if_zyd.c revision 223537
11590Srgrimes/*	$OpenBSD: if_zyd.c,v 1.52 2007/02/11 00:08:04 jsg Exp $	*/
21590Srgrimes/*	$NetBSD: if_zyd.c,v 1.7 2007/06/21 04:04:29 kiyohara Exp $	*/
31590Srgrimes/*	$FreeBSD: head/sys/dev/usb/wlan/if_zyd.c 223537 2011-06-25 15:46:24Z hselasky $	*/
41590Srgrimes
51590Srgrimes/*-
61590Srgrimes * Copyright (c) 2006 by Damien Bergamini <damien.bergamini@free.fr>
71590Srgrimes * Copyright (c) 2006 by Florian Stoehr <ich@florian-stoehr.de>
81590Srgrimes *
91590Srgrimes * Permission to use, copy, modify, and distribute this software for any
101590Srgrimes * purpose with or without fee is hereby granted, provided that the above
111590Srgrimes * copyright notice and this permission notice appear in all copies.
121590Srgrimes *
131590Srgrimes * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES
141590Srgrimes * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF
151590Srgrimes * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR
161590Srgrimes * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
171590Srgrimes * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN
181590Srgrimes * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF
191590Srgrimes * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
201590Srgrimes */
211590Srgrimes
221590Srgrimes#include <sys/cdefs.h>
231590Srgrimes__FBSDID("$FreeBSD: head/sys/dev/usb/wlan/if_zyd.c 223537 2011-06-25 15:46:24Z hselasky $");
241590Srgrimes
251590Srgrimes/*
261590Srgrimes * ZyDAS ZD1211/ZD1211B USB WLAN driver.
271590Srgrimes */
281590Srgrimes
291590Srgrimes#include <sys/param.h>
301590Srgrimes#include <sys/sockio.h>
3127270Scharnier#include <sys/sysctl.h>
321590Srgrimes#include <sys/lock.h>
331590Srgrimes#include <sys/mutex.h>
341590Srgrimes#include <sys/condvar.h>
351590Srgrimes#include <sys/mbuf.h>
361590Srgrimes#include <sys/kernel.h>
3727270Scharnier#include <sys/socket.h>
381590Srgrimes#include <sys/systm.h>
3927270Scharnier#include <sys/malloc.h>
401590Srgrimes#include <sys/module.h>
4199112Sobrien#include <sys/bus.h>
4299112Sobrien#include <sys/endian.h>
431590Srgrimes#include <sys/kdb.h>
441590Srgrimes
451590Srgrimes#include <machine/bus.h>
4627270Scharnier#include <machine/resource.h>
471590Srgrimes#include <sys/rman.h>
481590Srgrimes
4918725Sjkh#include <net/bpf.h>
5027270Scharnier#include <net/if.h>
5113678Swosch#include <net/if_arp.h>
5227270Scharnier#include <net/ethernet.h>
531590Srgrimes#include <net/if_dl.h>
54102944Sdwmalone#include <net/if_media.h>
5592920Simp#include <net/if_types.h>
5627270Scharnier
5727270Scharnier#ifdef INET
5899143Sjmallett#include <netinet/in.h>
591590Srgrimes#include <netinet/in_systm.h>
6099143Sjmallett#include <netinet/in_var.h>
611590Srgrimes#include <netinet/if_ether.h>
6249123Sgreen#include <netinet/ip.h>
63102944Sdwmalone#endif
64102944Sdwmalone
651590Srgrimes#include <net80211/ieee80211_var.h>
661590Srgrimes#include <net80211/ieee80211_regdomain.h>
671590Srgrimes#include <net80211/ieee80211_radiotap.h>
681590Srgrimes#include <net80211/ieee80211_ratectl.h>
691590Srgrimes
701590Srgrimes#include <dev/usb/usb.h>
711590Srgrimes#include <dev/usb/usbdi.h>
7249123Sgreen#include <dev/usb/usbdi_util.h>
7349123Sgreen#include "usbdevs.h"
7449123Sgreen
7549123Sgreen#include <dev/usb/wlan/if_zydreg.h>
7649123Sgreen#include <dev/usb/wlan/if_zydfw.h>
7749123Sgreen
781590Srgrimes#ifdef USB_DEBUG
791590Srgrimesstatic int zyd_debug = 0;
801590Srgrimes
811590SrgrimesSYSCTL_NODE(_hw_usb, OID_AUTO, zyd, CTLFLAG_RW, 0, "USB zyd");
821590SrgrimesSYSCTL_INT(_hw_usb_zyd, OID_AUTO, debug, CTLFLAG_RW, &zyd_debug, 0,
831590Srgrimes    "zyd debug level");
841590Srgrimes
851590Srgrimesenum {
861590Srgrimes	ZYD_DEBUG_XMIT		= 0x00000001,	/* basic xmit operation */
871590Srgrimes	ZYD_DEBUG_RECV		= 0x00000002,	/* basic recv operation */
881590Srgrimes	ZYD_DEBUG_RESET		= 0x00000004,	/* reset processing */
8927270Scharnier	ZYD_DEBUG_INIT		= 0x00000008,	/* device init */
901590Srgrimes	ZYD_DEBUG_TX_PROC	= 0x00000010,	/* tx ISR proc */
9199143Sjmallett	ZYD_DEBUG_RX_PROC	= 0x00000020,	/* rx ISR proc */
921590Srgrimes	ZYD_DEBUG_STATE		= 0x00000040,	/* 802.11 state transitions */
931590Srgrimes	ZYD_DEBUG_STAT		= 0x00000080,	/* statistic */
9499143Sjmallett	ZYD_DEBUG_FW		= 0x00000100,	/* firmware */
9599143Sjmallett	ZYD_DEBUG_CMD		= 0x00000200,	/* fw commands */
9666590Sru	ZYD_DEBUG_ANY		= 0xffffffff
9718725Sjkh};
9818725Sjkh#define	DPRINTF(sc, m, fmt, ...) do {				\
9918725Sjkh	if (zyd_debug & (m))					\
10027270Scharnier		printf("%s: " fmt, __func__, ## __VA_ARGS__);	\
10127270Scharnier} while (0)
10218725Sjkh#else
10366590Sru#define	DPRINTF(sc, m, fmt, ...) do {				\
10418725Sjkh	(void) sc;						\
10518725Sjkh} while (0)
1061590Srgrimes#endif
1071590Srgrimes
1081590Srgrimes#define	zyd_do_request(sc,req,data) \
10913678Swosch    usbd_do_request_flags((sc)->sc_udev, &(sc)->sc_mtx, req, data, 0, NULL, 5000)
11013678Swosch
11113678Swoschstatic device_probe_t zyd_match;
11299143Sjmallettstatic device_attach_t zyd_attach;
11313678Swoschstatic device_detach_t zyd_detach;
11499143Sjmallett
11527270Scharnierstatic usb_callback_t zyd_intr_read_callback;
1161590Srgrimesstatic usb_callback_t zyd_intr_write_callback;
11799143Sjmallettstatic usb_callback_t zyd_bulk_read_callback;
1181590Srgrimesstatic usb_callback_t zyd_bulk_write_callback;
1191590Srgrimes
1201590Srgrimesstatic struct ieee80211vap *zyd_vap_create(struct ieee80211com *,
1211590Srgrimes		    const char name[IFNAMSIZ], int unit, int opmode,
1221590Srgrimes		    int flags, const uint8_t bssid[IEEE80211_ADDR_LEN],
12349123Sgreen		    const uint8_t mac[IEEE80211_ADDR_LEN]);
12449123Sgreenstatic void	zyd_vap_delete(struct ieee80211vap *);
12549123Sgreenstatic void	zyd_tx_free(struct zyd_tx_data *, int);
12649123Sgreenstatic void	zyd_setup_tx_list(struct zyd_softc *);
12749123Sgreenstatic void	zyd_unsetup_tx_list(struct zyd_softc *);
12849123Sgreenstatic int	zyd_newstate(struct ieee80211vap *, enum ieee80211_state, int);
1291590Srgrimesstatic int	zyd_cmd(struct zyd_softc *, uint16_t, const void *, int,
1301590Srgrimes		    void *, int, int);
13149123Sgreenstatic int	zyd_read16(struct zyd_softc *, uint16_t, uint16_t *);
13249123Sgreenstatic int	zyd_read32(struct zyd_softc *, uint16_t, uint32_t *);
13349123Sgreenstatic int	zyd_write16(struct zyd_softc *, uint16_t, uint16_t);
13499143Sjmallettstatic int	zyd_write32(struct zyd_softc *, uint16_t, uint32_t);
1351590Srgrimesstatic int	zyd_rfwrite(struct zyd_softc *, uint32_t);
1361590Srgrimesstatic int	zyd_lock_phy(struct zyd_softc *);
1371590Srgrimesstatic int	zyd_unlock_phy(struct zyd_softc *);
13827270Scharnierstatic int	zyd_rf_attach(struct zyd_softc *, uint8_t);
13999143Sjmallettstatic const char *zyd_rf_name(uint8_t);
14027270Scharnierstatic int	zyd_hw_init(struct zyd_softc *);
14149123Sgreenstatic int	zyd_read_pod(struct zyd_softc *);
14227270Scharnierstatic int	zyd_read_eeprom(struct zyd_softc *);
14327270Scharnierstatic int	zyd_get_macaddr(struct zyd_softc *);
14427270Scharnierstatic int	zyd_set_macaddr(struct zyd_softc *, const uint8_t *);
14527270Scharnierstatic int	zyd_set_bssid(struct zyd_softc *, const uint8_t *);
146102944Sdwmalonestatic int	zyd_switch_radio(struct zyd_softc *, int);
1471590Srgrimesstatic int	zyd_set_led(struct zyd_softc *, int, int);
148102944Sdwmalonestatic void	zyd_set_multi(struct zyd_softc *);
149102944Sdwmalonestatic void	zyd_update_mcast(struct ifnet *);
1501590Srgrimesstatic int	zyd_set_rxfilter(struct zyd_softc *);
1511590Srgrimesstatic void	zyd_set_chan(struct zyd_softc *, struct ieee80211_channel *);
1521590Srgrimesstatic int	zyd_set_beacon_interval(struct zyd_softc *, int);
1531590Srgrimesstatic void	zyd_rx_data(struct usb_xfer *, int, uint16_t);
1541590Srgrimesstatic int	zyd_tx_start(struct zyd_softc *, struct mbuf *,
1551590Srgrimes		    struct ieee80211_node *);
1561590Srgrimesstatic void	zyd_start(struct ifnet *);
1571590Srgrimesstatic int	zyd_raw_xmit(struct ieee80211_node *, struct mbuf *,
1581590Srgrimes		    const struct ieee80211_bpf_params *);
1591590Srgrimesstatic int	zyd_ioctl(struct ifnet *, u_long, caddr_t);
1601590Srgrimesstatic void	zyd_init_locked(struct zyd_softc *);
1611590Srgrimesstatic void	zyd_init(void *);
1621590Srgrimesstatic void	zyd_stop(struct zyd_softc *);
1631590Srgrimesstatic int	zyd_loadfirmware(struct zyd_softc *);
1641590Srgrimesstatic void	zyd_scan_start(struct ieee80211com *);
1651590Srgrimesstatic void	zyd_scan_end(struct ieee80211com *);
1661590Srgrimesstatic void	zyd_set_channel(struct ieee80211com *);
1671590Srgrimesstatic int	zyd_rfmd_init(struct zyd_rf *);
1681590Srgrimesstatic int	zyd_rfmd_switch_radio(struct zyd_rf *, int);
1691590Srgrimesstatic int	zyd_rfmd_set_channel(struct zyd_rf *, uint8_t);
170static int	zyd_al2230_init(struct zyd_rf *);
171static int	zyd_al2230_switch_radio(struct zyd_rf *, int);
172static int	zyd_al2230_set_channel(struct zyd_rf *, uint8_t);
173static int	zyd_al2230_set_channel_b(struct zyd_rf *, uint8_t);
174static int	zyd_al2230_init_b(struct zyd_rf *);
175static int	zyd_al7230B_init(struct zyd_rf *);
176static int	zyd_al7230B_switch_radio(struct zyd_rf *, int);
177static int	zyd_al7230B_set_channel(struct zyd_rf *, uint8_t);
178static int	zyd_al2210_init(struct zyd_rf *);
179static int	zyd_al2210_switch_radio(struct zyd_rf *, int);
180static int	zyd_al2210_set_channel(struct zyd_rf *, uint8_t);
181static int	zyd_gct_init(struct zyd_rf *);
182static int	zyd_gct_switch_radio(struct zyd_rf *, int);
183static int	zyd_gct_set_channel(struct zyd_rf *, uint8_t);
184static int	zyd_gct_mode(struct zyd_rf *);
185static int	zyd_gct_set_channel_synth(struct zyd_rf *, int, int);
186static int	zyd_gct_write(struct zyd_rf *, uint16_t);
187static int	zyd_gct_txgain(struct zyd_rf *, uint8_t);
188static int	zyd_maxim2_init(struct zyd_rf *);
189static int	zyd_maxim2_switch_radio(struct zyd_rf *, int);
190static int	zyd_maxim2_set_channel(struct zyd_rf *, uint8_t);
191
192static const struct zyd_phy_pair zyd_def_phy[] = ZYD_DEF_PHY;
193static const struct zyd_phy_pair zyd_def_phyB[] = ZYD_DEF_PHYB;
194
195/* various supported device vendors/products */
196#define ZYD_ZD1211	0
197#define ZYD_ZD1211B	1
198
199#define	ZYD_ZD1211_DEV(v,p)	\
200	{ USB_VPI(USB_VENDOR_##v, USB_PRODUCT_##v##_##p, ZYD_ZD1211) }
201#define	ZYD_ZD1211B_DEV(v,p)	\
202	{ USB_VPI(USB_VENDOR_##v, USB_PRODUCT_##v##_##p, ZYD_ZD1211B) }
203static const STRUCT_USB_HOST_ID zyd_devs[] = {
204	/* ZYD_ZD1211 */
205	ZYD_ZD1211_DEV(3COM2, 3CRUSB10075),
206	ZYD_ZD1211_DEV(ABOCOM, WL54),
207	ZYD_ZD1211_DEV(ASUS, WL159G),
208	ZYD_ZD1211_DEV(CYBERTAN, TG54USB),
209	ZYD_ZD1211_DEV(DRAYTEK, VIGOR550),
210	ZYD_ZD1211_DEV(PLANEX2, GWUS54GD),
211	ZYD_ZD1211_DEV(PLANEX2, GWUS54GZL),
212	ZYD_ZD1211_DEV(PLANEX3, GWUS54GZ),
213	ZYD_ZD1211_DEV(PLANEX3, GWUS54MINI),
214	ZYD_ZD1211_DEV(SAGEM, XG760A),
215	ZYD_ZD1211_DEV(SENAO, NUB8301),
216	ZYD_ZD1211_DEV(SITECOMEU, WL113),
217	ZYD_ZD1211_DEV(SWEEX, ZD1211),
218	ZYD_ZD1211_DEV(TEKRAM, QUICKWLAN),
219	ZYD_ZD1211_DEV(TEKRAM, ZD1211_1),
220	ZYD_ZD1211_DEV(TEKRAM, ZD1211_2),
221	ZYD_ZD1211_DEV(TWINMOS, G240),
222	ZYD_ZD1211_DEV(UMEDIA, ALL0298V2),
223	ZYD_ZD1211_DEV(UMEDIA, TEW429UB_A),
224	ZYD_ZD1211_DEV(UMEDIA, TEW429UB),
225	ZYD_ZD1211_DEV(WISTRONNEWEB, UR055G),
226	ZYD_ZD1211_DEV(ZCOM, ZD1211),
227	ZYD_ZD1211_DEV(ZYDAS, ZD1211),
228	ZYD_ZD1211_DEV(ZYXEL, AG225H),
229	ZYD_ZD1211_DEV(ZYXEL, ZYAIRG220),
230	ZYD_ZD1211_DEV(ZYXEL, G200V2),
231	/* ZYD_ZD1211B */
232	ZYD_ZD1211B_DEV(ACCTON, SMCWUSBG),
233	ZYD_ZD1211B_DEV(ACCTON, ZD1211B),
234	ZYD_ZD1211B_DEV(ASUS, A9T_WIFI),
235	ZYD_ZD1211B_DEV(BELKIN, F5D7050_V4000),
236	ZYD_ZD1211B_DEV(BELKIN, ZD1211B),
237	ZYD_ZD1211B_DEV(CISCOLINKSYS, WUSBF54G),
238	ZYD_ZD1211B_DEV(FIBERLINE, WL430U),
239	ZYD_ZD1211B_DEV(MELCO, KG54L),
240	ZYD_ZD1211B_DEV(PHILIPS, SNU5600),
241	ZYD_ZD1211B_DEV(PLANEX2, GW_US54GXS),
242	ZYD_ZD1211B_DEV(SAGEM, XG76NA),
243	ZYD_ZD1211B_DEV(SITECOMEU, ZD1211B),
244	ZYD_ZD1211B_DEV(UMEDIA, TEW429UBC1),
245	ZYD_ZD1211B_DEV(USR, USR5423),
246	ZYD_ZD1211B_DEV(VTECH, ZD1211B),
247	ZYD_ZD1211B_DEV(ZCOM, ZD1211B),
248	ZYD_ZD1211B_DEV(ZYDAS, ZD1211B),
249	ZYD_ZD1211B_DEV(ZYXEL, M202),
250	ZYD_ZD1211B_DEV(ZYXEL, G202),
251	ZYD_ZD1211B_DEV(ZYXEL, G220V2)
252};
253
254static const struct usb_config zyd_config[ZYD_N_TRANSFER] = {
255	[ZYD_BULK_WR] = {
256		.type = UE_BULK,
257		.endpoint = UE_ADDR_ANY,
258		.direction = UE_DIR_OUT,
259		.bufsize = ZYD_MAX_TXBUFSZ,
260		.flags = {.pipe_bof = 1,.force_short_xfer = 1,},
261		.callback = zyd_bulk_write_callback,
262		.ep_index = 0,
263		.timeout = 10000,	/* 10 seconds */
264	},
265	[ZYD_BULK_RD] = {
266		.type = UE_BULK,
267		.endpoint = UE_ADDR_ANY,
268		.direction = UE_DIR_IN,
269		.bufsize = ZYX_MAX_RXBUFSZ,
270		.flags = {.pipe_bof = 1,.short_xfer_ok = 1,},
271		.callback = zyd_bulk_read_callback,
272		.ep_index = 0,
273	},
274	[ZYD_INTR_WR] = {
275		.type = UE_BULK_INTR,
276		.endpoint = UE_ADDR_ANY,
277		.direction = UE_DIR_OUT,
278		.bufsize = sizeof(struct zyd_cmd),
279		.flags = {.pipe_bof = 1,.force_short_xfer = 1,},
280		.callback = zyd_intr_write_callback,
281		.timeout = 1000,	/* 1 second */
282		.ep_index = 1,
283	},
284	[ZYD_INTR_RD] = {
285		.type = UE_INTERRUPT,
286		.endpoint = UE_ADDR_ANY,
287		.direction = UE_DIR_IN,
288		.bufsize = sizeof(struct zyd_cmd),
289		.flags = {.pipe_bof = 1,.short_xfer_ok = 1,},
290		.callback = zyd_intr_read_callback,
291	},
292};
293#define zyd_read16_m(sc, val, data)	do {				\
294	error = zyd_read16(sc, val, data);				\
295	if (error != 0)							\
296		goto fail;						\
297} while (0)
298#define zyd_write16_m(sc, val, data)	do {				\
299	error = zyd_write16(sc, val, data);				\
300	if (error != 0)							\
301		goto fail;						\
302} while (0)
303#define zyd_read32_m(sc, val, data)	do {				\
304	error = zyd_read32(sc, val, data);				\
305	if (error != 0)							\
306		goto fail;						\
307} while (0)
308#define zyd_write32_m(sc, val, data)	do {				\
309	error = zyd_write32(sc, val, data);				\
310	if (error != 0)							\
311		goto fail;						\
312} while (0)
313
314static int
315zyd_match(device_t dev)
316{
317	struct usb_attach_arg *uaa = device_get_ivars(dev);
318
319	if (uaa->usb_mode != USB_MODE_HOST)
320		return (ENXIO);
321	if (uaa->info.bConfigIndex != ZYD_CONFIG_INDEX)
322		return (ENXIO);
323	if (uaa->info.bIfaceIndex != ZYD_IFACE_INDEX)
324		return (ENXIO);
325
326	return (usbd_lookup_id_by_uaa(zyd_devs, sizeof(zyd_devs), uaa));
327}
328
329static int
330zyd_attach(device_t dev)
331{
332	struct usb_attach_arg *uaa = device_get_ivars(dev);
333	struct zyd_softc *sc = device_get_softc(dev);
334	struct ifnet *ifp;
335	struct ieee80211com *ic;
336	uint8_t iface_index, bands;
337	int error;
338
339	if (uaa->info.bcdDevice < 0x4330) {
340		device_printf(dev, "device version mismatch: 0x%X "
341		    "(only >= 43.30 supported)\n",
342		    uaa->info.bcdDevice);
343		return (EINVAL);
344	}
345
346	device_set_usb_desc(dev);
347	sc->sc_dev = dev;
348	sc->sc_udev = uaa->device;
349	sc->sc_macrev = USB_GET_DRIVER_INFO(uaa);
350
351	mtx_init(&sc->sc_mtx, device_get_nameunit(sc->sc_dev),
352	    MTX_NETWORK_LOCK, MTX_DEF);
353	STAILQ_INIT(&sc->sc_rqh);
354
355	iface_index = ZYD_IFACE_INDEX;
356	error = usbd_transfer_setup(uaa->device,
357	    &iface_index, sc->sc_xfer, zyd_config,
358	    ZYD_N_TRANSFER, sc, &sc->sc_mtx);
359	if (error) {
360		device_printf(dev, "could not allocate USB transfers, "
361		    "err=%s\n", usbd_errstr(error));
362		goto detach;
363	}
364
365	ZYD_LOCK(sc);
366	if ((error = zyd_get_macaddr(sc)) != 0) {
367		device_printf(sc->sc_dev, "could not read EEPROM\n");
368		ZYD_UNLOCK(sc);
369		goto detach;
370	}
371	ZYD_UNLOCK(sc);
372
373	ifp = sc->sc_ifp = if_alloc(IFT_IEEE80211);
374	if (ifp == NULL) {
375		device_printf(sc->sc_dev, "can not if_alloc()\n");
376		goto detach;
377	}
378	ifp->if_softc = sc;
379	if_initname(ifp, "zyd", device_get_unit(sc->sc_dev));
380	ifp->if_flags = IFF_BROADCAST | IFF_SIMPLEX | IFF_MULTICAST;
381	ifp->if_init = zyd_init;
382	ifp->if_ioctl = zyd_ioctl;
383	ifp->if_start = zyd_start;
384	IFQ_SET_MAXLEN(&ifp->if_snd, ifqmaxlen);
385	IFQ_SET_READY(&ifp->if_snd);
386
387	ic = ifp->if_l2com;
388	ic->ic_ifp = ifp;
389	ic->ic_phytype = IEEE80211_T_OFDM;	/* not only, but not used */
390	ic->ic_opmode = IEEE80211_M_STA;
391
392	/* set device capabilities */
393	ic->ic_caps =
394		  IEEE80211_C_STA		/* station mode */
395		| IEEE80211_C_MONITOR		/* monitor mode */
396		| IEEE80211_C_SHPREAMBLE	/* short preamble supported */
397	        | IEEE80211_C_SHSLOT		/* short slot time supported */
398		| IEEE80211_C_BGSCAN		/* capable of bg scanning */
399	        | IEEE80211_C_WPA		/* 802.11i */
400		;
401
402	bands = 0;
403	setbit(&bands, IEEE80211_MODE_11B);
404	setbit(&bands, IEEE80211_MODE_11G);
405	ieee80211_init_channels(ic, NULL, &bands);
406
407	ieee80211_ifattach(ic, sc->sc_bssid);
408	ic->ic_raw_xmit = zyd_raw_xmit;
409	ic->ic_scan_start = zyd_scan_start;
410	ic->ic_scan_end = zyd_scan_end;
411	ic->ic_set_channel = zyd_set_channel;
412
413	ic->ic_vap_create = zyd_vap_create;
414	ic->ic_vap_delete = zyd_vap_delete;
415	ic->ic_update_mcast = zyd_update_mcast;
416	ic->ic_update_promisc = zyd_update_mcast;
417
418	ieee80211_radiotap_attach(ic,
419	    &sc->sc_txtap.wt_ihdr, sizeof(sc->sc_txtap),
420		ZYD_TX_RADIOTAP_PRESENT,
421	    &sc->sc_rxtap.wr_ihdr, sizeof(sc->sc_rxtap),
422		ZYD_RX_RADIOTAP_PRESENT);
423
424	if (bootverbose)
425		ieee80211_announce(ic);
426
427	return (0);
428
429detach:
430	zyd_detach(dev);
431	return (ENXIO);			/* failure */
432}
433
434static int
435zyd_detach(device_t dev)
436{
437	struct zyd_softc *sc = device_get_softc(dev);
438	struct ifnet *ifp = sc->sc_ifp;
439	struct ieee80211com *ic;
440
441	/* stop all USB transfers */
442	usbd_transfer_unsetup(sc->sc_xfer, ZYD_N_TRANSFER);
443
444	/* free TX list, if any */
445	zyd_unsetup_tx_list(sc);
446
447	if (ifp) {
448		ic = ifp->if_l2com;
449		ieee80211_ifdetach(ic);
450		if_free(ifp);
451	}
452	mtx_destroy(&sc->sc_mtx);
453
454	return (0);
455}
456
457static struct ieee80211vap *
458zyd_vap_create(struct ieee80211com *ic,
459	const char name[IFNAMSIZ], int unit, int opmode, int flags,
460	const uint8_t bssid[IEEE80211_ADDR_LEN],
461	const uint8_t mac[IEEE80211_ADDR_LEN])
462{
463	struct zyd_vap *zvp;
464	struct ieee80211vap *vap;
465
466	if (!TAILQ_EMPTY(&ic->ic_vaps))		/* only one at a time */
467		return (NULL);
468	zvp = (struct zyd_vap *) malloc(sizeof(struct zyd_vap),
469	    M_80211_VAP, M_NOWAIT | M_ZERO);
470	if (zvp == NULL)
471		return (NULL);
472	vap = &zvp->vap;
473	/* enable s/w bmiss handling for sta mode */
474	ieee80211_vap_setup(ic, vap, name, unit, opmode,
475	    flags | IEEE80211_CLONE_NOBEACONS, bssid, mac);
476
477	/* override state transition machine */
478	zvp->newstate = vap->iv_newstate;
479	vap->iv_newstate = zyd_newstate;
480
481	ieee80211_ratectl_init(vap);
482	ieee80211_ratectl_setinterval(vap, 1000 /* 1 sec */);
483
484	/* complete setup */
485	ieee80211_vap_attach(vap, ieee80211_media_change,
486	    ieee80211_media_status);
487	ic->ic_opmode = opmode;
488	return (vap);
489}
490
491static void
492zyd_vap_delete(struct ieee80211vap *vap)
493{
494	struct zyd_vap *zvp = ZYD_VAP(vap);
495
496	ieee80211_ratectl_deinit(vap);
497	ieee80211_vap_detach(vap);
498	free(zvp, M_80211_VAP);
499}
500
501static void
502zyd_tx_free(struct zyd_tx_data *data, int txerr)
503{
504	struct zyd_softc *sc = data->sc;
505
506	if (data->m != NULL) {
507		if (data->m->m_flags & M_TXCB)
508			ieee80211_process_callback(data->ni, data->m,
509			    txerr ? ETIMEDOUT : 0);
510		m_freem(data->m);
511		data->m = NULL;
512
513		ieee80211_free_node(data->ni);
514		data->ni = NULL;
515	}
516	STAILQ_INSERT_TAIL(&sc->tx_free, data, next);
517	sc->tx_nfree++;
518}
519
520static void
521zyd_setup_tx_list(struct zyd_softc *sc)
522{
523	struct zyd_tx_data *data;
524	int i;
525
526	sc->tx_nfree = 0;
527	STAILQ_INIT(&sc->tx_q);
528	STAILQ_INIT(&sc->tx_free);
529
530	for (i = 0; i < ZYD_TX_LIST_CNT; i++) {
531		data = &sc->tx_data[i];
532
533		data->sc = sc;
534		STAILQ_INSERT_TAIL(&sc->tx_free, data, next);
535		sc->tx_nfree++;
536	}
537}
538
539static void
540zyd_unsetup_tx_list(struct zyd_softc *sc)
541{
542	struct zyd_tx_data *data;
543	int i;
544
545	/* make sure any subsequent use of the queues will fail */
546	sc->tx_nfree = 0;
547	STAILQ_INIT(&sc->tx_q);
548	STAILQ_INIT(&sc->tx_free);
549
550	/* free up all node references and mbufs */
551	for (i = 0; i < ZYD_TX_LIST_CNT; i++) {
552		data = &sc->tx_data[i];
553
554		if (data->m != NULL) {
555			m_freem(data->m);
556			data->m = NULL;
557		}
558		if (data->ni != NULL) {
559			ieee80211_free_node(data->ni);
560			data->ni = NULL;
561		}
562	}
563}
564
565static int
566zyd_newstate(struct ieee80211vap *vap, enum ieee80211_state nstate, int arg)
567{
568	struct zyd_vap *zvp = ZYD_VAP(vap);
569	struct ieee80211com *ic = vap->iv_ic;
570	struct zyd_softc *sc = ic->ic_ifp->if_softc;
571	int error;
572
573	DPRINTF(sc, ZYD_DEBUG_STATE, "%s: %s -> %s\n", __func__,
574	    ieee80211_state_name[vap->iv_state],
575	    ieee80211_state_name[nstate]);
576
577	IEEE80211_UNLOCK(ic);
578	ZYD_LOCK(sc);
579	switch (nstate) {
580	case IEEE80211_S_AUTH:
581		zyd_set_chan(sc, ic->ic_curchan);
582		break;
583	case IEEE80211_S_RUN:
584		if (vap->iv_opmode == IEEE80211_M_MONITOR)
585			break;
586
587		/* turn link LED on */
588		error = zyd_set_led(sc, ZYD_LED1, 1);
589		if (error != 0)
590			break;
591
592		/* make data LED blink upon Tx */
593		zyd_write32_m(sc, sc->sc_fwbase + ZYD_FW_LINK_STATUS, 1);
594
595		IEEE80211_ADDR_COPY(sc->sc_bssid, vap->iv_bss->ni_bssid);
596		zyd_set_bssid(sc, sc->sc_bssid);
597		break;
598	default:
599		break;
600	}
601fail:
602	ZYD_UNLOCK(sc);
603	IEEE80211_LOCK(ic);
604	return (zvp->newstate(vap, nstate, arg));
605}
606
607/*
608 * Callback handler for interrupt transfer
609 */
610static void
611zyd_intr_read_callback(struct usb_xfer *xfer, usb_error_t error)
612{
613	struct zyd_softc *sc = usbd_xfer_softc(xfer);
614	struct ifnet *ifp = sc->sc_ifp;
615	struct ieee80211com *ic = ifp->if_l2com;
616	struct ieee80211vap *vap = TAILQ_FIRST(&ic->ic_vaps);
617	struct ieee80211_node *ni;
618	struct zyd_cmd *cmd = &sc->sc_ibuf;
619	struct usb_page_cache *pc;
620	int datalen;
621	int actlen;
622
623	usbd_xfer_status(xfer, &actlen, NULL, NULL, NULL);
624
625	switch (USB_GET_STATE(xfer)) {
626	case USB_ST_TRANSFERRED:
627		pc = usbd_xfer_get_frame(xfer, 0);
628		usbd_copy_out(pc, 0, cmd, sizeof(*cmd));
629
630		switch (le16toh(cmd->code)) {
631		case ZYD_NOTIF_RETRYSTATUS:
632		{
633			struct zyd_notif_retry *retry =
634			    (struct zyd_notif_retry *)cmd->data;
635
636			DPRINTF(sc, ZYD_DEBUG_TX_PROC,
637			    "retry intr: rate=0x%x addr=%s count=%d (0x%x)\n",
638			    le16toh(retry->rate), ether_sprintf(retry->macaddr),
639			    le16toh(retry->count)&0xff, le16toh(retry->count));
640
641			/*
642			 * Find the node to which the packet was sent and
643			 * update its retry statistics.  In BSS mode, this node
644			 * is the AP we're associated to so no lookup is
645			 * actually needed.
646			 */
647			ni = ieee80211_find_txnode(vap, retry->macaddr);
648			if (ni != NULL) {
649				int retrycnt =
650				    (int)(le16toh(retry->count) & 0xff);
651
652				ieee80211_ratectl_tx_complete(vap, ni,
653				    IEEE80211_RATECTL_TX_FAILURE,
654				    &retrycnt, NULL);
655				ieee80211_free_node(ni);
656			}
657			if (le16toh(retry->count) & 0x100)
658				ifp->if_oerrors++;	/* too many retries */
659			break;
660		}
661		case ZYD_NOTIF_IORD:
662		{
663			struct zyd_rq *rqp;
664
665			if (le16toh(*(uint16_t *)cmd->data) == ZYD_CR_INTERRUPT)
666				break;	/* HMAC interrupt */
667
668			datalen = actlen - sizeof(cmd->code);
669			datalen -= 2;	/* XXX: padding? */
670
671			STAILQ_FOREACH(rqp, &sc->sc_rqh, rq) {
672				int i, cnt;
673
674				if (rqp->olen != datalen)
675					continue;
676				cnt = rqp->olen / sizeof(struct zyd_pair);
677				for (i = 0; i < cnt; i++) {
678					if (*(((const uint16_t *)rqp->idata) + i) !=
679					    (((struct zyd_pair *)cmd->data) + i)->reg)
680						break;
681				}
682				if (i != cnt)
683					continue;
684				/* copy answer into caller-supplied buffer */
685				bcopy(cmd->data, rqp->odata, rqp->olen);
686				DPRINTF(sc, ZYD_DEBUG_CMD,
687				    "command %p complete, data = %*D \n",
688				    rqp, rqp->olen, rqp->odata, ":");
689				wakeup(rqp);	/* wakeup caller */
690				break;
691			}
692			if (rqp == NULL) {
693				device_printf(sc->sc_dev,
694				    "unexpected IORD notification %*D\n",
695				    datalen, cmd->data, ":");
696			}
697			break;
698		}
699		default:
700			device_printf(sc->sc_dev, "unknown notification %x\n",
701			    le16toh(cmd->code));
702		}
703
704		/* FALLTHROUGH */
705	case USB_ST_SETUP:
706tr_setup:
707		usbd_xfer_set_frame_len(xfer, 0, usbd_xfer_max_len(xfer));
708		usbd_transfer_submit(xfer);
709		break;
710
711	default:			/* Error */
712		DPRINTF(sc, ZYD_DEBUG_CMD, "error = %s\n",
713		    usbd_errstr(error));
714
715		if (error != USB_ERR_CANCELLED) {
716			/* try to clear stall first */
717			usbd_xfer_set_stall(xfer);
718			goto tr_setup;
719		}
720		break;
721	}
722}
723
724static void
725zyd_intr_write_callback(struct usb_xfer *xfer, usb_error_t error)
726{
727	struct zyd_softc *sc = usbd_xfer_softc(xfer);
728	struct zyd_rq *rqp, *cmd;
729	struct usb_page_cache *pc;
730
731	switch (USB_GET_STATE(xfer)) {
732	case USB_ST_TRANSFERRED:
733		cmd = usbd_xfer_get_priv(xfer);
734		DPRINTF(sc, ZYD_DEBUG_CMD, "command %p transferred\n", cmd);
735		STAILQ_FOREACH(rqp, &sc->sc_rqh, rq) {
736			/* Ensure the cached rq pointer is still valid */
737			if (rqp == cmd &&
738			    (rqp->flags & ZYD_CMD_FLAG_READ) == 0)
739				wakeup(rqp);	/* wakeup caller */
740		}
741
742		/* FALLTHROUGH */
743	case USB_ST_SETUP:
744tr_setup:
745		STAILQ_FOREACH(rqp, &sc->sc_rqh, rq) {
746			if (rqp->flags & ZYD_CMD_FLAG_SENT)
747				continue;
748
749			pc = usbd_xfer_get_frame(xfer, 0);
750			usbd_copy_in(pc, 0, rqp->cmd, rqp->ilen);
751
752			usbd_xfer_set_frame_len(xfer, 0, rqp->ilen);
753			usbd_xfer_set_priv(xfer, rqp);
754			rqp->flags |= ZYD_CMD_FLAG_SENT;
755			usbd_transfer_submit(xfer);
756			break;
757		}
758		break;
759
760	default:			/* Error */
761		DPRINTF(sc, ZYD_DEBUG_ANY, "error = %s\n",
762		    usbd_errstr(error));
763
764		if (error != USB_ERR_CANCELLED) {
765			/* try to clear stall first */
766			usbd_xfer_set_stall(xfer);
767			goto tr_setup;
768		}
769		break;
770	}
771}
772
773static int
774zyd_cmd(struct zyd_softc *sc, uint16_t code, const void *idata, int ilen,
775    void *odata, int olen, int flags)
776{
777	struct zyd_cmd cmd;
778	struct zyd_rq rq;
779	int error;
780
781	if (ilen > sizeof(cmd.data))
782		return (EINVAL);
783
784	cmd.code = htole16(code);
785	bcopy(idata, cmd.data, ilen);
786	DPRINTF(sc, ZYD_DEBUG_CMD, "sending cmd %p = %*D\n",
787	    &rq, ilen, idata, ":");
788
789	rq.cmd = &cmd;
790	rq.idata = idata;
791	rq.odata = odata;
792	rq.ilen = sizeof(uint16_t) + ilen;
793	rq.olen = olen;
794	rq.flags = flags;
795	STAILQ_INSERT_TAIL(&sc->sc_rqh, &rq, rq);
796	usbd_transfer_start(sc->sc_xfer[ZYD_INTR_RD]);
797	usbd_transfer_start(sc->sc_xfer[ZYD_INTR_WR]);
798
799	/* wait at most one second for command reply */
800	error = mtx_sleep(&rq, &sc->sc_mtx, 0 , "zydcmd", hz);
801	if (error)
802		device_printf(sc->sc_dev, "command timeout\n");
803	STAILQ_REMOVE(&sc->sc_rqh, &rq, zyd_rq, rq);
804	DPRINTF(sc, ZYD_DEBUG_CMD, "finsihed cmd %p, error = %d \n",
805	    &rq, error);
806
807	return (error);
808}
809
810static int
811zyd_read16(struct zyd_softc *sc, uint16_t reg, uint16_t *val)
812{
813	struct zyd_pair tmp;
814	int error;
815
816	reg = htole16(reg);
817	error = zyd_cmd(sc, ZYD_CMD_IORD, &reg, sizeof(reg), &tmp, sizeof(tmp),
818	    ZYD_CMD_FLAG_READ);
819	if (error == 0)
820		*val = le16toh(tmp.val);
821	return (error);
822}
823
824static int
825zyd_read32(struct zyd_softc *sc, uint16_t reg, uint32_t *val)
826{
827	struct zyd_pair tmp[2];
828	uint16_t regs[2];
829	int error;
830
831	regs[0] = htole16(ZYD_REG32_HI(reg));
832	regs[1] = htole16(ZYD_REG32_LO(reg));
833	error = zyd_cmd(sc, ZYD_CMD_IORD, regs, sizeof(regs), tmp, sizeof(tmp),
834	    ZYD_CMD_FLAG_READ);
835	if (error == 0)
836		*val = le16toh(tmp[0].val) << 16 | le16toh(tmp[1].val);
837	return (error);
838}
839
840static int
841zyd_write16(struct zyd_softc *sc, uint16_t reg, uint16_t val)
842{
843	struct zyd_pair pair;
844
845	pair.reg = htole16(reg);
846	pair.val = htole16(val);
847
848	return zyd_cmd(sc, ZYD_CMD_IOWR, &pair, sizeof(pair), NULL, 0, 0);
849}
850
851static int
852zyd_write32(struct zyd_softc *sc, uint16_t reg, uint32_t val)
853{
854	struct zyd_pair pair[2];
855
856	pair[0].reg = htole16(ZYD_REG32_HI(reg));
857	pair[0].val = htole16(val >> 16);
858	pair[1].reg = htole16(ZYD_REG32_LO(reg));
859	pair[1].val = htole16(val & 0xffff);
860
861	return zyd_cmd(sc, ZYD_CMD_IOWR, pair, sizeof(pair), NULL, 0, 0);
862}
863
864static int
865zyd_rfwrite(struct zyd_softc *sc, uint32_t val)
866{
867	struct zyd_rf *rf = &sc->sc_rf;
868	struct zyd_rfwrite_cmd req;
869	uint16_t cr203;
870	int error, i;
871
872	zyd_read16_m(sc, ZYD_CR203, &cr203);
873	cr203 &= ~(ZYD_RF_IF_LE | ZYD_RF_CLK | ZYD_RF_DATA);
874
875	req.code  = htole16(2);
876	req.width = htole16(rf->width);
877	for (i = 0; i < rf->width; i++) {
878		req.bit[i] = htole16(cr203);
879		if (val & (1 << (rf->width - 1 - i)))
880			req.bit[i] |= htole16(ZYD_RF_DATA);
881	}
882	error = zyd_cmd(sc, ZYD_CMD_RFCFG, &req, 4 + 2 * rf->width, NULL, 0, 0);
883fail:
884	return (error);
885}
886
887static int
888zyd_rfwrite_cr(struct zyd_softc *sc, uint32_t val)
889{
890	int error;
891
892	zyd_write16_m(sc, ZYD_CR244, (val >> 16) & 0xff);
893	zyd_write16_m(sc, ZYD_CR243, (val >>  8) & 0xff);
894	zyd_write16_m(sc, ZYD_CR242, (val >>  0) & 0xff);
895fail:
896	return (error);
897}
898
899static int
900zyd_lock_phy(struct zyd_softc *sc)
901{
902	int error;
903	uint32_t tmp;
904
905	zyd_read32_m(sc, ZYD_MAC_MISC, &tmp);
906	tmp &= ~ZYD_UNLOCK_PHY_REGS;
907	zyd_write32_m(sc, ZYD_MAC_MISC, tmp);
908fail:
909	return (error);
910}
911
912static int
913zyd_unlock_phy(struct zyd_softc *sc)
914{
915	int error;
916	uint32_t tmp;
917
918	zyd_read32_m(sc, ZYD_MAC_MISC, &tmp);
919	tmp |= ZYD_UNLOCK_PHY_REGS;
920	zyd_write32_m(sc, ZYD_MAC_MISC, tmp);
921fail:
922	return (error);
923}
924
925/*
926 * RFMD RF methods.
927 */
928static int
929zyd_rfmd_init(struct zyd_rf *rf)
930{
931#define N(a)	(sizeof(a) / sizeof((a)[0]))
932	struct zyd_softc *sc = rf->rf_sc;
933	static const struct zyd_phy_pair phyini[] = ZYD_RFMD_PHY;
934	static const uint32_t rfini[] = ZYD_RFMD_RF;
935	int i, error;
936
937	/* init RF-dependent PHY registers */
938	for (i = 0; i < N(phyini); i++) {
939		zyd_write16_m(sc, phyini[i].reg, phyini[i].val);
940	}
941
942	/* init RFMD radio */
943	for (i = 0; i < N(rfini); i++) {
944		if ((error = zyd_rfwrite(sc, rfini[i])) != 0)
945			return (error);
946	}
947fail:
948	return (error);
949#undef N
950}
951
952static int
953zyd_rfmd_switch_radio(struct zyd_rf *rf, int on)
954{
955	int error;
956	struct zyd_softc *sc = rf->rf_sc;
957
958	zyd_write16_m(sc, ZYD_CR10, on ? 0x89 : 0x15);
959	zyd_write16_m(sc, ZYD_CR11, on ? 0x00 : 0x81);
960fail:
961	return (error);
962}
963
964static int
965zyd_rfmd_set_channel(struct zyd_rf *rf, uint8_t chan)
966{
967	int error;
968	struct zyd_softc *sc = rf->rf_sc;
969	static const struct {
970		uint32_t	r1, r2;
971	} rfprog[] = ZYD_RFMD_CHANTABLE;
972
973	error = zyd_rfwrite(sc, rfprog[chan - 1].r1);
974	if (error != 0)
975		goto fail;
976	error = zyd_rfwrite(sc, rfprog[chan - 1].r2);
977	if (error != 0)
978		goto fail;
979
980fail:
981	return (error);
982}
983
984/*
985 * AL2230 RF methods.
986 */
987static int
988zyd_al2230_init(struct zyd_rf *rf)
989{
990#define N(a)	(sizeof(a) / sizeof((a)[0]))
991	struct zyd_softc *sc = rf->rf_sc;
992	static const struct zyd_phy_pair phyini[] = ZYD_AL2230_PHY;
993	static const struct zyd_phy_pair phy2230s[] = ZYD_AL2230S_PHY_INIT;
994	static const struct zyd_phy_pair phypll[] = {
995		{ ZYD_CR251, 0x2f }, { ZYD_CR251, 0x3f },
996		{ ZYD_CR138, 0x28 }, { ZYD_CR203, 0x06 }
997	};
998	static const uint32_t rfini1[] = ZYD_AL2230_RF_PART1;
999	static const uint32_t rfini2[] = ZYD_AL2230_RF_PART2;
1000	static const uint32_t rfini3[] = ZYD_AL2230_RF_PART3;
1001	int i, error;
1002
1003	/* init RF-dependent PHY registers */
1004	for (i = 0; i < N(phyini); i++)
1005		zyd_write16_m(sc, phyini[i].reg, phyini[i].val);
1006
1007	if (sc->sc_rfrev == ZYD_RF_AL2230S || sc->sc_al2230s != 0) {
1008		for (i = 0; i < N(phy2230s); i++)
1009			zyd_write16_m(sc, phy2230s[i].reg, phy2230s[i].val);
1010	}
1011
1012	/* init AL2230 radio */
1013	for (i = 0; i < N(rfini1); i++) {
1014		error = zyd_rfwrite(sc, rfini1[i]);
1015		if (error != 0)
1016			goto fail;
1017	}
1018
1019	if (sc->sc_rfrev == ZYD_RF_AL2230S || sc->sc_al2230s != 0)
1020		error = zyd_rfwrite(sc, 0x000824);
1021	else
1022		error = zyd_rfwrite(sc, 0x0005a4);
1023	if (error != 0)
1024		goto fail;
1025
1026	for (i = 0; i < N(rfini2); i++) {
1027		error = zyd_rfwrite(sc, rfini2[i]);
1028		if (error != 0)
1029			goto fail;
1030	}
1031
1032	for (i = 0; i < N(phypll); i++)
1033		zyd_write16_m(sc, phypll[i].reg, phypll[i].val);
1034
1035	for (i = 0; i < N(rfini3); i++) {
1036		error = zyd_rfwrite(sc, rfini3[i]);
1037		if (error != 0)
1038			goto fail;
1039	}
1040fail:
1041	return (error);
1042#undef N
1043}
1044
1045static int
1046zyd_al2230_fini(struct zyd_rf *rf)
1047{
1048#define N(a)	(sizeof(a) / sizeof((a)[0]))
1049	int error, i;
1050	struct zyd_softc *sc = rf->rf_sc;
1051	static const struct zyd_phy_pair phy[] = ZYD_AL2230_PHY_FINI_PART1;
1052
1053	for (i = 0; i < N(phy); i++)
1054		zyd_write16_m(sc, phy[i].reg, phy[i].val);
1055
1056	if (sc->sc_newphy != 0)
1057		zyd_write16_m(sc, ZYD_CR9, 0xe1);
1058
1059	zyd_write16_m(sc, ZYD_CR203, 0x6);
1060fail:
1061	return (error);
1062#undef N
1063}
1064
1065static int
1066zyd_al2230_init_b(struct zyd_rf *rf)
1067{
1068#define N(a)	(sizeof(a) / sizeof((a)[0]))
1069	struct zyd_softc *sc = rf->rf_sc;
1070	static const struct zyd_phy_pair phy1[] = ZYD_AL2230_PHY_PART1;
1071	static const struct zyd_phy_pair phy2[] = ZYD_AL2230_PHY_PART2;
1072	static const struct zyd_phy_pair phy3[] = ZYD_AL2230_PHY_PART3;
1073	static const struct zyd_phy_pair phy2230s[] = ZYD_AL2230S_PHY_INIT;
1074	static const struct zyd_phy_pair phyini[] = ZYD_AL2230_PHY_B;
1075	static const uint32_t rfini_part1[] = ZYD_AL2230_RF_B_PART1;
1076	static const uint32_t rfini_part2[] = ZYD_AL2230_RF_B_PART2;
1077	static const uint32_t rfini_part3[] = ZYD_AL2230_RF_B_PART3;
1078	static const uint32_t zyd_al2230_chtable[][3] = ZYD_AL2230_CHANTABLE;
1079	int i, error;
1080
1081	for (i = 0; i < N(phy1); i++)
1082		zyd_write16_m(sc, phy1[i].reg, phy1[i].val);
1083
1084	/* init RF-dependent PHY registers */
1085	for (i = 0; i < N(phyini); i++)
1086		zyd_write16_m(sc, phyini[i].reg, phyini[i].val);
1087
1088	if (sc->sc_rfrev == ZYD_RF_AL2230S || sc->sc_al2230s != 0) {
1089		for (i = 0; i < N(phy2230s); i++)
1090			zyd_write16_m(sc, phy2230s[i].reg, phy2230s[i].val);
1091	}
1092
1093	for (i = 0; i < 3; i++) {
1094		error = zyd_rfwrite_cr(sc, zyd_al2230_chtable[0][i]);
1095		if (error != 0)
1096			return (error);
1097	}
1098
1099	for (i = 0; i < N(rfini_part1); i++) {
1100		error = zyd_rfwrite_cr(sc, rfini_part1[i]);
1101		if (error != 0)
1102			return (error);
1103	}
1104
1105	if (sc->sc_rfrev == ZYD_RF_AL2230S || sc->sc_al2230s != 0)
1106		error = zyd_rfwrite(sc, 0x241000);
1107	else
1108		error = zyd_rfwrite(sc, 0x25a000);
1109	if (error != 0)
1110		goto fail;
1111
1112	for (i = 0; i < N(rfini_part2); i++) {
1113		error = zyd_rfwrite_cr(sc, rfini_part2[i]);
1114		if (error != 0)
1115			return (error);
1116	}
1117
1118	for (i = 0; i < N(phy2); i++)
1119		zyd_write16_m(sc, phy2[i].reg, phy2[i].val);
1120
1121	for (i = 0; i < N(rfini_part3); i++) {
1122		error = zyd_rfwrite_cr(sc, rfini_part3[i]);
1123		if (error != 0)
1124			return (error);
1125	}
1126
1127	for (i = 0; i < N(phy3); i++)
1128		zyd_write16_m(sc, phy3[i].reg, phy3[i].val);
1129
1130	error = zyd_al2230_fini(rf);
1131fail:
1132	return (error);
1133#undef N
1134}
1135
1136static int
1137zyd_al2230_switch_radio(struct zyd_rf *rf, int on)
1138{
1139	struct zyd_softc *sc = rf->rf_sc;
1140	int error, on251 = (sc->sc_macrev == ZYD_ZD1211) ? 0x3f : 0x7f;
1141
1142	zyd_write16_m(sc, ZYD_CR11,  on ? 0x00 : 0x04);
1143	zyd_write16_m(sc, ZYD_CR251, on ? on251 : 0x2f);
1144fail:
1145	return (error);
1146}
1147
1148static int
1149zyd_al2230_set_channel(struct zyd_rf *rf, uint8_t chan)
1150{
1151#define N(a)	(sizeof(a) / sizeof((a)[0]))
1152	int error, i;
1153	struct zyd_softc *sc = rf->rf_sc;
1154	static const struct zyd_phy_pair phy1[] = {
1155		{ ZYD_CR138, 0x28 }, { ZYD_CR203, 0x06 },
1156	};
1157	static const struct {
1158		uint32_t	r1, r2, r3;
1159	} rfprog[] = ZYD_AL2230_CHANTABLE;
1160
1161	error = zyd_rfwrite(sc, rfprog[chan - 1].r1);
1162	if (error != 0)
1163		goto fail;
1164	error = zyd_rfwrite(sc, rfprog[chan - 1].r2);
1165	if (error != 0)
1166		goto fail;
1167	error = zyd_rfwrite(sc, rfprog[chan - 1].r3);
1168	if (error != 0)
1169		goto fail;
1170
1171	for (i = 0; i < N(phy1); i++)
1172		zyd_write16_m(sc, phy1[i].reg, phy1[i].val);
1173fail:
1174	return (error);
1175#undef N
1176}
1177
1178static int
1179zyd_al2230_set_channel_b(struct zyd_rf *rf, uint8_t chan)
1180{
1181#define N(a)	(sizeof(a) / sizeof((a)[0]))
1182	int error, i;
1183	struct zyd_softc *sc = rf->rf_sc;
1184	static const struct zyd_phy_pair phy1[] = ZYD_AL2230_PHY_PART1;
1185	static const struct {
1186		uint32_t	r1, r2, r3;
1187	} rfprog[] = ZYD_AL2230_CHANTABLE_B;
1188
1189	for (i = 0; i < N(phy1); i++)
1190		zyd_write16_m(sc, phy1[i].reg, phy1[i].val);
1191
1192	error = zyd_rfwrite_cr(sc, rfprog[chan - 1].r1);
1193	if (error != 0)
1194		goto fail;
1195	error = zyd_rfwrite_cr(sc, rfprog[chan - 1].r2);
1196	if (error != 0)
1197		goto fail;
1198	error = zyd_rfwrite_cr(sc, rfprog[chan - 1].r3);
1199	if (error != 0)
1200		goto fail;
1201	error = zyd_al2230_fini(rf);
1202fail:
1203	return (error);
1204#undef N
1205}
1206
1207#define	ZYD_AL2230_PHY_BANDEDGE6					\
1208{									\
1209	{ ZYD_CR128, 0x14 }, { ZYD_CR129, 0x12 }, { ZYD_CR130, 0x10 },	\
1210	{ ZYD_CR47,  0x1e }						\
1211}
1212
1213static int
1214zyd_al2230_bandedge6(struct zyd_rf *rf, struct ieee80211_channel *c)
1215{
1216#define N(a)	(sizeof(a) / sizeof((a)[0]))
1217	int error = 0, i;
1218	struct zyd_softc *sc = rf->rf_sc;
1219	struct ifnet *ifp = sc->sc_ifp;
1220	struct ieee80211com *ic = ifp->if_l2com;
1221	struct zyd_phy_pair r[] = ZYD_AL2230_PHY_BANDEDGE6;
1222	int chan = ieee80211_chan2ieee(ic, c);
1223
1224	if (chan == 1 || chan == 11)
1225		r[0].val = 0x12;
1226
1227	for (i = 0; i < N(r); i++)
1228		zyd_write16_m(sc, r[i].reg, r[i].val);
1229fail:
1230	return (error);
1231#undef N
1232}
1233
1234/*
1235 * AL7230B RF methods.
1236 */
1237static int
1238zyd_al7230B_init(struct zyd_rf *rf)
1239{
1240#define N(a)	(sizeof(a) / sizeof((a)[0]))
1241	struct zyd_softc *sc = rf->rf_sc;
1242	static const struct zyd_phy_pair phyini_1[] = ZYD_AL7230B_PHY_1;
1243	static const struct zyd_phy_pair phyini_2[] = ZYD_AL7230B_PHY_2;
1244	static const struct zyd_phy_pair phyini_3[] = ZYD_AL7230B_PHY_3;
1245	static const uint32_t rfini_1[] = ZYD_AL7230B_RF_1;
1246	static const uint32_t rfini_2[] = ZYD_AL7230B_RF_2;
1247	int i, error;
1248
1249	/* for AL7230B, PHY and RF need to be initialized in "phases" */
1250
1251	/* init RF-dependent PHY registers, part one */
1252	for (i = 0; i < N(phyini_1); i++)
1253		zyd_write16_m(sc, phyini_1[i].reg, phyini_1[i].val);
1254
1255	/* init AL7230B radio, part one */
1256	for (i = 0; i < N(rfini_1); i++) {
1257		if ((error = zyd_rfwrite(sc, rfini_1[i])) != 0)
1258			return (error);
1259	}
1260	/* init RF-dependent PHY registers, part two */
1261	for (i = 0; i < N(phyini_2); i++)
1262		zyd_write16_m(sc, phyini_2[i].reg, phyini_2[i].val);
1263
1264	/* init AL7230B radio, part two */
1265	for (i = 0; i < N(rfini_2); i++) {
1266		if ((error = zyd_rfwrite(sc, rfini_2[i])) != 0)
1267			return (error);
1268	}
1269	/* init RF-dependent PHY registers, part three */
1270	for (i = 0; i < N(phyini_3); i++)
1271		zyd_write16_m(sc, phyini_3[i].reg, phyini_3[i].val);
1272fail:
1273	return (error);
1274#undef N
1275}
1276
1277static int
1278zyd_al7230B_switch_radio(struct zyd_rf *rf, int on)
1279{
1280	int error;
1281	struct zyd_softc *sc = rf->rf_sc;
1282
1283	zyd_write16_m(sc, ZYD_CR11,  on ? 0x00 : 0x04);
1284	zyd_write16_m(sc, ZYD_CR251, on ? 0x3f : 0x2f);
1285fail:
1286	return (error);
1287}
1288
1289static int
1290zyd_al7230B_set_channel(struct zyd_rf *rf, uint8_t chan)
1291{
1292#define N(a)	(sizeof(a) / sizeof((a)[0]))
1293	struct zyd_softc *sc = rf->rf_sc;
1294	static const struct {
1295		uint32_t	r1, r2;
1296	} rfprog[] = ZYD_AL7230B_CHANTABLE;
1297	static const uint32_t rfsc[] = ZYD_AL7230B_RF_SETCHANNEL;
1298	int i, error;
1299
1300	zyd_write16_m(sc, ZYD_CR240, 0x57);
1301	zyd_write16_m(sc, ZYD_CR251, 0x2f);
1302
1303	for (i = 0; i < N(rfsc); i++) {
1304		if ((error = zyd_rfwrite(sc, rfsc[i])) != 0)
1305			return (error);
1306	}
1307
1308	zyd_write16_m(sc, ZYD_CR128, 0x14);
1309	zyd_write16_m(sc, ZYD_CR129, 0x12);
1310	zyd_write16_m(sc, ZYD_CR130, 0x10);
1311	zyd_write16_m(sc, ZYD_CR38,  0x38);
1312	zyd_write16_m(sc, ZYD_CR136, 0xdf);
1313
1314	error = zyd_rfwrite(sc, rfprog[chan - 1].r1);
1315	if (error != 0)
1316		goto fail;
1317	error = zyd_rfwrite(sc, rfprog[chan - 1].r2);
1318	if (error != 0)
1319		goto fail;
1320	error = zyd_rfwrite(sc, 0x3c9000);
1321	if (error != 0)
1322		goto fail;
1323
1324	zyd_write16_m(sc, ZYD_CR251, 0x3f);
1325	zyd_write16_m(sc, ZYD_CR203, 0x06);
1326	zyd_write16_m(sc, ZYD_CR240, 0x08);
1327fail:
1328	return (error);
1329#undef N
1330}
1331
1332/*
1333 * AL2210 RF methods.
1334 */
1335static int
1336zyd_al2210_init(struct zyd_rf *rf)
1337{
1338#define N(a)	(sizeof(a) / sizeof((a)[0]))
1339	struct zyd_softc *sc = rf->rf_sc;
1340	static const struct zyd_phy_pair phyini[] = ZYD_AL2210_PHY;
1341	static const uint32_t rfini[] = ZYD_AL2210_RF;
1342	uint32_t tmp;
1343	int i, error;
1344
1345	zyd_write32_m(sc, ZYD_CR18, 2);
1346
1347	/* init RF-dependent PHY registers */
1348	for (i = 0; i < N(phyini); i++)
1349		zyd_write16_m(sc, phyini[i].reg, phyini[i].val);
1350
1351	/* init AL2210 radio */
1352	for (i = 0; i < N(rfini); i++) {
1353		if ((error = zyd_rfwrite(sc, rfini[i])) != 0)
1354			return (error);
1355	}
1356	zyd_write16_m(sc, ZYD_CR47, 0x1e);
1357	zyd_read32_m(sc, ZYD_CR_RADIO_PD, &tmp);
1358	zyd_write32_m(sc, ZYD_CR_RADIO_PD, tmp & ~1);
1359	zyd_write32_m(sc, ZYD_CR_RADIO_PD, tmp | 1);
1360	zyd_write32_m(sc, ZYD_CR_RFCFG, 0x05);
1361	zyd_write32_m(sc, ZYD_CR_RFCFG, 0x00);
1362	zyd_write16_m(sc, ZYD_CR47, 0x1e);
1363	zyd_write32_m(sc, ZYD_CR18, 3);
1364fail:
1365	return (error);
1366#undef N
1367}
1368
1369static int
1370zyd_al2210_switch_radio(struct zyd_rf *rf, int on)
1371{
1372	/* vendor driver does nothing for this RF chip */
1373
1374	return (0);
1375}
1376
1377static int
1378zyd_al2210_set_channel(struct zyd_rf *rf, uint8_t chan)
1379{
1380	int error;
1381	struct zyd_softc *sc = rf->rf_sc;
1382	static const uint32_t rfprog[] = ZYD_AL2210_CHANTABLE;
1383	uint32_t tmp;
1384
1385	zyd_write32_m(sc, ZYD_CR18, 2);
1386	zyd_write16_m(sc, ZYD_CR47, 0x1e);
1387	zyd_read32_m(sc, ZYD_CR_RADIO_PD, &tmp);
1388	zyd_write32_m(sc, ZYD_CR_RADIO_PD, tmp & ~1);
1389	zyd_write32_m(sc, ZYD_CR_RADIO_PD, tmp | 1);
1390	zyd_write32_m(sc, ZYD_CR_RFCFG, 0x05);
1391	zyd_write32_m(sc, ZYD_CR_RFCFG, 0x00);
1392	zyd_write16_m(sc, ZYD_CR47, 0x1e);
1393
1394	/* actually set the channel */
1395	error = zyd_rfwrite(sc, rfprog[chan - 1]);
1396	if (error != 0)
1397		goto fail;
1398
1399	zyd_write32_m(sc, ZYD_CR18, 3);
1400fail:
1401	return (error);
1402}
1403
1404/*
1405 * GCT RF methods.
1406 */
1407static int
1408zyd_gct_init(struct zyd_rf *rf)
1409{
1410#define	ZYD_GCT_INTR_REG	0x85c1
1411#define N(a)	(sizeof(a) / sizeof((a)[0]))
1412	struct zyd_softc *sc = rf->rf_sc;
1413	static const struct zyd_phy_pair phyini[] = ZYD_GCT_PHY;
1414	static const uint32_t rfini[] = ZYD_GCT_RF;
1415	static const uint16_t vco[11][7] = ZYD_GCT_VCO;
1416	int i, idx = -1, error;
1417	uint16_t data;
1418
1419	/* init RF-dependent PHY registers */
1420	for (i = 0; i < N(phyini); i++)
1421		zyd_write16_m(sc, phyini[i].reg, phyini[i].val);
1422
1423	/* init cgt radio */
1424	for (i = 0; i < N(rfini); i++) {
1425		if ((error = zyd_rfwrite(sc, rfini[i])) != 0)
1426			return (error);
1427	}
1428
1429	error = zyd_gct_mode(rf);
1430	if (error != 0)
1431		return (error);
1432
1433	for (i = 0; i < N(vco) - 1; i++) {
1434		error = zyd_gct_set_channel_synth(rf, 1, 0);
1435		if (error != 0)
1436			goto fail;
1437		error = zyd_gct_write(rf, vco[i][0]);
1438		if (error != 0)
1439			goto fail;
1440		zyd_write16_m(sc, ZYD_GCT_INTR_REG, 0xf);
1441		zyd_read16_m(sc, ZYD_GCT_INTR_REG, &data);
1442		if ((data & 0xf) == 0) {
1443			idx = i;
1444			break;
1445		}
1446	}
1447	if (idx == -1) {
1448		error = zyd_gct_set_channel_synth(rf, 1, 1);
1449		if (error != 0)
1450			goto fail;
1451		error = zyd_gct_write(rf, 0x6662);
1452		if (error != 0)
1453			goto fail;
1454	}
1455
1456	rf->idx = idx;
1457	zyd_write16_m(sc, ZYD_CR203, 0x6);
1458fail:
1459	return (error);
1460#undef N
1461#undef ZYD_GCT_INTR_REG
1462}
1463
1464static int
1465zyd_gct_mode(struct zyd_rf *rf)
1466{
1467#define N(a)	(sizeof(a) / sizeof((a)[0]))
1468	struct zyd_softc *sc = rf->rf_sc;
1469	static const uint32_t mode[] = {
1470		0x25f98, 0x25f9a, 0x25f94, 0x27fd4
1471	};
1472	int i, error;
1473
1474	for (i = 0; i < N(mode); i++) {
1475		if ((error = zyd_rfwrite(sc, mode[i])) != 0)
1476			break;
1477	}
1478	return (error);
1479#undef N
1480}
1481
1482static int
1483zyd_gct_set_channel_synth(struct zyd_rf *rf, int chan, int acal)
1484{
1485	int error, idx = chan - 1;
1486	struct zyd_softc *sc = rf->rf_sc;
1487	static uint32_t acal_synth[] = ZYD_GCT_CHANNEL_ACAL;
1488	static uint32_t std_synth[] = ZYD_GCT_CHANNEL_STD;
1489	static uint32_t div_synth[] = ZYD_GCT_CHANNEL_DIV;
1490
1491	error = zyd_rfwrite(sc,
1492	    (acal == 1) ? acal_synth[idx] : std_synth[idx]);
1493	if (error != 0)
1494		return (error);
1495	return zyd_rfwrite(sc, div_synth[idx]);
1496}
1497
1498static int
1499zyd_gct_write(struct zyd_rf *rf, uint16_t value)
1500{
1501	struct zyd_softc *sc = rf->rf_sc;
1502
1503	return zyd_rfwrite(sc, 0x300000 | 0x40000 | value);
1504}
1505
1506static int
1507zyd_gct_switch_radio(struct zyd_rf *rf, int on)
1508{
1509#define N(a)	(sizeof(a) / sizeof((a)[0]))
1510	int error;
1511	struct zyd_softc *sc = rf->rf_sc;
1512
1513	error = zyd_rfwrite(sc, on ? 0x25f94 : 0x25f90);
1514	if (error != 0)
1515		return (error);
1516
1517	zyd_write16_m(sc, ZYD_CR11, on ? 0x00 : 0x04);
1518	zyd_write16_m(sc, ZYD_CR251,
1519	    on ? ((sc->sc_macrev == ZYD_ZD1211B) ? 0x7f : 0x3f) : 0x2f);
1520fail:
1521	return (error);
1522}
1523
1524static int
1525zyd_gct_set_channel(struct zyd_rf *rf, uint8_t chan)
1526{
1527#define N(a)	(sizeof(a) / sizeof((a)[0]))
1528	int error, i;
1529	struct zyd_softc *sc = rf->rf_sc;
1530	static const struct zyd_phy_pair cmd[] = {
1531		{ ZYD_CR80, 0x30 }, { ZYD_CR81, 0x30 }, { ZYD_CR79, 0x58 },
1532		{ ZYD_CR12, 0xf0 }, { ZYD_CR77, 0x1b }, { ZYD_CR78, 0x58 },
1533	};
1534	static const uint16_t vco[11][7] = ZYD_GCT_VCO;
1535
1536	error = zyd_gct_set_channel_synth(rf, chan, 0);
1537	if (error != 0)
1538		goto fail;
1539	error = zyd_gct_write(rf, (rf->idx == -1) ? 0x6662 :
1540	    vco[rf->idx][((chan - 1) / 2)]);
1541	if (error != 0)
1542		goto fail;
1543	error = zyd_gct_mode(rf);
1544	if (error != 0)
1545		return (error);
1546	for (i = 0; i < N(cmd); i++)
1547		zyd_write16_m(sc, cmd[i].reg, cmd[i].val);
1548	error = zyd_gct_txgain(rf, chan);
1549	if (error != 0)
1550		return (error);
1551	zyd_write16_m(sc, ZYD_CR203, 0x6);
1552fail:
1553	return (error);
1554#undef N
1555}
1556
1557static int
1558zyd_gct_txgain(struct zyd_rf *rf, uint8_t chan)
1559{
1560#define N(a)	(sizeof(a) / sizeof((a)[0]))
1561	struct zyd_softc *sc = rf->rf_sc;
1562	static uint32_t txgain[] = ZYD_GCT_TXGAIN;
1563	uint8_t idx = sc->sc_pwrint[chan - 1];
1564
1565	if (idx >= N(txgain)) {
1566		device_printf(sc->sc_dev, "could not set TX gain (%d %#x)\n",
1567		    chan, idx);
1568		return 0;
1569	}
1570
1571	return zyd_rfwrite(sc, 0x700000 | txgain[idx]);
1572#undef N
1573}
1574
1575/*
1576 * Maxim2 RF methods.
1577 */
1578static int
1579zyd_maxim2_init(struct zyd_rf *rf)
1580{
1581#define N(a)	(sizeof(a) / sizeof((a)[0]))
1582	struct zyd_softc *sc = rf->rf_sc;
1583	static const struct zyd_phy_pair phyini[] = ZYD_MAXIM2_PHY;
1584	static const uint32_t rfini[] = ZYD_MAXIM2_RF;
1585	uint16_t tmp;
1586	int i, error;
1587
1588	/* init RF-dependent PHY registers */
1589	for (i = 0; i < N(phyini); i++)
1590		zyd_write16_m(sc, phyini[i].reg, phyini[i].val);
1591
1592	zyd_read16_m(sc, ZYD_CR203, &tmp);
1593	zyd_write16_m(sc, ZYD_CR203, tmp & ~(1 << 4));
1594
1595	/* init maxim2 radio */
1596	for (i = 0; i < N(rfini); i++) {
1597		if ((error = zyd_rfwrite(sc, rfini[i])) != 0)
1598			return (error);
1599	}
1600	zyd_read16_m(sc, ZYD_CR203, &tmp);
1601	zyd_write16_m(sc, ZYD_CR203, tmp | (1 << 4));
1602fail:
1603	return (error);
1604#undef N
1605}
1606
1607static int
1608zyd_maxim2_switch_radio(struct zyd_rf *rf, int on)
1609{
1610
1611	/* vendor driver does nothing for this RF chip */
1612	return (0);
1613}
1614
1615static int
1616zyd_maxim2_set_channel(struct zyd_rf *rf, uint8_t chan)
1617{
1618#define N(a)	(sizeof(a) / sizeof((a)[0]))
1619	struct zyd_softc *sc = rf->rf_sc;
1620	static const struct zyd_phy_pair phyini[] = ZYD_MAXIM2_PHY;
1621	static const uint32_t rfini[] = ZYD_MAXIM2_RF;
1622	static const struct {
1623		uint32_t	r1, r2;
1624	} rfprog[] = ZYD_MAXIM2_CHANTABLE;
1625	uint16_t tmp;
1626	int i, error;
1627
1628	/*
1629	 * Do the same as we do when initializing it, except for the channel
1630	 * values coming from the two channel tables.
1631	 */
1632
1633	/* init RF-dependent PHY registers */
1634	for (i = 0; i < N(phyini); i++)
1635		zyd_write16_m(sc, phyini[i].reg, phyini[i].val);
1636
1637	zyd_read16_m(sc, ZYD_CR203, &tmp);
1638	zyd_write16_m(sc, ZYD_CR203, tmp & ~(1 << 4));
1639
1640	/* first two values taken from the chantables */
1641	error = zyd_rfwrite(sc, rfprog[chan - 1].r1);
1642	if (error != 0)
1643		goto fail;
1644	error = zyd_rfwrite(sc, rfprog[chan - 1].r2);
1645	if (error != 0)
1646		goto fail;
1647
1648	/* init maxim2 radio - skipping the two first values */
1649	for (i = 2; i < N(rfini); i++) {
1650		if ((error = zyd_rfwrite(sc, rfini[i])) != 0)
1651			return (error);
1652	}
1653	zyd_read16_m(sc, ZYD_CR203, &tmp);
1654	zyd_write16_m(sc, ZYD_CR203, tmp | (1 << 4));
1655fail:
1656	return (error);
1657#undef N
1658}
1659
1660static int
1661zyd_rf_attach(struct zyd_softc *sc, uint8_t type)
1662{
1663	struct zyd_rf *rf = &sc->sc_rf;
1664
1665	rf->rf_sc = sc;
1666	rf->update_pwr = 1;
1667
1668	switch (type) {
1669	case ZYD_RF_RFMD:
1670		rf->init         = zyd_rfmd_init;
1671		rf->switch_radio = zyd_rfmd_switch_radio;
1672		rf->set_channel  = zyd_rfmd_set_channel;
1673		rf->width        = 24;	/* 24-bit RF values */
1674		break;
1675	case ZYD_RF_AL2230:
1676	case ZYD_RF_AL2230S:
1677		if (sc->sc_macrev == ZYD_ZD1211B) {
1678			rf->init = zyd_al2230_init_b;
1679			rf->set_channel = zyd_al2230_set_channel_b;
1680		} else {
1681			rf->init = zyd_al2230_init;
1682			rf->set_channel = zyd_al2230_set_channel;
1683		}
1684		rf->switch_radio = zyd_al2230_switch_radio;
1685		rf->bandedge6	 = zyd_al2230_bandedge6;
1686		rf->width        = 24;	/* 24-bit RF values */
1687		break;
1688	case ZYD_RF_AL7230B:
1689		rf->init         = zyd_al7230B_init;
1690		rf->switch_radio = zyd_al7230B_switch_radio;
1691		rf->set_channel  = zyd_al7230B_set_channel;
1692		rf->width        = 24;	/* 24-bit RF values */
1693		break;
1694	case ZYD_RF_AL2210:
1695		rf->init         = zyd_al2210_init;
1696		rf->switch_radio = zyd_al2210_switch_radio;
1697		rf->set_channel  = zyd_al2210_set_channel;
1698		rf->width        = 24;	/* 24-bit RF values */
1699		break;
1700	case ZYD_RF_MAXIM_NEW:
1701	case ZYD_RF_GCT:
1702		rf->init         = zyd_gct_init;
1703		rf->switch_radio = zyd_gct_switch_radio;
1704		rf->set_channel  = zyd_gct_set_channel;
1705		rf->width        = 24;	/* 24-bit RF values */
1706		rf->update_pwr   = 0;
1707		break;
1708	case ZYD_RF_MAXIM_NEW2:
1709		rf->init         = zyd_maxim2_init;
1710		rf->switch_radio = zyd_maxim2_switch_radio;
1711		rf->set_channel  = zyd_maxim2_set_channel;
1712		rf->width        = 18;	/* 18-bit RF values */
1713		break;
1714	default:
1715		device_printf(sc->sc_dev,
1716		    "sorry, radio \"%s\" is not supported yet\n",
1717		    zyd_rf_name(type));
1718		return (EINVAL);
1719	}
1720	return (0);
1721}
1722
1723static const char *
1724zyd_rf_name(uint8_t type)
1725{
1726	static const char * const zyd_rfs[] = {
1727		"unknown", "unknown", "UW2451",   "UCHIP",     "AL2230",
1728		"AL7230B", "THETA",   "AL2210",   "MAXIM_NEW", "GCT",
1729		"AL2230S",  "RALINK",  "INTERSIL", "RFMD",      "MAXIM_NEW2",
1730		"PHILIPS"
1731	};
1732
1733	return zyd_rfs[(type > 15) ? 0 : type];
1734}
1735
1736static int
1737zyd_hw_init(struct zyd_softc *sc)
1738{
1739	int error;
1740	const struct zyd_phy_pair *phyp;
1741	struct zyd_rf *rf = &sc->sc_rf;
1742	uint16_t val;
1743
1744	/* specify that the plug and play is finished */
1745	zyd_write32_m(sc, ZYD_MAC_AFTER_PNP, 1);
1746	zyd_read16_m(sc, ZYD_FIRMWARE_BASE_ADDR, &sc->sc_fwbase);
1747	DPRINTF(sc, ZYD_DEBUG_FW, "firmware base address=0x%04x\n",
1748	    sc->sc_fwbase);
1749
1750	/* retrieve firmware revision number */
1751	zyd_read16_m(sc, sc->sc_fwbase + ZYD_FW_FIRMWARE_REV, &sc->sc_fwrev);
1752	zyd_write32_m(sc, ZYD_CR_GPI_EN, 0);
1753	zyd_write32_m(sc, ZYD_MAC_CONT_WIN_LIMIT, 0x7f043f);
1754	/* set mandatory rates - XXX assumes 802.11b/g */
1755	zyd_write32_m(sc, ZYD_MAC_MAN_RATE, 0x150f);
1756
1757	/* disable interrupts */
1758	zyd_write32_m(sc, ZYD_CR_INTERRUPT, 0);
1759
1760	if ((error = zyd_read_pod(sc)) != 0) {
1761		device_printf(sc->sc_dev, "could not read EEPROM\n");
1762		goto fail;
1763	}
1764
1765	/* PHY init (resetting) */
1766	error = zyd_lock_phy(sc);
1767	if (error != 0)
1768		goto fail;
1769	phyp = (sc->sc_macrev == ZYD_ZD1211B) ? zyd_def_phyB : zyd_def_phy;
1770	for (; phyp->reg != 0; phyp++)
1771		zyd_write16_m(sc, phyp->reg, phyp->val);
1772	if (sc->sc_macrev == ZYD_ZD1211 && sc->sc_fix_cr157 != 0) {
1773		zyd_read16_m(sc, ZYD_EEPROM_PHY_REG, &val);
1774		zyd_write32_m(sc, ZYD_CR157, val >> 8);
1775	}
1776	error = zyd_unlock_phy(sc);
1777	if (error != 0)
1778		goto fail;
1779
1780	/* HMAC init */
1781	zyd_write32_m(sc, ZYD_MAC_ACK_EXT, 0x00000020);
1782	zyd_write32_m(sc, ZYD_CR_ADDA_MBIAS_WT, 0x30000808);
1783	zyd_write32_m(sc, ZYD_MAC_SNIFFER, 0x00000000);
1784	zyd_write32_m(sc, ZYD_MAC_RXFILTER, 0x00000000);
1785	zyd_write32_m(sc, ZYD_MAC_GHTBL, 0x00000000);
1786	zyd_write32_m(sc, ZYD_MAC_GHTBH, 0x80000000);
1787	zyd_write32_m(sc, ZYD_MAC_MISC, 0x000000a4);
1788	zyd_write32_m(sc, ZYD_CR_ADDA_PWR_DWN, 0x0000007f);
1789	zyd_write32_m(sc, ZYD_MAC_BCNCFG, 0x00f00401);
1790	zyd_write32_m(sc, ZYD_MAC_PHY_DELAY2, 0x00000000);
1791	zyd_write32_m(sc, ZYD_MAC_ACK_EXT, 0x00000080);
1792	zyd_write32_m(sc, ZYD_CR_ADDA_PWR_DWN, 0x00000000);
1793	zyd_write32_m(sc, ZYD_MAC_SIFS_ACK_TIME, 0x00000100);
1794	zyd_write32_m(sc, ZYD_CR_RX_PE_DELAY, 0x00000070);
1795	zyd_write32_m(sc, ZYD_CR_PS_CTRL, 0x10000000);
1796	zyd_write32_m(sc, ZYD_MAC_RTSCTSRATE, 0x02030203);
1797	zyd_write32_m(sc, ZYD_MAC_AFTER_PNP, 1);
1798	zyd_write32_m(sc, ZYD_MAC_BACKOFF_PROTECT, 0x00000114);
1799	zyd_write32_m(sc, ZYD_MAC_DIFS_EIFS_SIFS, 0x0a47c032);
1800	zyd_write32_m(sc, ZYD_MAC_CAM_MODE, 0x3);
1801
1802	if (sc->sc_macrev == ZYD_ZD1211) {
1803		zyd_write32_m(sc, ZYD_MAC_RETRY, 0x00000002);
1804		zyd_write32_m(sc, ZYD_MAC_RX_THRESHOLD, 0x000c0640);
1805	} else {
1806		zyd_write32_m(sc, ZYD_MACB_MAX_RETRY, 0x02020202);
1807		zyd_write32_m(sc, ZYD_MACB_TXPWR_CTL4, 0x007f003f);
1808		zyd_write32_m(sc, ZYD_MACB_TXPWR_CTL3, 0x007f003f);
1809		zyd_write32_m(sc, ZYD_MACB_TXPWR_CTL2, 0x003f001f);
1810		zyd_write32_m(sc, ZYD_MACB_TXPWR_CTL1, 0x001f000f);
1811		zyd_write32_m(sc, ZYD_MACB_AIFS_CTL1, 0x00280028);
1812		zyd_write32_m(sc, ZYD_MACB_AIFS_CTL2, 0x008C003C);
1813		zyd_write32_m(sc, ZYD_MACB_TXOP, 0x01800824);
1814		zyd_write32_m(sc, ZYD_MAC_RX_THRESHOLD, 0x000c0eff);
1815	}
1816
1817	/* init beacon interval to 100ms */
1818	if ((error = zyd_set_beacon_interval(sc, 100)) != 0)
1819		goto fail;
1820
1821	if ((error = zyd_rf_attach(sc, sc->sc_rfrev)) != 0) {
1822		device_printf(sc->sc_dev, "could not attach RF, rev 0x%x\n",
1823		    sc->sc_rfrev);
1824		goto fail;
1825	}
1826
1827	/* RF chip init */
1828	error = zyd_lock_phy(sc);
1829	if (error != 0)
1830		goto fail;
1831	error = (*rf->init)(rf);
1832	if (error != 0) {
1833		device_printf(sc->sc_dev,
1834		    "radio initialization failed, error %d\n", error);
1835		goto fail;
1836	}
1837	error = zyd_unlock_phy(sc);
1838	if (error != 0)
1839		goto fail;
1840
1841	if ((error = zyd_read_eeprom(sc)) != 0) {
1842		device_printf(sc->sc_dev, "could not read EEPROM\n");
1843		goto fail;
1844	}
1845
1846fail:	return (error);
1847}
1848
1849static int
1850zyd_read_pod(struct zyd_softc *sc)
1851{
1852	int error;
1853	uint32_t tmp;
1854
1855	zyd_read32_m(sc, ZYD_EEPROM_POD, &tmp);
1856	sc->sc_rfrev     = tmp & 0x0f;
1857	sc->sc_ledtype   = (tmp >>  4) & 0x01;
1858	sc->sc_al2230s   = (tmp >>  7) & 0x01;
1859	sc->sc_cckgain   = (tmp >>  8) & 0x01;
1860	sc->sc_fix_cr157 = (tmp >> 13) & 0x01;
1861	sc->sc_parev     = (tmp >> 16) & 0x0f;
1862	sc->sc_bandedge6 = (tmp >> 21) & 0x01;
1863	sc->sc_newphy    = (tmp >> 31) & 0x01;
1864	sc->sc_txled     = ((tmp & (1 << 24)) && (tmp & (1 << 29))) ? 0 : 1;
1865fail:
1866	return (error);
1867}
1868
1869static int
1870zyd_read_eeprom(struct zyd_softc *sc)
1871{
1872	uint16_t val;
1873	int error, i;
1874
1875	/* read Tx power calibration tables */
1876	for (i = 0; i < 7; i++) {
1877		zyd_read16_m(sc, ZYD_EEPROM_PWR_CAL + i, &val);
1878		sc->sc_pwrcal[i * 2] = val >> 8;
1879		sc->sc_pwrcal[i * 2 + 1] = val & 0xff;
1880		zyd_read16_m(sc, ZYD_EEPROM_PWR_INT + i, &val);
1881		sc->sc_pwrint[i * 2] = val >> 8;
1882		sc->sc_pwrint[i * 2 + 1] = val & 0xff;
1883		zyd_read16_m(sc, ZYD_EEPROM_36M_CAL + i, &val);
1884		sc->sc_ofdm36_cal[i * 2] = val >> 8;
1885		sc->sc_ofdm36_cal[i * 2 + 1] = val & 0xff;
1886		zyd_read16_m(sc, ZYD_EEPROM_48M_CAL + i, &val);
1887		sc->sc_ofdm48_cal[i * 2] = val >> 8;
1888		sc->sc_ofdm48_cal[i * 2 + 1] = val & 0xff;
1889		zyd_read16_m(sc, ZYD_EEPROM_54M_CAL + i, &val);
1890		sc->sc_ofdm54_cal[i * 2] = val >> 8;
1891		sc->sc_ofdm54_cal[i * 2 + 1] = val & 0xff;
1892	}
1893fail:
1894	return (error);
1895}
1896
1897static int
1898zyd_get_macaddr(struct zyd_softc *sc)
1899{
1900	struct usb_device_request req;
1901	usb_error_t error;
1902
1903	req.bmRequestType = UT_READ_VENDOR_DEVICE;
1904	req.bRequest = ZYD_READFWDATAREQ;
1905	USETW(req.wValue, ZYD_EEPROM_MAC_ADDR_P1);
1906	USETW(req.wIndex, 0);
1907	USETW(req.wLength, IEEE80211_ADDR_LEN);
1908
1909	error = zyd_do_request(sc, &req, sc->sc_bssid);
1910	if (error != 0) {
1911		device_printf(sc->sc_dev, "could not read EEPROM: %s\n",
1912		    usbd_errstr(error));
1913	}
1914
1915	return (error);
1916}
1917
1918static int
1919zyd_set_macaddr(struct zyd_softc *sc, const uint8_t *addr)
1920{
1921	int error;
1922	uint32_t tmp;
1923
1924	tmp = addr[3] << 24 | addr[2] << 16 | addr[1] << 8 | addr[0];
1925	zyd_write32_m(sc, ZYD_MAC_MACADRL, tmp);
1926	tmp = addr[5] << 8 | addr[4];
1927	zyd_write32_m(sc, ZYD_MAC_MACADRH, tmp);
1928fail:
1929	return (error);
1930}
1931
1932static int
1933zyd_set_bssid(struct zyd_softc *sc, const uint8_t *addr)
1934{
1935	int error;
1936	uint32_t tmp;
1937
1938	tmp = addr[3] << 24 | addr[2] << 16 | addr[1] << 8 | addr[0];
1939	zyd_write32_m(sc, ZYD_MAC_BSSADRL, tmp);
1940	tmp = addr[5] << 8 | addr[4];
1941	zyd_write32_m(sc, ZYD_MAC_BSSADRH, tmp);
1942fail:
1943	return (error);
1944}
1945
1946static int
1947zyd_switch_radio(struct zyd_softc *sc, int on)
1948{
1949	struct zyd_rf *rf = &sc->sc_rf;
1950	int error;
1951
1952	error = zyd_lock_phy(sc);
1953	if (error != 0)
1954		goto fail;
1955	error = (*rf->switch_radio)(rf, on);
1956	if (error != 0)
1957		goto fail;
1958	error = zyd_unlock_phy(sc);
1959fail:
1960	return (error);
1961}
1962
1963static int
1964zyd_set_led(struct zyd_softc *sc, int which, int on)
1965{
1966	int error;
1967	uint32_t tmp;
1968
1969	zyd_read32_m(sc, ZYD_MAC_TX_PE_CONTROL, &tmp);
1970	tmp &= ~which;
1971	if (on)
1972		tmp |= which;
1973	zyd_write32_m(sc, ZYD_MAC_TX_PE_CONTROL, tmp);
1974fail:
1975	return (error);
1976}
1977
1978static void
1979zyd_set_multi(struct zyd_softc *sc)
1980{
1981	int error;
1982	struct ifnet *ifp = sc->sc_ifp;
1983	struct ieee80211com *ic = ifp->if_l2com;
1984	struct ifmultiaddr *ifma;
1985	uint32_t low, high;
1986	uint8_t v;
1987
1988	if ((ifp->if_drv_flags & IFF_DRV_RUNNING) == 0)
1989		return;
1990
1991	low = 0x00000000;
1992	high = 0x80000000;
1993
1994	if (ic->ic_opmode == IEEE80211_M_MONITOR ||
1995	    (ifp->if_flags & (IFF_ALLMULTI | IFF_PROMISC))) {
1996		low = 0xffffffff;
1997		high = 0xffffffff;
1998	} else {
1999		if_maddr_rlock(ifp);
2000		TAILQ_FOREACH(ifma, &ifp->if_multiaddrs, ifma_link) {
2001			if (ifma->ifma_addr->sa_family != AF_LINK)
2002				continue;
2003			v = ((uint8_t *)LLADDR((struct sockaddr_dl *)
2004			    ifma->ifma_addr))[5] >> 2;
2005			if (v < 32)
2006				low |= 1 << v;
2007			else
2008				high |= 1 << (v - 32);
2009		}
2010		if_maddr_runlock(ifp);
2011	}
2012
2013	/* reprogram multicast global hash table */
2014	zyd_write32_m(sc, ZYD_MAC_GHTBL, low);
2015	zyd_write32_m(sc, ZYD_MAC_GHTBH, high);
2016fail:
2017	if (error != 0)
2018		device_printf(sc->sc_dev,
2019		    "could not set multicast hash table\n");
2020}
2021
2022static void
2023zyd_update_mcast(struct ifnet *ifp)
2024{
2025	struct zyd_softc *sc = ifp->if_softc;
2026
2027	if ((ifp->if_drv_flags & IFF_DRV_RUNNING) == 0)
2028		return;
2029
2030	ZYD_LOCK(sc);
2031	zyd_set_multi(sc);
2032	ZYD_UNLOCK(sc);
2033}
2034
2035static int
2036zyd_set_rxfilter(struct zyd_softc *sc)
2037{
2038	struct ifnet *ifp = sc->sc_ifp;
2039	struct ieee80211com *ic = ifp->if_l2com;
2040	uint32_t rxfilter;
2041
2042	switch (ic->ic_opmode) {
2043	case IEEE80211_M_STA:
2044		rxfilter = ZYD_FILTER_BSS;
2045		break;
2046	case IEEE80211_M_IBSS:
2047	case IEEE80211_M_HOSTAP:
2048		rxfilter = ZYD_FILTER_HOSTAP;
2049		break;
2050	case IEEE80211_M_MONITOR:
2051		rxfilter = ZYD_FILTER_MONITOR;
2052		break;
2053	default:
2054		/* should not get there */
2055		return (EINVAL);
2056	}
2057	return zyd_write32(sc, ZYD_MAC_RXFILTER, rxfilter);
2058}
2059
2060static void
2061zyd_set_chan(struct zyd_softc *sc, struct ieee80211_channel *c)
2062{
2063	int error;
2064	struct ifnet *ifp = sc->sc_ifp;
2065	struct ieee80211com *ic = ifp->if_l2com;
2066	struct zyd_rf *rf = &sc->sc_rf;
2067	uint32_t tmp;
2068	int chan;
2069
2070	chan = ieee80211_chan2ieee(ic, c);
2071	if (chan == 0 || chan == IEEE80211_CHAN_ANY) {
2072		/* XXX should NEVER happen */
2073		device_printf(sc->sc_dev,
2074		    "%s: invalid channel %x\n", __func__, chan);
2075		return;
2076	}
2077
2078	error = zyd_lock_phy(sc);
2079	if (error != 0)
2080		goto fail;
2081
2082	error = (*rf->set_channel)(rf, chan);
2083	if (error != 0)
2084		goto fail;
2085
2086	if (rf->update_pwr) {
2087		/* update Tx power */
2088		zyd_write16_m(sc, ZYD_CR31, sc->sc_pwrint[chan - 1]);
2089
2090		if (sc->sc_macrev == ZYD_ZD1211B) {
2091			zyd_write16_m(sc, ZYD_CR67,
2092			    sc->sc_ofdm36_cal[chan - 1]);
2093			zyd_write16_m(sc, ZYD_CR66,
2094			    sc->sc_ofdm48_cal[chan - 1]);
2095			zyd_write16_m(sc, ZYD_CR65,
2096			    sc->sc_ofdm54_cal[chan - 1]);
2097			zyd_write16_m(sc, ZYD_CR68, sc->sc_pwrcal[chan - 1]);
2098			zyd_write16_m(sc, ZYD_CR69, 0x28);
2099			zyd_write16_m(sc, ZYD_CR69, 0x2a);
2100		}
2101	}
2102	if (sc->sc_cckgain) {
2103		/* set CCK baseband gain from EEPROM */
2104		if (zyd_read32(sc, ZYD_EEPROM_PHY_REG, &tmp) == 0)
2105			zyd_write16_m(sc, ZYD_CR47, tmp & 0xff);
2106	}
2107	if (sc->sc_bandedge6 && rf->bandedge6 != NULL) {
2108		error = (*rf->bandedge6)(rf, c);
2109		if (error != 0)
2110			goto fail;
2111	}
2112	zyd_write32_m(sc, ZYD_CR_CONFIG_PHILIPS, 0);
2113
2114	error = zyd_unlock_phy(sc);
2115	if (error != 0)
2116		goto fail;
2117
2118	sc->sc_rxtap.wr_chan_freq = sc->sc_txtap.wt_chan_freq =
2119	    htole16(c->ic_freq);
2120	sc->sc_rxtap.wr_chan_flags = sc->sc_txtap.wt_chan_flags =
2121	    htole16(c->ic_flags);
2122fail:
2123	return;
2124}
2125
2126static int
2127zyd_set_beacon_interval(struct zyd_softc *sc, int bintval)
2128{
2129	int error;
2130	uint32_t val;
2131
2132	zyd_read32_m(sc, ZYD_CR_ATIM_WND_PERIOD, &val);
2133	sc->sc_atim_wnd = val;
2134	zyd_read32_m(sc, ZYD_CR_PRE_TBTT, &val);
2135	sc->sc_pre_tbtt = val;
2136	sc->sc_bcn_int = bintval;
2137
2138	if (sc->sc_bcn_int <= 5)
2139		sc->sc_bcn_int = 5;
2140	if (sc->sc_pre_tbtt < 4 || sc->sc_pre_tbtt >= sc->sc_bcn_int)
2141		sc->sc_pre_tbtt = sc->sc_bcn_int - 1;
2142	if (sc->sc_atim_wnd >= sc->sc_pre_tbtt)
2143		sc->sc_atim_wnd = sc->sc_pre_tbtt - 1;
2144
2145	zyd_write32_m(sc, ZYD_CR_ATIM_WND_PERIOD, sc->sc_atim_wnd);
2146	zyd_write32_m(sc, ZYD_CR_PRE_TBTT, sc->sc_pre_tbtt);
2147	zyd_write32_m(sc, ZYD_CR_BCN_INTERVAL, sc->sc_bcn_int);
2148fail:
2149	return (error);
2150}
2151
2152static void
2153zyd_rx_data(struct usb_xfer *xfer, int offset, uint16_t len)
2154{
2155	struct zyd_softc *sc = usbd_xfer_softc(xfer);
2156	struct ifnet *ifp = sc->sc_ifp;
2157	struct ieee80211com *ic = ifp->if_l2com;
2158	struct zyd_plcphdr plcp;
2159	struct zyd_rx_stat stat;
2160	struct usb_page_cache *pc;
2161	struct mbuf *m;
2162	int rlen, rssi;
2163
2164	if (len < ZYD_MIN_FRAGSZ) {
2165		DPRINTF(sc, ZYD_DEBUG_RECV, "%s: frame too short (length=%d)\n",
2166		    device_get_nameunit(sc->sc_dev), len);
2167		ifp->if_ierrors++;
2168		return;
2169	}
2170	pc = usbd_xfer_get_frame(xfer, 0);
2171	usbd_copy_out(pc, offset, &plcp, sizeof(plcp));
2172	usbd_copy_out(pc, offset + len - sizeof(stat), &stat, sizeof(stat));
2173
2174	if (stat.flags & ZYD_RX_ERROR) {
2175		DPRINTF(sc, ZYD_DEBUG_RECV,
2176		    "%s: RX status indicated error (%x)\n",
2177		    device_get_nameunit(sc->sc_dev), stat.flags);
2178		ifp->if_ierrors++;
2179		return;
2180	}
2181
2182	/* compute actual frame length */
2183	rlen = len - sizeof(struct zyd_plcphdr) -
2184	    sizeof(struct zyd_rx_stat) - IEEE80211_CRC_LEN;
2185
2186	/* allocate a mbuf to store the frame */
2187	if (rlen > MCLBYTES) {
2188		DPRINTF(sc, ZYD_DEBUG_RECV, "%s: frame too long (length=%d)\n",
2189		    device_get_nameunit(sc->sc_dev), rlen);
2190		ifp->if_ierrors++;
2191		return;
2192	} else if (rlen > MHLEN)
2193		m = m_getcl(M_DONTWAIT, MT_DATA, M_PKTHDR);
2194	else
2195		m = m_gethdr(M_DONTWAIT, MT_DATA);
2196	if (m == NULL) {
2197		DPRINTF(sc, ZYD_DEBUG_RECV, "%s: could not allocate rx mbuf\n",
2198		    device_get_nameunit(sc->sc_dev));
2199		ifp->if_ierrors++;
2200		return;
2201	}
2202	m->m_pkthdr.rcvif = ifp;
2203	m->m_pkthdr.len = m->m_len = rlen;
2204	usbd_copy_out(pc, offset + sizeof(plcp), mtod(m, uint8_t *), rlen);
2205
2206	if (ieee80211_radiotap_active(ic)) {
2207		struct zyd_rx_radiotap_header *tap = &sc->sc_rxtap;
2208
2209		tap->wr_flags = 0;
2210		if (stat.flags & (ZYD_RX_BADCRC16 | ZYD_RX_BADCRC32))
2211			tap->wr_flags |= IEEE80211_RADIOTAP_F_BADFCS;
2212		/* XXX toss, no way to express errors */
2213		if (stat.flags & ZYD_RX_DECRYPTERR)
2214			tap->wr_flags |= IEEE80211_RADIOTAP_F_BADFCS;
2215		tap->wr_rate = ieee80211_plcp2rate(plcp.signal,
2216		    (stat.flags & ZYD_RX_OFDM) ?
2217			IEEE80211_T_OFDM : IEEE80211_T_CCK);
2218		tap->wr_antsignal = stat.rssi + -95;
2219		tap->wr_antnoise = -95;	/* XXX */
2220	}
2221	rssi = (stat.rssi > 63) ? 127 : 2 * stat.rssi;
2222
2223	sc->sc_rx_data[sc->sc_rx_count].rssi = rssi;
2224	sc->sc_rx_data[sc->sc_rx_count].m = m;
2225	sc->sc_rx_count++;
2226}
2227
2228static void
2229zyd_bulk_read_callback(struct usb_xfer *xfer, usb_error_t error)
2230{
2231	struct zyd_softc *sc = usbd_xfer_softc(xfer);
2232	struct ifnet *ifp = sc->sc_ifp;
2233	struct ieee80211com *ic = ifp->if_l2com;
2234	struct ieee80211_node *ni;
2235	struct zyd_rx_desc desc;
2236	struct mbuf *m;
2237	struct usb_page_cache *pc;
2238	uint32_t offset;
2239	uint8_t rssi;
2240	int8_t nf;
2241	int i;
2242	int actlen;
2243
2244	usbd_xfer_status(xfer, &actlen, NULL, NULL, NULL);
2245
2246	sc->sc_rx_count = 0;
2247	switch (USB_GET_STATE(xfer)) {
2248	case USB_ST_TRANSFERRED:
2249		pc = usbd_xfer_get_frame(xfer, 0);
2250		usbd_copy_out(pc, actlen - sizeof(desc), &desc, sizeof(desc));
2251
2252		offset = 0;
2253		if (UGETW(desc.tag) == ZYD_TAG_MULTIFRAME) {
2254			DPRINTF(sc, ZYD_DEBUG_RECV,
2255			    "%s: received multi-frame transfer\n", __func__);
2256
2257			for (i = 0; i < ZYD_MAX_RXFRAMECNT; i++) {
2258				uint16_t len16 = UGETW(desc.len[i]);
2259
2260				if (len16 == 0 || len16 > actlen)
2261					break;
2262
2263				zyd_rx_data(xfer, offset, len16);
2264
2265				/* next frame is aligned on a 32-bit boundary */
2266				len16 = (len16 + 3) & ~3;
2267				offset += len16;
2268				if (len16 > actlen)
2269					break;
2270				actlen -= len16;
2271			}
2272		} else {
2273			DPRINTF(sc, ZYD_DEBUG_RECV,
2274			    "%s: received single-frame transfer\n", __func__);
2275
2276			zyd_rx_data(xfer, 0, actlen);
2277		}
2278		/* FALLTHROUGH */
2279	case USB_ST_SETUP:
2280tr_setup:
2281		usbd_xfer_set_frame_len(xfer, 0, usbd_xfer_max_len(xfer));
2282		usbd_transfer_submit(xfer);
2283
2284		/*
2285		 * At the end of a USB callback it is always safe to unlock
2286		 * the private mutex of a device! That is why we do the
2287		 * "ieee80211_input" here, and not some lines up!
2288		 */
2289		ZYD_UNLOCK(sc);
2290		for (i = 0; i < sc->sc_rx_count; i++) {
2291			rssi = sc->sc_rx_data[i].rssi;
2292			m = sc->sc_rx_data[i].m;
2293			sc->sc_rx_data[i].m = NULL;
2294
2295			nf = -95;	/* XXX */
2296
2297			ni = ieee80211_find_rxnode(ic,
2298			    mtod(m, struct ieee80211_frame_min *));
2299			if (ni != NULL) {
2300				(void)ieee80211_input(ni, m, rssi, nf);
2301				ieee80211_free_node(ni);
2302			} else
2303				(void)ieee80211_input_all(ic, m, rssi, nf);
2304		}
2305		if ((ifp->if_drv_flags & IFF_DRV_OACTIVE) == 0 &&
2306		    !IFQ_IS_EMPTY(&ifp->if_snd))
2307			zyd_start(ifp);
2308		ZYD_LOCK(sc);
2309		break;
2310
2311	default:			/* Error */
2312		DPRINTF(sc, ZYD_DEBUG_ANY, "frame error: %s\n", usbd_errstr(error));
2313
2314		if (error != USB_ERR_CANCELLED) {
2315			/* try to clear stall first */
2316			usbd_xfer_set_stall(xfer);
2317			goto tr_setup;
2318		}
2319		break;
2320	}
2321}
2322
2323static uint8_t
2324zyd_plcp_signal(struct zyd_softc *sc, int rate)
2325{
2326	switch (rate) {
2327	/* OFDM rates (cf IEEE Std 802.11a-1999, pp. 14 Table 80) */
2328	case 12:
2329		return (0xb);
2330	case 18:
2331		return (0xf);
2332	case 24:
2333		return (0xa);
2334	case 36:
2335		return (0xe);
2336	case 48:
2337		return (0x9);
2338	case 72:
2339		return (0xd);
2340	case 96:
2341		return (0x8);
2342	case 108:
2343		return (0xc);
2344	/* CCK rates (NB: not IEEE std, device-specific) */
2345	case 2:
2346		return (0x0);
2347	case 4:
2348		return (0x1);
2349	case 11:
2350		return (0x2);
2351	case 22:
2352		return (0x3);
2353	}
2354
2355	device_printf(sc->sc_dev, "unsupported rate %d\n", rate);
2356	return (0x0);
2357}
2358
2359static void
2360zyd_bulk_write_callback(struct usb_xfer *xfer, usb_error_t error)
2361{
2362	struct zyd_softc *sc = usbd_xfer_softc(xfer);
2363	struct ifnet *ifp = sc->sc_ifp;
2364	struct ieee80211vap *vap;
2365	struct zyd_tx_data *data;
2366	struct mbuf *m;
2367	struct usb_page_cache *pc;
2368	int actlen;
2369
2370	usbd_xfer_status(xfer, &actlen, NULL, NULL, NULL);
2371
2372	switch (USB_GET_STATE(xfer)) {
2373	case USB_ST_TRANSFERRED:
2374		DPRINTF(sc, ZYD_DEBUG_ANY, "transfer complete, %u bytes\n",
2375		    actlen);
2376
2377		/* free resources */
2378		data = usbd_xfer_get_priv(xfer);
2379		zyd_tx_free(data, 0);
2380		usbd_xfer_set_priv(xfer, NULL);
2381
2382		ifp->if_opackets++;
2383		ifp->if_drv_flags &= ~IFF_DRV_OACTIVE;
2384
2385		/* FALLTHROUGH */
2386	case USB_ST_SETUP:
2387tr_setup:
2388		data = STAILQ_FIRST(&sc->tx_q);
2389		if (data) {
2390			STAILQ_REMOVE_HEAD(&sc->tx_q, next);
2391			m = data->m;
2392
2393			if (m->m_pkthdr.len > ZYD_MAX_TXBUFSZ) {
2394				DPRINTF(sc, ZYD_DEBUG_ANY, "data overflow, %u bytes\n",
2395				    m->m_pkthdr.len);
2396				m->m_pkthdr.len = ZYD_MAX_TXBUFSZ;
2397			}
2398			pc = usbd_xfer_get_frame(xfer, 0);
2399			usbd_copy_in(pc, 0, &data->desc, ZYD_TX_DESC_SIZE);
2400			usbd_m_copy_in(pc, ZYD_TX_DESC_SIZE, m, 0,
2401			    m->m_pkthdr.len);
2402
2403			vap = data->ni->ni_vap;
2404			if (ieee80211_radiotap_active_vap(vap)) {
2405				struct zyd_tx_radiotap_header *tap = &sc->sc_txtap;
2406
2407				tap->wt_flags = 0;
2408				tap->wt_rate = data->rate;
2409
2410				ieee80211_radiotap_tx(vap, m);
2411			}
2412
2413			usbd_xfer_set_frame_len(xfer, 0, ZYD_TX_DESC_SIZE + m->m_pkthdr.len);
2414			usbd_xfer_set_priv(xfer, data);
2415			usbd_transfer_submit(xfer);
2416		}
2417		ZYD_UNLOCK(sc);
2418		zyd_start(ifp);
2419		ZYD_LOCK(sc);
2420		break;
2421
2422	default:			/* Error */
2423		DPRINTF(sc, ZYD_DEBUG_ANY, "transfer error, %s\n",
2424		    usbd_errstr(error));
2425
2426		ifp->if_oerrors++;
2427		data = usbd_xfer_get_priv(xfer);
2428		usbd_xfer_set_priv(xfer, NULL);
2429		if (data != NULL)
2430			zyd_tx_free(data, error);
2431
2432		if (error != USB_ERR_CANCELLED) {
2433			if (error == USB_ERR_TIMEOUT)
2434				device_printf(sc->sc_dev, "device timeout\n");
2435
2436			/*
2437			 * Try to clear stall first, also if other
2438			 * errors occur, hence clearing stall
2439			 * introduces a 50 ms delay:
2440			 */
2441			usbd_xfer_set_stall(xfer);
2442			goto tr_setup;
2443		}
2444		break;
2445	}
2446}
2447
2448static int
2449zyd_tx_start(struct zyd_softc *sc, struct mbuf *m0, struct ieee80211_node *ni)
2450{
2451	struct ieee80211vap *vap = ni->ni_vap;
2452	struct ieee80211com *ic = ni->ni_ic;
2453	struct zyd_tx_desc *desc;
2454	struct zyd_tx_data *data;
2455	struct ieee80211_frame *wh;
2456	const struct ieee80211_txparam *tp;
2457	struct ieee80211_key *k;
2458	int rate, totlen;
2459	static uint8_t ratediv[] = ZYD_TX_RATEDIV;
2460	uint8_t phy;
2461	uint16_t pktlen;
2462	uint32_t bits;
2463
2464	wh = mtod(m0, struct ieee80211_frame *);
2465	data = STAILQ_FIRST(&sc->tx_free);
2466	STAILQ_REMOVE_HEAD(&sc->tx_free, next);
2467	sc->tx_nfree--;
2468
2469	if ((wh->i_fc[0] & IEEE80211_FC0_TYPE_MASK) == IEEE80211_FC0_TYPE_MGT ||
2470	    (wh->i_fc[0] & IEEE80211_FC0_TYPE_MASK) == IEEE80211_FC0_TYPE_CTL) {
2471		tp = &vap->iv_txparms[ieee80211_chan2mode(ic->ic_curchan)];
2472		rate = tp->mgmtrate;
2473	} else {
2474		tp = &vap->iv_txparms[ieee80211_chan2mode(ni->ni_chan)];
2475		/* for data frames */
2476		if (IEEE80211_IS_MULTICAST(wh->i_addr1))
2477			rate = tp->mcastrate;
2478		else if (tp->ucastrate != IEEE80211_FIXED_RATE_NONE)
2479			rate = tp->ucastrate;
2480		else {
2481			(void) ieee80211_ratectl_rate(ni, NULL, 0);
2482			rate = ni->ni_txrate;
2483		}
2484	}
2485
2486	if (wh->i_fc[1] & IEEE80211_FC1_WEP) {
2487		k = ieee80211_crypto_encap(ni, m0);
2488		if (k == NULL) {
2489			m_freem(m0);
2490			return (ENOBUFS);
2491		}
2492		/* packet header may have moved, reset our local pointer */
2493		wh = mtod(m0, struct ieee80211_frame *);
2494	}
2495
2496	data->ni = ni;
2497	data->m = m0;
2498	data->rate = rate;
2499
2500	/* fill Tx descriptor */
2501	desc = &data->desc;
2502	phy = zyd_plcp_signal(sc, rate);
2503	desc->phy = phy;
2504	if (ZYD_RATE_IS_OFDM(rate)) {
2505		desc->phy |= ZYD_TX_PHY_OFDM;
2506		if (IEEE80211_IS_CHAN_5GHZ(ic->ic_curchan))
2507			desc->phy |= ZYD_TX_PHY_5GHZ;
2508	} else if (rate != 2 && (ic->ic_flags & IEEE80211_F_SHPREAMBLE))
2509		desc->phy |= ZYD_TX_PHY_SHPREAMBLE;
2510
2511	totlen = m0->m_pkthdr.len + IEEE80211_CRC_LEN;
2512	desc->len = htole16(totlen);
2513
2514	desc->flags = ZYD_TX_FLAG_BACKOFF;
2515	if (!IEEE80211_IS_MULTICAST(wh->i_addr1)) {
2516		/* multicast frames are not sent at OFDM rates in 802.11b/g */
2517		if (totlen > vap->iv_rtsthreshold) {
2518			desc->flags |= ZYD_TX_FLAG_RTS;
2519		} else if (ZYD_RATE_IS_OFDM(rate) &&
2520		    (ic->ic_flags & IEEE80211_F_USEPROT)) {
2521			if (ic->ic_protmode == IEEE80211_PROT_CTSONLY)
2522				desc->flags |= ZYD_TX_FLAG_CTS_TO_SELF;
2523			else if (ic->ic_protmode == IEEE80211_PROT_RTSCTS)
2524				desc->flags |= ZYD_TX_FLAG_RTS;
2525		}
2526	} else
2527		desc->flags |= ZYD_TX_FLAG_MULTICAST;
2528	if ((wh->i_fc[0] &
2529	    (IEEE80211_FC0_TYPE_MASK | IEEE80211_FC0_SUBTYPE_MASK)) ==
2530	    (IEEE80211_FC0_TYPE_CTL | IEEE80211_FC0_SUBTYPE_PS_POLL))
2531		desc->flags |= ZYD_TX_FLAG_TYPE(ZYD_TX_TYPE_PS_POLL);
2532
2533	/* actual transmit length (XXX why +10?) */
2534	pktlen = ZYD_TX_DESC_SIZE + 10;
2535	if (sc->sc_macrev == ZYD_ZD1211)
2536		pktlen += totlen;
2537	desc->pktlen = htole16(pktlen);
2538
2539	bits = (rate == 11) ? (totlen * 16) + 10 :
2540	    ((rate == 22) ? (totlen * 8) + 10 : (totlen * 8));
2541	desc->plcp_length = htole16(bits / ratediv[phy]);
2542	desc->plcp_service = 0;
2543	if (rate == 22 && (bits % 11) > 0 && (bits % 11) <= 3)
2544		desc->plcp_service |= ZYD_PLCP_LENGEXT;
2545	desc->nextlen = 0;
2546
2547	if (ieee80211_radiotap_active_vap(vap)) {
2548		struct zyd_tx_radiotap_header *tap = &sc->sc_txtap;
2549
2550		tap->wt_flags = 0;
2551		tap->wt_rate = rate;
2552
2553		ieee80211_radiotap_tx(vap, m0);
2554	}
2555
2556	DPRINTF(sc, ZYD_DEBUG_XMIT,
2557	    "%s: sending data frame len=%zu rate=%u\n",
2558	    device_get_nameunit(sc->sc_dev), (size_t)m0->m_pkthdr.len,
2559		rate);
2560
2561	STAILQ_INSERT_TAIL(&sc->tx_q, data, next);
2562	usbd_transfer_start(sc->sc_xfer[ZYD_BULK_WR]);
2563
2564	return (0);
2565}
2566
2567static void
2568zyd_start(struct ifnet *ifp)
2569{
2570	struct zyd_softc *sc = ifp->if_softc;
2571	struct ieee80211_node *ni;
2572	struct mbuf *m;
2573
2574	ZYD_LOCK(sc);
2575	for (;;) {
2576		IFQ_DRV_DEQUEUE(&ifp->if_snd, m);
2577		if (m == NULL)
2578			break;
2579		if (sc->tx_nfree == 0) {
2580			IFQ_DRV_PREPEND(&ifp->if_snd, m);
2581			ifp->if_drv_flags |= IFF_DRV_OACTIVE;
2582			break;
2583		}
2584		ni = (struct ieee80211_node *)m->m_pkthdr.rcvif;
2585		if (zyd_tx_start(sc, m, ni) != 0) {
2586			ieee80211_free_node(ni);
2587			ifp->if_oerrors++;
2588			break;
2589		}
2590	}
2591	ZYD_UNLOCK(sc);
2592}
2593
2594static int
2595zyd_raw_xmit(struct ieee80211_node *ni, struct mbuf *m,
2596	const struct ieee80211_bpf_params *params)
2597{
2598	struct ieee80211com *ic = ni->ni_ic;
2599	struct ifnet *ifp = ic->ic_ifp;
2600	struct zyd_softc *sc = ifp->if_softc;
2601
2602	ZYD_LOCK(sc);
2603	/* prevent management frames from being sent if we're not ready */
2604	if (!(ifp->if_drv_flags & IFF_DRV_RUNNING)) {
2605		ZYD_UNLOCK(sc);
2606		m_freem(m);
2607		ieee80211_free_node(ni);
2608		return (ENETDOWN);
2609	}
2610	if (sc->tx_nfree == 0) {
2611		ifp->if_drv_flags |= IFF_DRV_OACTIVE;
2612		ZYD_UNLOCK(sc);
2613		m_freem(m);
2614		ieee80211_free_node(ni);
2615		return (ENOBUFS);		/* XXX */
2616	}
2617
2618	/*
2619	 * Legacy path; interpret frame contents to decide
2620	 * precisely how to send the frame.
2621	 * XXX raw path
2622	 */
2623	if (zyd_tx_start(sc, m, ni) != 0) {
2624		ZYD_UNLOCK(sc);
2625		ifp->if_oerrors++;
2626		ieee80211_free_node(ni);
2627		return (EIO);
2628	}
2629	ZYD_UNLOCK(sc);
2630	return (0);
2631}
2632
2633static int
2634zyd_ioctl(struct ifnet *ifp, u_long cmd, caddr_t data)
2635{
2636	struct zyd_softc *sc = ifp->if_softc;
2637	struct ieee80211com *ic = ifp->if_l2com;
2638	struct ifreq *ifr = (struct ifreq *) data;
2639	int error = 0, startall = 0;
2640
2641	switch (cmd) {
2642	case SIOCSIFFLAGS:
2643		ZYD_LOCK(sc);
2644		if (ifp->if_flags & IFF_UP) {
2645			if ((ifp->if_drv_flags & IFF_DRV_RUNNING) == 0) {
2646				zyd_init_locked(sc);
2647				startall = 1;
2648			} else
2649				zyd_set_multi(sc);
2650		} else {
2651			if (ifp->if_drv_flags & IFF_DRV_RUNNING)
2652				zyd_stop(sc);
2653		}
2654		ZYD_UNLOCK(sc);
2655		if (startall)
2656			ieee80211_start_all(ic);
2657		break;
2658	case SIOCGIFMEDIA:
2659		error = ifmedia_ioctl(ifp, ifr, &ic->ic_media, cmd);
2660		break;
2661	case SIOCGIFADDR:
2662		error = ether_ioctl(ifp, cmd, data);
2663		break;
2664	default:
2665		error = EINVAL;
2666		break;
2667	}
2668	return (error);
2669}
2670
2671static void
2672zyd_init_locked(struct zyd_softc *sc)
2673{
2674	struct ifnet *ifp = sc->sc_ifp;
2675	struct ieee80211com *ic = ifp->if_l2com;
2676	struct usb_config_descriptor *cd;
2677	int error;
2678	uint32_t val;
2679
2680	ZYD_LOCK_ASSERT(sc, MA_OWNED);
2681
2682	if (!(sc->sc_flags & ZYD_FLAG_INITONCE)) {
2683		error = zyd_loadfirmware(sc);
2684		if (error != 0) {
2685			device_printf(sc->sc_dev,
2686			    "could not load firmware (error=%d)\n", error);
2687			goto fail;
2688		}
2689
2690		/* reset device */
2691		cd = usbd_get_config_descriptor(sc->sc_udev);
2692		error = usbd_req_set_config(sc->sc_udev, &sc->sc_mtx,
2693		    cd->bConfigurationValue);
2694		if (error)
2695			device_printf(sc->sc_dev, "reset failed, continuing\n");
2696
2697		error = zyd_hw_init(sc);
2698		if (error) {
2699			device_printf(sc->sc_dev,
2700			    "hardware initialization failed\n");
2701			goto fail;
2702		}
2703
2704		device_printf(sc->sc_dev,
2705		    "HMAC ZD1211%s, FW %02x.%02x, RF %s S%x, PA%x LED %x "
2706		    "BE%x NP%x Gain%x F%x\n",
2707		    (sc->sc_macrev == ZYD_ZD1211) ? "": "B",
2708		    sc->sc_fwrev >> 8, sc->sc_fwrev & 0xff,
2709		    zyd_rf_name(sc->sc_rfrev), sc->sc_al2230s, sc->sc_parev,
2710		    sc->sc_ledtype, sc->sc_bandedge6, sc->sc_newphy,
2711		    sc->sc_cckgain, sc->sc_fix_cr157);
2712
2713		/* read regulatory domain (currently unused) */
2714		zyd_read32_m(sc, ZYD_EEPROM_SUBID, &val);
2715		sc->sc_regdomain = val >> 16;
2716		DPRINTF(sc, ZYD_DEBUG_INIT, "regulatory domain %x\n",
2717		    sc->sc_regdomain);
2718
2719		/* we'll do software WEP decryption for now */
2720		DPRINTF(sc, ZYD_DEBUG_INIT, "%s: setting encryption type\n",
2721		    __func__);
2722		zyd_write32_m(sc, ZYD_MAC_ENCRYPTION_TYPE, ZYD_ENC_SNIFFER);
2723
2724		sc->sc_flags |= ZYD_FLAG_INITONCE;
2725	}
2726
2727	if (ifp->if_drv_flags & IFF_DRV_RUNNING)
2728		zyd_stop(sc);
2729
2730	DPRINTF(sc, ZYD_DEBUG_INIT, "setting MAC address to %6D\n",
2731	    IF_LLADDR(ifp), ":");
2732	error = zyd_set_macaddr(sc, IF_LLADDR(ifp));
2733	if (error != 0)
2734		return;
2735
2736	/* set basic rates */
2737	if (ic->ic_curmode == IEEE80211_MODE_11B)
2738		zyd_write32_m(sc, ZYD_MAC_BAS_RATE, 0x0003);
2739	else if (ic->ic_curmode == IEEE80211_MODE_11A)
2740		zyd_write32_m(sc, ZYD_MAC_BAS_RATE, 0x1500);
2741	else	/* assumes 802.11b/g */
2742		zyd_write32_m(sc, ZYD_MAC_BAS_RATE, 0xff0f);
2743
2744	/* promiscuous mode */
2745	zyd_write32_m(sc, ZYD_MAC_SNIFFER, 0);
2746	/* multicast setup */
2747	zyd_set_multi(sc);
2748	/* set RX filter  */
2749	error = zyd_set_rxfilter(sc);
2750	if (error != 0)
2751		goto fail;
2752
2753	/* switch radio transmitter ON */
2754	error = zyd_switch_radio(sc, 1);
2755	if (error != 0)
2756		goto fail;
2757	/* set default BSS channel */
2758	zyd_set_chan(sc, ic->ic_curchan);
2759
2760	/*
2761	 * Allocate Tx and Rx xfer queues.
2762	 */
2763	zyd_setup_tx_list(sc);
2764
2765	/* enable interrupts */
2766	zyd_write32_m(sc, ZYD_CR_INTERRUPT, ZYD_HWINT_MASK);
2767
2768	ifp->if_drv_flags &= ~IFF_DRV_OACTIVE;
2769	ifp->if_drv_flags |= IFF_DRV_RUNNING;
2770	usbd_xfer_set_stall(sc->sc_xfer[ZYD_BULK_WR]);
2771	usbd_transfer_start(sc->sc_xfer[ZYD_BULK_RD]);
2772	usbd_transfer_start(sc->sc_xfer[ZYD_INTR_RD]);
2773
2774	return;
2775
2776fail:	zyd_stop(sc);
2777	return;
2778}
2779
2780static void
2781zyd_init(void *priv)
2782{
2783	struct zyd_softc *sc = priv;
2784	struct ifnet *ifp = sc->sc_ifp;
2785	struct ieee80211com *ic = ifp->if_l2com;
2786
2787	ZYD_LOCK(sc);
2788	zyd_init_locked(sc);
2789	ZYD_UNLOCK(sc);
2790
2791	if (ifp->if_drv_flags & IFF_DRV_RUNNING)
2792		ieee80211_start_all(ic);		/* start all vap's */
2793}
2794
2795static void
2796zyd_stop(struct zyd_softc *sc)
2797{
2798	struct ifnet *ifp = sc->sc_ifp;
2799	int error;
2800
2801	ZYD_LOCK_ASSERT(sc, MA_OWNED);
2802
2803	ifp->if_drv_flags &= ~(IFF_DRV_RUNNING | IFF_DRV_OACTIVE);
2804
2805	/*
2806	 * Drain all the transfers, if not already drained:
2807	 */
2808	ZYD_UNLOCK(sc);
2809	usbd_transfer_drain(sc->sc_xfer[ZYD_BULK_WR]);
2810	usbd_transfer_drain(sc->sc_xfer[ZYD_BULK_RD]);
2811	ZYD_LOCK(sc);
2812
2813	zyd_unsetup_tx_list(sc);
2814
2815	/* Stop now if the device was never set up */
2816	if (!(sc->sc_flags & ZYD_FLAG_INITONCE))
2817		return;
2818
2819	/* switch radio transmitter OFF */
2820	error = zyd_switch_radio(sc, 0);
2821	if (error != 0)
2822		goto fail;
2823	/* disable Rx */
2824	zyd_write32_m(sc, ZYD_MAC_RXFILTER, 0);
2825	/* disable interrupts */
2826	zyd_write32_m(sc, ZYD_CR_INTERRUPT, 0);
2827
2828fail:
2829	return;
2830}
2831
2832static int
2833zyd_loadfirmware(struct zyd_softc *sc)
2834{
2835	struct usb_device_request req;
2836	size_t size;
2837	u_char *fw;
2838	uint8_t stat;
2839	uint16_t addr;
2840
2841	if (sc->sc_flags & ZYD_FLAG_FWLOADED)
2842		return (0);
2843
2844	if (sc->sc_macrev == ZYD_ZD1211) {
2845		fw = (u_char *)zd1211_firmware;
2846		size = sizeof(zd1211_firmware);
2847	} else {
2848		fw = (u_char *)zd1211b_firmware;
2849		size = sizeof(zd1211b_firmware);
2850	}
2851
2852	req.bmRequestType = UT_WRITE_VENDOR_DEVICE;
2853	req.bRequest = ZYD_DOWNLOADREQ;
2854	USETW(req.wIndex, 0);
2855
2856	addr = ZYD_FIRMWARE_START_ADDR;
2857	while (size > 0) {
2858		/*
2859		 * When the transfer size is 4096 bytes, it is not
2860		 * likely to be able to transfer it.
2861		 * The cause is port or machine or chip?
2862		 */
2863		const int mlen = min(size, 64);
2864
2865		DPRINTF(sc, ZYD_DEBUG_FW,
2866		    "loading firmware block: len=%d, addr=0x%x\n", mlen, addr);
2867
2868		USETW(req.wValue, addr);
2869		USETW(req.wLength, mlen);
2870		if (zyd_do_request(sc, &req, fw) != 0)
2871			return (EIO);
2872
2873		addr += mlen / 2;
2874		fw   += mlen;
2875		size -= mlen;
2876	}
2877
2878	/* check whether the upload succeeded */
2879	req.bmRequestType = UT_READ_VENDOR_DEVICE;
2880	req.bRequest = ZYD_DOWNLOADSTS;
2881	USETW(req.wValue, 0);
2882	USETW(req.wIndex, 0);
2883	USETW(req.wLength, sizeof(stat));
2884	if (zyd_do_request(sc, &req, &stat) != 0)
2885		return (EIO);
2886
2887	sc->sc_flags |= ZYD_FLAG_FWLOADED;
2888
2889	return (stat & 0x80) ? (EIO) : (0);
2890}
2891
2892static void
2893zyd_scan_start(struct ieee80211com *ic)
2894{
2895	struct ifnet *ifp = ic->ic_ifp;
2896	struct zyd_softc *sc = ifp->if_softc;
2897
2898	ZYD_LOCK(sc);
2899	/* want broadcast address while scanning */
2900	zyd_set_bssid(sc, ifp->if_broadcastaddr);
2901	ZYD_UNLOCK(sc);
2902}
2903
2904static void
2905zyd_scan_end(struct ieee80211com *ic)
2906{
2907	struct zyd_softc *sc = ic->ic_ifp->if_softc;
2908
2909	ZYD_LOCK(sc);
2910	/* restore previous bssid */
2911	zyd_set_bssid(sc, sc->sc_bssid);
2912	ZYD_UNLOCK(sc);
2913}
2914
2915static void
2916zyd_set_channel(struct ieee80211com *ic)
2917{
2918	struct zyd_softc *sc = ic->ic_ifp->if_softc;
2919
2920	ZYD_LOCK(sc);
2921	zyd_set_chan(sc, ic->ic_curchan);
2922	ZYD_UNLOCK(sc);
2923}
2924
2925static device_method_t zyd_methods[] = {
2926        /* Device interface */
2927        DEVMETHOD(device_probe, zyd_match),
2928        DEVMETHOD(device_attach, zyd_attach),
2929        DEVMETHOD(device_detach, zyd_detach),
2930
2931	{ 0, 0 }
2932};
2933
2934static driver_t zyd_driver = {
2935        "zyd",
2936        zyd_methods,
2937        sizeof(struct zyd_softc)
2938};
2939
2940static devclass_t zyd_devclass;
2941
2942DRIVER_MODULE(zyd, uhub, zyd_driver, zyd_devclass, NULL, 0);
2943MODULE_DEPEND(zyd, usb, 1, 1, 1);
2944MODULE_DEPEND(zyd, wlan, 1, 1, 1);
2945MODULE_VERSION(zyd, 1);
2946