahd_setup_noxfer_scb(struct ahd_softc *ahd, struct scb *scb)
    322       1.1      fvdl {
    323       1.1      fvdl 	scb->hscb->sgptr = ahd_htole32(SG_LIST_NULL);
    324       1.1      fvdl 	scb->hscb->dataptr = 0;
    325       1.1      fvdl 	scb->hscb->datacnt = 0;
    326       1.1      fvdl }
    327       1.1      fvdl 
    328       1.1      fvdl /************************** Memory mapping routines ***************************/
    329      1.13     perry static __inline size_t	ahd_sg_size(struct ahd_softc *);
    330      1.13     perry static __inline void *
    331       1.3    itojun 			ahd_sg_bus_to_virt(struct ahd_softc *, struct scb *,
    332       1.3    itojun 			    uint32_t);
    333      1.13     perry static __inline uint32_t
    334       1.3    itojun 			ahd_sg_virt_to_bus(struct ahd_softc *, struct scb *,
    335       1.3    itojun 			    void *);
    336      1.13     perry static __inline void	ahd_sync_scb(struct ahd_softc *, struct scb *, int);
    337      1.13     perry static __inline void	ahd_sync_sglist(struct ahd_softc *, struct scb *, int);
    338      1.13     perry static __inline void	ahd_sync_sense(struct ahd_softc *, struct scb *, int);
    339      1.13     perry static __inline uint32_t
    340       1.3    itojun 			ahd_targetcmd_offset(struct ahd_softc *, u_int);
    341       1.1      fvdl 
    342      1.13     perry static __inline size_t
    343       1.1      fvdl ahd_sg_size(struct ahd_softc *ahd)
    344       1.1      fvdl {
    345       1.1      fvdl 	if ((ahd->flags & AHD_64BIT_ADDRESSING) != 0)
    346       1.1      fvdl 		return (sizeof(struct ahd_dma64_seg));
    347       1.1      fvdl 	return (sizeof(struct ahd_dma_seg));
    348       1.1      fvdl }
    349       1.1      fvdl 
    350      1.13     perry static __inline void *
    351       1.1      fvdl ahd_sg_bus_to_virt(struct ahd_softc *ahd, struct scb *scb, uint32_t sg_busaddr)
    352       1.1      fvdl {
    353       1.1      fvdl 	bus_addr_t sg_offset;
    354       1.1      fvdl 
    355       1.1      fvdl 	/* sg_list_phys points to entry 1, not 0 */
    356       1.1      fvdl 	sg_offset = sg_busaddr - (scb->sg_list_busaddr - ahd_sg_size(ahd));
    357       1.1      fvdl 	return ((uint8_t *)scb->sg_list + sg_offset);
    358       1.1      fvdl }
    359       1.1      fvdl 
    360      1.13     perry static __inline uint32_t
    361       1.1      fvdl ahd_sg_virt_to_bus(struct ahd_softc *ahd, struct scb *scb, void *sg)
    362       1.1      fvdl {
    363       1.1      fvdl 	bus_addr_t sg_offset;
    364       1.1      fvdl 
    365       1.1      fvdl 	/* sg_list_phys points to entry 1, not 0 */
    366       1.1      fvdl 	sg_offset = ((uint8_t *)sg - (uint8_t *)scb->sg_list)
    367       1.1      fvdl 		  - ahd_sg_size(ahd);
    368       1.1      fvdl 
    369       1.1      fvdl 	return (scb->sg_list_busaddr + sg_offset);
    370       1.1      fvdl }
    371       1.1      fvdl 
    372      1.13     perry static __inline void
    373       1.1      fvdl ahd_sync_scb(struct ahd_softc *ahd, struct scb *scb, int op)
    374       1.1      fvdl {
    375      1.10     perry 	ahd_dmamap_sync(ahd, ahd->parent_dmat, scb->hscb_map->dmamap,
    376       1.1      fvdl 			/*offset*/(uint8_t*)scb->hscb - scb->hscb_map->vaddr,
    377       1.1      fvdl 			/*len*/sizeof(*scb->hscb), op);
    378       1.1      fvdl }
    379       1.1      fvdl 
    380      1.13     perry static __inline void
    381       1.1      fvdl ahd_sync_sglist(struct ahd_softc *ahd, struct scb *scb, int op)
    382       1.1      fvdl {
    383       1.1      fvdl 	if (scb->sg_count == 0)
    384       1.1      fvdl 		return;
    385       1.1      fvdl 
    386       1.1      fvdl 	ahd_dmamap_sync(ahd, ahd->parent_dmat, scb->sg_map->dmamap,
    387       1.1      fvdl 			/*offset*/scb->sg_list_busaddr - ahd_sg_size(ahd),
    388       1.1      fvdl 			/*len*/ahd_sg_size(ahd) * scb->sg_count, op);
    389       1.1      fvdl }
    390       1.1      fvdl 
    391      1.13     perry static __inline void
    392       1.1      fvdl ahd_sync_sense(struct ahd_softc *ahd, struct scb *scb, int op)
    393       1.1      fvdl {
    394      1.10     perry 	ahd_dmamap_sync(ahd, ahd->parent_dmat,
    395       1.1      fvdl 			scb->sense_map->dmamap,
    396       1.1      fvdl 			/*offset*/scb->sense_busaddr,
    397       1.1      fvdl 			/*len*/AHD_SENSE_BUFSIZE, op);
    398       1.1      fvdl }
    399       1.1      fvdl 
    400      1.13     perry static __inline uint32_t
    401       1.1      fvdl ahd_targetcmd_offset(struct ahd_softc *ahd, u_int index)
    402       1.1      fvdl {
    403       1.1      fvdl 	return (((uint8_t *)&ahd->targetcmds[index])
    404       1.1      fvdl 	       - (uint8_t *)ahd->qoutfifo);
    405       1.1      fvdl }
    406       1.1      fvdl 
    407       1.9       wiz /*********************** Miscellaneous Support Functions ***********************/
    408      1.13     perry static __inline void	ahd_complete_scb(struct ahd_softc *, struct scb *);
    409      1.13     perry static __inline void	ahd_update_residual(struct ahd_softc *, struct scb *);
    410      1.13     perry static __inline struct ahd_initiator_tinfo *
    411       1.3    itojun 			ahd_fetch_transinfo(struct ahd_softc *, char, u_int,
    412       1.3    itojun 			    u_int, struct ahd_tmode_tstate **);
    413      1.13     perry static __inline uint16_t
    414       1.3    itojun 			ahd_inw(struct ahd_softc *, u_int);
    415      1.13     perry static __inline void	ahd_outw(struct ahd_softc *, u_int, u_int);
    416      1.13     perry static __inline uint32_t
    417       1.3    itojun 			ahd_inl(struct ahd_softc *, u_int);
    418      1.13     perry static __inline void	ahd_outl(struct ahd_softc *, u_int, uint32_t);
    419      1.13     perry static __inline uint64_t
    420       1.3    itojun 			ahd_inq(struct ahd_softc *, u_int);
    421      1.13     perry static __inline void	ahd_outq(struct ahd_softc *, u_int, uint64_t);
    422      1.13     perry static __inline u_int	ahd_get_scbptr(struct ahd_softc *);
    423      1.13     perry static __inline void	ahd_set_scbptr(struct ahd_softc *, u_int);
    424      1.13     perry static __inline u_int	ahd_get_hnscb_qoff(struct ahd_softc *);
    425      1.13     perry static __inline void	ahd_set_hnscb_qoff(struct ahd_softc *, u_int);
    426      1.13     perry static __inline u_int	ahd_get_hescb_qoff(struct ahd_softc *);
    427      1.13     perry static __inline void	ahd_set_hescb_qoff(struct ahd_softc *, u_int);
    428      1.13     perry static __inline u_int	ahd_get_snscb_qoff(struct ahd_softc *);
    429      1.13     perry static __inline void	ahd_set_snscb_qoff(struct ahd_softc *, u_int);
    430      1.13     perry static __inline u_int	ahd_get_sescb_qoff(struct ahd_softc *);
    431      1.13     perry static __inline void	ahd_set_sescb_qoff(struct ahd_softc *, u_int);
    432      1.13     perry static __inline u_int	ahd_get_sdscb_qoff(struct ahd_softc *);
    433      1.13     perry static __inline void	ahd_set_sdscb_qoff(struct ahd_softc *, u_int);
    434      1.13     perry static __inline u_int	ahd_inb_scbram(struct ahd_softc *, u_int);
    435      1.13     perry static __inline u_int	ahd_inw_scbram(struct ahd_softc *, u_int);
    436      1.13     perry static __inline uint32_t
    437       1.3    itojun 			ahd_inl_scbram(struct ahd_softc *, u_int);
    438      1.13     perry static __inline uint64_t
    439       1.8   thorpej 			ahd_inq_scbram(struct ahd_softc *ahd, u_int offset);
    440      1.13     perry static __inline void	ahd_swap_with_next_hscb(struct ahd_softc *,
    441       1.3    itojun 	struct scb *);
    442      1.13     perry static __inline void	ahd_queue_scb(struct ahd_softc *, struct scb *);
    443      1.13     perry static __inline uint8_t *
    444       1.3    itojun 			ahd_get_sense_buf(struct ahd_softc *, struct scb *);
    445      1.13     perry static __inline uint32_t
    446       1.3    itojun 			ahd_get_sense_bufaddr(struct ahd_softc *, struct scb *);
    447      1.13     perry static __inline void	ahd_post_scb(struct ahd_softc *, struct scb *);
    448       1.1      fvdl 
    449       1.1      fvdl 
    450      1.13     perry static __inline void
    451       1.1      fvdl ahd_post_scb(struct ahd_softc *ahd, struct scb *scb)
    452       1.1      fvdl {
    453       1.1      fvdl 	uint32_t sgptr;
    454       1.1      fvdl 
    455       1.1      fvdl 	sgptr = ahd_le32toh(scb->hscb->sgptr);
    456       1.1      fvdl 	if ((sgptr & SG_STATUS_VALID) != 0)
    457       1.1      fvdl 		ahd_handle_scb_status(ahd, scb);
    458      1.10     perry 	else
    459       1.1      fvdl         	ahd_done(ahd, scb);
    460       1.1      fvdl }
    461       1.1      fvdl 
    462      1.13     perry static __inline void
    463       1.1      fvdl ahd_complete_scb(struct ahd_softc *ahd, struct scb *scb)
    464       1.1      fvdl {
    465       1.1      fvdl 	uint32_t sgptr;
    466       1.1      fvdl 
    467       1.1      fvdl 	sgptr = ahd_le32toh(scb->hscb->sgptr);
    468       1.1      fvdl 	if ((sgptr & SG_STATUS_VALID) != 0)
    469       1.1      fvdl 		ahd_handle_scb_status(ahd, scb);
    470      1.10     perry 	else
    471       1.1      fvdl 		ahd_done(ahd, scb);
    472       1.1      fvdl }
    473       1.1      fvdl 
    474       1.1      fvdl /*
    475       1.1      fvdl  * Determine whether the sequencer reported a residual
    476       1.1      fvdl  * for this SCB/transaction.
    477       1.1      fvdl  */
    478      1.13     perry static __inline void
    479       1.1      fvdl ahd_update_residual(struct ahd_softc *ahd, struct scb *scb)
    480       1.1      fvdl {
    481       1.1      fvdl 	uint32_t sgptr;
    482       1.1      fvdl 
    483       1.1      fvdl 	sgptr = ahd_le32toh(scb->hscb->sgptr);
    484       1.1      fvdl 	if ((sgptr & SG_STATUS_VALID) != 0)
    485       1.1      fvdl 		ahd_calc_residual(ahd, scb);
    486       1.1      fvdl }
    487       1.1      fvdl 
    488       1.1      fvdl /*
    489       1.1      fvdl  * Return pointers to the transfer negotiation information
    490       1.1      fvdl  * for the specified our_id/remote_id pair.
    491       1.1      fvdl  */
    492      1.13     perry static __inline struct ahd_initiator_tinfo *
    493       1.1      fvdl ahd_fetch_transinfo(struct ahd_softc *ahd, char channel, u_int our_id,
    494       1.1      fvdl 		    u_int remote_id, struct ahd_tmode_tstate **tstate)
    495       1.1      fvdl {
    496       1.1      fvdl 	/*
    497       1.1      fvdl 	 * Transfer data structures are stored from the perspective
    498       1.1      fvdl 	 * of the target role.  Since the parameters for a connection
    499       1.1      fvdl 	 * in the initiator role to a given target are the same as
    500       1.1      fvdl 	 * when the roles are reversed, we pretend we are the target.
    501       1.1      fvdl 	 */
    502       1.1      fvdl 	if (channel == 'B')
    503       1.1      fvdl 		our_id += 8;
    504       1.1      fvdl 	*tstate = ahd->enabled_targets[our_id];
    505       1.1      fvdl 	return (&(*tstate)->transinfo[remote_id]);
    506       1.1      fvdl }
    507       1.1      fvdl 
    508       1.1      fvdl #define AHD_COPY_COL_IDX(dst, src)				\
    509       1.1      fvdl do {								\
    510       1.1      fvdl 	dst->hscb->scsiid = src->hscb->scsiid;			\
    511       1.1      fvdl 	dst->hscb->lun = src->hscb->lun;			\
    512       1.1      fvdl } while (0)
    513       1.1      fvdl 
    514      1.13     perry static __inline uint16_t
    515       1.1      fvdl ahd_inw(struct ahd_softc *ahd, u_int port)
    516       1.1      fvdl {
    517       1.1      fvdl 	return ((ahd_inb(ahd, port+1) << 8) | ahd_inb(ahd, port));
    518       1.1      fvdl }
    519       1.1      fvdl 
    520      1.13     perry static __inline void
    521       1.1      fvdl ahd_outw(struct ahd_softc *ahd, u_int port, u_int value)
    522       1.1      fvdl {
    523       1.1      fvdl 	ahd_outb(ahd, port, value & 0xFF);
    524       1.1      fvdl 	ahd_outb(ahd, port+1, (value >> 8) & 0xFF);
    525       1.1      fvdl }
    526       1.1      fvdl 
    527      1.13     perry static __inline uint32_t
    528       1.1      fvdl ahd_inl(struct ahd_softc *ahd, u_int port)
    529       1.1      fvdl {
    530       1.1      fvdl 	return ((ahd_inb(ahd, port))
    531       1.1      fvdl 	      | (ahd_inb(ahd, port+1) << 8)
    532       1.1      fvdl 	      | (ahd_inb(ahd, port+2) << 16)
    533       1.1      fvdl 	      | (ahd_inb(ahd, port+3) << 24));
    534       1.1      fvdl }
    535       1.1      fvdl 
    536      1.13     perry static __inline void
    537       1.1      fvdl ahd_outl(struct ahd_softc *ahd, u_int port, uint32_t value)
    538       1.1      fvdl {
    539       1.1      fvdl 	ahd_outb(ahd, port, (value) & 0xFF);
    540       1.1      fvdl 	ahd_outb(ahd, port+1, ((value) >> 8) & 0xFF);
    541       1.1      fvdl 	ahd_outb(ahd, port+2, ((value) >> 16) & 0xFF);
    542       1.1      fvdl 	ahd_outb(ahd, port+3, ((value) >> 24) & 0xFF);
    543       1.1      fvdl }
    544       1.1      fvdl 
    545      1.13     perry static __inline uint64_t
    546       1.1      fvdl ahd_inq(struct ahd_softc *ahd, u_int port)
    547       1.1      fvdl {
    548       1.1      fvdl 	return ((ahd_inb(ahd, port))
    549       1.1      fvdl 	      | (ahd_inb(ahd, port+1) << 8)
    550       1.1      fvdl 	      | (ahd_inb(ahd, port+2) << 16)
    551       1.1      fvdl 	      | (ahd_inb(ahd, port+3) << 24)
    552       1.1      fvdl 	      | (((uint64_t)ahd_inb(ahd, port+4)) << 32)
    553       1.1      fvdl 	      | (((uint64_t)ahd_inb(ahd, port+5)) << 40)
    554       1.1      fvdl 	      | (((uint64_t)ahd_inb(ahd, port+6)) << 48)
    555       1.1      fvdl 	      | (((uint64_t)ahd_inb(ahd, port+7)) << 56));
    556       1.1      fvdl }
    557       1.1      fvdl 
    558      1.13     perry static __inline void
    559       1.1      fvdl ahd_outq(struct ahd_softc *ahd, u_int port, uint64_t value)
    560       1.1      fvdl {
    561       1.1      fvdl 	ahd_outb(ahd, port, value & 0xFF);
    562       1.1      fvdl 	ahd_outb(ahd, port+1, (value >> 8) & 0xFF);
    563       1.1      fvdl 	ahd_outb(ahd, port+2, (value >> 16) & 0xFF);
    564       1.1      fvdl 	ahd_outb(ahd, port+3, (value >> 24) & 0xFF);
    565       1.1      fvdl 	ahd_outb(ahd, port+4, (value >> 32) & 0xFF);
    566       1.1      fvdl 	ahd_outb(ahd, port+5, (value >> 40) & 0xFF);
    567       1.1      fvdl 	ahd_outb(ahd, port+6, (value >> 48) & 0xFF);
    568       1.1      fvdl 	ahd_outb(ahd, port+7, (value >> 56) & 0xFF);
    569       1.1      fvdl }
    570       1.1      fvdl 
    571      1.13     perry static __inline u_int
    572       1.1      fvdl ahd_get_scbptr(struct ahd_softc *ahd)
    573       1.1      fvdl {
    574       1.1      fvdl 	AHD_ASSERT_MODES(ahd, ~(AHD_MODE_UNKNOWN_MSK|AHD_MODE_CFG_MSK),
    575       1.1      fvdl 			 ~(AHD_MODE_UNKNOWN_MSK|AHD_MODE_CFG_MSK));
    576       1.1      fvdl 	return (ahd_inb(ahd, SCBPTR) | (ahd_inb(ahd, SCBPTR + 1) << 8));
    577       1.1      fvdl }
    578       1.1      fvdl 
    579      1.13     perry static __inline void
    580       1.1      fvdl ahd_set_scbptr(struct ahd_softc *ahd, u_int scbptr)
    581       1.1      fvdl {
    582       1.1      fvdl 	AHD_ASSERT_MODES(ahd, ~(AHD_MODE_UNKNOWN_MSK|AHD_MODE_CFG_MSK),
    583       1.1      fvdl 			 ~(AHD_MODE_UNKNOWN_MSK|AHD_MODE_CFG_MSK));
    584       1.1      fvdl 	ahd_outb(ahd, SCBPTR, scbptr & 0xFF);
    585       1.1      fvdl 	ahd_outb(ahd, SCBPTR+1, (scbptr >> 8) & 0xFF);
    586       1.1      fvdl }
    587       1.1      fvdl 
    588      1.13     perry static __inline u_int
    589       1.1      fvdl ahd_get_hnscb_qoff(struct ahd_softc *ahd)
    590       1.1      fvdl {
    591       1.1      fvdl 	return (ahd_inw_atomic(ahd, HNSCB_QOFF));
    592       1.1      fvdl }
    593       1.1      fvdl 
    594      1.13     perry static __inline void
    595       1.1      fvdl ahd_set_hnscb_qoff(struct ahd_softc *ahd, u_int value)
    596       1.1      fvdl {
    597       1.1      fvdl 	ahd_outw_atomic(ahd, HNSCB_QOFF, value);
    598       1.1      fvdl }
    599       1.1      fvdl 
    600      1.13     perry static __inline u_int
    601       1.1      fvdl ahd_get_hescb_qoff(struct ahd_softc *ahd)
    602       1.1      fvdl {
    603       1.1      fvdl 	return (ahd_inb(ahd, HESCB_QOFF));
    604       1.1      fvdl }
    605       1.1      fvdl 
    606      1.13     perry static __inline void
    607       1.1      fvdl ahd_set_hescb_qoff(struct ahd_softc *ahd, u_int value)
    608       1.1      fvdl {
    609       1.1      fvdl 	ahd_outb(ahd, HESCB_QOFF, value);
    610       1.1      fvdl }
    611       1.1      fvdl 
    612      1.13     perry static __inline u_int
    613       1.1      fvdl ahd_get_snscb_qoff(struct ahd_softc *ahd)
    614       1.1      fvdl {
    615       1.1      fvdl 	u_int oldvalue;
    616       1.1      fvdl 
    617       1.1      fvdl 	AHD_ASSERT_MODES(ahd, AHD_MODE_CCHAN_MSK, AHD_MODE_CCHAN_MSK);
    618       1.1      fvdl 	oldvalue = ahd_inw(ahd, SNSCB_QOFF);
    619       1.1      fvdl 	ahd_outw(ahd, SNSCB_QOFF, oldvalue);
    620       1.1      fvdl 	return (oldvalue);
    621       1.1      fvdl }
    622       1.1      fvdl 
    623      1.13     perry static __inline void
    624       1.1      fvdl ahd_set_snscb_qoff(struct ahd_softc *ahd, u_int value)
    625       1.1      fvdl {
    626       1.1      fvdl 	AHD_ASSERT_MODES(ahd, AHD_MODE_CCHAN_MSK, AHD_MODE_CCHAN_MSK);
    627       1.1      fvdl 	ahd_outw(ahd, SNSCB_QOFF, value);
    628       1.1      fvdl }
    629       1.1      fvdl 
    630      1.13     perry static __inline u_int
    631       1.1      fvdl ahd_get_sescb_qoff(struct ahd_softc *ahd)
    632       1.1      fvdl {
    633       1.1      fvdl 	AHD_ASSERT_MODES(ahd, AHD_MODE_CCHAN_MSK, AHD_MODE_CCHAN_MSK);
    634       1.1      fvdl 	return (ahd_inb(ahd, SESCB_QOFF));
    635       1.1      fvdl }
    636       1.1      fvdl 
    637      1.13     perry static __inline void
    638       1.1      fvdl ahd_set_sescb_qoff(struct ahd_softc *ahd, u_int value)
    639       1.1      fvdl {
    640       1.1      fvdl 	AHD_ASSERT_MODES(ahd, AHD_MODE_CCHAN_MSK, AHD_MODE_CCHAN_MSK);
    641       1.1      fvdl 	ahd_outb(ahd, SESCB_QOFF, value);
    642       1.1      fvdl }
    643       1.1      fvdl 
    644      1.13     perry static __inline u_int
    645       1.1      fvdl ahd_get_sdscb_qoff(struct ahd_softc *ahd)
    646       1.1      fvdl {
    647       1.1      fvdl 	AHD_ASSERT_MODES(ahd, AHD_MODE_CCHAN_MSK, AHD_MODE_CCHAN_MSK);
    648       1.1      fvdl 	return (ahd_inb(ahd, SDSCB_QOFF) | (ahd_inb(ahd, SDSCB_QOFF + 1) << 8));
    649       1.1      fvdl }
    650       1.1      fvdl 
    651      1.13     perry static __inline void
    652       1.1      fvdl ahd_set_sdscb_qoff(struct ahd_softc *ahd, u_int value)
    653       1.1      fvdl {
    654       1.1      fvdl 	AHD_ASSERT_MODES(ahd, AHD_MODE_CCHAN_MSK, AHD_MODE_CCHAN_MSK);
    655       1.1      fvdl 	ahd_outb(ahd, SDSCB_QOFF, value & 0xFF);
    656       1.1      fvdl 	ahd_outb(ahd, SDSCB_QOFF+1, (value >> 8) & 0xFF);
    657       1.1      fvdl }
    658       1.1      fvdl 
    659      1.13     perry static __inline u_int
    660       1.1      fvdl ahd_inb_scbram(struct ahd_softc *ahd, u_int offset)
    661       1.1      fvdl {
    662       1.1      fvdl 	u_int value;
    663       1.1      fvdl 
    664       1.1      fvdl 	/*
    665       1.1      fvdl 	 * Workaround PCI-X Rev A. hardware bug.
    666       1.1      fvdl 	 * After a host read of SCB memory, the chip
    667       1.1      fvdl 	 * may become confused into thinking prefetch
    668       1.1      fvdl 	 * was required.  This starts the discard timer
    669       1.1      fvdl 	 * running and can cause an unexpected discard
    670       1.1      fvdl 	 * timer interrupt.  The work around is to read
    671       1.1      fvdl 	 * a normal register prior to the exhaustion of
    672       1.1      fvdl 	 * the discard timer.  The mode pointer register
    673       1.1      fvdl 	 * has no side effects and so serves well for
    674       1.1      fvdl 	 * this purpose.
    675       1.1      fvdl 	 *
    676       1.1      fvdl 	 * Razor #528
    677       1.1      fvdl 	 */
    678       1.1      fvdl 	value = ahd_inb(ahd, offset);
    679       1.1      fvdl 	if ((ahd->flags & AHD_PCIX_SCBRAM_RD_BUG) != 0)
    680       1.1      fvdl 		ahd_inb(ahd, MODE_PTR);
    681       1.1      fvdl 	return (value);
    682       1.1      fvdl }
    683       1.1      fvdl 
    684      1.13     perry static __inline u_int
    685       1.1      fvdl ahd_inw_scbram(struct ahd_softc *ahd, u_int offset)
    686       1.1      fvdl {
    687       1.1      fvdl 	return (ahd_inb_scbram(ahd, offset)
    688       1.1      fvdl 	      | (ahd_inb_scbram(ahd, offset+1) << 8));
    689       1.1      fvdl }
    690       1.1      fvdl 
    691      1.13     perry static __inline uint32_t
    692       1.1      fvdl ahd_inl_scbram(struct ahd_softc *ahd, u_int offset)
    693       1.1      fvdl {
    694       1.8   thorpej 	return (ahd_inw_scbram(ahd, offset)
    695       1.8   thorpej 	      | (ahd_inw_scbram(ahd, offset+2) << 16));
    696       1.8   thorpej }
    697       1.8   thorpej 
    698      1.13     perry static __inline uint64_t
    699       1.8   thorpej ahd_inq_scbram(struct ahd_softc *ahd, u_int offset)
    700       1.8   thorpej {
    701       1.8   thorpej 	return (ahd_inl_scbram(ahd, offset)
    702       1.8   thorpej 	      | ((uint64_t)ahd_inl_scbram(ahd, offset+4)) << 32);
    703       1.1      fvdl }
    704       1.1      fvdl 
    705      1.13     perry static __inline struct scb *
    706       1.1      fvdl ahd_lookup_scb(struct ahd_softc *ahd, u_int tag)
    707       1.1      fvdl {
    708       1.1      fvdl 	struct scb* scb;
    709       1.1      fvdl 
    710       1.1      fvdl 	if (tag >= AHD_SCB_MAX)
    711       1.1      fvdl 		return (NULL);
    712       1.1      fvdl 	scb = ahd->scb_data.scbindex[tag];
    713       1.1      fvdl 	if (scb != NULL)
    714       1.1      fvdl 		ahd_sync_scb(ahd, scb,
    715       1.1      fvdl 			     BUS_DMASYNC_POSTREAD|BUS_DMASYNC_POSTWRITE);
    716       1.1      fvdl 	return (scb);
    717       1.1      fvdl }
    718       1.1      fvdl 
    719      1.13     perry static __inline void
    720       1.1      fvdl ahd_swap_with_next_hscb(struct ahd_softc *ahd, struct scb *scb)
    721       1.1      fvdl {
    722       1.1      fvdl 	struct hardware_scb *q_hscb;
    723       1.4   thorpej 	struct map_node *q_hscb_map;
    724       1.1      fvdl 	uint32_t saved_hscb_busaddr;
    725       1.1      fvdl 
    726       1.1      fvdl 	/*
    727       1.1      fvdl 	 * Our queuing method is a bit tricky.  The card
    728       1.1      fvdl 	 * knows in advance which HSCB (by address) to download,
    729       1.1      fvdl 	 * and we can't disappoint it.  To achieve this, the next
    730       1.1      fvdl 	 * HSCB to download is saved off in ahd->next_queued_hscb.
    731       1.1      fvdl 	 * When we are called to queue "an arbitrary scb",
    732       1.1      fvdl 	 * we copy the contents of the incoming HSCB to the one
    733       1.1      fvdl 	 * the sequencer knows about, swap HSCB pointers and
    734       1.1      fvdl 	 * finally assign the SCB to the tag indexed location
    735       1.1      fvdl 	 * in the scb_array.  This makes sure that we can still
    736       1.1      fvdl 	 * locate the correct SCB by SCB_TAG.
    737       1.1      fvdl 	 */
    738       1.1      fvdl 	q_hscb = ahd->next_queued_hscb;
    739       1.4   thorpej 	q_hscb_map = ahd->next_queued_hscb_map;
    740       1.1      fvdl 	saved_hscb_busaddr = q_hscb->hscb_busaddr;
    741       1.1      fvdl 	memcpy(q_hscb, scb->hscb, sizeof(*scb->hscb));
    742       1.1      fvdl 	q_hscb->hscb_busaddr = saved_hscb_busaddr;
    743       1.1      fvdl 	q_hscb->next_hscb_busaddr = scb->hscb->hscb_busaddr;
    744       1.1      fvdl 
    745       1.1      fvdl 	/* Now swap HSCB pointers. */
    746       1.1      fvdl 	ahd->next_queued_hscb = scb->hscb;
    747       1.4   thorpej 	ahd->next_queued_hscb_map = scb->hscb_map;
    748       1.1      fvdl 	scb->hscb = q_hscb;
    749       1.4   thorpej 	scb->hscb_map = q_hscb_map;
    750       1.4   thorpej 
    751       1.4   thorpej 	KASSERT((vaddr_t)scb->hscb >= (vaddr_t)scb->hscb_map->vaddr &&
    752       1.4   thorpej 		(vaddr_t)scb->hscb < (vaddr_t)scb->hscb_map->vaddr + PAGE_SIZE);
    753       1.1      fvdl 
    754       1.1      fvdl 	/* Now define the mapping from tag to SCB in the scbindex */
    755       1.1      fvdl 	ahd->scb_data.scbindex[SCB_GET_TAG(scb)] = scb;
    756       1.1      fvdl }
    757       1.1      fvdl 
    758       1.1      fvdl /*
    759       1.1      fvdl  * Tell the sequencer about a new transaction to execute.
    760       1.1      fvdl  */
    761      1.13     perry static __inline void
    762       1.1      fvdl ahd_queue_scb(struct ahd_softc *ahd, struct scb *scb)
    763       1.1      fvdl {
    764       1.1      fvdl 	ahd_swap_with_next_hscb(ahd, scb);
    765       1.1      fvdl 
    766       1.1      fvdl 	if (SCBID_IS_NULL(SCB_GET_TAG(scb)))
    767       1.1      fvdl 		panic("Attempt to queue invalid SCB tag %x\n",
    768       1.1      fvdl 		      SCB_GET_TAG(scb));
    769       1.1      fvdl 
    770       1.1      fvdl 	/*
    771       1.1      fvdl 	 * Keep a history of SCBs we've downloaded in the qinfifo.
    772       1.1      fvdl 	 */
    773       1.1      fvdl 	ahd->qinfifo[AHD_QIN_WRAP(ahd->qinfifonext)] = SCB_GET_TAG(scb);
    774       1.1      fvdl 	ahd->qinfifonext++;
    775       1.1      fvdl 
    776       1.1      fvdl 	if (scb->sg_count != 0)
    777       1.1      fvdl 		ahd_setup_data_scb(ahd, scb);
    778       1.1      fvdl 	else
    779       1.1      fvdl 		ahd_setup_noxfer_scb(ahd, scb);
    780       1.1      fvdl 	ahd_setup_scb_common(ahd, scb);
    781       1.1      fvdl 
    782       1.1      fvdl 	/*
    783       1.1      fvdl 	 * Make sure our data is consistent from the
    784       1.1      fvdl 	 * perspective of the adapter.
    785       1.1      fvdl 	 */
    786       1.1      fvdl 	ahd_sync_scb(ahd, scb, BUS_DMASYNC_PREREAD|BUS_DMASYNC_PREWRITE);
    787       1.1      fvdl 
    788       1.1      fvdl #ifdef AHD_DEBUG
    789       1.1      fvdl 	if ((ahd_debug & AHD_SHOW_QUEUE) != 0) {
    790       1.5   thorpej 		uint64_t host_dataptr;
    791       1.5   thorpej 
    792       1.5   thorpej 		host_dataptr = ahd_le64toh(scb->hscb->dataptr);
    793       1.1      fvdl 		printf("%s: Queueing SCB 0x%x bus addr 0x%x - 0x%x%x/0x%x\n",
    794       1.1      fvdl 		       ahd_name(ahd),
    795       1.5   thorpej 		       SCB_GET_TAG(scb), ahd_le32toh(scb->hscb->hscb_busaddr),
    796       1.5   thorpej 		       (u_int)((host_dataptr >> 32) & 0xFFFFFFFF),
    797       1.5   thorpej 		       (u_int)(host_dataptr & 0xFFFFFFFF),
    798       1.5   thorpej 		       ahd_le32toh(scb->hscb->datacnt));
    799       1.1      fvdl 	}
    800       1.1      fvdl #endif
    801       1.1      fvdl 	/* Tell the adapter about the newly queued SCB */
    802       1.1      fvdl 	ahd_set_hnscb_qoff(ahd, ahd->qinfifonext);
    803       1.1      fvdl }
    804       1.1      fvdl 
    805      1.13     perry static __inline uint8_t *
    806      1.15  christos ahd_get_sense_buf(struct ahd_softc *ahd, struct scb *scb)
    807       1.1      fvdl {
    808       1.1      fvdl 	return (scb->sense_data);
    809       1.1      fvdl }
    810       1.1      fvdl 
    811      1.13     perry static __inline uint32_t
    812      1.15  christos ahd_get_sense_bufaddr(struct ahd_softc *ahd, struct scb *scb)
    813       1.1      fvdl {
    814       1.1      fvdl 	return (scb->sense_busaddr);
    815       1.1      fvdl }
    816       1.1      fvdl 
    817       1.1      fvdl /************************** Interrupt Processing ******************************/
    818      1.13     perry static __inline void	ahd_sync_qoutfifo(struct ahd_softc *, int);
    819      1.13     perry static __inline void	ahd_sync_tqinfifo(struct ahd_softc *, int);
    820      1.13     perry static __inline u_int	ahd_check_cmdcmpltqueues(struct ahd_softc *);
    821      1.13     perry static __inline int	ahd_intr(void *);
    822      1.13     perry static __inline void	ahd_minphys(struct buf *);
    823       1.1      fvdl 
    824      1.13     perry static __inline void
    825       1.1      fvdl ahd_sync_qoutfifo(struct ahd_softc *ahd, int op)
    826       1.1      fvdl {
    827       1.4   thorpej 	ahd_dmamap_sync(ahd, ahd->parent_dmat, ahd->shared_data_map.dmamap,
    828       1.1      fvdl 			/*offset*/0, /*len*/AHD_SCB_MAX * sizeof(uint16_t), op);
    829       1.1      fvdl }
    830       1.1      fvdl 
    831      1.13     perry static __inline void
    832      1.15  christos ahd_sync_tqinfifo(struct ahd_softc *ahd, int op)
    833       1.1      fvdl {
    834       1.1      fvdl #ifdef AHD_TARGET_MODE
    835       1.1      fvdl 	if ((ahd->flags & AHD_TARGETROLE) != 0) {
    836       1.1      fvdl 		ahd_dmamap_sync(ahd, ahd->parent_dmat /*shared_data_dmat*/,
    837       1.4   thorpej 				ahd->shared_data_map.dmamap,
    838       1.1      fvdl 				ahd_targetcmd_offset(ahd, 0),
    839       1.1      fvdl 				sizeof(struct target_cmd) * AHD_TMODE_CMDS,
    840       1.1      fvdl 				op);
    841       1.1      fvdl 	}
    842       1.1      fvdl #endif
    843       1.1      fvdl }
    844       1.1      fvdl 
    845       1.1      fvdl /*
    846       1.1      fvdl  * See if the firmware has posted any completed commands
    847       1.1      fvdl  * into our in-core command complete fifos.
    848       1.1      fvdl  */
    849       1.1      fvdl #define AHD_RUN_QOUTFIFO 0x1
    850       1.1      fvdl #define AHD_RUN_TQINFIFO 0x2
    851      1.13     perry static __inline u_int
    852       1.1      fvdl ahd_check_cmdcmpltqueues(struct ahd_softc *ahd)
    853       1.1      fvdl {
    854       1.1      fvdl 	u_int retval;
    855       1.1      fvdl 
    856       1.1      fvdl 	retval = 0;
    857       1.4   thorpej 	ahd_dmamap_sync(ahd, ahd->parent_dmat /*shared_data_dmat*/, ahd->shared_data_map.dmamap,
    858       1.1      fvdl 			/*offset*/ahd->qoutfifonext, /*len*/2,
    859       1.1      fvdl 			BUS_DMASYNC_POSTREAD);
    860       1.1      fvdl 	if ((ahd->qoutfifo[ahd->qoutfifonext]
    861       1.1      fvdl 	     & QOUTFIFO_ENTRY_VALID_LE) == ahd->qoutfifonext_valid_tag)
    862       1.1      fvdl 		retval |= AHD_RUN_QOUTFIFO;
    863       1.1      fvdl #ifdef AHD_TARGET_MODE
    864       1.1      fvdl 	if ((ahd->flags & AHD_TARGETROLE) != 0
    865       1.1      fvdl 	 && (ahd->flags & AHD_TQINFIFO_BLOCKED) == 0) {
    866       1.1      fvdl 		ahd_dmamap_sync(ahd, ahd->parent_dmat /*shared_data_dmat*/,
    867       1.4   thorpej 				ahd->shared_data_map.dmamap,
    868       1.1      fvdl 				ahd_targetcmd_offset(ahd, ahd->tqinfifofnext),
    869       1.1      fvdl 				/*len*/sizeof(struct target_cmd),
    870       1.1      fvdl 				BUS_DMASYNC_POSTREAD);
    871       1.1      fvdl 		if (ahd->targetcmds[ahd->tqinfifonext].cmd_valid != 0)
    872       1.1      fvdl 			retval |= AHD_RUN_TQINFIFO;
    873       1.1      fvdl 	}
    874       1.1      fvdl #endif
    875       1.1      fvdl 	return (retval);
    876       1.1      fvdl }
    877       1.1      fvdl 
    878       1.1      fvdl /*
    879       1.1      fvdl  * Catch an interrupt from the adapter
    880       1.1      fvdl  */
    881      1.13     perry static __inline int
    882       1.1      fvdl ahd_intr(void *arg)
    883       1.1      fvdl {
    884       1.1      fvdl 	struct ahd_softc *ahd = (struct ahd_softc*)arg;
    885       1.1      fvdl 	u_int	intstat;
    886       1.1      fvdl 
    887       1.1      fvdl 	if ((ahd->pause & INTEN) == 0) {
    888       1.1      fvdl 		/*
    889       1.1      fvdl 		 * Our interrupt is not enabled on the chip
    890       1.1      fvdl 		 * and may be disabled for re-entrancy reasons,
    891       1.1      fvdl 		 * so just return.  This is likely just a shared
    892       1.1      fvdl 		 * interrupt.
    893       1.1      fvdl 		 */
    894       1.5   thorpej 		return (0);
    895       1.1      fvdl 	}
    896       1.1      fvdl 
    897       1.1      fvdl 	/*
    898       1.1      fvdl 	 * Instead of directly reading the interrupt status register,
    899       1.1      fvdl 	 * infer the cause of the interrupt by checking our in-core
    900       1.1      fvdl 	 * completion queues.  This avoids a costly PCI bus read in
    901       1.1      fvdl 	 * most cases.
    902       1.1      fvdl 	 */
    903       1.1      fvdl 	if ((ahd->flags & AHD_ALL_INTERRUPTS) == 0
    904       1.1      fvdl 	    && (ahd_check_cmdcmpltqueues(ahd) != 0))
    905       1.1      fvdl 		intstat = CMDCMPLT;
    906       1.1      fvdl 	else
    907       1.1      fvdl 		intstat = ahd_inb(ahd, INTSTAT);
    908       1.1      fvdl 
    909       1.5   thorpej 	if ((intstat & INT_PEND) == 0)
    910       1.5   thorpej 		return (0);
    911       1.5   thorpej 
    912       1.1      fvdl 	if (intstat & CMDCMPLT) {
    913       1.1      fvdl 		ahd_outb(ahd, CLRINT, CLRCMDINT);
    914       1.1      fvdl 
    915       1.1      fvdl 		/*
    916       1.1      fvdl 		 * Ensure that the chip sees that we've cleared
    917       1.1      fvdl 		 * this interrupt before we walk the output fifo.
    918       1.1      fvdl 		 * Otherwise, we may, due to posted bus writes,
    919       1.1      fvdl 		 * clear the interrupt after we finish the scan,
    920       1.1      fvdl 		 * and after the sequencer has added new entries
    921       1.1      fvdl 		 * and asserted the interrupt again.
    922       1.1      fvdl 		 */
    923       1.1      fvdl 		if ((ahd->bugs & AHD_INTCOLLISION_BUG) != 0) {
    924       1.1      fvdl 			if (ahd_is_paused(ahd)) {
    925       1.1      fvdl 				/*
    926       1.1      fvdl 				 * Potentially lost SEQINT.
    927       1.1      fvdl 				 * If SEQINTCODE is non-zero,
    928       1.1      fvdl 				 * simulate the SEQINT.
    929       1.1      fvdl 				 */
    930       1.1      fvdl 				if (ahd_inb(ahd, SEQINTCODE) != NO_SEQINT)
    931       1.1      fvdl 					intstat |= SEQINT;
    932       1.1      fvdl 			}
    933       1.1      fvdl 		} else {
    934       1.1      fvdl 			ahd_flush_device_writes(ahd);
    935       1.1      fvdl 		}
    936       1.1      fvdl 		scsipi_channel_freeze(&ahd->sc_channel, 1);
    937       1.1      fvdl 		ahd_run_qoutfifo(ahd);
    938       1.1      fvdl 		scsipi_channel_thaw(&ahd->sc_channel, 1);
    939       1.1      fvdl 		ahd->cmdcmplt_counts[ahd->cmdcmplt_bucket]++;
    940       1.1      fvdl 		ahd->cmdcmplt_total++;
    941       1.1      fvdl #ifdef AHD_TARGET_MODE
    942       1.1      fvdl 		if ((ahd->flags & AHD_TARGETROLE) != 0)
    943       1.1      fvdl 			ahd_run_tqinfifo(ahd, /*paused*/FALSE);
    944       1.1      fvdl #endif
    945       1.1      fvdl 		if (intstat == CMDCMPLT)
    946       1.1      fvdl 			return 1;
    947       1.1      fvdl 	}
    948       1.1      fvdl 
    949       1.5   thorpej 	/*
    950       1.5   thorpej 	 * Handle statuses that may invalidate our cached
    951       1.5   thorpej 	 * copy of INTSTAT separately.
    952       1.5   thorpej 	 */
    953       1.5   thorpej 	if (intstat == 0xFF && (ahd->features & AHD_REMOVABLE) != 0) {
    954       1.5   thorpej 		/* Hot eject.  Do nothing */
    955       1.5   thorpej 	} else if (intstat & HWERRINT) {
    956       1.1      fvdl 		ahd_handle_hwerrint(ahd);
    957       1.5   thorpej 	} else if ((intstat & (PCIINT|SPLTINT)) != 0) {
    958       1.1      fvdl 		ahd->bus_intr(ahd);
    959       1.5   thorpej 	} else {
    960       1.1      fvdl 
    961       1.5   thorpej 		if ((intstat & SEQINT) != 0)
    962       1.5   thorpej 			ahd_handle_seqint(ahd, intstat);
    963       1.1      fvdl 
    964       1.5   thorpej 		if ((intstat & SCSIINT) != 0)
    965       1.5   thorpej 			ahd_handle_scsiint(ahd, intstat);
    966       1.1      fvdl 	}
    967       1.1      fvdl 
    968       1.5   thorpej 	return (1);
    969       1.1      fvdl }
    970       1.1      fvdl 
    971      1.13     perry static __inline void
    972  1.16.4.1      yamt ahd_minphys(struct buf *bp)
    973       1.1      fvdl {
    974       1.1      fvdl /*
    975       1.1      fvdl  * Even though the card can transfer up to 16megs per command
    976       1.2       wiz  * we are limited by the number of segments in the DMA segment
    977       1.1      fvdl  * list that we can hold.  The worst case is that all pages are
    978       1.9       wiz  * discontinuous physically, hence the "page per segment" limit
    979       1.1      fvdl  * enforced here.
    980       1.1      fvdl  */
    981       1.1      fvdl         if (bp->b_bcount > AHD_MAXTRANSFER_SIZE) {
    982       1.1      fvdl                 bp->b_bcount = AHD_MAXTRANSFER_SIZE;
    983       1.1      fvdl         }
    984       1.1      fvdl         minphys(bp);
    985       1.1      fvdl }
    986       1.1      fvdl 
    987      1.13     perry static __inline u_int32_t scsi_4btoul(u_int8_t *);
    988       1.1      fvdl 
    989      1.13     perry static __inline u_int32_t
    990       1.1      fvdl scsi_4btoul(u_int8_t *bytes)
    991       1.1      fvdl {
    992       1.1      fvdl         u_int32_t rv;
    993       1.1      fvdl 
    994       1.1      fvdl         rv = (bytes[0] << 24) |
    995       1.1      fvdl              (bytes[1] << 16) |
    996       1.1      fvdl              (bytes[2] << 8) |
    997       1.1      fvdl              bytes[3];
    998       1.1      fvdl         return (rv);
    999       1.1      fvdl }
   1000       1.1      fvdl 
   1001       1.1      fvdl 
   1002       1.1      fvdl #endif  /* _AIC79XX_INLINE_H_ */
   1003