if_urtwn.c revision 1.20 1 1.20 christos /* $NetBSD: if_urtwn.c,v 1.20 2013/02/05 18:15:04 christos Exp $ */
2 1.1 nonaka /* $OpenBSD: if_urtwn.c,v 1.20 2011/11/26 06:39:33 ckuethe Exp $ */
3 1.1 nonaka
4 1.1 nonaka /*-
5 1.1 nonaka * Copyright (c) 2010 Damien Bergamini <damien.bergamini (at) free.fr>
6 1.1 nonaka *
7 1.1 nonaka * Permission to use, copy, modify, and distribute this software for any
8 1.1 nonaka * purpose with or without fee is hereby granted, provided that the above
9 1.1 nonaka * copyright notice and this permission notice appear in all copies.
10 1.1 nonaka *
11 1.1 nonaka * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES
12 1.1 nonaka * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF
13 1.1 nonaka * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR
14 1.1 nonaka * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
15 1.1 nonaka * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN
16 1.1 nonaka * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF
17 1.1 nonaka * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
18 1.1 nonaka */
19 1.1 nonaka
20 1.8 christos /*-
21 1.1 nonaka * Driver for Realtek RTL8188CE-VAU/RTL8188CUS/RTL8188RU/RTL8192CU.
22 1.1 nonaka */
23 1.1 nonaka
24 1.1 nonaka #include <sys/cdefs.h>
25 1.20 christos __KERNEL_RCSID(0, "$NetBSD: if_urtwn.c,v 1.20 2013/02/05 18:15:04 christos Exp $");
26 1.11 jmcneill
27 1.11 jmcneill #ifdef _KERNEL_OPT
28 1.11 jmcneill #include "opt_inet.h"
29 1.11 jmcneill #endif
30 1.1 nonaka
31 1.1 nonaka #include <sys/param.h>
32 1.1 nonaka #include <sys/sockio.h>
33 1.1 nonaka #include <sys/sysctl.h>
34 1.1 nonaka #include <sys/mbuf.h>
35 1.1 nonaka #include <sys/kernel.h>
36 1.1 nonaka #include <sys/socket.h>
37 1.1 nonaka #include <sys/systm.h>
38 1.1 nonaka #include <sys/malloc.h>
39 1.1 nonaka #include <sys/module.h>
40 1.1 nonaka #include <sys/conf.h>
41 1.1 nonaka #include <sys/device.h>
42 1.1 nonaka
43 1.1 nonaka #include <sys/bus.h>
44 1.1 nonaka #include <machine/endian.h>
45 1.1 nonaka #include <sys/intr.h>
46 1.1 nonaka
47 1.1 nonaka #include <net/bpf.h>
48 1.1 nonaka #include <net/if.h>
49 1.1 nonaka #include <net/if_arp.h>
50 1.1 nonaka #include <net/if_dl.h>
51 1.1 nonaka #include <net/if_ether.h>
52 1.1 nonaka #include <net/if_media.h>
53 1.1 nonaka #include <net/if_types.h>
54 1.1 nonaka
55 1.1 nonaka #include <netinet/in.h>
56 1.1 nonaka #include <netinet/in_systm.h>
57 1.1 nonaka #include <netinet/in_var.h>
58 1.1 nonaka #include <netinet/ip.h>
59 1.11 jmcneill #include <netinet/if_inarp.h>
60 1.1 nonaka
61 1.1 nonaka #include <net80211/ieee80211_netbsd.h>
62 1.1 nonaka #include <net80211/ieee80211_var.h>
63 1.1 nonaka #include <net80211/ieee80211_radiotap.h>
64 1.1 nonaka
65 1.1 nonaka #include <dev/firmload.h>
66 1.1 nonaka
67 1.1 nonaka #include <dev/usb/usb.h>
68 1.1 nonaka #include <dev/usb/usbdi.h>
69 1.1 nonaka #include <dev/usb/usbdivar.h>
70 1.1 nonaka #include <dev/usb/usbdi_util.h>
71 1.1 nonaka #include <dev/usb/usbdevs.h>
72 1.1 nonaka
73 1.1 nonaka #include <dev/usb/if_urtwnreg.h>
74 1.1 nonaka #include <dev/usb/if_urtwnvar.h>
75 1.1 nonaka #include <dev/usb/if_urtwn_data.h>
76 1.1 nonaka
77 1.12 christos /*
78 1.12 christos * The sc_write_mtx locking is to prevent sequences of writes from
79 1.12 christos * being intermingled with each other. I don't know if this is really
80 1.12 christos * needed. I have added it just to be on the safe side.
81 1.12 christos */
82 1.12 christos
83 1.1 nonaka #ifdef URTWN_DEBUG
84 1.1 nonaka #define DBG_INIT __BIT(0)
85 1.1 nonaka #define DBG_FN __BIT(1)
86 1.1 nonaka #define DBG_TX __BIT(2)
87 1.1 nonaka #define DBG_RX __BIT(3)
88 1.1 nonaka #define DBG_STM __BIT(4)
89 1.1 nonaka #define DBG_RF __BIT(5)
90 1.1 nonaka #define DBG_REG __BIT(6)
91 1.1 nonaka #define DBG_ALL 0xffffffffU
92 1.10 jmcneill u_int urtwn_debug = 0;
93 1.1 nonaka #define DPRINTFN(n, s) \
94 1.1 nonaka do { if (urtwn_debug & (n)) printf s; } while (/*CONSTCOND*/0)
95 1.1 nonaka #else
96 1.1 nonaka #define DPRINTFN(n, s)
97 1.1 nonaka #endif
98 1.1 nonaka
99 1.1 nonaka static const struct usb_devno urtwn_devs[] = {
100 1.1 nonaka { USB_VENDOR_ABOCOM, USB_PRODUCT_ABOCOM_RTL8188CU_1 },
101 1.1 nonaka { USB_VENDOR_ABOCOM, USB_PRODUCT_ABOCOM_RTL8188CU_2 },
102 1.1 nonaka { USB_VENDOR_ABOCOM, USB_PRODUCT_ABOCOM_RTL8192CU },
103 1.3 nonaka { USB_VENDOR_ASUSTEK, USB_PRODUCT_ASUSTEK_RTL8192CU },
104 1.1 nonaka { USB_VENDOR_AZUREWAVE, USB_PRODUCT_AZUREWAVE_RTL8188CE_1 },
105 1.1 nonaka { USB_VENDOR_AZUREWAVE, USB_PRODUCT_AZUREWAVE_RTL8188CE_2 },
106 1.3 nonaka { USB_VENDOR_AZUREWAVE, USB_PRODUCT_AZUREWAVE_RTL8188CU },
107 1.1 nonaka { USB_VENDOR_BELKIN, USB_PRODUCT_BELKIN_RTL8188CU },
108 1.3 nonaka { USB_VENDOR_BELKIN, USB_PRODUCT_BELKIN_RTL8192CU },
109 1.3 nonaka { USB_VENDOR_CHICONY, USB_PRODUCT_CHICONY_RTL8188CUS_1 },
110 1.3 nonaka { USB_VENDOR_CHICONY, USB_PRODUCT_CHICONY_RTL8188CUS_2 },
111 1.3 nonaka { USB_VENDOR_CHICONY, USB_PRODUCT_CHICONY_RTL8188CUS_3 },
112 1.3 nonaka { USB_VENDOR_CHICONY, USB_PRODUCT_CHICONY_RTL8188CUS_4 },
113 1.3 nonaka { USB_VENDOR_CHICONY, USB_PRODUCT_CHICONY_RTL8188CUS_5 },
114 1.1 nonaka { USB_VENDOR_COREGA, USB_PRODUCT_COREGA_RTL8192CU },
115 1.1 nonaka { USB_VENDOR_DLINK, USB_PRODUCT_DLINK_RTL8188CU },
116 1.1 nonaka { USB_VENDOR_DLINK, USB_PRODUCT_DLINK_RTL8192CU_1 },
117 1.1 nonaka { USB_VENDOR_DLINK, USB_PRODUCT_DLINK_RTL8192CU_2 },
118 1.1 nonaka { USB_VENDOR_DLINK, USB_PRODUCT_DLINK_RTL8192CU_3 },
119 1.1 nonaka { USB_VENDOR_EDIMAX, USB_PRODUCT_EDIMAX_RTL8188CU },
120 1.1 nonaka { USB_VENDOR_EDIMAX, USB_PRODUCT_EDIMAX_RTL8192CU },
121 1.1 nonaka { USB_VENDOR_FEIXUN, USB_PRODUCT_FEIXUN_RTL8188CU },
122 1.1 nonaka { USB_VENDOR_FEIXUN, USB_PRODUCT_FEIXUN_RTL8192CU },
123 1.1 nonaka { USB_VENDOR_GUILLEMOT, USB_PRODUCT_GUILLEMOT_HWNUP150 },
124 1.3 nonaka { USB_VENDOR_HAWKING, USB_PRODUCT_HAWKING_RTL8192CU },
125 1.1 nonaka { USB_VENDOR_HP3, USB_PRODUCT_HP3_RTL8188CU },
126 1.1 nonaka { USB_VENDOR_NETGEAR, USB_PRODUCT_NETGEAR_WNA1000M },
127 1.3 nonaka { USB_VENDOR_NETGEAR, USB_PRODUCT_NETGEAR_RTL8192CU },
128 1.3 nonaka { USB_VENDOR_NETGEAR4, USB_PRODUCT_NETGEAR4_RTL8188CU },
129 1.1 nonaka { USB_VENDOR_NOVATECH, USB_PRODUCT_NOVATECH_RTL8188CU },
130 1.1 nonaka { USB_VENDOR_PLANEX2, USB_PRODUCT_PLANEX2_RTL8188CU_1 },
131 1.1 nonaka { USB_VENDOR_PLANEX2, USB_PRODUCT_PLANEX2_RTL8188CU_2 },
132 1.1 nonaka { USB_VENDOR_PLANEX2, USB_PRODUCT_PLANEX2_RTL8192CU },
133 1.3 nonaka { USB_VENDOR_PLANEX2, USB_PRODUCT_PLANEX2_RTL8188CU_3 },
134 1.3 nonaka { USB_VENDOR_PLANEX2, USB_PRODUCT_PLANEX2_RTL8188CU_4 },
135 1.3 nonaka { USB_VENDOR_PLANEX2, USB_PRODUCT_PLANEX2_RTL8188CUS },
136 1.1 nonaka { USB_VENDOR_REALTEK, USB_PRODUCT_REALTEK_RTL8188CE_0 },
137 1.1 nonaka { USB_VENDOR_REALTEK, USB_PRODUCT_REALTEK_RTL8188CE_1 },
138 1.3 nonaka { USB_VENDOR_REALTEK, USB_PRODUCT_REALTEK_RTL8188CTV },
139 1.1 nonaka { USB_VENDOR_REALTEK, USB_PRODUCT_REALTEK_RTL8188CU_0 },
140 1.1 nonaka { USB_VENDOR_REALTEK, USB_PRODUCT_REALTEK_RTL8188CU_1 },
141 1.1 nonaka { USB_VENDOR_REALTEK, USB_PRODUCT_REALTEK_RTL8188CU_2 },
142 1.3 nonaka { USB_VENDOR_REALTEK, USB_PRODUCT_REALTEK_RTL8188CU_COMBO },
143 1.3 nonaka { USB_VENDOR_REALTEK, USB_PRODUCT_REALTEK_RTL8188CUS },
144 1.1 nonaka { USB_VENDOR_REALTEK, USB_PRODUCT_REALTEK_RTL8188RU },
145 1.3 nonaka { USB_VENDOR_REALTEK, USB_PRODUCT_REALTEK_RTL8188RU_2 },
146 1.1 nonaka { USB_VENDOR_REALTEK, USB_PRODUCT_REALTEK_RTL8191CU },
147 1.1 nonaka { USB_VENDOR_REALTEK, USB_PRODUCT_REALTEK_RTL8192CE },
148 1.1 nonaka { USB_VENDOR_REALTEK, USB_PRODUCT_REALTEK_RTL8192CU },
149 1.1 nonaka { USB_VENDOR_SITECOMEU, USB_PRODUCT_SITECOMEU_RTL8188CU },
150 1.3 nonaka { USB_VENDOR_SITECOMEU, USB_PRODUCT_SITECOMEU_RTL8188CU_2 },
151 1.3 nonaka { USB_VENDOR_SITECOMEU, USB_PRODUCT_SITECOMEU_RTL8192CU },
152 1.1 nonaka { USB_VENDOR_TRENDNET, USB_PRODUCT_TRENDNET_RTL8188CU },
153 1.3 nonaka { USB_VENDOR_TRENDNET, USB_PRODUCT_TRENDNET_RTL8192CU },
154 1.1 nonaka { USB_VENDOR_ZYXEL, USB_PRODUCT_ZYXEL_RTL8192CU }
155 1.1 nonaka };
156 1.1 nonaka
157 1.1 nonaka static int urtwn_match(device_t, cfdata_t, void *);
158 1.1 nonaka static void urtwn_attach(device_t, device_t, void *);
159 1.1 nonaka static int urtwn_detach(device_t, int);
160 1.1 nonaka static int urtwn_activate(device_t, enum devact);
161 1.1 nonaka
162 1.1 nonaka CFATTACH_DECL_NEW(urtwn, sizeof(struct urtwn_softc), urtwn_match,
163 1.1 nonaka urtwn_attach, urtwn_detach, urtwn_activate);
164 1.1 nonaka
165 1.1 nonaka static int urtwn_open_pipes(struct urtwn_softc *);
166 1.1 nonaka static void urtwn_close_pipes(struct urtwn_softc *);
167 1.1 nonaka static int urtwn_alloc_rx_list(struct urtwn_softc *);
168 1.1 nonaka static void urtwn_free_rx_list(struct urtwn_softc *);
169 1.1 nonaka static int urtwn_alloc_tx_list(struct urtwn_softc *);
170 1.1 nonaka static void urtwn_free_tx_list(struct urtwn_softc *);
171 1.1 nonaka static void urtwn_task(void *);
172 1.1 nonaka static void urtwn_do_async(struct urtwn_softc *,
173 1.1 nonaka void (*)(struct urtwn_softc *, void *), void *, int);
174 1.1 nonaka static void urtwn_wait_async(struct urtwn_softc *);
175 1.1 nonaka static int urtwn_write_region_1(struct urtwn_softc *, uint16_t, uint8_t *,
176 1.1 nonaka int);
177 1.12 christos static void urtwn_write_1(struct urtwn_softc *, uint16_t, uint8_t);
178 1.12 christos static void urtwn_write_2(struct urtwn_softc *, uint16_t, uint16_t);
179 1.12 christos static void urtwn_write_4(struct urtwn_softc *, uint16_t, uint32_t);
180 1.12 christos static int urtwn_write_region(struct urtwn_softc *, uint16_t, uint8_t *,
181 1.12 christos int);
182 1.1 nonaka static int urtwn_read_region_1(struct urtwn_softc *, uint16_t, uint8_t *,
183 1.1 nonaka int);
184 1.12 christos static uint8_t urtwn_read_1(struct urtwn_softc *, uint16_t);
185 1.12 christos static uint16_t urtwn_read_2(struct urtwn_softc *, uint16_t);
186 1.12 christos static uint32_t urtwn_read_4(struct urtwn_softc *, uint16_t);
187 1.1 nonaka static int urtwn_fw_cmd(struct urtwn_softc *, uint8_t, const void *, int);
188 1.12 christos static void urtwn_rf_write(struct urtwn_softc *, int, uint8_t, uint32_t);
189 1.1 nonaka static uint32_t urtwn_rf_read(struct urtwn_softc *, int, uint8_t);
190 1.1 nonaka static int urtwn_llt_write(struct urtwn_softc *, uint32_t, uint32_t);
191 1.1 nonaka static uint8_t urtwn_efuse_read_1(struct urtwn_softc *, uint16_t);
192 1.1 nonaka static void urtwn_efuse_read(struct urtwn_softc *);
193 1.1 nonaka static int urtwn_read_chipid(struct urtwn_softc *);
194 1.12 christos #ifdef URTWN_DEBUG
195 1.12 christos static void urtwn_dump_rom(struct urtwn_softc *, struct r92c_rom *);
196 1.12 christos #endif
197 1.1 nonaka static void urtwn_read_rom(struct urtwn_softc *);
198 1.1 nonaka static int urtwn_media_change(struct ifnet *);
199 1.1 nonaka static int urtwn_ra_init(struct urtwn_softc *);
200 1.12 christos static int urtwn_get_nettype(struct urtwn_softc *);
201 1.12 christos static void urtwn_set_nettype0_msr(struct urtwn_softc *, uint8_t);
202 1.1 nonaka static void urtwn_tsf_sync_enable(struct urtwn_softc *);
203 1.1 nonaka static void urtwn_set_led(struct urtwn_softc *, int, int);
204 1.1 nonaka static void urtwn_calib_to(void *);
205 1.1 nonaka static void urtwn_calib_to_cb(struct urtwn_softc *, void *);
206 1.1 nonaka static void urtwn_next_scan(void *);
207 1.1 nonaka static int urtwn_newstate(struct ieee80211com *, enum ieee80211_state,
208 1.1 nonaka int);
209 1.1 nonaka static void urtwn_newstate_cb(struct urtwn_softc *, void *);
210 1.1 nonaka static int urtwn_wme_update(struct ieee80211com *);
211 1.1 nonaka static void urtwn_wme_update_cb(struct urtwn_softc *, void *);
212 1.1 nonaka static void urtwn_update_avgrssi(struct urtwn_softc *, int, int8_t);
213 1.1 nonaka static int8_t urtwn_get_rssi(struct urtwn_softc *, int, void *);
214 1.1 nonaka static void urtwn_rx_frame(struct urtwn_softc *, uint8_t *, int);
215 1.1 nonaka static void urtwn_rxeof(usbd_xfer_handle, usbd_private_handle, usbd_status);
216 1.1 nonaka static void urtwn_txeof(usbd_xfer_handle, usbd_private_handle, usbd_status);
217 1.1 nonaka static int urtwn_tx(struct urtwn_softc *, struct mbuf *,
218 1.12 christos struct ieee80211_node *, struct urtwn_tx_data *);
219 1.1 nonaka static void urtwn_start(struct ifnet *);
220 1.1 nonaka static void urtwn_watchdog(struct ifnet *);
221 1.1 nonaka static int urtwn_ioctl(struct ifnet *, u_long, void *);
222 1.1 nonaka static int urtwn_power_on(struct urtwn_softc *);
223 1.1 nonaka static int urtwn_llt_init(struct urtwn_softc *);
224 1.1 nonaka static void urtwn_fw_reset(struct urtwn_softc *);
225 1.1 nonaka static int urtwn_fw_loadpage(struct urtwn_softc *, int, uint8_t *, int);
226 1.1 nonaka static int urtwn_load_firmware(struct urtwn_softc *);
227 1.1 nonaka static int urtwn_dma_init(struct urtwn_softc *);
228 1.1 nonaka static void urtwn_mac_init(struct urtwn_softc *);
229 1.1 nonaka static void urtwn_bb_init(struct urtwn_softc *);
230 1.1 nonaka static void urtwn_rf_init(struct urtwn_softc *);
231 1.1 nonaka static void urtwn_cam_init(struct urtwn_softc *);
232 1.1 nonaka static void urtwn_pa_bias_init(struct urtwn_softc *);
233 1.1 nonaka static void urtwn_rxfilter_init(struct urtwn_softc *);
234 1.1 nonaka static void urtwn_edca_init(struct urtwn_softc *);
235 1.1 nonaka static void urtwn_write_txpower(struct urtwn_softc *, int, uint16_t[]);
236 1.1 nonaka static void urtwn_get_txpower(struct urtwn_softc *, int, u_int, u_int,
237 1.1 nonaka uint16_t[]);
238 1.1 nonaka static void urtwn_set_txpower(struct urtwn_softc *, u_int, u_int);
239 1.1 nonaka static void urtwn_set_chan(struct urtwn_softc *, struct ieee80211_channel *,
240 1.1 nonaka u_int);
241 1.1 nonaka static void urtwn_iq_calib(struct urtwn_softc *, bool);
242 1.1 nonaka static void urtwn_lc_calib(struct urtwn_softc *);
243 1.1 nonaka static void urtwn_temp_calib(struct urtwn_softc *);
244 1.1 nonaka static int urtwn_init(struct ifnet *);
245 1.1 nonaka static void urtwn_stop(struct ifnet *, int);
246 1.16 jmcneill static int urtwn_reset(struct ifnet *);
247 1.1 nonaka static void urtwn_chip_stop(struct urtwn_softc *);
248 1.1 nonaka
249 1.1 nonaka /* Aliases. */
250 1.1 nonaka #define urtwn_bb_write urtwn_write_4
251 1.1 nonaka #define urtwn_bb_read urtwn_read_4
252 1.1 nonaka
253 1.1 nonaka static int
254 1.1 nonaka urtwn_match(device_t parent, cfdata_t match, void *aux)
255 1.1 nonaka {
256 1.1 nonaka struct usb_attach_arg *uaa = aux;
257 1.1 nonaka
258 1.1 nonaka return ((usb_lookup(urtwn_devs, uaa->vendor, uaa->product) != NULL) ?
259 1.1 nonaka UMATCH_VENDOR_PRODUCT : UMATCH_NONE);
260 1.1 nonaka }
261 1.1 nonaka
262 1.1 nonaka static void
263 1.1 nonaka urtwn_attach(device_t parent, device_t self, void *aux)
264 1.1 nonaka {
265 1.1 nonaka struct urtwn_softc *sc = device_private(self);
266 1.1 nonaka struct ieee80211com *ic = &sc->sc_ic;
267 1.1 nonaka struct ifnet *ifp = &sc->sc_if;
268 1.1 nonaka struct usb_attach_arg *uaa = aux;
269 1.1 nonaka char *devinfop;
270 1.1 nonaka int i, error;
271 1.1 nonaka
272 1.1 nonaka sc->sc_dev = self;
273 1.1 nonaka sc->sc_udev = uaa->device;
274 1.1 nonaka
275 1.1 nonaka aprint_naive("\n");
276 1.1 nonaka aprint_normal("\n");
277 1.1 nonaka
278 1.12 christos DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
279 1.12 christos
280 1.1 nonaka devinfop = usbd_devinfo_alloc(sc->sc_udev, 0);
281 1.1 nonaka aprint_normal_dev(self, "%s\n", devinfop);
282 1.1 nonaka usbd_devinfo_free(devinfop);
283 1.1 nonaka
284 1.1 nonaka mutex_init(&sc->sc_task_mtx, MUTEX_DEFAULT, IPL_NET);
285 1.12 christos mutex_init(&sc->sc_tx_mtx, MUTEX_DEFAULT, IPL_NONE);
286 1.1 nonaka mutex_init(&sc->sc_fwcmd_mtx, MUTEX_DEFAULT, IPL_NONE);
287 1.12 christos mutex_init(&sc->sc_write_mtx, MUTEX_DEFAULT, IPL_NONE);
288 1.1 nonaka
289 1.18 jmcneill usb_init_task(&sc->sc_task, urtwn_task, sc, 0);
290 1.1 nonaka
291 1.1 nonaka callout_init(&sc->sc_scan_to, 0);
292 1.1 nonaka callout_setfunc(&sc->sc_scan_to, urtwn_next_scan, sc);
293 1.1 nonaka callout_init(&sc->sc_calib_to, 0);
294 1.1 nonaka callout_setfunc(&sc->sc_calib_to, urtwn_calib_to, sc);
295 1.1 nonaka
296 1.6 skrll error = usbd_set_config_no(sc->sc_udev, 1, 0);
297 1.6 skrll if (error != 0) {
298 1.6 skrll aprint_error_dev(self, "failed to set configuration"
299 1.6 skrll ", err=%s\n", usbd_errstr(error));
300 1.1 nonaka goto fail;
301 1.1 nonaka }
302 1.1 nonaka
303 1.1 nonaka /* Get the first interface handle. */
304 1.1 nonaka error = usbd_device2interface_handle(sc->sc_udev, 0, &sc->sc_iface);
305 1.1 nonaka if (error != 0) {
306 1.1 nonaka aprint_error_dev(self, "could not get interface handle\n");
307 1.1 nonaka goto fail;
308 1.1 nonaka }
309 1.1 nonaka
310 1.1 nonaka error = urtwn_read_chipid(sc);
311 1.1 nonaka if (error != 0) {
312 1.1 nonaka aprint_error_dev(self, "unsupported test chip\n");
313 1.1 nonaka goto fail;
314 1.1 nonaka }
315 1.1 nonaka
316 1.1 nonaka /* Determine number of Tx/Rx chains. */
317 1.1 nonaka if (sc->chip & URTWN_CHIP_92C) {
318 1.1 nonaka sc->ntxchains = (sc->chip & URTWN_CHIP_92C_1T2R) ? 1 : 2;
319 1.1 nonaka sc->nrxchains = 2;
320 1.1 nonaka } else {
321 1.1 nonaka sc->ntxchains = 1;
322 1.1 nonaka sc->nrxchains = 1;
323 1.1 nonaka }
324 1.1 nonaka urtwn_read_rom(sc);
325 1.1 nonaka
326 1.1 nonaka aprint_normal_dev(self, "MAC/BB RTL%s, RF 6052 %dT%dR, address %s\n",
327 1.1 nonaka (sc->chip & URTWN_CHIP_92C) ? "8192CU" :
328 1.1 nonaka (sc->board_type == R92C_BOARD_TYPE_HIGHPA) ? "8188RU" :
329 1.1 nonaka (sc->board_type == R92C_BOARD_TYPE_MINICARD) ? "8188CE-VAU" :
330 1.1 nonaka "8188CUS", sc->ntxchains, sc->nrxchains,
331 1.1 nonaka ether_sprintf(ic->ic_myaddr));
332 1.1 nonaka
333 1.1 nonaka error = urtwn_open_pipes(sc);
334 1.1 nonaka if (error != 0) {
335 1.1 nonaka aprint_error_dev(sc->sc_dev, "could not open pipes\n");
336 1.1 nonaka goto fail;
337 1.1 nonaka }
338 1.1 nonaka aprint_normal_dev(self, "%d rx pipe%s, %d tx pipe%s\n",
339 1.1 nonaka sc->rx_npipe, sc->rx_npipe > 1 ? "s" : "",
340 1.1 nonaka sc->tx_npipe, sc->tx_npipe > 1 ? "s" : "");
341 1.1 nonaka
342 1.1 nonaka /*
343 1.1 nonaka * Setup the 802.11 device.
344 1.1 nonaka */
345 1.1 nonaka ic->ic_ifp = ifp;
346 1.1 nonaka ic->ic_phytype = IEEE80211_T_OFDM; /* Not only, but not used. */
347 1.1 nonaka ic->ic_opmode = IEEE80211_M_STA; /* Default to BSS mode. */
348 1.1 nonaka ic->ic_state = IEEE80211_S_INIT;
349 1.1 nonaka
350 1.1 nonaka /* Set device capabilities. */
351 1.1 nonaka ic->ic_caps =
352 1.1 nonaka IEEE80211_C_MONITOR | /* Monitor mode supported. */
353 1.1 nonaka IEEE80211_C_SHPREAMBLE | /* Short preamble supported. */
354 1.1 nonaka IEEE80211_C_SHSLOT | /* Short slot time supported. */
355 1.1 nonaka IEEE80211_C_WME | /* 802.11e */
356 1.1 nonaka IEEE80211_C_WPA; /* 802.11i */
357 1.1 nonaka
358 1.1 nonaka /* Set supported .11b and .11g rates. */
359 1.1 nonaka ic->ic_sup_rates[IEEE80211_MODE_11B] = ieee80211_std_rateset_11b;
360 1.1 nonaka ic->ic_sup_rates[IEEE80211_MODE_11G] = ieee80211_std_rateset_11g;
361 1.1 nonaka
362 1.1 nonaka /* Set supported .11b and .11g channels (1 through 14). */
363 1.1 nonaka for (i = 1; i <= 14; i++) {
364 1.1 nonaka ic->ic_channels[i].ic_freq =
365 1.1 nonaka ieee80211_ieee2mhz(i, IEEE80211_CHAN_2GHZ);
366 1.1 nonaka ic->ic_channels[i].ic_flags =
367 1.1 nonaka IEEE80211_CHAN_CCK | IEEE80211_CHAN_OFDM |
368 1.1 nonaka IEEE80211_CHAN_DYN | IEEE80211_CHAN_2GHZ;
369 1.1 nonaka }
370 1.1 nonaka
371 1.1 nonaka ifp->if_softc = sc;
372 1.1 nonaka ifp->if_flags = IFF_BROADCAST | IFF_SIMPLEX | IFF_MULTICAST;
373 1.1 nonaka ifp->if_init = urtwn_init;
374 1.1 nonaka ifp->if_ioctl = urtwn_ioctl;
375 1.1 nonaka ifp->if_start = urtwn_start;
376 1.1 nonaka ifp->if_watchdog = urtwn_watchdog;
377 1.1 nonaka IFQ_SET_READY(&ifp->if_snd);
378 1.1 nonaka memcpy(ifp->if_xname, device_xname(sc->sc_dev), IFNAMSIZ);
379 1.1 nonaka
380 1.1 nonaka if_attach(ifp);
381 1.1 nonaka ieee80211_ifattach(ic);
382 1.16 jmcneill
383 1.1 nonaka /* override default methods */
384 1.16 jmcneill ic->ic_reset = urtwn_reset;
385 1.1 nonaka ic->ic_wme.wme_update = urtwn_wme_update;
386 1.1 nonaka
387 1.1 nonaka /* Override state transition machine. */
388 1.1 nonaka sc->sc_newstate = ic->ic_newstate;
389 1.1 nonaka ic->ic_newstate = urtwn_newstate;
390 1.1 nonaka ieee80211_media_init(ic, urtwn_media_change, ieee80211_media_status);
391 1.1 nonaka
392 1.1 nonaka bpf_attach2(ifp, DLT_IEEE802_11_RADIO,
393 1.1 nonaka sizeof(struct ieee80211_frame) + IEEE80211_RADIOTAP_HDRLEN,
394 1.1 nonaka &sc->sc_drvbpf);
395 1.1 nonaka
396 1.1 nonaka sc->sc_rxtap_len = sizeof(sc->sc_rxtapu);
397 1.1 nonaka sc->sc_rxtap.wr_ihdr.it_len = htole16(sc->sc_rxtap_len);
398 1.1 nonaka sc->sc_rxtap.wr_ihdr.it_present = htole32(URTWN_RX_RADIOTAP_PRESENT);
399 1.1 nonaka
400 1.1 nonaka sc->sc_txtap_len = sizeof(sc->sc_txtapu);
401 1.1 nonaka sc->sc_txtap.wt_ihdr.it_len = htole16(sc->sc_txtap_len);
402 1.1 nonaka sc->sc_txtap.wt_ihdr.it_present = htole32(URTWN_TX_RADIOTAP_PRESENT);
403 1.1 nonaka
404 1.1 nonaka ieee80211_announce(ic);
405 1.1 nonaka
406 1.1 nonaka usbd_add_drv_event(USB_EVENT_DRIVER_ATTACH, sc->sc_udev, sc->sc_dev);
407 1.1 nonaka
408 1.1 nonaka SET(sc->sc_flags, URTWN_FLAG_ATTACHED);
409 1.1 nonaka return;
410 1.1 nonaka
411 1.1 nonaka fail:
412 1.1 nonaka sc->sc_dying = 1;
413 1.1 nonaka aprint_error_dev(self, "attach failed\n");
414 1.1 nonaka }
415 1.1 nonaka
416 1.1 nonaka static int
417 1.1 nonaka urtwn_detach(device_t self, int flags)
418 1.1 nonaka {
419 1.1 nonaka struct urtwn_softc *sc = device_private(self);
420 1.1 nonaka struct ifnet *ifp = &sc->sc_if;
421 1.1 nonaka int s;
422 1.1 nonaka
423 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
424 1.1 nonaka
425 1.1 nonaka s = splusb();
426 1.1 nonaka
427 1.1 nonaka sc->sc_dying = 1;
428 1.1 nonaka
429 1.1 nonaka callout_stop(&sc->sc_scan_to);
430 1.1 nonaka callout_stop(&sc->sc_calib_to);
431 1.1 nonaka
432 1.1 nonaka if (ISSET(sc->sc_flags, URTWN_FLAG_ATTACHED)) {
433 1.1 nonaka usb_rem_task(sc->sc_udev, &sc->sc_task);
434 1.1 nonaka urtwn_stop(ifp, 0);
435 1.1 nonaka
436 1.1 nonaka ifp->if_flags &= ~(IFF_RUNNING | IFF_OACTIVE);
437 1.1 nonaka bpf_detach(ifp);
438 1.1 nonaka ieee80211_ifdetach(&sc->sc_ic);
439 1.1 nonaka if_detach(ifp);
440 1.1 nonaka
441 1.1 nonaka /* Abort and close Tx/Rx pipes. */
442 1.1 nonaka urtwn_close_pipes(sc);
443 1.1 nonaka }
444 1.1 nonaka
445 1.1 nonaka splx(s);
446 1.1 nonaka
447 1.1 nonaka usbd_add_drv_event(USB_EVENT_DRIVER_DETACH, sc->sc_udev, sc->sc_dev);
448 1.1 nonaka
449 1.1 nonaka callout_destroy(&sc->sc_scan_to);
450 1.1 nonaka callout_destroy(&sc->sc_calib_to);
451 1.12 christos
452 1.12 christos mutex_destroy(&sc->sc_write_mtx);
453 1.1 nonaka mutex_destroy(&sc->sc_fwcmd_mtx);
454 1.1 nonaka mutex_destroy(&sc->sc_tx_mtx);
455 1.1 nonaka mutex_destroy(&sc->sc_task_mtx);
456 1.1 nonaka
457 1.1 nonaka return (0);
458 1.1 nonaka }
459 1.1 nonaka
460 1.1 nonaka static int
461 1.1 nonaka urtwn_activate(device_t self, enum devact act)
462 1.1 nonaka {
463 1.1 nonaka struct urtwn_softc *sc = device_private(self);
464 1.1 nonaka
465 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
466 1.1 nonaka
467 1.1 nonaka switch (act) {
468 1.1 nonaka case DVACT_DEACTIVATE:
469 1.1 nonaka if_deactivate(sc->sc_ic.ic_ifp);
470 1.1 nonaka return (0);
471 1.1 nonaka default:
472 1.1 nonaka return (EOPNOTSUPP);
473 1.1 nonaka }
474 1.1 nonaka }
475 1.1 nonaka
476 1.1 nonaka static int
477 1.1 nonaka urtwn_open_pipes(struct urtwn_softc *sc)
478 1.1 nonaka {
479 1.1 nonaka /* Bulk-out endpoints addresses (from highest to lowest prio). */
480 1.1 nonaka static const uint8_t epaddr[] = { 0x02, 0x03, 0x05 };
481 1.1 nonaka usb_interface_descriptor_t *id;
482 1.1 nonaka usb_endpoint_descriptor_t *ed;
483 1.1 nonaka int i, ntx = 0, error;
484 1.1 nonaka
485 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
486 1.1 nonaka
487 1.1 nonaka /* Determine the number of bulk-out pipes. */
488 1.1 nonaka id = usbd_get_interface_descriptor(sc->sc_iface);
489 1.1 nonaka for (i = 0; i < id->bNumEndpoints; i++) {
490 1.1 nonaka ed = usbd_interface2endpoint_descriptor(sc->sc_iface, i);
491 1.1 nonaka if (ed != NULL &&
492 1.1 nonaka UE_GET_XFERTYPE(ed->bmAttributes) == UE_BULK &&
493 1.1 nonaka UE_GET_DIR(ed->bEndpointAddress) == UE_DIR_OUT)
494 1.1 nonaka ntx++;
495 1.1 nonaka }
496 1.1 nonaka DPRINTFN(DBG_INIT, ("%s: %s: found %d bulk-out pipes\n",
497 1.1 nonaka device_xname(sc->sc_dev), __func__, ntx));
498 1.1 nonaka if (ntx == 0 || ntx > R92C_MAX_EPOUT) {
499 1.1 nonaka aprint_error_dev(sc->sc_dev,
500 1.1 nonaka "%d: invalid number of Tx bulk pipes\n", ntx);
501 1.1 nonaka return (EIO);
502 1.1 nonaka }
503 1.1 nonaka sc->rx_npipe = 1;
504 1.1 nonaka sc->tx_npipe = ntx;
505 1.1 nonaka
506 1.1 nonaka /* Open bulk-in pipe at address 0x81. */
507 1.1 nonaka error = usbd_open_pipe(sc->sc_iface, 0x81, USBD_EXCLUSIVE_USE,
508 1.1 nonaka &sc->rx_pipe);
509 1.1 nonaka if (error != 0) {
510 1.12 christos aprint_error_dev(sc->sc_dev, "could not open Rx bulk pipe"
511 1.12 christos ": %d\n", error);
512 1.1 nonaka goto fail;
513 1.1 nonaka }
514 1.1 nonaka
515 1.1 nonaka /* Open bulk-out pipes (up to 3). */
516 1.1 nonaka for (i = 0; i < ntx; i++) {
517 1.1 nonaka error = usbd_open_pipe(sc->sc_iface, epaddr[i],
518 1.1 nonaka USBD_EXCLUSIVE_USE, &sc->tx_pipe[i]);
519 1.1 nonaka if (error != 0) {
520 1.1 nonaka aprint_error_dev(sc->sc_dev,
521 1.12 christos "could not open Tx bulk pipe 0x%02x: %d\n",
522 1.12 christos epaddr[i], error);
523 1.1 nonaka goto fail;
524 1.1 nonaka }
525 1.1 nonaka }
526 1.1 nonaka
527 1.1 nonaka /* Map 802.11 access categories to USB pipes. */
528 1.1 nonaka sc->ac2idx[WME_AC_BK] =
529 1.1 nonaka sc->ac2idx[WME_AC_BE] = (ntx == 3) ? 2 : ((ntx == 2) ? 1 : 0);
530 1.1 nonaka sc->ac2idx[WME_AC_VI] = (ntx == 3) ? 1 : 0;
531 1.1 nonaka sc->ac2idx[WME_AC_VO] = 0; /* Always use highest prio. */
532 1.1 nonaka
533 1.1 nonaka fail:
534 1.1 nonaka if (error != 0)
535 1.1 nonaka urtwn_close_pipes(sc);
536 1.1 nonaka return (error);
537 1.1 nonaka }
538 1.1 nonaka
539 1.1 nonaka static void
540 1.1 nonaka urtwn_close_pipes(struct urtwn_softc *sc)
541 1.1 nonaka {
542 1.1 nonaka int i;
543 1.1 nonaka
544 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
545 1.1 nonaka
546 1.1 nonaka /* Close Rx pipe. */
547 1.1 nonaka if (sc->rx_pipe != NULL) {
548 1.1 nonaka usbd_abort_pipe(sc->rx_pipe);
549 1.1 nonaka usbd_close_pipe(sc->rx_pipe);
550 1.1 nonaka sc->rx_pipe = NULL;
551 1.1 nonaka }
552 1.1 nonaka /* Close Tx pipes. */
553 1.1 nonaka for (i = 0; i < R92C_MAX_EPOUT; i++) {
554 1.1 nonaka if (sc->tx_pipe[i] == NULL)
555 1.1 nonaka continue;
556 1.1 nonaka usbd_abort_pipe(sc->tx_pipe[i]);
557 1.1 nonaka usbd_close_pipe(sc->tx_pipe[i]);
558 1.1 nonaka sc->tx_pipe[i] = NULL;
559 1.1 nonaka }
560 1.1 nonaka }
561 1.1 nonaka
562 1.1 nonaka static int
563 1.1 nonaka urtwn_alloc_rx_list(struct urtwn_softc *sc)
564 1.1 nonaka {
565 1.1 nonaka struct urtwn_rx_data *data;
566 1.1 nonaka int i, error = 0;
567 1.1 nonaka
568 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
569 1.1 nonaka
570 1.1 nonaka for (i = 0; i < URTWN_RX_LIST_COUNT; i++) {
571 1.1 nonaka data = &sc->rx_data[i];
572 1.1 nonaka
573 1.1 nonaka data->sc = sc; /* Backpointer for callbacks. */
574 1.1 nonaka
575 1.1 nonaka data->xfer = usbd_alloc_xfer(sc->sc_udev);
576 1.1 nonaka if (data->xfer == NULL) {
577 1.1 nonaka aprint_error_dev(sc->sc_dev,
578 1.1 nonaka "could not allocate xfer\n");
579 1.1 nonaka error = ENOMEM;
580 1.1 nonaka break;
581 1.1 nonaka }
582 1.1 nonaka
583 1.1 nonaka data->buf = usbd_alloc_buffer(data->xfer, URTWN_RXBUFSZ);
584 1.1 nonaka if (data->buf == NULL) {
585 1.1 nonaka aprint_error_dev(sc->sc_dev,
586 1.1 nonaka "could not allocate xfer buffer\n");
587 1.1 nonaka error = ENOMEM;
588 1.1 nonaka break;
589 1.1 nonaka }
590 1.1 nonaka }
591 1.1 nonaka if (error != 0)
592 1.1 nonaka urtwn_free_rx_list(sc);
593 1.1 nonaka return (error);
594 1.1 nonaka }
595 1.1 nonaka
596 1.1 nonaka static void
597 1.1 nonaka urtwn_free_rx_list(struct urtwn_softc *sc)
598 1.1 nonaka {
599 1.1 nonaka int i;
600 1.1 nonaka
601 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
602 1.1 nonaka
603 1.1 nonaka /* NB: Caller must abort pipe first. */
604 1.1 nonaka for (i = 0; i < URTWN_RX_LIST_COUNT; i++) {
605 1.1 nonaka if (sc->rx_data[i].xfer != NULL) {
606 1.1 nonaka usbd_free_xfer(sc->rx_data[i].xfer);
607 1.1 nonaka sc->rx_data[i].xfer = NULL;
608 1.1 nonaka }
609 1.1 nonaka }
610 1.1 nonaka }
611 1.1 nonaka
612 1.1 nonaka static int
613 1.1 nonaka urtwn_alloc_tx_list(struct urtwn_softc *sc)
614 1.1 nonaka {
615 1.1 nonaka struct urtwn_tx_data *data;
616 1.1 nonaka int i, error = 0;
617 1.1 nonaka
618 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
619 1.1 nonaka
620 1.12 christos mutex_enter(&sc->sc_tx_mtx);
621 1.1 nonaka TAILQ_INIT(&sc->tx_free_list);
622 1.1 nonaka for (i = 0; i < URTWN_TX_LIST_COUNT; i++) {
623 1.1 nonaka data = &sc->tx_data[i];
624 1.1 nonaka
625 1.1 nonaka data->sc = sc; /* Backpointer for callbacks. */
626 1.1 nonaka
627 1.1 nonaka data->xfer = usbd_alloc_xfer(sc->sc_udev);
628 1.1 nonaka if (data->xfer == NULL) {
629 1.1 nonaka aprint_error_dev(sc->sc_dev,
630 1.1 nonaka "could not allocate xfer\n");
631 1.1 nonaka error = ENOMEM;
632 1.1 nonaka goto fail;
633 1.1 nonaka }
634 1.1 nonaka
635 1.1 nonaka data->buf = usbd_alloc_buffer(data->xfer, URTWN_TXBUFSZ);
636 1.1 nonaka if (data->buf == NULL) {
637 1.1 nonaka aprint_error_dev(sc->sc_dev,
638 1.1 nonaka "could not allocate xfer buffer\n");
639 1.1 nonaka error = ENOMEM;
640 1.1 nonaka goto fail;
641 1.1 nonaka }
642 1.1 nonaka
643 1.1 nonaka /* Append this Tx buffer to our free list. */
644 1.1 nonaka TAILQ_INSERT_TAIL(&sc->tx_free_list, data, next);
645 1.1 nonaka }
646 1.12 christos mutex_exit(&sc->sc_tx_mtx);
647 1.1 nonaka return (0);
648 1.1 nonaka
649 1.1 nonaka fail:
650 1.1 nonaka urtwn_free_tx_list(sc);
651 1.12 christos mutex_exit(&sc->sc_tx_mtx);
652 1.1 nonaka return (error);
653 1.1 nonaka }
654 1.1 nonaka
655 1.1 nonaka static void
656 1.1 nonaka urtwn_free_tx_list(struct urtwn_softc *sc)
657 1.1 nonaka {
658 1.1 nonaka struct urtwn_tx_data *data;
659 1.1 nonaka int i;
660 1.1 nonaka
661 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
662 1.1 nonaka
663 1.1 nonaka /* NB: Caller must abort pipe first. */
664 1.1 nonaka for (i = 0; i < URTWN_TX_LIST_COUNT; i++) {
665 1.1 nonaka data = &sc->tx_data[i];
666 1.1 nonaka
667 1.1 nonaka if (data->xfer != NULL) {
668 1.1 nonaka usbd_free_xfer(data->xfer);
669 1.1 nonaka data->xfer = NULL;
670 1.1 nonaka }
671 1.1 nonaka }
672 1.1 nonaka }
673 1.1 nonaka
674 1.1 nonaka static void
675 1.1 nonaka urtwn_task(void *arg)
676 1.1 nonaka {
677 1.1 nonaka struct urtwn_softc *sc = arg;
678 1.1 nonaka struct urtwn_host_cmd_ring *ring = &sc->cmdq;
679 1.1 nonaka struct urtwn_host_cmd *cmd;
680 1.1 nonaka int s;
681 1.1 nonaka
682 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
683 1.1 nonaka
684 1.1 nonaka /* Process host commands. */
685 1.1 nonaka s = splusb();
686 1.1 nonaka mutex_spin_enter(&sc->sc_task_mtx);
687 1.1 nonaka while (ring->next != ring->cur) {
688 1.1 nonaka cmd = &ring->cmd[ring->next];
689 1.1 nonaka mutex_spin_exit(&sc->sc_task_mtx);
690 1.1 nonaka splx(s);
691 1.16 jmcneill /* Invoke callback with kernel lock held. */
692 1.1 nonaka cmd->cb(sc, cmd->data);
693 1.1 nonaka s = splusb();
694 1.1 nonaka mutex_spin_enter(&sc->sc_task_mtx);
695 1.1 nonaka ring->queued--;
696 1.1 nonaka ring->next = (ring->next + 1) % URTWN_HOST_CMD_RING_COUNT;
697 1.1 nonaka }
698 1.1 nonaka mutex_spin_exit(&sc->sc_task_mtx);
699 1.1 nonaka wakeup(&sc->cmdq);
700 1.1 nonaka splx(s);
701 1.1 nonaka }
702 1.1 nonaka
703 1.1 nonaka static void
704 1.1 nonaka urtwn_do_async(struct urtwn_softc *sc, void (*cb)(struct urtwn_softc *, void *),
705 1.1 nonaka void *arg, int len)
706 1.1 nonaka {
707 1.1 nonaka struct urtwn_host_cmd_ring *ring = &sc->cmdq;
708 1.1 nonaka struct urtwn_host_cmd *cmd;
709 1.1 nonaka int s;
710 1.1 nonaka
711 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s: cb=%p, arg=%p, len=%d\n",
712 1.1 nonaka device_xname(sc->sc_dev), __func__, cb, arg, len));
713 1.1 nonaka
714 1.1 nonaka s = splusb();
715 1.1 nonaka mutex_spin_enter(&sc->sc_task_mtx);
716 1.1 nonaka cmd = &ring->cmd[ring->cur];
717 1.1 nonaka cmd->cb = cb;
718 1.1 nonaka KASSERT(len <= sizeof(cmd->data));
719 1.1 nonaka memcpy(cmd->data, arg, len);
720 1.1 nonaka ring->cur = (ring->cur + 1) % URTWN_HOST_CMD_RING_COUNT;
721 1.1 nonaka
722 1.1 nonaka /* If there is no pending command already, schedule a task. */
723 1.1 nonaka if (!sc->sc_dying && ++ring->queued == 1) {
724 1.1 nonaka mutex_spin_exit(&sc->sc_task_mtx);
725 1.1 nonaka usb_add_task(sc->sc_udev, &sc->sc_task, USB_TASKQ_DRIVER);
726 1.1 nonaka } else
727 1.1 nonaka mutex_spin_exit(&sc->sc_task_mtx);
728 1.1 nonaka splx(s);
729 1.1 nonaka }
730 1.1 nonaka
731 1.1 nonaka static void
732 1.1 nonaka urtwn_wait_async(struct urtwn_softc *sc)
733 1.1 nonaka {
734 1.1 nonaka
735 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
736 1.1 nonaka
737 1.1 nonaka /* Wait for all queued asynchronous commands to complete. */
738 1.1 nonaka while (sc->cmdq.queued > 0)
739 1.1 nonaka tsleep(&sc->cmdq, 0, "endtask", 0);
740 1.1 nonaka }
741 1.1 nonaka
742 1.1 nonaka static int
743 1.1 nonaka urtwn_write_region_1(struct urtwn_softc *sc, uint16_t addr, uint8_t *buf,
744 1.1 nonaka int len)
745 1.1 nonaka {
746 1.1 nonaka usb_device_request_t req;
747 1.1 nonaka usbd_status error;
748 1.1 nonaka
749 1.12 christos KASSERT(mutex_owned(&sc->sc_write_mtx));
750 1.12 christos
751 1.1 nonaka req.bmRequestType = UT_WRITE_VENDOR_DEVICE;
752 1.1 nonaka req.bRequest = R92C_REQ_REGS;
753 1.1 nonaka USETW(req.wValue, addr);
754 1.1 nonaka USETW(req.wIndex, 0);
755 1.1 nonaka USETW(req.wLength, len);
756 1.1 nonaka error = usbd_do_request(sc->sc_udev, &req, buf);
757 1.1 nonaka if (error != USBD_NORMAL_COMPLETION) {
758 1.1 nonaka DPRINTFN(DBG_REG, ("%s: %s: error=%d: addr=0x%x, len=%d\n",
759 1.1 nonaka device_xname(sc->sc_dev), __func__, error, addr, len));
760 1.1 nonaka }
761 1.1 nonaka return (error);
762 1.1 nonaka }
763 1.1 nonaka
764 1.1 nonaka static void
765 1.1 nonaka urtwn_write_1(struct urtwn_softc *sc, uint16_t addr, uint8_t val)
766 1.1 nonaka {
767 1.1 nonaka
768 1.1 nonaka DPRINTFN(DBG_REG, ("%s: %s: addr=0x%x, val=0x%x\n",
769 1.1 nonaka device_xname(sc->sc_dev), __func__, addr, val));
770 1.1 nonaka
771 1.1 nonaka urtwn_write_region_1(sc, addr, &val, 1);
772 1.1 nonaka }
773 1.1 nonaka
774 1.1 nonaka static void
775 1.1 nonaka urtwn_write_2(struct urtwn_softc *sc, uint16_t addr, uint16_t val)
776 1.1 nonaka {
777 1.1 nonaka uint8_t buf[2];
778 1.1 nonaka
779 1.1 nonaka DPRINTFN(DBG_REG, ("%s: %s: addr=0x%x, val=0x%x\n",
780 1.1 nonaka device_xname(sc->sc_dev), __func__, addr, val));
781 1.1 nonaka
782 1.1 nonaka buf[0] = (uint8_t)val;
783 1.1 nonaka buf[1] = (uint8_t)(val >> 8);
784 1.1 nonaka urtwn_write_region_1(sc, addr, buf, 2);
785 1.1 nonaka }
786 1.1 nonaka
787 1.1 nonaka static void
788 1.1 nonaka urtwn_write_4(struct urtwn_softc *sc, uint16_t addr, uint32_t val)
789 1.1 nonaka {
790 1.1 nonaka uint8_t buf[4];
791 1.1 nonaka
792 1.1 nonaka DPRINTFN(DBG_REG, ("%s: %s: addr=0x%x, val=0x%x\n",
793 1.1 nonaka device_xname(sc->sc_dev), __func__, addr, val));
794 1.1 nonaka
795 1.1 nonaka buf[0] = (uint8_t)val;
796 1.1 nonaka buf[1] = (uint8_t)(val >> 8);
797 1.1 nonaka buf[2] = (uint8_t)(val >> 16);
798 1.1 nonaka buf[3] = (uint8_t)(val >> 24);
799 1.1 nonaka urtwn_write_region_1(sc, addr, buf, 4);
800 1.1 nonaka }
801 1.1 nonaka
802 1.1 nonaka static int
803 1.1 nonaka urtwn_write_region(struct urtwn_softc *sc, uint16_t addr, uint8_t *buf, int len)
804 1.1 nonaka {
805 1.1 nonaka
806 1.1 nonaka DPRINTFN(DBG_REG, ("%s: %s: addr=0x%x, len=0x%x\n",
807 1.1 nonaka device_xname(sc->sc_dev), __func__, addr, len));
808 1.1 nonaka
809 1.1 nonaka return urtwn_write_region_1(sc, addr, buf, len);
810 1.1 nonaka }
811 1.1 nonaka
812 1.1 nonaka static int
813 1.1 nonaka urtwn_read_region_1(struct urtwn_softc *sc, uint16_t addr, uint8_t *buf,
814 1.1 nonaka int len)
815 1.1 nonaka {
816 1.1 nonaka usb_device_request_t req;
817 1.1 nonaka usbd_status error;
818 1.1 nonaka
819 1.1 nonaka req.bmRequestType = UT_READ_VENDOR_DEVICE;
820 1.1 nonaka req.bRequest = R92C_REQ_REGS;
821 1.1 nonaka USETW(req.wValue, addr);
822 1.1 nonaka USETW(req.wIndex, 0);
823 1.1 nonaka USETW(req.wLength, len);
824 1.1 nonaka error = usbd_do_request(sc->sc_udev, &req, buf);
825 1.1 nonaka if (error != USBD_NORMAL_COMPLETION) {
826 1.1 nonaka DPRINTFN(DBG_REG, ("%s: %s: error=%d: addr=0x%x, len=%d\n",
827 1.1 nonaka device_xname(sc->sc_dev), __func__, error, addr, len));
828 1.1 nonaka }
829 1.1 nonaka return (error);
830 1.1 nonaka }
831 1.1 nonaka
832 1.1 nonaka static uint8_t
833 1.1 nonaka urtwn_read_1(struct urtwn_softc *sc, uint16_t addr)
834 1.1 nonaka {
835 1.1 nonaka uint8_t val;
836 1.1 nonaka
837 1.1 nonaka if (urtwn_read_region_1(sc, addr, &val, 1) != USBD_NORMAL_COMPLETION)
838 1.1 nonaka return (0xff);
839 1.1 nonaka
840 1.1 nonaka DPRINTFN(DBG_REG, ("%s: %s: addr=0x%x, val=0x%x\n",
841 1.1 nonaka device_xname(sc->sc_dev), __func__, addr, val));
842 1.1 nonaka return (val);
843 1.1 nonaka }
844 1.1 nonaka
845 1.1 nonaka static uint16_t
846 1.1 nonaka urtwn_read_2(struct urtwn_softc *sc, uint16_t addr)
847 1.1 nonaka {
848 1.1 nonaka uint8_t buf[2];
849 1.1 nonaka uint16_t val;
850 1.1 nonaka
851 1.1 nonaka if (urtwn_read_region_1(sc, addr, buf, 2) != USBD_NORMAL_COMPLETION)
852 1.1 nonaka return (0xffff);
853 1.1 nonaka
854 1.1 nonaka val = LE_READ_2(&buf[0]);
855 1.1 nonaka DPRINTFN(DBG_REG, ("%s: %s: addr=0x%x, val=0x%x\n",
856 1.1 nonaka device_xname(sc->sc_dev), __func__, addr, val));
857 1.1 nonaka return (val);
858 1.1 nonaka }
859 1.1 nonaka
860 1.1 nonaka static uint32_t
861 1.1 nonaka urtwn_read_4(struct urtwn_softc *sc, uint16_t addr)
862 1.1 nonaka {
863 1.1 nonaka uint8_t buf[4];
864 1.1 nonaka uint32_t val;
865 1.1 nonaka
866 1.1 nonaka if (urtwn_read_region_1(sc, addr, buf, 4) != USBD_NORMAL_COMPLETION)
867 1.1 nonaka return (0xffffffff);
868 1.1 nonaka
869 1.1 nonaka val = LE_READ_4(&buf[0]);
870 1.1 nonaka DPRINTFN(DBG_REG, ("%s: %s: addr=0x%x, val=0x%x\n",
871 1.1 nonaka device_xname(sc->sc_dev), __func__, addr, val));
872 1.1 nonaka return (val);
873 1.1 nonaka }
874 1.1 nonaka
875 1.1 nonaka static int
876 1.1 nonaka urtwn_fw_cmd(struct urtwn_softc *sc, uint8_t id, const void *buf, int len)
877 1.1 nonaka {
878 1.1 nonaka struct r92c_fw_cmd cmd;
879 1.1 nonaka uint8_t *cp;
880 1.1 nonaka int fwcur;
881 1.1 nonaka int ntries;
882 1.1 nonaka
883 1.1 nonaka DPRINTFN(DBG_REG, ("%s: %s: id=%d, buf=%p, len=%d\n",
884 1.1 nonaka device_xname(sc->sc_dev), __func__, id, buf, len));
885 1.1 nonaka
886 1.12 christos KASSERT(mutex_owned(&sc->sc_write_mtx));
887 1.12 christos
888 1.1 nonaka mutex_enter(&sc->sc_fwcmd_mtx);
889 1.1 nonaka fwcur = sc->fwcur;
890 1.1 nonaka sc->fwcur = (sc->fwcur + 1) % R92C_H2C_NBOX;
891 1.1 nonaka mutex_exit(&sc->sc_fwcmd_mtx);
892 1.1 nonaka
893 1.1 nonaka /* Wait for current FW box to be empty. */
894 1.1 nonaka for (ntries = 0; ntries < 100; ntries++) {
895 1.1 nonaka if (!(urtwn_read_1(sc, R92C_HMETFR) & (1 << fwcur)))
896 1.1 nonaka break;
897 1.1 nonaka DELAY(1);
898 1.1 nonaka }
899 1.1 nonaka if (ntries == 100) {
900 1.1 nonaka aprint_error_dev(sc->sc_dev,
901 1.1 nonaka "could not send firmware command %d\n", id);
902 1.1 nonaka return (ETIMEDOUT);
903 1.1 nonaka }
904 1.1 nonaka
905 1.1 nonaka memset(&cmd, 0, sizeof(cmd));
906 1.1 nonaka KASSERT(len <= sizeof(cmd.msg));
907 1.1 nonaka memcpy(cmd.msg, buf, len);
908 1.1 nonaka
909 1.1 nonaka /* Write the first word last since that will trigger the FW. */
910 1.1 nonaka cp = (uint8_t *)&cmd;
911 1.1 nonaka if (len >= 4) {
912 1.1 nonaka cmd.id = id | R92C_CMD_FLAG_EXT;
913 1.1 nonaka urtwn_write_region(sc, R92C_HMEBOX_EXT(fwcur), &cp[1], 2);
914 1.1 nonaka urtwn_write_4(sc, R92C_HMEBOX(fwcur),
915 1.1 nonaka cp[0] + (cp[3] << 8) + (cp[4] << 16) + (cp[5] << 24));
916 1.1 nonaka } else {
917 1.1 nonaka cmd.id = id;
918 1.1 nonaka urtwn_write_region(sc, R92C_HMEBOX(fwcur), cp, len);
919 1.1 nonaka }
920 1.1 nonaka
921 1.1 nonaka return (0);
922 1.1 nonaka }
923 1.1 nonaka
924 1.1 nonaka static void
925 1.1 nonaka urtwn_rf_write(struct urtwn_softc *sc, int chain, uint8_t addr, uint32_t val)
926 1.1 nonaka {
927 1.1 nonaka
928 1.1 nonaka urtwn_bb_write(sc, R92C_LSSI_PARAM(chain),
929 1.1 nonaka SM(R92C_LSSI_PARAM_ADDR, addr) | SM(R92C_LSSI_PARAM_DATA, val));
930 1.1 nonaka }
931 1.1 nonaka
932 1.1 nonaka static uint32_t
933 1.1 nonaka urtwn_rf_read(struct urtwn_softc *sc, int chain, uint8_t addr)
934 1.1 nonaka {
935 1.1 nonaka uint32_t reg[R92C_MAX_CHAINS], val;
936 1.1 nonaka
937 1.1 nonaka reg[0] = urtwn_bb_read(sc, R92C_HSSI_PARAM2(0));
938 1.1 nonaka if (chain != 0) {
939 1.1 nonaka reg[chain] = urtwn_bb_read(sc, R92C_HSSI_PARAM2(chain));
940 1.1 nonaka }
941 1.1 nonaka
942 1.1 nonaka urtwn_bb_write(sc, R92C_HSSI_PARAM2(0),
943 1.1 nonaka reg[0] & ~R92C_HSSI_PARAM2_READ_EDGE);
944 1.1 nonaka DELAY(1000);
945 1.1 nonaka
946 1.1 nonaka urtwn_bb_write(sc, R92C_HSSI_PARAM2(chain),
947 1.1 nonaka RW(reg[chain], R92C_HSSI_PARAM2_READ_ADDR, addr) |
948 1.1 nonaka R92C_HSSI_PARAM2_READ_EDGE);
949 1.1 nonaka DELAY(1000);
950 1.1 nonaka
951 1.1 nonaka urtwn_bb_write(sc, R92C_HSSI_PARAM2(0),
952 1.1 nonaka reg[0] | R92C_HSSI_PARAM2_READ_EDGE);
953 1.1 nonaka DELAY(1000);
954 1.1 nonaka
955 1.1 nonaka if (urtwn_bb_read(sc, R92C_HSSI_PARAM1(chain)) & R92C_HSSI_PARAM1_PI) {
956 1.1 nonaka val = urtwn_bb_read(sc, R92C_HSPI_READBACK(chain));
957 1.1 nonaka } else {
958 1.1 nonaka val = urtwn_bb_read(sc, R92C_LSSI_READBACK(chain));
959 1.1 nonaka }
960 1.1 nonaka return (MS(val, R92C_LSSI_READBACK_DATA));
961 1.1 nonaka }
962 1.1 nonaka
963 1.1 nonaka static int
964 1.1 nonaka urtwn_llt_write(struct urtwn_softc *sc, uint32_t addr, uint32_t data)
965 1.1 nonaka {
966 1.1 nonaka int ntries;
967 1.1 nonaka
968 1.12 christos KASSERT(mutex_owned(&sc->sc_write_mtx));
969 1.12 christos
970 1.1 nonaka urtwn_write_4(sc, R92C_LLT_INIT,
971 1.1 nonaka SM(R92C_LLT_INIT_OP, R92C_LLT_INIT_OP_WRITE) |
972 1.1 nonaka SM(R92C_LLT_INIT_ADDR, addr) |
973 1.1 nonaka SM(R92C_LLT_INIT_DATA, data));
974 1.1 nonaka /* Wait for write operation to complete. */
975 1.1 nonaka for (ntries = 0; ntries < 20; ntries++) {
976 1.1 nonaka if (MS(urtwn_read_4(sc, R92C_LLT_INIT), R92C_LLT_INIT_OP) ==
977 1.1 nonaka R92C_LLT_INIT_OP_NO_ACTIVE) {
978 1.1 nonaka /* Done */
979 1.1 nonaka return (0);
980 1.1 nonaka }
981 1.1 nonaka DELAY(5);
982 1.1 nonaka }
983 1.1 nonaka return (ETIMEDOUT);
984 1.1 nonaka }
985 1.1 nonaka
986 1.1 nonaka static uint8_t
987 1.1 nonaka urtwn_efuse_read_1(struct urtwn_softc *sc, uint16_t addr)
988 1.1 nonaka {
989 1.1 nonaka uint32_t reg;
990 1.1 nonaka int ntries;
991 1.1 nonaka
992 1.12 christos KASSERT(mutex_owned(&sc->sc_write_mtx));
993 1.12 christos
994 1.1 nonaka reg = urtwn_read_4(sc, R92C_EFUSE_CTRL);
995 1.1 nonaka reg = RW(reg, R92C_EFUSE_CTRL_ADDR, addr);
996 1.1 nonaka reg &= ~R92C_EFUSE_CTRL_VALID;
997 1.1 nonaka urtwn_write_4(sc, R92C_EFUSE_CTRL, reg);
998 1.1 nonaka
999 1.1 nonaka /* Wait for read operation to complete. */
1000 1.1 nonaka for (ntries = 0; ntries < 100; ntries++) {
1001 1.1 nonaka reg = urtwn_read_4(sc, R92C_EFUSE_CTRL);
1002 1.1 nonaka if (reg & R92C_EFUSE_CTRL_VALID) {
1003 1.1 nonaka /* Done */
1004 1.1 nonaka return (MS(reg, R92C_EFUSE_CTRL_DATA));
1005 1.1 nonaka }
1006 1.1 nonaka DELAY(5);
1007 1.1 nonaka }
1008 1.1 nonaka aprint_error_dev(sc->sc_dev,
1009 1.1 nonaka "could not read efuse byte at address 0x%04x\n", addr);
1010 1.1 nonaka return (0xff);
1011 1.1 nonaka }
1012 1.1 nonaka
1013 1.1 nonaka static void
1014 1.1 nonaka urtwn_efuse_read(struct urtwn_softc *sc)
1015 1.1 nonaka {
1016 1.1 nonaka uint8_t *rom = (uint8_t *)&sc->rom;
1017 1.1 nonaka uint32_t reg;
1018 1.1 nonaka uint16_t addr = 0;
1019 1.1 nonaka uint8_t off, msk;
1020 1.1 nonaka int i;
1021 1.1 nonaka
1022 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
1023 1.1 nonaka
1024 1.12 christos KASSERT(mutex_owned(&sc->sc_write_mtx));
1025 1.12 christos
1026 1.1 nonaka reg = urtwn_read_2(sc, R92C_SYS_ISO_CTRL);
1027 1.1 nonaka if (!(reg & R92C_SYS_ISO_CTRL_PWC_EV12V)) {
1028 1.1 nonaka urtwn_write_2(sc, R92C_SYS_ISO_CTRL,
1029 1.1 nonaka reg | R92C_SYS_ISO_CTRL_PWC_EV12V);
1030 1.1 nonaka }
1031 1.1 nonaka reg = urtwn_read_2(sc, R92C_SYS_FUNC_EN);
1032 1.1 nonaka if (!(reg & R92C_SYS_FUNC_EN_ELDR)) {
1033 1.1 nonaka urtwn_write_2(sc, R92C_SYS_FUNC_EN,
1034 1.1 nonaka reg | R92C_SYS_FUNC_EN_ELDR);
1035 1.1 nonaka }
1036 1.1 nonaka reg = urtwn_read_2(sc, R92C_SYS_CLKR);
1037 1.1 nonaka if ((reg & (R92C_SYS_CLKR_LOADER_EN | R92C_SYS_CLKR_ANA8M)) !=
1038 1.1 nonaka (R92C_SYS_CLKR_LOADER_EN | R92C_SYS_CLKR_ANA8M)) {
1039 1.1 nonaka urtwn_write_2(sc, R92C_SYS_CLKR,
1040 1.1 nonaka reg | R92C_SYS_CLKR_LOADER_EN | R92C_SYS_CLKR_ANA8M);
1041 1.1 nonaka }
1042 1.1 nonaka memset(&sc->rom, 0xff, sizeof(sc->rom));
1043 1.1 nonaka while (addr < 512) {
1044 1.1 nonaka reg = urtwn_efuse_read_1(sc, addr);
1045 1.1 nonaka if (reg == 0xff)
1046 1.1 nonaka break;
1047 1.1 nonaka addr++;
1048 1.1 nonaka off = reg >> 4;
1049 1.1 nonaka msk = reg & 0xf;
1050 1.1 nonaka for (i = 0; i < 4; i++) {
1051 1.1 nonaka if (msk & (1U << i))
1052 1.1 nonaka continue;
1053 1.1 nonaka
1054 1.1 nonaka rom[off * 8 + i * 2 + 0] = urtwn_efuse_read_1(sc, addr);
1055 1.1 nonaka addr++;
1056 1.1 nonaka rom[off * 8 + i * 2 + 1] = urtwn_efuse_read_1(sc, addr);
1057 1.1 nonaka addr++;
1058 1.1 nonaka }
1059 1.1 nonaka }
1060 1.1 nonaka #ifdef URTWN_DEBUG
1061 1.1 nonaka if (urtwn_debug & DBG_INIT) {
1062 1.1 nonaka /* Dump ROM content. */
1063 1.1 nonaka printf("%s: %s", device_xname(sc->sc_dev), __func__);
1064 1.1 nonaka for (i = 0; i < (int)sizeof(sc->rom); i++)
1065 1.1 nonaka printf(":%02x", rom[i]);
1066 1.1 nonaka printf("\n");
1067 1.1 nonaka }
1068 1.1 nonaka #endif
1069 1.1 nonaka }
1070 1.1 nonaka
1071 1.1 nonaka static int
1072 1.1 nonaka urtwn_read_chipid(struct urtwn_softc *sc)
1073 1.1 nonaka {
1074 1.1 nonaka uint32_t reg;
1075 1.1 nonaka
1076 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
1077 1.1 nonaka
1078 1.1 nonaka sc->chip = 0;
1079 1.1 nonaka reg = urtwn_read_4(sc, R92C_SYS_CFG);
1080 1.1 nonaka if (reg & R92C_SYS_CFG_TRP_VAUX_EN) {
1081 1.1 nonaka /* test chip, not supported */
1082 1.1 nonaka return (EIO);
1083 1.1 nonaka }
1084 1.1 nonaka if (reg & R92C_SYS_CFG_TYPE_92C) {
1085 1.1 nonaka sc->chip |= URTWN_CHIP_92C;
1086 1.1 nonaka /* Check if it is a castrated 8192C. */
1087 1.1 nonaka if (MS(urtwn_read_4(sc, R92C_HPON_FSM),
1088 1.1 nonaka R92C_HPON_FSM_CHIP_BONDING_ID) ==
1089 1.1 nonaka R92C_HPON_FSM_CHIP_BONDING_ID_92C_1T2R) {
1090 1.1 nonaka sc->chip |= URTWN_CHIP_92C_1T2R;
1091 1.1 nonaka }
1092 1.1 nonaka }
1093 1.1 nonaka if (reg & R92C_SYS_CFG_VENDOR_UMC) {
1094 1.1 nonaka sc->chip |= URTWN_CHIP_UMC;
1095 1.1 nonaka if (MS(reg, R92C_SYS_CFG_CHIP_VER_RTL) == 0) {
1096 1.1 nonaka sc->chip |= URTWN_CHIP_UMC_A_CUT;
1097 1.1 nonaka }
1098 1.1 nonaka }
1099 1.1 nonaka return (0);
1100 1.1 nonaka }
1101 1.1 nonaka
1102 1.1 nonaka #ifdef URTWN_DEBUG
1103 1.1 nonaka static void
1104 1.1 nonaka urtwn_dump_rom(struct urtwn_softc *sc, struct r92c_rom *rp)
1105 1.1 nonaka {
1106 1.1 nonaka
1107 1.1 nonaka aprint_normal_dev(sc->sc_dev,
1108 1.1 nonaka "id 0x%04x, dbg_sel 0x%x, vid 0x%x, pid 0x%x\n",
1109 1.1 nonaka rp->id, rp->dbg_sel, rp->vid, rp->pid);
1110 1.1 nonaka
1111 1.1 nonaka aprint_normal_dev(sc->sc_dev,
1112 1.1 nonaka "usb_opt 0x%x, ep_setting 0x%x, usb_phy 0x%x\n",
1113 1.1 nonaka rp->usb_opt, rp->ep_setting, rp->usb_phy);
1114 1.1 nonaka
1115 1.1 nonaka aprint_normal_dev(sc->sc_dev,
1116 1.1 nonaka "macaddr %02x:%02x:%02x:%02x:%02x:%02x\n",
1117 1.1 nonaka rp->macaddr[0], rp->macaddr[1],
1118 1.1 nonaka rp->macaddr[2], rp->macaddr[3],
1119 1.1 nonaka rp->macaddr[4], rp->macaddr[5]);
1120 1.1 nonaka
1121 1.1 nonaka aprint_normal_dev(sc->sc_dev,
1122 1.1 nonaka "string %s, subcustomer_id 0x%x\n",
1123 1.1 nonaka rp->string, rp->subcustomer_id);
1124 1.1 nonaka
1125 1.1 nonaka aprint_normal_dev(sc->sc_dev,
1126 1.1 nonaka "cck_tx_pwr c0: %d %d %d, c1: %d %d %d\n",
1127 1.1 nonaka rp->cck_tx_pwr[0][0], rp->cck_tx_pwr[0][1], rp->cck_tx_pwr[0][2],
1128 1.1 nonaka rp->cck_tx_pwr[1][0], rp->cck_tx_pwr[1][1], rp->cck_tx_pwr[1][2]);
1129 1.1 nonaka
1130 1.1 nonaka aprint_normal_dev(sc->sc_dev,
1131 1.1 nonaka "ht40_1s_tx_pwr c0 %d %d %d, c1 %d %d %d\n",
1132 1.1 nonaka rp->ht40_1s_tx_pwr[0][0], rp->ht40_1s_tx_pwr[0][1],
1133 1.1 nonaka rp->ht40_1s_tx_pwr[0][2],
1134 1.1 nonaka rp->ht40_1s_tx_pwr[1][0], rp->ht40_1s_tx_pwr[1][1],
1135 1.1 nonaka rp->ht40_1s_tx_pwr[1][2]);
1136 1.1 nonaka
1137 1.1 nonaka aprint_normal_dev(sc->sc_dev,
1138 1.1 nonaka "ht40_2s_tx_pwr_diff c0: %d %d %d, c1: %d %d %d\n",
1139 1.1 nonaka rp->ht40_2s_tx_pwr_diff[0] & 0xf, rp->ht40_2s_tx_pwr_diff[1] & 0xf,
1140 1.1 nonaka rp->ht40_2s_tx_pwr_diff[2] & 0xf,
1141 1.1 nonaka rp->ht40_2s_tx_pwr_diff[0] >> 4, rp->ht40_2s_tx_pwr_diff[1] & 0xf,
1142 1.1 nonaka rp->ht40_2s_tx_pwr_diff[2] >> 4);
1143 1.1 nonaka
1144 1.1 nonaka aprint_normal_dev(sc->sc_dev,
1145 1.1 nonaka "ht20_tx_pwr_diff c0: %d %d %d, c1: %d %d %d\n",
1146 1.1 nonaka rp->ht20_tx_pwr_diff[0] & 0xf, rp->ht20_tx_pwr_diff[1] & 0xf,
1147 1.1 nonaka rp->ht20_tx_pwr_diff[2] & 0xf,
1148 1.1 nonaka rp->ht20_tx_pwr_diff[0] >> 4, rp->ht20_tx_pwr_diff[1] >> 4,
1149 1.1 nonaka rp->ht20_tx_pwr_diff[2] >> 4);
1150 1.1 nonaka
1151 1.1 nonaka aprint_normal_dev(sc->sc_dev,
1152 1.1 nonaka "ofdm_tx_pwr_diff c0: %d %d %d, c1: %d %d %d\n",
1153 1.1 nonaka rp->ofdm_tx_pwr_diff[0] & 0xf, rp->ofdm_tx_pwr_diff[1] & 0xf,
1154 1.1 nonaka rp->ofdm_tx_pwr_diff[2] & 0xf,
1155 1.1 nonaka rp->ofdm_tx_pwr_diff[0] >> 4, rp->ofdm_tx_pwr_diff[1] >> 4,
1156 1.1 nonaka rp->ofdm_tx_pwr_diff[2] >> 4);
1157 1.1 nonaka
1158 1.1 nonaka aprint_normal_dev(sc->sc_dev,
1159 1.1 nonaka "ht40_max_pwr_offset c0: %d %d %d, c1: %d %d %d\n",
1160 1.1 nonaka rp->ht40_max_pwr[0] & 0xf, rp->ht40_max_pwr[1] & 0xf,
1161 1.1 nonaka rp->ht40_max_pwr[2] & 0xf,
1162 1.1 nonaka rp->ht40_max_pwr[0] >> 4, rp->ht40_max_pwr[1] >> 4,
1163 1.1 nonaka rp->ht40_max_pwr[2] >> 4);
1164 1.1 nonaka
1165 1.1 nonaka aprint_normal_dev(sc->sc_dev,
1166 1.1 nonaka "ht20_max_pwr_offset c0: %d %d %d, c1: %d %d %d\n",
1167 1.1 nonaka rp->ht20_max_pwr[0] & 0xf, rp->ht20_max_pwr[1] & 0xf,
1168 1.1 nonaka rp->ht20_max_pwr[2] & 0xf,
1169 1.1 nonaka rp->ht20_max_pwr[0] >> 4, rp->ht20_max_pwr[1] >> 4,
1170 1.1 nonaka rp->ht20_max_pwr[2] >> 4);
1171 1.1 nonaka
1172 1.1 nonaka aprint_normal_dev(sc->sc_dev,
1173 1.1 nonaka "xtal_calib %d, tssi %d %d, thermal %d\n",
1174 1.1 nonaka rp->xtal_calib, rp->tssi[0], rp->tssi[1], rp->thermal_meter);
1175 1.1 nonaka
1176 1.1 nonaka aprint_normal_dev(sc->sc_dev,
1177 1.1 nonaka "rf_opt1 0x%x, rf_opt2 0x%x, rf_opt3 0x%x, rf_opt4 0x%x\n",
1178 1.1 nonaka rp->rf_opt1, rp->rf_opt2, rp->rf_opt3, rp->rf_opt4);
1179 1.1 nonaka
1180 1.1 nonaka aprint_normal_dev(sc->sc_dev,
1181 1.1 nonaka "channnel_plan %d, version %d customer_id 0x%x\n",
1182 1.1 nonaka rp->channel_plan, rp->version, rp->curstomer_id);
1183 1.1 nonaka }
1184 1.1 nonaka #endif
1185 1.1 nonaka
1186 1.1 nonaka static void
1187 1.1 nonaka urtwn_read_rom(struct urtwn_softc *sc)
1188 1.1 nonaka {
1189 1.1 nonaka struct ieee80211com *ic = &sc->sc_ic;
1190 1.1 nonaka struct r92c_rom *rom = &sc->rom;
1191 1.1 nonaka
1192 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
1193 1.1 nonaka
1194 1.12 christos mutex_enter(&sc->sc_write_mtx);
1195 1.12 christos
1196 1.1 nonaka /* Read full ROM image. */
1197 1.1 nonaka urtwn_efuse_read(sc);
1198 1.1 nonaka #ifdef URTWN_DEBUG
1199 1.1 nonaka if (urtwn_debug & DBG_REG)
1200 1.1 nonaka urtwn_dump_rom(sc, rom);
1201 1.1 nonaka #endif
1202 1.1 nonaka
1203 1.1 nonaka /* XXX Weird but this is what the vendor driver does. */
1204 1.1 nonaka sc->pa_setting = urtwn_efuse_read_1(sc, 0x1fa);
1205 1.1 nonaka sc->board_type = MS(rom->rf_opt1, R92C_ROM_RF1_BOARD_TYPE);
1206 1.1 nonaka sc->regulatory = MS(rom->rf_opt1, R92C_ROM_RF1_REGULATORY);
1207 1.1 nonaka
1208 1.1 nonaka DPRINTFN(DBG_INIT,
1209 1.1 nonaka ("%s: %s: PA setting=0x%x, board=0x%x, regulatory=%d\n",
1210 1.1 nonaka device_xname(sc->sc_dev), __func__, sc->pa_setting,
1211 1.1 nonaka sc->board_type, sc->regulatory));
1212 1.1 nonaka
1213 1.1 nonaka IEEE80211_ADDR_COPY(ic->ic_myaddr, rom->macaddr);
1214 1.12 christos
1215 1.12 christos mutex_exit(&sc->sc_write_mtx);
1216 1.1 nonaka }
1217 1.1 nonaka
1218 1.1 nonaka static int
1219 1.1 nonaka urtwn_media_change(struct ifnet *ifp)
1220 1.1 nonaka {
1221 1.1 nonaka #ifdef URTWN_DEBUG
1222 1.1 nonaka struct urtwn_softc *sc = ifp->if_softc;
1223 1.1 nonaka #endif
1224 1.1 nonaka int error;
1225 1.1 nonaka
1226 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
1227 1.1 nonaka
1228 1.1 nonaka if ((error = ieee80211_media_change(ifp)) != ENETRESET)
1229 1.1 nonaka return (error);
1230 1.1 nonaka
1231 1.1 nonaka if ((ifp->if_flags & (IFF_UP | IFF_RUNNING)) ==
1232 1.1 nonaka (IFF_UP | IFF_RUNNING)) {
1233 1.1 nonaka urtwn_init(ifp);
1234 1.1 nonaka }
1235 1.1 nonaka return (0);
1236 1.1 nonaka }
1237 1.1 nonaka
1238 1.1 nonaka /*
1239 1.1 nonaka * Initialize rate adaptation in firmware.
1240 1.1 nonaka */
1241 1.1 nonaka static int
1242 1.1 nonaka urtwn_ra_init(struct urtwn_softc *sc)
1243 1.1 nonaka {
1244 1.1 nonaka static const uint8_t map[] = {
1245 1.1 nonaka 2, 4, 11, 22, 12, 18, 24, 36, 48, 72, 96, 108
1246 1.1 nonaka };
1247 1.1 nonaka struct ieee80211com *ic = &sc->sc_ic;
1248 1.1 nonaka struct ieee80211_node *ni = ic->ic_bss;
1249 1.1 nonaka struct ieee80211_rateset *rs = &ni->ni_rates;
1250 1.1 nonaka struct r92c_fw_cmd_macid_cfg cmd;
1251 1.1 nonaka uint32_t rates, basicrates;
1252 1.1 nonaka uint32_t mask;
1253 1.1 nonaka uint8_t mode;
1254 1.1 nonaka int maxrate, maxbasicrate, error, i, j;
1255 1.1 nonaka
1256 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
1257 1.1 nonaka
1258 1.12 christos KASSERT(mutex_owned(&sc->sc_write_mtx));
1259 1.12 christos
1260 1.1 nonaka /* Get normal and basic rates mask. */
1261 1.1 nonaka rates = basicrates = 0;
1262 1.1 nonaka maxrate = maxbasicrate = 0;
1263 1.1 nonaka for (i = 0; i < rs->rs_nrates; i++) {
1264 1.1 nonaka /* Convert 802.11 rate to HW rate index. */
1265 1.1 nonaka for (j = 0; j < (int)__arraycount(map); j++) {
1266 1.1 nonaka if ((rs->rs_rates[i] & IEEE80211_RATE_VAL) == map[j]) {
1267 1.1 nonaka break;
1268 1.1 nonaka }
1269 1.1 nonaka }
1270 1.1 nonaka if (j == __arraycount(map)) {
1271 1.1 nonaka /* Unknown rate, skip. */
1272 1.1 nonaka continue;
1273 1.1 nonaka }
1274 1.1 nonaka
1275 1.1 nonaka rates |= 1U << j;
1276 1.1 nonaka if (j > maxrate) {
1277 1.1 nonaka maxrate = j;
1278 1.1 nonaka }
1279 1.1 nonaka
1280 1.1 nonaka if (rs->rs_rates[i] & IEEE80211_RATE_BASIC) {
1281 1.1 nonaka basicrates |= 1U << j;
1282 1.1 nonaka if (j > maxbasicrate) {
1283 1.1 nonaka maxbasicrate = j;
1284 1.1 nonaka }
1285 1.1 nonaka }
1286 1.1 nonaka }
1287 1.1 nonaka if (ic->ic_curmode == IEEE80211_MODE_11B) {
1288 1.1 nonaka mode = R92C_RAID_11B;
1289 1.1 nonaka } else {
1290 1.1 nonaka mode = R92C_RAID_11BG;
1291 1.1 nonaka }
1292 1.1 nonaka DPRINTFN(DBG_INIT, ("%s: %s: mode=0x%x rates=0x%x, basicrates=0x%x, "
1293 1.1 nonaka "maxrate=%x, maxbasicrate=%x\n",
1294 1.1 nonaka device_xname(sc->sc_dev), __func__, mode, rates, basicrates,
1295 1.1 nonaka maxrate, maxbasicrate));
1296 1.1 nonaka if (basicrates == 0) {
1297 1.1 nonaka basicrates |= 1; /* add 1Mbps */
1298 1.1 nonaka }
1299 1.1 nonaka
1300 1.1 nonaka /* Set rates mask for group addressed frames. */
1301 1.1 nonaka cmd.macid = URTWN_MACID_BC | URTWN_MACID_VALID;
1302 1.1 nonaka mask = (mode << 28) | basicrates;
1303 1.1 nonaka cmd.mask[0] = (uint8_t)mask;
1304 1.1 nonaka cmd.mask[1] = (uint8_t)(mask >> 8);
1305 1.1 nonaka cmd.mask[2] = (uint8_t)(mask >> 16);
1306 1.1 nonaka cmd.mask[3] = (uint8_t)(mask >> 24);
1307 1.1 nonaka error = urtwn_fw_cmd(sc, R92C_CMD_MACID_CONFIG, &cmd, sizeof(cmd));
1308 1.1 nonaka if (error != 0) {
1309 1.1 nonaka aprint_error_dev(sc->sc_dev,
1310 1.1 nonaka "could not add broadcast station\n");
1311 1.1 nonaka return (error);
1312 1.1 nonaka }
1313 1.1 nonaka /* Set initial MRR rate. */
1314 1.1 nonaka DPRINTFN(DBG_INIT, ("%s: %s: maxbasicrate=%d\n",
1315 1.1 nonaka device_xname(sc->sc_dev), __func__, maxbasicrate));
1316 1.1 nonaka urtwn_write_1(sc, R92C_INIDATA_RATE_SEL(URTWN_MACID_BC), maxbasicrate);
1317 1.1 nonaka
1318 1.1 nonaka /* Set rates mask for unicast frames. */
1319 1.1 nonaka cmd.macid = URTWN_MACID_BSS | URTWN_MACID_VALID;
1320 1.1 nonaka mask = (mode << 28) | rates;
1321 1.1 nonaka cmd.mask[0] = (uint8_t)mask;
1322 1.1 nonaka cmd.mask[1] = (uint8_t)(mask >> 8);
1323 1.1 nonaka cmd.mask[2] = (uint8_t)(mask >> 16);
1324 1.1 nonaka cmd.mask[3] = (uint8_t)(mask >> 24);
1325 1.1 nonaka error = urtwn_fw_cmd(sc, R92C_CMD_MACID_CONFIG, &cmd, sizeof(cmd));
1326 1.1 nonaka if (error != 0) {
1327 1.1 nonaka aprint_error_dev(sc->sc_dev, "could not add BSS station\n");
1328 1.1 nonaka return (error);
1329 1.1 nonaka }
1330 1.1 nonaka /* Set initial MRR rate. */
1331 1.1 nonaka DPRINTFN(DBG_INIT, ("%s: %s: maxrate=%d\n", device_xname(sc->sc_dev),
1332 1.1 nonaka __func__, maxrate));
1333 1.1 nonaka urtwn_write_1(sc, R92C_INIDATA_RATE_SEL(URTWN_MACID_BSS), maxrate);
1334 1.1 nonaka
1335 1.1 nonaka /* Indicate highest supported rate. */
1336 1.1 nonaka ni->ni_txrate = rs->rs_nrates - 1;
1337 1.1 nonaka
1338 1.1 nonaka return (0);
1339 1.1 nonaka }
1340 1.1 nonaka
1341 1.1 nonaka static int
1342 1.1 nonaka urtwn_get_nettype(struct urtwn_softc *sc)
1343 1.1 nonaka {
1344 1.1 nonaka struct ieee80211com *ic = &sc->sc_ic;
1345 1.1 nonaka int type;
1346 1.1 nonaka
1347 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
1348 1.1 nonaka
1349 1.1 nonaka switch (ic->ic_opmode) {
1350 1.1 nonaka case IEEE80211_M_STA:
1351 1.1 nonaka type = R92C_CR_NETTYPE_INFRA;
1352 1.1 nonaka break;
1353 1.1 nonaka
1354 1.1 nonaka case IEEE80211_M_IBSS:
1355 1.1 nonaka type = R92C_CR_NETTYPE_ADHOC;
1356 1.1 nonaka break;
1357 1.1 nonaka
1358 1.1 nonaka default:
1359 1.1 nonaka type = R92C_CR_NETTYPE_NOLINK;
1360 1.1 nonaka break;
1361 1.1 nonaka }
1362 1.1 nonaka
1363 1.1 nonaka return (type);
1364 1.1 nonaka }
1365 1.1 nonaka
1366 1.1 nonaka static void
1367 1.1 nonaka urtwn_set_nettype0_msr(struct urtwn_softc *sc, uint8_t type)
1368 1.1 nonaka {
1369 1.1 nonaka uint8_t reg;
1370 1.1 nonaka
1371 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s: type=%d\n", device_xname(sc->sc_dev),
1372 1.1 nonaka __func__, type));
1373 1.1 nonaka
1374 1.12 christos KASSERT(mutex_owned(&sc->sc_write_mtx));
1375 1.12 christos
1376 1.1 nonaka reg = urtwn_read_1(sc, R92C_CR + 2) & 0x0c;
1377 1.1 nonaka urtwn_write_1(sc, R92C_CR + 2, reg | type);
1378 1.1 nonaka }
1379 1.1 nonaka
1380 1.1 nonaka static void
1381 1.1 nonaka urtwn_tsf_sync_enable(struct urtwn_softc *sc)
1382 1.1 nonaka {
1383 1.1 nonaka struct ieee80211_node *ni = sc->sc_ic.ic_bss;
1384 1.1 nonaka uint64_t tsf;
1385 1.1 nonaka
1386 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
1387 1.1 nonaka
1388 1.12 christos KASSERT(mutex_owned(&sc->sc_write_mtx));
1389 1.12 christos
1390 1.1 nonaka /* Enable TSF synchronization. */
1391 1.1 nonaka urtwn_write_1(sc, R92C_BCN_CTRL,
1392 1.1 nonaka urtwn_read_1(sc, R92C_BCN_CTRL) & ~R92C_BCN_CTRL_DIS_TSF_UDT0);
1393 1.1 nonaka
1394 1.1 nonaka /* Correct TSF */
1395 1.1 nonaka urtwn_write_1(sc, R92C_BCN_CTRL,
1396 1.1 nonaka urtwn_read_1(sc, R92C_BCN_CTRL) & ~R92C_BCN_CTRL_EN_BCN);
1397 1.1 nonaka
1398 1.1 nonaka /* Set initial TSF. */
1399 1.1 nonaka tsf = ni->ni_tstamp.tsf;
1400 1.1 nonaka tsf = le64toh(tsf);
1401 1.1 nonaka tsf = tsf - (tsf % (ni->ni_intval * IEEE80211_DUR_TU));
1402 1.1 nonaka tsf -= IEEE80211_DUR_TU;
1403 1.1 nonaka urtwn_write_4(sc, R92C_TSFTR + 0, (uint32_t)tsf);
1404 1.1 nonaka urtwn_write_4(sc, R92C_TSFTR + 4, (uint32_t)(tsf >> 32));
1405 1.1 nonaka
1406 1.1 nonaka urtwn_write_1(sc, R92C_BCN_CTRL,
1407 1.1 nonaka urtwn_read_1(sc, R92C_BCN_CTRL) | R92C_BCN_CTRL_EN_BCN);
1408 1.1 nonaka }
1409 1.1 nonaka
1410 1.1 nonaka static void
1411 1.1 nonaka urtwn_set_led(struct urtwn_softc *sc, int led, int on)
1412 1.1 nonaka {
1413 1.1 nonaka uint8_t reg;
1414 1.1 nonaka
1415 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s: led=%d, on=%d\n", device_xname(sc->sc_dev),
1416 1.1 nonaka __func__, led, on));
1417 1.1 nonaka
1418 1.12 christos KASSERT(mutex_owned(&sc->sc_write_mtx));
1419 1.12 christos
1420 1.1 nonaka if (led == URTWN_LED_LINK) {
1421 1.1 nonaka reg = urtwn_read_1(sc, R92C_LEDCFG0) & 0x70;
1422 1.1 nonaka if (!on) {
1423 1.1 nonaka reg |= R92C_LEDCFG0_DIS;
1424 1.1 nonaka }
1425 1.1 nonaka urtwn_write_1(sc, R92C_LEDCFG0, reg);
1426 1.1 nonaka sc->ledlink = on; /* Save LED state. */
1427 1.1 nonaka }
1428 1.1 nonaka }
1429 1.1 nonaka
1430 1.1 nonaka static void
1431 1.1 nonaka urtwn_calib_to(void *arg)
1432 1.1 nonaka {
1433 1.1 nonaka struct urtwn_softc *sc = arg;
1434 1.1 nonaka
1435 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
1436 1.1 nonaka
1437 1.1 nonaka if (sc->sc_dying)
1438 1.1 nonaka return;
1439 1.1 nonaka
1440 1.1 nonaka /* Do it in a process context. */
1441 1.1 nonaka urtwn_do_async(sc, urtwn_calib_to_cb, NULL, 0);
1442 1.1 nonaka }
1443 1.1 nonaka
1444 1.1 nonaka /* ARGSUSED */
1445 1.1 nonaka static void
1446 1.1 nonaka urtwn_calib_to_cb(struct urtwn_softc *sc, void *arg)
1447 1.1 nonaka {
1448 1.1 nonaka struct r92c_fw_cmd_rssi cmd;
1449 1.1 nonaka
1450 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
1451 1.1 nonaka
1452 1.1 nonaka if (sc->sc_ic.ic_state != IEEE80211_S_RUN)
1453 1.1 nonaka goto restart_timer;
1454 1.1 nonaka
1455 1.12 christos mutex_enter(&sc->sc_write_mtx);
1456 1.1 nonaka if (sc->avg_pwdb != -1) {
1457 1.1 nonaka /* Indicate Rx signal strength to FW for rate adaptation. */
1458 1.1 nonaka memset(&cmd, 0, sizeof(cmd));
1459 1.1 nonaka cmd.macid = 0; /* BSS. */
1460 1.1 nonaka cmd.pwdb = sc->avg_pwdb;
1461 1.1 nonaka DPRINTFN(DBG_RF, ("%s: %s: sending RSSI command avg=%d\n",
1462 1.1 nonaka device_xname(sc->sc_dev), __func__, sc->avg_pwdb));
1463 1.1 nonaka urtwn_fw_cmd(sc, R92C_CMD_RSSI_SETTING, &cmd, sizeof(cmd));
1464 1.1 nonaka }
1465 1.1 nonaka
1466 1.1 nonaka /* Do temperature compensation. */
1467 1.1 nonaka urtwn_temp_calib(sc);
1468 1.12 christos mutex_exit(&sc->sc_write_mtx);
1469 1.1 nonaka
1470 1.1 nonaka restart_timer:
1471 1.1 nonaka if (!sc->sc_dying) {
1472 1.1 nonaka /* Restart calibration timer. */
1473 1.1 nonaka callout_schedule(&sc->sc_calib_to, hz);
1474 1.1 nonaka }
1475 1.1 nonaka }
1476 1.1 nonaka
1477 1.1 nonaka static void
1478 1.1 nonaka urtwn_next_scan(void *arg)
1479 1.1 nonaka {
1480 1.1 nonaka struct urtwn_softc *sc = arg;
1481 1.16 jmcneill int s;
1482 1.1 nonaka
1483 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
1484 1.1 nonaka
1485 1.1 nonaka if (sc->sc_dying)
1486 1.1 nonaka return;
1487 1.1 nonaka
1488 1.16 jmcneill s = splnet();
1489 1.1 nonaka if (sc->sc_ic.ic_state == IEEE80211_S_SCAN)
1490 1.1 nonaka ieee80211_next_scan(&sc->sc_ic);
1491 1.16 jmcneill splx(s);
1492 1.1 nonaka }
1493 1.1 nonaka
1494 1.1 nonaka static int
1495 1.1 nonaka urtwn_newstate(struct ieee80211com *ic, enum ieee80211_state nstate, int arg)
1496 1.1 nonaka {
1497 1.1 nonaka struct urtwn_softc *sc = ic->ic_ifp->if_softc;
1498 1.1 nonaka struct urtwn_cmd_newstate cmd;
1499 1.1 nonaka
1500 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s: nstate=%s(%d), arg=%d\n",
1501 1.1 nonaka device_xname(sc->sc_dev), __func__,
1502 1.1 nonaka ieee80211_state_name[nstate], nstate, arg));
1503 1.1 nonaka
1504 1.1 nonaka callout_stop(&sc->sc_scan_to);
1505 1.1 nonaka callout_stop(&sc->sc_calib_to);
1506 1.1 nonaka
1507 1.1 nonaka /* Do it in a process context. */
1508 1.1 nonaka cmd.state = nstate;
1509 1.1 nonaka cmd.arg = arg;
1510 1.1 nonaka urtwn_do_async(sc, urtwn_newstate_cb, &cmd, sizeof(cmd));
1511 1.1 nonaka return (0);
1512 1.1 nonaka }
1513 1.1 nonaka
1514 1.1 nonaka static void
1515 1.1 nonaka urtwn_newstate_cb(struct urtwn_softc *sc, void *arg)
1516 1.1 nonaka {
1517 1.1 nonaka struct urtwn_cmd_newstate *cmd = arg;
1518 1.1 nonaka struct ieee80211com *ic = &sc->sc_ic;
1519 1.1 nonaka struct ieee80211_node *ni;
1520 1.1 nonaka enum ieee80211_state ostate = ic->ic_state;
1521 1.1 nonaka enum ieee80211_state nstate = cmd->state;
1522 1.1 nonaka uint32_t reg;
1523 1.1 nonaka uint8_t sifs_time;
1524 1.1 nonaka int s;
1525 1.1 nonaka
1526 1.1 nonaka DPRINTFN(DBG_FN|DBG_STM, ("%s: %s: %s(%d)->%s(%d)\n",
1527 1.1 nonaka device_xname(sc->sc_dev), __func__,
1528 1.1 nonaka ieee80211_state_name[ostate], ostate,
1529 1.1 nonaka ieee80211_state_name[nstate], nstate));
1530 1.1 nonaka
1531 1.1 nonaka s = splnet();
1532 1.12 christos mutex_enter(&sc->sc_write_mtx);
1533 1.12 christos
1534 1.12 christos callout_stop(&sc->sc_scan_to);
1535 1.12 christos callout_stop(&sc->sc_calib_to);
1536 1.1 nonaka
1537 1.1 nonaka switch (ostate) {
1538 1.1 nonaka case IEEE80211_S_INIT:
1539 1.1 nonaka break;
1540 1.1 nonaka
1541 1.1 nonaka case IEEE80211_S_SCAN:
1542 1.1 nonaka if (nstate != IEEE80211_S_SCAN) {
1543 1.1 nonaka /*
1544 1.1 nonaka * End of scanning
1545 1.1 nonaka */
1546 1.1 nonaka /* flush 4-AC Queue after site_survey */
1547 1.1 nonaka urtwn_write_1(sc, R92C_TXPAUSE, 0x0);
1548 1.1 nonaka
1549 1.1 nonaka /* Allow Rx from our BSSID only. */
1550 1.1 nonaka urtwn_write_4(sc, R92C_RCR,
1551 1.1 nonaka urtwn_read_4(sc, R92C_RCR) |
1552 1.1 nonaka R92C_RCR_CBSSID_DATA | R92C_RCR_CBSSID_BCN);
1553 1.1 nonaka }
1554 1.1 nonaka break;
1555 1.7 christos
1556 1.1 nonaka case IEEE80211_S_AUTH:
1557 1.1 nonaka case IEEE80211_S_ASSOC:
1558 1.1 nonaka break;
1559 1.1 nonaka
1560 1.1 nonaka case IEEE80211_S_RUN:
1561 1.1 nonaka /* Turn link LED off. */
1562 1.1 nonaka urtwn_set_led(sc, URTWN_LED_LINK, 0);
1563 1.1 nonaka
1564 1.1 nonaka /* Set media status to 'No Link'. */
1565 1.1 nonaka urtwn_set_nettype0_msr(sc, R92C_CR_NETTYPE_NOLINK);
1566 1.1 nonaka
1567 1.1 nonaka /* Stop Rx of data frames. */
1568 1.1 nonaka urtwn_write_2(sc, R92C_RXFLTMAP2, 0);
1569 1.1 nonaka
1570 1.1 nonaka /* Reset TSF. */
1571 1.1 nonaka urtwn_write_1(sc, R92C_DUAL_TSF_RST, 0x03);
1572 1.1 nonaka
1573 1.1 nonaka /* Disable TSF synchronization. */
1574 1.1 nonaka urtwn_write_1(sc, R92C_BCN_CTRL,
1575 1.1 nonaka urtwn_read_1(sc, R92C_BCN_CTRL) |
1576 1.1 nonaka R92C_BCN_CTRL_DIS_TSF_UDT0);
1577 1.1 nonaka
1578 1.1 nonaka /* Back to 20MHz mode */
1579 1.14 jmcneill urtwn_set_chan(sc, ic->ic_curchan,
1580 1.1 nonaka IEEE80211_HTINFO_2NDCHAN_NONE);
1581 1.1 nonaka
1582 1.1 nonaka if (ic->ic_opmode == IEEE80211_M_IBSS ||
1583 1.1 nonaka ic->ic_opmode == IEEE80211_M_HOSTAP) {
1584 1.1 nonaka /* Stop BCN */
1585 1.1 nonaka urtwn_write_1(sc, R92C_BCN_CTRL,
1586 1.1 nonaka urtwn_read_1(sc, R92C_BCN_CTRL) &
1587 1.1 nonaka ~(R92C_BCN_CTRL_EN_BCN | R92C_BCN_CTRL_TXBCN_RPT));
1588 1.1 nonaka }
1589 1.1 nonaka
1590 1.1 nonaka /* Reset EDCA parameters. */
1591 1.1 nonaka urtwn_write_4(sc, R92C_EDCA_VO_PARAM, 0x002f3217);
1592 1.1 nonaka urtwn_write_4(sc, R92C_EDCA_VI_PARAM, 0x005e4317);
1593 1.1 nonaka urtwn_write_4(sc, R92C_EDCA_BE_PARAM, 0x00105320);
1594 1.1 nonaka urtwn_write_4(sc, R92C_EDCA_BK_PARAM, 0x0000a444);
1595 1.1 nonaka
1596 1.1 nonaka /* flush all cam entries */
1597 1.1 nonaka urtwn_cam_init(sc);
1598 1.1 nonaka break;
1599 1.1 nonaka }
1600 1.1 nonaka
1601 1.1 nonaka switch (nstate) {
1602 1.1 nonaka case IEEE80211_S_INIT:
1603 1.1 nonaka /* Turn link LED off. */
1604 1.1 nonaka urtwn_set_led(sc, URTWN_LED_LINK, 0);
1605 1.1 nonaka break;
1606 1.1 nonaka
1607 1.1 nonaka case IEEE80211_S_SCAN:
1608 1.1 nonaka if (ostate != IEEE80211_S_SCAN) {
1609 1.1 nonaka /*
1610 1.1 nonaka * Begin of scanning
1611 1.1 nonaka */
1612 1.1 nonaka
1613 1.1 nonaka /* Set gain for scanning. */
1614 1.1 nonaka reg = urtwn_bb_read(sc, R92C_OFDM0_AGCCORE1(0));
1615 1.1 nonaka reg = RW(reg, R92C_OFDM0_AGCCORE1_GAIN, 0x20);
1616 1.1 nonaka urtwn_bb_write(sc, R92C_OFDM0_AGCCORE1(0), reg);
1617 1.1 nonaka
1618 1.1 nonaka reg = urtwn_bb_read(sc, R92C_OFDM0_AGCCORE1(1));
1619 1.1 nonaka reg = RW(reg, R92C_OFDM0_AGCCORE1_GAIN, 0x20);
1620 1.1 nonaka urtwn_bb_write(sc, R92C_OFDM0_AGCCORE1(1), reg);
1621 1.1 nonaka
1622 1.1 nonaka /* Set media status to 'No Link'. */
1623 1.1 nonaka urtwn_set_nettype0_msr(sc, R92C_CR_NETTYPE_NOLINK);
1624 1.1 nonaka
1625 1.1 nonaka /* Allow Rx from any BSSID. */
1626 1.1 nonaka urtwn_write_4(sc, R92C_RCR,
1627 1.1 nonaka urtwn_read_4(sc, R92C_RCR) &
1628 1.1 nonaka ~(R92C_RCR_CBSSID_DATA | R92C_RCR_CBSSID_BCN));
1629 1.1 nonaka
1630 1.1 nonaka /* Stop Rx of data frames. */
1631 1.1 nonaka urtwn_write_2(sc, R92C_RXFLTMAP2, 0);
1632 1.1 nonaka
1633 1.1 nonaka /* Disable update TSF */
1634 1.1 nonaka urtwn_write_1(sc, R92C_BCN_CTRL,
1635 1.1 nonaka urtwn_read_1(sc, R92C_BCN_CTRL) |
1636 1.1 nonaka R92C_BCN_CTRL_DIS_TSF_UDT0);
1637 1.1 nonaka }
1638 1.1 nonaka
1639 1.1 nonaka /* Make link LED blink during scan. */
1640 1.1 nonaka urtwn_set_led(sc, URTWN_LED_LINK, !sc->ledlink);
1641 1.1 nonaka
1642 1.1 nonaka /* Pause AC Tx queues. */
1643 1.1 nonaka urtwn_write_1(sc, R92C_TXPAUSE,
1644 1.1 nonaka urtwn_read_1(sc, R92C_TXPAUSE) | 0x0f);
1645 1.1 nonaka
1646 1.1 nonaka urtwn_set_chan(sc, ic->ic_curchan,
1647 1.1 nonaka IEEE80211_HTINFO_2NDCHAN_NONE);
1648 1.1 nonaka
1649 1.1 nonaka /* Start periodic scan. */
1650 1.1 nonaka if (!sc->sc_dying)
1651 1.1 nonaka callout_schedule(&sc->sc_scan_to, hz / 5);
1652 1.1 nonaka break;
1653 1.1 nonaka
1654 1.1 nonaka case IEEE80211_S_AUTH:
1655 1.1 nonaka /* Set initial gain under link. */
1656 1.1 nonaka reg = urtwn_bb_read(sc, R92C_OFDM0_AGCCORE1(0));
1657 1.12 christos #ifdef doaslinux
1658 1.1 nonaka reg = RW(reg, R92C_OFDM0_AGCCORE1_GAIN, 0x32);
1659 1.12 christos #else
1660 1.12 christos reg = RW(reg, R92C_OFDM0_AGCCORE1_GAIN, 0x20);
1661 1.12 christos #endif
1662 1.1 nonaka urtwn_bb_write(sc, R92C_OFDM0_AGCCORE1(0), reg);
1663 1.1 nonaka
1664 1.1 nonaka reg = urtwn_bb_read(sc, R92C_OFDM0_AGCCORE1(1));
1665 1.12 christos #ifdef doaslinux
1666 1.1 nonaka reg = RW(reg, R92C_OFDM0_AGCCORE1_GAIN, 0x32);
1667 1.12 christos #else
1668 1.12 christos reg = RW(reg, R92C_OFDM0_AGCCORE1_GAIN, 0x20);
1669 1.12 christos #endif
1670 1.1 nonaka urtwn_bb_write(sc, R92C_OFDM0_AGCCORE1(1), reg);
1671 1.1 nonaka
1672 1.1 nonaka /* Set media status to 'No Link'. */
1673 1.1 nonaka urtwn_set_nettype0_msr(sc, R92C_CR_NETTYPE_NOLINK);
1674 1.1 nonaka
1675 1.1 nonaka /* Allow Rx from any BSSID. */
1676 1.1 nonaka urtwn_write_4(sc, R92C_RCR,
1677 1.1 nonaka urtwn_read_4(sc, R92C_RCR) &
1678 1.1 nonaka ~(R92C_RCR_CBSSID_DATA | R92C_RCR_CBSSID_BCN));
1679 1.1 nonaka
1680 1.1 nonaka urtwn_set_chan(sc, ic->ic_curchan,
1681 1.1 nonaka IEEE80211_HTINFO_2NDCHAN_NONE);
1682 1.1 nonaka break;
1683 1.1 nonaka
1684 1.1 nonaka case IEEE80211_S_ASSOC:
1685 1.1 nonaka break;
1686 1.1 nonaka
1687 1.1 nonaka case IEEE80211_S_RUN:
1688 1.1 nonaka ni = ic->ic_bss;
1689 1.1 nonaka
1690 1.1 nonaka /* XXX: Set 20MHz mode */
1691 1.1 nonaka urtwn_set_chan(sc, ic->ic_curchan,
1692 1.1 nonaka IEEE80211_HTINFO_2NDCHAN_NONE);
1693 1.1 nonaka
1694 1.1 nonaka if (ic->ic_opmode == IEEE80211_M_MONITOR) {
1695 1.1 nonaka /* Back to 20MHz mode */
1696 1.13 jmcneill urtwn_set_chan(sc, ic->ic_curchan,
1697 1.1 nonaka IEEE80211_HTINFO_2NDCHAN_NONE);
1698 1.1 nonaka
1699 1.19 christos /* Set media status to 'No Link'. */
1700 1.19 christos urtwn_set_nettype0_msr(sc, R92C_CR_NETTYPE_NOLINK);
1701 1.19 christos
1702 1.1 nonaka /* Enable Rx of data frames. */
1703 1.1 nonaka urtwn_write_2(sc, R92C_RXFLTMAP2, 0xffff);
1704 1.1 nonaka
1705 1.19 christos /* Allow Rx from any BSSID. */
1706 1.19 christos urtwn_write_4(sc, R92C_RCR,
1707 1.19 christos urtwn_read_4(sc, R92C_RCR) &
1708 1.19 christos ~(R92C_RCR_CBSSID_DATA | R92C_RCR_CBSSID_BCN));
1709 1.19 christos
1710 1.19 christos /* Accept Rx data/control/management frames */
1711 1.19 christos urtwn_write_4(sc, R92C_RCR,
1712 1.19 christos urtwn_read_4(sc, R92C_RCR) |
1713 1.19 christos R92C_RCR_ADF | R92C_RCR_ACF | R92C_RCR_AMF);
1714 1.19 christos
1715 1.1 nonaka /* Turn link LED on. */
1716 1.1 nonaka urtwn_set_led(sc, URTWN_LED_LINK, 1);
1717 1.1 nonaka break;
1718 1.1 nonaka }
1719 1.1 nonaka
1720 1.1 nonaka /* Set media status to 'Associated'. */
1721 1.1 nonaka urtwn_set_nettype0_msr(sc, urtwn_get_nettype(sc));
1722 1.1 nonaka
1723 1.1 nonaka /* Set BSSID. */
1724 1.1 nonaka urtwn_write_4(sc, R92C_BSSID + 0, LE_READ_4(&ni->ni_bssid[0]));
1725 1.1 nonaka urtwn_write_4(sc, R92C_BSSID + 4, LE_READ_2(&ni->ni_bssid[4]));
1726 1.1 nonaka
1727 1.1 nonaka if (ic->ic_curmode == IEEE80211_MODE_11B) {
1728 1.1 nonaka urtwn_write_1(sc, R92C_INIRTS_RATE_SEL, 0);
1729 1.1 nonaka } else {
1730 1.1 nonaka /* 802.11b/g */
1731 1.1 nonaka urtwn_write_1(sc, R92C_INIRTS_RATE_SEL, 3);
1732 1.1 nonaka }
1733 1.1 nonaka
1734 1.1 nonaka /* Enable Rx of data frames. */
1735 1.1 nonaka urtwn_write_2(sc, R92C_RXFLTMAP2, 0xffff);
1736 1.1 nonaka
1737 1.1 nonaka /* Set beacon interval. */
1738 1.1 nonaka urtwn_write_2(sc, R92C_BCN_INTERVAL, ni->ni_intval);
1739 1.1 nonaka
1740 1.1 nonaka if (ic->ic_opmode == IEEE80211_M_STA) {
1741 1.1 nonaka /* Allow Rx from our BSSID only. */
1742 1.1 nonaka urtwn_write_4(sc, R92C_RCR,
1743 1.1 nonaka urtwn_read_4(sc, R92C_RCR) |
1744 1.1 nonaka R92C_RCR_CBSSID_DATA | R92C_RCR_CBSSID_BCN);
1745 1.1 nonaka
1746 1.1 nonaka /* Enable TSF synchronization. */
1747 1.1 nonaka urtwn_tsf_sync_enable(sc);
1748 1.1 nonaka }
1749 1.1 nonaka
1750 1.1 nonaka sifs_time = 10;
1751 1.1 nonaka urtwn_write_1(sc, R92C_SIFS_CCK + 1, sifs_time);
1752 1.1 nonaka urtwn_write_1(sc, R92C_SIFS_OFDM + 1, sifs_time);
1753 1.1 nonaka urtwn_write_1(sc, R92C_SPEC_SIFS + 1, sifs_time);
1754 1.1 nonaka urtwn_write_1(sc, R92C_MAC_SPEC_SIFS + 1, sifs_time);
1755 1.1 nonaka urtwn_write_1(sc, R92C_R2T_SIFS + 1, sifs_time);
1756 1.1 nonaka urtwn_write_1(sc, R92C_T2T_SIFS + 1, sifs_time);
1757 1.1 nonaka
1758 1.1 nonaka /* Intialize rate adaptation. */
1759 1.1 nonaka urtwn_ra_init(sc);
1760 1.1 nonaka
1761 1.1 nonaka /* Turn link LED on. */
1762 1.1 nonaka urtwn_set_led(sc, URTWN_LED_LINK, 1);
1763 1.1 nonaka
1764 1.1 nonaka /* Reset average RSSI. */
1765 1.1 nonaka sc->avg_pwdb = -1;
1766 1.1 nonaka
1767 1.1 nonaka /* Reset temperature calibration state machine. */
1768 1.1 nonaka sc->thcal_state = 0;
1769 1.1 nonaka sc->thcal_lctemp = 0;
1770 1.1 nonaka
1771 1.1 nonaka /* Start periodic calibration. */
1772 1.1 nonaka if (!sc->sc_dying)
1773 1.1 nonaka callout_schedule(&sc->sc_calib_to, hz);
1774 1.1 nonaka break;
1775 1.1 nonaka }
1776 1.1 nonaka
1777 1.1 nonaka (*sc->sc_newstate)(ic, nstate, cmd->arg);
1778 1.1 nonaka
1779 1.12 christos mutex_exit(&sc->sc_write_mtx);
1780 1.1 nonaka splx(s);
1781 1.1 nonaka }
1782 1.1 nonaka
1783 1.1 nonaka static int
1784 1.1 nonaka urtwn_wme_update(struct ieee80211com *ic)
1785 1.1 nonaka {
1786 1.1 nonaka struct urtwn_softc *sc = ic->ic_ifp->if_softc;
1787 1.1 nonaka
1788 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
1789 1.1 nonaka
1790 1.1 nonaka /* don't override default WME values if WME is not actually enabled */
1791 1.1 nonaka if (!(ic->ic_flags & IEEE80211_F_WME))
1792 1.1 nonaka return (0);
1793 1.1 nonaka
1794 1.1 nonaka /* Do it in a process context. */
1795 1.1 nonaka urtwn_do_async(sc, urtwn_wme_update_cb, NULL, 0);
1796 1.1 nonaka return (0);
1797 1.1 nonaka }
1798 1.1 nonaka
1799 1.1 nonaka static void
1800 1.1 nonaka urtwn_wme_update_cb(struct urtwn_softc *sc, void *arg)
1801 1.1 nonaka {
1802 1.1 nonaka static const uint16_t ac2reg[WME_NUM_AC] = {
1803 1.1 nonaka R92C_EDCA_BE_PARAM,
1804 1.1 nonaka R92C_EDCA_BK_PARAM,
1805 1.1 nonaka R92C_EDCA_VI_PARAM,
1806 1.1 nonaka R92C_EDCA_VO_PARAM
1807 1.1 nonaka };
1808 1.1 nonaka struct ieee80211com *ic = &sc->sc_ic;
1809 1.1 nonaka const struct wmeParams *wmep;
1810 1.1 nonaka int ac, aifs, slottime;
1811 1.1 nonaka int s;
1812 1.1 nonaka
1813 1.1 nonaka DPRINTFN(DBG_FN|DBG_STM, ("%s: %s\n", device_xname(sc->sc_dev),
1814 1.1 nonaka __func__));
1815 1.1 nonaka
1816 1.1 nonaka s = splnet();
1817 1.12 christos mutex_enter(&sc->sc_write_mtx);
1818 1.1 nonaka slottime = (ic->ic_flags & IEEE80211_F_SHSLOT) ? 9 : 20;
1819 1.1 nonaka for (ac = 0; ac < WME_NUM_AC; ac++) {
1820 1.1 nonaka wmep = &ic->ic_wme.wme_chanParams.cap_wmeParams[ac];
1821 1.1 nonaka /* AIFS[AC] = AIFSN[AC] * aSlotTime + aSIFSTime. */
1822 1.1 nonaka aifs = wmep->wmep_aifsn * slottime + 10;
1823 1.1 nonaka urtwn_write_4(sc, ac2reg[ac],
1824 1.1 nonaka SM(R92C_EDCA_PARAM_TXOP, wmep->wmep_txopLimit) |
1825 1.1 nonaka SM(R92C_EDCA_PARAM_ECWMIN, wmep->wmep_logcwmin) |
1826 1.1 nonaka SM(R92C_EDCA_PARAM_ECWMAX, wmep->wmep_logcwmax) |
1827 1.1 nonaka SM(R92C_EDCA_PARAM_AIFS, aifs));
1828 1.1 nonaka }
1829 1.12 christos mutex_exit(&sc->sc_write_mtx);
1830 1.1 nonaka splx(s);
1831 1.1 nonaka }
1832 1.1 nonaka
1833 1.1 nonaka static void
1834 1.1 nonaka urtwn_update_avgrssi(struct urtwn_softc *sc, int rate, int8_t rssi)
1835 1.1 nonaka {
1836 1.1 nonaka int pwdb;
1837 1.1 nonaka
1838 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s: rate=%d, rsst=%d\n",
1839 1.1 nonaka device_xname(sc->sc_dev), __func__, rate, rssi));
1840 1.1 nonaka
1841 1.1 nonaka /* Convert antenna signal to percentage. */
1842 1.1 nonaka if (rssi <= -100 || rssi >= 20)
1843 1.1 nonaka pwdb = 0;
1844 1.1 nonaka else if (rssi >= 0)
1845 1.1 nonaka pwdb = 100;
1846 1.1 nonaka else
1847 1.1 nonaka pwdb = 100 + rssi;
1848 1.1 nonaka if (rate <= 3) {
1849 1.1 nonaka /* CCK gain is smaller than OFDM/MCS gain. */
1850 1.1 nonaka pwdb += 6;
1851 1.1 nonaka if (pwdb > 100)
1852 1.1 nonaka pwdb = 100;
1853 1.1 nonaka if (pwdb <= 14)
1854 1.1 nonaka pwdb -= 4;
1855 1.1 nonaka else if (pwdb <= 26)
1856 1.1 nonaka pwdb -= 8;
1857 1.1 nonaka else if (pwdb <= 34)
1858 1.1 nonaka pwdb -= 6;
1859 1.1 nonaka else if (pwdb <= 42)
1860 1.1 nonaka pwdb -= 2;
1861 1.1 nonaka }
1862 1.1 nonaka if (sc->avg_pwdb == -1) /* Init. */
1863 1.1 nonaka sc->avg_pwdb = pwdb;
1864 1.1 nonaka else if (sc->avg_pwdb < pwdb)
1865 1.1 nonaka sc->avg_pwdb = ((sc->avg_pwdb * 19 + pwdb) / 20) + 1;
1866 1.1 nonaka else
1867 1.1 nonaka sc->avg_pwdb = ((sc->avg_pwdb * 19 + pwdb) / 20);
1868 1.1 nonaka
1869 1.12 christos DPRINTFN(DBG_RF, ("%s: %s: rate=%d rssi=%d PWDB=%d EMA=%d\n",
1870 1.12 christos device_xname(sc->sc_dev), __func__,
1871 1.12 christos rate, rssi, pwdb, sc->avg_pwdb));
1872 1.1 nonaka }
1873 1.1 nonaka
1874 1.1 nonaka static int8_t
1875 1.1 nonaka urtwn_get_rssi(struct urtwn_softc *sc, int rate, void *physt)
1876 1.1 nonaka {
1877 1.1 nonaka static const int8_t cckoff[] = { 16, -12, -26, -46 };
1878 1.1 nonaka struct r92c_rx_phystat *phy;
1879 1.1 nonaka struct r92c_rx_cck *cck;
1880 1.1 nonaka uint8_t rpt;
1881 1.1 nonaka int8_t rssi;
1882 1.1 nonaka
1883 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s: rate=%d\n", device_xname(sc->sc_dev),
1884 1.1 nonaka __func__, rate));
1885 1.1 nonaka
1886 1.1 nonaka if (rate <= 3) {
1887 1.1 nonaka cck = (struct r92c_rx_cck *)physt;
1888 1.1 nonaka if (ISSET(sc->sc_flags, URTWN_FLAG_CCK_HIPWR)) {
1889 1.1 nonaka rpt = (cck->agc_rpt >> 5) & 0x3;
1890 1.1 nonaka rssi = (cck->agc_rpt & 0x1f) << 1;
1891 1.1 nonaka } else {
1892 1.1 nonaka rpt = (cck->agc_rpt >> 6) & 0x3;
1893 1.1 nonaka rssi = cck->agc_rpt & 0x3e;
1894 1.1 nonaka }
1895 1.1 nonaka rssi = cckoff[rpt] - rssi;
1896 1.1 nonaka } else { /* OFDM/HT. */
1897 1.1 nonaka phy = (struct r92c_rx_phystat *)physt;
1898 1.1 nonaka rssi = ((le32toh(phy->phydw1) >> 1) & 0x7f) - 110;
1899 1.1 nonaka }
1900 1.1 nonaka return (rssi);
1901 1.1 nonaka }
1902 1.1 nonaka
1903 1.1 nonaka static void
1904 1.1 nonaka urtwn_rx_frame(struct urtwn_softc *sc, uint8_t *buf, int pktlen)
1905 1.1 nonaka {
1906 1.1 nonaka struct ieee80211com *ic = &sc->sc_ic;
1907 1.1 nonaka struct ifnet *ifp = ic->ic_ifp;
1908 1.1 nonaka struct ieee80211_frame *wh;
1909 1.1 nonaka struct ieee80211_node *ni;
1910 1.1 nonaka struct r92c_rx_stat *stat;
1911 1.1 nonaka uint32_t rxdw0, rxdw3;
1912 1.1 nonaka struct mbuf *m;
1913 1.1 nonaka uint8_t rate;
1914 1.1 nonaka int8_t rssi = 0;
1915 1.1 nonaka int s, infosz;
1916 1.1 nonaka
1917 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s: buf=%p, pktlen=%d\n",
1918 1.1 nonaka device_xname(sc->sc_dev), __func__, buf, pktlen));
1919 1.1 nonaka
1920 1.1 nonaka stat = (struct r92c_rx_stat *)buf;
1921 1.1 nonaka rxdw0 = le32toh(stat->rxdw0);
1922 1.1 nonaka rxdw3 = le32toh(stat->rxdw3);
1923 1.1 nonaka
1924 1.1 nonaka if (__predict_false(rxdw0 & (R92C_RXDW0_CRCERR | R92C_RXDW0_ICVERR))) {
1925 1.1 nonaka /*
1926 1.1 nonaka * This should not happen since we setup our Rx filter
1927 1.1 nonaka * to not receive these frames.
1928 1.1 nonaka */
1929 1.1 nonaka DPRINTFN(DBG_RX, ("%s: %s: CRC error\n",
1930 1.1 nonaka device_xname(sc->sc_dev), __func__));
1931 1.1 nonaka ifp->if_ierrors++;
1932 1.1 nonaka return;
1933 1.1 nonaka }
1934 1.19 christos /*
1935 1.19 christos * XXX: This will drop most control packets. Do we really
1936 1.19 christos * want this in IEEE80211_M_MONITOR mode?
1937 1.19 christos */
1938 1.1 nonaka if (__predict_false(pktlen < (int)sizeof(*wh))) {
1939 1.1 nonaka DPRINTFN(DBG_RX, ("%s: %s: packet too short %d\n",
1940 1.1 nonaka device_xname(sc->sc_dev), __func__, pktlen));
1941 1.1 nonaka ic->ic_stats.is_rx_tooshort++;
1942 1.1 nonaka ifp->if_ierrors++;
1943 1.1 nonaka return;
1944 1.1 nonaka }
1945 1.1 nonaka if (__predict_false(pktlen > MCLBYTES)) {
1946 1.1 nonaka DPRINTFN(DBG_RX, ("%s: %s: packet too big %d\n",
1947 1.1 nonaka device_xname(sc->sc_dev), __func__, pktlen));
1948 1.1 nonaka ifp->if_ierrors++;
1949 1.1 nonaka return;
1950 1.1 nonaka }
1951 1.1 nonaka
1952 1.1 nonaka rate = MS(rxdw3, R92C_RXDW3_RATE);
1953 1.1 nonaka infosz = MS(rxdw0, R92C_RXDW0_INFOSZ) * 8;
1954 1.1 nonaka
1955 1.1 nonaka /* Get RSSI from PHY status descriptor if present. */
1956 1.1 nonaka if (infosz != 0 && (rxdw0 & R92C_RXDW0_PHYST)) {
1957 1.1 nonaka rssi = urtwn_get_rssi(sc, rate, &stat[1]);
1958 1.1 nonaka /* Update our average RSSI. */
1959 1.1 nonaka urtwn_update_avgrssi(sc, rate, rssi);
1960 1.1 nonaka }
1961 1.1 nonaka
1962 1.1 nonaka DPRINTFN(DBG_RX, ("%s: %s: Rx frame len=%d rate=%d infosz=%d rssi=%d\n",
1963 1.1 nonaka device_xname(sc->sc_dev), __func__, pktlen, rate, infosz, rssi));
1964 1.1 nonaka
1965 1.1 nonaka MGETHDR(m, M_DONTWAIT, MT_DATA);
1966 1.1 nonaka if (__predict_false(m == NULL)) {
1967 1.1 nonaka aprint_error_dev(sc->sc_dev, "couldn't allocate rx mbuf\n");
1968 1.1 nonaka ic->ic_stats.is_rx_nobuf++;
1969 1.1 nonaka ifp->if_ierrors++;
1970 1.1 nonaka return;
1971 1.1 nonaka }
1972 1.1 nonaka if (pktlen > (int)MHLEN) {
1973 1.1 nonaka MCLGET(m, M_DONTWAIT);
1974 1.1 nonaka if (__predict_false(!(m->m_flags & M_EXT))) {
1975 1.1 nonaka aprint_error_dev(sc->sc_dev,
1976 1.1 nonaka "couldn't allocate rx mbuf cluster\n");
1977 1.1 nonaka m_freem(m);
1978 1.1 nonaka ic->ic_stats.is_rx_nobuf++;
1979 1.1 nonaka ifp->if_ierrors++;
1980 1.1 nonaka return;
1981 1.1 nonaka }
1982 1.1 nonaka }
1983 1.1 nonaka
1984 1.1 nonaka /* Finalize mbuf. */
1985 1.1 nonaka m->m_pkthdr.rcvif = ifp;
1986 1.1 nonaka wh = (struct ieee80211_frame *)((uint8_t *)&stat[1] + infosz);
1987 1.1 nonaka memcpy(mtod(m, uint8_t *), wh, pktlen);
1988 1.1 nonaka m->m_pkthdr.len = m->m_len = pktlen;
1989 1.1 nonaka
1990 1.1 nonaka s = splnet();
1991 1.1 nonaka if (__predict_false(sc->sc_drvbpf != NULL)) {
1992 1.1 nonaka struct urtwn_rx_radiotap_header *tap = &sc->sc_rxtap;
1993 1.1 nonaka
1994 1.19 christos tap->wr_flags = 0;
1995 1.1 nonaka if (!(rxdw3 & R92C_RXDW3_HT)) {
1996 1.1 nonaka switch (rate) {
1997 1.1 nonaka /* CCK. */
1998 1.1 nonaka case 0: tap->wr_rate = 2; break;
1999 1.1 nonaka case 1: tap->wr_rate = 4; break;
2000 1.1 nonaka case 2: tap->wr_rate = 11; break;
2001 1.1 nonaka case 3: tap->wr_rate = 22; break;
2002 1.1 nonaka /* OFDM. */
2003 1.1 nonaka case 4: tap->wr_rate = 12; break;
2004 1.1 nonaka case 5: tap->wr_rate = 18; break;
2005 1.1 nonaka case 6: tap->wr_rate = 24; break;
2006 1.1 nonaka case 7: tap->wr_rate = 36; break;
2007 1.1 nonaka case 8: tap->wr_rate = 48; break;
2008 1.1 nonaka case 9: tap->wr_rate = 72; break;
2009 1.1 nonaka case 10: tap->wr_rate = 96; break;
2010 1.1 nonaka case 11: tap->wr_rate = 108; break;
2011 1.1 nonaka }
2012 1.1 nonaka } else if (rate >= 12) { /* MCS0~15. */
2013 1.1 nonaka /* Bit 7 set means HT MCS instead of rate. */
2014 1.1 nonaka tap->wr_rate = 0x80 | (rate - 12);
2015 1.1 nonaka }
2016 1.1 nonaka tap->wr_dbm_antsignal = rssi;
2017 1.13 jmcneill tap->wr_chan_freq = htole16(ic->ic_curchan->ic_freq);
2018 1.13 jmcneill tap->wr_chan_flags = htole16(ic->ic_curchan->ic_flags);
2019 1.1 nonaka
2020 1.1 nonaka bpf_mtap2(sc->sc_drvbpf, tap, sc->sc_rxtap_len, m);
2021 1.1 nonaka }
2022 1.1 nonaka
2023 1.1 nonaka ni = ieee80211_find_rxnode(ic, (struct ieee80211_frame_min *)wh);
2024 1.1 nonaka
2025 1.1 nonaka /* push the frame up to the 802.11 stack */
2026 1.1 nonaka ieee80211_input(ic, m, ni, rssi, 0);
2027 1.1 nonaka
2028 1.1 nonaka /* Node is no longer needed. */
2029 1.1 nonaka ieee80211_free_node(ni);
2030 1.1 nonaka
2031 1.1 nonaka splx(s);
2032 1.1 nonaka }
2033 1.1 nonaka
2034 1.1 nonaka static void
2035 1.1 nonaka urtwn_rxeof(usbd_xfer_handle xfer, usbd_private_handle priv, usbd_status status)
2036 1.1 nonaka {
2037 1.1 nonaka struct urtwn_rx_data *data = priv;
2038 1.1 nonaka struct urtwn_softc *sc = data->sc;
2039 1.1 nonaka struct r92c_rx_stat *stat;
2040 1.1 nonaka uint32_t rxdw0;
2041 1.1 nonaka uint8_t *buf;
2042 1.1 nonaka int len, totlen, pktlen, infosz, npkts;
2043 1.1 nonaka
2044 1.1 nonaka DPRINTFN(DBG_FN|DBG_RX, ("%s: %s: status=%d\n",
2045 1.1 nonaka device_xname(sc->sc_dev), __func__, status));
2046 1.1 nonaka
2047 1.1 nonaka if (__predict_false(status != USBD_NORMAL_COMPLETION)) {
2048 1.1 nonaka if (status == USBD_STALLED)
2049 1.1 nonaka usbd_clear_endpoint_stall_async(sc->rx_pipe);
2050 1.1 nonaka else if (status != USBD_CANCELLED)
2051 1.1 nonaka goto resubmit;
2052 1.1 nonaka return;
2053 1.1 nonaka }
2054 1.1 nonaka usbd_get_xfer_status(xfer, NULL, NULL, &len, NULL);
2055 1.1 nonaka
2056 1.1 nonaka if (__predict_false(len < (int)sizeof(*stat))) {
2057 1.1 nonaka DPRINTFN(DBG_RX, ("%s: %s: xfer too short %d\n",
2058 1.1 nonaka device_xname(sc->sc_dev), __func__, len));
2059 1.1 nonaka goto resubmit;
2060 1.1 nonaka }
2061 1.1 nonaka buf = data->buf;
2062 1.1 nonaka
2063 1.1 nonaka /* Get the number of encapsulated frames. */
2064 1.1 nonaka stat = (struct r92c_rx_stat *)buf;
2065 1.1 nonaka npkts = MS(le32toh(stat->rxdw2), R92C_RXDW2_PKTCNT);
2066 1.1 nonaka DPRINTFN(DBG_RX, ("%s: %s: Rx %d frames in one chunk\n",
2067 1.1 nonaka device_xname(sc->sc_dev), __func__, npkts));
2068 1.1 nonaka
2069 1.1 nonaka /* Process all of them. */
2070 1.1 nonaka while (npkts-- > 0) {
2071 1.1 nonaka if (__predict_false(len < (int)sizeof(*stat))) {
2072 1.1 nonaka DPRINTFN(DBG_RX,
2073 1.1 nonaka ("%s: %s: len(%d) is short than header\n",
2074 1.1 nonaka device_xname(sc->sc_dev), __func__, len));
2075 1.1 nonaka break;
2076 1.1 nonaka }
2077 1.1 nonaka stat = (struct r92c_rx_stat *)buf;
2078 1.1 nonaka rxdw0 = le32toh(stat->rxdw0);
2079 1.1 nonaka
2080 1.1 nonaka pktlen = MS(rxdw0, R92C_RXDW0_PKTLEN);
2081 1.1 nonaka if (__predict_false(pktlen == 0)) {
2082 1.1 nonaka DPRINTFN(DBG_RX, ("%s: %s: pktlen is 0 byte\n",
2083 1.1 nonaka device_xname(sc->sc_dev), __func__));
2084 1.19 christos break;
2085 1.1 nonaka }
2086 1.1 nonaka
2087 1.1 nonaka infosz = MS(rxdw0, R92C_RXDW0_INFOSZ) * 8;
2088 1.1 nonaka
2089 1.1 nonaka /* Make sure everything fits in xfer. */
2090 1.1 nonaka totlen = sizeof(*stat) + infosz + pktlen;
2091 1.1 nonaka if (__predict_false(totlen > len)) {
2092 1.1 nonaka DPRINTFN(DBG_RX, ("%s: %s: pktlen %d(%d+%d+%d) > %d\n",
2093 1.1 nonaka device_xname(sc->sc_dev), __func__, totlen,
2094 1.1 nonaka (int)sizeof(*stat), infosz, pktlen, len));
2095 1.1 nonaka break;
2096 1.1 nonaka }
2097 1.1 nonaka
2098 1.1 nonaka /* Process 802.11 frame. */
2099 1.1 nonaka urtwn_rx_frame(sc, buf, pktlen);
2100 1.1 nonaka
2101 1.1 nonaka /* Next chunk is 128-byte aligned. */
2102 1.1 nonaka totlen = roundup2(totlen, 128);
2103 1.1 nonaka buf += totlen;
2104 1.1 nonaka len -= totlen;
2105 1.1 nonaka }
2106 1.1 nonaka
2107 1.1 nonaka resubmit:
2108 1.1 nonaka /* Setup a new transfer. */
2109 1.1 nonaka usbd_setup_xfer(xfer, sc->rx_pipe, data, data->buf, URTWN_RXBUFSZ,
2110 1.1 nonaka USBD_SHORT_XFER_OK | USBD_NO_COPY, USBD_NO_TIMEOUT, urtwn_rxeof);
2111 1.1 nonaka (void)usbd_transfer(xfer);
2112 1.1 nonaka }
2113 1.1 nonaka
2114 1.1 nonaka static void
2115 1.1 nonaka urtwn_txeof(usbd_xfer_handle xfer, usbd_private_handle priv, usbd_status status)
2116 1.1 nonaka {
2117 1.1 nonaka struct urtwn_tx_data *data = priv;
2118 1.1 nonaka struct urtwn_softc *sc = data->sc;
2119 1.1 nonaka struct ifnet *ifp = &sc->sc_if;
2120 1.20 christos usbd_pipe_handle pipe = data->pipe;
2121 1.1 nonaka int s;
2122 1.1 nonaka
2123 1.1 nonaka DPRINTFN(DBG_FN|DBG_TX, ("%s: %s: status=%d\n",
2124 1.1 nonaka device_xname(sc->sc_dev), __func__, status));
2125 1.1 nonaka
2126 1.1 nonaka mutex_enter(&sc->sc_tx_mtx);
2127 1.1 nonaka /* Put this Tx buffer back to our free list. */
2128 1.1 nonaka TAILQ_INSERT_TAIL(&sc->tx_free_list, data, next);
2129 1.1 nonaka mutex_exit(&sc->sc_tx_mtx);
2130 1.1 nonaka
2131 1.16 jmcneill s = splnet();
2132 1.16 jmcneill sc->tx_timer = 0;
2133 1.16 jmcneill ifp->if_flags &= ~IFF_OACTIVE;
2134 1.16 jmcneill ifp->if_opackets++;
2135 1.16 jmcneill
2136 1.1 nonaka if (__predict_false(status != USBD_NORMAL_COMPLETION)) {
2137 1.1 nonaka if (status != USBD_NOT_STARTED && status != USBD_CANCELLED) {
2138 1.1 nonaka if (status == USBD_STALLED)
2139 1.20 christos usbd_clear_endpoint_stall_async(pipe);
2140 1.1 nonaka ifp->if_oerrors++;
2141 1.1 nonaka }
2142 1.16 jmcneill splx(s);
2143 1.1 nonaka return;
2144 1.1 nonaka }
2145 1.1 nonaka
2146 1.16 jmcneill urtwn_start(ifp);
2147 1.1 nonaka
2148 1.1 nonaka splx(s);
2149 1.1 nonaka }
2150 1.1 nonaka
2151 1.1 nonaka static int
2152 1.12 christos urtwn_tx(struct urtwn_softc *sc, struct mbuf *m, struct ieee80211_node *ni,
2153 1.12 christos struct urtwn_tx_data *data)
2154 1.1 nonaka {
2155 1.1 nonaka struct ieee80211com *ic = &sc->sc_ic;
2156 1.1 nonaka struct ieee80211_frame *wh;
2157 1.1 nonaka struct ieee80211_key *k = NULL;
2158 1.1 nonaka struct r92c_tx_desc *txd;
2159 1.1 nonaka usbd_pipe_handle pipe;
2160 1.1 nonaka uint16_t seq, sum;
2161 1.1 nonaka uint8_t raid, type, tid, qid;
2162 1.1 nonaka int i, s, hasqos, xferlen, padsize, error;
2163 1.1 nonaka
2164 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
2165 1.1 nonaka
2166 1.1 nonaka wh = mtod(m, struct ieee80211_frame *);
2167 1.1 nonaka type = wh->i_fc[0] & IEEE80211_FC0_TYPE_MASK;
2168 1.1 nonaka
2169 1.1 nonaka if (wh->i_fc[1] & IEEE80211_FC1_WEP) {
2170 1.1 nonaka k = ieee80211_crypto_encap(ic, ni, m);
2171 1.12 christos if (k == NULL)
2172 1.12 christos return ENOBUFS;
2173 1.12 christos
2174 1.1 nonaka /* packet header may have moved, reset our local pointer */
2175 1.1 nonaka wh = mtod(m, struct ieee80211_frame *);
2176 1.1 nonaka }
2177 1.1 nonaka
2178 1.1 nonaka if (__predict_false(sc->sc_drvbpf != NULL)) {
2179 1.1 nonaka struct urtwn_tx_radiotap_header *tap = &sc->sc_txtap;
2180 1.1 nonaka
2181 1.1 nonaka tap->wt_flags = 0;
2182 1.14 jmcneill tap->wt_chan_freq = htole16(ic->ic_curchan->ic_freq);
2183 1.14 jmcneill tap->wt_chan_flags = htole16(ic->ic_curchan->ic_flags);
2184 1.1 nonaka if (wh->i_fc[1] & IEEE80211_FC1_WEP)
2185 1.1 nonaka tap->wt_flags |= IEEE80211_RADIOTAP_F_WEP;
2186 1.1 nonaka
2187 1.19 christos /* XXX: set tap->wt_rate? */
2188 1.19 christos
2189 1.1 nonaka bpf_mtap2(sc->sc_drvbpf, tap, sc->sc_txtap_len, m);
2190 1.1 nonaka }
2191 1.1 nonaka
2192 1.1 nonaka if ((hasqos = IEEE80211_QOS_HAS_SEQ(wh))) {
2193 1.1 nonaka /* data frames in 11n mode */
2194 1.1 nonaka struct ieee80211_qosframe *qwh = (void *)wh;
2195 1.1 nonaka tid = qwh->i_qos[0] & IEEE80211_QOS_TID;
2196 1.1 nonaka qid = TID_TO_WME_AC(tid);
2197 1.1 nonaka } else if (type != IEEE80211_FC0_TYPE_DATA) {
2198 1.1 nonaka /* Use AC_VO for management frames. */
2199 1.1 nonaka qid = WME_AC_VO;
2200 1.1 nonaka tid = 0; /* compiler happy */
2201 1.1 nonaka } else {
2202 1.1 nonaka /* non-qos data frames */
2203 1.1 nonaka tid = R92C_TXDW1_QSEL_BE;
2204 1.1 nonaka qid = WME_AC_BE;
2205 1.1 nonaka }
2206 1.1 nonaka
2207 1.1 nonaka /* Get the USB pipe to use for this AC. */
2208 1.1 nonaka pipe = sc->tx_pipe[sc->ac2idx[qid]];
2209 1.1 nonaka
2210 1.1 nonaka if (((sizeof(*txd) + m->m_pkthdr.len) % 64) == 0) /* XXX: 64 */
2211 1.1 nonaka padsize = 8;
2212 1.1 nonaka else
2213 1.1 nonaka padsize = 0;
2214 1.1 nonaka
2215 1.1 nonaka /* Fill Tx descriptor. */
2216 1.1 nonaka txd = (struct r92c_tx_desc *)data->buf;
2217 1.1 nonaka memset(txd, 0, sizeof(*txd) + padsize);
2218 1.1 nonaka
2219 1.1 nonaka txd->txdw0 |= htole32(
2220 1.1 nonaka SM(R92C_TXDW0_PKTLEN, m->m_pkthdr.len) |
2221 1.1 nonaka SM(R92C_TXDW0_OFFSET, sizeof(*txd)) |
2222 1.1 nonaka R92C_TXDW0_OWN | R92C_TXDW0_FSG | R92C_TXDW0_LSG);
2223 1.1 nonaka
2224 1.1 nonaka if (IEEE80211_IS_MULTICAST(wh->i_addr1))
2225 1.1 nonaka txd->txdw0 |= htole32(R92C_TXDW0_BMCAST);
2226 1.1 nonaka
2227 1.1 nonaka /* fix pad field */
2228 1.1 nonaka if (padsize > 0) {
2229 1.1 nonaka DPRINTFN(DBG_TX, ("%s: %s: padding: size=%d\n",
2230 1.1 nonaka device_xname(sc->sc_dev), __func__, padsize));
2231 1.1 nonaka txd->txdw1 |= htole32(SM(R92C_TXDW1_PKTOFF, (padsize / 8)));
2232 1.1 nonaka }
2233 1.1 nonaka
2234 1.1 nonaka if (!IEEE80211_IS_MULTICAST(wh->i_addr1) &&
2235 1.1 nonaka type == IEEE80211_FC0_TYPE_DATA) {
2236 1.1 nonaka if (ic->ic_curmode == IEEE80211_MODE_11B)
2237 1.1 nonaka raid = R92C_RAID_11B;
2238 1.1 nonaka else
2239 1.1 nonaka raid = R92C_RAID_11BG;
2240 1.1 nonaka DPRINTFN(DBG_TX,
2241 1.1 nonaka ("%s: %s: data packet: tid=%d, raid=%d\n",
2242 1.1 nonaka device_xname(sc->sc_dev), __func__, tid, raid));
2243 1.1 nonaka
2244 1.1 nonaka txd->txdw1 |= htole32(
2245 1.1 nonaka SM(R92C_TXDW1_MACID, URTWN_MACID_BSS) |
2246 1.1 nonaka SM(R92C_TXDW1_QSEL, tid) |
2247 1.1 nonaka SM(R92C_TXDW1_RAID, raid) |
2248 1.1 nonaka R92C_TXDW1_AGGBK);
2249 1.1 nonaka
2250 1.1 nonaka if (hasqos) {
2251 1.1 nonaka txd->txdw4 |= htole32(R92C_TXDW4_QOS);
2252 1.1 nonaka }
2253 1.1 nonaka
2254 1.1 nonaka if (ic->ic_flags & IEEE80211_F_USEPROT) {
2255 1.1 nonaka /* for 11g */
2256 1.1 nonaka if (ic->ic_protmode == IEEE80211_PROT_CTSONLY) {
2257 1.1 nonaka txd->txdw4 |= htole32(R92C_TXDW4_CTS2SELF |
2258 1.1 nonaka R92C_TXDW4_HWRTSEN);
2259 1.1 nonaka } else if (ic->ic_protmode == IEEE80211_PROT_RTSCTS) {
2260 1.1 nonaka txd->txdw4 |= htole32(R92C_TXDW4_RTSEN |
2261 1.1 nonaka R92C_TXDW4_HWRTSEN);
2262 1.1 nonaka }
2263 1.1 nonaka }
2264 1.1 nonaka /* Send RTS at OFDM24. */
2265 1.1 nonaka txd->txdw4 |= htole32(SM(R92C_TXDW4_RTSRATE, 8));
2266 1.1 nonaka txd->txdw5 |= htole32(0x0001ff00);
2267 1.1 nonaka /* Send data at OFDM54. */
2268 1.1 nonaka txd->txdw5 |= htole32(SM(R92C_TXDW5_DATARATE, 11));
2269 1.1 nonaka } else if (type == IEEE80211_FC0_TYPE_MGT) {
2270 1.1 nonaka DPRINTFN(DBG_TX, ("%s: %s: mgmt packet\n",
2271 1.1 nonaka device_xname(sc->sc_dev), __func__));
2272 1.1 nonaka txd->txdw1 |= htole32(
2273 1.1 nonaka SM(R92C_TXDW1_MACID, URTWN_MACID_BSS) |
2274 1.1 nonaka SM(R92C_TXDW1_QSEL, R92C_TXDW1_QSEL_MGNT) |
2275 1.1 nonaka SM(R92C_TXDW1_RAID, R92C_RAID_11B));
2276 1.1 nonaka
2277 1.1 nonaka /* Force CCK1. */
2278 1.1 nonaka txd->txdw4 |= htole32(R92C_TXDW4_DRVRATE);
2279 1.1 nonaka /* Use 1Mbps */
2280 1.1 nonaka txd->txdw5 |= htole32(SM(R92C_TXDW5_DATARATE, 0));
2281 1.1 nonaka } else {
2282 1.1 nonaka /* broadcast or multicast packets */
2283 1.1 nonaka DPRINTFN(DBG_TX, ("%s: %s: bc or mc packet\n",
2284 1.1 nonaka device_xname(sc->sc_dev), __func__));
2285 1.1 nonaka txd->txdw1 |= htole32(
2286 1.1 nonaka SM(R92C_TXDW1_MACID, URTWN_MACID_BC) |
2287 1.1 nonaka SM(R92C_TXDW1_RAID, R92C_RAID_11B));
2288 1.1 nonaka
2289 1.1 nonaka /* Force CCK1. */
2290 1.1 nonaka txd->txdw4 |= htole32(R92C_TXDW4_DRVRATE);
2291 1.1 nonaka /* Use 1Mbps */
2292 1.1 nonaka txd->txdw5 |= htole32(SM(R92C_TXDW5_DATARATE, 0));
2293 1.1 nonaka }
2294 1.1 nonaka
2295 1.1 nonaka /* Set sequence number */
2296 1.1 nonaka seq = LE_READ_2(&wh->i_seq[0]) >> IEEE80211_SEQ_SEQ_SHIFT;
2297 1.1 nonaka txd->txdseq |= htole16(seq);
2298 1.1 nonaka
2299 1.1 nonaka if (!hasqos) {
2300 1.1 nonaka /* Use HW sequence numbering for non-QoS frames. */
2301 1.1 nonaka txd->txdw4 |= htole32(R92C_TXDW4_HWSEQ);
2302 1.1 nonaka txd->txdseq |= htole16(0x8000); /* WTF? */
2303 1.1 nonaka }
2304 1.1 nonaka
2305 1.1 nonaka /* Compute Tx descriptor checksum. */
2306 1.1 nonaka sum = 0;
2307 1.1 nonaka for (i = 0; i < (int)sizeof(*txd) / 2; i++)
2308 1.1 nonaka sum ^= ((uint16_t *)txd)[i];
2309 1.1 nonaka txd->txdsum = sum; /* NB: already little endian. */
2310 1.1 nonaka
2311 1.1 nonaka xferlen = sizeof(*txd) + m->m_pkthdr.len + padsize;
2312 1.1 nonaka m_copydata(m, 0, m->m_pkthdr.len, (char *)&txd[1] + padsize);
2313 1.1 nonaka
2314 1.1 nonaka s = splnet();
2315 1.1 nonaka data->pipe = pipe;
2316 1.1 nonaka usbd_setup_xfer(data->xfer, pipe, data, data->buf, xferlen,
2317 1.1 nonaka USBD_FORCE_SHORT_XFER | USBD_NO_COPY, URTWN_TX_TIMEOUT,
2318 1.1 nonaka urtwn_txeof);
2319 1.1 nonaka error = usbd_transfer(data->xfer);
2320 1.1 nonaka if (__predict_false(error != USBD_NORMAL_COMPLETION &&
2321 1.1 nonaka error != USBD_IN_PROGRESS)) {
2322 1.1 nonaka splx(s);
2323 1.1 nonaka DPRINTFN(DBG_TX, ("%s: %s: transfer failed %d\n",
2324 1.1 nonaka device_xname(sc->sc_dev), __func__, error));
2325 1.12 christos return error;
2326 1.1 nonaka }
2327 1.1 nonaka splx(s);
2328 1.12 christos return 0;
2329 1.1 nonaka }
2330 1.1 nonaka
2331 1.1 nonaka static void
2332 1.1 nonaka urtwn_start(struct ifnet *ifp)
2333 1.1 nonaka {
2334 1.1 nonaka struct urtwn_softc *sc = ifp->if_softc;
2335 1.1 nonaka struct ieee80211com *ic = &sc->sc_ic;
2336 1.12 christos struct urtwn_tx_data *data;
2337 1.1 nonaka struct ether_header *eh;
2338 1.1 nonaka struct ieee80211_node *ni;
2339 1.1 nonaka struct mbuf *m;
2340 1.1 nonaka
2341 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
2342 1.1 nonaka
2343 1.1 nonaka if ((ifp->if_flags & (IFF_RUNNING | IFF_OACTIVE)) != IFF_RUNNING)
2344 1.1 nonaka return;
2345 1.1 nonaka
2346 1.12 christos data = NULL;
2347 1.1 nonaka for (;;) {
2348 1.1 nonaka mutex_enter(&sc->sc_tx_mtx);
2349 1.17 jmcneill if (data == NULL && !TAILQ_EMPTY(&sc->tx_free_list)) {
2350 1.12 christos data = TAILQ_FIRST(&sc->tx_free_list);
2351 1.12 christos TAILQ_REMOVE(&sc->tx_free_list, data, next);
2352 1.1 nonaka }
2353 1.17 jmcneill mutex_exit(&sc->sc_tx_mtx);
2354 1.17 jmcneill
2355 1.17 jmcneill if (data == NULL) {
2356 1.17 jmcneill ifp->if_flags |= IFF_OACTIVE;
2357 1.17 jmcneill DPRINTFN(DBG_TX, ("%s: empty tx_free_list\n",
2358 1.17 jmcneill device_xname(sc->sc_dev)));
2359 1.17 jmcneill return;
2360 1.17 jmcneill }
2361 1.1 nonaka
2362 1.1 nonaka /* Send pending management frames first. */
2363 1.1 nonaka IF_DEQUEUE(&ic->ic_mgtq, m);
2364 1.1 nonaka if (m != NULL) {
2365 1.1 nonaka ni = (void *)m->m_pkthdr.rcvif;
2366 1.1 nonaka m->m_pkthdr.rcvif = NULL;
2367 1.1 nonaka goto sendit;
2368 1.1 nonaka }
2369 1.1 nonaka if (ic->ic_state != IEEE80211_S_RUN)
2370 1.1 nonaka break;
2371 1.1 nonaka
2372 1.1 nonaka /* Encapsulate and send data frames. */
2373 1.1 nonaka IFQ_DEQUEUE(&ifp->if_snd, m);
2374 1.1 nonaka if (m == NULL)
2375 1.1 nonaka break;
2376 1.12 christos
2377 1.1 nonaka if (m->m_len < (int)sizeof(*eh) &&
2378 1.1 nonaka (m = m_pullup(m, sizeof(*eh))) == NULL) {
2379 1.1 nonaka ifp->if_oerrors++;
2380 1.1 nonaka continue;
2381 1.1 nonaka }
2382 1.1 nonaka eh = mtod(m, struct ether_header *);
2383 1.1 nonaka ni = ieee80211_find_txnode(ic, eh->ether_dhost);
2384 1.1 nonaka if (ni == NULL) {
2385 1.1 nonaka m_freem(m);
2386 1.1 nonaka ifp->if_oerrors++;
2387 1.1 nonaka continue;
2388 1.1 nonaka }
2389 1.1 nonaka
2390 1.1 nonaka bpf_mtap(ifp, m);
2391 1.1 nonaka
2392 1.1 nonaka if ((m = ieee80211_encap(ic, m, ni)) == NULL) {
2393 1.1 nonaka ieee80211_free_node(ni);
2394 1.1 nonaka ifp->if_oerrors++;
2395 1.1 nonaka continue;
2396 1.1 nonaka }
2397 1.1 nonaka sendit:
2398 1.1 nonaka bpf_mtap3(ic->ic_rawbpf, m);
2399 1.1 nonaka
2400 1.12 christos if (urtwn_tx(sc, m, ni, data) != 0) {
2401 1.12 christos m_freem(m);
2402 1.1 nonaka ieee80211_free_node(ni);
2403 1.1 nonaka ifp->if_oerrors++;
2404 1.1 nonaka continue;
2405 1.1 nonaka }
2406 1.12 christos data = NULL;
2407 1.12 christos m_freem(m);
2408 1.12 christos ieee80211_free_node(ni);
2409 1.1 nonaka sc->tx_timer = 5;
2410 1.1 nonaka ifp->if_timer = 1;
2411 1.1 nonaka }
2412 1.12 christos
2413 1.12 christos /* Return the Tx buffer to the free list */
2414 1.17 jmcneill mutex_enter(&sc->sc_tx_mtx);
2415 1.12 christos TAILQ_INSERT_TAIL(&sc->tx_free_list, data, next);
2416 1.12 christos mutex_exit(&sc->sc_tx_mtx);
2417 1.1 nonaka }
2418 1.1 nonaka
2419 1.1 nonaka static void
2420 1.1 nonaka urtwn_watchdog(struct ifnet *ifp)
2421 1.1 nonaka {
2422 1.1 nonaka struct urtwn_softc *sc = ifp->if_softc;
2423 1.1 nonaka
2424 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
2425 1.1 nonaka
2426 1.1 nonaka ifp->if_timer = 0;
2427 1.1 nonaka
2428 1.1 nonaka if (sc->tx_timer > 0) {
2429 1.1 nonaka if (--sc->tx_timer == 0) {
2430 1.1 nonaka aprint_error_dev(sc->sc_dev, "device timeout\n");
2431 1.1 nonaka /* urtwn_init(ifp); XXX needs a process context! */
2432 1.1 nonaka ifp->if_oerrors++;
2433 1.1 nonaka return;
2434 1.1 nonaka }
2435 1.1 nonaka ifp->if_timer = 1;
2436 1.1 nonaka }
2437 1.1 nonaka ieee80211_watchdog(&sc->sc_ic);
2438 1.1 nonaka }
2439 1.1 nonaka
2440 1.1 nonaka static int
2441 1.1 nonaka urtwn_ioctl(struct ifnet *ifp, u_long cmd, void *data)
2442 1.1 nonaka {
2443 1.1 nonaka struct urtwn_softc *sc = ifp->if_softc;
2444 1.1 nonaka struct ieee80211com *ic = &sc->sc_ic;
2445 1.1 nonaka int s, error = 0;
2446 1.1 nonaka
2447 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s: cmd=0x%08lx, data=%p\n",
2448 1.1 nonaka device_xname(sc->sc_dev), __func__, cmd, data));
2449 1.1 nonaka
2450 1.1 nonaka s = splnet();
2451 1.1 nonaka
2452 1.1 nonaka switch (cmd) {
2453 1.1 nonaka case SIOCSIFFLAGS:
2454 1.1 nonaka if ((error = ifioctl_common(ifp, cmd, data)) != 0)
2455 1.1 nonaka break;
2456 1.12 christos switch (ifp->if_flags & (IFF_UP | IFF_RUNNING)) {
2457 1.12 christos case IFF_UP | IFF_RUNNING:
2458 1.1 nonaka break;
2459 1.1 nonaka case IFF_UP:
2460 1.1 nonaka urtwn_init(ifp);
2461 1.1 nonaka break;
2462 1.1 nonaka case IFF_RUNNING:
2463 1.1 nonaka urtwn_stop(ifp, 1);
2464 1.1 nonaka break;
2465 1.1 nonaka case 0:
2466 1.1 nonaka break;
2467 1.1 nonaka }
2468 1.1 nonaka break;
2469 1.1 nonaka
2470 1.1 nonaka case SIOCADDMULTI:
2471 1.1 nonaka case SIOCDELMULTI:
2472 1.1 nonaka if ((error = ether_ioctl(ifp, cmd, data)) == ENETRESET) {
2473 1.1 nonaka /* setup multicast filter, etc */
2474 1.1 nonaka error = 0;
2475 1.1 nonaka }
2476 1.1 nonaka break;
2477 1.1 nonaka
2478 1.1 nonaka default:
2479 1.1 nonaka error = ieee80211_ioctl(ic, cmd, data);
2480 1.1 nonaka break;
2481 1.1 nonaka }
2482 1.1 nonaka if (error == ENETRESET) {
2483 1.1 nonaka if ((ifp->if_flags & (IFF_UP | IFF_RUNNING)) ==
2484 1.16 jmcneill (IFF_UP | IFF_RUNNING) &&
2485 1.16 jmcneill ic->ic_roaming != IEEE80211_ROAMING_MANUAL) {
2486 1.1 nonaka urtwn_init(ifp);
2487 1.1 nonaka }
2488 1.1 nonaka error = 0;
2489 1.1 nonaka }
2490 1.1 nonaka
2491 1.1 nonaka splx(s);
2492 1.1 nonaka
2493 1.1 nonaka return (error);
2494 1.1 nonaka }
2495 1.1 nonaka
2496 1.1 nonaka static int
2497 1.1 nonaka urtwn_power_on(struct urtwn_softc *sc)
2498 1.1 nonaka {
2499 1.1 nonaka uint32_t reg;
2500 1.1 nonaka int ntries;
2501 1.1 nonaka
2502 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
2503 1.1 nonaka
2504 1.12 christos KASSERT(mutex_owned(&sc->sc_write_mtx));
2505 1.12 christos
2506 1.1 nonaka /* Wait for autoload done bit. */
2507 1.1 nonaka for (ntries = 0; ntries < 1000; ntries++) {
2508 1.1 nonaka if (urtwn_read_1(sc, R92C_APS_FSMCO) & R92C_APS_FSMCO_PFM_ALDN)
2509 1.1 nonaka break;
2510 1.1 nonaka DELAY(5);
2511 1.1 nonaka }
2512 1.1 nonaka if (ntries == 1000) {
2513 1.1 nonaka aprint_error_dev(sc->sc_dev,
2514 1.1 nonaka "timeout waiting for chip autoload\n");
2515 1.1 nonaka return (ETIMEDOUT);
2516 1.1 nonaka }
2517 1.1 nonaka
2518 1.1 nonaka /* Unlock ISO/CLK/Power control register. */
2519 1.1 nonaka urtwn_write_1(sc, R92C_RSV_CTRL, 0);
2520 1.1 nonaka /* Move SPS into PWM mode. */
2521 1.1 nonaka urtwn_write_1(sc, R92C_SPS0_CTRL, 0x2b);
2522 1.1 nonaka DELAY(100);
2523 1.1 nonaka
2524 1.1 nonaka reg = urtwn_read_1(sc, R92C_LDOV12D_CTRL);
2525 1.1 nonaka if (!(reg & R92C_LDOV12D_CTRL_LDV12_EN)) {
2526 1.1 nonaka urtwn_write_1(sc, R92C_LDOV12D_CTRL,
2527 1.1 nonaka reg | R92C_LDOV12D_CTRL_LDV12_EN);
2528 1.1 nonaka DELAY(100);
2529 1.1 nonaka urtwn_write_1(sc, R92C_SYS_ISO_CTRL,
2530 1.1 nonaka urtwn_read_1(sc, R92C_SYS_ISO_CTRL) &
2531 1.1 nonaka ~R92C_SYS_ISO_CTRL_MD2PP);
2532 1.1 nonaka }
2533 1.1 nonaka
2534 1.1 nonaka /* Auto enable WLAN. */
2535 1.1 nonaka urtwn_write_2(sc, R92C_APS_FSMCO,
2536 1.1 nonaka urtwn_read_2(sc, R92C_APS_FSMCO) | R92C_APS_FSMCO_APFM_ONMAC);
2537 1.1 nonaka for (ntries = 0; ntries < 1000; ntries++) {
2538 1.1 nonaka if (!(urtwn_read_2(sc, R92C_APS_FSMCO) &
2539 1.1 nonaka R92C_APS_FSMCO_APFM_ONMAC))
2540 1.1 nonaka break;
2541 1.1 nonaka DELAY(5);
2542 1.1 nonaka }
2543 1.1 nonaka if (ntries == 1000) {
2544 1.1 nonaka aprint_error_dev(sc->sc_dev,
2545 1.1 nonaka "timeout waiting for MAC auto ON\n");
2546 1.1 nonaka return (ETIMEDOUT);
2547 1.1 nonaka }
2548 1.1 nonaka
2549 1.1 nonaka /* Enable radio, GPIO and LED functions. */
2550 1.1 nonaka KASSERT((R92C_APS_FSMCO_AFSM_HSUS | R92C_APS_FSMCO_PDN_EN |
2551 1.1 nonaka R92C_APS_FSMCO_PFM_ALDN) == 0x0812);
2552 1.1 nonaka urtwn_write_2(sc, R92C_APS_FSMCO,
2553 1.1 nonaka R92C_APS_FSMCO_AFSM_HSUS |
2554 1.1 nonaka R92C_APS_FSMCO_PDN_EN |
2555 1.1 nonaka R92C_APS_FSMCO_PFM_ALDN);
2556 1.1 nonaka
2557 1.1 nonaka /* Release RF digital isolation. */
2558 1.1 nonaka urtwn_write_2(sc, R92C_SYS_ISO_CTRL,
2559 1.1 nonaka urtwn_read_2(sc, R92C_SYS_ISO_CTRL) & ~R92C_SYS_ISO_CTRL_DIOR);
2560 1.1 nonaka
2561 1.1 nonaka /* Initialize MAC. */
2562 1.1 nonaka urtwn_write_1(sc, R92C_APSD_CTRL,
2563 1.1 nonaka urtwn_read_1(sc, R92C_APSD_CTRL) & ~R92C_APSD_CTRL_OFF);
2564 1.1 nonaka for (ntries = 0; ntries < 200; ntries++) {
2565 1.1 nonaka if (!(urtwn_read_1(sc, R92C_APSD_CTRL) &
2566 1.1 nonaka R92C_APSD_CTRL_OFF_STATUS))
2567 1.1 nonaka break;
2568 1.1 nonaka DELAY(5);
2569 1.1 nonaka }
2570 1.1 nonaka if (ntries == 200) {
2571 1.1 nonaka aprint_error_dev(sc->sc_dev,
2572 1.1 nonaka "timeout waiting for MAC initialization\n");
2573 1.1 nonaka return (ETIMEDOUT);
2574 1.1 nonaka }
2575 1.1 nonaka
2576 1.1 nonaka /* Enable MAC DMA/WMAC/SCHEDULE/SEC blocks. */
2577 1.1 nonaka reg = urtwn_read_2(sc, R92C_CR);
2578 1.1 nonaka reg |= R92C_CR_HCI_TXDMA_EN | R92C_CR_HCI_RXDMA_EN |
2579 1.1 nonaka R92C_CR_TXDMA_EN | R92C_CR_RXDMA_EN | R92C_CR_PROTOCOL_EN |
2580 1.1 nonaka R92C_CR_SCHEDULE_EN | R92C_CR_MACTXEN | R92C_CR_MACRXEN |
2581 1.1 nonaka R92C_CR_ENSEC;
2582 1.1 nonaka urtwn_write_2(sc, R92C_CR, reg);
2583 1.1 nonaka
2584 1.1 nonaka urtwn_write_1(sc, 0xfe10, 0x19);
2585 1.1 nonaka return (0);
2586 1.1 nonaka }
2587 1.1 nonaka
2588 1.1 nonaka static int
2589 1.1 nonaka urtwn_llt_init(struct urtwn_softc *sc)
2590 1.1 nonaka {
2591 1.1 nonaka int i, error;
2592 1.1 nonaka
2593 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
2594 1.1 nonaka
2595 1.12 christos KASSERT(mutex_owned(&sc->sc_write_mtx));
2596 1.12 christos
2597 1.1 nonaka /* Reserve pages [0; R92C_TX_PAGE_COUNT]. */
2598 1.1 nonaka for (i = 0; i < R92C_TX_PAGE_COUNT; i++) {
2599 1.1 nonaka if ((error = urtwn_llt_write(sc, i, i + 1)) != 0)
2600 1.1 nonaka return (error);
2601 1.1 nonaka }
2602 1.1 nonaka /* NB: 0xff indicates end-of-list. */
2603 1.1 nonaka if ((error = urtwn_llt_write(sc, i, 0xff)) != 0)
2604 1.1 nonaka return (error);
2605 1.1 nonaka /*
2606 1.1 nonaka * Use pages [R92C_TX_PAGE_COUNT + 1; R92C_TXPKTBUF_COUNT - 1]
2607 1.1 nonaka * as ring buffer.
2608 1.1 nonaka */
2609 1.1 nonaka for (++i; i < R92C_TXPKTBUF_COUNT - 1; i++) {
2610 1.1 nonaka if ((error = urtwn_llt_write(sc, i, i + 1)) != 0)
2611 1.1 nonaka return (error);
2612 1.1 nonaka }
2613 1.1 nonaka /* Make the last page point to the beginning of the ring buffer. */
2614 1.1 nonaka error = urtwn_llt_write(sc, i, R92C_TX_PAGE_COUNT + 1);
2615 1.1 nonaka return (error);
2616 1.1 nonaka }
2617 1.1 nonaka
2618 1.1 nonaka static void
2619 1.1 nonaka urtwn_fw_reset(struct urtwn_softc *sc)
2620 1.1 nonaka {
2621 1.1 nonaka uint16_t reg;
2622 1.1 nonaka int ntries;
2623 1.1 nonaka
2624 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
2625 1.1 nonaka
2626 1.12 christos KASSERT(mutex_owned(&sc->sc_write_mtx));
2627 1.12 christos
2628 1.1 nonaka /* Tell 8051 to reset itself. */
2629 1.1 nonaka urtwn_write_1(sc, R92C_HMETFR + 3, 0x20);
2630 1.1 nonaka
2631 1.1 nonaka /* Wait until 8051 resets by itself. */
2632 1.1 nonaka for (ntries = 0; ntries < 100; ntries++) {
2633 1.1 nonaka reg = urtwn_read_2(sc, R92C_SYS_FUNC_EN);
2634 1.1 nonaka if (!(reg & R92C_SYS_FUNC_EN_CPUEN))
2635 1.1 nonaka return;
2636 1.1 nonaka DELAY(50);
2637 1.1 nonaka }
2638 1.1 nonaka /* Force 8051 reset. */
2639 1.1 nonaka urtwn_write_2(sc, R92C_SYS_FUNC_EN, reg & ~R92C_SYS_FUNC_EN_CPUEN);
2640 1.1 nonaka }
2641 1.1 nonaka
2642 1.1 nonaka static int
2643 1.1 nonaka urtwn_fw_loadpage(struct urtwn_softc *sc, int page, uint8_t *buf, int len)
2644 1.1 nonaka {
2645 1.1 nonaka uint32_t reg;
2646 1.1 nonaka int off, mlen, error = 0;
2647 1.1 nonaka
2648 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s: page=%d, buf=%p, len=%d\n",
2649 1.1 nonaka device_xname(sc->sc_dev), __func__, page, buf, len));
2650 1.1 nonaka
2651 1.1 nonaka reg = urtwn_read_4(sc, R92C_MCUFWDL);
2652 1.1 nonaka reg = RW(reg, R92C_MCUFWDL_PAGE, page);
2653 1.1 nonaka urtwn_write_4(sc, R92C_MCUFWDL, reg);
2654 1.1 nonaka
2655 1.1 nonaka off = R92C_FW_START_ADDR;
2656 1.1 nonaka while (len > 0) {
2657 1.1 nonaka if (len > 196)
2658 1.1 nonaka mlen = 196;
2659 1.1 nonaka else if (len > 4)
2660 1.1 nonaka mlen = 4;
2661 1.1 nonaka else
2662 1.1 nonaka mlen = 1;
2663 1.1 nonaka error = urtwn_write_region(sc, off, buf, mlen);
2664 1.1 nonaka if (error != 0)
2665 1.1 nonaka break;
2666 1.1 nonaka off += mlen;
2667 1.1 nonaka buf += mlen;
2668 1.1 nonaka len -= mlen;
2669 1.1 nonaka }
2670 1.1 nonaka return (error);
2671 1.1 nonaka }
2672 1.1 nonaka
2673 1.1 nonaka static int
2674 1.1 nonaka urtwn_load_firmware(struct urtwn_softc *sc)
2675 1.1 nonaka {
2676 1.1 nonaka firmware_handle_t fwh;
2677 1.1 nonaka const struct r92c_fw_hdr *hdr;
2678 1.1 nonaka const char *name;
2679 1.1 nonaka u_char *fw, *ptr;
2680 1.1 nonaka size_t len;
2681 1.1 nonaka uint32_t reg;
2682 1.1 nonaka int mlen, ntries, page, error;
2683 1.1 nonaka
2684 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
2685 1.1 nonaka
2686 1.12 christos KASSERT(mutex_owned(&sc->sc_write_mtx));
2687 1.12 christos
2688 1.1 nonaka /* Read firmware image from the filesystem. */
2689 1.1 nonaka if ((sc->chip & (URTWN_CHIP_UMC_A_CUT | URTWN_CHIP_92C)) ==
2690 1.1 nonaka URTWN_CHIP_UMC_A_CUT)
2691 1.5 riz name = "rtl8192cfwU.bin";
2692 1.1 nonaka else
2693 1.5 riz name = "rtl8192cfw.bin";
2694 1.5 riz if ((error = firmware_open("if_urtwn", name, &fwh)) != 0) {
2695 1.1 nonaka aprint_error_dev(sc->sc_dev,
2696 1.1 nonaka "failed loadfirmware of file %s (error %d)\n", name, error);
2697 1.1 nonaka return (error);
2698 1.1 nonaka }
2699 1.1 nonaka len = firmware_get_size(fwh);
2700 1.1 nonaka fw = firmware_malloc(len);
2701 1.1 nonaka if (fw == NULL) {
2702 1.1 nonaka aprint_error_dev(sc->sc_dev,
2703 1.1 nonaka "failed to allocate firmware memory\n");
2704 1.1 nonaka firmware_close(fwh);
2705 1.1 nonaka return (ENOMEM);
2706 1.1 nonaka }
2707 1.1 nonaka error = firmware_read(fwh, 0, fw, len);
2708 1.1 nonaka firmware_close(fwh);
2709 1.1 nonaka if (error != 0) {
2710 1.1 nonaka aprint_error_dev(sc->sc_dev,
2711 1.1 nonaka "failed to read firmware (error %d)\n", error);
2712 1.1 nonaka firmware_free(fw, 0);
2713 1.1 nonaka return (error);
2714 1.1 nonaka }
2715 1.1 nonaka
2716 1.1 nonaka ptr = fw;
2717 1.1 nonaka hdr = (const struct r92c_fw_hdr *)ptr;
2718 1.1 nonaka /* Check if there is a valid FW header and skip it. */
2719 1.1 nonaka if ((le16toh(hdr->signature) >> 4) == 0x88c ||
2720 1.1 nonaka (le16toh(hdr->signature) >> 4) == 0x92c) {
2721 1.1 nonaka DPRINTFN(DBG_INIT, ("%s: %s: FW V%d.%d %02d-%02d %02d:%02d\n",
2722 1.1 nonaka device_xname(sc->sc_dev), __func__,
2723 1.1 nonaka le16toh(hdr->version), le16toh(hdr->subversion),
2724 1.1 nonaka hdr->month, hdr->date, hdr->hour, hdr->minute));
2725 1.1 nonaka ptr += sizeof(*hdr);
2726 1.1 nonaka len -= sizeof(*hdr);
2727 1.1 nonaka }
2728 1.1 nonaka
2729 1.1 nonaka if (urtwn_read_1(sc, R92C_MCUFWDL) & 0x80) {
2730 1.1 nonaka urtwn_fw_reset(sc);
2731 1.1 nonaka urtwn_write_1(sc, R92C_MCUFWDL, 0);
2732 1.1 nonaka }
2733 1.1 nonaka
2734 1.1 nonaka /* download enabled */
2735 1.1 nonaka urtwn_write_2(sc, R92C_SYS_FUNC_EN,
2736 1.1 nonaka urtwn_read_2(sc, R92C_SYS_FUNC_EN) |
2737 1.1 nonaka R92C_SYS_FUNC_EN_CPUEN);
2738 1.1 nonaka urtwn_write_1(sc, R92C_MCUFWDL,
2739 1.1 nonaka urtwn_read_1(sc, R92C_MCUFWDL) | R92C_MCUFWDL_EN);
2740 1.1 nonaka urtwn_write_1(sc, R92C_MCUFWDL + 2,
2741 1.1 nonaka urtwn_read_1(sc, R92C_MCUFWDL + 2) & ~0x08);
2742 1.1 nonaka
2743 1.1 nonaka /* download firmware */
2744 1.1 nonaka for (page = 0; len > 0; page++) {
2745 1.1 nonaka mlen = MIN(len, R92C_FW_PAGE_SIZE);
2746 1.1 nonaka error = urtwn_fw_loadpage(sc, page, ptr, mlen);
2747 1.1 nonaka if (error != 0) {
2748 1.1 nonaka aprint_error_dev(sc->sc_dev,
2749 1.1 nonaka "could not load firmware page %d\n", page);
2750 1.1 nonaka goto fail;
2751 1.1 nonaka }
2752 1.1 nonaka ptr += mlen;
2753 1.1 nonaka len -= mlen;
2754 1.1 nonaka }
2755 1.1 nonaka
2756 1.1 nonaka /* download disable */
2757 1.1 nonaka urtwn_write_1(sc, R92C_MCUFWDL,
2758 1.1 nonaka urtwn_read_1(sc, R92C_MCUFWDL) & ~R92C_MCUFWDL_EN);
2759 1.1 nonaka urtwn_write_1(sc, R92C_MCUFWDL + 1, 0);
2760 1.1 nonaka
2761 1.1 nonaka /* Wait for checksum report. */
2762 1.1 nonaka for (ntries = 0; ntries < 1000; ntries++) {
2763 1.1 nonaka if (urtwn_read_4(sc, R92C_MCUFWDL) & R92C_MCUFWDL_CHKSUM_RPT)
2764 1.1 nonaka break;
2765 1.1 nonaka DELAY(5);
2766 1.1 nonaka }
2767 1.1 nonaka if (ntries == 1000) {
2768 1.1 nonaka aprint_error_dev(sc->sc_dev,
2769 1.1 nonaka "timeout waiting for checksum report\n");
2770 1.1 nonaka error = ETIMEDOUT;
2771 1.1 nonaka goto fail;
2772 1.1 nonaka }
2773 1.1 nonaka
2774 1.1 nonaka /* Wait for firmware readiness. */
2775 1.1 nonaka reg = urtwn_read_4(sc, R92C_MCUFWDL);
2776 1.1 nonaka reg = (reg & ~R92C_MCUFWDL_WINTINI_RDY) | R92C_MCUFWDL_RDY;
2777 1.1 nonaka urtwn_write_4(sc, R92C_MCUFWDL, reg);
2778 1.1 nonaka for (ntries = 0; ntries < 1000; ntries++) {
2779 1.1 nonaka if (urtwn_read_4(sc, R92C_MCUFWDL) & R92C_MCUFWDL_WINTINI_RDY)
2780 1.1 nonaka break;
2781 1.1 nonaka DELAY(5);
2782 1.1 nonaka }
2783 1.1 nonaka if (ntries == 1000) {
2784 1.1 nonaka aprint_error_dev(sc->sc_dev,
2785 1.1 nonaka "timeout waiting for firmware readiness\n");
2786 1.1 nonaka error = ETIMEDOUT;
2787 1.1 nonaka goto fail;
2788 1.1 nonaka }
2789 1.1 nonaka fail:
2790 1.1 nonaka firmware_free(fw, 0);
2791 1.1 nonaka return (error);
2792 1.1 nonaka }
2793 1.1 nonaka
2794 1.1 nonaka static int
2795 1.1 nonaka urtwn_dma_init(struct urtwn_softc *sc)
2796 1.1 nonaka {
2797 1.1 nonaka int hashq, hasnq, haslq, nqueues, nqpages, nrempages;
2798 1.1 nonaka uint32_t reg;
2799 1.1 nonaka int error;
2800 1.1 nonaka
2801 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
2802 1.1 nonaka
2803 1.12 christos KASSERT(mutex_owned(&sc->sc_write_mtx));
2804 1.12 christos
2805 1.1 nonaka /* Initialize LLT table. */
2806 1.1 nonaka error = urtwn_llt_init(sc);
2807 1.1 nonaka if (error != 0)
2808 1.1 nonaka return (error);
2809 1.1 nonaka
2810 1.1 nonaka /* Get Tx queues to USB endpoints mapping. */
2811 1.1 nonaka hashq = hasnq = haslq = 0;
2812 1.1 nonaka reg = urtwn_read_2(sc, R92C_USB_EP + 1);
2813 1.1 nonaka DPRINTFN(DBG_INIT, ("%s: %s: USB endpoints mapping 0x%x\n",
2814 1.1 nonaka device_xname(sc->sc_dev), __func__, reg));
2815 1.1 nonaka if (MS(reg, R92C_USB_EP_HQ) != 0)
2816 1.1 nonaka hashq = 1;
2817 1.1 nonaka if (MS(reg, R92C_USB_EP_NQ) != 0)
2818 1.1 nonaka hasnq = 1;
2819 1.1 nonaka if (MS(reg, R92C_USB_EP_LQ) != 0)
2820 1.1 nonaka haslq = 1;
2821 1.1 nonaka nqueues = hashq + hasnq + haslq;
2822 1.1 nonaka if (nqueues == 0)
2823 1.1 nonaka return (EIO);
2824 1.1 nonaka /* Get the number of pages for each queue. */
2825 1.1 nonaka nqpages = (R92C_TX_PAGE_COUNT - R92C_PUBQ_NPAGES) / nqueues;
2826 1.1 nonaka /* The remaining pages are assigned to the high priority queue. */
2827 1.1 nonaka nrempages = (R92C_TX_PAGE_COUNT - R92C_PUBQ_NPAGES) % nqueues;
2828 1.1 nonaka
2829 1.1 nonaka /* Set number of pages for normal priority queue. */
2830 1.1 nonaka urtwn_write_1(sc, R92C_RQPN_NPQ, hasnq ? nqpages : 0);
2831 1.1 nonaka urtwn_write_4(sc, R92C_RQPN,
2832 1.1 nonaka /* Set number of pages for public queue. */
2833 1.1 nonaka SM(R92C_RQPN_PUBQ, R92C_PUBQ_NPAGES) |
2834 1.1 nonaka /* Set number of pages for high priority queue. */
2835 1.1 nonaka SM(R92C_RQPN_HPQ, hashq ? nqpages + nrempages : 0) |
2836 1.1 nonaka /* Set number of pages for low priority queue. */
2837 1.1 nonaka SM(R92C_RQPN_LPQ, haslq ? nqpages : 0) |
2838 1.1 nonaka /* Load values. */
2839 1.1 nonaka R92C_RQPN_LD);
2840 1.1 nonaka
2841 1.1 nonaka urtwn_write_1(sc, R92C_TXPKTBUF_BCNQ_BDNY, R92C_TX_PAGE_BOUNDARY);
2842 1.1 nonaka urtwn_write_1(sc, R92C_TXPKTBUF_MGQ_BDNY, R92C_TX_PAGE_BOUNDARY);
2843 1.1 nonaka urtwn_write_1(sc, R92C_TXPKTBUF_WMAC_LBK_BF_HD, R92C_TX_PAGE_BOUNDARY);
2844 1.1 nonaka urtwn_write_1(sc, R92C_TRXFF_BNDY, R92C_TX_PAGE_BOUNDARY);
2845 1.1 nonaka urtwn_write_1(sc, R92C_TDECTRL + 1, R92C_TX_PAGE_BOUNDARY);
2846 1.1 nonaka
2847 1.1 nonaka /* Set queue to USB pipe mapping. */
2848 1.1 nonaka reg = urtwn_read_2(sc, R92C_TRXDMA_CTRL);
2849 1.1 nonaka reg &= ~R92C_TRXDMA_CTRL_QMAP_M;
2850 1.1 nonaka if (nqueues == 1) {
2851 1.1 nonaka if (hashq) {
2852 1.1 nonaka reg |= R92C_TRXDMA_CTRL_QMAP_HQ;
2853 1.1 nonaka } else if (hasnq) {
2854 1.1 nonaka reg |= R92C_TRXDMA_CTRL_QMAP_NQ;
2855 1.1 nonaka } else {
2856 1.1 nonaka reg |= R92C_TRXDMA_CTRL_QMAP_LQ;
2857 1.1 nonaka }
2858 1.1 nonaka } else if (nqueues == 2) {
2859 1.1 nonaka /* All 2-endpoints configs have a high priority queue. */
2860 1.1 nonaka if (!hashq) {
2861 1.1 nonaka return (EIO);
2862 1.1 nonaka }
2863 1.1 nonaka if (hasnq) {
2864 1.1 nonaka reg |= R92C_TRXDMA_CTRL_QMAP_HQ_NQ;
2865 1.1 nonaka } else {
2866 1.1 nonaka reg |= R92C_TRXDMA_CTRL_QMAP_HQ_LQ;
2867 1.1 nonaka }
2868 1.1 nonaka } else {
2869 1.1 nonaka reg |= R92C_TRXDMA_CTRL_QMAP_3EP;
2870 1.1 nonaka }
2871 1.1 nonaka urtwn_write_2(sc, R92C_TRXDMA_CTRL, reg);
2872 1.1 nonaka
2873 1.1 nonaka /* Set Tx/Rx transfer page boundary. */
2874 1.1 nonaka urtwn_write_2(sc, R92C_TRXFF_BNDY + 2, 0x27ff);
2875 1.1 nonaka
2876 1.1 nonaka /* Set Tx/Rx transfer page size. */
2877 1.1 nonaka urtwn_write_1(sc, R92C_PBP,
2878 1.1 nonaka SM(R92C_PBP_PSRX, R92C_PBP_128) | SM(R92C_PBP_PSTX, R92C_PBP_128));
2879 1.1 nonaka return (0);
2880 1.1 nonaka }
2881 1.1 nonaka
2882 1.1 nonaka static void
2883 1.1 nonaka urtwn_mac_init(struct urtwn_softc *sc)
2884 1.1 nonaka {
2885 1.1 nonaka int i;
2886 1.1 nonaka
2887 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
2888 1.1 nonaka
2889 1.12 christos KASSERT(mutex_owned(&sc->sc_write_mtx));
2890 1.12 christos
2891 1.1 nonaka /* Write MAC initialization values. */
2892 1.1 nonaka for (i = 0; i < (int)__arraycount(rtl8192cu_mac); i++)
2893 1.1 nonaka urtwn_write_1(sc, rtl8192cu_mac[i].reg, rtl8192cu_mac[i].val);
2894 1.1 nonaka }
2895 1.1 nonaka
2896 1.1 nonaka static void
2897 1.1 nonaka urtwn_bb_init(struct urtwn_softc *sc)
2898 1.1 nonaka {
2899 1.1 nonaka const struct urtwn_bb_prog *prog;
2900 1.1 nonaka uint32_t reg;
2901 1.1 nonaka int i;
2902 1.1 nonaka
2903 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
2904 1.1 nonaka
2905 1.12 christos KASSERT(mutex_owned(&sc->sc_write_mtx));
2906 1.12 christos
2907 1.1 nonaka /* Enable BB and RF. */
2908 1.1 nonaka urtwn_write_2(sc, R92C_SYS_FUNC_EN,
2909 1.1 nonaka urtwn_read_2(sc, R92C_SYS_FUNC_EN) |
2910 1.1 nonaka R92C_SYS_FUNC_EN_BBRSTB | R92C_SYS_FUNC_EN_BB_GLB_RST |
2911 1.1 nonaka R92C_SYS_FUNC_EN_DIO_RF);
2912 1.1 nonaka
2913 1.1 nonaka urtwn_write_1(sc, R92C_AFE_PLL_CTRL, 0x83);
2914 1.1 nonaka urtwn_write_1(sc, R92C_AFE_PLL_CTRL + 1, 0xdb);
2915 1.1 nonaka
2916 1.1 nonaka urtwn_write_1(sc, R92C_RF_CTRL,
2917 1.1 nonaka R92C_RF_CTRL_EN | R92C_RF_CTRL_RSTB | R92C_RF_CTRL_SDMRSTB);
2918 1.1 nonaka urtwn_write_1(sc, R92C_SYS_FUNC_EN,
2919 1.1 nonaka R92C_SYS_FUNC_EN_USBA | R92C_SYS_FUNC_EN_USBD |
2920 1.1 nonaka R92C_SYS_FUNC_EN_BB_GLB_RST | R92C_SYS_FUNC_EN_BBRSTB);
2921 1.1 nonaka
2922 1.1 nonaka urtwn_write_1(sc, R92C_LDOHCI12_CTRL, 0x0f);
2923 1.1 nonaka urtwn_write_1(sc, 0x15, 0xe9);
2924 1.1 nonaka urtwn_write_1(sc, R92C_AFE_XTAL_CTRL + 1, 0x80);
2925 1.1 nonaka
2926 1.1 nonaka /* Select BB programming based on board type. */
2927 1.1 nonaka if (!(sc->chip & URTWN_CHIP_92C)) {
2928 1.1 nonaka if (sc->board_type == R92C_BOARD_TYPE_MINICARD) {
2929 1.1 nonaka prog = &rtl8188ce_bb_prog;
2930 1.1 nonaka } else if (sc->board_type == R92C_BOARD_TYPE_HIGHPA) {
2931 1.1 nonaka prog = &rtl8188ru_bb_prog;
2932 1.1 nonaka } else {
2933 1.1 nonaka prog = &rtl8188cu_bb_prog;
2934 1.1 nonaka }
2935 1.1 nonaka } else {
2936 1.1 nonaka if (sc->board_type == R92C_BOARD_TYPE_MINICARD) {
2937 1.1 nonaka prog = &rtl8192ce_bb_prog;
2938 1.1 nonaka } else {
2939 1.1 nonaka prog = &rtl8192cu_bb_prog;
2940 1.1 nonaka }
2941 1.1 nonaka }
2942 1.1 nonaka /* Write BB initialization values. */
2943 1.1 nonaka for (i = 0; i < prog->count; i++) {
2944 1.1 nonaka /* additional delay depend on registers */
2945 1.1 nonaka switch (prog->regs[i]) {
2946 1.1 nonaka case 0xfe:
2947 1.1 nonaka usbd_delay_ms(sc->sc_udev, 50);
2948 1.1 nonaka break;
2949 1.1 nonaka case 0xfd:
2950 1.1 nonaka usbd_delay_ms(sc->sc_udev, 5);
2951 1.1 nonaka break;
2952 1.1 nonaka case 0xfc:
2953 1.1 nonaka usbd_delay_ms(sc->sc_udev, 1);
2954 1.1 nonaka break;
2955 1.1 nonaka case 0xfb:
2956 1.1 nonaka DELAY(50);
2957 1.1 nonaka break;
2958 1.1 nonaka case 0xfa:
2959 1.1 nonaka DELAY(5);
2960 1.1 nonaka break;
2961 1.1 nonaka case 0xf9:
2962 1.1 nonaka DELAY(1);
2963 1.1 nonaka break;
2964 1.1 nonaka }
2965 1.1 nonaka urtwn_bb_write(sc, prog->regs[i], prog->vals[i]);
2966 1.1 nonaka DELAY(1);
2967 1.1 nonaka }
2968 1.1 nonaka
2969 1.1 nonaka if (sc->chip & URTWN_CHIP_92C_1T2R) {
2970 1.1 nonaka /* 8192C 1T only configuration. */
2971 1.1 nonaka reg = urtwn_bb_read(sc, R92C_FPGA0_TXINFO);
2972 1.1 nonaka reg = (reg & ~0x00000003) | 0x2;
2973 1.1 nonaka urtwn_bb_write(sc, R92C_FPGA0_TXINFO, reg);
2974 1.1 nonaka
2975 1.1 nonaka reg = urtwn_bb_read(sc, R92C_FPGA1_TXINFO);
2976 1.1 nonaka reg = (reg & ~0x00300033) | 0x00200022;
2977 1.1 nonaka urtwn_bb_write(sc, R92C_FPGA1_TXINFO, reg);
2978 1.1 nonaka
2979 1.1 nonaka reg = urtwn_bb_read(sc, R92C_CCK0_AFESETTING);
2980 1.1 nonaka reg = (reg & ~0xff000000) | (0x45 << 24);
2981 1.1 nonaka urtwn_bb_write(sc, R92C_CCK0_AFESETTING, reg);
2982 1.1 nonaka
2983 1.1 nonaka reg = urtwn_bb_read(sc, R92C_OFDM0_TRXPATHENA);
2984 1.1 nonaka reg = (reg & ~0x000000ff) | 0x23;
2985 1.1 nonaka urtwn_bb_write(sc, R92C_OFDM0_TRXPATHENA, reg);
2986 1.1 nonaka
2987 1.1 nonaka reg = urtwn_bb_read(sc, R92C_OFDM0_AGCPARAM1);
2988 1.1 nonaka reg = (reg & ~0x00000030) | (1 << 4);
2989 1.1 nonaka urtwn_bb_write(sc, R92C_OFDM0_AGCPARAM1, reg);
2990 1.1 nonaka
2991 1.1 nonaka reg = urtwn_bb_read(sc, 0xe74);
2992 1.1 nonaka reg = (reg & ~0x0c000000) | (2 << 26);
2993 1.1 nonaka urtwn_bb_write(sc, 0xe74, reg);
2994 1.1 nonaka reg = urtwn_bb_read(sc, 0xe78);
2995 1.1 nonaka reg = (reg & ~0x0c000000) | (2 << 26);
2996 1.1 nonaka urtwn_bb_write(sc, 0xe78, reg);
2997 1.1 nonaka reg = urtwn_bb_read(sc, 0xe7c);
2998 1.1 nonaka reg = (reg & ~0x0c000000) | (2 << 26);
2999 1.1 nonaka urtwn_bb_write(sc, 0xe7c, reg);
3000 1.1 nonaka reg = urtwn_bb_read(sc, 0xe80);
3001 1.1 nonaka reg = (reg & ~0x0c000000) | (2 << 26);
3002 1.1 nonaka urtwn_bb_write(sc, 0xe80, reg);
3003 1.1 nonaka reg = urtwn_bb_read(sc, 0xe88);
3004 1.1 nonaka reg = (reg & ~0x0c000000) | (2 << 26);
3005 1.1 nonaka urtwn_bb_write(sc, 0xe88, reg);
3006 1.1 nonaka }
3007 1.1 nonaka
3008 1.1 nonaka /* Write AGC values. */
3009 1.1 nonaka for (i = 0; i < prog->agccount; i++) {
3010 1.1 nonaka urtwn_bb_write(sc, R92C_OFDM0_AGCRSSITABLE, prog->agcvals[i]);
3011 1.1 nonaka DELAY(1);
3012 1.1 nonaka }
3013 1.1 nonaka
3014 1.1 nonaka if (urtwn_bb_read(sc, R92C_HSSI_PARAM2(0)) &
3015 1.1 nonaka R92C_HSSI_PARAM2_CCK_HIPWR) {
3016 1.1 nonaka SET(sc->sc_flags, URTWN_FLAG_CCK_HIPWR);
3017 1.1 nonaka }
3018 1.1 nonaka }
3019 1.1 nonaka
3020 1.1 nonaka static void
3021 1.1 nonaka urtwn_rf_init(struct urtwn_softc *sc)
3022 1.1 nonaka {
3023 1.1 nonaka const struct urtwn_rf_prog *prog;
3024 1.1 nonaka uint32_t reg, mask, saved;
3025 1.1 nonaka int i, j, idx;
3026 1.1 nonaka
3027 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
3028 1.1 nonaka
3029 1.1 nonaka /* Select RF programming based on board type. */
3030 1.1 nonaka if (!(sc->chip & URTWN_CHIP_92C)) {
3031 1.1 nonaka if (sc->board_type == R92C_BOARD_TYPE_MINICARD) {
3032 1.1 nonaka prog = rtl8188ce_rf_prog;
3033 1.1 nonaka } else if (sc->board_type == R92C_BOARD_TYPE_HIGHPA) {
3034 1.1 nonaka prog = rtl8188ru_rf_prog;
3035 1.1 nonaka } else {
3036 1.1 nonaka prog = rtl8188cu_rf_prog;
3037 1.1 nonaka }
3038 1.1 nonaka } else {
3039 1.1 nonaka prog = rtl8192ce_rf_prog;
3040 1.1 nonaka }
3041 1.1 nonaka
3042 1.1 nonaka for (i = 0; i < sc->nrxchains; i++) {
3043 1.1 nonaka /* Save RF_ENV control type. */
3044 1.1 nonaka idx = i / 2;
3045 1.1 nonaka mask = 0xffffU << ((i % 2) * 16);
3046 1.1 nonaka saved = urtwn_bb_read(sc, R92C_FPGA0_RFIFACESW(idx)) & mask;
3047 1.1 nonaka
3048 1.1 nonaka /* Set RF_ENV enable. */
3049 1.1 nonaka reg = urtwn_bb_read(sc, R92C_FPGA0_RFIFACEOE(i));
3050 1.1 nonaka reg |= 0x100000;
3051 1.1 nonaka urtwn_bb_write(sc, R92C_FPGA0_RFIFACEOE(i), reg);
3052 1.1 nonaka DELAY(1);
3053 1.1 nonaka
3054 1.1 nonaka /* Set RF_ENV output high. */
3055 1.1 nonaka reg = urtwn_bb_read(sc, R92C_FPGA0_RFIFACEOE(i));
3056 1.1 nonaka reg |= 0x10;
3057 1.1 nonaka urtwn_bb_write(sc, R92C_FPGA0_RFIFACEOE(i), reg);
3058 1.1 nonaka DELAY(1);
3059 1.1 nonaka
3060 1.1 nonaka /* Set address and data lengths of RF registers. */
3061 1.1 nonaka reg = urtwn_bb_read(sc, R92C_HSSI_PARAM2(i));
3062 1.1 nonaka reg &= ~R92C_HSSI_PARAM2_ADDR_LENGTH;
3063 1.1 nonaka urtwn_bb_write(sc, R92C_HSSI_PARAM2(i), reg);
3064 1.1 nonaka DELAY(1);
3065 1.1 nonaka reg = urtwn_bb_read(sc, R92C_HSSI_PARAM2(i));
3066 1.1 nonaka reg &= ~R92C_HSSI_PARAM2_DATA_LENGTH;
3067 1.1 nonaka urtwn_bb_write(sc, R92C_HSSI_PARAM2(i), reg);
3068 1.1 nonaka DELAY(1);
3069 1.1 nonaka
3070 1.1 nonaka /* Write RF initialization values for this chain. */
3071 1.1 nonaka for (j = 0; j < prog[i].count; j++) {
3072 1.1 nonaka if (prog[i].regs[j] >= 0xf9 &&
3073 1.1 nonaka prog[i].regs[j] <= 0xfe) {
3074 1.1 nonaka /*
3075 1.1 nonaka * These are fake RF registers offsets that
3076 1.1 nonaka * indicate a delay is required.
3077 1.1 nonaka */
3078 1.1 nonaka usbd_delay_ms(sc->sc_udev, 50);
3079 1.1 nonaka continue;
3080 1.1 nonaka }
3081 1.1 nonaka urtwn_rf_write(sc, i, prog[i].regs[j], prog[i].vals[j]);
3082 1.1 nonaka DELAY(1);
3083 1.1 nonaka }
3084 1.1 nonaka
3085 1.1 nonaka /* Restore RF_ENV control type. */
3086 1.1 nonaka reg = urtwn_bb_read(sc, R92C_FPGA0_RFIFACESW(idx)) & ~mask;
3087 1.1 nonaka urtwn_bb_write(sc, R92C_FPGA0_RFIFACESW(idx), reg | saved);
3088 1.1 nonaka }
3089 1.1 nonaka
3090 1.1 nonaka if ((sc->chip & (URTWN_CHIP_UMC_A_CUT | URTWN_CHIP_92C)) ==
3091 1.1 nonaka URTWN_CHIP_UMC_A_CUT) {
3092 1.1 nonaka urtwn_rf_write(sc, 0, R92C_RF_RX_G1, 0x30255);
3093 1.1 nonaka urtwn_rf_write(sc, 0, R92C_RF_RX_G2, 0x50a00);
3094 1.1 nonaka }
3095 1.1 nonaka
3096 1.1 nonaka /* Cache RF register CHNLBW. */
3097 1.1 nonaka for (i = 0; i < 2; i++) {
3098 1.1 nonaka sc->rf_chnlbw[i] = urtwn_rf_read(sc, i, R92C_RF_CHNLBW);
3099 1.1 nonaka }
3100 1.1 nonaka }
3101 1.1 nonaka
3102 1.1 nonaka static void
3103 1.1 nonaka urtwn_cam_init(struct urtwn_softc *sc)
3104 1.1 nonaka {
3105 1.1 nonaka uint32_t content, command;
3106 1.1 nonaka uint8_t idx;
3107 1.1 nonaka int i;
3108 1.1 nonaka
3109 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
3110 1.1 nonaka
3111 1.12 christos KASSERT(mutex_owned(&sc->sc_write_mtx));
3112 1.12 christos
3113 1.1 nonaka for (idx = 0; idx < R92C_CAM_ENTRY_COUNT; idx++) {
3114 1.1 nonaka content = (idx & 3)
3115 1.1 nonaka | (R92C_CAM_ALGO_AES << R92C_CAM_ALGO_S)
3116 1.1 nonaka | R92C_CAM_VALID;
3117 1.1 nonaka
3118 1.1 nonaka command = R92C_CAMCMD_POLLING
3119 1.1 nonaka | R92C_CAMCMD_WRITE
3120 1.1 nonaka | R92C_CAM_CTL0(idx);
3121 1.1 nonaka
3122 1.1 nonaka urtwn_write_4(sc, R92C_CAMWRITE, content);
3123 1.1 nonaka urtwn_write_4(sc, R92C_CAMCMD, command);
3124 1.1 nonaka }
3125 1.1 nonaka
3126 1.1 nonaka for (idx = 0; idx < R92C_CAM_ENTRY_COUNT; idx++) {
3127 1.1 nonaka for (i = 0; i < /* CAM_CONTENT_COUNT */ 8; i++) {
3128 1.1 nonaka if (i == 0) {
3129 1.1 nonaka content = (idx & 3)
3130 1.1 nonaka | (R92C_CAM_ALGO_AES << R92C_CAM_ALGO_S)
3131 1.1 nonaka | R92C_CAM_VALID;
3132 1.1 nonaka } else {
3133 1.1 nonaka content = 0;
3134 1.1 nonaka }
3135 1.1 nonaka
3136 1.1 nonaka command = R92C_CAMCMD_POLLING
3137 1.1 nonaka | R92C_CAMCMD_WRITE
3138 1.1 nonaka | R92C_CAM_CTL0(idx)
3139 1.1 nonaka | (u_int)i;
3140 1.1 nonaka
3141 1.1 nonaka urtwn_write_4(sc, R92C_CAMWRITE, content);
3142 1.1 nonaka urtwn_write_4(sc, R92C_CAMCMD, command);
3143 1.1 nonaka }
3144 1.1 nonaka }
3145 1.1 nonaka
3146 1.1 nonaka /* Invalidate all CAM entries. */
3147 1.1 nonaka urtwn_write_4(sc, R92C_CAMCMD, R92C_CAMCMD_POLLING | R92C_CAMCMD_CLR);
3148 1.1 nonaka }
3149 1.1 nonaka
3150 1.1 nonaka static void
3151 1.1 nonaka urtwn_pa_bias_init(struct urtwn_softc *sc)
3152 1.1 nonaka {
3153 1.1 nonaka uint8_t reg;
3154 1.1 nonaka int i;
3155 1.1 nonaka
3156 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
3157 1.1 nonaka
3158 1.12 christos KASSERT(mutex_owned(&sc->sc_write_mtx));
3159 1.12 christos
3160 1.1 nonaka for (i = 0; i < sc->nrxchains; i++) {
3161 1.1 nonaka if (sc->pa_setting & (1U << i))
3162 1.1 nonaka continue;
3163 1.1 nonaka
3164 1.1 nonaka urtwn_rf_write(sc, i, R92C_RF_IPA, 0x0f406);
3165 1.1 nonaka urtwn_rf_write(sc, i, R92C_RF_IPA, 0x4f406);
3166 1.1 nonaka urtwn_rf_write(sc, i, R92C_RF_IPA, 0x8f406);
3167 1.1 nonaka urtwn_rf_write(sc, i, R92C_RF_IPA, 0xcf406);
3168 1.1 nonaka }
3169 1.1 nonaka if (!(sc->pa_setting & 0x10)) {
3170 1.1 nonaka reg = urtwn_read_1(sc, 0x16);
3171 1.1 nonaka reg = (reg & ~0xf0) | 0x90;
3172 1.1 nonaka urtwn_write_1(sc, 0x16, reg);
3173 1.1 nonaka }
3174 1.1 nonaka }
3175 1.1 nonaka
3176 1.1 nonaka static void
3177 1.1 nonaka urtwn_rxfilter_init(struct urtwn_softc *sc)
3178 1.1 nonaka {
3179 1.1 nonaka
3180 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
3181 1.1 nonaka
3182 1.12 christos KASSERT(mutex_owned(&sc->sc_write_mtx));
3183 1.12 christos
3184 1.1 nonaka /* Initialize Rx filter. */
3185 1.1 nonaka /* TODO: use better filter for monitor mode. */
3186 1.1 nonaka urtwn_write_4(sc, R92C_RCR,
3187 1.1 nonaka R92C_RCR_AAP | R92C_RCR_APM | R92C_RCR_AM | R92C_RCR_AB |
3188 1.1 nonaka R92C_RCR_APP_ICV | R92C_RCR_AMF | R92C_RCR_HTC_LOC_CTRL |
3189 1.1 nonaka R92C_RCR_APP_MIC | R92C_RCR_APP_PHYSTS);
3190 1.1 nonaka /* Accept all multicast frames. */
3191 1.1 nonaka urtwn_write_4(sc, R92C_MAR + 0, 0xffffffff);
3192 1.1 nonaka urtwn_write_4(sc, R92C_MAR + 4, 0xffffffff);
3193 1.1 nonaka /* Accept all management frames. */
3194 1.1 nonaka urtwn_write_2(sc, R92C_RXFLTMAP0, 0xffff);
3195 1.1 nonaka /* Reject all control frames. */
3196 1.1 nonaka urtwn_write_2(sc, R92C_RXFLTMAP1, 0x0000);
3197 1.1 nonaka /* Accept all data frames. */
3198 1.1 nonaka urtwn_write_2(sc, R92C_RXFLTMAP2, 0xffff);
3199 1.1 nonaka }
3200 1.1 nonaka
3201 1.1 nonaka static void
3202 1.1 nonaka urtwn_edca_init(struct urtwn_softc *sc)
3203 1.1 nonaka {
3204 1.1 nonaka
3205 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
3206 1.1 nonaka
3207 1.12 christos KASSERT(mutex_owned(&sc->sc_write_mtx));
3208 1.12 christos
3209 1.1 nonaka /* set spec SIFS (used in NAV) */
3210 1.1 nonaka urtwn_write_2(sc, R92C_SPEC_SIFS, 0x100a);
3211 1.1 nonaka urtwn_write_2(sc, R92C_MAC_SPEC_SIFS, 0x100a);
3212 1.1 nonaka
3213 1.1 nonaka /* set SIFS CCK/OFDM */
3214 1.1 nonaka urtwn_write_2(sc, R92C_SIFS_CCK, 0x100a);
3215 1.1 nonaka urtwn_write_2(sc, R92C_SIFS_OFDM, 0x100a);
3216 1.1 nonaka
3217 1.1 nonaka /* TXOP */
3218 1.1 nonaka urtwn_write_4(sc, R92C_EDCA_BE_PARAM, 0x005ea42b);
3219 1.1 nonaka urtwn_write_4(sc, R92C_EDCA_BK_PARAM, 0x0000a44f);
3220 1.1 nonaka urtwn_write_4(sc, R92C_EDCA_VI_PARAM, 0x005ea324);
3221 1.1 nonaka urtwn_write_4(sc, R92C_EDCA_VO_PARAM, 0x002fa226);
3222 1.1 nonaka }
3223 1.1 nonaka
3224 1.1 nonaka static void
3225 1.1 nonaka urtwn_write_txpower(struct urtwn_softc *sc, int chain,
3226 1.1 nonaka uint16_t power[URTWN_RIDX_COUNT])
3227 1.1 nonaka {
3228 1.1 nonaka uint32_t reg;
3229 1.1 nonaka
3230 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s: chain=%d\n", device_xname(sc->sc_dev),
3231 1.1 nonaka __func__, chain));
3232 1.1 nonaka
3233 1.1 nonaka /* Write per-CCK rate Tx power. */
3234 1.1 nonaka if (chain == 0) {
3235 1.1 nonaka reg = urtwn_bb_read(sc, R92C_TXAGC_A_CCK1_MCS32);
3236 1.1 nonaka reg = RW(reg, R92C_TXAGC_A_CCK1, power[0]);
3237 1.1 nonaka urtwn_bb_write(sc, R92C_TXAGC_A_CCK1_MCS32, reg);
3238 1.1 nonaka
3239 1.1 nonaka reg = urtwn_bb_read(sc, R92C_TXAGC_B_CCK11_A_CCK2_11);
3240 1.1 nonaka reg = RW(reg, R92C_TXAGC_A_CCK2, power[1]);
3241 1.1 nonaka reg = RW(reg, R92C_TXAGC_A_CCK55, power[2]);
3242 1.1 nonaka reg = RW(reg, R92C_TXAGC_A_CCK11, power[3]);
3243 1.1 nonaka urtwn_bb_write(sc, R92C_TXAGC_B_CCK11_A_CCK2_11, reg);
3244 1.1 nonaka } else {
3245 1.1 nonaka reg = urtwn_bb_read(sc, R92C_TXAGC_B_CCK1_55_MCS32);
3246 1.1 nonaka reg = RW(reg, R92C_TXAGC_B_CCK1, power[0]);
3247 1.1 nonaka reg = RW(reg, R92C_TXAGC_B_CCK2, power[1]);
3248 1.1 nonaka reg = RW(reg, R92C_TXAGC_B_CCK55, power[2]);
3249 1.1 nonaka urtwn_bb_write(sc, R92C_TXAGC_B_CCK1_55_MCS32, reg);
3250 1.1 nonaka
3251 1.1 nonaka reg = urtwn_bb_read(sc, R92C_TXAGC_B_CCK11_A_CCK2_11);
3252 1.1 nonaka reg = RW(reg, R92C_TXAGC_B_CCK11, power[3]);
3253 1.1 nonaka urtwn_bb_write(sc, R92C_TXAGC_B_CCK11_A_CCK2_11, reg);
3254 1.1 nonaka }
3255 1.1 nonaka /* Write per-OFDM rate Tx power. */
3256 1.1 nonaka urtwn_bb_write(sc, R92C_TXAGC_RATE18_06(chain),
3257 1.1 nonaka SM(R92C_TXAGC_RATE06, power[ 4]) |
3258 1.1 nonaka SM(R92C_TXAGC_RATE09, power[ 5]) |
3259 1.1 nonaka SM(R92C_TXAGC_RATE12, power[ 6]) |
3260 1.1 nonaka SM(R92C_TXAGC_RATE18, power[ 7]));
3261 1.1 nonaka urtwn_bb_write(sc, R92C_TXAGC_RATE54_24(chain),
3262 1.1 nonaka SM(R92C_TXAGC_RATE24, power[ 8]) |
3263 1.1 nonaka SM(R92C_TXAGC_RATE36, power[ 9]) |
3264 1.1 nonaka SM(R92C_TXAGC_RATE48, power[10]) |
3265 1.1 nonaka SM(R92C_TXAGC_RATE54, power[11]));
3266 1.1 nonaka /* Write per-MCS Tx power. */
3267 1.1 nonaka urtwn_bb_write(sc, R92C_TXAGC_MCS03_MCS00(chain),
3268 1.1 nonaka SM(R92C_TXAGC_MCS00, power[12]) |
3269 1.1 nonaka SM(R92C_TXAGC_MCS01, power[13]) |
3270 1.1 nonaka SM(R92C_TXAGC_MCS02, power[14]) |
3271 1.1 nonaka SM(R92C_TXAGC_MCS03, power[15]));
3272 1.1 nonaka urtwn_bb_write(sc, R92C_TXAGC_MCS07_MCS04(chain),
3273 1.1 nonaka SM(R92C_TXAGC_MCS04, power[16]) |
3274 1.1 nonaka SM(R92C_TXAGC_MCS05, power[17]) |
3275 1.1 nonaka SM(R92C_TXAGC_MCS06, power[18]) |
3276 1.1 nonaka SM(R92C_TXAGC_MCS07, power[19]));
3277 1.1 nonaka urtwn_bb_write(sc, R92C_TXAGC_MCS11_MCS08(chain),
3278 1.1 nonaka SM(R92C_TXAGC_MCS08, power[20]) |
3279 1.1 nonaka SM(R92C_TXAGC_MCS09, power[21]) |
3280 1.1 nonaka SM(R92C_TXAGC_MCS10, power[22]) |
3281 1.1 nonaka SM(R92C_TXAGC_MCS11, power[23]));
3282 1.1 nonaka urtwn_bb_write(sc, R92C_TXAGC_MCS15_MCS12(chain),
3283 1.1 nonaka SM(R92C_TXAGC_MCS12, power[24]) |
3284 1.1 nonaka SM(R92C_TXAGC_MCS13, power[25]) |
3285 1.1 nonaka SM(R92C_TXAGC_MCS14, power[26]) |
3286 1.1 nonaka SM(R92C_TXAGC_MCS15, power[27]));
3287 1.1 nonaka }
3288 1.1 nonaka
3289 1.1 nonaka static void
3290 1.1 nonaka urtwn_get_txpower(struct urtwn_softc *sc, int chain, u_int chan, u_int ht40m,
3291 1.1 nonaka uint16_t power[URTWN_RIDX_COUNT])
3292 1.1 nonaka {
3293 1.1 nonaka struct r92c_rom *rom = &sc->rom;
3294 1.1 nonaka uint16_t cckpow, ofdmpow, htpow, diff, maxpow;
3295 1.1 nonaka const struct urtwn_txpwr *base;
3296 1.1 nonaka int ridx, group;
3297 1.1 nonaka
3298 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s: chain=%d, chan=%d\n",
3299 1.1 nonaka device_xname(sc->sc_dev), __func__, chain, chan));
3300 1.1 nonaka
3301 1.1 nonaka /* Determine channel group. */
3302 1.1 nonaka if (chan <= 3) {
3303 1.1 nonaka group = 0;
3304 1.1 nonaka } else if (chan <= 9) {
3305 1.1 nonaka group = 1;
3306 1.1 nonaka } else {
3307 1.1 nonaka group = 2;
3308 1.1 nonaka }
3309 1.1 nonaka
3310 1.1 nonaka /* Get original Tx power based on board type and RF chain. */
3311 1.1 nonaka if (!(sc->chip & URTWN_CHIP_92C)) {
3312 1.1 nonaka if (sc->board_type == R92C_BOARD_TYPE_HIGHPA) {
3313 1.1 nonaka base = &rtl8188ru_txagc[chain];
3314 1.1 nonaka } else {
3315 1.1 nonaka base = &rtl8192cu_txagc[chain];
3316 1.1 nonaka }
3317 1.1 nonaka } else {
3318 1.1 nonaka base = &rtl8192cu_txagc[chain];
3319 1.1 nonaka }
3320 1.1 nonaka
3321 1.1 nonaka memset(power, 0, URTWN_RIDX_COUNT * sizeof(power[0]));
3322 1.1 nonaka if (sc->regulatory == 0) {
3323 1.1 nonaka for (ridx = 0; ridx <= 3; ridx++) {
3324 1.1 nonaka power[ridx] = base->pwr[0][ridx];
3325 1.1 nonaka }
3326 1.1 nonaka }
3327 1.1 nonaka for (ridx = 4; ridx < URTWN_RIDX_COUNT; ridx++) {
3328 1.1 nonaka if (sc->regulatory == 3) {
3329 1.1 nonaka power[ridx] = base->pwr[0][ridx];
3330 1.1 nonaka /* Apply vendor limits. */
3331 1.1 nonaka if (ht40m != IEEE80211_HTINFO_2NDCHAN_NONE) {
3332 1.1 nonaka maxpow = rom->ht40_max_pwr[group];
3333 1.1 nonaka } else {
3334 1.1 nonaka maxpow = rom->ht20_max_pwr[group];
3335 1.1 nonaka }
3336 1.1 nonaka maxpow = (maxpow >> (chain * 4)) & 0xf;
3337 1.1 nonaka if (power[ridx] > maxpow) {
3338 1.1 nonaka power[ridx] = maxpow;
3339 1.1 nonaka }
3340 1.1 nonaka } else if (sc->regulatory == 1) {
3341 1.1 nonaka if (ht40m == IEEE80211_HTINFO_2NDCHAN_NONE) {
3342 1.1 nonaka power[ridx] = base->pwr[group][ridx];
3343 1.1 nonaka }
3344 1.1 nonaka } else if (sc->regulatory != 2) {
3345 1.1 nonaka power[ridx] = base->pwr[0][ridx];
3346 1.1 nonaka }
3347 1.1 nonaka }
3348 1.1 nonaka
3349 1.1 nonaka /* Compute per-CCK rate Tx power. */
3350 1.1 nonaka cckpow = rom->cck_tx_pwr[chain][group];
3351 1.1 nonaka for (ridx = 0; ridx <= 3; ridx++) {
3352 1.1 nonaka power[ridx] += cckpow;
3353 1.1 nonaka if (power[ridx] > R92C_MAX_TX_PWR) {
3354 1.1 nonaka power[ridx] = R92C_MAX_TX_PWR;
3355 1.1 nonaka }
3356 1.1 nonaka }
3357 1.1 nonaka
3358 1.1 nonaka htpow = rom->ht40_1s_tx_pwr[chain][group];
3359 1.1 nonaka if (sc->ntxchains > 1) {
3360 1.1 nonaka /* Apply reduction for 2 spatial streams. */
3361 1.1 nonaka diff = rom->ht40_2s_tx_pwr_diff[group];
3362 1.1 nonaka diff = (diff >> (chain * 4)) & 0xf;
3363 1.1 nonaka htpow = (htpow > diff) ? htpow - diff : 0;
3364 1.1 nonaka }
3365 1.1 nonaka
3366 1.1 nonaka /* Compute per-OFDM rate Tx power. */
3367 1.1 nonaka diff = rom->ofdm_tx_pwr_diff[group];
3368 1.1 nonaka diff = (diff >> (chain * 4)) & 0xf;
3369 1.1 nonaka ofdmpow = htpow + diff; /* HT->OFDM correction. */
3370 1.1 nonaka for (ridx = 4; ridx <= 11; ridx++) {
3371 1.1 nonaka power[ridx] += ofdmpow;
3372 1.1 nonaka if (power[ridx] > R92C_MAX_TX_PWR) {
3373 1.1 nonaka power[ridx] = R92C_MAX_TX_PWR;
3374 1.1 nonaka }
3375 1.1 nonaka }
3376 1.1 nonaka
3377 1.1 nonaka /* Compute per-MCS Tx power. */
3378 1.1 nonaka if (ht40m == IEEE80211_HTINFO_2NDCHAN_NONE) {
3379 1.1 nonaka diff = rom->ht20_tx_pwr_diff[group];
3380 1.1 nonaka diff = (diff >> (chain * 4)) & 0xf;
3381 1.1 nonaka htpow += diff; /* HT40->HT20 correction. */
3382 1.1 nonaka }
3383 1.1 nonaka for (ridx = 12; ridx < URTWN_RIDX_COUNT; ridx++) {
3384 1.1 nonaka power[ridx] += htpow;
3385 1.1 nonaka if (power[ridx] > R92C_MAX_TX_PWR) {
3386 1.1 nonaka power[ridx] = R92C_MAX_TX_PWR;
3387 1.1 nonaka }
3388 1.1 nonaka }
3389 1.1 nonaka #ifdef URTWN_DEBUG
3390 1.1 nonaka if (urtwn_debug & DBG_RF) {
3391 1.1 nonaka /* Dump per-rate Tx power values. */
3392 1.1 nonaka printf("%s: %s: Tx power for chain %d:\n",
3393 1.1 nonaka device_xname(sc->sc_dev), __func__, chain);
3394 1.1 nonaka for (ridx = 0; ridx < URTWN_RIDX_COUNT; ridx++) {
3395 1.1 nonaka printf("%s: %s: Rate %d = %u\n",
3396 1.1 nonaka device_xname(sc->sc_dev), __func__, ridx,
3397 1.1 nonaka power[ridx]);
3398 1.1 nonaka }
3399 1.1 nonaka }
3400 1.1 nonaka #endif
3401 1.1 nonaka }
3402 1.1 nonaka
3403 1.1 nonaka static void
3404 1.1 nonaka urtwn_set_txpower(struct urtwn_softc *sc, u_int chan, u_int ht40m)
3405 1.1 nonaka {
3406 1.1 nonaka uint16_t power[URTWN_RIDX_COUNT];
3407 1.1 nonaka int i;
3408 1.1 nonaka
3409 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
3410 1.1 nonaka
3411 1.1 nonaka for (i = 0; i < sc->ntxchains; i++) {
3412 1.1 nonaka /* Compute per-rate Tx power values. */
3413 1.1 nonaka urtwn_get_txpower(sc, i, chan, ht40m, power);
3414 1.1 nonaka /* Write per-rate Tx power values to hardware. */
3415 1.1 nonaka urtwn_write_txpower(sc, i, power);
3416 1.1 nonaka }
3417 1.1 nonaka }
3418 1.1 nonaka
3419 1.1 nonaka static void
3420 1.1 nonaka urtwn_set_chan(struct urtwn_softc *sc, struct ieee80211_channel *c, u_int ht40m)
3421 1.1 nonaka {
3422 1.1 nonaka struct ieee80211com *ic = &sc->sc_ic;
3423 1.1 nonaka u_int chan;
3424 1.1 nonaka int i;
3425 1.1 nonaka
3426 1.1 nonaka chan = ieee80211_chan2ieee(ic, c); /* XXX center freq! */
3427 1.1 nonaka
3428 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s: chan=%d\n", device_xname(sc->sc_dev),
3429 1.1 nonaka __func__, chan));
3430 1.1 nonaka
3431 1.12 christos KASSERT(mutex_owned(&sc->sc_write_mtx));
3432 1.12 christos
3433 1.1 nonaka if (ht40m == IEEE80211_HTINFO_2NDCHAN_ABOVE) {
3434 1.1 nonaka chan += 2;
3435 1.1 nonaka } else if (ht40m == IEEE80211_HTINFO_2NDCHAN_BELOW){
3436 1.1 nonaka chan -= 2;
3437 1.1 nonaka }
3438 1.1 nonaka
3439 1.1 nonaka /* Set Tx power for this new channel. */
3440 1.1 nonaka urtwn_set_txpower(sc, chan, ht40m);
3441 1.1 nonaka
3442 1.1 nonaka for (i = 0; i < sc->nrxchains; i++) {
3443 1.1 nonaka urtwn_rf_write(sc, i, R92C_RF_CHNLBW,
3444 1.1 nonaka RW(sc->rf_chnlbw[i], R92C_RF_CHNLBW_CHNL, chan));
3445 1.1 nonaka }
3446 1.1 nonaka
3447 1.1 nonaka if (ht40m) {
3448 1.1 nonaka /* Is secondary channel below or above primary? */
3449 1.1 nonaka int prichlo = (ht40m == IEEE80211_HTINFO_2NDCHAN_ABOVE);
3450 1.1 nonaka uint32_t reg;
3451 1.1 nonaka
3452 1.1 nonaka urtwn_write_1(sc, R92C_BWOPMODE,
3453 1.1 nonaka urtwn_read_1(sc, R92C_BWOPMODE) & ~R92C_BWOPMODE_20MHZ);
3454 1.1 nonaka
3455 1.1 nonaka reg = urtwn_read_1(sc, R92C_RRSR + 2);
3456 1.1 nonaka reg = (reg & ~0x6f) | (prichlo ? 1 : 2) << 5;
3457 1.1 nonaka urtwn_write_1(sc, R92C_RRSR + 2, (uint8_t)reg);
3458 1.1 nonaka
3459 1.1 nonaka urtwn_bb_write(sc, R92C_FPGA0_RFMOD,
3460 1.1 nonaka urtwn_bb_read(sc, R92C_FPGA0_RFMOD) | R92C_RFMOD_40MHZ);
3461 1.1 nonaka urtwn_bb_write(sc, R92C_FPGA1_RFMOD,
3462 1.1 nonaka urtwn_bb_read(sc, R92C_FPGA1_RFMOD) | R92C_RFMOD_40MHZ);
3463 1.1 nonaka
3464 1.1 nonaka /* Set CCK side band. */
3465 1.1 nonaka reg = urtwn_bb_read(sc, R92C_CCK0_SYSTEM);
3466 1.1 nonaka reg = (reg & ~0x00000010) | (prichlo ? 0 : 1) << 4;
3467 1.1 nonaka urtwn_bb_write(sc, R92C_CCK0_SYSTEM, reg);
3468 1.1 nonaka
3469 1.1 nonaka reg = urtwn_bb_read(sc, R92C_OFDM1_LSTF);
3470 1.1 nonaka reg = (reg & ~0x00000c00) | (prichlo ? 1 : 2) << 10;
3471 1.1 nonaka urtwn_bb_write(sc, R92C_OFDM1_LSTF, reg);
3472 1.1 nonaka
3473 1.1 nonaka urtwn_bb_write(sc, R92C_FPGA0_ANAPARAM2,
3474 1.1 nonaka urtwn_bb_read(sc, R92C_FPGA0_ANAPARAM2) &
3475 1.1 nonaka ~R92C_FPGA0_ANAPARAM2_CBW20);
3476 1.1 nonaka
3477 1.1 nonaka reg = urtwn_bb_read(sc, 0x818);
3478 1.1 nonaka reg = (reg & ~0x0c000000) | (prichlo ? 2 : 1) << 26;
3479 1.1 nonaka urtwn_bb_write(sc, 0x818, reg);
3480 1.1 nonaka
3481 1.1 nonaka /* Select 40MHz bandwidth. */
3482 1.1 nonaka urtwn_rf_write(sc, 0, R92C_RF_CHNLBW,
3483 1.1 nonaka (sc->rf_chnlbw[0] & ~0xfff) | chan);
3484 1.1 nonaka } else {
3485 1.1 nonaka urtwn_write_1(sc, R92C_BWOPMODE,
3486 1.1 nonaka urtwn_read_1(sc, R92C_BWOPMODE) | R92C_BWOPMODE_20MHZ);
3487 1.1 nonaka
3488 1.1 nonaka urtwn_bb_write(sc, R92C_FPGA0_RFMOD,
3489 1.1 nonaka urtwn_bb_read(sc, R92C_FPGA0_RFMOD) & ~R92C_RFMOD_40MHZ);
3490 1.1 nonaka urtwn_bb_write(sc, R92C_FPGA1_RFMOD,
3491 1.1 nonaka urtwn_bb_read(sc, R92C_FPGA1_RFMOD) & ~R92C_RFMOD_40MHZ);
3492 1.1 nonaka
3493 1.1 nonaka urtwn_bb_write(sc, R92C_FPGA0_ANAPARAM2,
3494 1.1 nonaka urtwn_bb_read(sc, R92C_FPGA0_ANAPARAM2) |
3495 1.1 nonaka R92C_FPGA0_ANAPARAM2_CBW20);
3496 1.1 nonaka
3497 1.1 nonaka /* Select 20MHz bandwidth. */
3498 1.1 nonaka urtwn_rf_write(sc, 0, R92C_RF_CHNLBW,
3499 1.1 nonaka (sc->rf_chnlbw[0] & ~0xfff) | R92C_RF_CHNLBW_BW20 | chan);
3500 1.1 nonaka }
3501 1.1 nonaka }
3502 1.1 nonaka
3503 1.1 nonaka static void
3504 1.1 nonaka urtwn_iq_calib(struct urtwn_softc *sc, bool inited)
3505 1.1 nonaka {
3506 1.1 nonaka
3507 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s: inited=%d\n", device_xname(sc->sc_dev),
3508 1.1 nonaka __func__, inited));
3509 1.1 nonaka
3510 1.1 nonaka /* TODO */
3511 1.1 nonaka }
3512 1.1 nonaka
3513 1.1 nonaka static void
3514 1.1 nonaka urtwn_lc_calib(struct urtwn_softc *sc)
3515 1.1 nonaka {
3516 1.1 nonaka uint32_t rf_ac[2];
3517 1.1 nonaka uint8_t txmode;
3518 1.1 nonaka int i;
3519 1.1 nonaka
3520 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
3521 1.1 nonaka
3522 1.12 christos KASSERT(mutex_owned(&sc->sc_write_mtx));
3523 1.12 christos
3524 1.1 nonaka txmode = urtwn_read_1(sc, R92C_OFDM1_LSTF + 3);
3525 1.1 nonaka if ((txmode & 0x70) != 0) {
3526 1.1 nonaka /* Disable all continuous Tx. */
3527 1.1 nonaka urtwn_write_1(sc, R92C_OFDM1_LSTF + 3, txmode & ~0x70);
3528 1.1 nonaka
3529 1.1 nonaka /* Set RF mode to standby mode. */
3530 1.1 nonaka for (i = 0; i < sc->nrxchains; i++) {
3531 1.1 nonaka rf_ac[i] = urtwn_rf_read(sc, i, R92C_RF_AC);
3532 1.1 nonaka urtwn_rf_write(sc, i, R92C_RF_AC,
3533 1.1 nonaka RW(rf_ac[i], R92C_RF_AC_MODE,
3534 1.1 nonaka R92C_RF_AC_MODE_STANDBY));
3535 1.1 nonaka }
3536 1.1 nonaka } else {
3537 1.1 nonaka /* Block all Tx queues. */
3538 1.1 nonaka urtwn_write_1(sc, R92C_TXPAUSE, 0xff);
3539 1.1 nonaka }
3540 1.1 nonaka /* Start calibration. */
3541 1.1 nonaka urtwn_rf_write(sc, 0, R92C_RF_CHNLBW,
3542 1.1 nonaka urtwn_rf_read(sc, 0, R92C_RF_CHNLBW) | R92C_RF_CHNLBW_LCSTART);
3543 1.1 nonaka
3544 1.1 nonaka /* Give calibration the time to complete. */
3545 1.1 nonaka usbd_delay_ms(sc->sc_udev, 100);
3546 1.1 nonaka
3547 1.1 nonaka /* Restore configuration. */
3548 1.1 nonaka if ((txmode & 0x70) != 0) {
3549 1.1 nonaka /* Restore Tx mode. */
3550 1.1 nonaka urtwn_write_1(sc, R92C_OFDM1_LSTF + 3, txmode);
3551 1.1 nonaka /* Restore RF mode. */
3552 1.1 nonaka for (i = 0; i < sc->nrxchains; i++) {
3553 1.1 nonaka urtwn_rf_write(sc, i, R92C_RF_AC, rf_ac[i]);
3554 1.1 nonaka }
3555 1.1 nonaka } else {
3556 1.1 nonaka /* Unblock all Tx queues. */
3557 1.1 nonaka urtwn_write_1(sc, R92C_TXPAUSE, 0x00);
3558 1.1 nonaka }
3559 1.1 nonaka }
3560 1.1 nonaka
3561 1.1 nonaka static void
3562 1.1 nonaka urtwn_temp_calib(struct urtwn_softc *sc)
3563 1.1 nonaka {
3564 1.1 nonaka int temp;
3565 1.1 nonaka
3566 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
3567 1.1 nonaka
3568 1.12 christos KASSERT(mutex_owned(&sc->sc_write_mtx));
3569 1.12 christos
3570 1.1 nonaka if (sc->thcal_state == 0) {
3571 1.1 nonaka /* Start measuring temperature. */
3572 1.1 nonaka DPRINTFN(DBG_RF, ("%s: %s: start measuring temperature\n",
3573 1.1 nonaka device_xname(sc->sc_dev), __func__));
3574 1.1 nonaka urtwn_rf_write(sc, 0, R92C_RF_T_METER, 0x60);
3575 1.1 nonaka sc->thcal_state = 1;
3576 1.1 nonaka return;
3577 1.1 nonaka }
3578 1.1 nonaka sc->thcal_state = 0;
3579 1.1 nonaka
3580 1.1 nonaka /* Read measured temperature. */
3581 1.1 nonaka temp = urtwn_rf_read(sc, 0, R92C_RF_T_METER) & 0x1f;
3582 1.1 nonaka DPRINTFN(DBG_RF, ("%s: %s: temperature=%d\n", device_xname(sc->sc_dev),
3583 1.1 nonaka __func__, temp));
3584 1.1 nonaka if (temp == 0) /* Read failed, skip. */
3585 1.1 nonaka return;
3586 1.1 nonaka
3587 1.1 nonaka /*
3588 1.1 nonaka * Redo LC calibration if temperature changed significantly since
3589 1.1 nonaka * last calibration.
3590 1.1 nonaka */
3591 1.1 nonaka if (sc->thcal_lctemp == 0) {
3592 1.1 nonaka /* First LC calibration is performed in urtwn_init(). */
3593 1.1 nonaka sc->thcal_lctemp = temp;
3594 1.1 nonaka } else if (abs(temp - sc->thcal_lctemp) > 1) {
3595 1.1 nonaka DPRINTFN(DBG_RF,
3596 1.1 nonaka ("%s: %s: LC calib triggered by temp: %d -> %d\n",
3597 1.1 nonaka device_xname(sc->sc_dev), __func__, sc->thcal_lctemp,
3598 1.1 nonaka temp));
3599 1.1 nonaka urtwn_lc_calib(sc);
3600 1.1 nonaka /* Record temperature of last LC calibration. */
3601 1.1 nonaka sc->thcal_lctemp = temp;
3602 1.1 nonaka }
3603 1.1 nonaka }
3604 1.1 nonaka
3605 1.1 nonaka static int
3606 1.1 nonaka urtwn_init(struct ifnet *ifp)
3607 1.1 nonaka {
3608 1.1 nonaka struct urtwn_softc *sc = ifp->if_softc;
3609 1.1 nonaka struct ieee80211com *ic = &sc->sc_ic;
3610 1.1 nonaka struct urtwn_rx_data *data;
3611 1.1 nonaka uint32_t reg;
3612 1.1 nonaka int i, error;
3613 1.1 nonaka
3614 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
3615 1.1 nonaka
3616 1.1 nonaka urtwn_stop(ifp, 0);
3617 1.1 nonaka
3618 1.12 christos mutex_enter(&sc->sc_write_mtx);
3619 1.12 christos
3620 1.1 nonaka mutex_enter(&sc->sc_task_mtx);
3621 1.1 nonaka /* Init host async commands ring. */
3622 1.1 nonaka sc->cmdq.cur = sc->cmdq.next = sc->cmdq.queued = 0;
3623 1.1 nonaka mutex_exit(&sc->sc_task_mtx);
3624 1.1 nonaka
3625 1.1 nonaka mutex_enter(&sc->sc_fwcmd_mtx);
3626 1.1 nonaka /* Init firmware commands ring. */
3627 1.1 nonaka sc->fwcur = 0;
3628 1.1 nonaka mutex_exit(&sc->sc_fwcmd_mtx);
3629 1.1 nonaka
3630 1.12 christos /* Allocate Tx/Rx buffers. */
3631 1.12 christos error = urtwn_alloc_rx_list(sc);
3632 1.12 christos if (error != 0) {
3633 1.12 christos aprint_error_dev(sc->sc_dev,
3634 1.12 christos "could not allocate Rx buffers\n");
3635 1.12 christos goto fail;
3636 1.12 christos }
3637 1.12 christos error = urtwn_alloc_tx_list(sc);
3638 1.12 christos if (error != 0) {
3639 1.12 christos aprint_error_dev(sc->sc_dev,
3640 1.12 christos "could not allocate Tx buffers\n");
3641 1.12 christos goto fail;
3642 1.1 nonaka }
3643 1.1 nonaka
3644 1.1 nonaka /* Power on adapter. */
3645 1.1 nonaka error = urtwn_power_on(sc);
3646 1.1 nonaka if (error != 0)
3647 1.1 nonaka goto fail;
3648 1.1 nonaka
3649 1.1 nonaka /* Initialize DMA. */
3650 1.1 nonaka error = urtwn_dma_init(sc);
3651 1.1 nonaka if (error != 0)
3652 1.1 nonaka goto fail;
3653 1.1 nonaka
3654 1.1 nonaka /* Set info size in Rx descriptors (in 64-bit words). */
3655 1.1 nonaka urtwn_write_1(sc, R92C_RX_DRVINFO_SZ, 4);
3656 1.1 nonaka
3657 1.1 nonaka /* Init interrupts. */
3658 1.1 nonaka urtwn_write_4(sc, R92C_HISR, 0xffffffff);
3659 1.1 nonaka urtwn_write_4(sc, R92C_HIMR, 0xffffffff);
3660 1.1 nonaka
3661 1.1 nonaka /* Set MAC address. */
3662 1.1 nonaka IEEE80211_ADDR_COPY(ic->ic_myaddr, CLLADDR(ifp->if_sadl));
3663 1.1 nonaka urtwn_write_region(sc, R92C_MACID, ic->ic_myaddr, IEEE80211_ADDR_LEN);
3664 1.1 nonaka
3665 1.1 nonaka /* Set initial network type. */
3666 1.1 nonaka reg = urtwn_read_4(sc, R92C_CR);
3667 1.1 nonaka switch (ic->ic_opmode) {
3668 1.1 nonaka case IEEE80211_M_STA:
3669 1.1 nonaka default:
3670 1.1 nonaka reg = RW(reg, R92C_CR_NETTYPE, R92C_CR_NETTYPE_INFRA);
3671 1.1 nonaka break;
3672 1.7 christos
3673 1.1 nonaka case IEEE80211_M_IBSS:
3674 1.1 nonaka reg = RW(reg, R92C_CR_NETTYPE, R92C_CR_NETTYPE_ADHOC);
3675 1.1 nonaka break;
3676 1.1 nonaka }
3677 1.1 nonaka urtwn_write_4(sc, R92C_CR, reg);
3678 1.1 nonaka
3679 1.1 nonaka /* Set response rate */
3680 1.1 nonaka reg = urtwn_read_4(sc, R92C_RRSR);
3681 1.1 nonaka reg = RW(reg, R92C_RRSR_RATE_BITMAP, R92C_RRSR_RATE_CCK_ONLY_1M);
3682 1.1 nonaka urtwn_write_4(sc, R92C_RRSR, reg);
3683 1.1 nonaka
3684 1.1 nonaka /* SIFS (used in NAV) */
3685 1.1 nonaka urtwn_write_2(sc, R92C_SPEC_SIFS,
3686 1.1 nonaka SM(R92C_SPEC_SIFS_CCK, 0x10) | SM(R92C_SPEC_SIFS_OFDM, 0x10));
3687 1.1 nonaka
3688 1.1 nonaka /* Set short/long retry limits. */
3689 1.1 nonaka urtwn_write_2(sc, R92C_RL,
3690 1.1 nonaka SM(R92C_RL_SRL, 0x30) | SM(R92C_RL_LRL, 0x30));
3691 1.1 nonaka
3692 1.1 nonaka /* Initialize EDCA parameters. */
3693 1.1 nonaka urtwn_edca_init(sc);
3694 1.1 nonaka
3695 1.1 nonaka /* Setup rate fallback. */
3696 1.1 nonaka urtwn_write_4(sc, R92C_DARFRC + 0, 0x00000000);
3697 1.1 nonaka urtwn_write_4(sc, R92C_DARFRC + 4, 0x10080404);
3698 1.1 nonaka urtwn_write_4(sc, R92C_RARFRC + 0, 0x04030201);
3699 1.1 nonaka urtwn_write_4(sc, R92C_RARFRC + 4, 0x08070605);
3700 1.1 nonaka
3701 1.1 nonaka urtwn_write_1(sc, R92C_FWHW_TXQ_CTRL,
3702 1.1 nonaka urtwn_read_1(sc, R92C_FWHW_TXQ_CTRL) |
3703 1.1 nonaka R92C_FWHW_TXQ_CTRL_AMPDU_RTY_NEW);
3704 1.1 nonaka /* Set ACK timeout. */
3705 1.1 nonaka urtwn_write_1(sc, R92C_ACKTO, 0x40);
3706 1.1 nonaka
3707 1.1 nonaka /* Setup USB aggregation. */
3708 1.1 nonaka /* Tx */
3709 1.1 nonaka reg = urtwn_read_4(sc, R92C_TDECTRL);
3710 1.1 nonaka reg = RW(reg, R92C_TDECTRL_BLK_DESC_NUM, 6);
3711 1.1 nonaka urtwn_write_4(sc, R92C_TDECTRL, reg);
3712 1.1 nonaka /* Rx */
3713 1.1 nonaka urtwn_write_1(sc, R92C_TRXDMA_CTRL,
3714 1.1 nonaka urtwn_read_1(sc, R92C_TRXDMA_CTRL) |
3715 1.1 nonaka R92C_TRXDMA_CTRL_RXDMA_AGG_EN);
3716 1.1 nonaka urtwn_write_1(sc, R92C_USB_SPECIAL_OPTION,
3717 1.1 nonaka urtwn_read_1(sc, R92C_USB_SPECIAL_OPTION) &
3718 1.1 nonaka ~R92C_USB_SPECIAL_OPTION_AGG_EN);
3719 1.1 nonaka urtwn_write_1(sc, R92C_RXDMA_AGG_PG_TH, 48);
3720 1.1 nonaka urtwn_write_1(sc, R92C_USB_DMA_AGG_TO, 4);
3721 1.1 nonaka
3722 1.1 nonaka /* Initialize beacon parameters. */
3723 1.1 nonaka urtwn_write_2(sc, R92C_TBTT_PROHIBIT, 0x6404);
3724 1.1 nonaka urtwn_write_1(sc, R92C_DRVERLYINT, 0x05);
3725 1.1 nonaka urtwn_write_1(sc, R92C_BCNDMATIM, 0x02);
3726 1.1 nonaka urtwn_write_2(sc, R92C_BCNTCFG, 0x660f);
3727 1.1 nonaka
3728 1.1 nonaka /* Setup AMPDU aggregation. */
3729 1.1 nonaka urtwn_write_4(sc, R92C_AGGLEN_LMT, 0x99997631); /* MCS7~0 */
3730 1.1 nonaka urtwn_write_1(sc, R92C_AGGR_BREAK_TIME, 0x16);
3731 1.1 nonaka urtwn_write_2(sc, 0x4ca, 0x0708);
3732 1.1 nonaka
3733 1.1 nonaka urtwn_write_1(sc, R92C_BCN_MAX_ERR, 0xff);
3734 1.1 nonaka urtwn_write_1(sc, R92C_BCN_CTRL, R92C_BCN_CTRL_DIS_TSF_UDT0);
3735 1.1 nonaka
3736 1.1 nonaka /* Load 8051 microcode. */
3737 1.1 nonaka error = urtwn_load_firmware(sc);
3738 1.1 nonaka if (error != 0)
3739 1.1 nonaka goto fail;
3740 1.1 nonaka SET(sc->sc_flags, URTWN_FLAG_FWREADY);
3741 1.1 nonaka
3742 1.1 nonaka /* Initialize MAC/BB/RF blocks. */
3743 1.19 christos /*
3744 1.19 christos * XXX: urtwn_mac_init() sets R92C_RCR[0:15] = R92C_RCR_APM |
3745 1.19 christos * R92C_RCR_AM | R92C_RCR_AB | R92C_RCR_AICV | R92C_RCR_AMF.
3746 1.19 christos * XXX: This setting should be removed from rtl8192cu_mac[].
3747 1.19 christos */
3748 1.19 christos urtwn_mac_init(sc); // sets R92C_RCR[0:15]
3749 1.19 christos urtwn_rxfilter_init(sc); // reset R92C_RCR
3750 1.1 nonaka urtwn_bb_init(sc);
3751 1.1 nonaka urtwn_rf_init(sc);
3752 1.1 nonaka
3753 1.1 nonaka /* Turn CCK and OFDM blocks on. */
3754 1.1 nonaka reg = urtwn_bb_read(sc, R92C_FPGA0_RFMOD);
3755 1.1 nonaka reg |= R92C_RFMOD_CCK_EN;
3756 1.1 nonaka urtwn_bb_write(sc, R92C_FPGA0_RFMOD, reg);
3757 1.1 nonaka reg = urtwn_bb_read(sc, R92C_FPGA0_RFMOD);
3758 1.1 nonaka reg |= R92C_RFMOD_OFDM_EN;
3759 1.1 nonaka urtwn_bb_write(sc, R92C_FPGA0_RFMOD, reg);
3760 1.1 nonaka
3761 1.1 nonaka /* Clear per-station keys table. */
3762 1.1 nonaka urtwn_cam_init(sc);
3763 1.1 nonaka
3764 1.1 nonaka /* Enable hardware sequence numbering. */
3765 1.1 nonaka urtwn_write_1(sc, R92C_HWSEQ_CTRL, 0xff);
3766 1.1 nonaka
3767 1.1 nonaka /* Perform LO and IQ calibrations. */
3768 1.1 nonaka urtwn_iq_calib(sc, sc->iqk_inited);
3769 1.1 nonaka sc->iqk_inited = true;
3770 1.1 nonaka
3771 1.1 nonaka /* Perform LC calibration. */
3772 1.1 nonaka urtwn_lc_calib(sc);
3773 1.1 nonaka
3774 1.1 nonaka /* Fix USB interference issue. */
3775 1.1 nonaka urtwn_write_1(sc, 0xfe40, 0xe0);
3776 1.1 nonaka urtwn_write_1(sc, 0xfe41, 0x8d);
3777 1.1 nonaka urtwn_write_1(sc, 0xfe42, 0x80);
3778 1.1 nonaka urtwn_write_4(sc, 0x20c, 0xfd0320);
3779 1.1 nonaka
3780 1.1 nonaka urtwn_pa_bias_init(sc);
3781 1.1 nonaka
3782 1.1 nonaka if (!(sc->chip & (URTWN_CHIP_92C | URTWN_CHIP_92C_1T2R))) {
3783 1.1 nonaka /* 1T1R */
3784 1.1 nonaka urtwn_bb_write(sc, R92C_FPGA0_RFPARAM(0),
3785 1.1 nonaka urtwn_bb_read(sc, R92C_FPGA0_RFPARAM(0)) | __BIT(13));
3786 1.1 nonaka }
3787 1.1 nonaka
3788 1.1 nonaka /* Initialize GPIO setting. */
3789 1.1 nonaka urtwn_write_1(sc, R92C_GPIO_MUXCFG,
3790 1.1 nonaka urtwn_read_1(sc, R92C_GPIO_MUXCFG) & ~R92C_GPIO_MUXCFG_ENBT);
3791 1.1 nonaka
3792 1.1 nonaka /* Fix for lower temperature. */
3793 1.1 nonaka urtwn_write_1(sc, 0x15, 0xe9);
3794 1.1 nonaka
3795 1.1 nonaka /* Set default channel. */
3796 1.13 jmcneill urtwn_set_chan(sc, ic->ic_curchan, IEEE80211_HTINFO_2NDCHAN_NONE);
3797 1.1 nonaka
3798 1.1 nonaka /* Queue Rx xfers. */
3799 1.1 nonaka for (i = 0; i < URTWN_RX_LIST_COUNT; i++) {
3800 1.1 nonaka data = &sc->rx_data[i];
3801 1.1 nonaka usbd_setup_xfer(data->xfer, sc->rx_pipe, data, data->buf,
3802 1.1 nonaka URTWN_RXBUFSZ, USBD_SHORT_XFER_OK | USBD_NO_COPY,
3803 1.1 nonaka USBD_NO_TIMEOUT, urtwn_rxeof);
3804 1.1 nonaka error = usbd_transfer(data->xfer);
3805 1.1 nonaka if (__predict_false(error != USBD_NORMAL_COMPLETION &&
3806 1.1 nonaka error != USBD_IN_PROGRESS))
3807 1.1 nonaka goto fail;
3808 1.1 nonaka }
3809 1.1 nonaka
3810 1.1 nonaka /* We're ready to go. */
3811 1.1 nonaka ifp->if_flags &= ~IFF_OACTIVE;
3812 1.1 nonaka ifp->if_flags |= IFF_RUNNING;
3813 1.1 nonaka
3814 1.16 jmcneill mutex_exit(&sc->sc_write_mtx);
3815 1.16 jmcneill
3816 1.1 nonaka if (ic->ic_opmode == IEEE80211_M_MONITOR)
3817 1.1 nonaka ieee80211_new_state(ic, IEEE80211_S_RUN, -1);
3818 1.16 jmcneill else if (ic->ic_roaming != IEEE80211_ROAMING_MANUAL)
3819 1.1 nonaka ieee80211_new_state(ic, IEEE80211_S_SCAN, -1);
3820 1.16 jmcneill urtwn_wait_async(sc);
3821 1.12 christos
3822 1.1 nonaka return (0);
3823 1.1 nonaka
3824 1.1 nonaka fail:
3825 1.12 christos mutex_exit(&sc->sc_write_mtx);
3826 1.12 christos
3827 1.1 nonaka urtwn_stop(ifp, 1);
3828 1.1 nonaka return (error);
3829 1.1 nonaka }
3830 1.1 nonaka
3831 1.1 nonaka static void
3832 1.1 nonaka urtwn_stop(struct ifnet *ifp, int disable)
3833 1.1 nonaka {
3834 1.1 nonaka struct urtwn_softc *sc = ifp->if_softc;
3835 1.1 nonaka struct ieee80211com *ic = &sc->sc_ic;
3836 1.1 nonaka int i, s;
3837 1.1 nonaka
3838 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
3839 1.1 nonaka
3840 1.1 nonaka s = splusb();
3841 1.1 nonaka ieee80211_new_state(ic, IEEE80211_S_INIT, -1);
3842 1.1 nonaka urtwn_wait_async(sc);
3843 1.1 nonaka splx(s);
3844 1.1 nonaka
3845 1.16 jmcneill sc->tx_timer = 0;
3846 1.16 jmcneill ifp->if_timer = 0;
3847 1.16 jmcneill ifp->if_flags &= ~(IFF_RUNNING | IFF_OACTIVE);
3848 1.16 jmcneill
3849 1.1 nonaka callout_stop(&sc->sc_scan_to);
3850 1.1 nonaka callout_stop(&sc->sc_calib_to);
3851 1.1 nonaka
3852 1.1 nonaka /* Abort Tx. */
3853 1.1 nonaka for (i = 0; i < R92C_MAX_EPOUT; i++) {
3854 1.1 nonaka if (sc->tx_pipe[i] != NULL)
3855 1.1 nonaka usbd_abort_pipe(sc->tx_pipe[i]);
3856 1.1 nonaka }
3857 1.1 nonaka
3858 1.1 nonaka /* Stop Rx pipe. */
3859 1.1 nonaka usbd_abort_pipe(sc->rx_pipe);
3860 1.1 nonaka
3861 1.12 christos /* Free Tx/Rx buffers. */
3862 1.12 christos urtwn_free_tx_list(sc);
3863 1.12 christos urtwn_free_rx_list(sc);
3864 1.12 christos
3865 1.1 nonaka if (disable)
3866 1.1 nonaka urtwn_chip_stop(sc);
3867 1.1 nonaka }
3868 1.1 nonaka
3869 1.16 jmcneill static int
3870 1.16 jmcneill urtwn_reset(struct ifnet *ifp)
3871 1.16 jmcneill {
3872 1.16 jmcneill struct urtwn_softc *sc = ifp->if_softc;
3873 1.16 jmcneill struct ieee80211com *ic = &sc->sc_ic;
3874 1.16 jmcneill
3875 1.16 jmcneill if (ic->ic_opmode != IEEE80211_M_MONITOR)
3876 1.16 jmcneill return ENETRESET;
3877 1.16 jmcneill
3878 1.16 jmcneill urtwn_set_chan(sc, ic->ic_curchan, IEEE80211_HTINFO_2NDCHAN_NONE);
3879 1.16 jmcneill
3880 1.16 jmcneill return 0;
3881 1.16 jmcneill }
3882 1.16 jmcneill
3883 1.1 nonaka static void
3884 1.1 nonaka urtwn_chip_stop(struct urtwn_softc *sc)
3885 1.1 nonaka {
3886 1.1 nonaka uint32_t reg;
3887 1.1 nonaka bool disabled = true;
3888 1.1 nonaka
3889 1.1 nonaka DPRINTFN(DBG_FN, ("%s: %s\n", device_xname(sc->sc_dev), __func__));
3890 1.1 nonaka
3891 1.12 christos mutex_enter(&sc->sc_write_mtx);
3892 1.12 christos
3893 1.1 nonaka /*
3894 1.1 nonaka * RF Off Sequence
3895 1.1 nonaka */
3896 1.1 nonaka /* Pause MAC TX queue */
3897 1.1 nonaka urtwn_write_1(sc, R92C_TXPAUSE, 0xFF);
3898 1.1 nonaka
3899 1.1 nonaka /* Disable RF */
3900 1.1 nonaka urtwn_rf_write(sc, 0, 0, 0);
3901 1.1 nonaka
3902 1.1 nonaka urtwn_write_1(sc, R92C_APSD_CTRL, R92C_APSD_CTRL_OFF);
3903 1.1 nonaka
3904 1.1 nonaka /* Reset BB state machine */
3905 1.1 nonaka urtwn_write_1(sc, R92C_SYS_FUNC_EN,
3906 1.1 nonaka R92C_SYS_FUNC_EN_USBD |
3907 1.1 nonaka R92C_SYS_FUNC_EN_USBA |
3908 1.1 nonaka R92C_SYS_FUNC_EN_BB_GLB_RST);
3909 1.1 nonaka urtwn_write_1(sc, R92C_SYS_FUNC_EN,
3910 1.1 nonaka R92C_SYS_FUNC_EN_USBD | R92C_SYS_FUNC_EN_USBA);
3911 1.1 nonaka
3912 1.1 nonaka /*
3913 1.1 nonaka * Reset digital sequence
3914 1.1 nonaka */
3915 1.1 nonaka if (urtwn_read_1(sc, R92C_MCUFWDL) & R92C_MCUFWDL_RDY) {
3916 1.1 nonaka /* Reset MCU ready status */
3917 1.1 nonaka urtwn_write_1(sc, R92C_MCUFWDL, 0);
3918 1.1 nonaka /* If firmware in ram code, do reset */
3919 1.1 nonaka if (ISSET(sc->sc_flags, URTWN_FLAG_FWREADY)) {
3920 1.1 nonaka urtwn_fw_reset(sc);
3921 1.1 nonaka CLR(sc->sc_flags, URTWN_FLAG_FWREADY);
3922 1.1 nonaka }
3923 1.1 nonaka }
3924 1.1 nonaka
3925 1.1 nonaka /* Reset MAC and Enable 8051 */
3926 1.1 nonaka urtwn_write_1(sc, R92C_SYS_FUNC_EN + 1, 0x54);
3927 1.1 nonaka
3928 1.1 nonaka /* Reset MCU ready status */
3929 1.1 nonaka urtwn_write_1(sc, R92C_MCUFWDL, 0);
3930 1.1 nonaka
3931 1.1 nonaka if (disabled) {
3932 1.1 nonaka /* Disable MAC clock */
3933 1.1 nonaka urtwn_write_2(sc, R92C_SYS_CLKR, 0x70A3);
3934 1.1 nonaka /* Disable AFE PLL */
3935 1.1 nonaka urtwn_write_1(sc, R92C_AFE_PLL_CTRL, 0x80);
3936 1.1 nonaka /* Gated AFE DIG_CLOCK */
3937 1.1 nonaka urtwn_write_2(sc, R92C_AFE_XTAL_CTRL, 0x880F);
3938 1.1 nonaka /* Isolated digital to PON */
3939 1.1 nonaka urtwn_write_1(sc, R92C_SYS_ISO_CTRL, 0xF9);
3940 1.1 nonaka }
3941 1.1 nonaka
3942 1.1 nonaka /*
3943 1.1 nonaka * Pull GPIO PIN to balance level and LED control
3944 1.1 nonaka */
3945 1.1 nonaka /* 1. Disable GPIO[7:0] */
3946 1.1 nonaka urtwn_write_2(sc, R92C_GPIO_PIN_CTRL + 2, 0x0000);
3947 1.1 nonaka
3948 1.1 nonaka reg = urtwn_read_4(sc, R92C_GPIO_PIN_CTRL) & ~0x0000ff00;
3949 1.1 nonaka reg |= ((reg << 8) & 0x0000ff00) | 0x00ff0000;
3950 1.1 nonaka urtwn_write_4(sc, R92C_GPIO_PIN_CTRL, reg);
3951 1.1 nonaka
3952 1.1 nonaka /* Disable GPIO[10:8] */
3953 1.1 nonaka urtwn_write_1(sc, R92C_GPIO_MUXCFG + 3, 0x00);
3954 1.1 nonaka
3955 1.1 nonaka reg = urtwn_read_2(sc, R92C_GPIO_MUXCFG + 2) & ~0x00f0;
3956 1.1 nonaka reg |= (((reg & 0x000f) << 4) | 0x0780);
3957 1.1 nonaka urtwn_write_2(sc, R92C_GPIO_PIN_CTRL+2, reg);
3958 1.1 nonaka
3959 1.1 nonaka /* Disable LED0 & 1 */
3960 1.1 nonaka urtwn_write_2(sc, R92C_LEDCFG0, 0x8080);
3961 1.1 nonaka
3962 1.1 nonaka /*
3963 1.1 nonaka * Reset digital sequence
3964 1.1 nonaka */
3965 1.1 nonaka if (disabled) {
3966 1.1 nonaka /* Disable ELDR clock */
3967 1.1 nonaka urtwn_write_2(sc, R92C_SYS_CLKR, 0x70A3);
3968 1.1 nonaka /* Isolated ELDR to PON */
3969 1.1 nonaka urtwn_write_1(sc, R92C_SYS_ISO_CTRL + 1, 0x82);
3970 1.1 nonaka }
3971 1.1 nonaka
3972 1.1 nonaka /*
3973 1.1 nonaka * Disable analog sequence
3974 1.1 nonaka */
3975 1.1 nonaka if (disabled) {
3976 1.1 nonaka /* Disable A15 power */
3977 1.1 nonaka urtwn_write_1(sc, R92C_LDOA15_CTRL, 0x04);
3978 1.1 nonaka /* Disable digital core power */
3979 1.1 nonaka urtwn_write_1(sc, R92C_LDOV12D_CTRL,
3980 1.1 nonaka urtwn_read_1(sc, R92C_LDOV12D_CTRL) &
3981 1.1 nonaka ~R92C_LDOV12D_CTRL_LDV12_EN);
3982 1.1 nonaka }
3983 1.1 nonaka
3984 1.1 nonaka /* Enter PFM mode */
3985 1.1 nonaka urtwn_write_1(sc, R92C_SPS0_CTRL, 0x23);
3986 1.1 nonaka
3987 1.1 nonaka /* Set USB suspend */
3988 1.1 nonaka urtwn_write_2(sc, R92C_APS_FSMCO,
3989 1.1 nonaka R92C_APS_FSMCO_APDM_HOST |
3990 1.1 nonaka R92C_APS_FSMCO_AFSM_HSUS |
3991 1.1 nonaka R92C_APS_FSMCO_PFM_ALDN);
3992 1.1 nonaka
3993 1.1 nonaka urtwn_write_1(sc, R92C_RSV_CTRL, 0x0E);
3994 1.12 christos
3995 1.12 christos mutex_exit(&sc->sc_write_mtx);
3996 1.1 nonaka }
3997 1.1 nonaka
3998 1.4 nonaka MODULE(MODULE_CLASS_DRIVER, if_urtwn, "bpf");
3999 1.1 nonaka
4000 1.1 nonaka #ifdef _MODULE
4001 1.1 nonaka #include "ioconf.c"
4002 1.1 nonaka #endif
4003 1.1 nonaka
4004 1.1 nonaka static int
4005 1.1 nonaka if_urtwn_modcmd(modcmd_t cmd, void *aux)
4006 1.1 nonaka {
4007 1.1 nonaka int error = 0;
4008 1.1 nonaka
4009 1.1 nonaka switch (cmd) {
4010 1.1 nonaka case MODULE_CMD_INIT:
4011 1.1 nonaka #ifdef _MODULE
4012 1.1 nonaka error = config_init_component(cfdriver_ioconf_urtwn,
4013 1.1 nonaka cfattach_ioconf_urtwn, cfdata_ioconf_urtwn);
4014 1.1 nonaka #endif
4015 1.1 nonaka return (error);
4016 1.1 nonaka case MODULE_CMD_FINI:
4017 1.1 nonaka #ifdef _MODULE
4018 1.1 nonaka error = config_fini_component(cfdriver_ioconf_urtwn,
4019 1.1 nonaka cfattach_ioconf_urtwn, cfdata_ioconf_urtwn);
4020 1.1 nonaka #endif
4021 1.1 nonaka return (error);
4022 1.1 nonaka default:
4023 1.1 nonaka return (ENOTTY);
4024 1.1 nonaka }
4025 1.1 nonaka }
4026