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haltwo.c revision 1.23.10.1
      1  1.23.10.1  christos /* $NetBSD: haltwo.c,v 1.23.10.1 2019/06/10 22:06:43 christos Exp $ */
      2        1.1  lonewolf 
      3        1.1  lonewolf /*
      4        1.1  lonewolf  * Copyright (c) 2003 Ilpo Ruotsalainen
      5        1.1  lonewolf  * All rights reserved.
      6        1.1  lonewolf  *
      7        1.1  lonewolf  * Redistribution and use in source and binary forms, with or without
      8        1.1  lonewolf  * modification, are permitted provided that the following conditions
      9        1.1  lonewolf  * are met:
     10        1.1  lonewolf  * 1. Redistributions of source code must retain the above copyright
     11        1.1  lonewolf  *    notice, this list of conditions and the following disclaimer.
     12        1.1  lonewolf  * 2. Redistributions in binary form must reproduce the above copyright
     13        1.1  lonewolf  *    notice, this list of conditions and the following disclaimer in the
     14        1.1  lonewolf  *    documentation and/or other materials provided with the distribution.
     15        1.1  lonewolf  * 3. The name of the author may not be used to endorse or promote products
     16        1.1  lonewolf  *    derived from this software without specific prior written permission.
     17        1.1  lonewolf  *
     18        1.1  lonewolf  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
     19        1.1  lonewolf  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
     20        1.1  lonewolf  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
     21        1.1  lonewolf  * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
     22        1.1  lonewolf  * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
     23        1.1  lonewolf  * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
     24        1.1  lonewolf  * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
     25        1.1  lonewolf  * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
     26        1.1  lonewolf  * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
     27        1.1  lonewolf  * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
     28        1.1  lonewolf  *
     29        1.1  lonewolf  * <<Id: LICENSE_GC,v 1.1 2001/10/01 23:24:05 cgd Exp>>
     30        1.1  lonewolf  */
     31        1.1  lonewolf 
     32        1.1  lonewolf #include <sys/cdefs.h>
     33  1.23.10.1  christos __KERNEL_RCSID(0, "$NetBSD: haltwo.c,v 1.23.10.1 2019/06/10 22:06:43 christos Exp $");
     34        1.1  lonewolf 
     35        1.1  lonewolf #include <sys/param.h>
     36        1.1  lonewolf #include <sys/systm.h>
     37        1.1  lonewolf #include <sys/device.h>
     38        1.1  lonewolf #include <sys/audioio.h>
     39       1.21  jmcneill #include <sys/kmem.h>
     40       1.20    dyoung #include <sys/bus.h>
     41       1.11    rumble #include <machine/sysconf.h>
     42        1.1  lonewolf 
     43  1.23.10.1  christos #include <dev/audio/audio_if.h>
     44  1.23.10.1  christos 
     45        1.1  lonewolf #include <sgimips/hpc/hpcvar.h>
     46        1.1  lonewolf #include <sgimips/hpc/hpcreg.h>
     47        1.1  lonewolf 
     48        1.1  lonewolf #include <sgimips/hpc/haltworeg.h>
     49        1.1  lonewolf #include <sgimips/hpc/haltwovar.h>
     50        1.1  lonewolf 
     51        1.1  lonewolf #ifdef AUDIO_DEBUG
     52        1.1  lonewolf #define DPRINTF(x)      printf x
     53        1.1  lonewolf #else
     54        1.1  lonewolf #define DPRINTF(x)
     55        1.1  lonewolf #endif
     56        1.1  lonewolf 
     57  1.23.10.1  christos static int haltwo_query_format(void *, audio_format_query_t *);
     58  1.23.10.1  christos static int haltwo_set_format(void *, int,
     59  1.23.10.1  christos 	const audio_params_t *, const audio_params_t *,
     60  1.23.10.1  christos 	audio_filter_reg_t *, audio_filter_reg_t *);
     61        1.6      kent static int haltwo_round_blocksize(void *, int, int, const audio_params_t *);
     62        1.1  lonewolf static int haltwo_halt_output(void *);
     63        1.1  lonewolf static int haltwo_halt_input(void *);
     64        1.1  lonewolf static int haltwo_getdev(void *, struct audio_device *);
     65        1.1  lonewolf static int haltwo_set_port(void *, mixer_ctrl_t *);
     66        1.1  lonewolf static int haltwo_get_port(void *, mixer_ctrl_t *);
     67        1.1  lonewolf static int haltwo_query_devinfo(void *, mixer_devinfo_t *);
     68       1.21  jmcneill static void *haltwo_malloc(void *, int, size_t);
     69       1.21  jmcneill static void haltwo_free(void *, void *, size_t);
     70        1.1  lonewolf static int haltwo_get_props(void *);
     71        1.1  lonewolf static int haltwo_trigger_output(void *, void *, void *, int, void (*)(void *),
     72        1.6      kent 	void *, const audio_params_t *);
     73        1.1  lonewolf static int haltwo_trigger_input(void *, void *, void *, int, void (*)(void *),
     74        1.6      kent 	void *, const audio_params_t *);
     75       1.21  jmcneill static void haltwo_get_locks(void *, kmutex_t **, kmutex_t **);
     76       1.17   tsutsui static bool haltwo_shutdown(device_t, int);
     77        1.1  lonewolf 
     78        1.4      yamt static const struct audio_hw_if haltwo_hw_if = {
     79  1.23.10.1  christos 	.query_format		= haltwo_query_format,
     80  1.23.10.1  christos 	.set_format		= haltwo_set_format,
     81  1.23.10.1  christos 	.round_blocksize	= haltwo_round_blocksize,
     82  1.23.10.1  christos 	.halt_output		= haltwo_halt_output,
     83  1.23.10.1  christos 	.halt_input		= haltwo_halt_input,
     84  1.23.10.1  christos 	.getdev			= haltwo_getdev,
     85  1.23.10.1  christos 	.set_port		= haltwo_set_port,
     86  1.23.10.1  christos 	.get_port		= haltwo_get_port,
     87  1.23.10.1  christos 	.query_devinfo		= haltwo_query_devinfo,
     88  1.23.10.1  christos 	.allocm			= haltwo_malloc,
     89  1.23.10.1  christos 	.freem			= haltwo_free,
     90  1.23.10.1  christos 	.get_props		= haltwo_get_props,
     91  1.23.10.1  christos 	.trigger_output		= haltwo_trigger_output,
     92  1.23.10.1  christos 	.trigger_input		= haltwo_trigger_input,
     93  1.23.10.1  christos 	.get_locks		= haltwo_get_locks,
     94        1.1  lonewolf };
     95        1.1  lonewolf 
     96        1.1  lonewolf static const struct audio_device haltwo_device = {
     97        1.2   tsutsui 	"HAL2",
     98        1.2   tsutsui 	"",
     99        1.2   tsutsui 	"haltwo"
    100        1.1  lonewolf };
    101        1.1  lonewolf 
    102  1.23.10.1  christos static const struct audio_format haltwo_formats = {
    103  1.23.10.1  christos 	.mode		= AUMODE_PLAY,
    104  1.23.10.1  christos 	.encoding	= AUDIO_ENCODING_SLINEAR_NE,
    105  1.23.10.1  christos 	.validbits	= 16,
    106  1.23.10.1  christos 	.precision	= 16,
    107  1.23.10.1  christos 	.channels	= 2,
    108  1.23.10.1  christos 	.channel_mask	= AUFMT_STEREO,
    109  1.23.10.1  christos 	.frequency_type	= 2,
    110  1.23.10.1  christos 	.frequency	= { 44100, 48000 },
    111  1.23.10.1  christos };
    112  1.23.10.1  christos #define HALTWO_NFORMATS __arraycount(haltwo_formats)
    113  1.23.10.1  christos 
    114       1.19   tsutsui static int  haltwo_match(device_t, cfdata_t, void *);
    115       1.19   tsutsui static void haltwo_attach(device_t, device_t, void *);
    116        1.1  lonewolf static int  haltwo_intr(void *);
    117        1.1  lonewolf 
    118       1.19   tsutsui CFATTACH_DECL_NEW(haltwo, sizeof(struct haltwo_softc),
    119        1.1  lonewolf     haltwo_match, haltwo_attach, NULL, NULL);
    120        1.1  lonewolf 
    121        1.1  lonewolf #define haltwo_write(sc,type,off,val) \
    122        1.1  lonewolf 	bus_space_write_4(sc->sc_st, sc->sc_##type##_sh, off, val)
    123        1.1  lonewolf 
    124        1.1  lonewolf #define haltwo_read(sc,type,off) \
    125        1.1  lonewolf 	bus_space_read_4(sc->sc_st, sc->sc_##type##_sh, off)
    126        1.1  lonewolf 
    127        1.1  lonewolf static void
    128        1.1  lonewolf haltwo_write_indirect(struct haltwo_softc *sc, uint32_t ireg, uint16_t low,
    129        1.1  lonewolf 		uint16_t high)
    130        1.1  lonewolf {
    131        1.2   tsutsui 
    132        1.1  lonewolf 	haltwo_write(sc, ctl, HAL2_REG_CTL_IDR0, low);
    133        1.1  lonewolf 	haltwo_write(sc, ctl, HAL2_REG_CTL_IDR1, high);
    134        1.1  lonewolf 	haltwo_write(sc, ctl, HAL2_REG_CTL_IDR2, 0);
    135        1.1  lonewolf 	haltwo_write(sc, ctl, HAL2_REG_CTL_IDR3, 0);
    136        1.1  lonewolf 	haltwo_write(sc, ctl, HAL2_REG_CTL_IAR, ireg);
    137        1.1  lonewolf 
    138        1.1  lonewolf 	while (haltwo_read(sc, ctl, HAL2_REG_CTL_ISR) & HAL2_ISR_TSTATUS)
    139        1.7      kent 		continue;
    140        1.1  lonewolf }
    141        1.1  lonewolf 
    142        1.1  lonewolf static void
    143        1.1  lonewolf haltwo_read_indirect(struct haltwo_softc *sc, uint32_t ireg, uint16_t *low,
    144        1.1  lonewolf 		uint16_t *high)
    145        1.1  lonewolf {
    146        1.2   tsutsui 
    147        1.1  lonewolf 	haltwo_write(sc, ctl, HAL2_REG_CTL_IAR,
    148        1.1  lonewolf 	    ireg | HAL2_IAR_READ);
    149        1.1  lonewolf 
    150        1.1  lonewolf 	while (haltwo_read(sc, ctl, HAL2_REG_CTL_ISR) & HAL2_ISR_TSTATUS)
    151        1.7      kent 		continue;
    152        1.1  lonewolf 
    153        1.1  lonewolf 	if (low)
    154        1.1  lonewolf 		*low = haltwo_read(sc, ctl, HAL2_REG_CTL_IDR0);
    155        1.2   tsutsui 
    156        1.1  lonewolf 	if (high)
    157        1.1  lonewolf 		*high = haltwo_read(sc, ctl, HAL2_REG_CTL_IDR1);
    158        1.1  lonewolf }
    159        1.1  lonewolf 
    160        1.1  lonewolf static int
    161        1.1  lonewolf haltwo_init_codec(struct haltwo_softc *sc, struct haltwo_codec *codec)
    162        1.1  lonewolf {
    163        1.1  lonewolf 	int err;
    164        1.1  lonewolf 	int rseg;
    165        1.7      kent 	size_t allocsz;
    166        1.1  lonewolf 
    167        1.7      kent 	allocsz = sizeof(struct hpc_dma_desc) * HALTWO_MAX_DMASEGS;
    168        1.1  lonewolf 	KASSERT(allocsz <= PAGE_SIZE);
    169        1.1  lonewolf 
    170        1.1  lonewolf 	err = bus_dmamem_alloc(sc->sc_dma_tag, allocsz, 0, 0, &codec->dma_seg,
    171        1.1  lonewolf 	    1, &rseg, BUS_DMA_NOWAIT);
    172        1.1  lonewolf 	if (err)
    173        1.1  lonewolf 		goto out;
    174        1.1  lonewolf 
    175        1.1  lonewolf 	err = bus_dmamem_map(sc->sc_dma_tag, &codec->dma_seg, rseg, allocsz,
    176       1.12  christos 	    (void **)&codec->dma_descs, BUS_DMA_NOWAIT);
    177        1.1  lonewolf 	if (err)
    178        1.1  lonewolf 		goto out_free;
    179        1.1  lonewolf 
    180        1.1  lonewolf 	err = bus_dmamap_create(sc->sc_dma_tag, allocsz, 1, PAGE_SIZE, 0,
    181        1.1  lonewolf 	    BUS_DMA_NOWAIT, &codec->dma_map);
    182        1.1  lonewolf 	if (err)
    183        1.1  lonewolf 		goto out_free;
    184        1.1  lonewolf 
    185        1.1  lonewolf 	err = bus_dmamap_load(sc->sc_dma_tag, codec->dma_map, codec->dma_descs,
    186        1.1  lonewolf 	    allocsz, NULL, BUS_DMA_NOWAIT);
    187        1.1  lonewolf 	if (err)
    188        1.1  lonewolf 		goto out_destroy;
    189        1.1  lonewolf 
    190        1.1  lonewolf 	DPRINTF(("haltwo_init_codec: allocated %d descriptors (%d bytes)"
    191        1.1  lonewolf 	    " at %p\n", HALTWO_MAX_DMASEGS, allocsz, codec->dma_descs));
    192        1.1  lonewolf 
    193        1.1  lonewolf 	memset(codec->dma_descs, 0, allocsz);
    194        1.1  lonewolf 
    195        1.7      kent 	return 0;
    196        1.1  lonewolf 
    197        1.1  lonewolf out_destroy:
    198        1.1  lonewolf 	bus_dmamap_destroy(sc->sc_dma_tag, codec->dma_map);
    199        1.1  lonewolf out_free:
    200        1.1  lonewolf 	bus_dmamem_free(sc->sc_dma_tag, &codec->dma_seg, rseg);
    201        1.1  lonewolf out:
    202        1.1  lonewolf 	DPRINTF(("haltwo_init_codec failed: %d\n",err));
    203        1.1  lonewolf 
    204        1.7      kent 	return err;
    205        1.1  lonewolf }
    206        1.1  lonewolf 
    207        1.1  lonewolf static void
    208        1.1  lonewolf haltwo_setup_dma(struct haltwo_softc *sc, struct haltwo_codec *codec,
    209        1.1  lonewolf 		struct haltwo_dmabuf *dmabuf, size_t len, int blksize,
    210        1.1  lonewolf 		void (*intr)(void *), void *intrarg)
    211        1.1  lonewolf {
    212        1.1  lonewolf 	int i;
    213        1.1  lonewolf 	bus_dma_segment_t *segp;
    214        1.1  lonewolf 	struct hpc_dma_desc *descp;
    215        1.7      kent 	int next_intr;
    216        1.2   tsutsui 
    217        1.1  lonewolf 	KASSERT(len % blksize == 0);
    218        1.1  lonewolf 
    219        1.7      kent 	next_intr = blksize;
    220        1.1  lonewolf 	codec->intr = intr;
    221        1.1  lonewolf 	codec->intr_arg = intrarg;
    222        1.1  lonewolf 
    223        1.1  lonewolf 	segp = dmabuf->dma_map->dm_segs;
    224        1.1  lonewolf 	descp = codec->dma_descs;
    225        1.1  lonewolf 
    226        1.1  lonewolf 	/* Build descriptor chain for looping DMA, triggering interrupt every
    227        1.1  lonewolf 	 * blksize bytes */
    228        1.1  lonewolf 	for (i = 0; i < dmabuf->dma_map->dm_nsegs; i++) {
    229        1.3    sekiya 		descp->hpc3_hdd_bufptr = segp->ds_addr;
    230        1.3    sekiya 		descp->hpc3_hdd_ctl = segp->ds_len;
    231        1.1  lonewolf 
    232        1.1  lonewolf 		KASSERT(next_intr >= segp->ds_len);
    233        1.1  lonewolf 
    234        1.1  lonewolf 		if (next_intr == segp->ds_len) {
    235        1.1  lonewolf 			/* Generate intr after this DMA buffer */
    236        1.5    rumble 			descp->hpc3_hdd_ctl |= HPC3_HDD_CTL_INTR;
    237        1.1  lonewolf 			next_intr = blksize;
    238        1.2   tsutsui 		} else
    239        1.1  lonewolf 			next_intr -= segp->ds_len;
    240        1.1  lonewolf 
    241        1.1  lonewolf 		if (i < dmabuf->dma_map->dm_nsegs - 1)
    242        1.1  lonewolf 			descp->hdd_descptr = codec->dma_seg.ds_addr +
    243        1.1  lonewolf 			    sizeof(struct hpc_dma_desc) * (i + 1);
    244        1.1  lonewolf 		else
    245        1.1  lonewolf 			descp->hdd_descptr = codec->dma_seg.ds_addr;
    246        1.1  lonewolf 
    247        1.1  lonewolf 		DPRINTF(("haltwo_setup_dma: hdd_bufptr = %x hdd_ctl = %x"
    248        1.3    sekiya 		    " hdd_descptr = %x\n", descp->hpc3_hdd_bufptr,
    249        1.3    sekiya 		    descp->hpc3_hdd_ctl, descp->hdd_descptr));
    250        1.1  lonewolf 
    251        1.1  lonewolf 		segp++;
    252        1.1  lonewolf 		descp++;
    253        1.1  lonewolf 	}
    254        1.1  lonewolf 
    255        1.1  lonewolf 	bus_dmamap_sync(sc->sc_dma_tag, codec->dma_map, 0,
    256        1.1  lonewolf 	    codec->dma_map->dm_mapsize, BUS_DMASYNC_PREWRITE);
    257        1.1  lonewolf }
    258        1.1  lonewolf 
    259        1.1  lonewolf static int
    260       1.19   tsutsui haltwo_match(device_t parent, cfdata_t cf, void *aux)
    261        1.1  lonewolf {
    262        1.7      kent 	struct hpc_attach_args *haa;
    263       1.10    rumble 	uint32_t rev;
    264        1.1  lonewolf 
    265        1.7      kent 	haa = aux;
    266        1.8    sekiya 	if (strcmp(haa->ha_name, cf->cf_name))
    267        1.8    sekiya 		return 0;
    268       1.10    rumble 
    269       1.13        he 	if ( platform.badaddr((void *)(vaddr_t)(haa->ha_sh + haa->ha_devoff),
    270       1.18   tsutsui 	    sizeof(uint32_t)) )
    271        1.8    sekiya 		return 0;
    272        1.1  lonewolf 
    273       1.11    rumble 	if ( platform.badaddr(
    274       1.13        he 	    (void *)(vaddr_t)(haa->ha_sh + haa->ha_devoff + HAL2_REG_CTL_REV),
    275       1.18   tsutsui 	    sizeof(uint32_t)) )
    276       1.10    rumble 		return 0;
    277       1.10    rumble 
    278       1.10    rumble 	rev = *(uint32_t *)MIPS_PHYS_TO_KSEG1(haa->ha_sh + haa->ha_devoff +
    279       1.10    rumble 	    HAL2_REG_CTL_REV);
    280       1.10    rumble 
    281       1.10    rumble 	/* This bit is inverted, the test is correct */
    282       1.10    rumble 	if (rev & HAL2_REV_AUDIO_PRESENT_N)
    283       1.10    rumble 		return 0;
    284       1.10    rumble 
    285        1.8    sekiya 	return 1;
    286        1.1  lonewolf }
    287        1.1  lonewolf 
    288        1.1  lonewolf static void
    289       1.19   tsutsui haltwo_attach(device_t parent, device_t self, void *aux)
    290        1.1  lonewolf {
    291        1.7      kent 	struct haltwo_softc *sc;
    292        1.7      kent 	struct hpc_attach_args *haa;
    293        1.1  lonewolf 	uint32_t rev;
    294        1.2   tsutsui 
    295       1.19   tsutsui 	sc = device_private(self);
    296        1.7      kent 	haa = aux;
    297       1.19   tsutsui 	sc->sc_dev = self;
    298        1.1  lonewolf 	sc->sc_st = haa->ha_st;
    299        1.1  lonewolf 	sc->sc_dma_tag = haa->ha_dmat;
    300        1.1  lonewolf 
    301       1.21  jmcneill 	mutex_init(&sc->sc_lock, MUTEX_DEFAULT, IPL_NONE);
    302       1.22       mrg 	mutex_init(&sc->sc_intr_lock, MUTEX_DEFAULT, IPL_AUDIO);
    303       1.21  jmcneill 
    304        1.1  lonewolf 	if (bus_space_subregion(haa->ha_st, haa->ha_sh, haa->ha_devoff,
    305        1.5    rumble 	    HPC3_PBUS_CH0_DEVREGS_SIZE, &sc->sc_ctl_sh)) {
    306        1.1  lonewolf 		aprint_error(": unable to map control registers\n");
    307        1.1  lonewolf 		return;
    308        1.1  lonewolf 	}
    309        1.1  lonewolf 
    310        1.5    rumble 	if (bus_space_subregion(haa->ha_st, haa->ha_sh, HPC3_PBUS_CH2_DEVREGS,
    311        1.5    rumble 	    HPC3_PBUS_CH2_DEVREGS_SIZE, &sc->sc_vol_sh)) {
    312        1.1  lonewolf 		aprint_error(": unable to map volume registers\n");
    313        1.1  lonewolf 		return;
    314        1.1  lonewolf 	}
    315        1.1  lonewolf 
    316        1.1  lonewolf 	if (bus_space_subregion(haa->ha_st, haa->ha_sh, haa->ha_dmaoff,
    317        1.5    rumble 	    HPC3_PBUS_DMAREGS_SIZE, &sc->sc_dma_sh)) {
    318        1.1  lonewolf 		aprint_error(": unable to map DMA registers\n");
    319        1.1  lonewolf 		return;
    320        1.1  lonewolf 	}
    321        1.1  lonewolf 
    322        1.1  lonewolf 	haltwo_write(sc, ctl, HAL2_REG_CTL_ISR, 0);
    323        1.1  lonewolf 	haltwo_write(sc, ctl, HAL2_REG_CTL_ISR,
    324        1.1  lonewolf 	    HAL2_ISR_GLOBAL_RESET_N | HAL2_ISR_CODEC_RESET_N);
    325        1.1  lonewolf 	haltwo_write_indirect(sc, HAL2_IREG_RELAY_C, HAL2_RELAY_C_STATE, 0);
    326        1.1  lonewolf 
    327        1.1  lonewolf 	rev = haltwo_read(sc, ctl, HAL2_REG_CTL_REV);
    328        1.1  lonewolf 
    329       1.22       mrg 	if (cpu_intr_establish(haa->ha_irq, IPL_AUDIO, haltwo_intr, sc)
    330        1.1  lonewolf 	    == NULL) {
    331        1.1  lonewolf 		aprint_error(": unable to establish interrupt\n");
    332        1.1  lonewolf 		return;
    333        1.1  lonewolf 	}
    334        1.1  lonewolf 
    335        1.1  lonewolf 	aprint_naive(": Audio controller\n");
    336        1.1  lonewolf 
    337        1.1  lonewolf 	aprint_normal(": HAL2 revision %d.%d.%d\n", (rev & 0x7000) >> 12,
    338        1.1  lonewolf 	    (rev & 0x00F0) >> 4, rev & 0x000F);
    339        1.1  lonewolf 
    340        1.1  lonewolf 	if (haltwo_init_codec(sc, &sc->sc_dac)) {
    341        1.1  lonewolf 		aprint_error(
    342        1.1  lonewolf 		    "haltwo_attach: unable to create DMA descriptor list\n");
    343        1.1  lonewolf 		return;
    344        1.1  lonewolf 	}
    345        1.1  lonewolf 
    346        1.1  lonewolf 	/* XXX Magic PBUS CFGDMA values from Linux HAL2 driver XXX */
    347        1.5    rumble 	bus_space_write_4(haa->ha_st, haa->ha_sh, HPC3_PBUS_CH0_CFGDMA,
    348        1.1  lonewolf 	    0x8208844);
    349        1.5    rumble 	bus_space_write_4(haa->ha_st, haa->ha_sh, HPC3_PBUS_CH1_CFGDMA,
    350        1.1  lonewolf 	    0x8208844);
    351        1.1  lonewolf 
    352        1.1  lonewolf 	/* Unmute output */
    353        1.1  lonewolf 	/* XXX Add mute/unmute support to mixer ops? XXX */
    354        1.1  lonewolf 	haltwo_write_indirect(sc, HAL2_IREG_DAC_C2, 0, 0);
    355        1.1  lonewolf 
    356        1.1  lonewolf 	/* Set master volume to zero */
    357        1.1  lonewolf 	sc->sc_vol_left = sc->sc_vol_right = 0;
    358        1.1  lonewolf 	haltwo_write(sc, vol, HAL2_REG_VOL_LEFT, sc->sc_vol_left);
    359        1.1  lonewolf 	haltwo_write(sc, vol, HAL2_REG_VOL_RIGHT, sc->sc_vol_right);
    360        1.1  lonewolf 
    361       1.19   tsutsui 	audio_attach_mi(&haltwo_hw_if, sc, self);
    362       1.15   tsutsui 
    363       1.17   tsutsui 	if (!pmf_device_register1(self, NULL, NULL, haltwo_shutdown))
    364       1.15   tsutsui 		aprint_error_dev(self,
    365       1.17   tsutsui 		    "couldn't establish power handler\n");
    366        1.1  lonewolf }
    367        1.1  lonewolf 
    368        1.1  lonewolf static int
    369        1.1  lonewolf haltwo_intr(void *v)
    370        1.1  lonewolf {
    371        1.7      kent 	struct haltwo_softc *sc;
    372        1.7      kent 	int ret;
    373        1.1  lonewolf 
    374        1.7      kent 	sc = v;
    375        1.7      kent 	ret = 0;
    376       1.21  jmcneill 
    377       1.21  jmcneill 	mutex_spin_enter(&sc->sc_intr_lock);
    378       1.21  jmcneill 
    379        1.5    rumble 	if (bus_space_read_4(sc->sc_st, sc->sc_dma_sh, HPC3_PBUS_CH0_CTL)
    380        1.5    rumble 	    & HPC3_PBUS_DMACTL_IRQ) {
    381        1.2   tsutsui 		sc->sc_dac.intr(sc->sc_dac.intr_arg);
    382        1.1  lonewolf 
    383        1.2   tsutsui 		ret = 1;
    384        1.2   tsutsui 	} else
    385        1.2   tsutsui 		DPRINTF(("haltwo_intr: Huh?\n"));
    386        1.1  lonewolf 
    387       1.21  jmcneill 	mutex_spin_exit(&sc->sc_intr_lock);
    388       1.21  jmcneill 
    389        1.7      kent 	return ret;
    390        1.1  lonewolf }
    391        1.1  lonewolf 
    392        1.1  lonewolf static int
    393  1.23.10.1  christos haltwo_query_format(void *v, audio_format_query_t *afp)
    394        1.1  lonewolf {
    395        1.2   tsutsui 
    396  1.23.10.1  christos 	return audio_query_format(&haltwo_formats, 1, afp);
    397        1.1  lonewolf }
    398        1.1  lonewolf 
    399        1.1  lonewolf static int
    400  1.23.10.1  christos haltwo_set_format(void *v, int setmode,
    401  1.23.10.1  christos 		  const audio_params_t *play, const audio_params_t *rec,
    402  1.23.10.1  christos 		  audio_filter_reg_t *pfil, audio_filter_reg_t *rfil)
    403        1.1  lonewolf {
    404        1.7      kent 	struct haltwo_softc *sc;
    405  1.23.10.1  christos 	int inc;
    406        1.1  lonewolf 	uint16_t tmp;
    407        1.1  lonewolf 
    408        1.7      kent 	sc = v;
    409        1.6      kent 	inc = 4;
    410        1.1  lonewolf 
    411        1.1  lonewolf 	/* Setup samplerate to HW */
    412        1.1  lonewolf 	haltwo_write_indirect(sc, HAL2_IREG_BRES1_C1,
    413  1.23.10.1  christos 	    play->sample_rate == 44100 ? 1 : 0, 0);
    414        1.1  lonewolf 	/* XXX Documentation disagrees but this seems to work XXX */
    415  1.23.10.1  christos 	haltwo_write_indirect(sc, HAL2_IREG_BRES1_C2, inc, 0xFFFF);
    416        1.1  lonewolf 
    417        1.1  lonewolf 	/* Setup endianness to HW */
    418        1.1  lonewolf 	haltwo_read_indirect(sc, HAL2_IREG_DMA_END, &tmp, NULL);
    419        1.6      kent 	if (play->encoding == AUDIO_ENCODING_SLINEAR_LE)
    420        1.1  lonewolf 		tmp |= HAL2_DMA_END_CODECTX;
    421        1.1  lonewolf 	else
    422        1.1  lonewolf 		tmp &= ~HAL2_DMA_END_CODECTX;
    423        1.1  lonewolf 	haltwo_write_indirect(sc, HAL2_IREG_DMA_END, tmp, 0);
    424        1.1  lonewolf 
    425        1.1  lonewolf 	/* Set PBUS channel, Bresenham clock source, number of channels to HW */
    426        1.1  lonewolf 	haltwo_write_indirect(sc, HAL2_IREG_DAC_C1,
    427        1.1  lonewolf 	    (0 << HAL2_C1_DMA_SHIFT) |
    428        1.1  lonewolf 	    (1 << HAL2_C1_CLKID_SHIFT) |
    429        1.6      kent 	    (play->channels << HAL2_C1_DATAT_SHIFT), 0);
    430        1.1  lonewolf 
    431  1.23.10.1  christos 	DPRINTF(("%s: hw_encoding = %d hw_channels = %d\n", __func__,
    432        1.6      kent 	    play->encoding, play->channels));
    433        1.1  lonewolf 
    434        1.7      kent 	return 0;
    435        1.1  lonewolf }
    436        1.1  lonewolf 
    437        1.1  lonewolf static int
    438        1.6      kent haltwo_round_blocksize(void *v, int blocksize,
    439        1.6      kent 		       int mode, const audio_params_t *param)
    440        1.1  lonewolf {
    441        1.2   tsutsui 
    442        1.1  lonewolf 	/* XXX Make this smarter and support DMA descriptor chaining XXX */
    443        1.1  lonewolf 	/* XXX Rounding to nearest PAGE_SIZE might work? XXX */
    444        1.1  lonewolf 	return PAGE_SIZE;
    445        1.1  lonewolf }
    446        1.1  lonewolf 
    447        1.1  lonewolf static int
    448        1.1  lonewolf haltwo_halt_output(void *v)
    449        1.1  lonewolf {
    450        1.7      kent 	struct haltwo_softc *sc;
    451        1.1  lonewolf 
    452        1.7      kent 	sc = v;
    453        1.1  lonewolf 	/* Disable PBUS DMA */
    454        1.5    rumble 	bus_space_write_4(sc->sc_st, sc->sc_dma_sh, HPC3_PBUS_CH0_CTL,
    455        1.5    rumble 	    HPC3_PBUS_DMACTL_ACT_LD);
    456        1.1  lonewolf 
    457        1.7      kent 	return 0;
    458        1.1  lonewolf }
    459        1.1  lonewolf 
    460        1.1  lonewolf static int
    461        1.1  lonewolf haltwo_halt_input(void *v)
    462        1.1  lonewolf {
    463        1.2   tsutsui 
    464        1.7      kent 	return ENXIO;
    465        1.1  lonewolf }
    466        1.1  lonewolf 
    467        1.1  lonewolf static int
    468        1.1  lonewolf haltwo_getdev(void *v, struct audio_device *dev)
    469        1.1  lonewolf {
    470        1.2   tsutsui 
    471        1.1  lonewolf 	*dev = haltwo_device;
    472        1.7      kent 	return 0;
    473        1.1  lonewolf }
    474        1.1  lonewolf 
    475        1.1  lonewolf static int
    476        1.1  lonewolf haltwo_set_port(void *v, mixer_ctrl_t *mc)
    477        1.1  lonewolf {
    478        1.7      kent 	struct haltwo_softc *sc;
    479        1.1  lonewolf 	int lval, rval;
    480        1.2   tsutsui 
    481        1.1  lonewolf 	if (mc->type != AUDIO_MIXER_VALUE)
    482        1.7      kent 		return EINVAL;
    483        1.1  lonewolf 
    484        1.1  lonewolf 	if (mc->un.value.num_channels == 1)
    485        1.1  lonewolf 		lval = rval = mc->un.value.level[AUDIO_MIXER_LEVEL_MONO];
    486        1.1  lonewolf 	else if (mc->un.value.num_channels == 2) {
    487        1.1  lonewolf 		lval = mc->un.value.level[AUDIO_MIXER_LEVEL_LEFT];
    488        1.1  lonewolf 		rval = mc->un.value.level[AUDIO_MIXER_LEVEL_RIGHT];
    489        1.1  lonewolf 	} else
    490        1.7      kent 		return EINVAL;
    491        1.1  lonewolf 
    492        1.7      kent 	sc = v;
    493        1.1  lonewolf 	switch (mc->dev) {
    494        1.1  lonewolf 	case HALTWO_MASTER_VOL:
    495        1.1  lonewolf 		sc->sc_vol_left = lval;
    496        1.1  lonewolf 		sc->sc_vol_right = rval;
    497        1.1  lonewolf 
    498        1.1  lonewolf 		haltwo_write(sc, vol, HAL2_REG_VOL_LEFT,
    499        1.1  lonewolf 		    sc->sc_vol_left);
    500        1.1  lonewolf 		haltwo_write(sc, vol, HAL2_REG_VOL_RIGHT,
    501        1.1  lonewolf 		    sc->sc_vol_right);
    502        1.1  lonewolf 		break;
    503        1.1  lonewolf 
    504        1.1  lonewolf 	default:
    505        1.7      kent 		return EINVAL;
    506        1.1  lonewolf 	}
    507        1.1  lonewolf 
    508        1.7      kent 	return 0;
    509        1.1  lonewolf }
    510        1.1  lonewolf 
    511        1.1  lonewolf static int
    512        1.1  lonewolf haltwo_get_port(void *v, mixer_ctrl_t *mc)
    513        1.1  lonewolf {
    514        1.7      kent 	struct haltwo_softc *sc;
    515        1.1  lonewolf 	int l, r;
    516        1.2   tsutsui 
    517        1.1  lonewolf 	switch (mc->dev) {
    518        1.1  lonewolf 	case HALTWO_MASTER_VOL:
    519        1.7      kent 		sc = v;
    520        1.1  lonewolf 		l = sc->sc_vol_left;
    521        1.1  lonewolf 		r = sc->sc_vol_right;
    522        1.1  lonewolf 		break;
    523        1.1  lonewolf 
    524        1.1  lonewolf 	default:
    525        1.7      kent 		return EINVAL;
    526        1.1  lonewolf 	}
    527        1.1  lonewolf 
    528        1.1  lonewolf 	if (mc->un.value.num_channels == 1)
    529        1.1  lonewolf 		mc->un.value.level[AUDIO_MIXER_LEVEL_MONO] = (l+r) / 2;
    530        1.1  lonewolf 	else if (mc->un.value.num_channels == 2) {
    531        1.1  lonewolf 		mc->un.value.level[AUDIO_MIXER_LEVEL_LEFT]  = l;
    532        1.1  lonewolf 		mc->un.value.level[AUDIO_MIXER_LEVEL_RIGHT] = r;
    533        1.1  lonewolf 	} else
    534        1.7      kent 		return EINVAL;
    535        1.1  lonewolf 
    536        1.7      kent 	return 0;
    537        1.1  lonewolf }
    538        1.1  lonewolf 
    539        1.1  lonewolf static int
    540        1.1  lonewolf haltwo_query_devinfo(void *v, mixer_devinfo_t *dev)
    541        1.1  lonewolf {
    542        1.2   tsutsui 
    543        1.1  lonewolf 	switch (dev->index) {
    544        1.1  lonewolf 	/* Mixer values */
    545        1.1  lonewolf 	case HALTWO_MASTER_VOL:
    546        1.1  lonewolf 		dev->type = AUDIO_MIXER_VALUE;
    547        1.1  lonewolf 		dev->mixer_class = HALTWO_OUTPUT_CLASS;
    548        1.1  lonewolf 		dev->prev = dev->next = AUDIO_MIXER_LAST;
    549        1.1  lonewolf 		strcpy(dev->label.name, AudioNmaster);
    550        1.1  lonewolf 		dev->un.v.num_channels = 2;
    551       1.16  macallan 		dev->un.v.delta = 16;
    552        1.1  lonewolf 		strcpy(dev->un.v.units.name, AudioNvolume);
    553        1.1  lonewolf 		break;
    554        1.1  lonewolf 
    555        1.1  lonewolf 	/* Mixer classes */
    556        1.1  lonewolf 	case HALTWO_OUTPUT_CLASS:
    557        1.1  lonewolf 		dev->type = AUDIO_MIXER_CLASS;
    558        1.1  lonewolf 		dev->mixer_class = HALTWO_OUTPUT_CLASS;
    559        1.1  lonewolf 		dev->next = dev->prev = AUDIO_MIXER_LAST;
    560        1.1  lonewolf 		strcpy(dev->label.name, AudioCoutputs);
    561        1.1  lonewolf 		break;
    562        1.1  lonewolf 
    563        1.1  lonewolf 	default:
    564        1.7      kent 		return EINVAL;
    565        1.1  lonewolf 	}
    566        1.1  lonewolf 
    567        1.7      kent 	return 0;
    568        1.1  lonewolf }
    569        1.1  lonewolf 
    570        1.1  lonewolf static int
    571        1.1  lonewolf haltwo_alloc_dmamem(struct haltwo_softc *sc, size_t size,
    572        1.1  lonewolf 		struct haltwo_dmabuf *p)
    573        1.1  lonewolf {
    574        1.1  lonewolf 	int err;
    575        1.1  lonewolf 
    576        1.1  lonewolf 	p->size = size;
    577        1.1  lonewolf 
    578        1.1  lonewolf 	/* XXX Check align/boundary XXX */
    579        1.1  lonewolf 	err = bus_dmamem_alloc(sc->sc_dma_tag, p->size, 0, 0, p->dma_segs,
    580       1.21  jmcneill 	    HALTWO_MAX_DMASEGS, &p->dma_segcount, BUS_DMA_WAITOK);
    581        1.1  lonewolf 	if (err)
    582        1.1  lonewolf 		goto out;
    583        1.1  lonewolf 
    584        1.1  lonewolf 	/* XXX BUS_DMA_COHERENT? XXX */
    585        1.1  lonewolf 	err = bus_dmamem_map(sc->sc_dma_tag, p->dma_segs, p->dma_segcount,
    586       1.21  jmcneill 	    p->size, &p->kern_addr, BUS_DMA_WAITOK | BUS_DMA_COHERENT);
    587        1.1  lonewolf 	if (err)
    588        1.1  lonewolf 		goto out_free;
    589        1.1  lonewolf 
    590        1.1  lonewolf 	/* XXX Just guessing ... XXX */
    591        1.1  lonewolf 	err = bus_dmamap_create(sc->sc_dma_tag, p->size, HALTWO_MAX_DMASEGS,
    592       1.21  jmcneill 	    PAGE_SIZE, 0, BUS_DMA_WAITOK, &p->dma_map);
    593        1.1  lonewolf 	if (err)
    594        1.1  lonewolf 		goto out_free;
    595        1.1  lonewolf 
    596        1.1  lonewolf 	err = bus_dmamap_load(sc->sc_dma_tag, p->dma_map, p->kern_addr,
    597       1.21  jmcneill 	    p->size, NULL, BUS_DMA_WAITOK);
    598        1.1  lonewolf 	if (err)
    599        1.1  lonewolf 		goto out_destroy;
    600        1.1  lonewolf 
    601        1.1  lonewolf 	return 0;
    602        1.1  lonewolf 
    603        1.1  lonewolf out_destroy:
    604        1.1  lonewolf 	bus_dmamap_destroy(sc->sc_dma_tag, p->dma_map);
    605        1.1  lonewolf out_free:
    606        1.1  lonewolf 	bus_dmamem_free(sc->sc_dma_tag, p->dma_segs, p->dma_segcount);
    607        1.1  lonewolf out:
    608        1.1  lonewolf 	DPRINTF(("haltwo_alloc_dmamem failed: %d\n",err));
    609        1.1  lonewolf 
    610        1.1  lonewolf 	return err;
    611        1.1  lonewolf }
    612        1.1  lonewolf 
    613        1.1  lonewolf static void *
    614       1.21  jmcneill haltwo_malloc(void *v, int direction, size_t size)
    615        1.1  lonewolf {
    616        1.7      kent 	struct haltwo_softc *sc;
    617        1.1  lonewolf 	struct haltwo_dmabuf *p;
    618        1.1  lonewolf 
    619        1.1  lonewolf 	DPRINTF(("haltwo_malloc size = %d\n", size));
    620        1.7      kent 	sc = v;
    621       1.21  jmcneill 	p = kmem_alloc(sizeof(*p), KM_SLEEP);
    622        1.1  lonewolf 	if (haltwo_alloc_dmamem(sc, size, p)) {
    623       1.21  jmcneill 		kmem_free(p, sizeof(*p));
    624       1.21  jmcneill 		return NULL;
    625        1.1  lonewolf 	}
    626        1.1  lonewolf 
    627        1.1  lonewolf 	p->next = sc->sc_dma_bufs;
    628        1.1  lonewolf 	sc->sc_dma_bufs = p;
    629        1.1  lonewolf 
    630        1.1  lonewolf 	return p->kern_addr;
    631        1.1  lonewolf }
    632        1.1  lonewolf 
    633        1.1  lonewolf static void
    634       1.21  jmcneill haltwo_free(void *v, void *addr, size_t size)
    635        1.1  lonewolf {
    636        1.7      kent 	struct haltwo_softc *sc;
    637        1.7      kent 	struct haltwo_dmabuf *p, **pp;
    638        1.1  lonewolf 
    639        1.7      kent 	sc = v;
    640        1.1  lonewolf 	for (pp = &sc->sc_dma_bufs; (p = *pp) != NULL; pp = &p->next) {
    641        1.1  lonewolf 		if (p->kern_addr == addr) {
    642        1.1  lonewolf 			*pp = p->next;
    643       1.21  jmcneill 			kmem_free(p, sizeof(*p));
    644        1.1  lonewolf 			return;
    645        1.1  lonewolf 		}
    646        1.1  lonewolf 	}
    647        1.1  lonewolf 
    648        1.1  lonewolf 	panic("haltwo_free: buffer not in list");
    649        1.1  lonewolf }
    650        1.1  lonewolf 
    651        1.1  lonewolf static int
    652        1.1  lonewolf haltwo_get_props(void *v)
    653        1.1  lonewolf {
    654        1.2   tsutsui 
    655  1.23.10.1  christos 	return AUDIO_PROP_PLAYBACK;
    656        1.1  lonewolf }
    657        1.1  lonewolf 
    658        1.1  lonewolf static int
    659        1.1  lonewolf haltwo_trigger_output(void *v, void *start, void *end, int blksize,
    660        1.6      kent 		void (*intr)(void *), void *intrarg, const audio_params_t *param)
    661        1.1  lonewolf {
    662        1.7      kent 	struct haltwo_softc *sc;
    663        1.1  lonewolf 	struct haltwo_dmabuf *p;
    664        1.1  lonewolf 	uint16_t tmp;
    665        1.1  lonewolf 	uint32_t ctrl;
    666        1.1  lonewolf 	unsigned int fifobeg, fifoend, highwater;
    667        1.1  lonewolf 
    668        1.1  lonewolf 	DPRINTF(("haltwo_trigger_output start = %p end = %p blksize = %d"
    669        1.2   tsutsui 	    " param = %p\n", start, end, blksize, param));
    670        1.7      kent 	sc = v;
    671        1.1  lonewolf 	for (p = sc->sc_dma_bufs; p != NULL; p = p->next)
    672        1.1  lonewolf 		if (p->kern_addr == start)
    673        1.1  lonewolf 			break;
    674        1.1  lonewolf 
    675        1.1  lonewolf 	if (p == NULL) {
    676        1.1  lonewolf 		printf("haltwo_trigger_output: buffer not in list\n");
    677        1.2   tsutsui 
    678        1.7      kent 		return EINVAL;
    679        1.1  lonewolf 	}
    680        1.1  lonewolf 
    681        1.1  lonewolf 	/* Disable PBUS DMA */
    682        1.5    rumble 	bus_space_write_4(sc->sc_st, sc->sc_dma_sh, HPC3_PBUS_CH0_CTL,
    683        1.5    rumble 	    HPC3_PBUS_DMACTL_ACT_LD);
    684        1.1  lonewolf 
    685        1.1  lonewolf 	/* Disable HAL2 codec DMA */
    686        1.1  lonewolf 	haltwo_read_indirect(sc, HAL2_IREG_DMA_PORT_EN, &tmp, NULL);
    687        1.1  lonewolf 	haltwo_write_indirect(sc, HAL2_IREG_DMA_PORT_EN,
    688        1.1  lonewolf 	    tmp & ~HAL2_DMA_PORT_EN_CODECTX, 0);
    689        1.1  lonewolf 
    690        1.1  lonewolf 	haltwo_setup_dma(sc, &sc->sc_dac, p, (char *)end - (char *)start,
    691        1.1  lonewolf 	    blksize, intr, intrarg);
    692        1.1  lonewolf 
    693        1.6      kent 	highwater = (param->channels * 4) >> 1;
    694        1.1  lonewolf 	fifobeg = 0;
    695        1.6      kent 	fifoend = (param->channels * 8) >> 3;
    696        1.1  lonewolf 
    697        1.1  lonewolf 	DPRINTF(("haltwo_trigger_output: hw_channels = %d highwater = %d"
    698  1.23.10.1  christos 	    " fifobeg = %d fifoend = %d\n", param->channels, highwater,
    699        1.2   tsutsui 	    fifobeg, fifoend));
    700        1.1  lonewolf 
    701        1.5    rumble 	ctrl = HPC3_PBUS_DMACTL_RT
    702        1.5    rumble 	    | HPC3_PBUS_DMACTL_ACT_LD
    703        1.5    rumble 	    | (highwater << HPC3_PBUS_DMACTL_HIGHWATER_SHIFT)
    704        1.5    rumble 	    | (fifobeg << HPC3_PBUS_DMACTL_FIFOBEG_SHIFT)
    705        1.5    rumble 	    | (fifoend << HPC3_PBUS_DMACTL_FIFOEND_SHIFT);
    706        1.1  lonewolf 
    707        1.1  lonewolf 	/* Using PBUS CH0 for DAC DMA */
    708        1.1  lonewolf 	haltwo_write_indirect(sc, HAL2_IREG_DMA_DRV, 1, 0);
    709        1.1  lonewolf 
    710        1.1  lonewolf 	/* HAL2 is ready for action, now setup PBUS for DMA transfer */
    711        1.5    rumble 	bus_space_write_4(sc->sc_st, sc->sc_dma_sh, HPC3_PBUS_CH0_DP,
    712        1.1  lonewolf 	    sc->sc_dac.dma_seg.ds_addr);
    713        1.5    rumble 	bus_space_write_4(sc->sc_st, sc->sc_dma_sh, HPC3_PBUS_CH0_CTL,
    714        1.5    rumble 	    ctrl | HPC3_PBUS_DMACTL_ACT);
    715        1.1  lonewolf 
    716        1.1  lonewolf 	/* Both HAL2 and PBUS have been setup, now start it up */
    717        1.1  lonewolf 	haltwo_read_indirect(sc, HAL2_IREG_DMA_PORT_EN, &tmp, NULL);
    718        1.1  lonewolf 	haltwo_write_indirect(sc, HAL2_IREG_DMA_PORT_EN,
    719        1.1  lonewolf 	    tmp | HAL2_DMA_PORT_EN_CODECTX, 0);
    720        1.2   tsutsui 
    721        1.7      kent 	return 0;
    722        1.1  lonewolf }
    723        1.1  lonewolf 
    724        1.1  lonewolf static int
    725        1.1  lonewolf haltwo_trigger_input(void *v, void *start, void *end, int blksize,
    726        1.6      kent 		void (*intr)(void *), void *intrarg, const audio_params_t *param)
    727        1.1  lonewolf {
    728        1.7      kent 	struct haltwo_softc *sc;
    729        1.1  lonewolf 	struct haltwo_dmabuf *p;
    730        1.2   tsutsui 
    731        1.1  lonewolf 	DPRINTF(("haltwo_trigger_input start = %p end = %p blksize = %d\n",
    732        1.2   tsutsui 	    start, end, blksize));
    733        1.7      kent 	sc = v;
    734        1.1  lonewolf 	for (p = sc->sc_dma_bufs; p != NULL; p = p->next)
    735        1.1  lonewolf 		if (p->kern_addr == start)
    736        1.1  lonewolf 			break;
    737        1.1  lonewolf 
    738        1.1  lonewolf 	if (p == NULL) {
    739        1.1  lonewolf 		printf("haltwo_trigger_input: buffer not in list\n");
    740        1.2   tsutsui 
    741        1.7      kent 		return EINVAL;
    742        1.1  lonewolf 	}
    743        1.1  lonewolf 
    744        1.1  lonewolf #if 0
    745        1.1  lonewolf 	haltwo_setup_dma(sc, &sc->sc_adc, p, (char *)end - (char *)start,
    746        1.1  lonewolf 	    blksize, intr, intrarg);
    747        1.1  lonewolf #endif
    748        1.2   tsutsui 
    749        1.7      kent 	return ENXIO;
    750        1.1  lonewolf }
    751       1.15   tsutsui 
    752       1.21  jmcneill static void
    753       1.21  jmcneill haltwo_get_locks(void *v, kmutex_t **intr, kmutex_t **thread)
    754       1.21  jmcneill {
    755       1.21  jmcneill 	struct haltwo_softc *sc;
    756       1.21  jmcneill 
    757       1.21  jmcneill 	DPRINTF(("haltwo_get_locks\n"));
    758       1.21  jmcneill 	sc = v;
    759       1.21  jmcneill 
    760       1.21  jmcneill 	*intr = &sc->sc_intr_lock;
    761       1.21  jmcneill 	*thread = &sc->sc_lock;
    762       1.21  jmcneill }
    763       1.21  jmcneill 
    764       1.17   tsutsui bool
    765       1.17   tsutsui haltwo_shutdown(device_t self, int howto)
    766       1.15   tsutsui {
    767       1.17   tsutsui 	struct haltwo_softc *sc;
    768       1.15   tsutsui 
    769       1.17   tsutsui 	sc = device_private(self);
    770       1.15   tsutsui 	haltwo_write(sc, ctl, HAL2_REG_CTL_ISR, 0);
    771       1.15   tsutsui 	haltwo_write(sc, ctl, HAL2_REG_CTL_ISR,
    772       1.15   tsutsui 	    HAL2_ISR_GLOBAL_RESET_N | HAL2_ISR_CODEC_RESET_N);
    773       1.17   tsutsui 
    774       1.17   tsutsui 	return true;
    775       1.15   tsutsui }
    776