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if_wpi.c revision 1.60
      1  1.60  jakllsch /*  $NetBSD: if_wpi.c,v 1.60 2014/07/02 00:04:18 jakllsch Exp $    */
      2   1.1    simonb 
      3   1.1    simonb /*-
      4  1.12  degroote  * Copyright (c) 2006, 2007
      5   1.1    simonb  *	Damien Bergamini <damien.bergamini (at) free.fr>
      6   1.1    simonb  *
      7   1.1    simonb  * Permission to use, copy, modify, and distribute this software for any
      8   1.1    simonb  * purpose with or without fee is hereby granted, provided that the above
      9   1.1    simonb  * copyright notice and this permission notice appear in all copies.
     10   1.1    simonb  *
     11   1.1    simonb  * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES
     12   1.1    simonb  * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF
     13   1.1    simonb  * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR
     14   1.1    simonb  * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
     15   1.1    simonb  * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN
     16   1.1    simonb  * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF
     17   1.1    simonb  * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
     18   1.1    simonb  */
     19   1.1    simonb 
     20   1.1    simonb #include <sys/cdefs.h>
     21  1.60  jakllsch __KERNEL_RCSID(0, "$NetBSD: if_wpi.c,v 1.60 2014/07/02 00:04:18 jakllsch Exp $");
     22   1.1    simonb 
     23   1.1    simonb /*
     24   1.1    simonb  * Driver for Intel PRO/Wireless 3945ABG 802.11 network adapters.
     25   1.1    simonb  */
     26   1.1    simonb 
     27   1.1    simonb 
     28   1.1    simonb #include <sys/param.h>
     29   1.1    simonb #include <sys/sockio.h>
     30   1.1    simonb #include <sys/sysctl.h>
     31   1.1    simonb #include <sys/mbuf.h>
     32   1.1    simonb #include <sys/kernel.h>
     33   1.1    simonb #include <sys/socket.h>
     34   1.1    simonb #include <sys/systm.h>
     35   1.1    simonb #include <sys/malloc.h>
     36  1.39      cube #include <sys/mutex.h>
     37  1.41     joerg #include <sys/once.h>
     38   1.1    simonb #include <sys/conf.h>
     39   1.1    simonb #include <sys/kauth.h>
     40   1.7  degroote #include <sys/callout.h>
     41  1.48  uebayasi #include <sys/proc.h>
     42   1.1    simonb 
     43  1.25        ad #include <sys/bus.h>
     44   1.1    simonb #include <machine/endian.h>
     45  1.25        ad #include <sys/intr.h>
     46   1.1    simonb 
     47   1.1    simonb #include <dev/pci/pcireg.h>
     48   1.1    simonb #include <dev/pci/pcivar.h>
     49   1.1    simonb #include <dev/pci/pcidevs.h>
     50   1.1    simonb 
     51   1.1    simonb #include <net/bpf.h>
     52   1.1    simonb #include <net/if.h>
     53   1.1    simonb #include <net/if_arp.h>
     54   1.1    simonb #include <net/if_dl.h>
     55   1.1    simonb #include <net/if_ether.h>
     56   1.1    simonb #include <net/if_media.h>
     57   1.1    simonb #include <net/if_types.h>
     58   1.1    simonb 
     59   1.1    simonb #include <net80211/ieee80211_var.h>
     60   1.5     joerg #include <net80211/ieee80211_amrr.h>
     61   1.1    simonb #include <net80211/ieee80211_radiotap.h>
     62   1.1    simonb 
     63   1.1    simonb #include <netinet/in.h>
     64   1.1    simonb #include <netinet/in_systm.h>
     65   1.1    simonb #include <netinet/in_var.h>
     66   1.1    simonb #include <netinet/ip.h>
     67   1.1    simonb 
     68   1.1    simonb #include <dev/firmload.h>
     69   1.1    simonb 
     70   1.1    simonb #include <dev/pci/if_wpireg.h>
     71   1.1    simonb #include <dev/pci/if_wpivar.h>
     72   1.1    simonb 
     73   1.1    simonb #ifdef WPI_DEBUG
     74   1.1    simonb #define DPRINTF(x)	if (wpi_debug > 0) printf x
     75   1.1    simonb #define DPRINTFN(n, x)	if (wpi_debug >= (n)) printf x
     76   1.1    simonb int wpi_debug = 1;
     77   1.1    simonb #else
     78   1.1    simonb #define DPRINTF(x)
     79   1.1    simonb #define DPRINTFN(n, x)
     80   1.1    simonb #endif
     81   1.1    simonb 
     82  1.54  riastrad static const char wpi_firmware_name[] = "iwlwifi-3945.ucode";
     83  1.41     joerg static once_t wpi_firmware_init;
     84  1.41     joerg static kmutex_t wpi_firmware_mutex;
     85  1.41     joerg static size_t wpi_firmware_users;
     86  1.41     joerg static uint8_t *wpi_firmware_image;
     87  1.41     joerg static size_t wpi_firmware_size;
     88  1.41     joerg 
     89  1.42    cegger static int  wpi_match(device_t, cfdata_t, void *);
     90  1.28  degroote static void wpi_attach(device_t, device_t, void *);
     91  1.28  degroote static int  wpi_detach(device_t , int);
     92   1.7  degroote static int  wpi_dma_contig_alloc(bus_dma_tag_t, struct wpi_dma_info *,
     93   1.1    simonb 	void **, bus_size_t, bus_size_t, int);
     94   1.7  degroote static void wpi_dma_contig_free(struct wpi_dma_info *);
     95   1.1    simonb static int  wpi_alloc_shared(struct wpi_softc *);
     96   1.1    simonb static void wpi_free_shared(struct wpi_softc *);
     97  1.12  degroote static int  wpi_alloc_fwmem(struct wpi_softc *);
     98  1.12  degroote static void wpi_free_fwmem(struct wpi_softc *);
     99   1.7  degroote static struct wpi_rbuf *wpi_alloc_rbuf(struct wpi_softc *);
    100   1.9  christos static void wpi_free_rbuf(struct mbuf *, void *, size_t, void *);
    101   1.7  degroote static int  wpi_alloc_rpool(struct wpi_softc *);
    102   1.7  degroote static void wpi_free_rpool(struct wpi_softc *);
    103   1.1    simonb static int  wpi_alloc_rx_ring(struct wpi_softc *, struct wpi_rx_ring *);
    104   1.1    simonb static void wpi_reset_rx_ring(struct wpi_softc *, struct wpi_rx_ring *);
    105   1.1    simonb static void wpi_free_rx_ring(struct wpi_softc *, struct wpi_rx_ring *);
    106   1.1    simonb static int  wpi_alloc_tx_ring(struct wpi_softc *, struct wpi_tx_ring *, int,
    107   1.1    simonb 	int);
    108   1.1    simonb static void wpi_reset_tx_ring(struct wpi_softc *, struct wpi_tx_ring *);
    109   1.1    simonb static void wpi_free_tx_ring(struct wpi_softc *, struct wpi_tx_ring *);
    110   1.1    simonb static struct ieee80211_node * wpi_node_alloc(struct ieee80211_node_table *);
    111  1.12  degroote static void wpi_newassoc(struct ieee80211_node *, int);
    112   1.1    simonb static int  wpi_media_change(struct ifnet *);
    113   1.1    simonb static int  wpi_newstate(struct ieee80211com *, enum ieee80211_state, int);
    114  1.23  degroote static void	wpi_fix_channel(struct ieee80211com *, struct mbuf *);
    115   1.1    simonb static void wpi_mem_lock(struct wpi_softc *);
    116   1.1    simonb static void wpi_mem_unlock(struct wpi_softc *);
    117   1.1    simonb static uint32_t wpi_mem_read(struct wpi_softc *, uint16_t);
    118   1.1    simonb static void wpi_mem_write(struct wpi_softc *, uint16_t, uint32_t);
    119  1.55  christos static void wpi_mem_write_region_4(struct wpi_softc *, uint16_t,
    120  1.59  jakllsch 	const uint32_t *, int);
    121  1.12  degroote static int  wpi_read_prom_data(struct wpi_softc *, uint32_t, void *, int);
    122  1.17  degroote static int  wpi_load_microcode(struct wpi_softc *,  const uint8_t *, int);
    123  1.54  riastrad static int  wpi_cache_firmware(struct wpi_softc *);
    124  1.54  riastrad static void wpi_release_firmware(void);
    125  1.12  degroote static int  wpi_load_firmware(struct wpi_softc *);
    126  1.12  degroote static void wpi_calib_timeout(void *);
    127  1.12  degroote static void wpi_iter_func(void *, struct ieee80211_node *);
    128  1.12  degroote static void wpi_power_calibration(struct wpi_softc *, int);
    129   1.1    simonb static void wpi_rx_intr(struct wpi_softc *, struct wpi_rx_desc *,
    130   1.1    simonb 	struct wpi_rx_data *);
    131   1.1    simonb static void wpi_tx_intr(struct wpi_softc *, struct wpi_rx_desc *);
    132   1.1    simonb static void wpi_cmd_intr(struct wpi_softc *, struct wpi_rx_desc *);
    133   1.1    simonb static void wpi_notif_intr(struct wpi_softc *);
    134   1.1    simonb static int  wpi_intr(void *);
    135  1.12  degroote static void wpi_read_eeprom(struct wpi_softc *);
    136  1.12  degroote static void wpi_read_eeprom_channels(struct wpi_softc *, int);
    137  1.12  degroote static void wpi_read_eeprom_group(struct wpi_softc *, int);
    138   1.1    simonb static uint8_t wpi_plcp_signal(int);
    139   1.1    simonb static int  wpi_tx_data(struct wpi_softc *, struct mbuf *,
    140   1.1    simonb 	struct ieee80211_node *, int);
    141   1.1    simonb static void wpi_start(struct ifnet *);
    142   1.1    simonb static void wpi_watchdog(struct ifnet *);
    143   1.9  christos static int  wpi_ioctl(struct ifnet *, u_long, void *);
    144   1.1    simonb static int  wpi_cmd(struct wpi_softc *, int, const void *, int, int);
    145   1.1    simonb static int  wpi_wme_update(struct ieee80211com *);
    146   1.1    simonb static int  wpi_mrr_setup(struct wpi_softc *);
    147   1.1    simonb static void wpi_set_led(struct wpi_softc *, uint8_t, uint8_t, uint8_t);
    148   1.1    simonb static void wpi_enable_tsf(struct wpi_softc *, struct ieee80211_node *);
    149  1.55  christos static int  wpi_set_txpower(struct wpi_softc *,
    150  1.12  degroote 			    struct ieee80211_channel *, int);
    151  1.12  degroote static int  wpi_get_power_index(struct wpi_softc *,
    152  1.12  degroote 		struct wpi_power_group *, struct ieee80211_channel *, int);
    153   1.1    simonb static int  wpi_setup_beacon(struct wpi_softc *, struct ieee80211_node *);
    154   1.1    simonb static int  wpi_auth(struct wpi_softc *);
    155   1.1    simonb static int  wpi_scan(struct wpi_softc *, uint16_t);
    156   1.1    simonb static int  wpi_config(struct wpi_softc *);
    157   1.1    simonb static void wpi_stop_master(struct wpi_softc *);
    158   1.1    simonb static int  wpi_power_up(struct wpi_softc *);
    159   1.1    simonb static int  wpi_reset(struct wpi_softc *);
    160   1.1    simonb static void wpi_hw_config(struct wpi_softc *);
    161   1.1    simonb static int  wpi_init(struct ifnet *);
    162   1.1    simonb static void wpi_stop(struct ifnet *, int);
    163  1.46    dyoung static bool wpi_resume(device_t, const pmf_qual_t *);
    164  1.34  degroote static int	wpi_getrfkill(struct wpi_softc *);
    165  1.34  degroote static void wpi_sysctlattach(struct wpi_softc *);
    166   1.1    simonb 
    167  1.28  degroote CFATTACH_DECL_NEW(wpi, sizeof (struct wpi_softc), wpi_match, wpi_attach,
    168   1.1    simonb 	wpi_detach, NULL);
    169   1.1    simonb 
    170   1.1    simonb static int
    171  1.42    cegger wpi_match(device_t parent, cfdata_t match __unused, void *aux)
    172   1.1    simonb {
    173   1.1    simonb 	struct pci_attach_args *pa = aux;
    174   1.1    simonb 
    175   1.1    simonb 	if (PCI_VENDOR(pa->pa_id) != PCI_VENDOR_INTEL)
    176   1.1    simonb 		return 0;
    177   1.1    simonb 
    178   1.1    simonb 	if (PCI_PRODUCT(pa->pa_id) == PCI_PRODUCT_INTEL_PRO_WL_3945ABG_1 ||
    179   1.7  degroote 	    PCI_PRODUCT(pa->pa_id) == PCI_PRODUCT_INTEL_PRO_WL_3945ABG_2)
    180   1.1    simonb 		return 1;
    181   1.1    simonb 
    182   1.1    simonb 	return 0;
    183   1.1    simonb }
    184   1.1    simonb 
    185   1.1    simonb /* Base Address Register */
    186   1.1    simonb #define WPI_PCI_BAR0	0x10
    187   1.1    simonb 
    188  1.41     joerg static int
    189  1.41     joerg wpi_attach_once(void)
    190  1.41     joerg {
    191  1.54  riastrad 
    192  1.41     joerg 	mutex_init(&wpi_firmware_mutex, MUTEX_DEFAULT, IPL_NONE);
    193  1.41     joerg 	return 0;
    194  1.41     joerg }
    195  1.41     joerg 
    196   1.1    simonb static void
    197  1.28  degroote wpi_attach(device_t parent __unused, device_t self, void *aux)
    198   1.1    simonb {
    199  1.28  degroote 	struct wpi_softc *sc = device_private(self);
    200   1.1    simonb 	struct ieee80211com *ic = &sc->sc_ic;
    201   1.1    simonb 	struct ifnet *ifp = &sc->sc_ec.ec_if;
    202   1.1    simonb 	struct pci_attach_args *pa = aux;
    203   1.1    simonb 	const char *intrstr;
    204   1.1    simonb 	bus_space_tag_t memt;
    205   1.1    simonb 	bus_space_handle_t memh;
    206   1.1    simonb 	pci_intr_handle_t ih;
    207   1.1    simonb 	pcireg_t data;
    208  1.50  drochner 	int error, ac;
    209  1.58  christos 	char intrbuf[PCI_INTRSTR_LEN];
    210   1.1    simonb 
    211  1.41     joerg 	RUN_ONCE(&wpi_firmware_init, wpi_attach_once);
    212  1.41     joerg 	sc->fw_used = false;
    213  1.41     joerg 
    214  1.30    plunky 	sc->sc_dev = self;
    215   1.1    simonb 	sc->sc_pct = pa->pa_pc;
    216   1.1    simonb 	sc->sc_pcitag = pa->pa_tag;
    217   1.1    simonb 
    218  1.14        ad 	callout_init(&sc->calib_to, 0);
    219  1.28  degroote 	callout_setfunc(&sc->calib_to, wpi_calib_timeout, sc);
    220   1.1    simonb 
    221  1.50  drochner 	pci_aprint_devinfo(pa, NULL);
    222   1.1    simonb 
    223   1.1    simonb 	/* enable bus-mastering */
    224   1.1    simonb 	data = pci_conf_read(sc->sc_pct, sc->sc_pcitag, PCI_COMMAND_STATUS_REG);
    225   1.1    simonb 	data |= PCI_COMMAND_MASTER_ENABLE;
    226   1.1    simonb 	pci_conf_write(sc->sc_pct, sc->sc_pcitag, PCI_COMMAND_STATUS_REG, data);
    227   1.1    simonb 
    228   1.1    simonb 	/* map the register window */
    229   1.1    simonb 	error = pci_mapreg_map(pa, WPI_PCI_BAR0, PCI_MAPREG_TYPE_MEM |
    230  1.59  jakllsch 	    PCI_MAPREG_MEM_TYPE_32BIT, 0, &memt, &memh, NULL, &sc->sc_sz);
    231   1.1    simonb 	if (error != 0) {
    232  1.28  degroote 		aprint_error_dev(self, "could not map memory space\n");
    233   1.1    simonb 		return;
    234   1.1    simonb 	}
    235   1.1    simonb 
    236   1.1    simonb 	sc->sc_st = memt;
    237   1.1    simonb 	sc->sc_sh = memh;
    238   1.1    simonb 	sc->sc_dmat = pa->pa_dmat;
    239   1.1    simonb 
    240   1.1    simonb 	if (pci_intr_map(pa, &ih) != 0) {
    241  1.28  degroote 		aprint_error_dev(self, "could not map interrupt\n");
    242   1.1    simonb 		return;
    243   1.1    simonb 	}
    244   1.1    simonb 
    245  1.58  christos 	intrstr = pci_intr_string(sc->sc_pct, ih, intrbuf, sizeof(intrbuf));
    246   1.1    simonb 	sc->sc_ih = pci_intr_establish(sc->sc_pct, ih, IPL_NET, wpi_intr, sc);
    247   1.1    simonb 	if (sc->sc_ih == NULL) {
    248  1.28  degroote 		aprint_error_dev(self, "could not establish interrupt");
    249   1.1    simonb 		if (intrstr != NULL)
    250   1.1    simonb 			aprint_error(" at %s", intrstr);
    251   1.1    simonb 		aprint_error("\n");
    252   1.1    simonb 		return;
    253   1.1    simonb 	}
    254  1.28  degroote 	aprint_normal_dev(self, "interrupting at %s\n", intrstr);
    255   1.1    simonb 
    256   1.1    simonb 	if (wpi_reset(sc) != 0) {
    257  1.28  degroote 		aprint_error_dev(self, "could not reset adapter\n");
    258   1.1    simonb 		return;
    259   1.1    simonb 	}
    260   1.1    simonb 
    261  1.59  jakllsch 	/*
    262  1.12  degroote 	 * Allocate DMA memory for firmware transfers.
    263  1.12  degroote 	 */
    264  1.29     joerg 	if ((error = wpi_alloc_fwmem(sc)) != 0)
    265  1.12  degroote 		return;
    266  1.12  degroote 
    267   1.1    simonb 	/*
    268   1.1    simonb 	 * Allocate shared page and Tx/Rx rings.
    269   1.1    simonb 	 */
    270   1.1    simonb 	if ((error = wpi_alloc_shared(sc)) != 0) {
    271  1.28  degroote 		aprint_error_dev(self, "could not allocate shared area\n");
    272  1.12  degroote 		goto fail1;
    273   1.1    simonb 	}
    274   1.1    simonb 
    275   1.7  degroote 	if ((error = wpi_alloc_rpool(sc)) != 0) {
    276  1.28  degroote 		aprint_error_dev(self, "could not allocate Rx buffers\n");
    277  1.12  degroote 		goto fail2;
    278   1.7  degroote 	}
    279   1.7  degroote 
    280   1.1    simonb 	for (ac = 0; ac < 4; ac++) {
    281   1.1    simonb 		error = wpi_alloc_tx_ring(sc, &sc->txq[ac], WPI_TX_RING_COUNT, ac);
    282   1.1    simonb 		if (error != 0) {
    283  1.28  degroote 			aprint_error_dev(self, "could not allocate Tx ring %d\n", ac);
    284  1.12  degroote 			goto fail3;
    285   1.1    simonb 		}
    286   1.1    simonb 	}
    287   1.1    simonb 
    288   1.1    simonb 	error = wpi_alloc_tx_ring(sc, &sc->cmdq, WPI_CMD_RING_COUNT, 4);
    289   1.1    simonb 	if (error != 0) {
    290  1.28  degroote 		aprint_error_dev(self, "could not allocate command ring\n");
    291  1.12  degroote 		goto fail3;
    292   1.1    simonb 	}
    293   1.1    simonb 
    294   1.1    simonb 	if (wpi_alloc_rx_ring(sc, &sc->rxq) != 0) {
    295  1.28  degroote 		aprint_error_dev(self, "could not allocate Rx ring\n");
    296  1.24  degroote 		goto fail4;
    297   1.1    simonb 	}
    298   1.1    simonb 
    299   1.1    simonb 	ic->ic_ifp = ifp;
    300   1.1    simonb 	ic->ic_phytype = IEEE80211_T_OFDM; /* not only, but not used */
    301   1.1    simonb 	ic->ic_opmode = IEEE80211_M_STA; /* default to BSS mode */
    302   1.1    simonb 	ic->ic_state = IEEE80211_S_INIT;
    303   1.1    simonb 
    304   1.1    simonb 	/* set device capabilities */
    305   1.1    simonb 	ic->ic_caps =
    306  1.59  jakllsch 	    IEEE80211_C_WPA |		/* 802.11i */
    307  1.59  jakllsch 	    IEEE80211_C_MONITOR |	/* monitor mode supported */
    308  1.59  jakllsch 	    IEEE80211_C_TXPMGT |	/* tx power management */
    309  1.59  jakllsch 	    IEEE80211_C_SHSLOT |	/* short slot time supported */
    310  1.59  jakllsch 	    IEEE80211_C_SHPREAMBLE |	/* short preamble supported */
    311  1.59  jakllsch 	    IEEE80211_C_WME;		/* 802.11e */
    312   1.1    simonb 
    313  1.12  degroote 	/* read supported channels and MAC address from EEPROM */
    314   1.1    simonb 	wpi_read_eeprom(sc);
    315   1.1    simonb 
    316  1.59  jakllsch 	/* set supported .11a, .11b and .11g rates */
    317  1.59  jakllsch 	ic->ic_sup_rates[IEEE80211_MODE_11A] = ieee80211_std_rateset_11a;
    318  1.59  jakllsch 	ic->ic_sup_rates[IEEE80211_MODE_11B] = ieee80211_std_rateset_11b;
    319  1.59  jakllsch 	ic->ic_sup_rates[IEEE80211_MODE_11G] = ieee80211_std_rateset_11g;
    320   1.1    simonb 
    321  1.59  jakllsch 	/* IBSS channel undefined for now */
    322   1.1    simonb 	ic->ic_ibss_chan = &ic->ic_channels[0];
    323   1.1    simonb 
    324   1.1    simonb 	ifp->if_softc = sc;
    325   1.1    simonb 	ifp->if_flags = IFF_BROADCAST | IFF_SIMPLEX | IFF_MULTICAST;
    326   1.1    simonb 	ifp->if_init = wpi_init;
    327   1.1    simonb 	ifp->if_stop = wpi_stop;
    328   1.1    simonb 	ifp->if_ioctl = wpi_ioctl;
    329   1.1    simonb 	ifp->if_start = wpi_start;
    330   1.1    simonb 	ifp->if_watchdog = wpi_watchdog;
    331   1.1    simonb 	IFQ_SET_READY(&ifp->if_snd);
    332  1.28  degroote 	memcpy(ifp->if_xname, device_xname(self), IFNAMSIZ);
    333   1.1    simonb 
    334   1.1    simonb 	if_attach(ifp);
    335   1.1    simonb 	ieee80211_ifattach(ic);
    336   1.1    simonb 	/* override default methods */
    337   1.1    simonb 	ic->ic_node_alloc = wpi_node_alloc;
    338   1.5     joerg 	ic->ic_newassoc = wpi_newassoc;
    339   1.1    simonb 	ic->ic_wme.wme_update = wpi_wme_update;
    340   1.1    simonb 
    341   1.1    simonb 	/* override state transition machine */
    342   1.1    simonb 	sc->sc_newstate = ic->ic_newstate;
    343   1.1    simonb 	ic->ic_newstate = wpi_newstate;
    344   1.1    simonb 	ieee80211_media_init(ic, wpi_media_change, ieee80211_media_status);
    345   1.1    simonb 
    346  1.59  jakllsch 	sc->amrr.amrr_min_success_threshold =  1;
    347   1.5     joerg 	sc->amrr.amrr_max_success_threshold = 15;
    348   1.5     joerg 
    349  1.34  degroote 	wpi_sysctlattach(sc);
    350  1.34  degroote 
    351  1.43   tsutsui 	if (pmf_device_register(self, NULL, wpi_resume))
    352  1.43   tsutsui 		pmf_class_network_register(self, ifp);
    353  1.43   tsutsui 	else
    354  1.33  jmcneill 		aprint_error_dev(self, "couldn't establish power handler\n");
    355   1.1    simonb 
    356  1.47     joerg 	bpf_attach2(ifp, DLT_IEEE802_11_RADIO,
    357  1.45     pooka 	    sizeof(struct ieee80211_frame) + IEEE80211_RADIOTAP_HDRLEN,
    358  1.45     pooka 	    &sc->sc_drvbpf);
    359   1.1    simonb 
    360   1.1    simonb 	sc->sc_rxtap_len = sizeof sc->sc_rxtapu;
    361   1.1    simonb 	sc->sc_rxtap.wr_ihdr.it_len = htole16(sc->sc_rxtap_len);
    362   1.1    simonb 	sc->sc_rxtap.wr_ihdr.it_present = htole32(WPI_RX_RADIOTAP_PRESENT);
    363   1.1    simonb 
    364   1.1    simonb 	sc->sc_txtap_len = sizeof sc->sc_txtapu;
    365   1.1    simonb 	sc->sc_txtap.wt_ihdr.it_len = htole16(sc->sc_txtap_len);
    366   1.1    simonb 	sc->sc_txtap.wt_ihdr.it_present = htole32(WPI_TX_RADIOTAP_PRESENT);
    367   1.1    simonb 
    368   1.1    simonb 	ieee80211_announce(ic);
    369   1.1    simonb 
    370   1.1    simonb 	return;
    371   1.1    simonb 
    372  1.12  degroote fail4:  wpi_free_tx_ring(sc, &sc->cmdq);
    373  1.12  degroote fail3:  while (--ac >= 0)
    374   1.1    simonb 			wpi_free_tx_ring(sc, &sc->txq[ac]);
    375   1.7  degroote 	wpi_free_rpool(sc);
    376  1.12  degroote fail2:	wpi_free_shared(sc);
    377  1.12  degroote fail1:	wpi_free_fwmem(sc);
    378   1.1    simonb }
    379   1.1    simonb 
    380   1.1    simonb static int
    381  1.28  degroote wpi_detach(device_t self, int flags __unused)
    382   1.1    simonb {
    383  1.28  degroote 	struct wpi_softc *sc = device_private(self);
    384   1.7  degroote 	struct ifnet *ifp = sc->sc_ic.ic_ifp;
    385   1.1    simonb 	int ac;
    386   1.1    simonb 
    387   1.1    simonb 	wpi_stop(ifp, 1);
    388   1.1    simonb 
    389   1.1    simonb 	if (ifp != NULL)
    390  1.47     joerg 		bpf_detach(ifp);
    391   1.1    simonb 	ieee80211_ifdetach(&sc->sc_ic);
    392   1.1    simonb 	if (ifp != NULL)
    393   1.1    simonb 		if_detach(ifp);
    394   1.1    simonb 
    395   1.1    simonb 	for (ac = 0; ac < 4; ac++)
    396   1.1    simonb 		wpi_free_tx_ring(sc, &sc->txq[ac]);
    397   1.1    simonb 	wpi_free_tx_ring(sc, &sc->cmdq);
    398   1.1    simonb 	wpi_free_rx_ring(sc, &sc->rxq);
    399   1.7  degroote 	wpi_free_rpool(sc);
    400   1.1    simonb 	wpi_free_shared(sc);
    401   1.1    simonb 
    402   1.1    simonb 	if (sc->sc_ih != NULL) {
    403   1.1    simonb 		pci_intr_disestablish(sc->sc_pct, sc->sc_ih);
    404   1.1    simonb 		sc->sc_ih = NULL;
    405   1.1    simonb 	}
    406   1.1    simonb 
    407   1.1    simonb 	bus_space_unmap(sc->sc_st, sc->sc_sh, sc->sc_sz);
    408   1.1    simonb 
    409  1.41     joerg 	if (sc->fw_used) {
    410  1.54  riastrad 		sc->fw_used = false;
    411  1.54  riastrad 		wpi_release_firmware();
    412  1.41     joerg 	}
    413  1.41     joerg 
    414   1.1    simonb 	return 0;
    415   1.1    simonb }
    416   1.1    simonb 
    417   1.1    simonb static int
    418   1.7  degroote wpi_dma_contig_alloc(bus_dma_tag_t tag, struct wpi_dma_info *dma,
    419   1.1    simonb 	void **kvap, bus_size_t size, bus_size_t alignment, int flags)
    420   1.1    simonb {
    421   1.1    simonb 	int nsegs, error;
    422   1.1    simonb 
    423   1.7  degroote 	dma->tag = tag;
    424   1.1    simonb 	dma->size = size;
    425   1.1    simonb 
    426   1.7  degroote 	error = bus_dmamap_create(tag, size, 1, size, 0, flags, &dma->map);
    427   1.7  degroote 	if (error != 0)
    428   1.1    simonb 		goto fail;
    429   1.1    simonb 
    430   1.7  degroote 	error = bus_dmamem_alloc(tag, size, alignment, 0, &dma->seg, 1, &nsegs,
    431   1.7  degroote 	    flags);
    432   1.7  degroote 	if (error != 0)
    433   1.1    simonb 		goto fail;
    434   1.1    simonb 
    435   1.7  degroote 	error = bus_dmamem_map(tag, &dma->seg, 1, size, &dma->vaddr, flags);
    436   1.7  degroote 	if (error != 0)
    437   1.1    simonb 		goto fail;
    438   1.1    simonb 
    439   1.7  degroote 	error = bus_dmamap_load(tag, dma->map, dma->vaddr, size, NULL, flags);
    440   1.7  degroote 	if (error != 0)
    441   1.1    simonb 		goto fail;
    442   1.1    simonb 
    443   1.1    simonb 	memset(dma->vaddr, 0, size);
    444   1.1    simonb 
    445   1.1    simonb 	dma->paddr = dma->map->dm_segs[0].ds_addr;
    446   1.7  degroote 	if (kvap != NULL)
    447   1.7  degroote 		*kvap = dma->vaddr;
    448   1.1    simonb 
    449   1.1    simonb 	return 0;
    450   1.1    simonb 
    451   1.7  degroote fail:   wpi_dma_contig_free(dma);
    452   1.1    simonb 	return error;
    453   1.1    simonb }
    454   1.1    simonb 
    455   1.1    simonb static void
    456   1.7  degroote wpi_dma_contig_free(struct wpi_dma_info *dma)
    457   1.1    simonb {
    458   1.1    simonb 	if (dma->map != NULL) {
    459   1.1    simonb 		if (dma->vaddr != NULL) {
    460   1.7  degroote 			bus_dmamap_unload(dma->tag, dma->map);
    461   1.7  degroote 			bus_dmamem_unmap(dma->tag, dma->vaddr, dma->size);
    462   1.7  degroote 			bus_dmamem_free(dma->tag, &dma->seg, 1);
    463   1.1    simonb 			dma->vaddr = NULL;
    464   1.1    simonb 		}
    465   1.7  degroote 		bus_dmamap_destroy(dma->tag, dma->map);
    466   1.1    simonb 		dma->map = NULL;
    467   1.1    simonb 	}
    468   1.1    simonb }
    469   1.1    simonb 
    470   1.1    simonb /*
    471   1.1    simonb  * Allocate a shared page between host and NIC.
    472   1.1    simonb  */
    473   1.1    simonb static int
    474   1.1    simonb wpi_alloc_shared(struct wpi_softc *sc)
    475   1.1    simonb {
    476   1.1    simonb 	int error;
    477   1.1    simonb 	/* must be aligned on a 4K-page boundary */
    478   1.7  degroote 	error = wpi_dma_contig_alloc(sc->sc_dmat, &sc->shared_dma,
    479  1.55  christos 			(void **)&sc->shared, sizeof (struct wpi_shared),
    480  1.12  degroote 			WPI_BUF_ALIGN,BUS_DMA_NOWAIT);
    481   1.1    simonb 	if (error != 0)
    482  1.28  degroote 		aprint_error_dev(sc->sc_dev,
    483  1.28  degroote 				"could not allocate shared area DMA memory\n");
    484   1.1    simonb 
    485   1.1    simonb 	return error;
    486   1.1    simonb }
    487   1.1    simonb 
    488   1.1    simonb static void
    489   1.1    simonb wpi_free_shared(struct wpi_softc *sc)
    490   1.1    simonb {
    491   1.7  degroote 	wpi_dma_contig_free(&sc->shared_dma);
    492   1.7  degroote }
    493   1.7  degroote 
    494  1.12  degroote /*
    495  1.12  degroote  * Allocate DMA-safe memory for firmware transfer.
    496  1.12  degroote  */
    497  1.12  degroote static int
    498  1.12  degroote wpi_alloc_fwmem(struct wpi_softc *sc)
    499  1.12  degroote {
    500  1.12  degroote 	int error;
    501  1.12  degroote 	/* allocate enough contiguous space to store text and data */
    502  1.12  degroote 	error = wpi_dma_contig_alloc(sc->sc_dmat, &sc->fw_dma, NULL,
    503  1.12  degroote 	    WPI_FW_MAIN_TEXT_MAXSZ + WPI_FW_MAIN_DATA_MAXSZ, 0,
    504  1.12  degroote 	    BUS_DMA_NOWAIT);
    505  1.12  degroote 
    506  1.12  degroote 	if (error != 0)
    507  1.28  degroote 		aprint_error_dev(sc->sc_dev,
    508  1.28  degroote 			"could not allocate firmware transfer area"
    509  1.28  degroote 			"DMA memory\n");
    510  1.12  degroote 	return error;
    511  1.12  degroote }
    512  1.12  degroote 
    513  1.12  degroote static void
    514  1.12  degroote wpi_free_fwmem(struct wpi_softc *sc)
    515  1.12  degroote {
    516  1.12  degroote 	wpi_dma_contig_free(&sc->fw_dma);
    517  1.12  degroote }
    518  1.12  degroote 
    519  1.12  degroote 
    520   1.7  degroote static struct wpi_rbuf *
    521   1.7  degroote wpi_alloc_rbuf(struct wpi_softc *sc)
    522   1.7  degroote {
    523   1.7  degroote 	struct wpi_rbuf *rbuf;
    524   1.7  degroote 
    525  1.39      cube 	mutex_enter(&sc->rxq.freelist_mtx);
    526   1.7  degroote 	rbuf = SLIST_FIRST(&sc->rxq.freelist);
    527  1.39      cube 	if (rbuf != NULL) {
    528  1.39      cube 		SLIST_REMOVE_HEAD(&sc->rxq.freelist, next);
    529  1.39      cube 		sc->rxq.nb_free_entries --;
    530  1.39      cube 	}
    531  1.39      cube 	mutex_exit(&sc->rxq.freelist_mtx);
    532  1.10  degroote 
    533   1.7  degroote 	return rbuf;
    534   1.7  degroote }
    535   1.7  degroote 
    536   1.7  degroote /*
    537   1.7  degroote  * This is called automatically by the network stack when the mbuf to which our
    538   1.7  degroote  * Rx buffer is attached is freed.
    539   1.7  degroote  */
    540   1.7  degroote static void
    541   1.9  christos wpi_free_rbuf(struct mbuf* m, void *buf, size_t size, void *arg)
    542   1.7  degroote {
    543   1.7  degroote 	struct wpi_rbuf *rbuf = arg;
    544   1.7  degroote 	struct wpi_softc *sc = rbuf->sc;
    545   1.7  degroote 
    546   1.7  degroote 	/* put the buffer back in the free list */
    547  1.10  degroote 
    548  1.39      cube 	mutex_enter(&sc->rxq.freelist_mtx);
    549   1.7  degroote 	SLIST_INSERT_HEAD(&sc->rxq.freelist, rbuf, next);
    550  1.39      cube 	mutex_exit(&sc->rxq.freelist_mtx);
    551  1.39      cube 	/* No need to protect this with a mutex, see wpi_rx_intr */
    552  1.10  degroote 	sc->rxq.nb_free_entries ++;
    553   1.7  degroote 
    554  1.27        ad 	if (__predict_true(m != NULL))
    555  1.27        ad 		pool_cache_put(mb_cache, m);
    556   1.7  degroote }
    557   1.7  degroote 
    558   1.7  degroote static int
    559   1.7  degroote wpi_alloc_rpool(struct wpi_softc *sc)
    560   1.7  degroote {
    561   1.7  degroote 	struct wpi_rx_ring *ring = &sc->rxq;
    562   1.7  degroote 	struct wpi_rbuf *rbuf;
    563   1.7  degroote 	int i, error;
    564   1.7  degroote 
    565   1.7  degroote 	/* allocate a big chunk of DMA'able memory.. */
    566   1.7  degroote 	error = wpi_dma_contig_alloc(sc->sc_dmat, &ring->buf_dma, NULL,
    567   1.7  degroote 	    WPI_RBUF_COUNT * WPI_RBUF_SIZE, WPI_BUF_ALIGN, BUS_DMA_NOWAIT);
    568   1.7  degroote 	if (error != 0) {
    569  1.59  jakllsch 		aprint_normal_dev(sc->sc_dev, "could not allocate Rx buffers DMA memory\n");
    570  1.28  degroote 		return error;
    571   1.7  degroote 	}
    572   1.7  degroote 
    573   1.7  degroote 	/* ..and split it into 3KB chunks */
    574  1.39      cube 	mutex_init(&ring->freelist_mtx, MUTEX_DEFAULT, IPL_NET);
    575   1.7  degroote 	SLIST_INIT(&ring->freelist);
    576   1.7  degroote 	for (i = 0; i < WPI_RBUF_COUNT; i++) {
    577   1.7  degroote 		rbuf = &ring->rbuf[i];
    578   1.7  degroote 		rbuf->sc = sc;	/* backpointer for callbacks */
    579   1.9  christos 		rbuf->vaddr = (char *)ring->buf_dma.vaddr + i * WPI_RBUF_SIZE;
    580   1.7  degroote 		rbuf->paddr = ring->buf_dma.paddr + i * WPI_RBUF_SIZE;
    581   1.7  degroote 
    582   1.7  degroote 		SLIST_INSERT_HEAD(&ring->freelist, rbuf, next);
    583   1.7  degroote 	}
    584  1.10  degroote 
    585  1.10  degroote 	ring->nb_free_entries = WPI_RBUF_COUNT;
    586   1.7  degroote 	return 0;
    587   1.7  degroote }
    588   1.7  degroote 
    589   1.7  degroote static void
    590   1.7  degroote wpi_free_rpool(struct wpi_softc *sc)
    591   1.7  degroote {
    592   1.7  degroote 	wpi_dma_contig_free(&sc->rxq.buf_dma);
    593   1.1    simonb }
    594   1.1    simonb 
    595   1.1    simonb static int
    596   1.1    simonb wpi_alloc_rx_ring(struct wpi_softc *sc, struct wpi_rx_ring *ring)
    597   1.1    simonb {
    598   1.1    simonb 	struct wpi_rx_data *data;
    599   1.7  degroote 	struct wpi_rbuf *rbuf;
    600   1.1    simonb 	int i, error;
    601   1.1    simonb 
    602   1.1    simonb 	ring->cur = 0;
    603   1.1    simonb 
    604   1.7  degroote 	error = wpi_dma_contig_alloc(sc->sc_dmat, &ring->desc_dma,
    605  1.59  jakllsch 	    (void **)&ring->desc, WPI_RX_RING_COUNT * sizeof (uint32_t),
    606  1.59  jakllsch 	    WPI_RING_DMA_ALIGN, BUS_DMA_NOWAIT);
    607   1.1    simonb 	if (error != 0) {
    608  1.28  degroote 		aprint_error_dev(sc->sc_dev, "could not allocate rx ring DMA memory\n");
    609   1.1    simonb 		goto fail;
    610   1.1    simonb 	}
    611   1.1    simonb 
    612   1.1    simonb 	/*
    613   1.7  degroote 	 * Setup Rx buffers.
    614   1.1    simonb 	 */
    615   1.1    simonb 	for (i = 0; i < WPI_RX_RING_COUNT; i++) {
    616   1.1    simonb 		data = &ring->data[i];
    617   1.1    simonb 
    618   1.1    simonb 		MGETHDR(data->m, M_DONTWAIT, MT_DATA);
    619   1.1    simonb 		if (data->m == NULL) {
    620  1.28  degroote 			aprint_error_dev(sc->sc_dev, "could not allocate rx mbuf\n");
    621   1.1    simonb 			error = ENOMEM;
    622   1.1    simonb 			goto fail;
    623   1.1    simonb 		}
    624   1.7  degroote 		if ((rbuf = wpi_alloc_rbuf(sc)) == NULL) {
    625   1.1    simonb 			m_freem(data->m);
    626   1.1    simonb 			data->m = NULL;
    627  1.28  degroote 			aprint_error_dev(sc->sc_dev, "could not allocate rx cluster\n");
    628   1.1    simonb 			error = ENOMEM;
    629   1.1    simonb 			goto fail;
    630   1.1    simonb 		}
    631   1.7  degroote 		/* attach Rx buffer to mbuf */
    632   1.7  degroote 		MEXTADD(data->m, rbuf->vaddr, WPI_RBUF_SIZE, 0, wpi_free_rbuf,
    633   1.7  degroote 		    rbuf);
    634   1.7  degroote 		data->m->m_flags |= M_EXT_RW;
    635   1.1    simonb 
    636   1.7  degroote 		ring->desc[i] = htole32(rbuf->paddr);
    637   1.1    simonb 	}
    638   1.1    simonb 
    639   1.1    simonb 	return 0;
    640   1.1    simonb 
    641   1.1    simonb fail:	wpi_free_rx_ring(sc, ring);
    642   1.1    simonb 	return error;
    643   1.1    simonb }
    644   1.1    simonb 
    645   1.1    simonb static void
    646   1.1    simonb wpi_reset_rx_ring(struct wpi_softc *sc, struct wpi_rx_ring *ring)
    647   1.1    simonb {
    648   1.1    simonb 	int ntries;
    649   1.1    simonb 
    650   1.1    simonb 	wpi_mem_lock(sc);
    651   1.1    simonb 
    652   1.1    simonb 	WPI_WRITE(sc, WPI_RX_CONFIG, 0);
    653   1.1    simonb 	for (ntries = 0; ntries < 100; ntries++) {
    654   1.1    simonb 		if (WPI_READ(sc, WPI_RX_STATUS) & WPI_RX_IDLE)
    655   1.1    simonb 			break;
    656   1.1    simonb 		DELAY(10);
    657   1.1    simonb 	}
    658   1.1    simonb #ifdef WPI_DEBUG
    659   1.1    simonb 	if (ntries == 100 && wpi_debug > 0)
    660  1.28  degroote 		aprint_error_dev(sc->sc_dev, "timeout resetting Rx ring\n");
    661   1.1    simonb #endif
    662   1.1    simonb 	wpi_mem_unlock(sc);
    663   1.1    simonb 
    664   1.1    simonb 	ring->cur = 0;
    665   1.1    simonb }
    666   1.1    simonb 
    667   1.1    simonb static void
    668   1.1    simonb wpi_free_rx_ring(struct wpi_softc *sc, struct wpi_rx_ring *ring)
    669   1.1    simonb {
    670   1.1    simonb 	int i;
    671   1.1    simonb 
    672   1.7  degroote 	wpi_dma_contig_free(&ring->desc_dma);
    673   1.1    simonb 
    674   1.1    simonb 	for (i = 0; i < WPI_RX_RING_COUNT; i++) {
    675   1.7  degroote 		if (ring->data[i].m != NULL)
    676   1.7  degroote 			m_freem(ring->data[i].m);
    677   1.1    simonb 	}
    678   1.1    simonb }
    679   1.1    simonb 
    680   1.1    simonb static int
    681   1.1    simonb wpi_alloc_tx_ring(struct wpi_softc *sc, struct wpi_tx_ring *ring, int count,
    682   1.1    simonb 	int qid)
    683   1.1    simonb {
    684   1.1    simonb 	struct wpi_tx_data *data;
    685   1.1    simonb 	int i, error;
    686   1.1    simonb 
    687   1.1    simonb 	ring->qid = qid;
    688   1.1    simonb 	ring->count = count;
    689   1.1    simonb 	ring->queued = 0;
    690   1.1    simonb 	ring->cur = 0;
    691   1.1    simonb 
    692   1.7  degroote 	error = wpi_dma_contig_alloc(sc->sc_dmat, &ring->desc_dma,
    693   1.1    simonb 		(void **)&ring->desc, count * sizeof (struct wpi_tx_desc),
    694   1.1    simonb 		WPI_RING_DMA_ALIGN, BUS_DMA_NOWAIT);
    695   1.1    simonb 	if (error != 0) {
    696  1.28  degroote 		aprint_error_dev(sc->sc_dev, "could not allocate tx ring DMA memory\n");
    697   1.1    simonb 		goto fail;
    698   1.1    simonb 	}
    699   1.1    simonb 
    700   1.1    simonb 	/* update shared page with ring's base address */
    701   1.1    simonb 	sc->shared->txbase[qid] = htole32(ring->desc_dma.paddr);
    702   1.1    simonb 
    703   1.7  degroote 	error = wpi_dma_contig_alloc(sc->sc_dmat, &ring->cmd_dma,
    704   1.7  degroote 		(void **)&ring->cmd,
    705   1.1    simonb 		count * sizeof (struct wpi_tx_cmd), 4, BUS_DMA_NOWAIT);
    706   1.1    simonb 	if (error != 0) {
    707  1.28  degroote 		aprint_error_dev(sc->sc_dev, "could not allocate tx cmd DMA memory\n");
    708   1.1    simonb 		goto fail;
    709   1.1    simonb 	}
    710   1.1    simonb 
    711   1.1    simonb 	ring->data = malloc(count * sizeof (struct wpi_tx_data), M_DEVBUF,
    712   1.1    simonb 		M_NOWAIT);
    713   1.1    simonb 	if (ring->data == NULL) {
    714  1.28  degroote 		aprint_error_dev(sc->sc_dev, "could not allocate tx data slots\n");
    715   1.1    simonb 		goto fail;
    716   1.1    simonb 	}
    717   1.1    simonb 
    718   1.1    simonb 	memset(ring->data, 0, count * sizeof (struct wpi_tx_data));
    719   1.1    simonb 
    720   1.1    simonb 	for (i = 0; i < count; i++) {
    721   1.1    simonb 		data = &ring->data[i];
    722   1.1    simonb 
    723   1.1    simonb 		error = bus_dmamap_create(sc->sc_dmat, MCLBYTES,
    724   1.1    simonb 			WPI_MAX_SCATTER - 1, MCLBYTES, 0, BUS_DMA_NOWAIT,
    725   1.1    simonb 			&data->map);
    726   1.1    simonb 		if (error != 0) {
    727  1.28  degroote 			aprint_error_dev(sc->sc_dev, "could not create tx buf DMA map\n");
    728   1.1    simonb 			goto fail;
    729   1.1    simonb 		}
    730   1.1    simonb 	}
    731   1.1    simonb 
    732   1.1    simonb 	return 0;
    733   1.1    simonb 
    734   1.1    simonb fail:	wpi_free_tx_ring(sc, ring);
    735   1.1    simonb 	return error;
    736   1.1    simonb }
    737   1.1    simonb 
    738   1.1    simonb static void
    739   1.1    simonb wpi_reset_tx_ring(struct wpi_softc *sc, struct wpi_tx_ring *ring)
    740   1.1    simonb {
    741   1.1    simonb 	struct wpi_tx_data *data;
    742   1.1    simonb 	int i, ntries;
    743   1.1    simonb 
    744   1.1    simonb 	wpi_mem_lock(sc);
    745   1.1    simonb 
    746   1.1    simonb 	WPI_WRITE(sc, WPI_TX_CONFIG(ring->qid), 0);
    747   1.1    simonb 	for (ntries = 0; ntries < 100; ntries++) {
    748   1.1    simonb 		if (WPI_READ(sc, WPI_TX_STATUS) & WPI_TX_IDLE(ring->qid))
    749   1.1    simonb 			break;
    750   1.1    simonb 		DELAY(10);
    751   1.1    simonb 	}
    752   1.1    simonb #ifdef WPI_DEBUG
    753   1.1    simonb 	if (ntries == 100 && wpi_debug > 0) {
    754  1.28  degroote 		aprint_error_dev(sc->sc_dev, "timeout resetting Tx ring %d\n",
    755  1.59  jakllsch 		    ring->qid);
    756   1.1    simonb 	}
    757   1.1    simonb #endif
    758   1.1    simonb 	wpi_mem_unlock(sc);
    759   1.1    simonb 
    760   1.1    simonb 	for (i = 0; i < ring->count; i++) {
    761   1.1    simonb 		data = &ring->data[i];
    762   1.1    simonb 
    763   1.1    simonb 		if (data->m != NULL) {
    764   1.1    simonb 			bus_dmamap_unload(sc->sc_dmat, data->map);
    765   1.1    simonb 			m_freem(data->m);
    766   1.1    simonb 			data->m = NULL;
    767   1.1    simonb 		}
    768   1.1    simonb 	}
    769   1.1    simonb 
    770   1.1    simonb 	ring->queued = 0;
    771   1.1    simonb 	ring->cur = 0;
    772   1.1    simonb }
    773   1.1    simonb 
    774   1.1    simonb static void
    775   1.1    simonb wpi_free_tx_ring(struct wpi_softc *sc, struct wpi_tx_ring *ring)
    776   1.1    simonb {
    777   1.1    simonb 	struct wpi_tx_data *data;
    778   1.1    simonb 	int i;
    779   1.1    simonb 
    780   1.7  degroote 	wpi_dma_contig_free(&ring->desc_dma);
    781   1.7  degroote 	wpi_dma_contig_free(&ring->cmd_dma);
    782   1.1    simonb 
    783   1.1    simonb 	if (ring->data != NULL) {
    784   1.1    simonb 		for (i = 0; i < ring->count; i++) {
    785   1.1    simonb 			data = &ring->data[i];
    786   1.1    simonb 
    787   1.1    simonb 			if (data->m != NULL) {
    788   1.1    simonb 				bus_dmamap_unload(sc->sc_dmat, data->map);
    789   1.1    simonb 				m_freem(data->m);
    790   1.1    simonb 			}
    791   1.1    simonb 		}
    792   1.1    simonb 		free(ring->data, M_DEVBUF);
    793   1.1    simonb 	}
    794   1.1    simonb }
    795   1.1    simonb 
    796   1.1    simonb /*ARGUSED*/
    797   1.1    simonb static struct ieee80211_node *
    798   1.7  degroote wpi_node_alloc(struct ieee80211_node_table *nt __unused)
    799   1.1    simonb {
    800   1.5     joerg 	struct wpi_node *wn;
    801   1.1    simonb 
    802  1.35    simonb 	wn = malloc(sizeof (struct wpi_node), M_80211_NODE, M_NOWAIT | M_ZERO);
    803   1.5     joerg 
    804   1.5     joerg 	return (struct ieee80211_node *)wn;
    805   1.1    simonb }
    806   1.1    simonb 
    807  1.12  degroote static void
    808  1.12  degroote wpi_newassoc(struct ieee80211_node *ni, int isnew)
    809  1.12  degroote {
    810  1.12  degroote 	struct wpi_softc *sc = ni->ni_ic->ic_ifp->if_softc;
    811  1.12  degroote 	int i;
    812  1.12  degroote 
    813  1.12  degroote 	ieee80211_amrr_node_init(&sc->amrr, &((struct wpi_node *)ni)->amn);
    814  1.12  degroote 
    815  1.12  degroote 	/* set rate to some reasonable initial value */
    816  1.12  degroote 	for (i = ni->ni_rates.rs_nrates - 1;
    817  1.12  degroote 	     i > 0 && (ni->ni_rates.rs_rates[i] & IEEE80211_RATE_VAL) > 72;
    818  1.12  degroote 	     i--);
    819  1.12  degroote 	ni->ni_txrate = i;
    820  1.12  degroote }
    821  1.12  degroote 
    822   1.1    simonb static int
    823   1.1    simonb wpi_media_change(struct ifnet *ifp)
    824   1.1    simonb {
    825   1.1    simonb 	int error;
    826   1.1    simonb 
    827   1.1    simonb 	error = ieee80211_media_change(ifp);
    828   1.1    simonb 	if (error != ENETRESET)
    829   1.1    simonb 		return error;
    830   1.1    simonb 
    831   1.1    simonb 	if ((ifp->if_flags & (IFF_UP | IFF_RUNNING)) == (IFF_UP | IFF_RUNNING))
    832   1.1    simonb 		wpi_init(ifp);
    833   1.1    simonb 
    834   1.1    simonb 	return 0;
    835   1.1    simonb }
    836   1.1    simonb 
    837   1.1    simonb static int
    838   1.1    simonb wpi_newstate(struct ieee80211com *ic, enum ieee80211_state nstate, int arg)
    839   1.1    simonb {
    840   1.1    simonb 	struct ifnet *ifp = ic->ic_ifp;
    841   1.1    simonb 	struct wpi_softc *sc = ifp->if_softc;
    842  1.12  degroote 	struct ieee80211_node *ni;
    843   1.1    simonb 	int error;
    844   1.1    simonb 
    845  1.12  degroote 	callout_stop(&sc->calib_to);
    846   1.1    simonb 
    847   1.1    simonb 	switch (nstate) {
    848   1.1    simonb 	case IEEE80211_S_SCAN:
    849  1.55  christos 
    850  1.23  degroote 		if (sc->is_scanning)
    851  1.23  degroote 			break;
    852  1.23  degroote 
    853  1.23  degroote 		sc->is_scanning = true;
    854   1.1    simonb 		ieee80211_node_table_reset(&ic->ic_scan);
    855   1.1    simonb 		ic->ic_flags |= IEEE80211_F_SCAN | IEEE80211_F_ASCAN;
    856   1.1    simonb 
    857   1.1    simonb 		/* make the link LED blink while we're scanning */
    858   1.1    simonb 		wpi_set_led(sc, WPI_LED_LINK, 20, 2);
    859   1.1    simonb 
    860   1.1    simonb 		if ((error = wpi_scan(sc, IEEE80211_CHAN_G)) != 0) {
    861  1.28  degroote 			aprint_error_dev(sc->sc_dev, "could not initiate scan\n");
    862   1.1    simonb 			ic->ic_flags &= ~(IEEE80211_F_SCAN | IEEE80211_F_ASCAN);
    863   1.1    simonb 			return error;
    864   1.1    simonb 		}
    865   1.1    simonb 
    866   1.1    simonb 		ic->ic_state = nstate;
    867   1.1    simonb 		return 0;
    868   1.1    simonb 
    869   1.7  degroote 	case IEEE80211_S_ASSOC:
    870   1.7  degroote 		if (ic->ic_state != IEEE80211_S_RUN)
    871   1.7  degroote 			break;
    872   1.7  degroote 		/* FALLTHROUGH */
    873   1.1    simonb 	case IEEE80211_S_AUTH:
    874  1.12  degroote 		sc->config.associd = 0;
    875   1.1    simonb 		sc->config.filter &= ~htole32(WPI_FILTER_BSS);
    876   1.1    simonb 		if ((error = wpi_auth(sc)) != 0) {
    877  1.55  christos 			aprint_error_dev(sc->sc_dev,
    878  1.59  jakllsch 			    "could not send authentication request\n");
    879   1.1    simonb 			return error;
    880   1.1    simonb 		}
    881   1.1    simonb 		break;
    882   1.1    simonb 
    883   1.1    simonb 	case IEEE80211_S_RUN:
    884   1.1    simonb 		if (ic->ic_opmode == IEEE80211_M_MONITOR) {
    885   1.1    simonb 			/* link LED blinks while monitoring */
    886   1.1    simonb 			wpi_set_led(sc, WPI_LED_LINK, 5, 5);
    887   1.1    simonb 			break;
    888   1.1    simonb 		}
    889  1.55  christos 
    890  1.12  degroote 		ni = ic->ic_bss;
    891   1.1    simonb 
    892   1.1    simonb 		if (ic->ic_opmode != IEEE80211_M_STA) {
    893   1.1    simonb 			(void) wpi_auth(sc);    /* XXX */
    894  1.12  degroote 			wpi_setup_beacon(sc, ni);
    895   1.1    simonb 		}
    896   1.1    simonb 
    897  1.12  degroote 		wpi_enable_tsf(sc, ni);
    898   1.1    simonb 
    899   1.1    simonb 		/* update adapter's configuration */
    900  1.12  degroote 		sc->config.associd = htole16(ni->ni_associd & ~0xc000);
    901   1.1    simonb 		/* short preamble/slot time are negotiated when associating */
    902   1.1    simonb 		sc->config.flags &= ~htole32(WPI_CONFIG_SHPREAMBLE |
    903   1.1    simonb 			WPI_CONFIG_SHSLOT);
    904   1.1    simonb 		if (ic->ic_flags & IEEE80211_F_SHSLOT)
    905   1.1    simonb 			sc->config.flags |= htole32(WPI_CONFIG_SHSLOT);
    906   1.1    simonb 		if (ic->ic_flags & IEEE80211_F_SHPREAMBLE)
    907   1.1    simonb 			sc->config.flags |= htole32(WPI_CONFIG_SHPREAMBLE);
    908   1.1    simonb 		sc->config.filter |= htole32(WPI_FILTER_BSS);
    909   1.1    simonb 		if (ic->ic_opmode != IEEE80211_M_STA)
    910   1.1    simonb 			sc->config.filter |= htole32(WPI_FILTER_BEACON);
    911   1.1    simonb 
    912   1.1    simonb /* XXX put somewhere HC_QOS_SUPPORT_ASSOC + HC_IBSS_START */
    913   1.1    simonb 
    914   1.1    simonb 		DPRINTF(("config chan %d flags %x\n", sc->config.chan,
    915   1.1    simonb 			sc->config.flags));
    916   1.1    simonb 		error = wpi_cmd(sc, WPI_CMD_CONFIGURE, &sc->config,
    917   1.1    simonb 			sizeof (struct wpi_config), 1);
    918   1.1    simonb 		if (error != 0) {
    919  1.28  degroote 			aprint_error_dev(sc->sc_dev, "could not update configuration\n");
    920   1.1    simonb 			return error;
    921   1.1    simonb 		}
    922   1.1    simonb 
    923  1.12  degroote 		/* configuration has changed, set Tx power accordingly */
    924  1.12  degroote 		if ((error = wpi_set_txpower(sc, ni->ni_chan, 1)) != 0) {
    925  1.28  degroote 			aprint_error_dev(sc->sc_dev, "could not set Tx power\n");
    926  1.12  degroote 			return error;
    927  1.12  degroote 		}
    928  1.12  degroote 
    929   1.5     joerg 		if (ic->ic_opmode == IEEE80211_M_STA) {
    930   1.5     joerg 			/* fake a join to init the tx rate */
    931  1.12  degroote 			wpi_newassoc(ni, 1);
    932   1.5     joerg 		}
    933   1.5     joerg 
    934  1.12  degroote 		/* start periodic calibration timer */
    935  1.12  degroote 		sc->calib_cnt = 0;
    936  1.28  degroote 		callout_schedule(&sc->calib_to, hz/2);
    937   1.1    simonb 
    938   1.1    simonb 		/* link LED always on while associated */
    939   1.1    simonb 		wpi_set_led(sc, WPI_LED_LINK, 0, 1);
    940   1.1    simonb 		break;
    941   1.1    simonb 
    942   1.1    simonb 	case IEEE80211_S_INIT:
    943  1.23  degroote 		sc->is_scanning = false;
    944   1.1    simonb 		break;
    945   1.1    simonb 	}
    946   1.1    simonb 
    947   1.1    simonb 	return sc->sc_newstate(ic, nstate, arg);
    948   1.1    simonb }
    949   1.1    simonb 
    950   1.1    simonb /*
    951  1.23  degroote  * XXX: Hack to set the current channel to the value advertised in beacons or
    952  1.23  degroote  * probe responses. Only used during AP detection.
    953  1.23  degroote  * XXX: Duplicated from if_iwi.c
    954  1.23  degroote  */
    955  1.23  degroote static void
    956  1.23  degroote wpi_fix_channel(struct ieee80211com *ic, struct mbuf *m)
    957  1.23  degroote {
    958  1.23  degroote 	struct ieee80211_frame *wh;
    959  1.23  degroote 	uint8_t subtype;
    960  1.23  degroote 	uint8_t *frm, *efrm;
    961  1.23  degroote 
    962  1.23  degroote 	wh = mtod(m, struct ieee80211_frame *);
    963  1.23  degroote 
    964  1.23  degroote 	if ((wh->i_fc[0] & IEEE80211_FC0_TYPE_MASK) != IEEE80211_FC0_TYPE_MGT)
    965  1.23  degroote 		return;
    966  1.23  degroote 
    967  1.23  degroote 	subtype = wh->i_fc[0] & IEEE80211_FC0_SUBTYPE_MASK;
    968  1.23  degroote 
    969  1.23  degroote 	if (subtype != IEEE80211_FC0_SUBTYPE_BEACON &&
    970  1.23  degroote 	    subtype != IEEE80211_FC0_SUBTYPE_PROBE_RESP)
    971  1.23  degroote 		return;
    972  1.23  degroote 
    973  1.23  degroote 	frm = (uint8_t *)(wh + 1);
    974  1.23  degroote 	efrm = mtod(m, uint8_t *) + m->m_len;
    975  1.23  degroote 
    976  1.23  degroote 	frm += 12;	/* skip tstamp, bintval and capinfo fields */
    977  1.23  degroote 	while (frm < efrm) {
    978  1.23  degroote 		if (*frm == IEEE80211_ELEMID_DSPARMS)
    979  1.23  degroote #if IEEE80211_CHAN_MAX < 255
    980  1.23  degroote 		if (frm[2] <= IEEE80211_CHAN_MAX)
    981  1.23  degroote #endif
    982  1.23  degroote 			ic->ic_curchan = &ic->ic_channels[frm[2]];
    983  1.23  degroote 
    984  1.23  degroote 		frm += frm[1] + 2;
    985  1.23  degroote 	}
    986  1.23  degroote }
    987  1.23  degroote 
    988  1.23  degroote /*
    989   1.1    simonb  * Grab exclusive access to NIC memory.
    990   1.1    simonb  */
    991   1.1    simonb static void
    992   1.1    simonb wpi_mem_lock(struct wpi_softc *sc)
    993   1.1    simonb {
    994   1.1    simonb 	uint32_t tmp;
    995   1.1    simonb 	int ntries;
    996   1.1    simonb 
    997   1.1    simonb 	tmp = WPI_READ(sc, WPI_GPIO_CTL);
    998   1.1    simonb 	WPI_WRITE(sc, WPI_GPIO_CTL, tmp | WPI_GPIO_MAC);
    999   1.1    simonb 
   1000   1.1    simonb 	/* spin until we actually get the lock */
   1001   1.1    simonb 	for (ntries = 0; ntries < 1000; ntries++) {
   1002   1.1    simonb 		if ((WPI_READ(sc, WPI_GPIO_CTL) &
   1003   1.1    simonb 			(WPI_GPIO_CLOCK | WPI_GPIO_SLEEP)) == WPI_GPIO_CLOCK)
   1004   1.1    simonb 			break;
   1005   1.1    simonb 		DELAY(10);
   1006   1.1    simonb 	}
   1007   1.1    simonb 	if (ntries == 1000)
   1008  1.28  degroote 		aprint_error_dev(sc->sc_dev, "could not lock memory\n");
   1009   1.1    simonb }
   1010   1.1    simonb 
   1011   1.1    simonb /*
   1012   1.1    simonb  * Release lock on NIC memory.
   1013   1.1    simonb  */
   1014   1.1    simonb static void
   1015   1.1    simonb wpi_mem_unlock(struct wpi_softc *sc)
   1016   1.1    simonb {
   1017   1.1    simonb 	uint32_t tmp = WPI_READ(sc, WPI_GPIO_CTL);
   1018   1.1    simonb 	WPI_WRITE(sc, WPI_GPIO_CTL, tmp & ~WPI_GPIO_MAC);
   1019   1.1    simonb }
   1020   1.1    simonb 
   1021   1.1    simonb static uint32_t
   1022   1.1    simonb wpi_mem_read(struct wpi_softc *sc, uint16_t addr)
   1023   1.1    simonb {
   1024   1.1    simonb 	WPI_WRITE(sc, WPI_READ_MEM_ADDR, WPI_MEM_4 | addr);
   1025   1.1    simonb 	return WPI_READ(sc, WPI_READ_MEM_DATA);
   1026   1.1    simonb }
   1027   1.1    simonb 
   1028   1.1    simonb static void
   1029   1.1    simonb wpi_mem_write(struct wpi_softc *sc, uint16_t addr, uint32_t data)
   1030   1.1    simonb {
   1031   1.1    simonb 	WPI_WRITE(sc, WPI_WRITE_MEM_ADDR, WPI_MEM_4 | addr);
   1032   1.1    simonb 	WPI_WRITE(sc, WPI_WRITE_MEM_DATA, data);
   1033   1.1    simonb }
   1034   1.1    simonb 
   1035  1.17  degroote static void
   1036  1.17  degroote wpi_mem_write_region_4(struct wpi_softc *sc, uint16_t addr,
   1037  1.59  jakllsch     const uint32_t *data, int wlen)
   1038  1.17  degroote {
   1039  1.17  degroote 	for (; wlen > 0; wlen--, data++, addr += 4)
   1040  1.17  degroote 		wpi_mem_write(sc, addr, *data);
   1041  1.17  degroote }
   1042  1.59  jakllsch 
   1043  1.17  degroote 
   1044   1.1    simonb /*
   1045  1.12  degroote  * Read `len' bytes from the EEPROM.  We access the EEPROM through the MAC
   1046  1.12  degroote  * instead of using the traditional bit-bang method.
   1047   1.1    simonb  */
   1048  1.12  degroote static int
   1049  1.12  degroote wpi_read_prom_data(struct wpi_softc *sc, uint32_t addr, void *data, int len)
   1050   1.1    simonb {
   1051  1.12  degroote 	uint8_t *out = data;
   1052  1.12  degroote 	uint32_t val;
   1053   1.1    simonb 	int ntries;
   1054   1.1    simonb 
   1055  1.12  degroote 	wpi_mem_lock(sc);
   1056  1.12  degroote 	for (; len > 0; len -= 2, addr++) {
   1057  1.12  degroote 		WPI_WRITE(sc, WPI_EEPROM_CTL, addr << 2);
   1058   1.1    simonb 
   1059  1.12  degroote 		for (ntries = 0; ntries < 10; ntries++) {
   1060  1.12  degroote 			if ((val = WPI_READ(sc, WPI_EEPROM_CTL)) &
   1061  1.12  degroote 			    WPI_EEPROM_READY)
   1062  1.12  degroote 				break;
   1063  1.12  degroote 			DELAY(5);
   1064  1.12  degroote 		}
   1065  1.12  degroote 		if (ntries == 10) {
   1066  1.28  degroote 			aprint_error_dev(sc->sc_dev, "could not read EEPROM\n");
   1067  1.12  degroote 			return ETIMEDOUT;
   1068  1.12  degroote 		}
   1069  1.12  degroote 		*out++ = val >> 16;
   1070  1.12  degroote 		if (len > 1)
   1071  1.12  degroote 			*out++ = val >> 24;
   1072   1.1    simonb 	}
   1073   1.1    simonb 	wpi_mem_unlock(sc);
   1074   1.1    simonb 
   1075  1.12  degroote 	return 0;
   1076   1.1    simonb }
   1077   1.1    simonb 
   1078  1.17  degroote /*
   1079  1.17  degroote  * The firmware boot code is small and is intended to be copied directly into
   1080  1.17  degroote  * the NIC internal memory.
   1081  1.17  degroote  */
   1082  1.17  degroote int
   1083  1.17  degroote wpi_load_microcode(struct wpi_softc *sc, const uint8_t *ucode, int size)
   1084   1.1    simonb {
   1085  1.17  degroote 	int ntries;
   1086   1.1    simonb 
   1087  1.17  degroote 	size /= sizeof (uint32_t);
   1088   1.1    simonb 
   1089  1.17  degroote 	wpi_mem_lock(sc);
   1090  1.12  degroote 
   1091  1.17  degroote 	/* copy microcode image into NIC memory */
   1092  1.17  degroote 	wpi_mem_write_region_4(sc, WPI_MEM_UCODE_BASE,
   1093  1.17  degroote 	    (const uint32_t *)ucode, size);
   1094  1.17  degroote 
   1095  1.17  degroote 	wpi_mem_write(sc, WPI_MEM_UCODE_SRC, 0);
   1096  1.17  degroote 	wpi_mem_write(sc, WPI_MEM_UCODE_DST, WPI_FW_TEXT);
   1097  1.17  degroote 	wpi_mem_write(sc, WPI_MEM_UCODE_SIZE, size);
   1098  1.12  degroote 
   1099  1.17  degroote 	/* run microcode */
   1100  1.17  degroote 	wpi_mem_write(sc, WPI_MEM_UCODE_CTL, WPI_UC_RUN);
   1101  1.12  degroote 
   1102  1.17  degroote 	/* wait for transfer to complete */
   1103  1.17  degroote 	for (ntries = 0; ntries < 1000; ntries++) {
   1104  1.17  degroote 		if (!(wpi_mem_read(sc, WPI_MEM_UCODE_CTL) & WPI_UC_RUN))
   1105  1.12  degroote 			break;
   1106  1.17  degroote 		DELAY(10);
   1107  1.12  degroote 	}
   1108  1.17  degroote 	if (ntries == 1000) {
   1109  1.17  degroote 		wpi_mem_unlock(sc);
   1110  1.28  degroote 		aprint_error_dev(sc->sc_dev, "could not load boot firmware\n");
   1111  1.17  degroote 		return ETIMEDOUT;
   1112  1.12  degroote 	}
   1113  1.17  degroote 	wpi_mem_write(sc, WPI_MEM_UCODE_CTL, WPI_UC_ENABLE);
   1114  1.12  degroote 
   1115  1.17  degroote 	wpi_mem_unlock(sc);
   1116   1.1    simonb 
   1117  1.17  degroote 	return 0;
   1118   1.1    simonb }
   1119   1.1    simonb 
   1120   1.1    simonb static int
   1121  1.41     joerg wpi_cache_firmware(struct wpi_softc *sc)
   1122   1.1    simonb {
   1123  1.54  riastrad 	const char *const fwname = wpi_firmware_name;
   1124  1.12  degroote 	firmware_handle_t fw;
   1125  1.12  degroote 	int error;
   1126   1.1    simonb 
   1127  1.54  riastrad 	/* sc is used here only to report error messages.  */
   1128  1.41     joerg 
   1129  1.41     joerg 	mutex_enter(&wpi_firmware_mutex);
   1130  1.54  riastrad 
   1131  1.54  riastrad 	if (wpi_firmware_users == SIZE_MAX) {
   1132  1.54  riastrad 		mutex_exit(&wpi_firmware_mutex);
   1133  1.54  riastrad 		return ENFILE;	/* Too many of something in the system...  */
   1134  1.54  riastrad 	}
   1135  1.41     joerg 	if (wpi_firmware_users++) {
   1136  1.54  riastrad 		KASSERT(wpi_firmware_image != NULL);
   1137  1.54  riastrad 		KASSERT(wpi_firmware_size > 0);
   1138  1.41     joerg 		mutex_exit(&wpi_firmware_mutex);
   1139  1.54  riastrad 		return 0;	/* Already good to go.  */
   1140  1.41     joerg 	}
   1141  1.41     joerg 
   1142  1.54  riastrad 	KASSERT(wpi_firmware_image == NULL);
   1143  1.54  riastrad 	KASSERT(wpi_firmware_size == 0);
   1144  1.54  riastrad 
   1145  1.12  degroote 	/* load firmware image from disk */
   1146  1.54  riastrad 	if ((error = firmware_open("if_wpi", fwname, &fw)) != 0) {
   1147  1.54  riastrad 		aprint_error_dev(sc->sc_dev,
   1148  1.54  riastrad 		    "could not open firmware file %s: %d\n", fwname, error);
   1149  1.53  riastrad 		goto fail0;
   1150   1.1    simonb 	}
   1151  1.12  degroote 
   1152  1.41     joerg 	wpi_firmware_size = firmware_get_size(fw);
   1153  1.41     joerg 
   1154  1.41     joerg 	if (wpi_firmware_size > sizeof (struct wpi_firmware_hdr) +
   1155  1.41     joerg 	    WPI_FW_MAIN_TEXT_MAXSZ + WPI_FW_MAIN_DATA_MAXSZ +
   1156  1.41     joerg 	    WPI_FW_INIT_TEXT_MAXSZ + WPI_FW_INIT_DATA_MAXSZ +
   1157  1.41     joerg 	    WPI_FW_BOOT_TEXT_MAXSZ) {
   1158  1.54  riastrad 		aprint_error_dev(sc->sc_dev,
   1159  1.54  riastrad 		    "firmware file %s too large: %zu bytes\n",
   1160  1.54  riastrad 		    fwname, wpi_firmware_size);
   1161  1.41     joerg 		error = EFBIG;
   1162  1.41     joerg 		goto fail1;
   1163  1.41     joerg 	}
   1164  1.41     joerg 
   1165  1.41     joerg 	if (wpi_firmware_size < sizeof (struct wpi_firmware_hdr)) {
   1166  1.41     joerg 		aprint_error_dev(sc->sc_dev,
   1167  1.54  riastrad 		    "firmware file %s too small: %zu bytes\n",
   1168  1.54  riastrad 		    fwname, wpi_firmware_size);
   1169  1.12  degroote 		error = EINVAL;
   1170  1.54  riastrad 		goto fail1;
   1171  1.12  degroote 	}
   1172   1.1    simonb 
   1173  1.41     joerg 	wpi_firmware_image = firmware_malloc(wpi_firmware_size);
   1174  1.41     joerg 	if (wpi_firmware_image == NULL) {
   1175  1.54  riastrad 		aprint_error_dev(sc->sc_dev,
   1176  1.54  riastrad 		    "not enough memory for firmware file %s\n", fwname);
   1177  1.41     joerg 		error = ENOMEM;
   1178  1.41     joerg 		goto fail1;
   1179  1.41     joerg 	}
   1180  1.41     joerg 
   1181  1.54  riastrad 	error = firmware_read(fw, 0, wpi_firmware_image, wpi_firmware_size);
   1182  1.54  riastrad 	if (error != 0) {
   1183  1.54  riastrad 		aprint_error_dev(sc->sc_dev,
   1184  1.54  riastrad 		    "error reading firmware file %s: %d\n", fwname, error);
   1185   1.1    simonb 		goto fail2;
   1186   1.1    simonb 	}
   1187   1.1    simonb 
   1188  1.54  riastrad 	/* Success!  */
   1189  1.41     joerg 	firmware_close(fw);
   1190  1.41     joerg 	mutex_exit(&wpi_firmware_mutex);
   1191  1.41     joerg 	return 0;
   1192  1.41     joerg 
   1193  1.41     joerg fail2:
   1194  1.41     joerg 	firmware_free(wpi_firmware_image, wpi_firmware_size);
   1195  1.54  riastrad 	wpi_firmware_image = NULL;
   1196  1.41     joerg fail1:
   1197  1.54  riastrad 	wpi_firmware_size = 0;
   1198  1.41     joerg 	firmware_close(fw);
   1199  1.53  riastrad fail0:
   1200  1.54  riastrad 	KASSERT(wpi_firmware_users == 1);
   1201  1.54  riastrad 	wpi_firmware_users = 0;
   1202  1.54  riastrad 	KASSERT(wpi_firmware_image == NULL);
   1203  1.54  riastrad 	KASSERT(wpi_firmware_size == 0);
   1204  1.54  riastrad 
   1205  1.41     joerg 	mutex_exit(&wpi_firmware_mutex);
   1206  1.41     joerg 	return error;
   1207  1.41     joerg }
   1208  1.41     joerg 
   1209  1.54  riastrad static void
   1210  1.54  riastrad wpi_release_firmware(void)
   1211  1.54  riastrad {
   1212  1.54  riastrad 
   1213  1.54  riastrad 	mutex_enter(&wpi_firmware_mutex);
   1214  1.54  riastrad 
   1215  1.54  riastrad 	KASSERT(wpi_firmware_users > 0);
   1216  1.54  riastrad 	KASSERT(wpi_firmware_image != NULL);
   1217  1.54  riastrad 	KASSERT(wpi_firmware_size != 0);
   1218  1.54  riastrad 
   1219  1.54  riastrad 	if (--wpi_firmware_users == 0) {
   1220  1.54  riastrad 		firmware_free(wpi_firmware_image, wpi_firmware_size);
   1221  1.54  riastrad 		wpi_firmware_image = NULL;
   1222  1.54  riastrad 		wpi_firmware_size = 0;
   1223  1.54  riastrad 	}
   1224  1.54  riastrad 
   1225  1.54  riastrad 	mutex_exit(&wpi_firmware_mutex);
   1226  1.54  riastrad }
   1227  1.54  riastrad 
   1228  1.41     joerg static int
   1229  1.41     joerg wpi_load_firmware(struct wpi_softc *sc)
   1230  1.41     joerg {
   1231  1.41     joerg 	struct wpi_dma_info *dma = &sc->fw_dma;
   1232  1.41     joerg 	struct wpi_firmware_hdr hdr;
   1233  1.41     joerg 	const uint8_t *init_text, *init_data, *main_text, *main_data;
   1234  1.41     joerg 	const uint8_t *boot_text;
   1235  1.41     joerg 	uint32_t init_textsz, init_datasz, main_textsz, main_datasz;
   1236  1.41     joerg 	uint32_t boot_textsz;
   1237  1.54  riastrad 	size_t size;
   1238  1.41     joerg 	int error;
   1239  1.41     joerg 
   1240  1.54  riastrad 	if (!sc->fw_used) {
   1241  1.54  riastrad 		if ((error = wpi_cache_firmware(sc)) != 0)
   1242  1.54  riastrad 			return error;
   1243  1.54  riastrad 		sc->fw_used = true;
   1244  1.54  riastrad 	}
   1245  1.54  riastrad 
   1246  1.54  riastrad 	KASSERT(sc->fw_used);
   1247  1.54  riastrad 	KASSERT(wpi_firmware_image != NULL);
   1248  1.54  riastrad 	KASSERT(wpi_firmware_size > sizeof(hdr));
   1249  1.41     joerg 
   1250  1.41     joerg 	memcpy(&hdr, wpi_firmware_image, sizeof(hdr));
   1251  1.41     joerg 
   1252  1.12  degroote 	main_textsz = le32toh(hdr.main_textsz);
   1253  1.12  degroote 	main_datasz = le32toh(hdr.main_datasz);
   1254  1.17  degroote 	init_textsz = le32toh(hdr.init_textsz);
   1255  1.17  degroote 	init_datasz = le32toh(hdr.init_datasz);
   1256  1.12  degroote 	boot_textsz = le32toh(hdr.boot_textsz);
   1257  1.12  degroote 
   1258  1.17  degroote 	/* sanity-check firmware segments sizes */
   1259  1.17  degroote 	if (main_textsz > WPI_FW_MAIN_TEXT_MAXSZ ||
   1260  1.17  degroote 	    main_datasz > WPI_FW_MAIN_DATA_MAXSZ ||
   1261  1.17  degroote 	    init_textsz > WPI_FW_INIT_TEXT_MAXSZ ||
   1262  1.17  degroote 	    init_datasz > WPI_FW_INIT_DATA_MAXSZ ||
   1263  1.17  degroote 	    boot_textsz > WPI_FW_BOOT_TEXT_MAXSZ ||
   1264  1.17  degroote 	    (boot_textsz & 3) != 0) {
   1265  1.28  degroote 		aprint_error_dev(sc->sc_dev, "invalid firmware header\n");
   1266  1.12  degroote 		error = EINVAL;
   1267  1.41     joerg 		goto free_firmware;
   1268  1.12  degroote 	}
   1269  1.12  degroote 
   1270  1.12  degroote 	/* check that all firmware segments are present */
   1271  1.54  riastrad 	size = sizeof (struct wpi_firmware_hdr) + main_textsz +
   1272  1.54  riastrad 	    main_datasz + init_textsz + init_datasz + boot_textsz;
   1273  1.54  riastrad 	if (wpi_firmware_size < size) {
   1274  1.41     joerg 		aprint_error_dev(sc->sc_dev,
   1275  1.54  riastrad 		    "firmware file truncated: %zu bytes, expected %zu bytes\n",
   1276  1.54  riastrad 		    wpi_firmware_size, size);
   1277  1.12  degroote 		error = EINVAL;
   1278  1.41     joerg 		goto free_firmware;
   1279   1.1    simonb 	}
   1280   1.1    simonb 
   1281  1.12  degroote 	/* get pointers to firmware segments */
   1282  1.41     joerg 	main_text = wpi_firmware_image + sizeof (struct wpi_firmware_hdr);
   1283  1.12  degroote 	main_data = main_text + main_textsz;
   1284  1.17  degroote 	init_text = main_data + main_datasz;
   1285  1.17  degroote 	init_data = init_text + init_textsz;
   1286  1.17  degroote 	boot_text = init_data + init_datasz;
   1287  1.17  degroote 
   1288  1.17  degroote 	/* copy initialization images into pre-allocated DMA-safe memory */
   1289  1.17  degroote 	memcpy(dma->vaddr, init_data, init_datasz);
   1290  1.54  riastrad 	memcpy((char *)dma->vaddr + WPI_FW_INIT_DATA_MAXSZ, init_text,
   1291  1.54  riastrad 	    init_textsz);
   1292  1.17  degroote 
   1293  1.17  degroote 	/* tell adapter where to find initialization images */
   1294  1.17  degroote 	wpi_mem_lock(sc);
   1295  1.17  degroote 	wpi_mem_write(sc, WPI_MEM_DATA_BASE, dma->paddr);
   1296  1.17  degroote 	wpi_mem_write(sc, WPI_MEM_DATA_SIZE, init_datasz);
   1297  1.17  degroote 	wpi_mem_write(sc, WPI_MEM_TEXT_BASE,
   1298  1.17  degroote 	    dma->paddr + WPI_FW_INIT_DATA_MAXSZ);
   1299  1.17  degroote 	wpi_mem_write(sc, WPI_MEM_TEXT_SIZE, init_textsz);
   1300  1.17  degroote 	wpi_mem_unlock(sc);
   1301   1.1    simonb 
   1302  1.17  degroote 	/* load firmware boot code */
   1303  1.17  degroote 	if ((error = wpi_load_microcode(sc, boot_text, boot_textsz)) != 0) {
   1304  1.28  degroote 		aprint_error_dev(sc->sc_dev, "could not load boot firmware\n");
   1305  1.41     joerg 		return error;
   1306  1.12  degroote 	}
   1307   1.1    simonb 
   1308  1.17  degroote 	/* now press "execute" ;-) */
   1309  1.17  degroote 	WPI_WRITE(sc, WPI_RESET, 0);
   1310  1.17  degroote 
   1311  1.59  jakllsch 	/* wait at most one second for first alive notification */
   1312  1.17  degroote 	if ((error = tsleep(sc, PCATCH, "wpiinit", hz)) != 0) {
   1313  1.17  degroote 		/* this isn't what was supposed to happen.. */
   1314  1.54  riastrad 		aprint_error_dev(sc->sc_dev,
   1315  1.41     joerg 		    "timeout waiting for adapter to initialize\n");
   1316   1.1    simonb 	}
   1317   1.1    simonb 
   1318  1.17  degroote 	/* copy runtime images into pre-allocated DMA-safe memory */
   1319  1.17  degroote 	memcpy(dma->vaddr, main_data, main_datasz);
   1320  1.54  riastrad 	memcpy((char *)dma->vaddr + WPI_FW_MAIN_DATA_MAXSZ, main_text,
   1321  1.54  riastrad 	    main_textsz);
   1322  1.12  degroote 
   1323  1.17  degroote 	/* tell adapter where to find runtime images */
   1324   1.1    simonb 	wpi_mem_lock(sc);
   1325  1.17  degroote 	wpi_mem_write(sc, WPI_MEM_DATA_BASE, dma->paddr);
   1326  1.17  degroote 	wpi_mem_write(sc, WPI_MEM_DATA_SIZE, main_datasz);
   1327  1.17  degroote 	wpi_mem_write(sc, WPI_MEM_TEXT_BASE,
   1328  1.17  degroote 	    dma->paddr + WPI_FW_MAIN_DATA_MAXSZ);
   1329  1.17  degroote 	wpi_mem_write(sc, WPI_MEM_TEXT_SIZE, WPI_FW_UPDATED | main_textsz);
   1330  1.12  degroote 	wpi_mem_unlock(sc);
   1331  1.12  degroote 
   1332  1.17  degroote 	/* wait at most one second for second alive notification */
   1333  1.12  degroote 	if ((error = tsleep(sc, PCATCH, "wpiinit", hz)) != 0) {
   1334  1.12  degroote 		/* this isn't what was supposed to happen.. */
   1335  1.54  riastrad 		aprint_error_dev(sc->sc_dev,
   1336  1.41     joerg 		    "timeout waiting for adapter to initialize\n");
   1337  1.12  degroote 	}
   1338  1.12  degroote 
   1339  1.41     joerg 	return error;
   1340  1.17  degroote 
   1341  1.41     joerg free_firmware:
   1342  1.41     joerg 	sc->fw_used = false;
   1343  1.54  riastrad 	wpi_release_firmware();
   1344  1.41     joerg 	return error;
   1345  1.12  degroote }
   1346   1.1    simonb 
   1347  1.12  degroote static void
   1348  1.12  degroote wpi_calib_timeout(void *arg)
   1349  1.12  degroote {
   1350  1.12  degroote 	struct wpi_softc *sc = arg;
   1351  1.12  degroote 	struct ieee80211com *ic = &sc->sc_ic;
   1352  1.12  degroote 	int temp, s;
   1353   1.1    simonb 
   1354  1.12  degroote 	/* automatic rate control triggered every 500ms */
   1355  1.12  degroote 	if (ic->ic_fixed_rate == -1) {
   1356  1.12  degroote 		s = splnet();
   1357  1.12  degroote 		if (ic->ic_opmode == IEEE80211_M_STA)
   1358  1.12  degroote 			wpi_iter_func(sc, ic->ic_bss);
   1359  1.12  degroote 		else
   1360  1.59  jakllsch 			ieee80211_iterate_nodes(&ic->ic_sta, wpi_iter_func, sc);
   1361  1.12  degroote 		splx(s);
   1362  1.12  degroote 	}
   1363   1.1    simonb 
   1364  1.12  degroote 	/* update sensor data */
   1365  1.12  degroote 	temp = (int)WPI_READ(sc, WPI_TEMPERATURE);
   1366   1.1    simonb 
   1367  1.12  degroote 	/* automatic power calibration every 60s */
   1368  1.12  degroote 	if (++sc->calib_cnt >= 120) {
   1369  1.12  degroote 		wpi_power_calibration(sc, temp);
   1370  1.12  degroote 		sc->calib_cnt = 0;
   1371   1.1    simonb 	}
   1372  1.12  degroote 
   1373  1.28  degroote 	callout_schedule(&sc->calib_to, hz/2);
   1374  1.12  degroote }
   1375  1.12  degroote 
   1376  1.12  degroote static void
   1377  1.12  degroote wpi_iter_func(void *arg, struct ieee80211_node *ni)
   1378  1.12  degroote {
   1379  1.12  degroote 	struct wpi_softc *sc = arg;
   1380  1.12  degroote 	struct wpi_node *wn = (struct wpi_node *)ni;
   1381  1.12  degroote 
   1382  1.12  degroote 	ieee80211_amrr_choose(&sc->amrr, ni, &wn->amn);
   1383  1.12  degroote }
   1384  1.12  degroote 
   1385  1.12  degroote /*
   1386  1.12  degroote  * This function is called periodically (every 60 seconds) to adjust output
   1387  1.12  degroote  * power to temperature changes.
   1388  1.12  degroote  */
   1389  1.12  degroote void
   1390  1.12  degroote wpi_power_calibration(struct wpi_softc *sc, int temp)
   1391  1.12  degroote {
   1392  1.12  degroote 	/* sanity-check read value */
   1393  1.12  degroote 	if (temp < -260 || temp > 25) {
   1394  1.12  degroote 		/* this can't be correct, ignore */
   1395  1.12  degroote 		DPRINTF(("out-of-range temperature reported: %d\n", temp));
   1396  1.12  degroote 		return;
   1397   1.1    simonb 	}
   1398   1.1    simonb 
   1399  1.12  degroote 	DPRINTF(("temperature %d->%d\n", sc->temp, temp));
   1400  1.12  degroote 
   1401  1.12  degroote 	/* adjust Tx power if need be */
   1402  1.12  degroote 	if (abs(temp - sc->temp) <= 6)
   1403  1.12  degroote 		return;
   1404   1.1    simonb 
   1405  1.12  degroote 	sc->temp = temp;
   1406   1.1    simonb 
   1407  1.12  degroote 	if (wpi_set_txpower(sc, sc->sc_ic.ic_bss->ni_chan, 1) != 0) {
   1408  1.12  degroote 		/* just warn, too bad for the automatic calibration... */
   1409  1.28  degroote 		aprint_error_dev(sc->sc_dev, "could not adjust Tx power\n");
   1410  1.12  degroote 	}
   1411   1.1    simonb }
   1412   1.1    simonb 
   1413   1.1    simonb static void
   1414   1.1    simonb wpi_rx_intr(struct wpi_softc *sc, struct wpi_rx_desc *desc,
   1415   1.1    simonb 	struct wpi_rx_data *data)
   1416   1.1    simonb {
   1417   1.1    simonb 	struct ieee80211com *ic = &sc->sc_ic;
   1418   1.1    simonb 	struct ifnet *ifp = ic->ic_ifp;
   1419   1.1    simonb 	struct wpi_rx_ring *ring = &sc->rxq;
   1420   1.1    simonb 	struct wpi_rx_stat *stat;
   1421   1.1    simonb 	struct wpi_rx_head *head;
   1422   1.1    simonb 	struct wpi_rx_tail *tail;
   1423   1.7  degroote 	struct wpi_rbuf *rbuf;
   1424   1.1    simonb 	struct ieee80211_frame *wh;
   1425   1.1    simonb 	struct ieee80211_node *ni;
   1426   1.1    simonb 	struct mbuf *m, *mnew;
   1427  1.55  christos 	int data_off ;
   1428   1.1    simonb 
   1429   1.1    simonb 	stat = (struct wpi_rx_stat *)(desc + 1);
   1430   1.1    simonb 
   1431   1.1    simonb 	if (stat->len > WPI_STAT_MAXLEN) {
   1432  1.28  degroote 		aprint_error_dev(sc->sc_dev, "invalid rx statistic header\n");
   1433   1.1    simonb 		ifp->if_ierrors++;
   1434   1.1    simonb 		return;
   1435   1.1    simonb 	}
   1436   1.1    simonb 
   1437   1.9  christos 	head = (struct wpi_rx_head *)((char *)(stat + 1) + stat->len);
   1438   1.9  christos 	tail = (struct wpi_rx_tail *)((char *)(head + 1) + le16toh(head->len));
   1439   1.1    simonb 
   1440   1.1    simonb 	DPRINTFN(4, ("rx intr: idx=%d len=%d stat len=%d rssi=%d rate=%x "
   1441  1.16  degroote 		"chan=%d tstamp=%" PRId64 "\n", ring->cur, le32toh(desc->len),
   1442   1.1    simonb 		le16toh(head->len), (int8_t)stat->rssi, head->rate, head->chan,
   1443   1.1    simonb 		le64toh(tail->tstamp)));
   1444   1.1    simonb 
   1445   1.1    simonb 	/*
   1446   1.1    simonb 	 * Discard Rx frames with bad CRC early (XXX we may want to pass them
   1447   1.1    simonb 	 * to radiotap in monitor mode).
   1448   1.1    simonb 	 */
   1449   1.1    simonb 	if ((le32toh(tail->flags) & WPI_RX_NOERROR) != WPI_RX_NOERROR) {
   1450   1.1    simonb 		DPRINTF(("rx tail flags error %x\n", le32toh(tail->flags)));
   1451   1.1    simonb 		ifp->if_ierrors++;
   1452   1.1    simonb 		return;
   1453   1.1    simonb 	}
   1454   1.1    simonb 
   1455  1.19  degroote 	/* Compute where are the useful datas */
   1456  1.55  christos 	data_off = (char*)(head + 1) - mtod(data->m, char*);
   1457  1.55  christos 
   1458  1.55  christos 	/*
   1459  1.10  degroote 	 * If the number of free entry is too low
   1460  1.10  degroote 	 * just dup the data->m socket and reuse the same rbuf entry
   1461  1.39      cube 	 * Note that thi test is not protected by a mutex because the
   1462  1.39      cube 	 * only path that causes nb_free_entries to decrease is through
   1463  1.39      cube 	 * this interrupt routine, which is not re-entrent.
   1464  1.39      cube 	 * What may not be obvious is that the safe path is if that test
   1465  1.39      cube 	 * evaluates as true, so nb_free_entries can grow any time.
   1466  1.10  degroote 	 */
   1467  1.10  degroote 	if (sc->rxq.nb_free_entries <= WPI_RBUF_LOW_LIMIT) {
   1468  1.55  christos 
   1469  1.19  degroote 		/* Prepare the mbuf for the m_dup */
   1470  1.10  degroote 		data->m->m_pkthdr.len = data->m->m_len = le16toh(head->len);
   1471  1.19  degroote 		data->m->m_data = (char*) data->m->m_data + data_off;
   1472  1.19  degroote 
   1473  1.10  degroote 		m = m_dup(data->m,0,M_COPYALL,M_DONTWAIT);
   1474  1.19  degroote 
   1475  1.19  degroote 		/* Restore the m_data pointer for future use */
   1476  1.19  degroote 		data->m->m_data = (char*) data->m->m_data - data_off;
   1477  1.19  degroote 
   1478  1.19  degroote 		if (m == NULL) {
   1479  1.19  degroote 			ifp->if_ierrors++;
   1480  1.19  degroote 			return;
   1481  1.19  degroote 		}
   1482  1.10  degroote 	} else {
   1483  1.10  degroote 
   1484  1.10  degroote 		MGETHDR(mnew, M_DONTWAIT, MT_DATA);
   1485  1.10  degroote 		if (mnew == NULL) {
   1486  1.10  degroote 			ifp->if_ierrors++;
   1487  1.10  degroote 			return;
   1488  1.10  degroote 		}
   1489  1.10  degroote 
   1490  1.10  degroote 		rbuf = wpi_alloc_rbuf(sc);
   1491  1.10  degroote 		KASSERT(rbuf != NULL);
   1492   1.1    simonb 
   1493  1.59  jakllsch 		/* attach Rx buffer to mbuf */
   1494  1.55  christos 		MEXTADD(mnew, rbuf->vaddr, WPI_RBUF_SIZE, 0, wpi_free_rbuf,
   1495  1.59  jakllsch 			rbuf);
   1496  1.10  degroote 		mnew->m_flags |= M_EXT_RW;
   1497   1.1    simonb 
   1498  1.10  degroote 		m = data->m;
   1499  1.10  degroote 		data->m = mnew;
   1500   1.1    simonb 
   1501  1.10  degroote 		/* update Rx descriptor */
   1502  1.10  degroote 		ring->desc[ring->cur] = htole32(rbuf->paddr);
   1503  1.19  degroote 
   1504  1.19  degroote 		m->m_data = (char*)m->m_data + data_off;
   1505  1.19  degroote 		m->m_pkthdr.len = m->m_len = le16toh(head->len);
   1506  1.10  degroote 	}
   1507   1.1    simonb 
   1508   1.1    simonb 	/* finalize mbuf */
   1509   1.1    simonb 	m->m_pkthdr.rcvif = ifp;
   1510   1.1    simonb 
   1511  1.23  degroote 	if (ic->ic_state == IEEE80211_S_SCAN)
   1512  1.23  degroote 		wpi_fix_channel(ic, m);
   1513  1.55  christos 
   1514   1.1    simonb 	if (sc->sc_drvbpf != NULL) {
   1515   1.1    simonb 		struct wpi_rx_radiotap_header *tap = &sc->sc_rxtap;
   1516   1.1    simonb 
   1517   1.1    simonb 		tap->wr_flags = 0;
   1518   1.1    simonb 		tap->wr_chan_freq =
   1519   1.1    simonb 			htole16(ic->ic_channels[head->chan].ic_freq);
   1520   1.1    simonb 		tap->wr_chan_flags =
   1521   1.1    simonb 			htole16(ic->ic_channels[head->chan].ic_flags);
   1522   1.1    simonb 		tap->wr_dbm_antsignal = (int8_t)(stat->rssi - WPI_RSSI_OFFSET);
   1523   1.1    simonb 		tap->wr_dbm_antnoise = (int8_t)le16toh(stat->noise);
   1524   1.1    simonb 		tap->wr_tsft = tail->tstamp;
   1525   1.1    simonb 		tap->wr_antenna = (le16toh(head->flags) >> 4) & 0xf;
   1526   1.1    simonb 		switch (head->rate) {
   1527   1.1    simonb 		/* CCK rates */
   1528   1.1    simonb 		case  10: tap->wr_rate =   2; break;
   1529   1.1    simonb 		case  20: tap->wr_rate =   4; break;
   1530   1.1    simonb 		case  55: tap->wr_rate =  11; break;
   1531   1.1    simonb 		case 110: tap->wr_rate =  22; break;
   1532   1.1    simonb 		/* OFDM rates */
   1533   1.1    simonb 		case 0xd: tap->wr_rate =  12; break;
   1534   1.1    simonb 		case 0xf: tap->wr_rate =  18; break;
   1535   1.1    simonb 		case 0x5: tap->wr_rate =  24; break;
   1536   1.1    simonb 		case 0x7: tap->wr_rate =  36; break;
   1537   1.1    simonb 		case 0x9: tap->wr_rate =  48; break;
   1538   1.1    simonb 		case 0xb: tap->wr_rate =  72; break;
   1539   1.1    simonb 		case 0x1: tap->wr_rate =  96; break;
   1540   1.1    simonb 		case 0x3: tap->wr_rate = 108; break;
   1541   1.1    simonb 		/* unknown rate: should not happen */
   1542   1.1    simonb 		default:  tap->wr_rate =   0;
   1543   1.1    simonb 		}
   1544   1.1    simonb 		if (le16toh(head->flags) & 0x4)
   1545   1.1    simonb 			tap->wr_flags |= IEEE80211_RADIOTAP_F_SHORTPRE;
   1546   1.1    simonb 
   1547  1.47     joerg 		bpf_mtap2(sc->sc_drvbpf, tap, sc->sc_rxtap_len, m);
   1548   1.1    simonb 	}
   1549   1.1    simonb 
   1550   1.1    simonb 	/* grab a reference to the source node */
   1551   1.1    simonb 	wh = mtod(m, struct ieee80211_frame *);
   1552   1.1    simonb 	ni = ieee80211_find_rxnode(ic, (struct ieee80211_frame_min *)wh);
   1553   1.1    simonb 
   1554   1.1    simonb 	/* send the frame to the 802.11 layer */
   1555   1.1    simonb 	ieee80211_input(ic, m, ni, stat->rssi, 0);
   1556   1.1    simonb 
   1557   1.1    simonb 	/* release node reference */
   1558   1.1    simonb 	ieee80211_free_node(ni);
   1559   1.1    simonb }
   1560   1.1    simonb 
   1561   1.1    simonb static void
   1562   1.1    simonb wpi_tx_intr(struct wpi_softc *sc, struct wpi_rx_desc *desc)
   1563   1.1    simonb {
   1564   1.1    simonb 	struct ifnet *ifp = sc->sc_ic.ic_ifp;
   1565   1.1    simonb 	struct wpi_tx_ring *ring = &sc->txq[desc->qid & 0x3];
   1566   1.1    simonb 	struct wpi_tx_data *txdata = &ring->data[desc->idx];
   1567   1.1    simonb 	struct wpi_tx_stat *stat = (struct wpi_tx_stat *)(desc + 1);
   1568   1.5     joerg 	struct wpi_node *wn = (struct wpi_node *)txdata->ni;
   1569   1.1    simonb 
   1570   1.1    simonb 	DPRINTFN(4, ("tx done: qid=%d idx=%d retries=%d nkill=%d rate=%x "
   1571   1.1    simonb 		"duration=%d status=%x\n", desc->qid, desc->idx, stat->ntries,
   1572   1.1    simonb 		stat->nkill, stat->rate, le32toh(stat->duration),
   1573   1.1    simonb 		le32toh(stat->status)));
   1574   1.1    simonb 
   1575   1.1    simonb 	/*
   1576   1.1    simonb 	 * Update rate control statistics for the node.
   1577   1.1    simonb 	 * XXX we should not count mgmt frames since they're always sent at
   1578   1.1    simonb 	 * the lowest available bit-rate.
   1579   1.1    simonb 	 */
   1580   1.5     joerg 	wn->amn.amn_txcnt++;
   1581   1.1    simonb 	if (stat->ntries > 0) {
   1582   1.1    simonb 		DPRINTFN(3, ("tx intr ntries %d\n", stat->ntries));
   1583   1.5     joerg 		wn->amn.amn_retrycnt++;
   1584   1.1    simonb 	}
   1585   1.1    simonb 
   1586   1.2     oster 	if ((le32toh(stat->status) & 0xff) != 1)
   1587   1.2     oster 		ifp->if_oerrors++;
   1588   1.2     oster 	else
   1589   1.2     oster 		ifp->if_opackets++;
   1590   1.2     oster 
   1591   1.1    simonb 	bus_dmamap_unload(sc->sc_dmat, txdata->map);
   1592   1.1    simonb 	m_freem(txdata->m);
   1593   1.1    simonb 	txdata->m = NULL;
   1594   1.1    simonb 	ieee80211_free_node(txdata->ni);
   1595   1.1    simonb 	txdata->ni = NULL;
   1596   1.1    simonb 
   1597   1.1    simonb 	ring->queued--;
   1598   1.1    simonb 
   1599   1.1    simonb 	sc->sc_tx_timer = 0;
   1600   1.1    simonb 	ifp->if_flags &= ~IFF_OACTIVE;
   1601   1.1    simonb 	wpi_start(ifp);
   1602   1.1    simonb }
   1603   1.1    simonb 
   1604   1.1    simonb static void
   1605   1.1    simonb wpi_cmd_intr(struct wpi_softc *sc, struct wpi_rx_desc *desc)
   1606   1.1    simonb {
   1607   1.1    simonb 	struct wpi_tx_ring *ring = &sc->cmdq;
   1608   1.1    simonb 	struct wpi_tx_data *data;
   1609   1.1    simonb 
   1610   1.1    simonb 	if ((desc->qid & 7) != 4)
   1611   1.1    simonb 		return;	/* not a command ack */
   1612   1.1    simonb 
   1613   1.1    simonb 	data = &ring->data[desc->idx];
   1614   1.1    simonb 
   1615   1.1    simonb 	/* if the command was mapped in a mbuf, free it */
   1616   1.1    simonb 	if (data->m != NULL) {
   1617   1.1    simonb 		bus_dmamap_unload(sc->sc_dmat, data->map);
   1618   1.1    simonb 		m_freem(data->m);
   1619   1.1    simonb 		data->m = NULL;
   1620   1.1    simonb 	}
   1621   1.1    simonb 
   1622   1.1    simonb 	wakeup(&ring->cmd[desc->idx]);
   1623   1.1    simonb }
   1624   1.1    simonb 
   1625   1.1    simonb static void
   1626   1.1    simonb wpi_notif_intr(struct wpi_softc *sc)
   1627   1.1    simonb {
   1628   1.1    simonb 	struct ieee80211com *ic = &sc->sc_ic;
   1629   1.7  degroote 	struct ifnet *ifp =  ic->ic_ifp;
   1630   1.1    simonb 	struct wpi_rx_desc *desc;
   1631   1.1    simonb 	struct wpi_rx_data *data;
   1632   1.1    simonb 	uint32_t hw;
   1633   1.1    simonb 
   1634   1.1    simonb 	hw = le32toh(sc->shared->next);
   1635   1.1    simonb 	while (sc->rxq.cur != hw) {
   1636   1.1    simonb 		data = &sc->rxq.data[sc->rxq.cur];
   1637   1.1    simonb 
   1638   1.1    simonb 		desc = mtod(data->m, struct wpi_rx_desc *);
   1639   1.1    simonb 
   1640   1.1    simonb 		DPRINTFN(4, ("rx notification qid=%x idx=%d flags=%x type=%d "
   1641   1.1    simonb 			"len=%d\n", desc->qid, desc->idx, desc->flags,
   1642   1.1    simonb 			desc->type, le32toh(desc->len)));
   1643   1.1    simonb 
   1644   1.1    simonb 		if (!(desc->qid & 0x80))	/* reply to a command */
   1645   1.1    simonb 			wpi_cmd_intr(sc, desc);
   1646   1.1    simonb 
   1647   1.1    simonb 		switch (desc->type) {
   1648   1.1    simonb 		case WPI_RX_DONE:
   1649   1.1    simonb 			/* a 802.11 frame was received */
   1650   1.1    simonb 			wpi_rx_intr(sc, desc, data);
   1651   1.1    simonb 			break;
   1652   1.1    simonb 
   1653   1.1    simonb 		case WPI_TX_DONE:
   1654   1.1    simonb 			/* a 802.11 frame has been transmitted */
   1655   1.1    simonb 			wpi_tx_intr(sc, desc);
   1656   1.1    simonb 			break;
   1657   1.1    simonb 
   1658   1.1    simonb 		case WPI_UC_READY:
   1659   1.1    simonb 		{
   1660   1.1    simonb 			struct wpi_ucode_info *uc =
   1661  1.59  jakllsch 			    (struct wpi_ucode_info *)(desc + 1);
   1662   1.1    simonb 
   1663   1.1    simonb 			/* the microcontroller is ready */
   1664   1.1    simonb 			DPRINTF(("microcode alive notification version %x "
   1665   1.1    simonb 				"alive %x\n", le32toh(uc->version),
   1666   1.1    simonb 				le32toh(uc->valid)));
   1667   1.1    simonb 
   1668   1.1    simonb 			if (le32toh(uc->valid) != 1) {
   1669  1.55  christos 				aprint_error_dev(sc->sc_dev,
   1670  1.28  degroote 					"microcontroller initialization failed\n");
   1671   1.1    simonb 			}
   1672   1.1    simonb 			break;
   1673   1.1    simonb 		}
   1674   1.1    simonb 		case WPI_STATE_CHANGED:
   1675   1.1    simonb 		{
   1676   1.1    simonb 			uint32_t *status = (uint32_t *)(desc + 1);
   1677   1.1    simonb 
   1678   1.1    simonb 			/* enabled/disabled notification */
   1679   1.1    simonb 			DPRINTF(("state changed to %x\n", le32toh(*status)));
   1680   1.1    simonb 
   1681   1.1    simonb 			if (le32toh(*status) & 1) {
   1682   1.1    simonb 				/* the radio button has to be pushed */
   1683  1.28  degroote 				aprint_error_dev(sc->sc_dev, "Radio transmitter is off\n");
   1684   1.7  degroote 				/* turn the interface down */
   1685   1.7  degroote 				ifp->if_flags &= ~IFF_UP;
   1686   1.7  degroote 				wpi_stop(ifp, 1);
   1687   1.7  degroote 				return;	/* no further processing */
   1688   1.1    simonb 			}
   1689   1.1    simonb 			break;
   1690   1.1    simonb 		}
   1691   1.1    simonb 		case WPI_START_SCAN:
   1692   1.1    simonb 		{
   1693   1.1    simonb 			struct wpi_start_scan *scan =
   1694  1.59  jakllsch 			    (struct wpi_start_scan *)(desc + 1);
   1695   1.1    simonb 
   1696   1.1    simonb 			DPRINTFN(2, ("scanning channel %d status %x\n",
   1697   1.1    simonb 				scan->chan, le32toh(scan->status)));
   1698   1.1    simonb 
   1699   1.1    simonb 			/* fix current channel */
   1700   1.1    simonb 			ic->ic_bss->ni_chan = &ic->ic_channels[scan->chan];
   1701   1.1    simonb 			break;
   1702   1.1    simonb 		}
   1703   1.1    simonb 		case WPI_STOP_SCAN:
   1704   1.1    simonb 		{
   1705   1.1    simonb 			struct wpi_stop_scan *scan =
   1706  1.59  jakllsch 			    (struct wpi_stop_scan *)(desc + 1);
   1707   1.1    simonb 
   1708   1.1    simonb 			DPRINTF(("scan finished nchan=%d status=%d chan=%d\n",
   1709   1.1    simonb 				scan->nchan, scan->status, scan->chan));
   1710   1.1    simonb 
   1711   1.1    simonb 			if (scan->status == 1 && scan->chan <= 14) {
   1712   1.1    simonb 				/*
   1713   1.1    simonb 				 * We just finished scanning 802.11g channels,
   1714   1.1    simonb 				 * start scanning 802.11a ones.
   1715   1.1    simonb 				 */
   1716   1.1    simonb 				if (wpi_scan(sc, IEEE80211_CHAN_A) == 0)
   1717   1.1    simonb 					break;
   1718   1.1    simonb 			}
   1719  1.23  degroote 			sc->is_scanning = false;
   1720   1.1    simonb 			ieee80211_end_scan(ic);
   1721   1.1    simonb 			break;
   1722   1.1    simonb 		}
   1723   1.1    simonb 		}
   1724   1.1    simonb 
   1725   1.1    simonb 		sc->rxq.cur = (sc->rxq.cur + 1) % WPI_RX_RING_COUNT;
   1726   1.1    simonb 	}
   1727   1.1    simonb 
   1728   1.1    simonb 	/* tell the firmware what we have processed */
   1729   1.1    simonb 	hw = (hw == 0) ? WPI_RX_RING_COUNT - 1 : hw - 1;
   1730   1.1    simonb 	WPI_WRITE(sc, WPI_RX_WIDX, hw & ~7);
   1731   1.1    simonb }
   1732   1.1    simonb 
   1733   1.1    simonb static int
   1734   1.1    simonb wpi_intr(void *arg)
   1735   1.1    simonb {
   1736   1.1    simonb 	struct wpi_softc *sc = arg;
   1737   1.7  degroote 	struct ifnet *ifp = sc->sc_ic.ic_ifp;
   1738   1.1    simonb 	uint32_t r;
   1739   1.1    simonb 
   1740   1.1    simonb 	r = WPI_READ(sc, WPI_INTR);
   1741   1.1    simonb 	if (r == 0 || r == 0xffffffff)
   1742   1.1    simonb 		return 0;	/* not for us */
   1743   1.1    simonb 
   1744   1.1    simonb 	DPRINTFN(5, ("interrupt reg %x\n", r));
   1745   1.1    simonb 
   1746   1.1    simonb 	/* disable interrupts */
   1747   1.1    simonb 	WPI_WRITE(sc, WPI_MASK, 0);
   1748   1.1    simonb 	/* ack interrupts */
   1749   1.1    simonb 	WPI_WRITE(sc, WPI_INTR, r);
   1750   1.1    simonb 
   1751   1.1    simonb 	if (r & (WPI_SW_ERROR | WPI_HW_ERROR)) {
   1752  1.28  degroote 		aprint_error_dev(sc->sc_dev, "fatal firmware error\n");
   1753   1.1    simonb 		sc->sc_ic.ic_ifp->if_flags &= ~IFF_UP;
   1754   1.7  degroote 		wpi_stop(sc->sc_ic.ic_ifp, 1);
   1755   1.1    simonb 		return 1;
   1756   1.1    simonb 	}
   1757   1.1    simonb 
   1758   1.1    simonb 	if (r & WPI_RX_INTR)
   1759   1.1    simonb 		wpi_notif_intr(sc);
   1760   1.1    simonb 
   1761   1.1    simonb 	if (r & WPI_ALIVE_INTR)	/* firmware initialized */
   1762   1.1    simonb 		wakeup(sc);
   1763   1.1    simonb 
   1764   1.1    simonb 	/* re-enable interrupts */
   1765   1.7  degroote 	if (ifp->if_flags & IFF_UP)
   1766   1.7  degroote 		WPI_WRITE(sc, WPI_MASK, WPI_INTR_MASK);
   1767   1.1    simonb 
   1768   1.1    simonb 	return 1;
   1769   1.1    simonb }
   1770   1.1    simonb 
   1771   1.1    simonb static uint8_t
   1772   1.1    simonb wpi_plcp_signal(int rate)
   1773   1.1    simonb {
   1774   1.1    simonb 	switch (rate) {
   1775   1.1    simonb 	/* CCK rates (returned values are device-dependent) */
   1776   1.1    simonb 	case 2:		return 10;
   1777   1.1    simonb 	case 4:		return 20;
   1778   1.1    simonb 	case 11:	return 55;
   1779   1.1    simonb 	case 22:	return 110;
   1780   1.1    simonb 
   1781   1.1    simonb 	/* OFDM rates (cf IEEE Std 802.11a-1999, pp. 14 Table 80) */
   1782   1.1    simonb 	/* R1-R4, (u)ral is R4-R1 */
   1783   1.1    simonb 	case 12:	return 0xd;
   1784   1.1    simonb 	case 18:	return 0xf;
   1785   1.1    simonb 	case 24:	return 0x5;
   1786   1.1    simonb 	case 36:	return 0x7;
   1787   1.1    simonb 	case 48:	return 0x9;
   1788   1.1    simonb 	case 72:	return 0xb;
   1789   1.1    simonb 	case 96:	return 0x1;
   1790   1.1    simonb 	case 108:	return 0x3;
   1791   1.1    simonb 
   1792   1.1    simonb 	/* unsupported rates (should not get there) */
   1793   1.1    simonb 	default:	return 0;
   1794   1.1    simonb 	}
   1795   1.1    simonb }
   1796   1.1    simonb 
   1797   1.1    simonb /* quickly determine if a given rate is CCK or OFDM */
   1798   1.1    simonb #define WPI_RATE_IS_OFDM(rate) ((rate) >= 12 && (rate) != 22)
   1799   1.1    simonb 
   1800   1.1    simonb static int
   1801   1.1    simonb wpi_tx_data(struct wpi_softc *sc, struct mbuf *m0, struct ieee80211_node *ni,
   1802   1.1    simonb 	int ac)
   1803   1.1    simonb {
   1804   1.1    simonb 	struct ieee80211com *ic = &sc->sc_ic;
   1805   1.1    simonb 	struct wpi_tx_ring *ring = &sc->txq[ac];
   1806   1.1    simonb 	struct wpi_tx_desc *desc;
   1807   1.1    simonb 	struct wpi_tx_data *data;
   1808   1.1    simonb 	struct wpi_tx_cmd *cmd;
   1809   1.1    simonb 	struct wpi_cmd_data *tx;
   1810   1.1    simonb 	struct ieee80211_frame *wh;
   1811   1.1    simonb 	struct ieee80211_key *k;
   1812   1.1    simonb 	const struct chanAccParams *cap;
   1813   1.1    simonb 	struct mbuf *mnew;
   1814   1.1    simonb 	int i, error, rate, hdrlen, noack = 0;
   1815   1.1    simonb 
   1816   1.1    simonb 	desc = &ring->desc[ring->cur];
   1817   1.1    simonb 	data = &ring->data[ring->cur];
   1818   1.1    simonb 
   1819   1.1    simonb 	wh = mtod(m0, struct ieee80211_frame *);
   1820   1.1    simonb 
   1821  1.56  christos 	if (ieee80211_has_qos(wh)) {
   1822   1.1    simonb 		cap = &ic->ic_wme.wme_chanParams;
   1823   1.1    simonb 		noack = cap->cap_wmeParams[ac].wmep_noackPolicy;
   1824  1.26  degroote 	}
   1825   1.1    simonb 
   1826   1.1    simonb 	if (wh->i_fc[1] & IEEE80211_FC1_WEP) {
   1827   1.1    simonb 		k = ieee80211_crypto_encap(ic, ni, m0);
   1828   1.1    simonb 		if (k == NULL) {
   1829   1.1    simonb 			m_freem(m0);
   1830   1.1    simonb 			return ENOBUFS;
   1831   1.1    simonb 		}
   1832   1.1    simonb 
   1833   1.1    simonb 		/* packet header may have moved, reset our local pointer */
   1834   1.1    simonb 		wh = mtod(m0, struct ieee80211_frame *);
   1835   1.1    simonb 	}
   1836   1.1    simonb 
   1837  1.26  degroote 	hdrlen = ieee80211_anyhdrsize(wh);
   1838  1.26  degroote 
   1839   1.1    simonb 	/* pickup a rate */
   1840   1.1    simonb 	if ((wh->i_fc[0] & IEEE80211_FC0_TYPE_MASK) ==
   1841   1.1    simonb 		IEEE80211_FC0_TYPE_MGT) {
   1842   1.1    simonb 		/* mgmt frames are sent at the lowest available bit-rate */
   1843   1.1    simonb 		rate = ni->ni_rates.rs_rates[0];
   1844   1.1    simonb 	} else {
   1845   1.1    simonb 		if (ic->ic_fixed_rate != -1) {
   1846   1.1    simonb 			rate = ic->ic_sup_rates[ic->ic_curmode].
   1847   1.1    simonb 				rs_rates[ic->ic_fixed_rate];
   1848   1.1    simonb 		} else
   1849   1.1    simonb 			rate = ni->ni_rates.rs_rates[ni->ni_txrate];
   1850   1.1    simonb 	}
   1851   1.1    simonb 	rate &= IEEE80211_RATE_VAL;
   1852   1.1    simonb 
   1853   1.1    simonb 
   1854   1.1    simonb 	if (sc->sc_drvbpf != NULL) {
   1855   1.1    simonb 		struct wpi_tx_radiotap_header *tap = &sc->sc_txtap;
   1856   1.1    simonb 
   1857   1.1    simonb 		tap->wt_flags = 0;
   1858   1.1    simonb 		tap->wt_chan_freq = htole16(ni->ni_chan->ic_freq);
   1859   1.1    simonb 		tap->wt_chan_flags = htole16(ni->ni_chan->ic_flags);
   1860   1.1    simonb 		tap->wt_rate = rate;
   1861   1.1    simonb 		tap->wt_hwqueue = ac;
   1862   1.1    simonb 		if (wh->i_fc[1] & IEEE80211_FC1_WEP)
   1863   1.1    simonb 			tap->wt_flags |= IEEE80211_RADIOTAP_F_WEP;
   1864   1.1    simonb 
   1865  1.47     joerg 		bpf_mtap2(sc->sc_drvbpf, tap, sc->sc_txtap_len, m0);
   1866   1.1    simonb 	}
   1867   1.1    simonb 
   1868   1.1    simonb 	cmd = &ring->cmd[ring->cur];
   1869   1.1    simonb 	cmd->code = WPI_CMD_TX_DATA;
   1870   1.1    simonb 	cmd->flags = 0;
   1871   1.1    simonb 	cmd->qid = ring->qid;
   1872   1.1    simonb 	cmd->idx = ring->cur;
   1873   1.1    simonb 
   1874   1.1    simonb 	tx = (struct wpi_cmd_data *)cmd->data;
   1875   1.1    simonb 	tx->flags = 0;
   1876   1.1    simonb 
   1877   1.1    simonb 	if (!noack && !IEEE80211_IS_MULTICAST(wh->i_addr1)) {
   1878   1.1    simonb 		tx->flags |= htole32(WPI_TX_NEED_ACK);
   1879   1.7  degroote 	} else if (m0->m_pkthdr.len + IEEE80211_CRC_LEN > ic->ic_rtsthreshold)
   1880   1.7  degroote 		tx->flags |= htole32(WPI_TX_NEED_RTS | WPI_TX_FULL_TXOP);
   1881   1.1    simonb 
   1882   1.1    simonb 	tx->flags |= htole32(WPI_TX_AUTO_SEQ);
   1883   1.1    simonb 
   1884   1.7  degroote 	/* retrieve destination node's id */
   1885   1.7  degroote 	tx->id = IEEE80211_IS_MULTICAST(wh->i_addr1) ? WPI_ID_BROADCAST :
   1886   1.7  degroote 		WPI_ID_BSS;
   1887   1.7  degroote 
   1888   1.1    simonb 	if ((wh->i_fc[0] & IEEE80211_FC0_TYPE_MASK) ==
   1889   1.1    simonb 		IEEE80211_FC0_TYPE_MGT) {
   1890   1.1    simonb 		/* tell h/w to set timestamp in probe responses */
   1891   1.1    simonb 		if ((wh->i_fc[0] &
   1892   1.1    simonb 		    (IEEE80211_FC0_TYPE_MASK | IEEE80211_FC0_SUBTYPE_MASK)) ==
   1893   1.1    simonb 		    (IEEE80211_FC0_TYPE_MGT | IEEE80211_FC0_SUBTYPE_PROBE_RESP))
   1894   1.1    simonb 			tx->flags |= htole32(WPI_TX_INSERT_TSTAMP);
   1895   1.1    simonb 
   1896   1.1    simonb 		if (((wh->i_fc[0] & IEEE80211_FC0_SUBTYPE_MASK) ==
   1897   1.1    simonb 			 IEEE80211_FC0_SUBTYPE_ASSOC_REQ) ||
   1898   1.1    simonb 			((wh->i_fc[0] & IEEE80211_FC0_SUBTYPE_MASK) ==
   1899   1.1    simonb 			 IEEE80211_FC0_SUBTYPE_REASSOC_REQ))
   1900   1.1    simonb 			tx->timeout = htole16(3);
   1901   1.1    simonb 		else
   1902   1.1    simonb 			tx->timeout = htole16(2);
   1903   1.1    simonb 	} else
   1904   1.1    simonb 		tx->timeout = htole16(0);
   1905   1.1    simonb 
   1906   1.1    simonb 	tx->rate = wpi_plcp_signal(rate);
   1907   1.1    simonb 
   1908   1.1    simonb 	/* be very persistant at sending frames out */
   1909   1.1    simonb 	tx->rts_ntries = 7;
   1910   1.1    simonb 	tx->data_ntries = 15;
   1911   1.1    simonb 
   1912   1.1    simonb 	tx->ofdm_mask = 0xff;
   1913   1.1    simonb 	tx->cck_mask = 0xf;
   1914  1.12  degroote 	tx->lifetime = htole32(WPI_LIFETIME_INFINITE);
   1915   1.1    simonb 
   1916   1.1    simonb 	tx->len = htole16(m0->m_pkthdr.len);
   1917   1.1    simonb 
   1918   1.1    simonb 	/* save and trim IEEE802.11 header */
   1919  1.26  degroote 	memcpy((uint8_t *)(tx + 1), wh, hdrlen);
   1920   1.1    simonb 	m_adj(m0, hdrlen);
   1921   1.1    simonb 
   1922   1.1    simonb 	error = bus_dmamap_load_mbuf(sc->sc_dmat, data->map, m0,
   1923   1.1    simonb 		BUS_DMA_WRITE | BUS_DMA_NOWAIT);
   1924   1.1    simonb 	if (error != 0 && error != EFBIG) {
   1925  1.28  degroote 		aprint_error_dev(sc->sc_dev, "could not map mbuf (error %d)\n", error);
   1926   1.1    simonb 		m_freem(m0);
   1927   1.1    simonb 		return error;
   1928   1.1    simonb 	}
   1929   1.1    simonb 	if (error != 0) {
   1930   1.1    simonb 		/* too many fragments, linearize */
   1931   1.1    simonb 		MGETHDR(mnew, M_DONTWAIT, MT_DATA);
   1932   1.1    simonb 		if (mnew == NULL) {
   1933   1.1    simonb 			m_freem(m0);
   1934   1.1    simonb 			return ENOMEM;
   1935   1.1    simonb 		}
   1936   1.1    simonb 
   1937   1.1    simonb 		M_COPY_PKTHDR(mnew, m0);
   1938   1.1    simonb 		if (m0->m_pkthdr.len > MHLEN) {
   1939   1.1    simonb 			MCLGET(mnew, M_DONTWAIT);
   1940   1.1    simonb 			if (!(mnew->m_flags & M_EXT)) {
   1941   1.1    simonb 				m_freem(m0);
   1942   1.1    simonb 				m_freem(mnew);
   1943   1.1    simonb 				return ENOMEM;
   1944   1.1    simonb 			}
   1945   1.1    simonb 		}
   1946   1.1    simonb 
   1947   1.9  christos 		m_copydata(m0, 0, m0->m_pkthdr.len, mtod(mnew, void *));
   1948   1.1    simonb 		m_freem(m0);
   1949   1.1    simonb 		mnew->m_len = mnew->m_pkthdr.len;
   1950   1.1    simonb 		m0 = mnew;
   1951   1.1    simonb 
   1952   1.1    simonb 		error = bus_dmamap_load_mbuf(sc->sc_dmat, data->map, m0,
   1953   1.1    simonb 			BUS_DMA_WRITE | BUS_DMA_NOWAIT);
   1954   1.1    simonb 		if (error != 0) {
   1955  1.28  degroote 			aprint_error_dev(sc->sc_dev, "could not map mbuf (error %d)\n",
   1956  1.59  jakllsch 			    error);
   1957   1.1    simonb 			m_freem(m0);
   1958   1.1    simonb 			return error;
   1959   1.1    simonb 		}
   1960   1.1    simonb 	}
   1961   1.1    simonb 
   1962   1.1    simonb 	data->m = m0;
   1963   1.1    simonb 	data->ni = ni;
   1964   1.1    simonb 
   1965   1.1    simonb 	DPRINTFN(4, ("sending data: qid=%d idx=%d len=%d nsegs=%d\n",
   1966   1.1    simonb 		ring->qid, ring->cur, m0->m_pkthdr.len, data->map->dm_nsegs));
   1967   1.1    simonb 
   1968   1.1    simonb 	/* first scatter/gather segment is used by the tx data command */
   1969   1.1    simonb 	desc->flags = htole32(WPI_PAD32(m0->m_pkthdr.len) << 28 |
   1970   1.1    simonb 		(1 + data->map->dm_nsegs) << 24);
   1971   1.1    simonb 	desc->segs[0].addr = htole32(ring->cmd_dma.paddr +
   1972   1.1    simonb 		ring->cur * sizeof (struct wpi_tx_cmd));
   1973  1.55  christos 	desc->segs[0].len  = htole32(4 + sizeof (struct wpi_cmd_data) +
   1974  1.26  degroote 						 ((hdrlen + 3) & ~3));
   1975   1.1    simonb 
   1976   1.1    simonb 	for (i = 1; i <= data->map->dm_nsegs; i++) {
   1977   1.1    simonb 		desc->segs[i].addr =
   1978   1.1    simonb 			htole32(data->map->dm_segs[i - 1].ds_addr);
   1979   1.1    simonb 		desc->segs[i].len  =
   1980   1.1    simonb 			htole32(data->map->dm_segs[i - 1].ds_len);
   1981   1.1    simonb 	}
   1982   1.1    simonb 
   1983   1.1    simonb 	ring->queued++;
   1984   1.1    simonb 
   1985   1.1    simonb 	/* kick ring */
   1986   1.1    simonb 	ring->cur = (ring->cur + 1) % WPI_TX_RING_COUNT;
   1987   1.1    simonb 	WPI_WRITE(sc, WPI_TX_WIDX, ring->qid << 8 | ring->cur);
   1988   1.1    simonb 
   1989   1.1    simonb 	return 0;
   1990   1.1    simonb }
   1991   1.1    simonb 
   1992   1.1    simonb static void
   1993   1.1    simonb wpi_start(struct ifnet *ifp)
   1994   1.1    simonb {
   1995   1.1    simonb 	struct wpi_softc *sc = ifp->if_softc;
   1996   1.1    simonb 	struct ieee80211com *ic = &sc->sc_ic;
   1997   1.1    simonb 	struct ieee80211_node *ni;
   1998   1.1    simonb 	struct ether_header *eh;
   1999   1.1    simonb 	struct mbuf *m0;
   2000   1.1    simonb 	int ac;
   2001   1.1    simonb 
   2002   1.1    simonb 	/*
   2003   1.1    simonb 	 * net80211 may still try to send management frames even if the
   2004   1.1    simonb 	 * IFF_RUNNING flag is not set...
   2005   1.1    simonb 	 */
   2006   1.1    simonb 	if ((ifp->if_flags & (IFF_RUNNING | IFF_OACTIVE)) != IFF_RUNNING)
   2007   1.1    simonb 		return;
   2008   1.1    simonb 
   2009   1.1    simonb 	for (;;) {
   2010  1.22    dyoung 		IF_DEQUEUE(&ic->ic_mgtq, m0);
   2011   1.1    simonb 		if (m0 != NULL) {
   2012   1.1    simonb 
   2013   1.1    simonb 			ni = (struct ieee80211_node *)m0->m_pkthdr.rcvif;
   2014   1.1    simonb 			m0->m_pkthdr.rcvif = NULL;
   2015   1.1    simonb 
   2016   1.1    simonb 			/* management frames go into ring 0 */
   2017   1.1    simonb 			if (sc->txq[0].queued > sc->txq[0].count - 8) {
   2018   1.1    simonb 				ifp->if_oerrors++;
   2019   1.1    simonb 				continue;
   2020   1.1    simonb 			}
   2021  1.47     joerg 			bpf_mtap3(ic->ic_rawbpf, m0);
   2022   1.1    simonb 			if (wpi_tx_data(sc, m0, ni, 0) != 0) {
   2023   1.1    simonb 				ifp->if_oerrors++;
   2024   1.1    simonb 				break;
   2025   1.1    simonb 			}
   2026   1.1    simonb 		} else {
   2027   1.1    simonb 			if (ic->ic_state != IEEE80211_S_RUN)
   2028   1.1    simonb 				break;
   2029   1.7  degroote 			IFQ_POLL(&ifp->if_snd, m0);
   2030   1.1    simonb 			if (m0 == NULL)
   2031   1.1    simonb 				break;
   2032   1.1    simonb 
   2033   1.1    simonb 			if (m0->m_len < sizeof (*eh) &&
   2034  1.38  drochner 			    (m0 = m_pullup(m0, sizeof (*eh))) == NULL) {
   2035   1.1    simonb 				ifp->if_oerrors++;
   2036   1.1    simonb 				continue;
   2037   1.1    simonb 			}
   2038   1.1    simonb 			eh = mtod(m0, struct ether_header *);
   2039   1.1    simonb 			ni = ieee80211_find_txnode(ic, eh->ether_dhost);
   2040   1.1    simonb 			if (ni == NULL) {
   2041   1.1    simonb 				m_freem(m0);
   2042   1.1    simonb 				ifp->if_oerrors++;
   2043   1.1    simonb 				continue;
   2044   1.1    simonb 			}
   2045   1.1    simonb 
   2046   1.1    simonb 			/* classify mbuf so we can find which tx ring to use */
   2047   1.1    simonb 			if (ieee80211_classify(ic, m0, ni) != 0) {
   2048   1.1    simonb 				m_freem(m0);
   2049   1.1    simonb 				ieee80211_free_node(ni);
   2050   1.1    simonb 				ifp->if_oerrors++;
   2051   1.1    simonb 				continue;
   2052   1.1    simonb 			}
   2053   1.1    simonb 
   2054   1.1    simonb 			/* no QoS encapsulation for EAPOL frames */
   2055   1.1    simonb 			ac = (eh->ether_type != htons(ETHERTYPE_PAE)) ?
   2056   1.1    simonb 			    M_WME_GETAC(m0) : WME_AC_BE;
   2057   1.1    simonb 
   2058   1.1    simonb 			if (sc->txq[ac].queued > sc->txq[ac].count - 8) {
   2059   1.1    simonb 				/* there is no place left in this ring */
   2060   1.1    simonb 				ifp->if_flags |= IFF_OACTIVE;
   2061   1.1    simonb 				break;
   2062   1.1    simonb 			}
   2063   1.7  degroote 			IFQ_DEQUEUE(&ifp->if_snd, m0);
   2064  1.47     joerg 			bpf_mtap(ifp, m0);
   2065   1.1    simonb 			m0 = ieee80211_encap(ic, m0, ni);
   2066   1.1    simonb 			if (m0 == NULL) {
   2067   1.1    simonb 				ieee80211_free_node(ni);
   2068   1.1    simonb 				ifp->if_oerrors++;
   2069   1.1    simonb 				continue;
   2070   1.1    simonb 			}
   2071  1.47     joerg 			bpf_mtap3(ic->ic_rawbpf, m0);
   2072   1.1    simonb 			if (wpi_tx_data(sc, m0, ni, ac) != 0) {
   2073   1.1    simonb 				ieee80211_free_node(ni);
   2074   1.1    simonb 				ifp->if_oerrors++;
   2075   1.1    simonb 				break;
   2076   1.1    simonb 			}
   2077   1.1    simonb 		}
   2078   1.1    simonb 
   2079   1.1    simonb 		sc->sc_tx_timer = 5;
   2080   1.1    simonb 		ifp->if_timer = 1;
   2081   1.1    simonb 	}
   2082   1.1    simonb }
   2083   1.1    simonb 
   2084   1.1    simonb static void
   2085   1.1    simonb wpi_watchdog(struct ifnet *ifp)
   2086   1.1    simonb {
   2087   1.1    simonb 	struct wpi_softc *sc = ifp->if_softc;
   2088   1.1    simonb 
   2089   1.1    simonb 	ifp->if_timer = 0;
   2090   1.1    simonb 
   2091   1.1    simonb 	if (sc->sc_tx_timer > 0) {
   2092   1.1    simonb 		if (--sc->sc_tx_timer == 0) {
   2093  1.28  degroote 			aprint_error_dev(sc->sc_dev, "device timeout\n");
   2094   1.1    simonb 			ifp->if_oerrors++;
   2095   1.1    simonb 			ifp->if_flags &= ~IFF_UP;
   2096   1.1    simonb 			wpi_stop(ifp, 1);
   2097   1.1    simonb 			return;
   2098   1.1    simonb 		}
   2099   1.1    simonb 		ifp->if_timer = 1;
   2100   1.1    simonb 	}
   2101   1.1    simonb 
   2102   1.1    simonb 	ieee80211_watchdog(&sc->sc_ic);
   2103   1.1    simonb }
   2104   1.1    simonb 
   2105   1.1    simonb static int
   2106   1.9  christos wpi_ioctl(struct ifnet *ifp, u_long cmd, void *data)
   2107   1.1    simonb {
   2108   1.1    simonb #define IS_RUNNING(ifp) \
   2109   1.1    simonb 	((ifp->if_flags & IFF_UP) && (ifp->if_flags & IFF_RUNNING))
   2110   1.1    simonb 
   2111   1.1    simonb 	struct wpi_softc *sc = ifp->if_softc;
   2112   1.1    simonb 	struct ieee80211com *ic = &sc->sc_ic;
   2113   1.1    simonb 	int s, error = 0;
   2114   1.1    simonb 
   2115   1.1    simonb 	s = splnet();
   2116   1.1    simonb 
   2117   1.1    simonb 	switch (cmd) {
   2118   1.1    simonb 	case SIOCSIFFLAGS:
   2119  1.40    dyoung 		if ((error = ifioctl_common(ifp, cmd, data)) != 0)
   2120  1.40    dyoung 			break;
   2121   1.1    simonb 		if (ifp->if_flags & IFF_UP) {
   2122   1.1    simonb 			if (!(ifp->if_flags & IFF_RUNNING))
   2123   1.1    simonb 				wpi_init(ifp);
   2124   1.1    simonb 		} else {
   2125   1.1    simonb 			if (ifp->if_flags & IFF_RUNNING)
   2126   1.1    simonb 				wpi_stop(ifp, 1);
   2127   1.1    simonb 		}
   2128   1.1    simonb 		break;
   2129   1.1    simonb 
   2130   1.1    simonb 	case SIOCADDMULTI:
   2131   1.1    simonb 	case SIOCDELMULTI:
   2132  1.21    dyoung 		/* XXX no h/w multicast filter? --dyoung */
   2133  1.21    dyoung 		if ((error = ether_ioctl(ifp, cmd, data)) == ENETRESET) {
   2134   1.1    simonb 			/* setup multicast filter, etc */
   2135   1.1    simonb 			error = 0;
   2136   1.1    simonb 		}
   2137   1.1    simonb 		break;
   2138   1.1    simonb 
   2139   1.1    simonb 	default:
   2140   1.7  degroote 		error = ieee80211_ioctl(ic, cmd, data);
   2141   1.1    simonb 	}
   2142   1.1    simonb 
   2143   1.1    simonb 	if (error == ENETRESET) {
   2144   1.1    simonb 		if (IS_RUNNING(ifp) &&
   2145   1.1    simonb 			(ic->ic_roaming != IEEE80211_ROAMING_MANUAL))
   2146   1.1    simonb 			wpi_init(ifp);
   2147   1.1    simonb 		error = 0;
   2148   1.1    simonb 	}
   2149   1.1    simonb 
   2150   1.1    simonb 	splx(s);
   2151   1.1    simonb 	return error;
   2152   1.1    simonb 
   2153   1.1    simonb #undef IS_RUNNING
   2154   1.1    simonb }
   2155   1.1    simonb 
   2156   1.1    simonb /*
   2157   1.1    simonb  * Extract various information from EEPROM.
   2158   1.1    simonb  */
   2159   1.1    simonb static void
   2160   1.1    simonb wpi_read_eeprom(struct wpi_softc *sc)
   2161   1.1    simonb {
   2162   1.1    simonb 	struct ieee80211com *ic = &sc->sc_ic;
   2163  1.12  degroote 	char domain[4];
   2164   1.1    simonb 	int i;
   2165   1.1    simonb 
   2166  1.12  degroote 	wpi_read_prom_data(sc, WPI_EEPROM_CAPABILITIES, &sc->cap, 1);
   2167  1.12  degroote 	wpi_read_prom_data(sc, WPI_EEPROM_REVISION, &sc->rev, 2);
   2168  1.12  degroote 	wpi_read_prom_data(sc, WPI_EEPROM_TYPE, &sc->type, 1);
   2169  1.12  degroote 
   2170  1.12  degroote 	DPRINTF(("cap=%x rev=%x type=%x\n", sc->cap, le16toh(sc->rev),
   2171  1.12  degroote 	    sc->type));
   2172  1.12  degroote 
   2173  1.12  degroote 	/* read and print regulatory domain */
   2174  1.12  degroote 	wpi_read_prom_data(sc, WPI_EEPROM_DOMAIN, domain, 4);
   2175  1.32  jmcneill 	aprint_normal_dev(sc->sc_dev, "%.4s", domain);
   2176  1.12  degroote 
   2177  1.12  degroote 	/* read and print MAC address */
   2178  1.12  degroote 	wpi_read_prom_data(sc, WPI_EEPROM_MAC, ic->ic_myaddr, 6);
   2179  1.12  degroote 	aprint_normal(", address %s\n", ether_sprintf(ic->ic_myaddr));
   2180  1.12  degroote 
   2181  1.12  degroote 	/* read the list of authorized channels */
   2182  1.12  degroote 	for (i = 0; i < WPI_CHAN_BANDS_COUNT; i++)
   2183  1.12  degroote 		wpi_read_eeprom_channels(sc, i);
   2184  1.12  degroote 
   2185  1.12  degroote 	/* read the list of power groups */
   2186  1.12  degroote 	for (i = 0; i < WPI_POWER_GROUPS_COUNT; i++)
   2187  1.12  degroote 		wpi_read_eeprom_group(sc, i);
   2188  1.12  degroote }
   2189  1.12  degroote 
   2190  1.12  degroote static void
   2191  1.12  degroote wpi_read_eeprom_channels(struct wpi_softc *sc, int n)
   2192  1.12  degroote {
   2193  1.12  degroote 	struct ieee80211com *ic = &sc->sc_ic;
   2194  1.12  degroote 	const struct wpi_chan_band *band = &wpi_bands[n];
   2195  1.12  degroote 	struct wpi_eeprom_chan channels[WPI_MAX_CHAN_PER_BAND];
   2196  1.12  degroote 	int chan, i;
   2197  1.12  degroote 
   2198  1.12  degroote 	wpi_read_prom_data(sc, band->addr, channels,
   2199  1.12  degroote 	    band->nchan * sizeof (struct wpi_eeprom_chan));
   2200  1.12  degroote 
   2201  1.12  degroote 	for (i = 0; i < band->nchan; i++) {
   2202  1.12  degroote 		if (!(channels[i].flags & WPI_EEPROM_CHAN_VALID))
   2203  1.12  degroote 			continue;
   2204  1.12  degroote 
   2205  1.12  degroote 		chan = band->chan[i];
   2206  1.12  degroote 
   2207  1.12  degroote 		if (n == 0) {	/* 2GHz band */
   2208  1.12  degroote 			ic->ic_channels[chan].ic_freq =
   2209  1.12  degroote 			    ieee80211_ieee2mhz(chan, IEEE80211_CHAN_2GHZ);
   2210  1.12  degroote 			ic->ic_channels[chan].ic_flags =
   2211  1.12  degroote 			    IEEE80211_CHAN_CCK | IEEE80211_CHAN_OFDM |
   2212  1.12  degroote 			    IEEE80211_CHAN_DYN | IEEE80211_CHAN_2GHZ;
   2213  1.12  degroote 
   2214  1.12  degroote 		} else {	/* 5GHz band */
   2215  1.12  degroote 			/*
   2216  1.12  degroote 			 * Some 3945abg adapters support channels 7, 8, 11
   2217  1.12  degroote 			 * and 12 in the 2GHz *and* 5GHz bands.
   2218  1.12  degroote 			 * Because of limitations in our net80211(9) stack,
   2219  1.12  degroote 			 * we can't support these channels in 5GHz band.
   2220  1.12  degroote 			 */
   2221  1.12  degroote 			if (chan <= 14)
   2222  1.12  degroote 				continue;
   2223  1.12  degroote 
   2224  1.12  degroote 			ic->ic_channels[chan].ic_freq =
   2225  1.12  degroote 			    ieee80211_ieee2mhz(chan, IEEE80211_CHAN_5GHZ);
   2226  1.12  degroote 			ic->ic_channels[chan].ic_flags = IEEE80211_CHAN_A;
   2227  1.12  degroote 		}
   2228  1.12  degroote 
   2229  1.12  degroote 		/* is active scan allowed on this channel? */
   2230  1.12  degroote 		if (!(channels[i].flags & WPI_EEPROM_CHAN_ACTIVE)) {
   2231  1.12  degroote 			ic->ic_channels[chan].ic_flags |=
   2232  1.12  degroote 			    IEEE80211_CHAN_PASSIVE;
   2233  1.12  degroote 		}
   2234  1.12  degroote 
   2235  1.12  degroote 		/* save maximum allowed power for this channel */
   2236  1.12  degroote 		sc->maxpwr[chan] = channels[i].maxpwr;
   2237  1.12  degroote 
   2238  1.12  degroote 		DPRINTF(("adding chan %d flags=0x%x maxpwr=%d\n",
   2239  1.12  degroote 		    chan, channels[i].flags, sc->maxpwr[chan]));
   2240  1.12  degroote 	}
   2241  1.12  degroote }
   2242  1.12  degroote 
   2243  1.12  degroote static void
   2244  1.12  degroote wpi_read_eeprom_group(struct wpi_softc *sc, int n)
   2245  1.12  degroote {
   2246  1.12  degroote 	struct wpi_power_group *group = &sc->groups[n];
   2247  1.12  degroote 	struct wpi_eeprom_group rgroup;
   2248  1.12  degroote 	int i;
   2249  1.12  degroote 
   2250  1.12  degroote 	wpi_read_prom_data(sc, WPI_EEPROM_POWER_GRP + n * 32, &rgroup,
   2251  1.12  degroote 	    sizeof rgroup);
   2252  1.12  degroote 
   2253  1.12  degroote 	/* save power group information */
   2254  1.12  degroote 	group->chan   = rgroup.chan;
   2255  1.12  degroote 	group->maxpwr = rgroup.maxpwr;
   2256  1.12  degroote 	/* temperature at which the samples were taken */
   2257  1.12  degroote 	group->temp   = (int16_t)le16toh(rgroup.temp);
   2258  1.12  degroote 
   2259  1.12  degroote 	DPRINTF(("power group %d: chan=%d maxpwr=%d temp=%d\n", n,
   2260  1.12  degroote 	    group->chan, group->maxpwr, group->temp));
   2261  1.12  degroote 
   2262  1.12  degroote 	for (i = 0; i < WPI_SAMPLES_COUNT; i++) {
   2263  1.12  degroote 		group->samples[i].index = rgroup.samples[i].index;
   2264  1.12  degroote 		group->samples[i].power = rgroup.samples[i].power;
   2265  1.12  degroote 
   2266  1.12  degroote 		DPRINTF(("\tsample %d: index=%d power=%d\n", i,
   2267  1.12  degroote 		    group->samples[i].index, group->samples[i].power));
   2268   1.1    simonb 	}
   2269   1.1    simonb }
   2270   1.1    simonb 
   2271   1.1    simonb /*
   2272   1.1    simonb  * Send a command to the firmware.
   2273   1.1    simonb  */
   2274   1.1    simonb static int
   2275   1.1    simonb wpi_cmd(struct wpi_softc *sc, int code, const void *buf, int size, int async)
   2276   1.1    simonb {
   2277   1.1    simonb 	struct wpi_tx_ring *ring = &sc->cmdq;
   2278   1.1    simonb 	struct wpi_tx_desc *desc;
   2279   1.1    simonb 	struct wpi_tx_cmd *cmd;
   2280   1.1    simonb 
   2281   1.1    simonb 	KASSERT(size <= sizeof cmd->data);
   2282   1.1    simonb 
   2283   1.1    simonb 	desc = &ring->desc[ring->cur];
   2284   1.1    simonb 	cmd = &ring->cmd[ring->cur];
   2285   1.1    simonb 
   2286   1.1    simonb 	cmd->code = code;
   2287   1.1    simonb 	cmd->flags = 0;
   2288   1.1    simonb 	cmd->qid = ring->qid;
   2289   1.1    simonb 	cmd->idx = ring->cur;
   2290   1.1    simonb 	memcpy(cmd->data, buf, size);
   2291   1.1    simonb 
   2292   1.1    simonb 	desc->flags = htole32(WPI_PAD32(size) << 28 | 1 << 24);
   2293   1.1    simonb 	desc->segs[0].addr = htole32(ring->cmd_dma.paddr +
   2294   1.1    simonb 		ring->cur * sizeof (struct wpi_tx_cmd));
   2295   1.1    simonb 	desc->segs[0].len  = htole32(4 + size);
   2296   1.1    simonb 
   2297   1.1    simonb 	/* kick cmd ring */
   2298   1.1    simonb 	ring->cur = (ring->cur + 1) % WPI_CMD_RING_COUNT;
   2299   1.1    simonb 	WPI_WRITE(sc, WPI_TX_WIDX, ring->qid << 8 | ring->cur);
   2300   1.1    simonb 
   2301   1.1    simonb 	return async ? 0 : tsleep(cmd, PCATCH, "wpicmd", hz);
   2302   1.1    simonb }
   2303   1.1    simonb 
   2304   1.1    simonb static int
   2305   1.1    simonb wpi_wme_update(struct ieee80211com *ic)
   2306   1.1    simonb {
   2307   1.1    simonb #define WPI_EXP2(v)	htole16((1 << (v)) - 1)
   2308   1.1    simonb #define WPI_USEC(v)	htole16(IEEE80211_TXOP_TO_US(v))
   2309   1.1    simonb 	struct wpi_softc *sc = ic->ic_ifp->if_softc;
   2310   1.1    simonb 	const struct wmeParams *wmep;
   2311   1.1    simonb 	struct wpi_wme_setup wme;
   2312   1.1    simonb 	int ac;
   2313   1.1    simonb 
   2314   1.1    simonb 	/* don't override default WME values if WME is not actually enabled */
   2315   1.1    simonb 	if (!(ic->ic_flags & IEEE80211_F_WME))
   2316   1.1    simonb 		return 0;
   2317   1.1    simonb 
   2318   1.1    simonb 	wme.flags = 0;
   2319   1.1    simonb 	for (ac = 0; ac < WME_NUM_AC; ac++) {
   2320   1.1    simonb 		wmep = &ic->ic_wme.wme_chanParams.cap_wmeParams[ac];
   2321   1.1    simonb 		wme.ac[ac].aifsn = wmep->wmep_aifsn;
   2322   1.1    simonb 		wme.ac[ac].cwmin = WPI_EXP2(wmep->wmep_logcwmin);
   2323   1.1    simonb 		wme.ac[ac].cwmax = WPI_EXP2(wmep->wmep_logcwmax);
   2324   1.1    simonb 		wme.ac[ac].txop  = WPI_USEC(wmep->wmep_txopLimit);
   2325   1.1    simonb 
   2326   1.1    simonb 		DPRINTF(("setting WME for queue %d aifsn=%d cwmin=%d cwmax=%d "
   2327   1.1    simonb 		    "txop=%d\n", ac, wme.ac[ac].aifsn, wme.ac[ac].cwmin,
   2328   1.1    simonb 		    wme.ac[ac].cwmax, wme.ac[ac].txop));
   2329   1.1    simonb 	}
   2330   1.1    simonb 
   2331   1.1    simonb 	return wpi_cmd(sc, WPI_CMD_SET_WME, &wme, sizeof wme, 1);
   2332   1.1    simonb #undef WPI_USEC
   2333   1.1    simonb #undef WPI_EXP2
   2334   1.1    simonb }
   2335   1.1    simonb 
   2336   1.1    simonb /*
   2337   1.1    simonb  * Configure h/w multi-rate retries.
   2338   1.1    simonb  */
   2339   1.1    simonb static int
   2340   1.1    simonb wpi_mrr_setup(struct wpi_softc *sc)
   2341   1.1    simonb {
   2342   1.1    simonb 	struct ieee80211com *ic = &sc->sc_ic;
   2343   1.1    simonb 	struct wpi_mrr_setup mrr;
   2344   1.1    simonb 	int i, error;
   2345   1.1    simonb 
   2346   1.1    simonb 	/* CCK rates (not used with 802.11a) */
   2347   1.1    simonb 	for (i = WPI_CCK1; i <= WPI_CCK11; i++) {
   2348   1.1    simonb 		mrr.rates[i].flags = 0;
   2349   1.1    simonb 		mrr.rates[i].plcp = wpi_ridx_to_plcp[i];
   2350   1.1    simonb 		/* fallback to the immediate lower CCK rate (if any) */
   2351   1.1    simonb 		mrr.rates[i].next = (i == WPI_CCK1) ? WPI_CCK1 : i - 1;
   2352   1.1    simonb 		/* try one time at this rate before falling back to "next" */
   2353   1.1    simonb 		mrr.rates[i].ntries = 1;
   2354   1.1    simonb 	}
   2355   1.1    simonb 
   2356   1.1    simonb 	/* OFDM rates (not used with 802.11b) */
   2357   1.1    simonb 	for (i = WPI_OFDM6; i <= WPI_OFDM54; i++) {
   2358   1.1    simonb 		mrr.rates[i].flags = 0;
   2359   1.1    simonb 		mrr.rates[i].plcp = wpi_ridx_to_plcp[i];
   2360   1.1    simonb 		/* fallback to the immediate lower rate (if any) */
   2361   1.1    simonb 		/* we allow fallback from OFDM/6 to CCK/2 in 11b/g mode */
   2362   1.1    simonb 		mrr.rates[i].next = (i == WPI_OFDM6) ?
   2363   1.1    simonb 		    ((ic->ic_curmode == IEEE80211_MODE_11A) ?
   2364   1.1    simonb 			WPI_OFDM6 : WPI_CCK2) :
   2365   1.1    simonb 		    i - 1;
   2366   1.1    simonb 		/* try one time at this rate before falling back to "next" */
   2367   1.1    simonb 		mrr.rates[i].ntries = 1;
   2368   1.1    simonb 	}
   2369   1.1    simonb 
   2370   1.1    simonb 	/* setup MRR for control frames */
   2371   1.1    simonb 	mrr.which = htole32(WPI_MRR_CTL);
   2372  1.12  degroote 	error = wpi_cmd(sc, WPI_CMD_MRR_SETUP, &mrr, sizeof mrr, 0);
   2373   1.1    simonb 	if (error != 0) {
   2374  1.28  degroote 		aprint_error_dev(sc->sc_dev, "could not setup MRR for control frames\n");
   2375   1.1    simonb 		return error;
   2376   1.1    simonb 	}
   2377   1.1    simonb 
   2378   1.1    simonb 	/* setup MRR for data frames */
   2379   1.1    simonb 	mrr.which = htole32(WPI_MRR_DATA);
   2380  1.12  degroote 	error = wpi_cmd(sc, WPI_CMD_MRR_SETUP, &mrr, sizeof mrr, 0);
   2381   1.1    simonb 	if (error != 0) {
   2382  1.28  degroote 		aprint_error_dev(sc->sc_dev, "could not setup MRR for data frames\n");
   2383   1.1    simonb 		return error;
   2384   1.1    simonb 	}
   2385   1.1    simonb 
   2386   1.1    simonb 	return 0;
   2387   1.1    simonb }
   2388   1.1    simonb 
   2389   1.1    simonb static void
   2390   1.1    simonb wpi_set_led(struct wpi_softc *sc, uint8_t which, uint8_t off, uint8_t on)
   2391   1.1    simonb {
   2392   1.1    simonb 	struct wpi_cmd_led led;
   2393   1.1    simonb 
   2394   1.1    simonb 	led.which = which;
   2395   1.1    simonb 	led.unit = htole32(100000);	/* on/off in unit of 100ms */
   2396   1.1    simonb 	led.off = off;
   2397   1.1    simonb 	led.on = on;
   2398   1.1    simonb 
   2399   1.1    simonb 	(void)wpi_cmd(sc, WPI_CMD_SET_LED, &led, sizeof led, 1);
   2400   1.1    simonb }
   2401   1.1    simonb 
   2402   1.1    simonb static void
   2403   1.1    simonb wpi_enable_tsf(struct wpi_softc *sc, struct ieee80211_node *ni)
   2404   1.1    simonb {
   2405   1.1    simonb 	struct wpi_cmd_tsf tsf;
   2406   1.1    simonb 	uint64_t val, mod;
   2407   1.1    simonb 
   2408   1.1    simonb 	memset(&tsf, 0, sizeof tsf);
   2409   1.1    simonb 	memcpy(&tsf.tstamp, ni->ni_tstamp.data, 8);
   2410   1.1    simonb 	tsf.bintval = htole16(ni->ni_intval);
   2411   1.1    simonb 	tsf.lintval = htole16(10);
   2412   1.1    simonb 
   2413   1.1    simonb 	/* compute remaining time until next beacon */
   2414   1.1    simonb 	val = (uint64_t)ni->ni_intval  * 1024;	/* msecs -> usecs */
   2415   1.1    simonb 	mod = le64toh(tsf.tstamp) % val;
   2416   1.1    simonb 	tsf.binitval = htole32((uint32_t)(val - mod));
   2417   1.1    simonb 
   2418  1.16  degroote 	DPRINTF(("TSF bintval=%u tstamp=%" PRId64 ", init=%u\n",
   2419   1.1    simonb 	    ni->ni_intval, le64toh(tsf.tstamp), (uint32_t)(val - mod)));
   2420   1.1    simonb 
   2421   1.1    simonb 	if (wpi_cmd(sc, WPI_CMD_TSF, &tsf, sizeof tsf, 1) != 0)
   2422  1.28  degroote 		aprint_error_dev(sc->sc_dev, "could not enable TSF\n");
   2423   1.1    simonb }
   2424   1.1    simonb 
   2425   1.1    simonb /*
   2426  1.12  degroote  * Update Tx power to match what is defined for channel `c'.
   2427  1.12  degroote  */
   2428  1.12  degroote static int
   2429  1.12  degroote wpi_set_txpower(struct wpi_softc *sc, struct ieee80211_channel *c, int async)
   2430  1.12  degroote {
   2431  1.12  degroote 	struct ieee80211com *ic = &sc->sc_ic;
   2432  1.12  degroote 	struct wpi_power_group *group;
   2433  1.12  degroote 	struct wpi_cmd_txpower txpower;
   2434  1.12  degroote 	u_int chan;
   2435  1.12  degroote 	int i;
   2436  1.12  degroote 
   2437  1.12  degroote 	/* get channel number */
   2438  1.12  degroote 	chan = ieee80211_chan2ieee(ic, c);
   2439  1.12  degroote 
   2440  1.12  degroote 	/* find the power group to which this channel belongs */
   2441  1.12  degroote 	if (IEEE80211_IS_CHAN_5GHZ(c)) {
   2442  1.12  degroote 		for (group = &sc->groups[1]; group < &sc->groups[4]; group++)
   2443  1.12  degroote 			if (chan <= group->chan)
   2444  1.12  degroote 				break;
   2445  1.12  degroote 	} else
   2446  1.12  degroote 		group = &sc->groups[0];
   2447  1.12  degroote 
   2448  1.12  degroote 	memset(&txpower, 0, sizeof txpower);
   2449  1.12  degroote 	txpower.band = IEEE80211_IS_CHAN_5GHZ(c) ? 0 : 1;
   2450  1.12  degroote 	txpower.chan = htole16(chan);
   2451  1.12  degroote 
   2452  1.12  degroote 	/* set Tx power for all OFDM and CCK rates */
   2453  1.12  degroote 	for (i = 0; i <= 11 ; i++) {
   2454  1.12  degroote 		/* retrieve Tx power for this channel/rate combination */
   2455  1.12  degroote 		int idx = wpi_get_power_index(sc, group, c,
   2456  1.12  degroote 		    wpi_ridx_to_rate[i]);
   2457  1.12  degroote 
   2458  1.12  degroote 		txpower.rates[i].plcp = wpi_ridx_to_plcp[i];
   2459  1.12  degroote 
   2460  1.12  degroote 		if (IEEE80211_IS_CHAN_5GHZ(c)) {
   2461  1.12  degroote 			txpower.rates[i].rf_gain = wpi_rf_gain_5ghz[idx];
   2462  1.12  degroote 			txpower.rates[i].dsp_gain = wpi_dsp_gain_5ghz[idx];
   2463  1.12  degroote 		} else {
   2464  1.12  degroote 			txpower.rates[i].rf_gain = wpi_rf_gain_2ghz[idx];
   2465  1.12  degroote 			txpower.rates[i].dsp_gain = wpi_dsp_gain_2ghz[idx];
   2466  1.12  degroote 		}
   2467  1.12  degroote 		DPRINTF(("chan %d/rate %d: power index %d\n", chan,
   2468  1.12  degroote 		    wpi_ridx_to_rate[i], idx));
   2469  1.12  degroote 	}
   2470  1.12  degroote 
   2471  1.12  degroote 	return wpi_cmd(sc, WPI_CMD_TXPOWER, &txpower, sizeof txpower, async);
   2472  1.12  degroote }
   2473  1.12  degroote 
   2474  1.12  degroote /*
   2475  1.12  degroote  * Determine Tx power index for a given channel/rate combination.
   2476  1.12  degroote  * This takes into account the regulatory information from EEPROM and the
   2477  1.12  degroote  * current temperature.
   2478  1.12  degroote  */
   2479  1.12  degroote static int
   2480  1.12  degroote wpi_get_power_index(struct wpi_softc *sc, struct wpi_power_group *group,
   2481  1.12  degroote     struct ieee80211_channel *c, int rate)
   2482  1.12  degroote {
   2483  1.12  degroote /* fixed-point arithmetic division using a n-bit fractional part */
   2484  1.12  degroote #define fdivround(a, b, n)	\
   2485  1.12  degroote 	((((1 << n) * (a)) / (b) + (1 << n) / 2) / (1 << n))
   2486  1.12  degroote 
   2487  1.12  degroote /* linear interpolation */
   2488  1.12  degroote #define interpolate(x, x1, y1, x2, y2, n)	\
   2489  1.12  degroote 	((y1) + fdivround(((x) - (x1)) * ((y2) - (y1)), (x2) - (x1), n))
   2490  1.12  degroote 
   2491  1.12  degroote 	struct ieee80211com *ic = &sc->sc_ic;
   2492  1.12  degroote 	struct wpi_power_sample *sample;
   2493  1.12  degroote 	int pwr, idx;
   2494  1.12  degroote 	u_int chan;
   2495  1.12  degroote 
   2496  1.12  degroote 	/* get channel number */
   2497  1.12  degroote 	chan = ieee80211_chan2ieee(ic, c);
   2498  1.12  degroote 
   2499  1.12  degroote 	/* default power is group's maximum power - 3dB */
   2500  1.12  degroote 	pwr = group->maxpwr / 2;
   2501  1.12  degroote 
   2502  1.12  degroote 	/* decrease power for highest OFDM rates to reduce distortion */
   2503  1.12  degroote 	switch (rate) {
   2504  1.12  degroote 	case 72:	/* 36Mb/s */
   2505  1.12  degroote 		pwr -= IEEE80211_IS_CHAN_2GHZ(c) ? 0 :  5;
   2506  1.12  degroote 		break;
   2507  1.12  degroote 	case 96:	/* 48Mb/s */
   2508  1.12  degroote 		pwr -= IEEE80211_IS_CHAN_2GHZ(c) ? 7 : 10;
   2509  1.12  degroote 		break;
   2510  1.12  degroote 	case 108:	/* 54Mb/s */
   2511  1.12  degroote 		pwr -= IEEE80211_IS_CHAN_2GHZ(c) ? 9 : 12;
   2512  1.12  degroote 		break;
   2513  1.12  degroote 	}
   2514  1.12  degroote 
   2515  1.12  degroote 	/* never exceed channel's maximum allowed Tx power */
   2516  1.12  degroote 	pwr = min(pwr, sc->maxpwr[chan]);
   2517  1.12  degroote 
   2518  1.12  degroote 	/* retrieve power index into gain tables from samples */
   2519  1.12  degroote 	for (sample = group->samples; sample < &group->samples[3]; sample++)
   2520  1.12  degroote 		if (pwr > sample[1].power)
   2521  1.12  degroote 			break;
   2522  1.12  degroote 	/* fixed-point linear interpolation using a 19-bit fractional part */
   2523  1.12  degroote 	idx = interpolate(pwr, sample[0].power, sample[0].index,
   2524  1.12  degroote 	    sample[1].power, sample[1].index, 19);
   2525  1.12  degroote 
   2526  1.12  degroote 	/*
   2527  1.12  degroote 	 * Adjust power index based on current temperature:
   2528  1.12  degroote 	 * - if cooler than factory-calibrated: decrease output power
   2529  1.12  degroote 	 * - if warmer than factory-calibrated: increase output power
   2530  1.12  degroote 	 */
   2531  1.12  degroote 	idx -= (sc->temp - group->temp) * 11 / 100;
   2532  1.12  degroote 
   2533  1.12  degroote 	/* decrease power for CCK rates (-5dB) */
   2534  1.12  degroote 	if (!WPI_RATE_IS_OFDM(rate))
   2535  1.12  degroote 		idx += 10;
   2536  1.12  degroote 
   2537  1.12  degroote 	/* keep power index in a valid range */
   2538  1.12  degroote 	if (idx < 0)
   2539  1.12  degroote 		return 0;
   2540  1.12  degroote 	if (idx > WPI_MAX_PWR_INDEX)
   2541  1.12  degroote 		return WPI_MAX_PWR_INDEX;
   2542  1.12  degroote 	return idx;
   2543  1.12  degroote 
   2544  1.12  degroote #undef interpolate
   2545  1.12  degroote #undef fdivround
   2546  1.12  degroote }
   2547  1.12  degroote 
   2548  1.12  degroote /*
   2549   1.1    simonb  * Build a beacon frame that the firmware will broadcast periodically in
   2550   1.1    simonb  * IBSS or HostAP modes.
   2551   1.1    simonb  */
   2552   1.1    simonb static int
   2553   1.1    simonb wpi_setup_beacon(struct wpi_softc *sc, struct ieee80211_node *ni)
   2554   1.1    simonb {
   2555   1.1    simonb 	struct ieee80211com *ic = &sc->sc_ic;
   2556   1.1    simonb 	struct wpi_tx_ring *ring = &sc->cmdq;
   2557   1.1    simonb 	struct wpi_tx_desc *desc;
   2558   1.1    simonb 	struct wpi_tx_data *data;
   2559   1.1    simonb 	struct wpi_tx_cmd *cmd;
   2560   1.1    simonb 	struct wpi_cmd_beacon *bcn;
   2561   1.1    simonb 	struct ieee80211_beacon_offsets bo;
   2562   1.1    simonb 	struct mbuf *m0;
   2563   1.1    simonb 	int error;
   2564   1.1    simonb 
   2565   1.1    simonb 	desc = &ring->desc[ring->cur];
   2566   1.1    simonb 	data = &ring->data[ring->cur];
   2567   1.1    simonb 
   2568   1.1    simonb 	m0 = ieee80211_beacon_alloc(ic, ni, &bo);
   2569   1.1    simonb 	if (m0 == NULL) {
   2570  1.28  degroote 		aprint_error_dev(sc->sc_dev, "could not allocate beacon frame\n");
   2571   1.1    simonb 		return ENOMEM;
   2572   1.1    simonb 	}
   2573   1.1    simonb 
   2574   1.1    simonb 	cmd = &ring->cmd[ring->cur];
   2575   1.1    simonb 	cmd->code = WPI_CMD_SET_BEACON;
   2576   1.1    simonb 	cmd->flags = 0;
   2577   1.1    simonb 	cmd->qid = ring->qid;
   2578   1.1    simonb 	cmd->idx = ring->cur;
   2579   1.1    simonb 
   2580   1.1    simonb 	bcn = (struct wpi_cmd_beacon *)cmd->data;
   2581   1.1    simonb 	memset(bcn, 0, sizeof (struct wpi_cmd_beacon));
   2582   1.1    simonb 	bcn->id = WPI_ID_BROADCAST;
   2583   1.1    simonb 	bcn->ofdm_mask = 0xff;
   2584   1.1    simonb 	bcn->cck_mask = 0x0f;
   2585  1.12  degroote 	bcn->lifetime = htole32(WPI_LIFETIME_INFINITE);
   2586   1.1    simonb 	bcn->len = htole16(m0->m_pkthdr.len);
   2587   1.1    simonb 	bcn->rate = (ic->ic_curmode == IEEE80211_MODE_11A) ?
   2588   1.1    simonb 		wpi_plcp_signal(12) : wpi_plcp_signal(2);
   2589   1.1    simonb 	bcn->flags = htole32(WPI_TX_AUTO_SEQ | WPI_TX_INSERT_TSTAMP);
   2590   1.1    simonb 
   2591   1.1    simonb 	/* save and trim IEEE802.11 header */
   2592   1.9  christos 	m_copydata(m0, 0, sizeof (struct ieee80211_frame), (void *)&bcn->wh);
   2593   1.1    simonb 	m_adj(m0, sizeof (struct ieee80211_frame));
   2594   1.1    simonb 
   2595   1.1    simonb 	/* assume beacon frame is contiguous */
   2596   1.1    simonb 	error = bus_dmamap_load_mbuf(sc->sc_dmat, data->map, m0,
   2597   1.1    simonb 		BUS_DMA_READ | BUS_DMA_NOWAIT);
   2598   1.1    simonb 	if (error) {
   2599  1.55  christos 		aprint_error_dev(sc->sc_dev, "could not map beacon\n");
   2600   1.1    simonb 		m_freem(m0);
   2601   1.1    simonb 		return error;
   2602   1.1    simonb 	}
   2603   1.1    simonb 
   2604   1.1    simonb 	data->m = m0;
   2605   1.1    simonb 
   2606   1.1    simonb 	/* first scatter/gather segment is used by the beacon command */
   2607   1.1    simonb 	desc->flags = htole32(WPI_PAD32(m0->m_pkthdr.len) << 28 | 2 << 24);
   2608   1.1    simonb 	desc->segs[0].addr = htole32(ring->cmd_dma.paddr +
   2609   1.1    simonb 		ring->cur * sizeof (struct wpi_tx_cmd));
   2610   1.1    simonb 	desc->segs[0].len  = htole32(4 + sizeof (struct wpi_cmd_beacon));
   2611   1.1    simonb 	desc->segs[1].addr = htole32(data->map->dm_segs[0].ds_addr);
   2612   1.1    simonb 	desc->segs[1].len  = htole32(data->map->dm_segs[0].ds_len);
   2613   1.1    simonb 
   2614   1.1    simonb 	/* kick cmd ring */
   2615   1.1    simonb 	ring->cur = (ring->cur + 1) % WPI_CMD_RING_COUNT;
   2616   1.1    simonb 	WPI_WRITE(sc, WPI_TX_WIDX, ring->qid << 8 | ring->cur);
   2617   1.1    simonb 
   2618   1.1    simonb 	return 0;
   2619   1.1    simonb }
   2620   1.1    simonb 
   2621   1.1    simonb static int
   2622   1.1    simonb wpi_auth(struct wpi_softc *sc)
   2623   1.1    simonb {
   2624   1.1    simonb 	struct ieee80211com *ic = &sc->sc_ic;
   2625   1.1    simonb 	struct ieee80211_node *ni = ic->ic_bss;
   2626   1.5     joerg 	struct wpi_node_info node;
   2627   1.1    simonb 	int error;
   2628   1.1    simonb 
   2629   1.1    simonb 	/* update adapter's configuration */
   2630   1.1    simonb 	IEEE80211_ADDR_COPY(sc->config.bssid, ni->ni_bssid);
   2631   1.1    simonb 	sc->config.chan = ieee80211_chan2ieee(ic, ni->ni_chan);
   2632   1.1    simonb 	sc->config.flags = htole32(WPI_CONFIG_TSF);
   2633   1.1    simonb 	if (IEEE80211_IS_CHAN_2GHZ(ni->ni_chan)) {
   2634   1.1    simonb 		sc->config.flags |= htole32(WPI_CONFIG_AUTO |
   2635   1.1    simonb 		    WPI_CONFIG_24GHZ);
   2636   1.1    simonb 	}
   2637   1.1    simonb 	switch (ic->ic_curmode) {
   2638   1.1    simonb 	case IEEE80211_MODE_11A:
   2639   1.1    simonb 		sc->config.cck_mask  = 0;
   2640   1.1    simonb 		sc->config.ofdm_mask = 0x15;
   2641   1.1    simonb 		break;
   2642   1.1    simonb 	case IEEE80211_MODE_11B:
   2643   1.1    simonb 		sc->config.cck_mask  = 0x03;
   2644   1.1    simonb 		sc->config.ofdm_mask = 0;
   2645   1.1    simonb 		break;
   2646   1.1    simonb 	default:	/* assume 802.11b/g */
   2647   1.1    simonb 		sc->config.cck_mask  = 0x0f;
   2648   1.1    simonb 		sc->config.ofdm_mask = 0x15;
   2649   1.1    simonb 	}
   2650   1.1    simonb 
   2651   1.1    simonb 	DPRINTF(("config chan %d flags %x cck %x ofdm %x\n", sc->config.chan,
   2652   1.1    simonb 		sc->config.flags, sc->config.cck_mask, sc->config.ofdm_mask));
   2653   1.1    simonb 	error = wpi_cmd(sc, WPI_CMD_CONFIGURE, &sc->config,
   2654   1.1    simonb 		sizeof (struct wpi_config), 1);
   2655   1.1    simonb 	if (error != 0) {
   2656  1.55  christos 		aprint_error_dev(sc->sc_dev, "could not configure\n");
   2657   1.1    simonb 		return error;
   2658   1.1    simonb 	}
   2659   1.1    simonb 
   2660  1.12  degroote 	/* configuration has changed, set Tx power accordingly */
   2661  1.12  degroote 	if ((error = wpi_set_txpower(sc, ni->ni_chan, 1)) != 0) {
   2662  1.28  degroote 		aprint_error_dev(sc->sc_dev, "could not set Tx power\n");
   2663  1.12  degroote 		return error;
   2664  1.12  degroote 	}
   2665  1.12  degroote 
   2666   1.1    simonb 	/* add default node */
   2667   1.1    simonb 	memset(&node, 0, sizeof node);
   2668   1.1    simonb 	IEEE80211_ADDR_COPY(node.bssid, ni->ni_bssid);
   2669   1.1    simonb 	node.id = WPI_ID_BSS;
   2670   1.1    simonb 	node.rate = (ic->ic_curmode == IEEE80211_MODE_11A) ?
   2671   1.1    simonb 	    wpi_plcp_signal(12) : wpi_plcp_signal(2);
   2672  1.12  degroote 	node.action = htole32(WPI_ACTION_SET_RATE);
   2673  1.12  degroote 	node.antenna = WPI_ANTENNA_BOTH;
   2674   1.1    simonb 	error = wpi_cmd(sc, WPI_CMD_ADD_NODE, &node, sizeof node, 1);
   2675   1.1    simonb 	if (error != 0) {
   2676  1.55  christos 		aprint_error_dev(sc->sc_dev, "could not add BSS node\n");
   2677   1.1    simonb 		return error;
   2678   1.1    simonb 	}
   2679   1.1    simonb 
   2680   1.1    simonb 	return 0;
   2681   1.1    simonb }
   2682   1.1    simonb 
   2683   1.1    simonb /*
   2684   1.1    simonb  * Send a scan request to the firmware.  Since this command is huge, we map it
   2685   1.1    simonb  * into a mbuf instead of using the pre-allocated set of commands.
   2686   1.1    simonb  */
   2687   1.1    simonb static int
   2688   1.1    simonb wpi_scan(struct wpi_softc *sc, uint16_t flags)
   2689   1.1    simonb {
   2690   1.1    simonb 	struct ieee80211com *ic = &sc->sc_ic;
   2691   1.1    simonb 	struct wpi_tx_ring *ring = &sc->cmdq;
   2692   1.1    simonb 	struct wpi_tx_desc *desc;
   2693   1.1    simonb 	struct wpi_tx_data *data;
   2694   1.1    simonb 	struct wpi_tx_cmd *cmd;
   2695   1.1    simonb 	struct wpi_scan_hdr *hdr;
   2696   1.1    simonb 	struct wpi_scan_chan *chan;
   2697   1.1    simonb 	struct ieee80211_frame *wh;
   2698   1.1    simonb 	struct ieee80211_rateset *rs;
   2699   1.1    simonb 	struct ieee80211_channel *c;
   2700   1.1    simonb 	enum ieee80211_phymode mode;
   2701   1.1    simonb 	uint8_t *frm;
   2702   1.1    simonb 	int nrates, pktlen, error;
   2703   1.1    simonb 
   2704   1.1    simonb 	desc = &ring->desc[ring->cur];
   2705   1.1    simonb 	data = &ring->data[ring->cur];
   2706   1.1    simonb 
   2707   1.1    simonb 	MGETHDR(data->m, M_DONTWAIT, MT_DATA);
   2708   1.1    simonb 	if (data->m == NULL) {
   2709  1.55  christos 		aprint_error_dev(sc->sc_dev,
   2710  1.59  jakllsch 		    "could not allocate mbuf for scan command\n");
   2711   1.1    simonb 		return ENOMEM;
   2712   1.1    simonb 	}
   2713   1.1    simonb 
   2714   1.1    simonb 	MCLGET(data->m, M_DONTWAIT);
   2715   1.1    simonb 	if (!(data->m->m_flags & M_EXT)) {
   2716   1.1    simonb 		m_freem(data->m);
   2717   1.1    simonb 		data->m = NULL;
   2718  1.55  christos 		aprint_error_dev(sc->sc_dev,
   2719  1.59  jakllsch 		    "could not allocate mbuf for scan command\n");
   2720   1.1    simonb 		return ENOMEM;
   2721   1.1    simonb 	}
   2722   1.1    simonb 
   2723   1.1    simonb 	cmd = mtod(data->m, struct wpi_tx_cmd *);
   2724   1.1    simonb 	cmd->code = WPI_CMD_SCAN;
   2725   1.1    simonb 	cmd->flags = 0;
   2726   1.1    simonb 	cmd->qid = ring->qid;
   2727   1.1    simonb 	cmd->idx = ring->cur;
   2728   1.1    simonb 
   2729   1.1    simonb 	hdr = (struct wpi_scan_hdr *)cmd->data;
   2730   1.1    simonb 	memset(hdr, 0, sizeof (struct wpi_scan_hdr));
   2731  1.60  jakllsch 	hdr->cmd.flags = htole32(WPI_TX_AUTO_SEQ);
   2732  1.60  jakllsch 	hdr->cmd.id = WPI_ID_BROADCAST;
   2733  1.60  jakllsch 	hdr->cmd.lifetime = htole32(WPI_LIFETIME_INFINITE);
   2734  1.12  degroote 
   2735   1.1    simonb 	/*
   2736   1.1    simonb 	 * Move to the next channel if no packets are received within 5 msecs
   2737   1.1    simonb 	 * after sending the probe request (this helps to reduce the duration
   2738   1.1    simonb 	 * of active scans).
   2739   1.1    simonb 	 */
   2740  1.59  jakllsch 	hdr->quiet = htole16(5);		/* timeout in milliseconds */
   2741  1.12  degroote 	hdr->plcp_threshold = htole16(1);	/* min # of packets */
   2742   1.1    simonb 
   2743   1.1    simonb 	if (flags & IEEE80211_CHAN_A) {
   2744  1.12  degroote 		hdr->crc_threshold = htole16(1);
   2745   1.1    simonb 		/* send probe requests at 6Mbps */
   2746  1.60  jakllsch 		hdr->cmd.rate = wpi_plcp_signal(12);
   2747   1.1    simonb 	} else {
   2748   1.1    simonb 		hdr->flags = htole32(WPI_CONFIG_24GHZ | WPI_CONFIG_AUTO);
   2749   1.1    simonb 		/* send probe requests at 1Mbps */
   2750  1.60  jakllsch 		hdr->cmd.rate = wpi_plcp_signal(2);
   2751   1.1    simonb 	}
   2752   1.1    simonb 
   2753  1.12  degroote 	/* for directed scans, firmware inserts the essid IE itself */
   2754  1.12  degroote 	hdr->essid[0].id  = IEEE80211_ELEMID_SSID;
   2755  1.12  degroote 	hdr->essid[0].len = ic->ic_des_esslen;
   2756  1.12  degroote 	memcpy(hdr->essid[0].data, ic->ic_des_essid, ic->ic_des_esslen);
   2757   1.1    simonb 
   2758   1.1    simonb 	/*
   2759   1.1    simonb 	 * Build a probe request frame.  Most of the following code is a
   2760   1.1    simonb 	 * copy & paste of what is done in net80211.
   2761   1.1    simonb 	 */
   2762   1.1    simonb 	wh = (struct ieee80211_frame *)(hdr + 1);
   2763   1.1    simonb 	wh->i_fc[0] = IEEE80211_FC0_VERSION_0 | IEEE80211_FC0_TYPE_MGT |
   2764   1.1    simonb 		IEEE80211_FC0_SUBTYPE_PROBE_REQ;
   2765   1.1    simonb 	wh->i_fc[1] = IEEE80211_FC1_DIR_NODS;
   2766   1.1    simonb 	IEEE80211_ADDR_COPY(wh->i_addr1, etherbroadcastaddr);
   2767   1.1    simonb 	IEEE80211_ADDR_COPY(wh->i_addr2, ic->ic_myaddr);
   2768   1.1    simonb 	IEEE80211_ADDR_COPY(wh->i_addr3, etherbroadcastaddr);
   2769   1.1    simonb 	*(u_int16_t *)&wh->i_dur[0] = 0;	/* filled by h/w */
   2770   1.1    simonb 	*(u_int16_t *)&wh->i_seq[0] = 0;	/* filled by h/w */
   2771   1.1    simonb 
   2772   1.1    simonb 	frm = (uint8_t *)(wh + 1);
   2773   1.1    simonb 
   2774  1.12  degroote 	/* add empty essid IE (firmware generates it for directed scans) */
   2775  1.12  degroote 	*frm++ = IEEE80211_ELEMID_SSID;
   2776  1.12  degroote 	*frm++ = 0;
   2777   1.1    simonb 
   2778   1.1    simonb 	mode = ieee80211_chan2mode(ic, ic->ic_ibss_chan);
   2779   1.1    simonb 	rs = &ic->ic_sup_rates[mode];
   2780   1.1    simonb 
   2781   1.1    simonb 	/* add supported rates IE */
   2782   1.1    simonb 	*frm++ = IEEE80211_ELEMID_RATES;
   2783   1.1    simonb 	nrates = rs->rs_nrates;
   2784   1.1    simonb 	if (nrates > IEEE80211_RATE_SIZE)
   2785   1.1    simonb 		nrates = IEEE80211_RATE_SIZE;
   2786   1.1    simonb 	*frm++ = nrates;
   2787   1.1    simonb 	memcpy(frm, rs->rs_rates, nrates);
   2788   1.1    simonb 	frm += nrates;
   2789   1.1    simonb 
   2790   1.1    simonb 	/* add supported xrates IE */
   2791   1.1    simonb 	if (rs->rs_nrates > IEEE80211_RATE_SIZE) {
   2792   1.1    simonb 		nrates = rs->rs_nrates - IEEE80211_RATE_SIZE;
   2793   1.1    simonb 		*frm++ = IEEE80211_ELEMID_XRATES;
   2794   1.1    simonb 		*frm++ = nrates;
   2795   1.1    simonb 		memcpy(frm, rs->rs_rates + IEEE80211_RATE_SIZE, nrates);
   2796   1.1    simonb 		frm += nrates;
   2797   1.1    simonb 	}
   2798   1.1    simonb 
   2799   1.1    simonb 	/* setup length of probe request */
   2800  1.60  jakllsch 	hdr->cmd.len = htole16(frm - (uint8_t *)wh);
   2801   1.1    simonb 
   2802   1.1    simonb 	chan = (struct wpi_scan_chan *)frm;
   2803   1.1    simonb 	for (c  = &ic->ic_channels[1];
   2804   1.1    simonb 	     c <= &ic->ic_channels[IEEE80211_CHAN_MAX]; c++) {
   2805   1.1    simonb 		if ((c->ic_flags & flags) != flags)
   2806   1.1    simonb 			continue;
   2807   1.1    simonb 
   2808   1.1    simonb 		chan->chan = ieee80211_chan2ieee(ic, c);
   2809  1.12  degroote 		chan->flags = 0;
   2810  1.12  degroote 		if (!(c->ic_flags & IEEE80211_CHAN_PASSIVE)) {
   2811  1.12  degroote 			chan->flags |= WPI_CHAN_ACTIVE;
   2812  1.12  degroote 			if (ic->ic_des_esslen != 0)
   2813  1.12  degroote 				chan->flags |= WPI_CHAN_DIRECT;
   2814  1.12  degroote 		}
   2815  1.12  degroote 		chan->dsp_gain = 0x6e;
   2816   1.1    simonb 		if (IEEE80211_IS_CHAN_5GHZ(c)) {
   2817  1.12  degroote 			chan->rf_gain = 0x3b;
   2818   1.1    simonb 			chan->active = htole16(10);
   2819   1.1    simonb 			chan->passive = htole16(110);
   2820   1.1    simonb 		} else {
   2821  1.12  degroote 			chan->rf_gain = 0x28;
   2822   1.1    simonb 			chan->active = htole16(20);
   2823   1.1    simonb 			chan->passive = htole16(120);
   2824   1.1    simonb 		}
   2825   1.1    simonb 		hdr->nchan++;
   2826   1.1    simonb 		chan++;
   2827   1.1    simonb 
   2828   1.1    simonb 		frm += sizeof (struct wpi_scan_chan);
   2829   1.1    simonb 	}
   2830  1.12  degroote 	hdr->len = htole16(frm - (uint8_t *)hdr);
   2831  1.12  degroote 	pktlen = frm - (uint8_t *)cmd;
   2832   1.1    simonb 
   2833   1.1    simonb 	error = bus_dmamap_load(sc->sc_dmat, data->map, cmd, pktlen,
   2834   1.1    simonb 		NULL, BUS_DMA_NOWAIT);
   2835   1.1    simonb 	if (error) {
   2836  1.28  degroote 		aprint_error_dev(sc->sc_dev, "could not map scan command\n");
   2837   1.1    simonb 		m_freem(data->m);
   2838   1.1    simonb 		data->m = NULL;
   2839   1.1    simonb 		return error;
   2840   1.1    simonb 	}
   2841   1.1    simonb 
   2842   1.1    simonb 	desc->flags = htole32(WPI_PAD32(pktlen) << 28 | 1 << 24);
   2843   1.1    simonb 	desc->segs[0].addr = htole32(data->map->dm_segs[0].ds_addr);
   2844   1.1    simonb 	desc->segs[0].len  = htole32(data->map->dm_segs[0].ds_len);
   2845   1.1    simonb 
   2846   1.1    simonb 	/* kick cmd ring */
   2847   1.1    simonb 	ring->cur = (ring->cur + 1) % WPI_CMD_RING_COUNT;
   2848   1.1    simonb 	WPI_WRITE(sc, WPI_TX_WIDX, ring->qid << 8 | ring->cur);
   2849   1.1    simonb 
   2850   1.1    simonb 	return 0;	/* will be notified async. of failure/success */
   2851   1.1    simonb }
   2852   1.1    simonb 
   2853   1.1    simonb static int
   2854   1.1    simonb wpi_config(struct wpi_softc *sc)
   2855   1.1    simonb {
   2856   1.1    simonb 	struct ieee80211com *ic = &sc->sc_ic;
   2857   1.1    simonb 	struct ifnet *ifp = ic->ic_ifp;
   2858   1.1    simonb 	struct wpi_power power;
   2859   1.1    simonb 	struct wpi_bluetooth bluetooth;
   2860   1.5     joerg 	struct wpi_node_info node;
   2861   1.1    simonb 	int error;
   2862   1.1    simonb 
   2863   1.1    simonb 	memset(&power, 0, sizeof power);
   2864  1.12  degroote 	power.flags = htole32(WPI_POWER_CAM | 0x8);
   2865   1.1    simonb 	error = wpi_cmd(sc, WPI_CMD_SET_POWER_MODE, &power, sizeof power, 0);
   2866   1.1    simonb 	if (error != 0) {
   2867  1.28  degroote 		aprint_error_dev(sc->sc_dev, "could not set power mode\n");
   2868   1.1    simonb 		return error;
   2869   1.1    simonb 	}
   2870   1.1    simonb 
   2871   1.1    simonb 	/* configure bluetooth coexistence */
   2872   1.1    simonb 	memset(&bluetooth, 0, sizeof bluetooth);
   2873   1.1    simonb 	bluetooth.flags = 3;
   2874   1.1    simonb 	bluetooth.lead = 0xaa;
   2875   1.1    simonb 	bluetooth.kill = 1;
   2876   1.1    simonb 	error = wpi_cmd(sc, WPI_CMD_BLUETOOTH, &bluetooth, sizeof bluetooth,
   2877   1.1    simonb 		0);
   2878   1.1    simonb 	if (error != 0) {
   2879  1.28  degroote 		aprint_error_dev(sc->sc_dev,
   2880  1.28  degroote 			"could not configure bluetooth coexistence\n");
   2881   1.1    simonb 		return error;
   2882   1.1    simonb 	}
   2883   1.1    simonb 
   2884   1.1    simonb 	/* configure adapter */
   2885   1.1    simonb 	memset(&sc->config, 0, sizeof (struct wpi_config));
   2886  1.20    dyoung 	IEEE80211_ADDR_COPY(ic->ic_myaddr, CLLADDR(ifp->if_sadl));
   2887   1.1    simonb 	IEEE80211_ADDR_COPY(sc->config.myaddr, ic->ic_myaddr);
   2888   1.1    simonb 	/*set default channel*/
   2889   1.1    simonb 	sc->config.chan = ieee80211_chan2ieee(ic, ic->ic_ibss_chan);
   2890   1.1    simonb 	sc->config.flags = htole32(WPI_CONFIG_TSF);
   2891   1.1    simonb 	if (IEEE80211_IS_CHAN_2GHZ(ic->ic_ibss_chan)) {
   2892   1.1    simonb 		sc->config.flags |= htole32(WPI_CONFIG_AUTO |
   2893   1.1    simonb 		    WPI_CONFIG_24GHZ);
   2894   1.1    simonb 	}
   2895   1.1    simonb 	sc->config.filter = 0;
   2896   1.1    simonb 	switch (ic->ic_opmode) {
   2897   1.1    simonb 	case IEEE80211_M_STA:
   2898   1.1    simonb 		sc->config.mode = WPI_MODE_STA;
   2899   1.1    simonb 		sc->config.filter |= htole32(WPI_FILTER_MULTICAST);
   2900   1.1    simonb 		break;
   2901   1.1    simonb 	case IEEE80211_M_IBSS:
   2902   1.1    simonb 	case IEEE80211_M_AHDEMO:
   2903   1.1    simonb 		sc->config.mode = WPI_MODE_IBSS;
   2904   1.1    simonb 		break;
   2905   1.1    simonb 	case IEEE80211_M_HOSTAP:
   2906   1.1    simonb 		sc->config.mode = WPI_MODE_HOSTAP;
   2907   1.1    simonb 		break;
   2908   1.1    simonb 	case IEEE80211_M_MONITOR:
   2909   1.1    simonb 		sc->config.mode = WPI_MODE_MONITOR;
   2910   1.1    simonb 		sc->config.filter |= htole32(WPI_FILTER_MULTICAST |
   2911   1.1    simonb 			WPI_FILTER_CTL | WPI_FILTER_PROMISC);
   2912   1.1    simonb 		break;
   2913   1.1    simonb 	}
   2914   1.1    simonb 	sc->config.cck_mask  = 0x0f;	/* not yet negotiated */
   2915   1.1    simonb 	sc->config.ofdm_mask = 0xff;	/* not yet negotiated */
   2916   1.1    simonb 	error = wpi_cmd(sc, WPI_CMD_CONFIGURE, &sc->config,
   2917   1.1    simonb 		sizeof (struct wpi_config), 0);
   2918   1.1    simonb 	if (error != 0) {
   2919  1.28  degroote 		aprint_error_dev(sc->sc_dev, "configure command failed\n");
   2920   1.1    simonb 		return error;
   2921   1.1    simonb 	}
   2922   1.1    simonb 
   2923  1.12  degroote 	/* configuration has changed, set Tx power accordingly */
   2924  1.12  degroote 	if ((error = wpi_set_txpower(sc, ic->ic_ibss_chan, 0)) != 0) {
   2925  1.28  degroote 		aprint_error_dev(sc->sc_dev, "could not set Tx power\n");
   2926  1.12  degroote 		return error;
   2927  1.12  degroote 	}
   2928  1.12  degroote 
   2929   1.1    simonb 	/* add broadcast node */
   2930   1.1    simonb 	memset(&node, 0, sizeof node);
   2931   1.1    simonb 	IEEE80211_ADDR_COPY(node.bssid, etherbroadcastaddr);
   2932   1.1    simonb 	node.id = WPI_ID_BROADCAST;
   2933   1.1    simonb 	node.rate = wpi_plcp_signal(2);
   2934  1.12  degroote 	node.action = htole32(WPI_ACTION_SET_RATE);
   2935  1.55  christos 	node.antenna = WPI_ANTENNA_BOTH;
   2936   1.1    simonb 	error = wpi_cmd(sc, WPI_CMD_ADD_NODE, &node, sizeof node, 0);
   2937   1.1    simonb 	if (error != 0) {
   2938  1.28  degroote 		aprint_error_dev(sc->sc_dev, "could not add broadcast node\n");
   2939   1.1    simonb 		return error;
   2940   1.1    simonb 	}
   2941   1.1    simonb 
   2942  1.12  degroote 	if ((error = wpi_mrr_setup(sc)) != 0) {
   2943  1.28  degroote 		aprint_error_dev(sc->sc_dev, "could not setup MRR\n");
   2944  1.12  degroote 		return error;
   2945  1.12  degroote 	}
   2946  1.12  degroote 
   2947   1.1    simonb 	return 0;
   2948   1.1    simonb }
   2949   1.1    simonb 
   2950   1.1    simonb static void
   2951   1.1    simonb wpi_stop_master(struct wpi_softc *sc)
   2952   1.1    simonb {
   2953   1.1    simonb 	uint32_t tmp;
   2954   1.1    simonb 	int ntries;
   2955   1.1    simonb 
   2956   1.1    simonb 	tmp = WPI_READ(sc, WPI_RESET);
   2957   1.1    simonb 	WPI_WRITE(sc, WPI_RESET, tmp | WPI_STOP_MASTER);
   2958   1.1    simonb 
   2959   1.1    simonb 	tmp = WPI_READ(sc, WPI_GPIO_CTL);
   2960   1.1    simonb 	if ((tmp & WPI_GPIO_PWR_STATUS) == WPI_GPIO_PWR_SLEEP)
   2961   1.1    simonb 		return;	/* already asleep */
   2962   1.1    simonb 
   2963   1.1    simonb 	for (ntries = 0; ntries < 100; ntries++) {
   2964   1.1    simonb 		if (WPI_READ(sc, WPI_RESET) & WPI_MASTER_DISABLED)
   2965   1.1    simonb 			break;
   2966   1.1    simonb 		DELAY(10);
   2967   1.1    simonb 	}
   2968   1.1    simonb 	if (ntries == 100) {
   2969  1.28  degroote 		aprint_error_dev(sc->sc_dev, "timeout waiting for master\n");
   2970   1.1    simonb 	}
   2971   1.1    simonb }
   2972   1.1    simonb 
   2973   1.1    simonb static int
   2974   1.1    simonb wpi_power_up(struct wpi_softc *sc)
   2975   1.1    simonb {
   2976   1.1    simonb 	uint32_t tmp;
   2977   1.1    simonb 	int ntries;
   2978   1.1    simonb 
   2979   1.1    simonb 	wpi_mem_lock(sc);
   2980   1.1    simonb 	tmp = wpi_mem_read(sc, WPI_MEM_POWER);
   2981   1.1    simonb 	wpi_mem_write(sc, WPI_MEM_POWER, tmp & ~0x03000000);
   2982   1.1    simonb 	wpi_mem_unlock(sc);
   2983   1.1    simonb 
   2984   1.1    simonb 	for (ntries = 0; ntries < 5000; ntries++) {
   2985   1.1    simonb 		if (WPI_READ(sc, WPI_GPIO_STATUS) & WPI_POWERED)
   2986   1.1    simonb 			break;
   2987   1.1    simonb 		DELAY(10);
   2988   1.1    simonb 	}
   2989   1.1    simonb 	if (ntries == 5000) {
   2990  1.28  degroote 		aprint_error_dev(sc->sc_dev, "timeout waiting for NIC to power up\n");
   2991   1.1    simonb 		return ETIMEDOUT;
   2992   1.1    simonb 	}
   2993   1.1    simonb 	return 0;
   2994   1.1    simonb }
   2995   1.1    simonb 
   2996   1.1    simonb static int
   2997   1.1    simonb wpi_reset(struct wpi_softc *sc)
   2998   1.1    simonb {
   2999   1.1    simonb 	uint32_t tmp;
   3000   1.1    simonb 	int ntries;
   3001   1.1    simonb 
   3002   1.1    simonb 	/* clear any pending interrupts */
   3003   1.1    simonb 	WPI_WRITE(sc, WPI_INTR, 0xffffffff);
   3004   1.1    simonb 
   3005   1.1    simonb 	tmp = WPI_READ(sc, WPI_PLL_CTL);
   3006   1.1    simonb 	WPI_WRITE(sc, WPI_PLL_CTL, tmp | WPI_PLL_INIT);
   3007   1.1    simonb 
   3008   1.1    simonb 	tmp = WPI_READ(sc, WPI_CHICKEN);
   3009   1.1    simonb 	WPI_WRITE(sc, WPI_CHICKEN, tmp | WPI_CHICKEN_RXNOLOS);
   3010   1.1    simonb 
   3011   1.1    simonb 	tmp = WPI_READ(sc, WPI_GPIO_CTL);
   3012   1.1    simonb 	WPI_WRITE(sc, WPI_GPIO_CTL, tmp | WPI_GPIO_INIT);
   3013   1.1    simonb 
   3014   1.1    simonb 	/* wait for clock stabilization */
   3015   1.1    simonb 	for (ntries = 0; ntries < 1000; ntries++) {
   3016   1.1    simonb 		if (WPI_READ(sc, WPI_GPIO_CTL) & WPI_GPIO_CLOCK)
   3017   1.1    simonb 			break;
   3018   1.1    simonb 		DELAY(10);
   3019   1.1    simonb 	}
   3020   1.1    simonb 	if (ntries == 1000) {
   3021  1.55  christos 		aprint_error_dev(sc->sc_dev,
   3022  1.28  degroote 						 "timeout waiting for clock stabilization\n");
   3023   1.1    simonb 		return ETIMEDOUT;
   3024   1.1    simonb 	}
   3025   1.1    simonb 
   3026   1.1    simonb 	/* initialize EEPROM */
   3027   1.1    simonb 	tmp = WPI_READ(sc, WPI_EEPROM_STATUS);
   3028   1.1    simonb 	if ((tmp & WPI_EEPROM_VERSION) == 0) {
   3029  1.28  degroote 		aprint_error_dev(sc->sc_dev, "EEPROM not found\n");
   3030   1.1    simonb 		return EIO;
   3031   1.1    simonb 	}
   3032   1.1    simonb 	WPI_WRITE(sc, WPI_EEPROM_STATUS, tmp & ~WPI_EEPROM_LOCKED);
   3033   1.1    simonb 
   3034   1.1    simonb 	return 0;
   3035   1.1    simonb }
   3036   1.1    simonb 
   3037   1.1    simonb static void
   3038   1.1    simonb wpi_hw_config(struct wpi_softc *sc)
   3039   1.1    simonb {
   3040   1.1    simonb 	uint32_t rev, hw;
   3041   1.1    simonb 
   3042  1.12  degroote 	/* voodoo from the reference driver */
   3043   1.1    simonb 	hw = WPI_READ(sc, WPI_HWCONFIG);
   3044   1.1    simonb 
   3045   1.1    simonb 	rev = pci_conf_read(sc->sc_pct, sc->sc_pcitag, PCI_CLASS_REG);
   3046   1.1    simonb 	rev = PCI_REVISION(rev);
   3047   1.1    simonb 	if ((rev & 0xc0) == 0x40)
   3048   1.1    simonb 		hw |= WPI_HW_ALM_MB;
   3049   1.1    simonb 	else if (!(rev & 0x80))
   3050   1.1    simonb 		hw |= WPI_HW_ALM_MM;
   3051   1.1    simonb 
   3052  1.12  degroote 	if (sc->cap == 0x80)
   3053   1.1    simonb 		hw |= WPI_HW_SKU_MRC;
   3054   1.1    simonb 
   3055   1.1    simonb 	hw &= ~WPI_HW_REV_D;
   3056  1.55  christos 	if ((le16toh(sc->rev) & 0xf0) == 0xd0)
   3057   1.1    simonb 		hw |= WPI_HW_REV_D;
   3058   1.1    simonb 
   3059  1.12  degroote 	if (sc->type > 1)
   3060   1.1    simonb 		hw |= WPI_HW_TYPE_B;
   3061   1.1    simonb 
   3062   1.1    simonb 	DPRINTF(("setting h/w config %x\n", hw));
   3063   1.1    simonb 	WPI_WRITE(sc, WPI_HWCONFIG, hw);
   3064   1.1    simonb }
   3065   1.1    simonb 
   3066   1.1    simonb static int
   3067   1.1    simonb wpi_init(struct ifnet *ifp)
   3068   1.1    simonb {
   3069   1.1    simonb 	struct wpi_softc *sc = ifp->if_softc;
   3070   1.1    simonb 	struct ieee80211com *ic = &sc->sc_ic;
   3071   1.1    simonb 	uint32_t tmp;
   3072   1.1    simonb 	int qid, ntries, error;
   3073   1.1    simonb 
   3074  1.18  degroote 	wpi_stop(ifp,1);
   3075   1.1    simonb 	(void)wpi_reset(sc);
   3076   1.1    simonb 
   3077   1.1    simonb 	wpi_mem_lock(sc);
   3078   1.1    simonb 	wpi_mem_write(sc, WPI_MEM_CLOCK1, 0xa00);
   3079   1.1    simonb 	DELAY(20);
   3080   1.1    simonb 	tmp = wpi_mem_read(sc, WPI_MEM_PCIDEV);
   3081   1.1    simonb 	wpi_mem_write(sc, WPI_MEM_PCIDEV, tmp | 0x800);
   3082   1.1    simonb 	wpi_mem_unlock(sc);
   3083   1.1    simonb 
   3084   1.1    simonb 	(void)wpi_power_up(sc);
   3085   1.1    simonb 	wpi_hw_config(sc);
   3086   1.1    simonb 
   3087   1.1    simonb 	/* init Rx ring */
   3088   1.1    simonb 	wpi_mem_lock(sc);
   3089   1.1    simonb 	WPI_WRITE(sc, WPI_RX_BASE, sc->rxq.desc_dma.paddr);
   3090   1.1    simonb 	WPI_WRITE(sc, WPI_RX_RIDX_PTR, sc->shared_dma.paddr +
   3091   1.1    simonb 	    offsetof(struct wpi_shared, next));
   3092   1.1    simonb 	WPI_WRITE(sc, WPI_RX_WIDX, (WPI_RX_RING_COUNT - 1) & ~7);
   3093   1.1    simonb 	WPI_WRITE(sc, WPI_RX_CONFIG, 0xa9601010);
   3094   1.1    simonb 	wpi_mem_unlock(sc);
   3095   1.1    simonb 
   3096   1.1    simonb 	/* init Tx rings */
   3097   1.1    simonb 	wpi_mem_lock(sc);
   3098   1.1    simonb 	wpi_mem_write(sc, WPI_MEM_MODE, 2); /* bypass mode */
   3099   1.1    simonb 	wpi_mem_write(sc, WPI_MEM_RA, 1);   /* enable RA0 */
   3100   1.1    simonb 	wpi_mem_write(sc, WPI_MEM_TXCFG, 0x3f); /* enable all 6 Tx rings */
   3101   1.1    simonb 	wpi_mem_write(sc, WPI_MEM_BYPASS1, 0x10000);
   3102   1.1    simonb 	wpi_mem_write(sc, WPI_MEM_BYPASS2, 0x30002);
   3103   1.1    simonb 	wpi_mem_write(sc, WPI_MEM_MAGIC4, 4);
   3104   1.1    simonb 	wpi_mem_write(sc, WPI_MEM_MAGIC5, 5);
   3105   1.1    simonb 
   3106   1.1    simonb 	WPI_WRITE(sc, WPI_TX_BASE_PTR, sc->shared_dma.paddr);
   3107   1.1    simonb 	WPI_WRITE(sc, WPI_MSG_CONFIG, 0xffff05a5);
   3108   1.1    simonb 
   3109   1.1    simonb 	for (qid = 0; qid < 6; qid++) {
   3110   1.1    simonb 		WPI_WRITE(sc, WPI_TX_CTL(qid), 0);
   3111   1.1    simonb 		WPI_WRITE(sc, WPI_TX_BASE(qid), 0);
   3112   1.1    simonb 		WPI_WRITE(sc, WPI_TX_CONFIG(qid), 0x80200008);
   3113   1.1    simonb 	}
   3114   1.1    simonb 	wpi_mem_unlock(sc);
   3115   1.1    simonb 
   3116   1.1    simonb 	/* clear "radio off" and "disable command" bits (reversed logic) */
   3117   1.1    simonb 	WPI_WRITE(sc, WPI_UCODE_CLR, WPI_RADIO_OFF);
   3118   1.1    simonb 	WPI_WRITE(sc, WPI_UCODE_CLR, WPI_DISABLE_CMD);
   3119   1.1    simonb 
   3120   1.1    simonb 	/* clear any pending interrupts */
   3121   1.1    simonb 	WPI_WRITE(sc, WPI_INTR, 0xffffffff);
   3122   1.1    simonb 	/* enable interrupts */
   3123   1.1    simonb 	WPI_WRITE(sc, WPI_MASK, WPI_INTR_MASK);
   3124   1.1    simonb 
   3125  1.12  degroote 	/* not sure why/if this is necessary... */
   3126  1.12  degroote 	WPI_WRITE(sc, WPI_UCODE_CLR, WPI_RADIO_OFF);
   3127  1.12  degroote 	WPI_WRITE(sc, WPI_UCODE_CLR, WPI_RADIO_OFF);
   3128   1.1    simonb 
   3129  1.54  riastrad 	if ((error = wpi_load_firmware(sc)) != 0)
   3130  1.54  riastrad 		/* wpi_load_firmware prints error messages for us.  */
   3131   1.1    simonb 		goto fail1;
   3132   1.1    simonb 
   3133  1.31  degroote 	/* Check the status of the radio switch */
   3134  1.34  degroote 	if (wpi_getrfkill(sc)) {
   3135  1.54  riastrad 		aprint_error_dev(sc->sc_dev,
   3136  1.54  riastrad 		    "radio is disabled by hardware switch\n");
   3137  1.54  riastrad 		error = EBUSY;
   3138  1.31  degroote 		goto fail1;
   3139  1.31  degroote 	}
   3140  1.31  degroote 
   3141   1.1    simonb 	/* wait for thermal sensors to calibrate */
   3142   1.1    simonb 	for (ntries = 0; ntries < 1000; ntries++) {
   3143  1.55  christos 		if ((sc->temp = (int)WPI_READ(sc, WPI_TEMPERATURE)) != 0)
   3144   1.1    simonb 			break;
   3145   1.1    simonb 		DELAY(10);
   3146   1.1    simonb 	}
   3147   1.1    simonb 	if (ntries == 1000) {
   3148  1.54  riastrad 		aprint_error_dev(sc->sc_dev,
   3149  1.54  riastrad 		    "timeout waiting for thermal sensors calibration\n");
   3150   1.1    simonb 		error = ETIMEDOUT;
   3151   1.1    simonb 		goto fail1;
   3152   1.1    simonb 	}
   3153  1.12  degroote 
   3154  1.12  degroote 	DPRINTF(("temperature %d\n", sc->temp));
   3155   1.1    simonb 
   3156   1.1    simonb 	if ((error = wpi_config(sc)) != 0) {
   3157  1.28  degroote 		aprint_error_dev(sc->sc_dev, "could not configure device\n");
   3158   1.1    simonb 		goto fail1;
   3159   1.1    simonb 	}
   3160   1.1    simonb 
   3161   1.1    simonb 	ifp->if_flags &= ~IFF_OACTIVE;
   3162   1.1    simonb 	ifp->if_flags |= IFF_RUNNING;
   3163   1.1    simonb 
   3164   1.1    simonb 	if (ic->ic_opmode != IEEE80211_M_MONITOR) {
   3165   1.1    simonb 		if (ic->ic_roaming != IEEE80211_ROAMING_MANUAL)
   3166   1.1    simonb 			ieee80211_new_state(ic, IEEE80211_S_SCAN, -1);
   3167   1.1    simonb 	}
   3168   1.1    simonb 	else
   3169   1.1    simonb 		ieee80211_new_state(ic, IEEE80211_S_RUN, -1);
   3170   1.1    simonb 
   3171   1.1    simonb 	return 0;
   3172   1.1    simonb 
   3173   1.1    simonb fail1:	wpi_stop(ifp, 1);
   3174   1.1    simonb 	return error;
   3175   1.1    simonb }
   3176   1.1    simonb 
   3177   1.1    simonb 
   3178   1.1    simonb static void
   3179   1.6  christos wpi_stop(struct ifnet *ifp, int disable)
   3180   1.1    simonb {
   3181   1.1    simonb 	struct wpi_softc *sc = ifp->if_softc;
   3182   1.1    simonb 	struct ieee80211com *ic = &sc->sc_ic;
   3183   1.1    simonb 	uint32_t tmp;
   3184   1.1    simonb 	int ac;
   3185   1.1    simonb 
   3186   1.1    simonb 	ifp->if_timer = sc->sc_tx_timer = 0;
   3187   1.1    simonb 	ifp->if_flags &= ~(IFF_RUNNING | IFF_OACTIVE);
   3188   1.1    simonb 
   3189   1.1    simonb 	ieee80211_new_state(ic, IEEE80211_S_INIT, -1);
   3190   1.1    simonb 
   3191   1.1    simonb 	/* disable interrupts */
   3192   1.1    simonb 	WPI_WRITE(sc, WPI_MASK, 0);
   3193   1.1    simonb 	WPI_WRITE(sc, WPI_INTR, WPI_INTR_MASK);
   3194   1.1    simonb 	WPI_WRITE(sc, WPI_INTR_STATUS, 0xff);
   3195   1.1    simonb 	WPI_WRITE(sc, WPI_INTR_STATUS, 0x00070000);
   3196   1.1    simonb 
   3197   1.1    simonb 	wpi_mem_lock(sc);
   3198   1.1    simonb 	wpi_mem_write(sc, WPI_MEM_MODE, 0);
   3199   1.1    simonb 	wpi_mem_unlock(sc);
   3200   1.1    simonb 
   3201   1.1    simonb 	/* reset all Tx rings */
   3202   1.1    simonb 	for (ac = 0; ac < 4; ac++)
   3203   1.1    simonb 		wpi_reset_tx_ring(sc, &sc->txq[ac]);
   3204   1.1    simonb 	wpi_reset_tx_ring(sc, &sc->cmdq);
   3205   1.1    simonb 
   3206   1.1    simonb 	/* reset Rx ring */
   3207   1.1    simonb 	wpi_reset_rx_ring(sc, &sc->rxq);
   3208  1.55  christos 
   3209   1.1    simonb 	wpi_mem_lock(sc);
   3210   1.1    simonb 	wpi_mem_write(sc, WPI_MEM_CLOCK2, 0x200);
   3211   1.1    simonb 	wpi_mem_unlock(sc);
   3212   1.1    simonb 
   3213   1.1    simonb 	DELAY(5);
   3214   1.1    simonb 
   3215   1.1    simonb 	wpi_stop_master(sc);
   3216   1.1    simonb 
   3217   1.1    simonb 	tmp = WPI_READ(sc, WPI_RESET);
   3218   1.1    simonb 	WPI_WRITE(sc, WPI_RESET, tmp | WPI_SW_RESET);
   3219   1.1    simonb }
   3220  1.33  jmcneill 
   3221  1.33  jmcneill static bool
   3222  1.46    dyoung wpi_resume(device_t dv, const pmf_qual_t *qual)
   3223  1.33  jmcneill {
   3224  1.33  jmcneill 	struct wpi_softc *sc = device_private(dv);
   3225  1.33  jmcneill 
   3226  1.33  jmcneill 	(void)wpi_reset(sc);
   3227  1.33  jmcneill 
   3228  1.33  jmcneill 	return true;
   3229  1.33  jmcneill }
   3230  1.34  degroote 
   3231  1.34  degroote /*
   3232  1.34  degroote  * Return whether or not the radio is enabled in hardware
   3233  1.34  degroote  * (i.e. the rfkill switch is "off").
   3234  1.34  degroote  */
   3235  1.34  degroote static int
   3236  1.34  degroote wpi_getrfkill(struct wpi_softc *sc)
   3237  1.34  degroote {
   3238  1.34  degroote 	uint32_t tmp;
   3239  1.34  degroote 
   3240  1.34  degroote 	wpi_mem_lock(sc);
   3241  1.34  degroote 	tmp = wpi_mem_read(sc, WPI_MEM_RFKILL);
   3242  1.34  degroote 	wpi_mem_unlock(sc);
   3243  1.34  degroote 
   3244  1.34  degroote 	return !(tmp & 0x01);
   3245  1.34  degroote }
   3246  1.34  degroote 
   3247  1.34  degroote static int
   3248  1.34  degroote wpi_sysctl_radio(SYSCTLFN_ARGS)
   3249  1.34  degroote {
   3250  1.34  degroote 	struct sysctlnode node;
   3251  1.34  degroote 	struct wpi_softc *sc;
   3252  1.34  degroote 	int val, error;
   3253  1.34  degroote 
   3254  1.34  degroote 	node = *rnode;
   3255  1.34  degroote 	sc = (struct wpi_softc *)node.sysctl_data;
   3256  1.34  degroote 
   3257  1.34  degroote 	val = !wpi_getrfkill(sc);
   3258  1.34  degroote 
   3259  1.34  degroote 	node.sysctl_data = &val;
   3260  1.34  degroote 	error = sysctl_lookup(SYSCTLFN_CALL(&node));
   3261  1.34  degroote 
   3262  1.34  degroote 	if (error || newp == NULL)
   3263  1.34  degroote 		return error;
   3264  1.34  degroote 
   3265  1.34  degroote 	return 0;
   3266  1.34  degroote }
   3267  1.34  degroote 
   3268  1.34  degroote static void
   3269  1.34  degroote wpi_sysctlattach(struct wpi_softc *sc)
   3270  1.34  degroote {
   3271  1.34  degroote 	int rc;
   3272  1.34  degroote 	const struct sysctlnode *rnode;
   3273  1.34  degroote 	const struct sysctlnode *cnode;
   3274  1.34  degroote 
   3275  1.34  degroote 	struct sysctllog **clog = &sc->sc_sysctllog;
   3276  1.34  degroote 
   3277  1.34  degroote 	if ((rc = sysctl_createv(clog, 0, NULL, &rnode,
   3278  1.34  degroote 	    CTLFLAG_PERMANENT, CTLTYPE_NODE, device_xname(sc->sc_dev),
   3279  1.34  degroote 	    SYSCTL_DESCR("wpi controls and statistics"),
   3280  1.57     pooka 	    NULL, 0, NULL, 0, CTL_HW, CTL_CREATE, CTL_EOL)) != 0)
   3281  1.34  degroote 		goto err;
   3282  1.34  degroote 
   3283  1.34  degroote 	if ((rc = sysctl_createv(clog, 0, &rnode, &cnode,
   3284  1.34  degroote 	    CTLFLAG_PERMANENT, CTLTYPE_INT, "radio",
   3285  1.34  degroote 	    SYSCTL_DESCR("radio transmitter switch state (0=off, 1=on)"),
   3286  1.52       dsl 	    wpi_sysctl_radio, 0, (void *)sc, 0, CTL_CREATE, CTL_EOL)) != 0)
   3287  1.34  degroote 		goto err;
   3288  1.34  degroote 
   3289  1.34  degroote #ifdef WPI_DEBUG
   3290  1.34  degroote 	/* control debugging printfs */
   3291  1.34  degroote 	if ((rc = sysctl_createv(clog, 0, &rnode, &cnode,
   3292  1.34  degroote 	    CTLFLAG_PERMANENT|CTLFLAG_READWRITE, CTLTYPE_INT,
   3293  1.34  degroote 	    "debug", SYSCTL_DESCR("Enable debugging output"),
   3294  1.34  degroote 	    NULL, 0, &wpi_debug, 0, CTL_CREATE, CTL_EOL)) != 0)
   3295  1.34  degroote 		goto err;
   3296  1.34  degroote #endif
   3297  1.34  degroote 
   3298  1.34  degroote 	return;
   3299  1.34  degroote err:
   3300  1.34  degroote 	aprint_error("%s: sysctl_createv failed (rc = %d)\n", __func__, rc);
   3301  1.34  degroote }
   3302