Exemplo n.º 1
0
static int
gem_sbus_attach(device_t dev)
{
	struct gem_softc *sc;
	int burst;
	uint32_t val;

	sc = device_get_softc(dev);
	sc->sc_variant = GEM_SUN_GEM;
	sc->sc_dev = dev;
	/* All known SBus models use a SERDES. */
	sc->sc_flags = GEM_SERDES;

	if (bus_alloc_resources(dev, gem_sbus_res_spec, sc->sc_res)) {
		device_printf(dev, "failed to allocate resources\n");
		bus_release_resources(dev, gem_sbus_res_spec, sc->sc_res);
		return (ENXIO);
	}

	GEM_LOCK_INIT(sc, device_get_nameunit(dev));

	OF_getetheraddr(dev, sc->sc_enaddr);

	burst = sbus_get_burstsz(dev);
	val = GEM_SBUS_CFG_PARITY;
	if ((burst & SBUS_BURST64_MASK) != 0) {
		val |= GEM_SBUS_CFG_64BIT;
		burst >>= SBUS_BURST64_SHIFT;
	}
Exemplo n.º 2
0
static int
dma_attach(device_t dev)
{
	struct dma_softc *dsc;
	struct lsi64854_softc *lsc;
	struct dma_devinfo *ddi;
	device_t cdev;
	const char *name;
	char *cabletype;
	uint32_t csr;
	phandle_t child, node;
	int error, i;

	dsc = device_get_softc(dev);
	lsc = &dsc->sc_lsi64854;

	name = ofw_bus_get_name(dev);
	node = ofw_bus_get_node(dev);
	dsc->sc_ign = sbus_get_ign(dev);
	dsc->sc_slot = sbus_get_slot(dev);

	i = 0;
	lsc->sc_res = bus_alloc_resource_any(dev, SYS_RES_MEMORY, &i,
	    RF_ACTIVE);
	if (lsc->sc_res == NULL) {
		device_printf(dev, "cannot allocate resources\n");
		return (ENXIO);
	}

	if (strcmp(name, "espdma") == 0 || strcmp(name, "dma") == 0)
		lsc->sc_channel = L64854_CHANNEL_SCSI;
	else if (strcmp(name, "ledma") == 0) {
		/*
		 * Check to see which cable type is currently active and
		 * set the appropriate bit in the ledma csr so that it
		 * gets used. If we didn't netboot, the PROM won't have
		 * the "cable-selection" property; default to TP and then
		 * the user can change it via a "media" option to ifconfig.
		 */
		csr = L64854_GCSR(lsc);
		if ((OF_getprop_alloc(node, "cable-selection", 1,
		    (void **)&cabletype)) == -1) {
			/* assume TP if nothing there */
			csr |= E_TP_AUI;
		} else {
			if (strcmp(cabletype, "aui") == 0)
				csr &= ~E_TP_AUI;
			else
				csr |= E_TP_AUI;
			free(cabletype, M_OFWPROP);
		}
		L64854_SCSR(lsc, csr);
		DELAY(20000);	/* manual says we need a 20ms delay */
		lsc->sc_channel = L64854_CHANNEL_ENET;
	} else {
		device_printf(dev, "unsupported DMA channel\n");
		error = ENXIO;
		goto fail_lres;
	}

	error = bus_dma_tag_create(
	    bus_get_dma_tag(dev),	/* parent */
	    1, 0,			/* alignment, boundary */
	    BUS_SPACE_MAXADDR,		/* lowaddr */
	    BUS_SPACE_MAXADDR,		/* highaddr */
	    NULL, NULL,			/* filter, filterarg */
	    BUS_SPACE_MAXSIZE_32BIT,	/* maxsize */
	    0,				/* nsegments */
	    BUS_SPACE_MAXSIZE_32BIT,	/* maxsegsize */
	    0,				/* flags */
	    NULL, NULL,			/* no locking */
	    &lsc->sc_parent_dmat);
	if (error != 0) {
		device_printf(dev, "cannot allocate parent DMA tag\n");
		goto fail_lres;
	}

	i = sbus_get_burstsz(dev);
	lsc->sc_burst = (i & SBUS_BURST_32) ? 32 :
	    (i & SBUS_BURST_16) ? 16 : 0;
	lsc->sc_dev = dev;

	/* Attach children. */
	i = 0;
	for (child = OF_child(node); child != 0; child = OF_peer(child)) {
		if ((ddi = dma_setup_dinfo(dev, dsc, child)) == NULL)
			continue;
		if (i != 0) {
			device_printf(dev,
			    "<%s>: only one child per DMA channel supported\n",
			    ddi->ddi_obdinfo.obd_name);
			dma_destroy_dinfo(ddi);
			continue;
		}
		if ((cdev = device_add_child(dev, NULL, -1)) == NULL) {
			device_printf(dev, "<%s>: device_add_child failed\n",
			    ddi->ddi_obdinfo.obd_name);
			dma_destroy_dinfo(ddi);
			continue;
		}
		device_set_ivars(cdev, ddi);
		i++;
	}
	return (bus_generic_attach(dev));

 fail_lres:
	bus_release_resource(dev, SYS_RES_MEMORY, rman_get_rid(lsc->sc_res),
	    lsc->sc_res);
	return (error);
}
Exemplo n.º 3
0
static int
hme_sbus_attach(device_t dev)
{
	struct hme_sbus_softc *hsc;
	struct hme_softc *sc;
	u_long start, count;
	uint32_t burst;
	int i, error = 0;

	hsc = device_get_softc(dev);
	sc = &hsc->hsc_hme;
	mtx_init(&sc->sc_lock, device_get_nameunit(dev), MTX_NETWORK_LOCK,
	    MTX_DEF);
	/*
	 * Map five register banks:
	 *
	 *	bank 0: HME SEB registers
	 *	bank 1: HME ETX registers
	 *	bank 2: HME ERX registers
	 *	bank 3: HME MAC registers
	 *	bank 4: HME MIF registers
	 *
	 */
	i = 0;
	hsc->hsc_seb_res = bus_alloc_resource_any(dev, SYS_RES_MEMORY,
	    &i, RF_ACTIVE);
	if (hsc->hsc_seb_res == NULL) {
		device_printf(dev, "cannot map SEB registers\n");
		error = ENXIO;
		goto fail_mtx_res;
	}
	sc->sc_sebt = rman_get_bustag(hsc->hsc_seb_res);
	sc->sc_sebh = rman_get_bushandle(hsc->hsc_seb_res);

	i = 1;
	hsc->hsc_etx_res = bus_alloc_resource_any(dev, SYS_RES_MEMORY,
	    &i, RF_ACTIVE);
	if (hsc->hsc_etx_res == NULL) {
		device_printf(dev, "cannot map ETX registers\n");
		error = ENXIO;
		goto fail_seb_res;
	}
	sc->sc_etxt = rman_get_bustag(hsc->hsc_etx_res);
	sc->sc_etxh = rman_get_bushandle(hsc->hsc_etx_res);

	i = 2;
	hsc->hsc_erx_res = bus_alloc_resource_any(dev, SYS_RES_MEMORY,
	    &i, RF_ACTIVE);
	if (hsc->hsc_erx_res == NULL) {
		device_printf(dev, "cannot map ERX registers\n");
		error = ENXIO;
		goto fail_etx_res;
	}
	sc->sc_erxt = rman_get_bustag(hsc->hsc_erx_res);
	sc->sc_erxh = rman_get_bushandle(hsc->hsc_erx_res);

	i = 3;
	hsc->hsc_mac_res = bus_alloc_resource_any(dev, SYS_RES_MEMORY,
	    &i, RF_ACTIVE);
	if (hsc->hsc_mac_res == NULL) {
		device_printf(dev, "cannot map MAC registers\n");
		error = ENXIO;
		goto fail_erx_res;
	}
	sc->sc_mact = rman_get_bustag(hsc->hsc_mac_res);
	sc->sc_mach = rman_get_bushandle(hsc->hsc_mac_res);

	/*
	 * At least on some HMEs, the MIF registers seem to be inside the MAC
	 * range, so try to kludge around it.
	 */
	i = 4;
	hsc->hsc_mif_res = bus_alloc_resource_any(dev, SYS_RES_MEMORY,
	    &i, RF_ACTIVE);
	if (hsc->hsc_mif_res == NULL) {
		if (bus_get_resource(dev, SYS_RES_MEMORY, i,
		    &start, &count) != 0) {
			device_printf(dev, "cannot get MIF registers\n");
			error = ENXIO;
			goto fail_mac_res;
		}
		if (start < rman_get_start(hsc->hsc_mac_res) ||
		    start + count - 1 > rman_get_end(hsc->hsc_mac_res)) {
			device_printf(dev, "cannot move MIF registers to MAC "
			    "bank\n");
			error = ENXIO;
			goto fail_mac_res;
		}
		sc->sc_mift = sc->sc_mact;
		bus_space_subregion(sc->sc_mact, sc->sc_mach,
		    start - rman_get_start(hsc->hsc_mac_res), count,
		    &sc->sc_mifh);
	} else {
		sc->sc_mift = rman_get_bustag(hsc->hsc_mif_res);
		sc->sc_mifh = rman_get_bushandle(hsc->hsc_mif_res);
	}

	i = 0;
	hsc->hsc_ires = bus_alloc_resource_any(dev, SYS_RES_IRQ,
	    &i, RF_SHAREABLE | RF_ACTIVE);
	if (hsc->hsc_ires == NULL) {
		device_printf(dev, "could not allocate interrupt\n");
		error = ENXIO;
		goto fail_mif_res;
	}

	OF_getetheraddr(dev, sc->sc_enaddr);

	burst = sbus_get_burstsz(dev);
	/* Translate into plain numerical format */
	if ((burst & SBUS_BURST_64))
		sc->sc_burst = 64;
	else if ((burst & SBUS_BURST_32))
		sc->sc_burst = 32;
	else if ((burst & SBUS_BURST_16))
		sc->sc_burst = 16;
	else
		 sc->sc_burst = 0;

	sc->sc_dev = dev;
	sc->sc_flags = 0;

	if ((error = hme_config(sc)) != 0) {
		device_printf(dev, "could not be configured\n");
		goto fail_ires;
	}

	if ((error = bus_setup_intr(dev, hsc->hsc_ires, INTR_TYPE_NET |
	    INTR_MPSAFE, NULL, hme_intr, sc, &hsc->hsc_ih)) != 0) {
		device_printf(dev, "couldn't establish interrupt\n");
		hme_detach(sc);
		goto fail_ires;
	}
	return (0);

fail_ires:
	bus_release_resource(dev, SYS_RES_IRQ,
	    rman_get_rid(hsc->hsc_ires), hsc->hsc_ires);
fail_mif_res:
	if (hsc->hsc_mif_res != NULL) {
		bus_release_resource(dev, SYS_RES_MEMORY,
		    rman_get_rid(hsc->hsc_mif_res), hsc->hsc_mif_res);
	}
fail_mac_res:
	bus_release_resource(dev, SYS_RES_MEMORY,
	    rman_get_rid(hsc->hsc_mac_res), hsc->hsc_mac_res);
fail_erx_res:
	bus_release_resource(dev, SYS_RES_MEMORY,
	    rman_get_rid(hsc->hsc_erx_res), hsc->hsc_erx_res);
fail_etx_res:
	bus_release_resource(dev, SYS_RES_MEMORY,
	    rman_get_rid(hsc->hsc_etx_res), hsc->hsc_etx_res);
fail_seb_res:
	bus_release_resource(dev, SYS_RES_MEMORY,
	    rman_get_rid(hsc->hsc_seb_res), hsc->hsc_seb_res);
fail_mtx_res:
	mtx_destroy(&sc->sc_lock);
	return (error);
}
Exemplo n.º 4
0
static int
esp_sbus_attach(device_t dev)
{
	struct esp_softc *esc;
	struct ncr53c9x_softc *sc;
	struct lsi64854_softc *lsc;
	device_t *children;
	int error, i, nchildren;

	esc = device_get_softc(dev);
	sc = &esc->sc_ncr53c9x;

	lsc = NULL;
	esc->sc_dev = dev;
	sc->sc_freq = sbus_get_clockfreq(dev);

	if (strcmp(ofw_bus_get_name(dev), "SUNW,fas") == 0) {
		/*
		 * Allocate space for DMA, in SUNW,fas there are no
		 * separate DMA devices.
		 */
		lsc = malloc(sizeof (struct lsi64854_softc), M_DEVBUF,
		    M_NOWAIT | M_ZERO);
		if (lsc == NULL) {
			device_printf(dev, "out of memory (lsi64854_softc)\n");
			return (ENOMEM);
		}
		esc->sc_dma = lsc;

		/*
		 * SUNW,fas have 2 register spaces: DMA (lsi64854) and
		 * SCSI core (ncr53c9x).
		 */

		/* Allocate DMA registers. */
		i = 0;
		if ((lsc->sc_res = bus_alloc_resource_any(dev, SYS_RES_MEMORY,
		    &i, RF_ACTIVE)) == NULL) {
			device_printf(dev, "cannot allocate DMA registers\n");
			error = ENXIO;
			goto fail_sbus_lsc;
		}

		/* Create a parent DMA tag based on this bus. */
		error = bus_dma_tag_create(
		    bus_get_dma_tag(dev),	/* parent */
		    1, 0,			/* alignment, boundary */
		    BUS_SPACE_MAXADDR,		/* lowaddr */
		    BUS_SPACE_MAXADDR,		/* highaddr */
		    NULL, NULL,			/* filter, filterarg */
		    BUS_SPACE_MAXSIZE_32BIT,	/* maxsize */
		    0,				/* nsegments */
		    BUS_SPACE_MAXSIZE_32BIT,	/* maxsegsize */
		    0,				/* flags */
		    NULL, NULL,			/* no locking */
		    &lsc->sc_parent_dmat);
		if (error != 0) {
			device_printf(dev, "cannot allocate parent DMA tag\n");
			goto fail_sbus_lres;
		}

		i = sbus_get_burstsz(dev);

#ifdef ESP_SBUS_DEBUG
		printf("%s: burst 0x%x\n", __func__, i);
#endif

		lsc->sc_burst = (i & SBUS_BURST_32) ? 32 :
		    (i & SBUS_BURST_16) ? 16 : 0;

		lsc->sc_channel = L64854_CHANNEL_SCSI;
		lsc->sc_client = sc;
		lsc->sc_dev = dev;

		/*
		 * Allocate SCSI core registers.
		 */
		i = 1;
		if ((esc->sc_res = bus_alloc_resource_any(dev, SYS_RES_MEMORY,
		    &i, RF_ACTIVE)) == NULL) {
			device_printf(dev,
			    "cannot allocate SCSI core registers\n");
			error = ENXIO;
			goto fail_sbus_lpdma;
		}
	} else {
		/*
		 * Search accompanying DMA engine.  It should have been
		 * already attached otherwise there isn't much we can do.
		 */
		if (device_get_children(device_get_parent(dev), &children,
		    &nchildren) != 0) {
			device_printf(dev, "cannot determine siblings\n");
			return (ENXIO);
		}
		for (i = 0; i < nchildren; i++) {
			if (device_is_attached(children[i]) &&
			    sbus_get_slot(children[i]) == sbus_get_slot(dev) &&
			    strcmp(ofw_bus_get_name(children[i]), "dma") == 0) {
				/* XXX hackery */
				esc->sc_dma = (struct lsi64854_softc *)
				    device_get_softc(children[i]);
				break;
			}
		}
		free(children, M_TEMP);
		if (esc->sc_dma == NULL) {
			device_printf(dev, "cannot find DMA engine\n");
			return (ENXIO);
		}
		esc->sc_dma->sc_client = sc;

		/*
		 * Allocate SCSI core registers.
		 */
		i = 0;
		if ((esc->sc_res = bus_alloc_resource_any(dev, SYS_RES_MEMORY,
		    &i, RF_ACTIVE)) == NULL) {
			device_printf(dev,
			    "cannot allocate SCSI core registers\n");
			return (ENXIO);
		}
	}

	error = espattach(esc, &esp_sbus_glue);
	if (error != 0) {
		device_printf(dev, "espattach failed\n");
		goto fail_sbus_eres;
	}

	return (0);

 fail_sbus_eres:
	bus_release_resource(dev, SYS_RES_MEMORY, rman_get_rid(esc->sc_res),
	    esc->sc_res);
	if (strcmp(ofw_bus_get_name(dev), "SUNW,fas") != 0)
		return (error);
 fail_sbus_lpdma:
	bus_dma_tag_destroy(lsc->sc_parent_dmat);
 fail_sbus_lres:
	bus_release_resource(dev, SYS_RES_MEMORY, rman_get_rid(lsc->sc_res),
	    lsc->sc_res);
 fail_sbus_lsc:
	free(lsc, M_DEVBUF);
	return (error);
}
Exemplo n.º 5
0
static int
hme_sbus_attach(device_t dev)
{
	struct hme_sbus_softc *hsc = device_get_softc(dev);
	struct hme_softc *sc = &hsc->hsc_hme;
	u_int32_t burst;
	u_long start, count;
	int error;

	/*
	 * Map five register banks:
	 *
	 *	bank 0: HME SEB registers
	 *	bank 1: HME ETX registers
	 *	bank 2: HME ERX registers
	 *	bank 3: HME MAC registers
	 *	bank 4: HME MIF registers
	 *
	 */
	sc->sc_sebo = sc->sc_etxo = sc->sc_erxo = sc->sc_maco = sc->sc_mifo = 0;
	hsc->hsc_seb_rid = 0;
	hsc->hsc_seb_res = bus_alloc_resource(dev, SYS_RES_MEMORY,
	    &hsc->hsc_seb_rid, 0, ~0, 1, RF_ACTIVE);
	if (hsc->hsc_seb_res == NULL) {
		device_printf(dev, "cannot map SEB registers\n");
		return (ENXIO);
	}
	sc->sc_sebt = rman_get_bustag(hsc->hsc_seb_res);
	sc->sc_sebh = rman_get_bushandle(hsc->hsc_seb_res);

	hsc->hsc_etx_rid = 1;
	hsc->hsc_etx_res = bus_alloc_resource(dev, SYS_RES_MEMORY,
	    &hsc->hsc_etx_rid, 0, ~0, 1, RF_ACTIVE);
	if (hsc->hsc_etx_res == NULL) {
		device_printf(dev, "cannot map ETX registers\n");
		goto fail_seb_res;
	}
	sc->sc_etxt = rman_get_bustag(hsc->hsc_etx_res);
	sc->sc_etxh = rman_get_bushandle(hsc->hsc_etx_res);

	hsc->hsc_erx_rid = 2;
	hsc->hsc_erx_res = bus_alloc_resource(dev, SYS_RES_MEMORY,
	    &hsc->hsc_erx_rid, 0, ~0, 1, RF_ACTIVE);
	if (hsc->hsc_erx_res == NULL) {
		device_printf(dev, "cannot map ERX registers\n");
		goto fail_etx_res;
	}
	sc->sc_erxt = rman_get_bustag(hsc->hsc_erx_res);
	sc->sc_erxh = rman_get_bushandle(hsc->hsc_erx_res);

	hsc->hsc_mac_rid = 3;
	hsc->hsc_mac_res = bus_alloc_resource(dev, SYS_RES_MEMORY,
	    &hsc->hsc_mac_rid, 0, ~0, 1, RF_ACTIVE);
	if (hsc->hsc_mac_res == NULL) {
		device_printf(dev, "cannot map MAC registers\n");
		goto fail_erx_res;
	}
	sc->sc_mact = rman_get_bustag(hsc->hsc_mac_res);
	sc->sc_mach = rman_get_bushandle(hsc->hsc_mac_res);

	/*
	 * At least on some HMEs, the MIF registers seem to be inside the MAC
	 * range, so map try to kluge around it.
	 */
	hsc->hsc_mif_rid = 4;
	hsc->hsc_mif_res = bus_alloc_resource(dev, SYS_RES_MEMORY,
	    &hsc->hsc_mif_rid, 0, ~0, 1, RF_ACTIVE);
	if (hsc->hsc_mif_res == NULL) {
		if (bus_get_resource(dev, SYS_RES_MEMORY, hsc->hsc_mif_rid,
		    &start, &count) != 0) {
			device_printf(dev, "cannot get MIF registers\n");
			goto fail_mac_res;
		}
		if (start < rman_get_start(hsc->hsc_mac_res) ||
		    start + count - 1 > rman_get_end(hsc->hsc_mac_res)) {
			device_printf(dev, "cannot move MIF registers to MAC "
			    "bank\n");
			goto fail_mac_res;
		}
		sc->sc_mift = sc->sc_mact;
		sc->sc_mifh = sc->sc_mach;
		sc->sc_mifo = sc->sc_maco + start -
		    rman_get_start(hsc->hsc_mac_res);
	} else {
		sc->sc_mift = rman_get_bustag(hsc->hsc_mif_res);
		sc->sc_mifh = rman_get_bushandle(hsc->hsc_mif_res);
	}

	hsc->hsc_irid = 0;
	hsc->hsc_ires = bus_alloc_resource(dev, SYS_RES_IRQ, &hsc->hsc_irid, 0,
	    ~0, 1, RF_SHAREABLE | RF_ACTIVE);
	if (hsc->hsc_ires == NULL) {
		device_printf(dev, "could not allocate interrupt\n");
		error = ENXIO;
		goto fail_mif_res;
	}


	OF_getetheraddr(dev, sc->sc_arpcom.ac_enaddr);

	burst = sbus_get_burstsz(dev);
	/* Translate into plain numerical format */
	sc->sc_burst =  (burst & SBUS_BURST_32) ? 32 :
	    (burst & SBUS_BURST_16) ? 16 : 0;

	sc->sc_pci = 0;	/* XXX: should all be done in bus_dma. */
	sc->sc_dev = dev;

	if ((error = hme_config(sc)) != 0) {
		device_printf(dev, "could not be configured\n");
		goto fail_ires;
	}


	if ((error = bus_setup_intr(dev, hsc->hsc_ires, INTR_TYPE_NET, hme_intr,
	     sc, &hsc->hsc_ih)) != 0) {
		device_printf(dev, "couldn't establish interrupt\n");
		goto fail_ires;
	}
	return (0);

fail_ires:
	bus_release_resource(dev, SYS_RES_IRQ, hsc->hsc_irid, hsc->hsc_ires);
fail_mif_res:
	if (hsc->hsc_mif_res != NULL) {
		bus_release_resource(dev, SYS_RES_MEMORY, hsc->hsc_mif_rid,
		    hsc->hsc_mif_res);
	}
fail_mac_res:
	bus_release_resource(dev, SYS_RES_MEMORY, hsc->hsc_mac_rid,
	    hsc->hsc_mac_res);
fail_erx_res:
	bus_release_resource(dev, SYS_RES_MEMORY, hsc->hsc_erx_rid,
	    hsc->hsc_erx_res);
fail_etx_res:
	bus_release_resource(dev, SYS_RES_MEMORY, hsc->hsc_etx_rid,
	    hsc->hsc_etx_res);
fail_seb_res:
	bus_release_resource(dev, SYS_RES_MEMORY, hsc->hsc_seb_rid,
	    hsc->hsc_seb_res);
	return (ENXIO);
}