if_iwn.c revision 1.83 1 1.83 nonaka /* $NetBSD: if_iwn.c,v 1.83 2017/02/02 03:20:19 nonaka Exp $ */
2 1.72 nonaka /* $OpenBSD: if_iwn.c,v 1.135 2014/09/10 07:22:09 dcoppa Exp $ */
3 1.1 ober
4 1.1 ober /*-
5 1.40 christos * Copyright (c) 2007-2010 Damien Bergamini <damien.bergamini (at) free.fr>
6 1.1 ober *
7 1.1 ober * Permission to use, copy, modify, and distribute this software for any
8 1.1 ober * purpose with or without fee is hereby granted, provided that the above
9 1.1 ober * copyright notice and this permission notice appear in all copies.
10 1.1 ober *
11 1.1 ober * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES
12 1.1 ober * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF
13 1.1 ober * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR
14 1.1 ober * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
15 1.1 ober * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN
16 1.1 ober * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF
17 1.1 ober * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
18 1.1 ober */
19 1.1 ober
20 1.1 ober /*
21 1.40 christos * Driver for Intel WiFi Link 4965 and 1000/5000/6000 Series 802.11 network
22 1.40 christos * adapters.
23 1.1 ober */
24 1.33 christos #include <sys/cdefs.h>
25 1.83 nonaka __KERNEL_RCSID(0, "$NetBSD: if_iwn.c,v 1.83 2017/02/02 03:20:19 nonaka Exp $");
26 1.1 ober
27 1.40 christos #define IWN_USE_RBUF /* Use local storage for RX */
28 1.40 christos #undef IWN_HWCRYPTO /* XXX does not even compile yet */
29 1.40 christos
30 1.1 ober #include <sys/param.h>
31 1.1 ober #include <sys/sockio.h>
32 1.46 christos #include <sys/proc.h>
33 1.1 ober #include <sys/mbuf.h>
34 1.1 ober #include <sys/kernel.h>
35 1.1 ober #include <sys/socket.h>
36 1.1 ober #include <sys/systm.h>
37 1.1 ober #include <sys/malloc.h>
38 1.67 prlw1 #ifdef notyetMODULE
39 1.67 prlw1 #include <sys/module.h>
40 1.67 prlw1 #endif
41 1.17 cube #include <sys/mutex.h>
42 1.1 ober #include <sys/conf.h>
43 1.1 ober #include <sys/kauth.h>
44 1.1 ober #include <sys/callout.h>
45 1.1 ober
46 1.40 christos #include <dev/sysmon/sysmonvar.h>
47 1.40 christos
48 1.54 dyoung #include <sys/bus.h>
49 1.1 ober #include <machine/endian.h>
50 1.1 ober #include <machine/intr.h>
51 1.1 ober
52 1.1 ober #include <dev/pci/pcireg.h>
53 1.1 ober #include <dev/pci/pcivar.h>
54 1.1 ober #include <dev/pci/pcidevs.h>
55 1.1 ober
56 1.1 ober #include <net/bpf.h>
57 1.1 ober #include <net/if.h>
58 1.1 ober #include <net/if_arp.h>
59 1.1 ober #include <net/if_dl.h>
60 1.1 ober #include <net/if_media.h>
61 1.1 ober #include <net/if_types.h>
62 1.1 ober
63 1.1 ober #include <netinet/in.h>
64 1.1 ober #include <netinet/in_systm.h>
65 1.1 ober #include <netinet/in_var.h>
66 1.1 ober #include <net/if_ether.h>
67 1.1 ober #include <netinet/ip.h>
68 1.1 ober
69 1.1 ober #include <net80211/ieee80211_var.h>
70 1.1 ober #include <net80211/ieee80211_amrr.h>
71 1.1 ober #include <net80211/ieee80211_radiotap.h>
72 1.1 ober
73 1.1 ober #include <dev/firmload.h>
74 1.1 ober
75 1.1 ober #include <dev/pci/if_iwnreg.h>
76 1.1 ober #include <dev/pci/if_iwnvar.h>
77 1.1 ober
78 1.33 christos static const pci_product_id_t iwn_devices[] = {
79 1.56 msaitoh PCI_PRODUCT_INTEL_WIFI_LINK_1030_1,
80 1.56 msaitoh PCI_PRODUCT_INTEL_WIFI_LINK_1030_2,
81 1.33 christos PCI_PRODUCT_INTEL_WIFI_LINK_4965_1,
82 1.33 christos PCI_PRODUCT_INTEL_WIFI_LINK_4965_2,
83 1.56 msaitoh PCI_PRODUCT_INTEL_WIFI_LINK_4965_3,
84 1.56 msaitoh PCI_PRODUCT_INTEL_WIFI_LINK_4965_4,
85 1.33 christos PCI_PRODUCT_INTEL_WIFI_LINK_5100_1,
86 1.33 christos PCI_PRODUCT_INTEL_WIFI_LINK_5100_2,
87 1.33 christos PCI_PRODUCT_INTEL_WIFI_LINK_5150_1,
88 1.33 christos PCI_PRODUCT_INTEL_WIFI_LINK_5150_2,
89 1.33 christos PCI_PRODUCT_INTEL_WIFI_LINK_5300_1,
90 1.33 christos PCI_PRODUCT_INTEL_WIFI_LINK_5300_2,
91 1.33 christos PCI_PRODUCT_INTEL_WIFI_LINK_5350_1,
92 1.33 christos PCI_PRODUCT_INTEL_WIFI_LINK_5350_2,
93 1.33 christos PCI_PRODUCT_INTEL_WIFI_LINK_1000_1,
94 1.33 christos PCI_PRODUCT_INTEL_WIFI_LINK_1000_2,
95 1.40 christos PCI_PRODUCT_INTEL_WIFI_LINK_6000_3X3_1,
96 1.45 christos PCI_PRODUCT_INTEL_WIFI_LINK_6000_3X3_2,
97 1.40 christos PCI_PRODUCT_INTEL_WIFI_LINK_6000_IPA_1,
98 1.40 christos PCI_PRODUCT_INTEL_WIFI_LINK_6000_IPA_2,
99 1.40 christos PCI_PRODUCT_INTEL_WIFI_LINK_6050_2X2_1,
100 1.40 christos PCI_PRODUCT_INTEL_WIFI_LINK_6050_2X2_2,
101 1.40 christos PCI_PRODUCT_INTEL_WIFI_LINK_6005_2X2_1,
102 1.40 christos PCI_PRODUCT_INTEL_WIFI_LINK_6005_2X2_2,
103 1.56 msaitoh PCI_PRODUCT_INTEL_WIFI_LINK_6230_1,
104 1.56 msaitoh PCI_PRODUCT_INTEL_WIFI_LINK_6230_2,
105 1.68 christos PCI_PRODUCT_INTEL_WIFI_LINK_6235,
106 1.72 nonaka PCI_PRODUCT_INTEL_WIFI_LINK_6235_2,
107 1.72 nonaka PCI_PRODUCT_INTEL_WIFI_LINK_100_1,
108 1.72 nonaka PCI_PRODUCT_INTEL_WIFI_LINK_100_2,
109 1.72 nonaka PCI_PRODUCT_INTEL_WIFI_LINK_130_1,
110 1.72 nonaka PCI_PRODUCT_INTEL_WIFI_LINK_130_2,
111 1.72 nonaka PCI_PRODUCT_INTEL_WIFI_LINK_2230_1,
112 1.72 nonaka PCI_PRODUCT_INTEL_WIFI_LINK_2230_2,
113 1.72 nonaka PCI_PRODUCT_INTEL_WIFI_LINK_2200_1,
114 1.72 nonaka PCI_PRODUCT_INTEL_WIFI_LINK_2200_2,
115 1.72 nonaka PCI_PRODUCT_INTEL_WIFI_LINK_135_1,
116 1.72 nonaka PCI_PRODUCT_INTEL_WIFI_LINK_135_2,
117 1.72 nonaka PCI_PRODUCT_INTEL_WIFI_LINK_105_1,
118 1.72 nonaka PCI_PRODUCT_INTEL_WIFI_LINK_105_2,
119 1.1 ober };
120 1.1 ober
121 1.1 ober /*
122 1.1 ober * Supported rates for 802.11a/b/g modes (in 500Kbps unit).
123 1.1 ober */
124 1.1 ober static const struct ieee80211_rateset iwn_rateset_11a =
125 1.1 ober { 8, { 12, 18, 24, 36, 48, 72, 96, 108 } };
126 1.1 ober
127 1.1 ober static const struct ieee80211_rateset iwn_rateset_11b =
128 1.63 christos { 4, { 2, 4, 11, 22 } };
129 1.1 ober
130 1.1 ober static const struct ieee80211_rateset iwn_rateset_11g =
131 1.63 christos { 12, { 2, 4, 11, 22, 12, 18, 24, 36, 48, 72, 96, 108 } };
132 1.1 ober
133 1.40 christos static int iwn_match(device_t , struct cfdata *, void *);
134 1.40 christos static void iwn_attach(device_t , device_t , void *);
135 1.53 christos static int iwn4965_attach(struct iwn_softc *, pci_product_id_t);
136 1.53 christos static int iwn5000_attach(struct iwn_softc *, pci_product_id_t);
137 1.40 christos static void iwn_radiotap_attach(struct iwn_softc *);
138 1.40 christos static int iwn_detach(device_t , int);
139 1.40 christos #if 0
140 1.40 christos static void iwn_power(int, void *);
141 1.40 christos #endif
142 1.40 christos static bool iwn_resume(device_t, const pmf_qual_t *);
143 1.33 christos static int iwn_nic_lock(struct iwn_softc *);
144 1.33 christos static int iwn_eeprom_lock(struct iwn_softc *);
145 1.40 christos static int iwn_init_otprom(struct iwn_softc *);
146 1.33 christos static int iwn_read_prom_data(struct iwn_softc *, uint32_t, void *, int);
147 1.33 christos static int iwn_dma_contig_alloc(bus_dma_tag_t, struct iwn_dma_info *,
148 1.40 christos void **, bus_size_t, bus_size_t);
149 1.33 christos static void iwn_dma_contig_free(struct iwn_dma_info *);
150 1.33 christos static int iwn_alloc_sched(struct iwn_softc *);
151 1.33 christos static void iwn_free_sched(struct iwn_softc *);
152 1.33 christos static int iwn_alloc_kw(struct iwn_softc *);
153 1.33 christos static void iwn_free_kw(struct iwn_softc *);
154 1.40 christos static int iwn_alloc_ict(struct iwn_softc *);
155 1.40 christos static void iwn_free_ict(struct iwn_softc *);
156 1.33 christos static int iwn_alloc_fwmem(struct iwn_softc *);
157 1.33 christos static void iwn_free_fwmem(struct iwn_softc *);
158 1.33 christos static int iwn_alloc_rx_ring(struct iwn_softc *, struct iwn_rx_ring *);
159 1.33 christos static void iwn_reset_rx_ring(struct iwn_softc *, struct iwn_rx_ring *);
160 1.33 christos static void iwn_free_rx_ring(struct iwn_softc *, struct iwn_rx_ring *);
161 1.33 christos static int iwn_alloc_tx_ring(struct iwn_softc *, struct iwn_tx_ring *,
162 1.40 christos int);
163 1.33 christos static void iwn_reset_tx_ring(struct iwn_softc *, struct iwn_tx_ring *);
164 1.33 christos static void iwn_free_tx_ring(struct iwn_softc *, struct iwn_tx_ring *);
165 1.40 christos static void iwn5000_ict_reset(struct iwn_softc *);
166 1.33 christos static int iwn_read_eeprom(struct iwn_softc *);
167 1.33 christos static void iwn4965_read_eeprom(struct iwn_softc *);
168 1.53 christos
169 1.40 christos #ifdef IWN_DEBUG
170 1.40 christos static void iwn4965_print_power_group(struct iwn_softc *, int);
171 1.40 christos #endif
172 1.33 christos static void iwn5000_read_eeprom(struct iwn_softc *);
173 1.33 christos static void iwn_read_eeprom_channels(struct iwn_softc *, int, uint32_t);
174 1.40 christos static void iwn_read_eeprom_enhinfo(struct iwn_softc *);
175 1.33 christos static struct ieee80211_node *iwn_node_alloc(struct ieee80211_node_table *);
176 1.33 christos static void iwn_newassoc(struct ieee80211_node *, int);
177 1.33 christos static int iwn_media_change(struct ifnet *);
178 1.33 christos static int iwn_newstate(struct ieee80211com *, enum ieee80211_state, int);
179 1.33 christos static void iwn_iter_func(void *, struct ieee80211_node *);
180 1.33 christos static void iwn_calib_timeout(void *);
181 1.40 christos static void iwn_rx_phy(struct iwn_softc *, struct iwn_rx_desc *,
182 1.40 christos struct iwn_rx_data *);
183 1.33 christos static void iwn_rx_done(struct iwn_softc *, struct iwn_rx_desc *,
184 1.33 christos struct iwn_rx_data *);
185 1.40 christos #ifndef IEEE80211_NO_HT
186 1.40 christos static void iwn_rx_compressed_ba(struct iwn_softc *, struct iwn_rx_desc *,
187 1.40 christos struct iwn_rx_data *);
188 1.40 christos #endif
189 1.33 christos static void iwn5000_rx_calib_results(struct iwn_softc *,
190 1.40 christos struct iwn_rx_desc *, struct iwn_rx_data *);
191 1.33 christos static void iwn_rx_statistics(struct iwn_softc *, struct iwn_rx_desc *,
192 1.40 christos struct iwn_rx_data *);
193 1.33 christos static void iwn4965_tx_done(struct iwn_softc *, struct iwn_rx_desc *,
194 1.40 christos struct iwn_rx_data *);
195 1.33 christos static void iwn5000_tx_done(struct iwn_softc *, struct iwn_rx_desc *,
196 1.40 christos struct iwn_rx_data *);
197 1.33 christos static void iwn_tx_done(struct iwn_softc *, struct iwn_rx_desc *, int,
198 1.33 christos uint8_t);
199 1.33 christos static void iwn_cmd_done(struct iwn_softc *, struct iwn_rx_desc *);
200 1.33 christos static void iwn_notif_intr(struct iwn_softc *);
201 1.33 christos static void iwn_wakeup_intr(struct iwn_softc *);
202 1.33 christos static void iwn_fatal_intr(struct iwn_softc *);
203 1.33 christos static int iwn_intr(void *);
204 1.33 christos static void iwn4965_update_sched(struct iwn_softc *, int, int, uint8_t,
205 1.33 christos uint16_t);
206 1.33 christos static void iwn5000_update_sched(struct iwn_softc *, int, int, uint8_t,
207 1.33 christos uint16_t);
208 1.40 christos #ifdef notyet
209 1.33 christos static void iwn5000_reset_sched(struct iwn_softc *, int, int);
210 1.40 christos #endif
211 1.33 christos static int iwn_tx(struct iwn_softc *, struct mbuf *,
212 1.33 christos struct ieee80211_node *, int);
213 1.33 christos static void iwn_start(struct ifnet *);
214 1.33 christos static void iwn_watchdog(struct ifnet *);
215 1.33 christos static int iwn_ioctl(struct ifnet *, u_long, void *);
216 1.33 christos static int iwn_cmd(struct iwn_softc *, int, const void *, int, int);
217 1.33 christos static int iwn4965_add_node(struct iwn_softc *, struct iwn_node_info *,
218 1.33 christos int);
219 1.33 christos static int iwn5000_add_node(struct iwn_softc *, struct iwn_node_info *,
220 1.33 christos int);
221 1.33 christos static int iwn_set_link_quality(struct iwn_softc *,
222 1.33 christos struct ieee80211_node *);
223 1.33 christos static int iwn_add_broadcast_node(struct iwn_softc *, int);
224 1.33 christos static void iwn_set_led(struct iwn_softc *, uint8_t, uint8_t, uint8_t);
225 1.33 christos static int iwn_set_critical_temp(struct iwn_softc *);
226 1.33 christos static int iwn_set_timing(struct iwn_softc *, struct ieee80211_node *);
227 1.40 christos static void iwn4965_power_calibration(struct iwn_softc *, int);
228 1.33 christos static int iwn4965_set_txpower(struct iwn_softc *, int);
229 1.33 christos static int iwn5000_set_txpower(struct iwn_softc *, int);
230 1.33 christos static int iwn4965_get_rssi(const struct iwn_rx_stat *);
231 1.33 christos static int iwn5000_get_rssi(const struct iwn_rx_stat *);
232 1.33 christos static int iwn_get_noise(const struct iwn_rx_general_stats *);
233 1.33 christos static int iwn4965_get_temperature(struct iwn_softc *);
234 1.33 christos static int iwn5000_get_temperature(struct iwn_softc *);
235 1.33 christos static int iwn_init_sensitivity(struct iwn_softc *);
236 1.33 christos static void iwn_collect_noise(struct iwn_softc *,
237 1.33 christos const struct iwn_rx_general_stats *);
238 1.33 christos static int iwn4965_init_gains(struct iwn_softc *);
239 1.33 christos static int iwn5000_init_gains(struct iwn_softc *);
240 1.33 christos static int iwn4965_set_gains(struct iwn_softc *);
241 1.33 christos static int iwn5000_set_gains(struct iwn_softc *);
242 1.33 christos static void iwn_tune_sensitivity(struct iwn_softc *,
243 1.33 christos const struct iwn_rx_stats *);
244 1.33 christos static int iwn_send_sensitivity(struct iwn_softc *);
245 1.40 christos static int iwn_set_pslevel(struct iwn_softc *, int, int, int);
246 1.59 elric static int iwn5000_runtime_calib(struct iwn_softc *);
247 1.67 prlw1
248 1.67 prlw1 static int iwn_config_bt_coex_bluetooth(struct iwn_softc *);
249 1.67 prlw1 static int iwn_config_bt_coex_prio_table(struct iwn_softc *);
250 1.67 prlw1 static int iwn_config_bt_coex_adv1(struct iwn_softc *);
251 1.72 nonaka static int iwn_config_bt_coex_adv2(struct iwn_softc *);
252 1.67 prlw1
253 1.33 christos static int iwn_config(struct iwn_softc *);
254 1.72 nonaka static uint16_t iwn_get_active_dwell_time(struct iwn_softc *, uint16_t,
255 1.72 nonaka uint8_t);
256 1.72 nonaka static uint16_t iwn_limit_dwell(struct iwn_softc *, uint16_t);
257 1.72 nonaka static uint16_t iwn_get_passive_dwell_time(struct iwn_softc *, uint16_t);
258 1.33 christos static int iwn_scan(struct iwn_softc *, uint16_t);
259 1.33 christos static int iwn_auth(struct iwn_softc *);
260 1.33 christos static int iwn_run(struct iwn_softc *);
261 1.40 christos #ifdef IWN_HWCRYPTO
262 1.40 christos static int iwn_set_key(struct ieee80211com *, struct ieee80211_node *,
263 1.40 christos struct ieee80211_key *);
264 1.33 christos static void iwn_delete_key(struct ieee80211com *, struct ieee80211_node *,
265 1.33 christos struct ieee80211_key *);
266 1.33 christos #endif
267 1.40 christos static int iwn_wme_update(struct ieee80211com *);
268 1.33 christos #ifndef IEEE80211_NO_HT
269 1.33 christos static int iwn_ampdu_rx_start(struct ieee80211com *,
270 1.40 christos struct ieee80211_node *, uint8_t);
271 1.33 christos static void iwn_ampdu_rx_stop(struct ieee80211com *,
272 1.40 christos struct ieee80211_node *, uint8_t);
273 1.33 christos static int iwn_ampdu_tx_start(struct ieee80211com *,
274 1.40 christos struct ieee80211_node *, uint8_t);
275 1.33 christos static void iwn_ampdu_tx_stop(struct ieee80211com *,
276 1.40 christos struct ieee80211_node *, uint8_t);
277 1.33 christos static void iwn4965_ampdu_tx_start(struct iwn_softc *,
278 1.33 christos struct ieee80211_node *, uint8_t, uint16_t);
279 1.33 christos static void iwn4965_ampdu_tx_stop(struct iwn_softc *,
280 1.33 christos uint8_t, uint16_t);
281 1.33 christos static void iwn5000_ampdu_tx_start(struct iwn_softc *,
282 1.33 christos struct ieee80211_node *, uint8_t, uint16_t);
283 1.33 christos static void iwn5000_ampdu_tx_stop(struct iwn_softc *,
284 1.33 christos uint8_t, uint16_t);
285 1.33 christos #endif
286 1.33 christos static int iwn5000_query_calibration(struct iwn_softc *);
287 1.33 christos static int iwn5000_send_calibration(struct iwn_softc *);
288 1.40 christos static int iwn5000_send_wimax_coex(struct iwn_softc *);
289 1.72 nonaka static int iwn6000_temp_offset_calib(struct iwn_softc *);
290 1.72 nonaka static int iwn2000_temp_offset_calib(struct iwn_softc *);
291 1.33 christos static int iwn4965_post_alive(struct iwn_softc *);
292 1.33 christos static int iwn5000_post_alive(struct iwn_softc *);
293 1.33 christos static int iwn4965_load_bootcode(struct iwn_softc *, const uint8_t *,
294 1.33 christos int);
295 1.33 christos static int iwn4965_load_firmware(struct iwn_softc *);
296 1.33 christos static int iwn5000_load_firmware_section(struct iwn_softc *, uint32_t,
297 1.33 christos const uint8_t *, int);
298 1.53 christos static int iwn5000_load_firmware(struct iwn_softc *);
299 1.46 christos static int iwn_read_firmware_leg(struct iwn_softc *,
300 1.46 christos struct iwn_fw_info *);
301 1.46 christos static int iwn_read_firmware_tlv(struct iwn_softc *,
302 1.46 christos struct iwn_fw_info *, uint16_t);
303 1.33 christos static int iwn_read_firmware(struct iwn_softc *);
304 1.33 christos static int iwn_clock_wait(struct iwn_softc *);
305 1.40 christos static int iwn_apm_init(struct iwn_softc *);
306 1.33 christos static void iwn_apm_stop_master(struct iwn_softc *);
307 1.33 christos static void iwn_apm_stop(struct iwn_softc *);
308 1.33 christos static int iwn4965_nic_config(struct iwn_softc *);
309 1.33 christos static int iwn5000_nic_config(struct iwn_softc *);
310 1.40 christos static int iwn_hw_prepare(struct iwn_softc *);
311 1.33 christos static int iwn_hw_init(struct iwn_softc *);
312 1.33 christos static void iwn_hw_stop(struct iwn_softc *);
313 1.33 christos static int iwn_init(struct ifnet *);
314 1.33 christos static void iwn_stop(struct ifnet *, int);
315 1.40 christos
316 1.40 christos /* XXX MCLGETI alternative */
317 1.40 christos static struct mbuf *MCLGETIalt(struct iwn_softc *, int,
318 1.40 christos struct ifnet *, u_int);
319 1.40 christos #ifdef IWN_USE_RBUF
320 1.40 christos static struct iwn_rbuf *iwn_alloc_rbuf(struct iwn_softc *);
321 1.40 christos static void iwn_free_rbuf(struct mbuf *, void *, size_t, void *);
322 1.40 christos static int iwn_alloc_rpool(struct iwn_softc *);
323 1.40 christos static void iwn_free_rpool(struct iwn_softc *);
324 1.40 christos #endif
325 1.40 christos
326 1.76 nonaka static void iwn_fix_channel(struct ieee80211com *, struct mbuf *,
327 1.76 nonaka struct iwn_rx_stat *);
328 1.1 ober
329 1.1 ober #ifdef IWN_DEBUG
330 1.1 ober #define DPRINTF(x) do { if (iwn_debug > 0) printf x; } while (0)
331 1.1 ober #define DPRINTFN(n, x) do { if (iwn_debug >= (n)) printf x; } while (0)
332 1.58 elric int iwn_debug = 0;
333 1.1 ober #else
334 1.1 ober #define DPRINTF(x)
335 1.1 ober #define DPRINTFN(n, x)
336 1.1 ober #endif
337 1.33 christos
338 1.8 blymn CFATTACH_DECL_NEW(iwn, sizeof(struct iwn_softc), iwn_match, iwn_attach,
339 1.40 christos iwn_detach, NULL);
340 1.1 ober
341 1.1 ober static int
342 1.29 cegger iwn_match(device_t parent, cfdata_t match __unused, void *aux)
343 1.1 ober {
344 1.2 ober struct pci_attach_args *pa = aux;
345 1.33 christos size_t i;
346 1.8 blymn
347 1.2 ober if (PCI_VENDOR(pa->pa_id) != PCI_VENDOR_INTEL)
348 1.2 ober return 0;
349 1.1 ober
350 1.33 christos for (i = 0; i < __arraycount(iwn_devices); i++)
351 1.33 christos if (PCI_PRODUCT(pa->pa_id) == iwn_devices[i])
352 1.33 christos return 1;
353 1.1 ober
354 1.2 ober return 0;
355 1.1 ober }
356 1.1 ober
357 1.1 ober static void
358 1.1 ober iwn_attach(device_t parent __unused, device_t self, void *aux)
359 1.1 ober {
360 1.1 ober struct iwn_softc *sc = device_private(self);
361 1.1 ober struct ieee80211com *ic = &sc->sc_ic;
362 1.1 ober struct ifnet *ifp = &sc->sc_ec.ec_if;
363 1.1 ober struct pci_attach_args *pa = aux;
364 1.1 ober const char *intrstr;
365 1.33 christos pcireg_t memtype, reg;
366 1.40 christos int i, error;
367 1.71 christos char intrbuf[PCI_INTRSTR_LEN];
368 1.1 ober
369 1.1 ober sc->sc_dev = self;
370 1.2 ober sc->sc_pct = pa->pa_pc;
371 1.1 ober sc->sc_pcitag = pa->pa_tag;
372 1.40 christos sc->sc_dmat = pa->pa_dmat;
373 1.47 christos mutex_init(&sc->sc_mtx, MUTEX_DEFAULT, IPL_NONE);
374 1.1 ober
375 1.1 ober callout_init(&sc->calib_to, 0);
376 1.1 ober callout_setfunc(&sc->calib_to, iwn_calib_timeout, sc);
377 1.8 blymn
378 1.62 drochner pci_aprint_devinfo(pa, NULL);
379 1.8 blymn
380 1.33 christos /*
381 1.33 christos * Get the offset of the PCI Express Capability Structure in PCI
382 1.40 christos * Configuration Space.
383 1.33 christos */
384 1.33 christos error = pci_get_capability(sc->sc_pct, sc->sc_pcitag,
385 1.33 christos PCI_CAP_PCIEXPRESS, &sc->sc_cap_off, NULL);
386 1.33 christos if (error == 0) {
387 1.73 nonaka aprint_error_dev(self,
388 1.73 nonaka "PCIe capability structure not found!\n");
389 1.33 christos return;
390 1.33 christos }
391 1.1 ober
392 1.33 christos /* Clear device-specific "PCI retry timeout" register (41h). */
393 1.33 christos reg = pci_conf_read(sc->sc_pct, sc->sc_pcitag, 0x40);
394 1.53 christos if (reg & 0xff00)
395 1.53 christos pci_conf_write(sc->sc_pct, sc->sc_pcitag, 0x40, reg & ~0xff00);
396 1.1 ober
397 1.83 nonaka /* Enable bus-mastering. */
398 1.40 christos /* XXX verify the bus-mastering is really needed (not in OpenBSD) */
399 1.33 christos reg = pci_conf_read(sc->sc_pct, sc->sc_pcitag, PCI_COMMAND_STATUS_REG);
400 1.33 christos reg |= PCI_COMMAND_MASTER_ENABLE;
401 1.33 christos pci_conf_write(sc->sc_pct, sc->sc_pcitag, PCI_COMMAND_STATUS_REG, reg);
402 1.1 ober
403 1.1 ober memtype = pci_mapreg_type(pa->pa_pc, pa->pa_tag, IWN_PCI_BAR0);
404 1.1 ober error = pci_mapreg_map(pa, IWN_PCI_BAR0, memtype, 0, &sc->sc_st,
405 1.1 ober &sc->sc_sh, NULL, &sc->sc_sz);
406 1.1 ober if (error != 0) {
407 1.73 nonaka aprint_error_dev(self, "can't map mem space\n");
408 1.1 ober return;
409 1.1 ober }
410 1.1 ober
411 1.33 christos /* Install interrupt handler. */
412 1.83 nonaka error = pci_intr_alloc(pa, &sc->sc_pihp, NULL, 0);
413 1.83 nonaka if (error) {
414 1.83 nonaka aprint_error_dev(self, "can't allocate interrupt\n");
415 1.83 nonaka goto unmap;
416 1.1 ober }
417 1.83 nonaka reg = pci_conf_read(sc->sc_pct, sc->sc_pcitag, PCI_COMMAND_STATUS_REG);
418 1.83 nonaka if (pci_intr_type(sc->sc_pct, sc->sc_pihp[0]) == PCI_INTR_TYPE_INTX)
419 1.83 nonaka CLR(reg, PCI_COMMAND_INTERRUPT_DISABLE);
420 1.83 nonaka else
421 1.83 nonaka SET(reg, PCI_COMMAND_INTERRUPT_DISABLE);
422 1.83 nonaka pci_conf_write(sc->sc_pct, sc->sc_pcitag, PCI_COMMAND_STATUS_REG, reg);
423 1.83 nonaka intrstr = pci_intr_string(sc->sc_pct, sc->sc_pihp[0], intrbuf,
424 1.83 nonaka sizeof(intrbuf));
425 1.83 nonaka sc->sc_ih = pci_intr_establish_xname(sc->sc_pct, sc->sc_pihp[0],
426 1.83 nonaka IPL_NET, iwn_intr, sc, device_xname(self));
427 1.1 ober if (sc->sc_ih == NULL) {
428 1.73 nonaka aprint_error_dev(self, "can't establish interrupt");
429 1.1 ober if (intrstr != NULL)
430 1.1 ober aprint_error(" at %s", intrstr);
431 1.1 ober aprint_error("\n");
432 1.83 nonaka goto failia;
433 1.1 ober }
434 1.1 ober aprint_normal_dev(self, "interrupting at %s\n", intrstr);
435 1.1 ober
436 1.53 christos /* Read hardware revision and attach. */
437 1.74 nonaka sc->hw_type =
438 1.74 nonaka (IWN_READ(sc, IWN_HW_REV) & IWN_HW_REV_TYPE_MASK)
439 1.74 nonaka >> IWN_HW_REV_TYPE_SHIFT;
440 1.53 christos if (sc->hw_type == IWN_HW_REV_TYPE_4965)
441 1.53 christos error = iwn4965_attach(sc, PCI_PRODUCT(pa->pa_id));
442 1.53 christos else
443 1.53 christos error = iwn5000_attach(sc, PCI_PRODUCT(pa->pa_id));
444 1.53 christos if (error != 0) {
445 1.73 nonaka aprint_error_dev(self, "could not attach device\n");
446 1.83 nonaka goto failih;
447 1.63 christos }
448 1.33 christos
449 1.40 christos if ((error = iwn_hw_prepare(sc)) != 0) {
450 1.73 nonaka aprint_error_dev(self, "hardware not ready\n");
451 1.83 nonaka goto failih;
452 1.33 christos }
453 1.33 christos
454 1.33 christos /* Read MAC address, channels, etc from EEPROM. */
455 1.33 christos if ((error = iwn_read_eeprom(sc)) != 0) {
456 1.73 nonaka aprint_error_dev(self, "could not read EEPROM\n");
457 1.83 nonaka goto failih;
458 1.1 ober }
459 1.8 blymn
460 1.33 christos /* Allocate DMA memory for firmware transfers. */
461 1.1 ober if ((error = iwn_alloc_fwmem(sc)) != 0) {
462 1.73 nonaka aprint_error_dev(self,
463 1.73 nonaka "could not allocate memory for firmware\n");
464 1.83 nonaka goto failih;
465 1.1 ober }
466 1.1 ober
467 1.33 christos /* Allocate "Keep Warm" page. */
468 1.1 ober if ((error = iwn_alloc_kw(sc)) != 0) {
469 1.73 nonaka aprint_error_dev(self, "could not allocate keep warm page\n");
470 1.1 ober goto fail1;
471 1.1 ober }
472 1.1 ober
473 1.40 christos /* Allocate ICT table for 5000 Series. */
474 1.40 christos if (sc->hw_type != IWN_HW_REV_TYPE_4965 &&
475 1.40 christos (error = iwn_alloc_ict(sc)) != 0) {
476 1.73 nonaka aprint_error_dev(self, "could not allocate ICT table\n");
477 1.40 christos goto fail2;
478 1.40 christos }
479 1.40 christos
480 1.33 christos /* Allocate TX scheduler "rings". */
481 1.33 christos if ((error = iwn_alloc_sched(sc)) != 0) {
482 1.73 nonaka aprint_error_dev(self,
483 1.73 nonaka "could not allocate TX scheduler rings\n");
484 1.40 christos goto fail3;
485 1.1 ober }
486 1.1 ober
487 1.40 christos #ifdef IWN_USE_RBUF
488 1.33 christos /* Allocate RX buffers. */
489 1.1 ober if ((error = iwn_alloc_rpool(sc)) != 0) {
490 1.33 christos aprint_error_dev(self, "could not allocate RX buffers\n");
491 1.1 ober goto fail3;
492 1.1 ober }
493 1.40 christos #endif
494 1.1 ober
495 1.53 christos /* Allocate TX rings (16 on 4965AGN, 20 on >=5000). */
496 1.53 christos for (i = 0; i < sc->ntxqs; i++) {
497 1.40 christos if ((error = iwn_alloc_tx_ring(sc, &sc->txq[i], i)) != 0) {
498 1.73 nonaka aprint_error_dev(self,
499 1.73 nonaka "could not allocate TX ring %d\n", i);
500 1.1 ober goto fail4;
501 1.1 ober }
502 1.1 ober }
503 1.8 blymn
504 1.33 christos /* Allocate RX ring. */
505 1.40 christos if ((error = iwn_alloc_rx_ring(sc, &sc->rxq)) != 0) {
506 1.73 nonaka aprint_error_dev(self, "could not allocate RX ring\n");
507 1.2 ober goto fail4;
508 1.1 ober }
509 1.1 ober
510 1.33 christos /* Clear pending interrupts. */
511 1.33 christos IWN_WRITE(sc, IWN_INT, 0xffffffff);
512 1.33 christos
513 1.40 christos /* Count the number of available chains. */
514 1.40 christos sc->ntxchains =
515 1.40 christos ((sc->txchainmask >> 2) & 1) +
516 1.40 christos ((sc->txchainmask >> 1) & 1) +
517 1.40 christos ((sc->txchainmask >> 0) & 1);
518 1.40 christos sc->nrxchains =
519 1.40 christos ((sc->rxchainmask >> 2) & 1) +
520 1.40 christos ((sc->rxchainmask >> 1) & 1) +
521 1.40 christos ((sc->rxchainmask >> 0) & 1);
522 1.40 christos aprint_normal_dev(self, "MIMO %dT%dR, %.4s, address %s\n",
523 1.40 christos sc->ntxchains, sc->nrxchains, sc->eeprom_domain,
524 1.40 christos ether_sprintf(ic->ic_myaddr));
525 1.28 blymn
526 1.1 ober ic->ic_ifp = ifp;
527 1.1 ober ic->ic_phytype = IEEE80211_T_OFDM; /* not only, but not used */
528 1.1 ober ic->ic_opmode = IEEE80211_M_STA; /* default to BSS mode */
529 1.1 ober ic->ic_state = IEEE80211_S_INIT;
530 1.1 ober
531 1.33 christos /* Set device capabilities. */
532 1.40 christos /* XXX OpenBSD has IEEE80211_C_WEP, IEEE80211_C_RSN,
533 1.40 christos * and IEEE80211_C_PMGT too. */
534 1.1 ober ic->ic_caps =
535 1.1 ober IEEE80211_C_IBSS | /* IBSS mode support */
536 1.33 christos IEEE80211_C_WPA | /* 802.11i */
537 1.1 ober IEEE80211_C_MONITOR | /* monitor mode supported */
538 1.1 ober IEEE80211_C_TXPMGT | /* tx power management */
539 1.1 ober IEEE80211_C_SHSLOT | /* short slot time supported */
540 1.33 christos IEEE80211_C_SHPREAMBLE | /* short preamble supported */
541 1.15 christos IEEE80211_C_WME; /* 802.11e */
542 1.8 blymn
543 1.40 christos #ifndef IEEE80211_NO_HT
544 1.53 christos if (sc->sc_flags & IWN_FLAG_HAS_11N) {
545 1.53 christos /* Set HT capabilities. */
546 1.53 christos ic->ic_htcaps =
547 1.40 christos #if IWN_RBUF_SIZE == 8192
548 1.53 christos IEEE80211_HTCAP_AMSDU7935 |
549 1.40 christos #endif
550 1.53 christos IEEE80211_HTCAP_CBW20_40 |
551 1.53 christos IEEE80211_HTCAP_SGI20 |
552 1.53 christos IEEE80211_HTCAP_SGI40;
553 1.53 christos if (sc->hw_type != IWN_HW_REV_TYPE_4965)
554 1.53 christos ic->ic_htcaps |= IEEE80211_HTCAP_GF;
555 1.53 christos if (sc->hw_type == IWN_HW_REV_TYPE_6050)
556 1.53 christos ic->ic_htcaps |= IEEE80211_HTCAP_SMPS_DYN;
557 1.53 christos else
558 1.53 christos ic->ic_htcaps |= IEEE80211_HTCAP_SMPS_DIS;
559 1.53 christos }
560 1.40 christos #endif /* !IEEE80211_NO_HT */
561 1.40 christos
562 1.40 christos /* Set supported legacy rates. */
563 1.1 ober ic->ic_sup_rates[IEEE80211_MODE_11B] = iwn_rateset_11b;
564 1.1 ober ic->ic_sup_rates[IEEE80211_MODE_11G] = iwn_rateset_11g;
565 1.33 christos if (sc->sc_flags & IWN_FLAG_HAS_5GHZ) {
566 1.33 christos ic->ic_sup_rates[IEEE80211_MODE_11A] = iwn_rateset_11a;
567 1.33 christos }
568 1.40 christos #ifndef IEEE80211_NO_HT
569 1.53 christos if (sc->sc_flags & IWN_FLAG_HAS_11N) {
570 1.53 christos /* Set supported HT rates. */
571 1.53 christos ic->ic_sup_mcs[0] = 0xff; /* MCS 0-7 */
572 1.53 christos if (sc->nrxchains > 1)
573 1.53 christos ic->ic_sup_mcs[1] = 0xff; /* MCS 7-15 */
574 1.53 christos if (sc->nrxchains > 2)
575 1.53 christos ic->ic_sup_mcs[2] = 0xff; /* MCS 16-23 */
576 1.53 christos }
577 1.40 christos #endif
578 1.1 ober
579 1.33 christos /* IBSS channel undefined for now. */
580 1.1 ober ic->ic_ibss_chan = &ic->ic_channels[0];
581 1.1 ober
582 1.1 ober ifp->if_softc = sc;
583 1.1 ober ifp->if_flags = IFF_BROADCAST | IFF_SIMPLEX | IFF_MULTICAST;
584 1.1 ober ifp->if_init = iwn_init;
585 1.1 ober ifp->if_ioctl = iwn_ioctl;
586 1.1 ober ifp->if_start = iwn_start;
587 1.51 jruoho ifp->if_stop = iwn_stop;
588 1.1 ober ifp->if_watchdog = iwn_watchdog;
589 1.1 ober IFQ_SET_READY(&ifp->if_snd);
590 1.1 ober memcpy(ifp->if_xname, device_xname(self), IFNAMSIZ);
591 1.1 ober
592 1.1 ober if_attach(ifp);
593 1.81 ozaki if_deferred_start_init(ifp, NULL);
594 1.1 ober ieee80211_ifattach(ic);
595 1.1 ober ic->ic_node_alloc = iwn_node_alloc;
596 1.1 ober ic->ic_newassoc = iwn_newassoc;
597 1.40 christos #ifdef IWN_HWCRYPTO
598 1.40 christos ic->ic_crypto.cs_key_set = iwn_set_key;
599 1.40 christos ic->ic_crypto.cs_key_delete = iwn_delete_key;
600 1.40 christos #endif
601 1.1 ober ic->ic_wme.wme_update = iwn_wme_update;
602 1.33 christos #ifndef IEEE80211_NO_HT
603 1.33 christos ic->ic_ampdu_rx_start = iwn_ampdu_rx_start;
604 1.33 christos ic->ic_ampdu_rx_stop = iwn_ampdu_rx_stop;
605 1.33 christos ic->ic_ampdu_tx_start = iwn_ampdu_tx_start;
606 1.33 christos ic->ic_ampdu_tx_stop = iwn_ampdu_tx_stop;
607 1.33 christos #endif
608 1.1 ober
609 1.33 christos /* Override 802.11 state transition machine. */
610 1.1 ober sc->sc_newstate = ic->ic_newstate;
611 1.1 ober ic->ic_newstate = iwn_newstate;
612 1.1 ober ieee80211_media_init(ic, iwn_media_change, ieee80211_media_status);
613 1.1 ober
614 1.1 ober sc->amrr.amrr_min_success_threshold = 1;
615 1.1 ober sc->amrr.amrr_max_success_threshold = 15;
616 1.1 ober
617 1.40 christos iwn_radiotap_attach(sc);
618 1.40 christos
619 1.44 christos /*
620 1.44 christos * XXX for NetBSD, OpenBSD timeout_set replaced by
621 1.44 christos * callout_init and callout_setfunc, above.
622 1.44 christos */
623 1.40 christos
624 1.32 tsutsui if (pmf_device_register(self, NULL, iwn_resume))
625 1.32 tsutsui pmf_class_network_register(self, ifp);
626 1.32 tsutsui else
627 1.1 ober aprint_error_dev(self, "couldn't establish power handler\n");
628 1.1 ober
629 1.44 christos /* XXX NetBSD add call to ieee80211_announce for dmesg. */
630 1.1 ober ieee80211_announce(ic);
631 1.1 ober
632 1.1 ober return;
633 1.1 ober
634 1.33 christos /* Free allocated memory if something failed during attachment. */
635 1.1 ober fail4: while (--i >= 0)
636 1.1 ober iwn_free_tx_ring(sc, &sc->txq[i]);
637 1.40 christos #ifdef IWN_USE_RBUF
638 1.1 ober iwn_free_rpool(sc);
639 1.40 christos #endif
640 1.40 christos iwn_free_sched(sc);
641 1.40 christos fail3: if (sc->ict != NULL)
642 1.40 christos iwn_free_ict(sc);
643 1.1 ober fail2: iwn_free_kw(sc);
644 1.1 ober fail1: iwn_free_fwmem(sc);
645 1.83 nonaka failih: pci_intr_disestablish(sc->sc_pct, sc->sc_ih);
646 1.83 nonaka sc->sc_ih = NULL;
647 1.83 nonaka failia: pci_intr_release(sc->sc_pct, sc->sc_pihp, 1);
648 1.83 nonaka sc->sc_pihp = NULL;
649 1.83 nonaka unmap: bus_space_unmap(sc->sc_st, sc->sc_sh, sc->sc_sz);
650 1.1 ober }
651 1.1 ober
652 1.53 christos int
653 1.53 christos iwn4965_attach(struct iwn_softc *sc, pci_product_id_t pid)
654 1.53 christos {
655 1.53 christos struct iwn_ops *ops = &sc->ops;
656 1.53 christos
657 1.53 christos ops->load_firmware = iwn4965_load_firmware;
658 1.53 christos ops->read_eeprom = iwn4965_read_eeprom;
659 1.53 christos ops->post_alive = iwn4965_post_alive;
660 1.53 christos ops->nic_config = iwn4965_nic_config;
661 1.67 prlw1 ops->config_bt_coex = iwn_config_bt_coex_bluetooth;
662 1.53 christos ops->update_sched = iwn4965_update_sched;
663 1.53 christos ops->get_temperature = iwn4965_get_temperature;
664 1.53 christos ops->get_rssi = iwn4965_get_rssi;
665 1.53 christos ops->set_txpower = iwn4965_set_txpower;
666 1.53 christos ops->init_gains = iwn4965_init_gains;
667 1.53 christos ops->set_gains = iwn4965_set_gains;
668 1.53 christos ops->add_node = iwn4965_add_node;
669 1.53 christos ops->tx_done = iwn4965_tx_done;
670 1.53 christos #ifndef IEEE80211_NO_HT
671 1.53 christos ops->ampdu_tx_start = iwn4965_ampdu_tx_start;
672 1.53 christos ops->ampdu_tx_stop = iwn4965_ampdu_tx_stop;
673 1.53 christos #endif
674 1.53 christos sc->ntxqs = IWN4965_NTXQUEUES;
675 1.53 christos sc->ndmachnls = IWN4965_NDMACHNLS;
676 1.53 christos sc->broadcast_id = IWN4965_ID_BROADCAST;
677 1.53 christos sc->rxonsz = IWN4965_RXONSZ;
678 1.53 christos sc->schedsz = IWN4965_SCHEDSZ;
679 1.53 christos sc->fw_text_maxsz = IWN4965_FW_TEXT_MAXSZ;
680 1.53 christos sc->fw_data_maxsz = IWN4965_FW_DATA_MAXSZ;
681 1.53 christos sc->fwsz = IWN4965_FWSZ;
682 1.53 christos sc->sched_txfact_addr = IWN4965_SCHED_TXFACT;
683 1.53 christos sc->limits = &iwn4965_sensitivity_limits;
684 1.53 christos sc->fwname = "iwlwifi-4965-2.ucode";
685 1.53 christos /* Override chains masks, ROM is known to be broken. */
686 1.53 christos sc->txchainmask = IWN_ANT_AB;
687 1.53 christos sc->rxchainmask = IWN_ANT_ABC;
688 1.53 christos
689 1.53 christos return 0;
690 1.53 christos }
691 1.53 christos
692 1.53 christos int
693 1.53 christos iwn5000_attach(struct iwn_softc *sc, pci_product_id_t pid)
694 1.33 christos {
695 1.53 christos struct iwn_ops *ops = &sc->ops;
696 1.53 christos
697 1.53 christos ops->load_firmware = iwn5000_load_firmware;
698 1.53 christos ops->read_eeprom = iwn5000_read_eeprom;
699 1.53 christos ops->post_alive = iwn5000_post_alive;
700 1.53 christos ops->nic_config = iwn5000_nic_config;
701 1.67 prlw1 ops->config_bt_coex = iwn_config_bt_coex_bluetooth;
702 1.53 christos ops->update_sched = iwn5000_update_sched;
703 1.53 christos ops->get_temperature = iwn5000_get_temperature;
704 1.53 christos ops->get_rssi = iwn5000_get_rssi;
705 1.53 christos ops->set_txpower = iwn5000_set_txpower;
706 1.53 christos ops->init_gains = iwn5000_init_gains;
707 1.53 christos ops->set_gains = iwn5000_set_gains;
708 1.53 christos ops->add_node = iwn5000_add_node;
709 1.53 christos ops->tx_done = iwn5000_tx_done;
710 1.53 christos #ifndef IEEE80211_NO_HT
711 1.53 christos ops->ampdu_tx_start = iwn5000_ampdu_tx_start;
712 1.53 christos ops->ampdu_tx_stop = iwn5000_ampdu_tx_stop;
713 1.53 christos #endif
714 1.53 christos sc->ntxqs = IWN5000_NTXQUEUES;
715 1.53 christos sc->ndmachnls = IWN5000_NDMACHNLS;
716 1.53 christos sc->broadcast_id = IWN5000_ID_BROADCAST;
717 1.53 christos sc->rxonsz = IWN5000_RXONSZ;
718 1.53 christos sc->schedsz = IWN5000_SCHEDSZ;
719 1.53 christos sc->fw_text_maxsz = IWN5000_FW_TEXT_MAXSZ;
720 1.53 christos sc->fw_data_maxsz = IWN5000_FW_DATA_MAXSZ;
721 1.53 christos sc->fwsz = IWN5000_FWSZ;
722 1.53 christos sc->sched_txfact_addr = IWN5000_SCHED_TXFACT;
723 1.33 christos
724 1.33 christos switch (sc->hw_type) {
725 1.33 christos case IWN_HW_REV_TYPE_5100:
726 1.40 christos sc->limits = &iwn5000_sensitivity_limits;
727 1.40 christos sc->fwname = "iwlwifi-5000-2.ucode";
728 1.53 christos /* Override chains masks, ROM is known to be broken. */
729 1.40 christos sc->txchainmask = IWN_ANT_B;
730 1.40 christos sc->rxchainmask = IWN_ANT_AB;
731 1.33 christos break;
732 1.33 christos case IWN_HW_REV_TYPE_5150:
733 1.40 christos sc->limits = &iwn5150_sensitivity_limits;
734 1.40 christos sc->fwname = "iwlwifi-5150-2.ucode";
735 1.33 christos break;
736 1.33 christos case IWN_HW_REV_TYPE_5300:
737 1.33 christos case IWN_HW_REV_TYPE_5350:
738 1.40 christos sc->limits = &iwn5000_sensitivity_limits;
739 1.40 christos sc->fwname = "iwlwifi-5000-2.ucode";
740 1.33 christos break;
741 1.33 christos case IWN_HW_REV_TYPE_1000:
742 1.40 christos sc->limits = &iwn1000_sensitivity_limits;
743 1.72 nonaka if (pid == PCI_PRODUCT_INTEL_WIFI_LINK_100_1 ||
744 1.72 nonaka pid == PCI_PRODUCT_INTEL_WIFI_LINK_100_2)
745 1.72 nonaka sc->fwname = "iwlwifi-100-5.ucode";
746 1.72 nonaka else
747 1.72 nonaka sc->fwname = "iwlwifi-1000-3.ucode";
748 1.33 christos break;
749 1.33 christos case IWN_HW_REV_TYPE_6000:
750 1.40 christos sc->limits = &iwn6000_sensitivity_limits;
751 1.40 christos sc->fwname = "iwlwifi-6000-4.ucode";
752 1.53 christos if (pid == PCI_PRODUCT_INTEL_WIFI_LINK_6000_IPA_1 ||
753 1.53 christos pid == PCI_PRODUCT_INTEL_WIFI_LINK_6000_IPA_2) {
754 1.40 christos sc->sc_flags |= IWN_FLAG_INTERNAL_PA;
755 1.53 christos /* Override chains masks, ROM is known to be broken. */
756 1.40 christos sc->txchainmask = IWN_ANT_BC;
757 1.40 christos sc->rxchainmask = IWN_ANT_BC;
758 1.40 christos }
759 1.33 christos break;
760 1.33 christos case IWN_HW_REV_TYPE_6050:
761 1.40 christos sc->limits = &iwn6000_sensitivity_limits;
762 1.55 msaitoh sc->fwname = "iwlwifi-6050-5.ucode";
763 1.40 christos break;
764 1.40 christos case IWN_HW_REV_TYPE_6005:
765 1.40 christos sc->limits = &iwn6000_sensitivity_limits;
766 1.67 prlw1 /* Type 6030 cards return IWN_HW_REV_TYPE_6005 */
767 1.67 prlw1 if (pid == PCI_PRODUCT_INTEL_WIFI_LINK_1030_1 ||
768 1.67 prlw1 pid == PCI_PRODUCT_INTEL_WIFI_LINK_1030_2 ||
769 1.67 prlw1 pid == PCI_PRODUCT_INTEL_WIFI_LINK_6230_1 ||
770 1.68 christos pid == PCI_PRODUCT_INTEL_WIFI_LINK_6230_2 ||
771 1.72 nonaka pid == PCI_PRODUCT_INTEL_WIFI_LINK_6235 ||
772 1.72 nonaka pid == PCI_PRODUCT_INTEL_WIFI_LINK_6235_2) {
773 1.67 prlw1 sc->fwname = "iwlwifi-6000g2b-6.ucode";
774 1.67 prlw1 ops->config_bt_coex = iwn_config_bt_coex_adv1;
775 1.67 prlw1 }
776 1.67 prlw1 else
777 1.67 prlw1 sc->fwname = "iwlwifi-6000g2a-5.ucode";
778 1.33 christos break;
779 1.72 nonaka case IWN_HW_REV_TYPE_2030:
780 1.72 nonaka sc->limits = &iwn2000_sensitivity_limits;
781 1.72 nonaka sc->fwname = "iwlwifi-2030-6.ucode";
782 1.72 nonaka ops->config_bt_coex = iwn_config_bt_coex_adv2;
783 1.72 nonaka break;
784 1.72 nonaka case IWN_HW_REV_TYPE_2000:
785 1.72 nonaka sc->limits = &iwn2000_sensitivity_limits;
786 1.72 nonaka sc->fwname = "iwlwifi-2000-6.ucode";
787 1.72 nonaka break;
788 1.72 nonaka case IWN_HW_REV_TYPE_135:
789 1.72 nonaka sc->limits = &iwn2000_sensitivity_limits;
790 1.72 nonaka sc->fwname = "iwlwifi-135-6.ucode";
791 1.72 nonaka ops->config_bt_coex = iwn_config_bt_coex_adv2;
792 1.72 nonaka break;
793 1.72 nonaka case IWN_HW_REV_TYPE_105:
794 1.72 nonaka sc->limits = &iwn2000_sensitivity_limits;
795 1.72 nonaka sc->fwname = "iwlwifi-105-6.ucode";
796 1.72 nonaka break;
797 1.33 christos default:
798 1.40 christos aprint_normal(": adapter type %d not supported\n", sc->hw_type);
799 1.53 christos return ENOTSUP;
800 1.33 christos }
801 1.53 christos return 0;
802 1.33 christos }
803 1.33 christos
804 1.1 ober /*
805 1.1 ober * Attach the interface to 802.11 radiotap.
806 1.1 ober */
807 1.1 ober static void
808 1.1 ober iwn_radiotap_attach(struct iwn_softc *sc)
809 1.1 ober {
810 1.1 ober struct ifnet *ifp = sc->sc_ic.ic_ifp;
811 1.36 pooka
812 1.38 joerg bpf_attach2(ifp, DLT_IEEE802_11_RADIO,
813 1.40 christos sizeof (struct ieee80211_frame) + IEEE80211_RADIOTAP_HDRLEN,
814 1.36 pooka &sc->sc_drvbpf);
815 1.1 ober
816 1.1 ober sc->sc_rxtap_len = sizeof sc->sc_rxtapu;
817 1.1 ober sc->sc_rxtap.wr_ihdr.it_len = htole16(sc->sc_rxtap_len);
818 1.1 ober sc->sc_rxtap.wr_ihdr.it_present = htole32(IWN_RX_RADIOTAP_PRESENT);
819 1.1 ober
820 1.1 ober sc->sc_txtap_len = sizeof sc->sc_txtapu;
821 1.1 ober sc->sc_txtap.wt_ihdr.it_len = htole16(sc->sc_txtap_len);
822 1.1 ober sc->sc_txtap.wt_ihdr.it_present = htole32(IWN_TX_RADIOTAP_PRESENT);
823 1.1 ober }
824 1.1 ober
825 1.1 ober static int
826 1.40 christos iwn_detach(device_t self, int flags __unused)
827 1.1 ober {
828 1.40 christos struct iwn_softc *sc = device_private(self);
829 1.40 christos struct ifnet *ifp = sc->sc_ic.ic_ifp;
830 1.40 christos int qid;
831 1.40 christos
832 1.40 christos callout_stop(&sc->calib_to);
833 1.40 christos
834 1.40 christos /* Uninstall interrupt handler. */
835 1.40 christos if (sc->sc_ih != NULL)
836 1.40 christos pci_intr_disestablish(sc->sc_pct, sc->sc_ih);
837 1.83 nonaka if (sc->sc_pihp != NULL)
838 1.83 nonaka pci_intr_release(sc->sc_pct, sc->sc_pihp, 1);
839 1.40 christos
840 1.40 christos /* Free DMA resources. */
841 1.40 christos iwn_free_rx_ring(sc, &sc->rxq);
842 1.53 christos for (qid = 0; qid < sc->ntxqs; qid++)
843 1.40 christos iwn_free_tx_ring(sc, &sc->txq[qid]);
844 1.40 christos #ifdef IWN_USE_RBUF
845 1.40 christos iwn_free_rpool(sc);
846 1.40 christos #endif
847 1.40 christos iwn_free_sched(sc);
848 1.40 christos iwn_free_kw(sc);
849 1.40 christos if (sc->ict != NULL)
850 1.40 christos iwn_free_ict(sc);
851 1.40 christos iwn_free_fwmem(sc);
852 1.1 ober
853 1.40 christos bus_space_unmap(sc->sc_st, sc->sc_sh, sc->sc_sz);
854 1.1 ober
855 1.40 christos ieee80211_ifdetach(&sc->sc_ic);
856 1.40 christos if_detach(ifp);
857 1.1 ober
858 1.40 christos return 0;
859 1.40 christos }
860 1.1 ober
861 1.40 christos #if 0
862 1.40 christos /*
863 1.40 christos * XXX Investigate if clearing the PCI retry timeout could eliminate
864 1.40 christos * the repeated scan calls. Also the calls to if_init and if_start
865 1.40 christos * are similar to the effect of adding the call to ifioctl_common .
866 1.40 christos */
867 1.40 christos static void
868 1.40 christos iwn_power(int why, void *arg)
869 1.40 christos {
870 1.40 christos struct iwn_softc *sc = arg;
871 1.40 christos struct ifnet *ifp;
872 1.40 christos pcireg_t reg;
873 1.40 christos int s;
874 1.8 blymn
875 1.40 christos if (why != PWR_RESUME)
876 1.40 christos return;
877 1.8 blymn
878 1.40 christos /* Clear device-specific "PCI retry timeout" register (41h). */
879 1.40 christos reg = pci_conf_read(sc->sc_pct, sc->sc_pcitag, 0x40);
880 1.53 christos if (reg & 0xff00)
881 1.53 christos pci_conf_write(sc->sc_pct, sc->sc_pcitag, 0x40, reg & ~0xff00);
882 1.1 ober
883 1.40 christos s = splnet();
884 1.40 christos ifp = &sc->sc_ic.ic_if;
885 1.40 christos if (ifp->if_flags & IFF_UP) {
886 1.40 christos ifp->if_init(ifp);
887 1.40 christos if (ifp->if_flags & IFF_RUNNING)
888 1.40 christos ifp->if_start(ifp);
889 1.40 christos }
890 1.40 christos splx(s);
891 1.33 christos }
892 1.33 christos #endif
893 1.33 christos
894 1.40 christos static bool
895 1.40 christos iwn_resume(device_t dv, const pmf_qual_t *qual)
896 1.40 christos {
897 1.40 christos return true;
898 1.40 christos }
899 1.40 christos
900 1.33 christos static int
901 1.33 christos iwn_nic_lock(struct iwn_softc *sc)
902 1.33 christos {
903 1.33 christos int ntries;
904 1.33 christos
905 1.33 christos /* Request exclusive access to NIC. */
906 1.33 christos IWN_SETBITS(sc, IWN_GP_CNTRL, IWN_GP_CNTRL_MAC_ACCESS_REQ);
907 1.33 christos
908 1.33 christos /* Spin until we actually get the lock. */
909 1.33 christos for (ntries = 0; ntries < 1000; ntries++) {
910 1.33 christos if ((IWN_READ(sc, IWN_GP_CNTRL) &
911 1.33 christos (IWN_GP_CNTRL_MAC_ACCESS_ENA | IWN_GP_CNTRL_SLEEP)) ==
912 1.33 christos IWN_GP_CNTRL_MAC_ACCESS_ENA)
913 1.33 christos return 0;
914 1.33 christos DELAY(10);
915 1.33 christos }
916 1.33 christos return ETIMEDOUT;
917 1.33 christos }
918 1.33 christos
919 1.33 christos static __inline void
920 1.33 christos iwn_nic_unlock(struct iwn_softc *sc)
921 1.33 christos {
922 1.33 christos IWN_CLRBITS(sc, IWN_GP_CNTRL, IWN_GP_CNTRL_MAC_ACCESS_REQ);
923 1.33 christos }
924 1.33 christos
925 1.33 christos static __inline uint32_t
926 1.33 christos iwn_prph_read(struct iwn_softc *sc, uint32_t addr)
927 1.33 christos {
928 1.33 christos IWN_WRITE(sc, IWN_PRPH_RADDR, IWN_PRPH_DWORD | addr);
929 1.40 christos IWN_BARRIER_READ_WRITE(sc);
930 1.33 christos return IWN_READ(sc, IWN_PRPH_RDATA);
931 1.33 christos }
932 1.33 christos
933 1.33 christos static __inline void
934 1.33 christos iwn_prph_write(struct iwn_softc *sc, uint32_t addr, uint32_t data)
935 1.33 christos {
936 1.33 christos IWN_WRITE(sc, IWN_PRPH_WADDR, IWN_PRPH_DWORD | addr);
937 1.40 christos IWN_BARRIER_WRITE(sc);
938 1.33 christos IWN_WRITE(sc, IWN_PRPH_WDATA, data);
939 1.33 christos }
940 1.33 christos
941 1.33 christos static __inline void
942 1.33 christos iwn_prph_setbits(struct iwn_softc *sc, uint32_t addr, uint32_t mask)
943 1.33 christos {
944 1.33 christos iwn_prph_write(sc, addr, iwn_prph_read(sc, addr) | mask);
945 1.33 christos }
946 1.33 christos
947 1.33 christos static __inline void
948 1.33 christos iwn_prph_clrbits(struct iwn_softc *sc, uint32_t addr, uint32_t mask)
949 1.33 christos {
950 1.33 christos iwn_prph_write(sc, addr, iwn_prph_read(sc, addr) & ~mask);
951 1.33 christos }
952 1.33 christos
953 1.33 christos static __inline void
954 1.33 christos iwn_prph_write_region_4(struct iwn_softc *sc, uint32_t addr,
955 1.33 christos const uint32_t *data, int count)
956 1.33 christos {
957 1.33 christos for (; count > 0; count--, data++, addr += 4)
958 1.33 christos iwn_prph_write(sc, addr, *data);
959 1.33 christos }
960 1.33 christos
961 1.33 christos static __inline uint32_t
962 1.33 christos iwn_mem_read(struct iwn_softc *sc, uint32_t addr)
963 1.33 christos {
964 1.33 christos IWN_WRITE(sc, IWN_MEM_RADDR, addr);
965 1.40 christos IWN_BARRIER_READ_WRITE(sc);
966 1.33 christos return IWN_READ(sc, IWN_MEM_RDATA);
967 1.33 christos }
968 1.33 christos
969 1.33 christos static __inline void
970 1.33 christos iwn_mem_write(struct iwn_softc *sc, uint32_t addr, uint32_t data)
971 1.33 christos {
972 1.33 christos IWN_WRITE(sc, IWN_MEM_WADDR, addr);
973 1.40 christos IWN_BARRIER_WRITE(sc);
974 1.33 christos IWN_WRITE(sc, IWN_MEM_WDATA, data);
975 1.33 christos }
976 1.33 christos
977 1.69 joerg #ifndef IEEE80211_NO_HT
978 1.33 christos static __inline void
979 1.33 christos iwn_mem_write_2(struct iwn_softc *sc, uint32_t addr, uint16_t data)
980 1.33 christos {
981 1.33 christos uint32_t tmp;
982 1.33 christos
983 1.33 christos tmp = iwn_mem_read(sc, addr & ~3);
984 1.33 christos if (addr & 3)
985 1.33 christos tmp = (tmp & 0x0000ffff) | data << 16;
986 1.33 christos else
987 1.33 christos tmp = (tmp & 0xffff0000) | data;
988 1.33 christos iwn_mem_write(sc, addr & ~3, tmp);
989 1.33 christos }
990 1.69 joerg #endif
991 1.33 christos
992 1.33 christos static __inline void
993 1.33 christos iwn_mem_read_region_4(struct iwn_softc *sc, uint32_t addr, uint32_t *data,
994 1.33 christos int count)
995 1.33 christos {
996 1.33 christos for (; count > 0; count--, addr += 4)
997 1.33 christos *data++ = iwn_mem_read(sc, addr);
998 1.33 christos }
999 1.33 christos
1000 1.33 christos static __inline void
1001 1.33 christos iwn_mem_set_region_4(struct iwn_softc *sc, uint32_t addr, uint32_t val,
1002 1.33 christos int count)
1003 1.33 christos {
1004 1.33 christos for (; count > 0; count--, addr += 4)
1005 1.33 christos iwn_mem_write(sc, addr, val);
1006 1.33 christos }
1007 1.33 christos
1008 1.33 christos static int
1009 1.33 christos iwn_eeprom_lock(struct iwn_softc *sc)
1010 1.33 christos {
1011 1.33 christos int i, ntries;
1012 1.33 christos
1013 1.33 christos for (i = 0; i < 100; i++) {
1014 1.33 christos /* Request exclusive access to EEPROM. */
1015 1.33 christos IWN_SETBITS(sc, IWN_HW_IF_CONFIG,
1016 1.33 christos IWN_HW_IF_CONFIG_EEPROM_LOCKED);
1017 1.33 christos
1018 1.33 christos /* Spin until we actually get the lock. */
1019 1.33 christos for (ntries = 0; ntries < 100; ntries++) {
1020 1.33 christos if (IWN_READ(sc, IWN_HW_IF_CONFIG) &
1021 1.33 christos IWN_HW_IF_CONFIG_EEPROM_LOCKED)
1022 1.33 christos return 0;
1023 1.33 christos DELAY(10);
1024 1.33 christos }
1025 1.33 christos }
1026 1.33 christos return ETIMEDOUT;
1027 1.33 christos }
1028 1.33 christos
1029 1.33 christos static __inline void
1030 1.33 christos iwn_eeprom_unlock(struct iwn_softc *sc)
1031 1.33 christos {
1032 1.33 christos IWN_CLRBITS(sc, IWN_HW_IF_CONFIG, IWN_HW_IF_CONFIG_EEPROM_LOCKED);
1033 1.33 christos }
1034 1.33 christos
1035 1.40 christos /*
1036 1.40 christos * Initialize access by host to One Time Programmable ROM.
1037 1.40 christos * NB: This kind of ROM can be found on 1000 or 6000 Series only.
1038 1.40 christos */
1039 1.40 christos static int
1040 1.40 christos iwn_init_otprom(struct iwn_softc *sc)
1041 1.40 christos {
1042 1.40 christos uint16_t prev = 0, base, next;
1043 1.40 christos int count, error;
1044 1.40 christos
1045 1.40 christos /* Wait for clock stabilization before accessing prph. */
1046 1.40 christos if ((error = iwn_clock_wait(sc)) != 0)
1047 1.40 christos return error;
1048 1.40 christos
1049 1.40 christos if ((error = iwn_nic_lock(sc)) != 0)
1050 1.40 christos return error;
1051 1.40 christos iwn_prph_setbits(sc, IWN_APMG_PS, IWN_APMG_PS_RESET_REQ);
1052 1.40 christos DELAY(5);
1053 1.40 christos iwn_prph_clrbits(sc, IWN_APMG_PS, IWN_APMG_PS_RESET_REQ);
1054 1.40 christos iwn_nic_unlock(sc);
1055 1.40 christos
1056 1.40 christos /* Set auto clock gate disable bit for HW with OTP shadow RAM. */
1057 1.40 christos if (sc->hw_type != IWN_HW_REV_TYPE_1000) {
1058 1.40 christos IWN_SETBITS(sc, IWN_DBG_LINK_PWR_MGMT,
1059 1.40 christos IWN_RESET_LINK_PWR_MGMT_DIS);
1060 1.40 christos }
1061 1.40 christos IWN_CLRBITS(sc, IWN_EEPROM_GP, IWN_EEPROM_GP_IF_OWNER);
1062 1.40 christos /* Clear ECC status. */
1063 1.40 christos IWN_SETBITS(sc, IWN_OTP_GP,
1064 1.40 christos IWN_OTP_GP_ECC_CORR_STTS | IWN_OTP_GP_ECC_UNCORR_STTS);
1065 1.40 christos
1066 1.40 christos /*
1067 1.40 christos * Find the block before last block (contains the EEPROM image)
1068 1.40 christos * for HW without OTP shadow RAM.
1069 1.40 christos */
1070 1.40 christos if (sc->hw_type == IWN_HW_REV_TYPE_1000) {
1071 1.40 christos /* Switch to absolute addressing mode. */
1072 1.40 christos IWN_CLRBITS(sc, IWN_OTP_GP, IWN_OTP_GP_RELATIVE_ACCESS);
1073 1.40 christos base = 0;
1074 1.40 christos for (count = 0; count < IWN1000_OTP_NBLOCKS; count++) {
1075 1.40 christos error = iwn_read_prom_data(sc, base, &next, 2);
1076 1.40 christos if (error != 0)
1077 1.40 christos return error;
1078 1.40 christos if (next == 0) /* End of linked-list. */
1079 1.40 christos break;
1080 1.40 christos prev = base;
1081 1.40 christos base = le16toh(next);
1082 1.40 christos }
1083 1.40 christos if (count == 0 || count == IWN1000_OTP_NBLOCKS)
1084 1.40 christos return EIO;
1085 1.40 christos /* Skip "next" word. */
1086 1.40 christos sc->prom_base = prev + 1;
1087 1.40 christos }
1088 1.40 christos return 0;
1089 1.40 christos }
1090 1.40 christos
1091 1.33 christos static int
1092 1.33 christos iwn_read_prom_data(struct iwn_softc *sc, uint32_t addr, void *data, int count)
1093 1.33 christos {
1094 1.33 christos uint8_t *out = data;
1095 1.40 christos uint32_t val, tmp;
1096 1.33 christos int ntries;
1097 1.1 ober
1098 1.40 christos addr += sc->prom_base;
1099 1.33 christos for (; count > 0; count -= 2, addr++) {
1100 1.33 christos IWN_WRITE(sc, IWN_EEPROM, addr << 2);
1101 1.33 christos for (ntries = 0; ntries < 10; ntries++) {
1102 1.33 christos val = IWN_READ(sc, IWN_EEPROM);
1103 1.33 christos if (val & IWN_EEPROM_READ_VALID)
1104 1.33 christos break;
1105 1.33 christos DELAY(5);
1106 1.33 christos }
1107 1.33 christos if (ntries == 10) {
1108 1.40 christos aprint_error_dev(sc->sc_dev,
1109 1.40 christos "timeout reading ROM at 0x%x\n", addr);
1110 1.33 christos return ETIMEDOUT;
1111 1.33 christos }
1112 1.40 christos if (sc->sc_flags & IWN_FLAG_HAS_OTPROM) {
1113 1.40 christos /* OTPROM, check for ECC errors. */
1114 1.40 christos tmp = IWN_READ(sc, IWN_OTP_GP);
1115 1.40 christos if (tmp & IWN_OTP_GP_ECC_UNCORR_STTS) {
1116 1.40 christos aprint_error_dev(sc->sc_dev,
1117 1.40 christos "OTPROM ECC error at 0x%x\n", addr);
1118 1.40 christos return EIO;
1119 1.40 christos }
1120 1.40 christos if (tmp & IWN_OTP_GP_ECC_CORR_STTS) {
1121 1.40 christos /* Correctable ECC error, clear bit. */
1122 1.40 christos IWN_SETBITS(sc, IWN_OTP_GP,
1123 1.40 christos IWN_OTP_GP_ECC_CORR_STTS);
1124 1.40 christos }
1125 1.40 christos }
1126 1.33 christos *out++ = val >> 16;
1127 1.33 christos if (count > 1)
1128 1.33 christos *out++ = val >> 24;
1129 1.33 christos }
1130 1.1 ober return 0;
1131 1.1 ober }
1132 1.1 ober
1133 1.1 ober static int
1134 1.1 ober iwn_dma_contig_alloc(bus_dma_tag_t tag, struct iwn_dma_info *dma, void **kvap,
1135 1.40 christos bus_size_t size, bus_size_t alignment)
1136 1.1 ober {
1137 1.1 ober int nsegs, error;
1138 1.1 ober
1139 1.1 ober dma->tag = tag;
1140 1.1 ober dma->size = size;
1141 1.1 ober
1142 1.40 christos error = bus_dmamap_create(tag, size, 1, size, 0, BUS_DMA_NOWAIT,
1143 1.40 christos &dma->map);
1144 1.1 ober if (error != 0)
1145 1.1 ober goto fail;
1146 1.1 ober
1147 1.1 ober error = bus_dmamem_alloc(tag, size, alignment, 0, &dma->seg, 1, &nsegs,
1148 1.40 christos BUS_DMA_NOWAIT); /* XXX OpenBSD adds BUS_DMA_ZERO */
1149 1.1 ober if (error != 0)
1150 1.1 ober goto fail;
1151 1.1 ober
1152 1.40 christos error = bus_dmamem_map(tag, &dma->seg, 1, size, &dma->vaddr,
1153 1.40 christos BUS_DMA_NOWAIT); /* XXX OpenBSD adds BUS_DMA_COHERENT */
1154 1.1 ober if (error != 0)
1155 1.1 ober goto fail;
1156 1.1 ober
1157 1.40 christos error = bus_dmamap_load(tag, dma->map, dma->vaddr, size, NULL,
1158 1.40 christos BUS_DMA_NOWAIT);
1159 1.1 ober if (error != 0)
1160 1.1 ober goto fail;
1161 1.1 ober
1162 1.44 christos /* XXX Presumably needed because of missing BUS_DMA_ZERO, above. */
1163 1.1 ober memset(dma->vaddr, 0, size);
1164 1.33 christos bus_dmamap_sync(tag, dma->map, 0, size, BUS_DMASYNC_PREWRITE);
1165 1.1 ober
1166 1.1 ober dma->paddr = dma->map->dm_segs[0].ds_addr;
1167 1.1 ober if (kvap != NULL)
1168 1.1 ober *kvap = dma->vaddr;
1169 1.1 ober
1170 1.1 ober return 0;
1171 1.1 ober
1172 1.1 ober fail: iwn_dma_contig_free(dma);
1173 1.1 ober return error;
1174 1.1 ober }
1175 1.1 ober
1176 1.1 ober static void
1177 1.1 ober iwn_dma_contig_free(struct iwn_dma_info *dma)
1178 1.1 ober {
1179 1.1 ober if (dma->map != NULL) {
1180 1.1 ober if (dma->vaddr != NULL) {
1181 1.33 christos bus_dmamap_sync(dma->tag, dma->map, 0, dma->size,
1182 1.33 christos BUS_DMASYNC_POSTREAD | BUS_DMASYNC_POSTWRITE);
1183 1.1 ober bus_dmamap_unload(dma->tag, dma->map);
1184 1.1 ober bus_dmamem_unmap(dma->tag, dma->vaddr, dma->size);
1185 1.1 ober bus_dmamem_free(dma->tag, &dma->seg, 1);
1186 1.1 ober dma->vaddr = NULL;
1187 1.1 ober }
1188 1.1 ober bus_dmamap_destroy(dma->tag, dma->map);
1189 1.1 ober dma->map = NULL;
1190 1.1 ober }
1191 1.1 ober }
1192 1.1 ober
1193 1.1 ober static int
1194 1.33 christos iwn_alloc_sched(struct iwn_softc *sc)
1195 1.1 ober {
1196 1.33 christos /* TX scheduler rings must be aligned on a 1KB boundary. */
1197 1.40 christos return iwn_dma_contig_alloc(sc->sc_dmat, &sc->sched_dma,
1198 1.53 christos (void **)&sc->sched, sc->schedsz, 1024);
1199 1.1 ober }
1200 1.1 ober
1201 1.1 ober static void
1202 1.33 christos iwn_free_sched(struct iwn_softc *sc)
1203 1.1 ober {
1204 1.33 christos iwn_dma_contig_free(&sc->sched_dma);
1205 1.1 ober }
1206 1.1 ober
1207 1.1 ober static int
1208 1.1 ober iwn_alloc_kw(struct iwn_softc *sc)
1209 1.1 ober {
1210 1.40 christos /* "Keep Warm" page must be aligned on a 4KB boundary. */
1211 1.33 christos return iwn_dma_contig_alloc(sc->sc_dmat, &sc->kw_dma, NULL, 4096,
1212 1.40 christos 4096);
1213 1.1 ober }
1214 1.1 ober
1215 1.1 ober static void
1216 1.1 ober iwn_free_kw(struct iwn_softc *sc)
1217 1.1 ober {
1218 1.1 ober iwn_dma_contig_free(&sc->kw_dma);
1219 1.1 ober }
1220 1.1 ober
1221 1.1 ober static int
1222 1.40 christos iwn_alloc_ict(struct iwn_softc *sc)
1223 1.40 christos {
1224 1.40 christos /* ICT table must be aligned on a 4KB boundary. */
1225 1.40 christos return iwn_dma_contig_alloc(sc->sc_dmat, &sc->ict_dma,
1226 1.40 christos (void **)&sc->ict, IWN_ICT_SIZE, 4096);
1227 1.40 christos }
1228 1.40 christos
1229 1.40 christos static void
1230 1.40 christos iwn_free_ict(struct iwn_softc *sc)
1231 1.40 christos {
1232 1.40 christos iwn_dma_contig_free(&sc->ict_dma);
1233 1.40 christos }
1234 1.40 christos
1235 1.40 christos static int
1236 1.1 ober iwn_alloc_fwmem(struct iwn_softc *sc)
1237 1.1 ober {
1238 1.33 christos /* Must be aligned on a 16-byte boundary. */
1239 1.40 christos return iwn_dma_contig_alloc(sc->sc_dmat, &sc->fw_dma, NULL,
1240 1.53 christos sc->fwsz, 16);
1241 1.1 ober }
1242 1.1 ober
1243 1.1 ober static void
1244 1.1 ober iwn_free_fwmem(struct iwn_softc *sc)
1245 1.1 ober {
1246 1.1 ober iwn_dma_contig_free(&sc->fw_dma);
1247 1.1 ober }
1248 1.1 ober
1249 1.40 christos static int
1250 1.40 christos iwn_alloc_rx_ring(struct iwn_softc *sc, struct iwn_rx_ring *ring)
1251 1.40 christos {
1252 1.33 christos bus_size_t size;
1253 1.15 christos int i, error;
1254 1.8 blymn
1255 1.1 ober ring->cur = 0;
1256 1.1 ober
1257 1.53 christos /* Allocate RX descriptors (256-byte aligned). */
1258 1.40 christos size = IWN_RX_RING_COUNT * sizeof (uint32_t);
1259 1.1 ober error = iwn_dma_contig_alloc(sc->sc_dmat, &ring->desc_dma,
1260 1.40 christos (void **)&ring->desc, size, 256);
1261 1.33 christos if (error != 0) {
1262 1.33 christos aprint_error_dev(sc->sc_dev,
1263 1.33 christos "could not allocate RX ring DMA memory\n");
1264 1.33 christos goto fail;
1265 1.33 christos }
1266 1.33 christos
1267 1.53 christos /* Allocate RX status area (16-byte aligned). */
1268 1.33 christos error = iwn_dma_contig_alloc(sc->sc_dmat, &ring->stat_dma,
1269 1.40 christos (void **)&ring->stat, sizeof (struct iwn_rx_status), 16);
1270 1.1 ober if (error != 0) {
1271 1.3 skrll aprint_error_dev(sc->sc_dev,
1272 1.33 christos "could not allocate RX status DMA memory\n");
1273 1.1 ober goto fail;
1274 1.1 ober }
1275 1.1 ober
1276 1.1 ober /*
1277 1.33 christos * Allocate and map RX buffers.
1278 1.1 ober */
1279 1.1 ober for (i = 0; i < IWN_RX_RING_COUNT; i++) {
1280 1.40 christos struct iwn_rx_data *data = &ring->data[i];
1281 1.8 blymn
1282 1.33 christos error = bus_dmamap_create(sc->sc_dmat, IWN_RBUF_SIZE, 1,
1283 1.40 christos IWN_RBUF_SIZE, 0, BUS_DMA_NOWAIT | BUS_DMA_ALLOCNOW,
1284 1.40 christos &data->map);
1285 1.33 christos if (error != 0) {
1286 1.33 christos aprint_error_dev(sc->sc_dev,
1287 1.33 christos "could not create RX buf DMA map\n");
1288 1.33 christos goto fail;
1289 1.33 christos }
1290 1.40 christos
1291 1.40 christos data->m = MCLGETIalt(sc, M_DONTWAIT, NULL, IWN_RBUF_SIZE);
1292 1.1 ober if (data->m == NULL) {
1293 1.33 christos aprint_error_dev(sc->sc_dev,
1294 1.33 christos "could not allocate RX mbuf\n");
1295 1.40 christos error = ENOBUFS;
1296 1.1 ober goto fail;
1297 1.1 ober }
1298 1.40 christos
1299 1.33 christos error = bus_dmamap_load(sc->sc_dmat, data->map,
1300 1.40 christos mtod(data->m, void *), IWN_RBUF_SIZE, NULL,
1301 1.40 christos BUS_DMA_NOWAIT | BUS_DMA_READ);
1302 1.33 christos if (error != 0) {
1303 1.40 christos aprint_error_dev(sc->sc_dev,
1304 1.40 christos "can't not map mbuf (error %d)\n", error);
1305 1.33 christos goto fail;
1306 1.33 christos }
1307 1.1 ober
1308 1.53 christos /* Set physical address of RX buffer (256-byte aligned). */
1309 1.33 christos ring->desc[i] = htole32(data->map->dm_segs[0].ds_addr >> 8);
1310 1.1 ober }
1311 1.1 ober
1312 1.40 christos bus_dmamap_sync(sc->sc_dmat, ring->desc_dma.map, 0, size,
1313 1.40 christos BUS_DMASYNC_PREWRITE);
1314 1.33 christos
1315 1.1 ober return 0;
1316 1.1 ober
1317 1.1 ober fail: iwn_free_rx_ring(sc, ring);
1318 1.1 ober return error;
1319 1.1 ober }
1320 1.1 ober
1321 1.1 ober static void
1322 1.1 ober iwn_reset_rx_ring(struct iwn_softc *sc, struct iwn_rx_ring *ring)
1323 1.1 ober {
1324 1.1 ober int ntries;
1325 1.1 ober
1326 1.33 christos if (iwn_nic_lock(sc) == 0) {
1327 1.33 christos IWN_WRITE(sc, IWN_FH_RX_CONFIG, 0);
1328 1.33 christos for (ntries = 0; ntries < 1000; ntries++) {
1329 1.33 christos if (IWN_READ(sc, IWN_FH_RX_STATUS) &
1330 1.33 christos IWN_FH_RX_STATUS_IDLE)
1331 1.33 christos break;
1332 1.33 christos DELAY(10);
1333 1.33 christos }
1334 1.33 christos iwn_nic_unlock(sc);
1335 1.1 ober }
1336 1.1 ober ring->cur = 0;
1337 1.33 christos sc->last_rx_valid = 0;
1338 1.1 ober }
1339 1.1 ober
1340 1.1 ober static void
1341 1.1 ober iwn_free_rx_ring(struct iwn_softc *sc, struct iwn_rx_ring *ring)
1342 1.1 ober {
1343 1.1 ober int i;
1344 1.1 ober
1345 1.1 ober iwn_dma_contig_free(&ring->desc_dma);
1346 1.33 christos iwn_dma_contig_free(&ring->stat_dma);
1347 1.1 ober
1348 1.1 ober for (i = 0; i < IWN_RX_RING_COUNT; i++) {
1349 1.33 christos struct iwn_rx_data *data = &ring->data[i];
1350 1.33 christos
1351 1.33 christos if (data->m != NULL) {
1352 1.33 christos bus_dmamap_sync(sc->sc_dmat, data->map, 0,
1353 1.33 christos data->map->dm_mapsize, BUS_DMASYNC_POSTREAD);
1354 1.33 christos bus_dmamap_unload(sc->sc_dmat, data->map);
1355 1.33 christos m_freem(data->m);
1356 1.33 christos }
1357 1.33 christos if (data->map != NULL)
1358 1.33 christos bus_dmamap_destroy(sc->sc_dmat, data->map);
1359 1.1 ober }
1360 1.1 ober }
1361 1.1 ober
1362 1.1 ober static int
1363 1.40 christos iwn_alloc_tx_ring(struct iwn_softc *sc, struct iwn_tx_ring *ring, int qid)
1364 1.1 ober {
1365 1.33 christos bus_addr_t paddr;
1366 1.40 christos bus_size_t size;
1367 1.40 christos int i, error;
1368 1.1 ober
1369 1.1 ober ring->qid = qid;
1370 1.1 ober ring->queued = 0;
1371 1.1 ober ring->cur = 0;
1372 1.1 ober
1373 1.53 christos /* Allocate TX descriptors (256-byte aligned). */
1374 1.40 christos size = IWN_TX_RING_COUNT * sizeof (struct iwn_tx_desc);
1375 1.1 ober error = iwn_dma_contig_alloc(sc->sc_dmat, &ring->desc_dma,
1376 1.40 christos (void **)&ring->desc, size, 256);
1377 1.1 ober if (error != 0) {
1378 1.33 christos aprint_error_dev(sc->sc_dev,
1379 1.33 christos "could not allocate TX ring DMA memory\n");
1380 1.1 ober goto fail;
1381 1.1 ober }
1382 1.33 christos /*
1383 1.33 christos * We only use rings 0 through 4 (4 EDCA + cmd) so there is no need
1384 1.33 christos * to allocate commands space for other rings.
1385 1.33 christos * XXX Do we really need to allocate descriptors for other rings?
1386 1.33 christos */
1387 1.33 christos if (qid > 4)
1388 1.33 christos return 0;
1389 1.1 ober
1390 1.40 christos size = IWN_TX_RING_COUNT * sizeof (struct iwn_tx_cmd);
1391 1.1 ober error = iwn_dma_contig_alloc(sc->sc_dmat, &ring->cmd_dma,
1392 1.40 christos (void **)&ring->cmd, size, 4);
1393 1.1 ober if (error != 0) {
1394 1.33 christos aprint_error_dev(sc->sc_dev,
1395 1.33 christos "could not allocate TX cmd DMA memory\n");
1396 1.1 ober goto fail;
1397 1.1 ober }
1398 1.1 ober
1399 1.33 christos paddr = ring->cmd_dma.paddr;
1400 1.40 christos for (i = 0; i < IWN_TX_RING_COUNT; i++) {
1401 1.40 christos struct iwn_tx_data *data = &ring->data[i];
1402 1.1 ober
1403 1.33 christos data->cmd_paddr = paddr;
1404 1.33 christos data->scratch_paddr = paddr + 12;
1405 1.33 christos paddr += sizeof (struct iwn_tx_cmd);
1406 1.33 christos
1407 1.1 ober error = bus_dmamap_create(sc->sc_dmat, MCLBYTES,
1408 1.1 ober IWN_MAX_SCATTER - 1, MCLBYTES, 0, BUS_DMA_NOWAIT,
1409 1.1 ober &data->map);
1410 1.1 ober if (error != 0) {
1411 1.33 christos aprint_error_dev(sc->sc_dev,
1412 1.33 christos "could not create TX buf DMA map\n");
1413 1.1 ober goto fail;
1414 1.1 ober }
1415 1.1 ober }
1416 1.1 ober return 0;
1417 1.1 ober
1418 1.1 ober fail: iwn_free_tx_ring(sc, ring);
1419 1.1 ober return error;
1420 1.1 ober }
1421 1.1 ober
1422 1.1 ober static void
1423 1.1 ober iwn_reset_tx_ring(struct iwn_softc *sc, struct iwn_tx_ring *ring)
1424 1.1 ober {
1425 1.40 christos int i;
1426 1.1 ober
1427 1.40 christos for (i = 0; i < IWN_TX_RING_COUNT; i++) {
1428 1.40 christos struct iwn_tx_data *data = &ring->data[i];
1429 1.1 ober
1430 1.1 ober if (data->m != NULL) {
1431 1.33 christos bus_dmamap_sync(sc->sc_dmat, data->map, 0,
1432 1.33 christos data->map->dm_mapsize, BUS_DMASYNC_POSTWRITE);
1433 1.1 ober bus_dmamap_unload(sc->sc_dmat, data->map);
1434 1.1 ober m_freem(data->m);
1435 1.1 ober data->m = NULL;
1436 1.1 ober }
1437 1.1 ober }
1438 1.33 christos /* Clear TX descriptors. */
1439 1.33 christos memset(ring->desc, 0, ring->desc_dma.size);
1440 1.33 christos bus_dmamap_sync(sc->sc_dmat, ring->desc_dma.map, 0,
1441 1.33 christos ring->desc_dma.size, BUS_DMASYNC_PREWRITE);
1442 1.33 christos sc->qfullmsk &= ~(1 << ring->qid);
1443 1.1 ober ring->queued = 0;
1444 1.1 ober ring->cur = 0;
1445 1.1 ober }
1446 1.1 ober
1447 1.1 ober static void
1448 1.1 ober iwn_free_tx_ring(struct iwn_softc *sc, struct iwn_tx_ring *ring)
1449 1.1 ober {
1450 1.2 ober int i;
1451 1.1 ober
1452 1.1 ober iwn_dma_contig_free(&ring->desc_dma);
1453 1.1 ober iwn_dma_contig_free(&ring->cmd_dma);
1454 1.1 ober
1455 1.40 christos for (i = 0; i < IWN_TX_RING_COUNT; i++) {
1456 1.40 christos struct iwn_tx_data *data = &ring->data[i];
1457 1.40 christos
1458 1.40 christos if (data->m != NULL) {
1459 1.40 christos bus_dmamap_sync(sc->sc_dmat, data->map, 0,
1460 1.40 christos data->map->dm_mapsize, BUS_DMASYNC_POSTWRITE);
1461 1.40 christos bus_dmamap_unload(sc->sc_dmat, data->map);
1462 1.40 christos m_freem(data->m);
1463 1.1 ober }
1464 1.40 christos if (data->map != NULL)
1465 1.40 christos bus_dmamap_destroy(sc->sc_dmat, data->map);
1466 1.1 ober }
1467 1.1 ober }
1468 1.1 ober
1469 1.40 christos static void
1470 1.40 christos iwn5000_ict_reset(struct iwn_softc *sc)
1471 1.40 christos {
1472 1.40 christos /* Disable interrupts. */
1473 1.40 christos IWN_WRITE(sc, IWN_INT_MASK, 0);
1474 1.40 christos
1475 1.40 christos /* Reset ICT table. */
1476 1.40 christos memset(sc->ict, 0, IWN_ICT_SIZE);
1477 1.40 christos sc->ict_cur = 0;
1478 1.40 christos
1479 1.53 christos /* Set physical address of ICT table (4KB aligned). */
1480 1.40 christos DPRINTF(("enabling ICT\n"));
1481 1.40 christos IWN_WRITE(sc, IWN_DRAM_INT_TBL, IWN_DRAM_INT_TBL_ENABLE |
1482 1.40 christos IWN_DRAM_INT_TBL_WRAP_CHECK | sc->ict_dma.paddr >> 12);
1483 1.40 christos
1484 1.40 christos /* Enable periodic RX interrupt. */
1485 1.40 christos sc->int_mask |= IWN_INT_RX_PERIODIC;
1486 1.40 christos /* Switch to ICT interrupt mode in driver. */
1487 1.40 christos sc->sc_flags |= IWN_FLAG_USE_ICT;
1488 1.40 christos
1489 1.40 christos /* Re-enable interrupts. */
1490 1.40 christos IWN_WRITE(sc, IWN_INT, 0xffffffff);
1491 1.40 christos IWN_WRITE(sc, IWN_INT_MASK, sc->int_mask);
1492 1.40 christos }
1493 1.40 christos
1494 1.33 christos static int
1495 1.33 christos iwn_read_eeprom(struct iwn_softc *sc)
1496 1.1 ober {
1497 1.53 christos struct iwn_ops *ops = &sc->ops;
1498 1.33 christos struct ieee80211com *ic = &sc->sc_ic;
1499 1.33 christos uint16_t val;
1500 1.33 christos int error;
1501 1.33 christos
1502 1.40 christos /* Check whether adapter has an EEPROM or an OTPROM. */
1503 1.40 christos if (sc->hw_type >= IWN_HW_REV_TYPE_1000 &&
1504 1.40 christos (IWN_READ(sc, IWN_OTP_GP) & IWN_OTP_GP_DEV_SEL_OTP))
1505 1.40 christos sc->sc_flags |= IWN_FLAG_HAS_OTPROM;
1506 1.40 christos DPRINTF(("%s found\n", (sc->sc_flags & IWN_FLAG_HAS_OTPROM) ?
1507 1.40 christos "OTPROM" : "EEPROM"));
1508 1.40 christos
1509 1.40 christos /* Adapter has to be powered on for EEPROM access to work. */
1510 1.40 christos if ((error = iwn_apm_init(sc)) != 0) {
1511 1.40 christos aprint_error_dev(sc->sc_dev,
1512 1.40 christos "could not power ON adapter\n");
1513 1.40 christos return error;
1514 1.40 christos }
1515 1.40 christos
1516 1.40 christos if ((IWN_READ(sc, IWN_EEPROM_GP) & 0x7) == 0) {
1517 1.40 christos aprint_error_dev(sc->sc_dev,
1518 1.40 christos "bad ROM signature\n");
1519 1.33 christos return EIO;
1520 1.33 christos }
1521 1.33 christos if ((error = iwn_eeprom_lock(sc)) != 0) {
1522 1.33 christos aprint_error_dev(sc->sc_dev,
1523 1.40 christos "could not lock ROM (error=%d)\n", error);
1524 1.33 christos return error;
1525 1.33 christos }
1526 1.40 christos if (sc->sc_flags & IWN_FLAG_HAS_OTPROM) {
1527 1.40 christos if ((error = iwn_init_otprom(sc)) != 0) {
1528 1.40 christos aprint_error_dev(sc->sc_dev,
1529 1.40 christos "could not initialize OTPROM\n");
1530 1.40 christos return error;
1531 1.40 christos }
1532 1.40 christos }
1533 1.33 christos
1534 1.53 christos iwn_read_prom_data(sc, IWN_EEPROM_SKU_CAP, &val, 2);
1535 1.53 christos DPRINTF(("SKU capabilities=0x%04x\n", le16toh(val)));
1536 1.53 christos /* Check if HT support is bonded out. */
1537 1.53 christos if (val & htole16(IWN_EEPROM_SKU_CAP_11N))
1538 1.53 christos sc->sc_flags |= IWN_FLAG_HAS_11N;
1539 1.53 christos
1540 1.33 christos iwn_read_prom_data(sc, IWN_EEPROM_RFCFG, &val, 2);
1541 1.33 christos sc->rfcfg = le16toh(val);
1542 1.33 christos DPRINTF(("radio config=0x%04x\n", sc->rfcfg));
1543 1.53 christos /* Read Tx/Rx chains from ROM unless it's known to be broken. */
1544 1.53 christos if (sc->txchainmask == 0)
1545 1.53 christos sc->txchainmask = IWN_RFCFG_TXANTMSK(sc->rfcfg);
1546 1.53 christos if (sc->rxchainmask == 0)
1547 1.53 christos sc->rxchainmask = IWN_RFCFG_RXANTMSK(sc->rfcfg);
1548 1.33 christos
1549 1.33 christos /* Read MAC address. */
1550 1.33 christos iwn_read_prom_data(sc, IWN_EEPROM_MAC, ic->ic_myaddr, 6);
1551 1.33 christos
1552 1.33 christos /* Read adapter-specific information from EEPROM. */
1553 1.53 christos ops->read_eeprom(sc);
1554 1.33 christos
1555 1.40 christos iwn_apm_stop(sc); /* Power OFF adapter. */
1556 1.40 christos
1557 1.33 christos iwn_eeprom_unlock(sc);
1558 1.33 christos return 0;
1559 1.33 christos }
1560 1.33 christos
1561 1.33 christos static void
1562 1.33 christos iwn4965_read_eeprom(struct iwn_softc *sc)
1563 1.33 christos {
1564 1.33 christos uint32_t addr;
1565 1.33 christos uint16_t val;
1566 1.33 christos int i;
1567 1.33 christos
1568 1.53 christos /* Read regulatory domain (4 ASCII characters). */
1569 1.33 christos iwn_read_prom_data(sc, IWN4965_EEPROM_DOMAIN, sc->eeprom_domain, 4);
1570 1.33 christos
1571 1.53 christos /* Read the list of authorized channels (20MHz ones only). */
1572 1.33 christos for (i = 0; i < 5; i++) {
1573 1.33 christos addr = iwn4965_regulatory_bands[i];
1574 1.33 christos iwn_read_eeprom_channels(sc, i, addr);
1575 1.33 christos }
1576 1.33 christos
1577 1.33 christos /* Read maximum allowed TX power for 2GHz and 5GHz bands. */
1578 1.33 christos iwn_read_prom_data(sc, IWN4965_EEPROM_MAXPOW, &val, 2);
1579 1.33 christos sc->maxpwr2GHz = val & 0xff;
1580 1.33 christos sc->maxpwr5GHz = val >> 8;
1581 1.33 christos /* Check that EEPROM values are within valid range. */
1582 1.33 christos if (sc->maxpwr5GHz < 20 || sc->maxpwr5GHz > 50)
1583 1.33 christos sc->maxpwr5GHz = 38;
1584 1.33 christos if (sc->maxpwr2GHz < 20 || sc->maxpwr2GHz > 50)
1585 1.33 christos sc->maxpwr2GHz = 38;
1586 1.33 christos DPRINTF(("maxpwr 2GHz=%d 5GHz=%d\n", sc->maxpwr2GHz, sc->maxpwr5GHz));
1587 1.33 christos
1588 1.33 christos /* Read samples for each TX power group. */
1589 1.33 christos iwn_read_prom_data(sc, IWN4965_EEPROM_BANDS, sc->bands,
1590 1.33 christos sizeof sc->bands);
1591 1.33 christos
1592 1.33 christos /* Read voltage at which samples were taken. */
1593 1.33 christos iwn_read_prom_data(sc, IWN4965_EEPROM_VOLTAGE, &val, 2);
1594 1.33 christos sc->eeprom_voltage = (int16_t)le16toh(val);
1595 1.33 christos DPRINTF(("voltage=%d (in 0.3V)\n", sc->eeprom_voltage));
1596 1.33 christos
1597 1.33 christos #ifdef IWN_DEBUG
1598 1.33 christos /* Print samples. */
1599 1.33 christos if (iwn_debug > 0) {
1600 1.33 christos for (i = 0; i < IWN_NBANDS; i++)
1601 1.33 christos iwn4965_print_power_group(sc, i);
1602 1.33 christos }
1603 1.33 christos #endif
1604 1.33 christos }
1605 1.33 christos
1606 1.33 christos #ifdef IWN_DEBUG
1607 1.33 christos static void
1608 1.33 christos iwn4965_print_power_group(struct iwn_softc *sc, int i)
1609 1.33 christos {
1610 1.33 christos struct iwn4965_eeprom_band *band = &sc->bands[i];
1611 1.33 christos struct iwn4965_eeprom_chan_samples *chans = band->chans;
1612 1.33 christos int j, c;
1613 1.33 christos
1614 1.40 christos aprint_normal("===band %d===\n", i);
1615 1.40 christos aprint_normal("chan lo=%d, chan hi=%d\n", band->lo, band->hi);
1616 1.40 christos aprint_normal("chan1 num=%d\n", chans[0].num);
1617 1.33 christos for (c = 0; c < 2; c++) {
1618 1.33 christos for (j = 0; j < IWN_NSAMPLES; j++) {
1619 1.40 christos aprint_normal("chain %d, sample %d: temp=%d gain=%d "
1620 1.33 christos "power=%d pa_det=%d\n", c, j,
1621 1.33 christos chans[0].samples[c][j].temp,
1622 1.33 christos chans[0].samples[c][j].gain,
1623 1.33 christos chans[0].samples[c][j].power,
1624 1.33 christos chans[0].samples[c][j].pa_det);
1625 1.33 christos }
1626 1.33 christos }
1627 1.40 christos aprint_normal("chan2 num=%d\n", chans[1].num);
1628 1.33 christos for (c = 0; c < 2; c++) {
1629 1.33 christos for (j = 0; j < IWN_NSAMPLES; j++) {
1630 1.40 christos aprint_normal("chain %d, sample %d: temp=%d gain=%d "
1631 1.33 christos "power=%d pa_det=%d\n", c, j,
1632 1.33 christos chans[1].samples[c][j].temp,
1633 1.33 christos chans[1].samples[c][j].gain,
1634 1.33 christos chans[1].samples[c][j].power,
1635 1.33 christos chans[1].samples[c][j].pa_det);
1636 1.33 christos }
1637 1.33 christos }
1638 1.33 christos }
1639 1.33 christos #endif
1640 1.33 christos
1641 1.33 christos static void
1642 1.33 christos iwn5000_read_eeprom(struct iwn_softc *sc)
1643 1.33 christos {
1644 1.40 christos struct iwn5000_eeprom_calib_hdr hdr;
1645 1.53 christos int32_t volt;
1646 1.33 christos uint32_t base, addr;
1647 1.33 christos uint16_t val;
1648 1.33 christos int i;
1649 1.33 christos
1650 1.53 christos /* Read regulatory domain (4 ASCII characters). */
1651 1.33 christos iwn_read_prom_data(sc, IWN5000_EEPROM_REG, &val, 2);
1652 1.33 christos base = le16toh(val);
1653 1.33 christos iwn_read_prom_data(sc, base + IWN5000_EEPROM_DOMAIN,
1654 1.33 christos sc->eeprom_domain, 4);
1655 1.33 christos
1656 1.53 christos /* Read the list of authorized channels (20MHz ones only). */
1657 1.33 christos for (i = 0; i < 5; i++) {
1658 1.33 christos addr = base + iwn5000_regulatory_bands[i];
1659 1.33 christos iwn_read_eeprom_channels(sc, i, addr);
1660 1.33 christos }
1661 1.33 christos
1662 1.40 christos /* Read enhanced TX power information for 6000 Series. */
1663 1.40 christos if (sc->hw_type >= IWN_HW_REV_TYPE_6000)
1664 1.40 christos iwn_read_eeprom_enhinfo(sc);
1665 1.40 christos
1666 1.33 christos iwn_read_prom_data(sc, IWN5000_EEPROM_CAL, &val, 2);
1667 1.33 christos base = le16toh(val);
1668 1.40 christos iwn_read_prom_data(sc, base, &hdr, sizeof hdr);
1669 1.40 christos DPRINTF(("calib version=%u pa type=%u voltage=%u\n",
1670 1.40 christos hdr.version, hdr.pa_type, le16toh(hdr.volt)));
1671 1.40 christos sc->calib_ver = hdr.version;
1672 1.44 christos
1673 1.72 nonaka if (sc->hw_type == IWN_HW_REV_TYPE_2030 ||
1674 1.72 nonaka sc->hw_type == IWN_HW_REV_TYPE_2000 ||
1675 1.72 nonaka sc->hw_type == IWN_HW_REV_TYPE_135 ||
1676 1.72 nonaka sc->hw_type == IWN_HW_REV_TYPE_105) {
1677 1.72 nonaka sc->eeprom_voltage = le16toh(hdr.volt);
1678 1.72 nonaka iwn_read_prom_data(sc, base + IWN5000_EEPROM_TEMP, &val, 2);
1679 1.72 nonaka sc->eeprom_temp = le16toh(val);
1680 1.72 nonaka iwn_read_prom_data(sc, base + IWN2000_EEPROM_RAWTEMP, &val, 2);
1681 1.72 nonaka sc->eeprom_rawtemp = le16toh(val);
1682 1.72 nonaka }
1683 1.72 nonaka
1684 1.33 christos if (sc->hw_type == IWN_HW_REV_TYPE_5150) {
1685 1.40 christos /* Compute temperature offset. */
1686 1.33 christos iwn_read_prom_data(sc, base + IWN5000_EEPROM_TEMP, &val, 2);
1687 1.53 christos sc->eeprom_temp = le16toh(val);
1688 1.33 christos iwn_read_prom_data(sc, base + IWN5000_EEPROM_VOLT, &val, 2);
1689 1.33 christos volt = le16toh(val);
1690 1.53 christos sc->temp_off = sc->eeprom_temp - (volt / -5);
1691 1.40 christos DPRINTF(("temp=%d volt=%d offset=%dK\n",
1692 1.53 christos sc->eeprom_temp, volt, sc->temp_off));
1693 1.33 christos } else {
1694 1.33 christos /* Read crystal calibration. */
1695 1.33 christos iwn_read_prom_data(sc, base + IWN5000_EEPROM_CRYSTAL,
1696 1.33 christos &sc->eeprom_crystal, sizeof (uint32_t));
1697 1.33 christos DPRINTF(("crystal calibration 0x%08x\n",
1698 1.33 christos le32toh(sc->eeprom_crystal)));
1699 1.33 christos }
1700 1.33 christos }
1701 1.33 christos
1702 1.33 christos static void
1703 1.33 christos iwn_read_eeprom_channels(struct iwn_softc *sc, int n, uint32_t addr)
1704 1.33 christos {
1705 1.33 christos struct ieee80211com *ic = &sc->sc_ic;
1706 1.33 christos const struct iwn_chan_band *band = &iwn_bands[n];
1707 1.33 christos struct iwn_eeprom_chan channels[IWN_MAX_CHAN_PER_BAND];
1708 1.33 christos uint8_t chan;
1709 1.33 christos int i;
1710 1.33 christos
1711 1.33 christos iwn_read_prom_data(sc, addr, channels,
1712 1.33 christos band->nchan * sizeof (struct iwn_eeprom_chan));
1713 1.33 christos
1714 1.33 christos for (i = 0; i < band->nchan; i++) {
1715 1.33 christos if (!(channels[i].flags & IWN_EEPROM_CHAN_VALID))
1716 1.33 christos continue;
1717 1.33 christos
1718 1.33 christos chan = band->chan[i];
1719 1.33 christos
1720 1.33 christos if (n == 0) { /* 2GHz band */
1721 1.33 christos ic->ic_channels[chan].ic_freq =
1722 1.33 christos ieee80211_ieee2mhz(chan, IEEE80211_CHAN_2GHZ);
1723 1.33 christos ic->ic_channels[chan].ic_flags =
1724 1.33 christos IEEE80211_CHAN_CCK | IEEE80211_CHAN_OFDM |
1725 1.33 christos IEEE80211_CHAN_DYN | IEEE80211_CHAN_2GHZ;
1726 1.33 christos
1727 1.33 christos } else { /* 5GHz band */
1728 1.33 christos /*
1729 1.33 christos * Some adapters support channels 7, 8, 11 and 12
1730 1.33 christos * both in the 2GHz and 4.9GHz bands.
1731 1.33 christos * Because of limitations in our net80211 layer,
1732 1.33 christos * we don't support them in the 4.9GHz band.
1733 1.33 christos */
1734 1.33 christos if (chan <= 14)
1735 1.33 christos continue;
1736 1.33 christos
1737 1.33 christos ic->ic_channels[chan].ic_freq =
1738 1.33 christos ieee80211_ieee2mhz(chan, IEEE80211_CHAN_5GHZ);
1739 1.33 christos ic->ic_channels[chan].ic_flags = IEEE80211_CHAN_A;
1740 1.33 christos /* We have at least one valid 5GHz channel. */
1741 1.33 christos sc->sc_flags |= IWN_FLAG_HAS_5GHZ;
1742 1.33 christos }
1743 1.33 christos
1744 1.33 christos /* Is active scan allowed on this channel? */
1745 1.33 christos if (!(channels[i].flags & IWN_EEPROM_CHAN_ACTIVE)) {
1746 1.33 christos ic->ic_channels[chan].ic_flags |=
1747 1.33 christos IEEE80211_CHAN_PASSIVE;
1748 1.33 christos }
1749 1.33 christos
1750 1.33 christos /* Save maximum allowed TX power for this channel. */
1751 1.33 christos sc->maxpwr[chan] = channels[i].maxpwr;
1752 1.33 christos
1753 1.33 christos DPRINTF(("adding chan %d flags=0x%x maxpwr=%d\n",
1754 1.33 christos chan, channels[i].flags, sc->maxpwr[chan]));
1755 1.33 christos }
1756 1.33 christos }
1757 1.33 christos
1758 1.40 christos static void
1759 1.40 christos iwn_read_eeprom_enhinfo(struct iwn_softc *sc)
1760 1.40 christos {
1761 1.40 christos struct iwn_eeprom_enhinfo enhinfo[35];
1762 1.40 christos uint16_t val, base;
1763 1.40 christos int8_t maxpwr;
1764 1.40 christos int i;
1765 1.40 christos
1766 1.40 christos iwn_read_prom_data(sc, IWN5000_EEPROM_REG, &val, 2);
1767 1.40 christos base = le16toh(val);
1768 1.40 christos iwn_read_prom_data(sc, base + IWN6000_EEPROM_ENHINFO,
1769 1.40 christos enhinfo, sizeof enhinfo);
1770 1.40 christos
1771 1.40 christos memset(sc->enh_maxpwr, 0, sizeof sc->enh_maxpwr);
1772 1.40 christos for (i = 0; i < __arraycount(enhinfo); i++) {
1773 1.40 christos if (enhinfo[i].chan == 0 || enhinfo[i].reserved != 0)
1774 1.40 christos continue; /* Skip invalid entries. */
1775 1.40 christos
1776 1.40 christos maxpwr = 0;
1777 1.40 christos if (sc->txchainmask & IWN_ANT_A)
1778 1.40 christos maxpwr = MAX(maxpwr, enhinfo[i].chain[0]);
1779 1.40 christos if (sc->txchainmask & IWN_ANT_B)
1780 1.40 christos maxpwr = MAX(maxpwr, enhinfo[i].chain[1]);
1781 1.40 christos if (sc->txchainmask & IWN_ANT_C)
1782 1.40 christos maxpwr = MAX(maxpwr, enhinfo[i].chain[2]);
1783 1.40 christos if (sc->ntxchains == 2)
1784 1.40 christos maxpwr = MAX(maxpwr, enhinfo[i].mimo2);
1785 1.40 christos else if (sc->ntxchains == 3)
1786 1.40 christos maxpwr = MAX(maxpwr, enhinfo[i].mimo3);
1787 1.40 christos maxpwr /= 2; /* Convert half-dBm to dBm. */
1788 1.40 christos
1789 1.40 christos DPRINTF(("enhinfo %d, maxpwr=%d\n", i, maxpwr));
1790 1.40 christos sc->enh_maxpwr[i] = maxpwr;
1791 1.40 christos }
1792 1.40 christos }
1793 1.40 christos
1794 1.33 christos static struct ieee80211_node *
1795 1.40 christos iwn_node_alloc(struct ieee80211_node_table *ic __unused)
1796 1.33 christos {
1797 1.42 christos return malloc(sizeof (struct iwn_node), M_80211_NODE, M_NOWAIT | M_ZERO);
1798 1.1 ober }
1799 1.1 ober
1800 1.1 ober static void
1801 1.1 ober iwn_newassoc(struct ieee80211_node *ni, int isnew)
1802 1.1 ober {
1803 1.1 ober struct iwn_softc *sc = ni->ni_ic->ic_ifp->if_softc;
1804 1.33 christos struct iwn_node *wn = (void *)ni;
1805 1.33 christos uint8_t rate;
1806 1.33 christos int ridx, i;
1807 1.33 christos
1808 1.33 christos ieee80211_amrr_node_init(&sc->amrr, &wn->amn);
1809 1.40 christos /* Start at lowest available bit-rate, AMRR will raise. */
1810 1.40 christos ni->ni_txrate = 0;
1811 1.33 christos
1812 1.33 christos for (i = 0; i < ni->ni_rates.rs_nrates; i++) {
1813 1.33 christos rate = ni->ni_rates.rs_rates[i] & IEEE80211_RATE_VAL;
1814 1.33 christos /* Map 802.11 rate to HW rate index. */
1815 1.33 christos for (ridx = 0; ridx <= IWN_RIDX_MAX; ridx++)
1816 1.33 christos if (iwn_rates[ridx].rate == rate)
1817 1.33 christos break;
1818 1.33 christos wn->ridx[i] = ridx;
1819 1.33 christos }
1820 1.1 ober }
1821 1.1 ober
1822 1.1 ober static int
1823 1.1 ober iwn_media_change(struct ifnet *ifp)
1824 1.1 ober {
1825 1.33 christos struct iwn_softc *sc = ifp->if_softc;
1826 1.33 christos struct ieee80211com *ic = &sc->sc_ic;
1827 1.33 christos uint8_t rate, ridx;
1828 1.1 ober int error;
1829 1.1 ober
1830 1.1 ober error = ieee80211_media_change(ifp);
1831 1.1 ober if (error != ENETRESET)
1832 1.1 ober return error;
1833 1.1 ober
1834 1.33 christos if (ic->ic_fixed_rate != -1) {
1835 1.33 christos rate = ic->ic_sup_rates[ic->ic_curmode].
1836 1.33 christos rs_rates[ic->ic_fixed_rate] & IEEE80211_RATE_VAL;
1837 1.33 christos /* Map 802.11 rate to HW rate index. */
1838 1.33 christos for (ridx = 0; ridx <= IWN_RIDX_MAX; ridx++)
1839 1.33 christos if (iwn_rates[ridx].rate == rate)
1840 1.33 christos break;
1841 1.33 christos sc->fixed_ridx = ridx;
1842 1.33 christos }
1843 1.1 ober
1844 1.33 christos if ((ifp->if_flags & (IFF_UP | IFF_RUNNING)) ==
1845 1.33 christos (IFF_UP | IFF_RUNNING)) {
1846 1.33 christos iwn_stop(ifp, 0);
1847 1.33 christos error = iwn_init(ifp);
1848 1.33 christos }
1849 1.33 christos return error;
1850 1.1 ober }
1851 1.1 ober
1852 1.1 ober static int
1853 1.1 ober iwn_newstate(struct ieee80211com *ic, enum ieee80211_state nstate, int arg)
1854 1.1 ober {
1855 1.1 ober struct ifnet *ifp = ic->ic_ifp;
1856 1.1 ober struct iwn_softc *sc = ifp->if_softc;
1857 1.1 ober int error;
1858 1.1 ober
1859 1.1 ober callout_stop(&sc->calib_to);
1860 1.1 ober
1861 1.1 ober switch (nstate) {
1862 1.1 ober case IEEE80211_S_SCAN:
1863 1.44 christos /* XXX Do not abort a running scan. */
1864 1.40 christos if (sc->sc_flags & IWN_FLAG_SCANNING) {
1865 1.47 christos if (ic->ic_state != nstate)
1866 1.79 mlelstv aprint_debug_dev(sc->sc_dev, "scan request(%d) "
1867 1.47 christos "while scanning(%d) ignored\n", nstate,
1868 1.47 christos ic->ic_state);
1869 1.1 ober break;
1870 1.40 christos }
1871 1.40 christos
1872 1.44 christos /* XXX Not sure if call and flags are needed. */
1873 1.1 ober ieee80211_node_table_reset(&ic->ic_scan);
1874 1.1 ober ic->ic_flags |= IEEE80211_F_SCAN | IEEE80211_F_ASCAN;
1875 1.76 nonaka sc->sc_flags |= IWN_FLAG_SCANNING_2GHZ;
1876 1.1 ober
1877 1.33 christos /* Make the link LED blink while we're scanning. */
1878 1.33 christos iwn_set_led(sc, IWN_LED_LINK, 10, 10);
1879 1.1 ober
1880 1.33 christos if ((error = iwn_scan(sc, IEEE80211_CHAN_2GHZ)) != 0) {
1881 1.33 christos aprint_error_dev(sc->sc_dev,
1882 1.33 christos "could not initiate scan\n");
1883 1.1 ober return error;
1884 1.1 ober }
1885 1.1 ober ic->ic_state = nstate;
1886 1.1 ober return 0;
1887 1.1 ober
1888 1.1 ober case IEEE80211_S_ASSOC:
1889 1.1 ober if (ic->ic_state != IEEE80211_S_RUN)
1890 1.1 ober break;
1891 1.1 ober /* FALLTHROUGH */
1892 1.1 ober case IEEE80211_S_AUTH:
1893 1.33 christos /* Reset state to handle reassociations correctly. */
1894 1.33 christos sc->rxon.associd = 0;
1895 1.33 christos sc->rxon.filter &= ~htole32(IWN_FILTER_BSS);
1896 1.33 christos sc->calib.state = IWN_CALIB_STATE_INIT;
1897 1.1 ober
1898 1.1 ober if ((error = iwn_auth(sc)) != 0) {
1899 1.20 blymn aprint_error_dev(sc->sc_dev,
1900 1.33 christos "could not move to auth state\n");
1901 1.1 ober return error;
1902 1.1 ober }
1903 1.1 ober break;
1904 1.1 ober
1905 1.1 ober case IEEE80211_S_RUN:
1906 1.1 ober if ((error = iwn_run(sc)) != 0) {
1907 1.20 blymn aprint_error_dev(sc->sc_dev,
1908 1.33 christos "could not move to run state\n");
1909 1.1 ober return error;
1910 1.1 ober }
1911 1.1 ober break;
1912 1.1 ober
1913 1.1 ober case IEEE80211_S_INIT:
1914 1.40 christos sc->sc_flags &= ~IWN_FLAG_SCANNING;
1915 1.33 christos sc->calib.state = IWN_CALIB_STATE_INIT;
1916 1.1 ober break;
1917 1.1 ober }
1918 1.1 ober
1919 1.1 ober return sc->sc_newstate(ic, nstate, arg);
1920 1.1 ober }
1921 1.1 ober
1922 1.1 ober static void
1923 1.33 christos iwn_iter_func(void *arg, struct ieee80211_node *ni)
1924 1.1 ober {
1925 1.33 christos struct iwn_softc *sc = arg;
1926 1.33 christos struct iwn_node *wn = (struct iwn_node *)ni;
1927 1.1 ober
1928 1.33 christos ieee80211_amrr_choose(&sc->amrr, ni, &wn->amn);
1929 1.1 ober }
1930 1.1 ober
1931 1.1 ober static void
1932 1.33 christos iwn_calib_timeout(void *arg)
1933 1.1 ober {
1934 1.33 christos struct iwn_softc *sc = arg;
1935 1.33 christos struct ieee80211com *ic = &sc->sc_ic;
1936 1.33 christos int s;
1937 1.1 ober
1938 1.40 christos s = splnet();
1939 1.33 christos if (ic->ic_fixed_rate == -1) {
1940 1.33 christos if (ic->ic_opmode == IEEE80211_M_STA)
1941 1.33 christos iwn_iter_func(sc, ic->ic_bss);
1942 1.33 christos else
1943 1.33 christos ieee80211_iterate_nodes(&ic->ic_sta, iwn_iter_func, sc);
1944 1.33 christos }
1945 1.33 christos /* Force automatic TX power calibration every 60 secs. */
1946 1.33 christos if (++sc->calib_cnt >= 120) {
1947 1.33 christos uint32_t flags = 0;
1948 1.1 ober
1949 1.33 christos DPRINTF(("sending request for statistics\n"));
1950 1.33 christos (void)iwn_cmd(sc, IWN_CMD_GET_STATISTICS, &flags,
1951 1.33 christos sizeof flags, 1);
1952 1.33 christos sc->calib_cnt = 0;
1953 1.33 christos }
1954 1.40 christos splx(s);
1955 1.40 christos
1956 1.33 christos /* Automatic rate control triggered every 500ms. */
1957 1.33 christos callout_schedule(&sc->calib_to, hz/2);
1958 1.1 ober }
1959 1.1 ober
1960 1.1 ober /*
1961 1.33 christos * Process an RX_PHY firmware notification. This is usually immediately
1962 1.33 christos * followed by an MPDU_RX_DONE notification.
1963 1.1 ober */
1964 1.40 christos static void
1965 1.40 christos iwn_rx_phy(struct iwn_softc *sc, struct iwn_rx_desc *desc,
1966 1.40 christos struct iwn_rx_data *data)
1967 1.1 ober {
1968 1.33 christos struct iwn_rx_stat *stat = (struct iwn_rx_stat *)(desc + 1);
1969 1.1 ober
1970 1.33 christos DPRINTFN(2, ("received PHY stats\n"));
1971 1.40 christos bus_dmamap_sync(sc->sc_dmat, data->map, sizeof (*desc),
1972 1.40 christos sizeof (*stat), BUS_DMASYNC_POSTREAD);
1973 1.1 ober
1974 1.33 christos /* Save RX statistics, they will be used on MPDU_RX_DONE. */
1975 1.33 christos memcpy(&sc->last_rx_stat, stat, sizeof (*stat));
1976 1.33 christos sc->last_rx_valid = 1;
1977 1.1 ober }
1978 1.1 ober
1979 1.1 ober /*
1980 1.33 christos * Process an RX_DONE (4965AGN only) or MPDU_RX_DONE firmware notification.
1981 1.33 christos * Each MPDU_RX_DONE notification must be preceded by an RX_PHY one.
1982 1.1 ober */
1983 1.40 christos static void
1984 1.33 christos iwn_rx_done(struct iwn_softc *sc, struct iwn_rx_desc *desc,
1985 1.33 christos struct iwn_rx_data *data)
1986 1.1 ober {
1987 1.53 christos struct iwn_ops *ops = &sc->ops;
1988 1.33 christos struct ieee80211com *ic = &sc->sc_ic;
1989 1.33 christos struct ifnet *ifp = ic->ic_ifp;
1990 1.33 christos struct iwn_rx_ring *ring = &sc->rxq;
1991 1.33 christos struct ieee80211_frame *wh;
1992 1.33 christos struct ieee80211_node *ni;
1993 1.33 christos struct mbuf *m, *m1;
1994 1.33 christos struct iwn_rx_stat *stat;
1995 1.40 christos char *head;
1996 1.33 christos uint32_t flags;
1997 1.40 christos int error, len, rssi;
1998 1.1 ober
1999 1.33 christos if (desc->type == IWN_MPDU_RX_DONE) {
2000 1.33 christos /* Check for prior RX_PHY notification. */
2001 1.33 christos if (!sc->last_rx_valid) {
2002 1.33 christos DPRINTF(("missing RX_PHY\n"));
2003 1.33 christos return;
2004 1.33 christos }
2005 1.33 christos sc->last_rx_valid = 0;
2006 1.33 christos stat = &sc->last_rx_stat;
2007 1.33 christos } else
2008 1.33 christos stat = (struct iwn_rx_stat *)(desc + 1);
2009 1.1 ober
2010 1.33 christos bus_dmamap_sync(sc->sc_dmat, data->map, 0, IWN_RBUF_SIZE,
2011 1.33 christos BUS_DMASYNC_POSTREAD);
2012 1.1 ober
2013 1.33 christos if (stat->cfg_phy_len > IWN_STAT_MAXLEN) {
2014 1.40 christos aprint_error_dev(sc->sc_dev,
2015 1.40 christos "invalid RX statistic header\n");
2016 1.33 christos return;
2017 1.33 christos }
2018 1.33 christos if (desc->type == IWN_MPDU_RX_DONE) {
2019 1.40 christos struct iwn_rx_mpdu *mpdu = (struct iwn_rx_mpdu *)(desc + 1);
2020 1.33 christos head = (char *)(mpdu + 1);
2021 1.33 christos len = le16toh(mpdu->len);
2022 1.33 christos } else {
2023 1.33 christos head = (char *)(stat + 1) + stat->cfg_phy_len;
2024 1.33 christos len = le16toh(stat->len);
2025 1.33 christos }
2026 1.1 ober
2027 1.33 christos flags = le32toh(*(uint32_t *)(head + len));
2028 1.1 ober
2029 1.33 christos /* Discard frames with a bad FCS early. */
2030 1.33 christos if ((flags & IWN_RX_NOERROR) != IWN_RX_NOERROR) {
2031 1.33 christos DPRINTFN(2, ("RX flags error %x\n", flags));
2032 1.33 christos ifp->if_ierrors++;
2033 1.33 christos return;
2034 1.1 ober }
2035 1.33 christos /* Discard frames that are too short. */
2036 1.40 christos if (len < sizeof (*wh)) {
2037 1.33 christos DPRINTF(("frame too short: %d\n", len));
2038 1.33 christos ic->ic_stats.is_rx_tooshort++;
2039 1.33 christos ifp->if_ierrors++;
2040 1.33 christos return;
2041 1.1 ober }
2042 1.1 ober
2043 1.40 christos m1 = MCLGETIalt(sc, M_DONTWAIT, NULL, IWN_RBUF_SIZE);
2044 1.33 christos if (m1 == NULL) {
2045 1.33 christos ic->ic_stats.is_rx_nobuf++;
2046 1.33 christos ifp->if_ierrors++;
2047 1.33 christos return;
2048 1.1 ober }
2049 1.33 christos bus_dmamap_unload(sc->sc_dmat, data->map);
2050 1.1 ober
2051 1.40 christos error = bus_dmamap_load(sc->sc_dmat, data->map, mtod(m1, void *),
2052 1.40 christos IWN_RBUF_SIZE, NULL, BUS_DMA_NOWAIT | BUS_DMA_READ);
2053 1.33 christos if (error != 0) {
2054 1.33 christos m_freem(m1);
2055 1.1 ober
2056 1.33 christos /* Try to reload the old mbuf. */
2057 1.33 christos error = bus_dmamap_load(sc->sc_dmat, data->map,
2058 1.40 christos mtod(data->m, void *), IWN_RBUF_SIZE, NULL,
2059 1.40 christos BUS_DMA_NOWAIT | BUS_DMA_READ);
2060 1.33 christos if (error != 0) {
2061 1.33 christos panic("%s: could not load old RX mbuf",
2062 1.33 christos device_xname(sc->sc_dev));
2063 1.33 christos }
2064 1.33 christos /* Physical address may have changed. */
2065 1.33 christos ring->desc[ring->cur] =
2066 1.33 christos htole32(data->map->dm_segs[0].ds_addr >> 8);
2067 1.33 christos bus_dmamap_sync(sc->sc_dmat, ring->desc_dma.map,
2068 1.33 christos ring->cur * sizeof (uint32_t), sizeof (uint32_t),
2069 1.33 christos BUS_DMASYNC_PREWRITE);
2070 1.1 ober ifp->if_ierrors++;
2071 1.1 ober return;
2072 1.1 ober }
2073 1.40 christos
2074 1.33 christos m = data->m;
2075 1.33 christos data->m = m1;
2076 1.33 christos /* Update RX descriptor. */
2077 1.33 christos ring->desc[ring->cur] = htole32(data->map->dm_segs[0].ds_addr >> 8);
2078 1.33 christos bus_dmamap_sync(sc->sc_dmat, ring->desc_dma.map,
2079 1.33 christos ring->cur * sizeof (uint32_t), sizeof (uint32_t),
2080 1.33 christos BUS_DMASYNC_PREWRITE);
2081 1.1 ober
2082 1.33 christos /* Finalize mbuf. */
2083 1.78 ozaki m_set_rcvif(m, ifp);
2084 1.1 ober m->m_data = head;
2085 1.1 ober m->m_pkthdr.len = m->m_len = len;
2086 1.1 ober
2087 1.33 christos /* Grab a reference to the source node. */
2088 1.33 christos wh = mtod(m, struct ieee80211_frame *);
2089 1.40 christos ni = ieee80211_find_rxnode(ic, (struct ieee80211_frame_min *)wh);
2090 1.33 christos
2091 1.44 christos /* XXX OpenBSD adds decryption here (see also comments in iwn_tx). */
2092 1.44 christos /* NetBSD does decryption in ieee80211_input. */
2093 1.44 christos
2094 1.53 christos rssi = ops->get_rssi(stat);
2095 1.1 ober
2096 1.44 christos /* XXX Added for NetBSD: scans never stop without it */
2097 1.22 rtr if (ic->ic_state == IEEE80211_S_SCAN)
2098 1.76 nonaka iwn_fix_channel(ic, m, stat);
2099 1.1 ober
2100 1.1 ober if (sc->sc_drvbpf != NULL) {
2101 1.2 ober struct iwn_rx_radiotap_header *tap = &sc->sc_rxtap;
2102 1.1 ober
2103 1.1 ober tap->wr_flags = 0;
2104 1.33 christos if (stat->flags & htole16(IWN_STAT_FLAG_SHPREAMBLE))
2105 1.33 christos tap->wr_flags |= IEEE80211_RADIOTAP_F_SHORTPRE;
2106 1.1 ober tap->wr_chan_freq =
2107 1.1 ober htole16(ic->ic_channels[stat->chan].ic_freq);
2108 1.1 ober tap->wr_chan_flags =
2109 1.1 ober htole16(ic->ic_channels[stat->chan].ic_flags);
2110 1.1 ober tap->wr_dbm_antsignal = (int8_t)rssi;
2111 1.1 ober tap->wr_dbm_antnoise = (int8_t)sc->noise;
2112 1.1 ober tap->wr_tsft = stat->tstamp;
2113 1.1 ober switch (stat->rate) {
2114 1.33 christos /* CCK rates. */
2115 1.1 ober case 10: tap->wr_rate = 2; break;
2116 1.1 ober case 20: tap->wr_rate = 4; break;
2117 1.1 ober case 55: tap->wr_rate = 11; break;
2118 1.1 ober case 110: tap->wr_rate = 22; break;
2119 1.33 christos /* OFDM rates. */
2120 1.1 ober case 0xd: tap->wr_rate = 12; break;
2121 1.1 ober case 0xf: tap->wr_rate = 18; break;
2122 1.1 ober case 0x5: tap->wr_rate = 24; break;
2123 1.1 ober case 0x7: tap->wr_rate = 36; break;
2124 1.1 ober case 0x9: tap->wr_rate = 48; break;
2125 1.1 ober case 0xb: tap->wr_rate = 72; break;
2126 1.1 ober case 0x1: tap->wr_rate = 96; break;
2127 1.1 ober case 0x3: tap->wr_rate = 108; break;
2128 1.33 christos /* Unknown rate: should not happen. */
2129 1.1 ober default: tap->wr_rate = 0;
2130 1.1 ober }
2131 1.1 ober
2132 1.38 joerg bpf_mtap2(sc->sc_drvbpf, tap, sc->sc_rxtap_len, m);
2133 1.1 ober }
2134 1.1 ober
2135 1.33 christos /* Send the frame to the 802.11 layer. */
2136 1.1 ober ieee80211_input(ic, m, ni, rssi, 0);
2137 1.1 ober
2138 1.33 christos /* Node is no longer needed. */
2139 1.1 ober ieee80211_free_node(ni);
2140 1.1 ober }
2141 1.1 ober
2142 1.40 christos #ifndef IEEE80211_NO_HT
2143 1.40 christos /* Process an incoming Compressed BlockAck. */
2144 1.40 christos static void
2145 1.40 christos iwn_rx_compressed_ba(struct iwn_softc *sc, struct iwn_rx_desc *desc,
2146 1.40 christos struct iwn_rx_data *data)
2147 1.40 christos {
2148 1.40 christos struct iwn_compressed_ba *ba = (struct iwn_compressed_ba *)(desc + 1);
2149 1.40 christos struct iwn_tx_ring *txq;
2150 1.40 christos
2151 1.40 christos bus_dmamap_sync(sc->sc_dmat, data->map, sizeof (*desc), sizeof (*ba),
2152 1.40 christos BUS_DMASYNC_POSTREAD);
2153 1.40 christos
2154 1.40 christos txq = &sc->txq[le16toh(ba->qid)];
2155 1.40 christos /* XXX TBD */
2156 1.40 christos }
2157 1.40 christos #endif
2158 1.40 christos
2159 1.33 christos /*
2160 1.33 christos * Process a CALIBRATION_RESULT notification sent by the initialization
2161 1.53 christos * firmware on response to a CMD_CALIB_CONFIG command (5000 only).
2162 1.33 christos */
2163 1.40 christos static void
2164 1.33 christos iwn5000_rx_calib_results(struct iwn_softc *sc, struct iwn_rx_desc *desc,
2165 1.33 christos struct iwn_rx_data *data)
2166 1.33 christos {
2167 1.33 christos struct iwn_phy_calib *calib = (struct iwn_phy_calib *)(desc + 1);
2168 1.33 christos int len, idx = -1;
2169 1.33 christos
2170 1.33 christos /* Runtime firmware should not send such a notification. */
2171 1.40 christos if (sc->sc_flags & IWN_FLAG_CALIB_DONE)
2172 1.33 christos return;
2173 1.33 christos
2174 1.33 christos len = (le32toh(desc->len) & 0x3fff) - 4;
2175 1.33 christos bus_dmamap_sync(sc->sc_dmat, data->map, sizeof (*desc), len,
2176 1.33 christos BUS_DMASYNC_POSTREAD);
2177 1.33 christos
2178 1.33 christos switch (calib->code) {
2179 1.33 christos case IWN5000_PHY_CALIB_DC:
2180 1.72 nonaka if (sc->hw_type == IWN_HW_REV_TYPE_5150 ||
2181 1.72 nonaka sc->hw_type == IWN_HW_REV_TYPE_2030 ||
2182 1.72 nonaka sc->hw_type == IWN_HW_REV_TYPE_2000 ||
2183 1.72 nonaka sc->hw_type == IWN_HW_REV_TYPE_135 ||
2184 1.72 nonaka sc->hw_type == IWN_HW_REV_TYPE_105)
2185 1.33 christos idx = 0;
2186 1.33 christos break;
2187 1.33 christos case IWN5000_PHY_CALIB_LO:
2188 1.33 christos idx = 1;
2189 1.33 christos break;
2190 1.33 christos case IWN5000_PHY_CALIB_TX_IQ:
2191 1.33 christos idx = 2;
2192 1.33 christos break;
2193 1.40 christos case IWN5000_PHY_CALIB_TX_IQ_PERIODIC:
2194 1.40 christos if (sc->hw_type < IWN_HW_REV_TYPE_6000 &&
2195 1.40 christos sc->hw_type != IWN_HW_REV_TYPE_5150)
2196 1.33 christos idx = 3;
2197 1.33 christos break;
2198 1.33 christos case IWN5000_PHY_CALIB_BASE_BAND:
2199 1.33 christos idx = 4;
2200 1.33 christos break;
2201 1.33 christos }
2202 1.33 christos if (idx == -1) /* Ignore other results. */
2203 1.33 christos return;
2204 1.33 christos
2205 1.33 christos /* Save calibration result. */
2206 1.33 christos if (sc->calibcmd[idx].buf != NULL)
2207 1.33 christos free(sc->calibcmd[idx].buf, M_DEVBUF);
2208 1.33 christos sc->calibcmd[idx].buf = malloc(len, M_DEVBUF, M_NOWAIT);
2209 1.33 christos if (sc->calibcmd[idx].buf == NULL) {
2210 1.33 christos DPRINTF(("not enough memory for calibration result %d\n",
2211 1.33 christos calib->code));
2212 1.33 christos return;
2213 1.33 christos }
2214 1.33 christos DPRINTF(("saving calibration result code=%d len=%d\n",
2215 1.33 christos calib->code, len));
2216 1.33 christos sc->calibcmd[idx].len = len;
2217 1.33 christos memcpy(sc->calibcmd[idx].buf, calib, len);
2218 1.33 christos }
2219 1.33 christos
2220 1.33 christos /*
2221 1.33 christos * Process an RX_STATISTICS or BEACON_STATISTICS firmware notification.
2222 1.33 christos * The latter is sent by the firmware after each received beacon.
2223 1.33 christos */
2224 1.1 ober static void
2225 1.33 christos iwn_rx_statistics(struct iwn_softc *sc, struct iwn_rx_desc *desc,
2226 1.33 christos struct iwn_rx_data *data)
2227 1.1 ober {
2228 1.53 christos struct iwn_ops *ops = &sc->ops;
2229 1.1 ober struct ieee80211com *ic = &sc->sc_ic;
2230 1.1 ober struct iwn_calib_state *calib = &sc->calib;
2231 1.1 ober struct iwn_stats *stats = (struct iwn_stats *)(desc + 1);
2232 1.40 christos int temp;
2233 1.1 ober
2234 1.33 christos /* Ignore statistics received during a scan. */
2235 1.1 ober if (ic->ic_state != IEEE80211_S_RUN)
2236 1.1 ober return;
2237 1.1 ober
2238 1.33 christos bus_dmamap_sync(sc->sc_dmat, data->map, sizeof (*desc),
2239 1.33 christos sizeof (*stats), BUS_DMASYNC_POSTREAD);
2240 1.33 christos
2241 1.1 ober DPRINTFN(3, ("received statistics (cmd=%d)\n", desc->type));
2242 1.33 christos sc->calib_cnt = 0; /* Reset TX power calibration timeout. */
2243 1.1 ober
2244 1.33 christos /* Test if temperature has changed. */
2245 1.1 ober if (stats->general.temp != sc->rawtemp) {
2246 1.33 christos /* Convert "raw" temperature to degC. */
2247 1.1 ober sc->rawtemp = stats->general.temp;
2248 1.53 christos temp = ops->get_temperature(sc);
2249 1.33 christos DPRINTFN(2, ("temperature=%dC\n", temp));
2250 1.1 ober
2251 1.53 christos /* Update TX power if need be (4965AGN only). */
2252 1.33 christos if (sc->hw_type == IWN_HW_REV_TYPE_4965)
2253 1.33 christos iwn4965_power_calibration(sc, temp);
2254 1.1 ober }
2255 1.1 ober
2256 1.1 ober if (desc->type != IWN_BEACON_STATISTICS)
2257 1.33 christos return; /* Reply to a statistics request. */
2258 1.1 ober
2259 1.1 ober sc->noise = iwn_get_noise(&stats->rx.general);
2260 1.1 ober
2261 1.33 christos /* Test that RSSI and noise are present in stats report. */
2262 1.1 ober if (le32toh(stats->rx.general.flags) != 1) {
2263 1.1 ober DPRINTF(("received statistics without RSSI\n"));
2264 1.1 ober return;
2265 1.1 ober }
2266 1.1 ober
2267 1.59 elric /*
2268 1.59 elric * XXX Differential gain calibration makes the 6005 firmware
2269 1.59 elric * crap out, so skip it for now. This effectively disables
2270 1.59 elric * sensitivity tuning as well.
2271 1.59 elric */
2272 1.59 elric if (sc->hw_type == IWN_HW_REV_TYPE_6005)
2273 1.59 elric return;
2274 1.59 elric
2275 1.1 ober if (calib->state == IWN_CALIB_STATE_ASSOC)
2276 1.33 christos iwn_collect_noise(sc, &stats->rx.general);
2277 1.1 ober else if (calib->state == IWN_CALIB_STATE_RUN)
2278 1.1 ober iwn_tune_sensitivity(sc, &stats->rx);
2279 1.1 ober }
2280 1.1 ober
2281 1.33 christos /*
2282 1.33 christos * Process a TX_DONE firmware notification. Unfortunately, the 4965AGN
2283 1.33 christos * and 5000 adapters have different incompatible TX status formats.
2284 1.33 christos */
2285 1.33 christos static void
2286 1.33 christos iwn4965_tx_done(struct iwn_softc *sc, struct iwn_rx_desc *desc,
2287 1.33 christos struct iwn_rx_data *data)
2288 1.33 christos {
2289 1.33 christos struct iwn4965_tx_stat *stat = (struct iwn4965_tx_stat *)(desc + 1);
2290 1.33 christos
2291 1.33 christos bus_dmamap_sync(sc->sc_dmat, data->map, sizeof (*desc),
2292 1.33 christos sizeof (*stat), BUS_DMASYNC_POSTREAD);
2293 1.40 christos iwn_tx_done(sc, desc, stat->ackfailcnt, le32toh(stat->status) & 0xff);
2294 1.33 christos }
2295 1.33 christos
2296 1.33 christos static void
2297 1.33 christos iwn5000_tx_done(struct iwn_softc *sc, struct iwn_rx_desc *desc,
2298 1.33 christos struct iwn_rx_data *data)
2299 1.33 christos {
2300 1.33 christos struct iwn5000_tx_stat *stat = (struct iwn5000_tx_stat *)(desc + 1);
2301 1.33 christos
2302 1.40 christos #ifdef notyet
2303 1.33 christos /* Reset TX scheduler slot. */
2304 1.33 christos iwn5000_reset_sched(sc, desc->qid & 0xf, desc->idx);
2305 1.40 christos #endif
2306 1.33 christos
2307 1.33 christos bus_dmamap_sync(sc->sc_dmat, data->map, sizeof (*desc),
2308 1.33 christos sizeof (*stat), BUS_DMASYNC_POSTREAD);
2309 1.40 christos iwn_tx_done(sc, desc, stat->ackfailcnt, le16toh(stat->status) & 0xff);
2310 1.33 christos }
2311 1.33 christos
2312 1.33 christos /*
2313 1.33 christos * Adapter-independent backend for TX_DONE firmware notifications.
2314 1.33 christos */
2315 1.1 ober static void
2316 1.40 christos iwn_tx_done(struct iwn_softc *sc, struct iwn_rx_desc *desc, int ackfailcnt,
2317 1.33 christos uint8_t status)
2318 1.1 ober {
2319 1.40 christos struct ieee80211com *ic = &sc->sc_ic;
2320 1.40 christos struct ifnet *ifp = ic->ic_ifp;
2321 1.1 ober struct iwn_tx_ring *ring = &sc->txq[desc->qid & 0xf];
2322 1.33 christos struct iwn_tx_data *data = &ring->data[desc->idx];
2323 1.33 christos struct iwn_node *wn = (struct iwn_node *)data->ni;
2324 1.1 ober
2325 1.33 christos /* Update rate control statistics. */
2326 1.1 ober wn->amn.amn_txcnt++;
2327 1.40 christos if (ackfailcnt > 0)
2328 1.1 ober wn->amn.amn_retrycnt++;
2329 1.1 ober
2330 1.1 ober if (status != 1 && status != 2)
2331 1.1 ober ifp->if_oerrors++;
2332 1.1 ober else
2333 1.1 ober ifp->if_opackets++;
2334 1.1 ober
2335 1.33 christos /* Unmap and free mbuf. */
2336 1.33 christos bus_dmamap_sync(sc->sc_dmat, data->map, 0, data->map->dm_mapsize,
2337 1.33 christos BUS_DMASYNC_POSTWRITE);
2338 1.33 christos bus_dmamap_unload(sc->sc_dmat, data->map);
2339 1.33 christos m_freem(data->m);
2340 1.33 christos data->m = NULL;
2341 1.33 christos ieee80211_free_node(data->ni);
2342 1.33 christos data->ni = NULL;
2343 1.1 ober
2344 1.1 ober sc->sc_tx_timer = 0;
2345 1.33 christos if (--ring->queued < IWN_TX_RING_LOMARK) {
2346 1.33 christos sc->qfullmsk &= ~(1 << ring->qid);
2347 1.33 christos if (sc->qfullmsk == 0 && (ifp->if_flags & IFF_OACTIVE)) {
2348 1.33 christos ifp->if_flags &= ~IFF_OACTIVE;
2349 1.81 ozaki if_schedule_deferred_start(ifp);
2350 1.33 christos }
2351 1.33 christos }
2352 1.1 ober }
2353 1.1 ober
2354 1.33 christos /*
2355 1.33 christos * Process a "command done" firmware notification. This is where we wakeup
2356 1.33 christos * processes waiting for a synchronous command completion.
2357 1.33 christos */
2358 1.1 ober static void
2359 1.33 christos iwn_cmd_done(struct iwn_softc *sc, struct iwn_rx_desc *desc)
2360 1.1 ober {
2361 1.1 ober struct iwn_tx_ring *ring = &sc->txq[4];
2362 1.1 ober struct iwn_tx_data *data;
2363 1.1 ober
2364 1.1 ober if ((desc->qid & 0xf) != 4)
2365 1.33 christos return; /* Not a command ack. */
2366 1.1 ober
2367 1.1 ober data = &ring->data[desc->idx];
2368 1.1 ober
2369 1.33 christos /* If the command was mapped in an mbuf, free it. */
2370 1.1 ober if (data->m != NULL) {
2371 1.33 christos bus_dmamap_sync(sc->sc_dmat, data->map, 0,
2372 1.33 christos data->map->dm_mapsize, BUS_DMASYNC_POSTWRITE);
2373 1.1 ober bus_dmamap_unload(sc->sc_dmat, data->map);
2374 1.1 ober m_freem(data->m);
2375 1.1 ober data->m = NULL;
2376 1.1 ober }
2377 1.33 christos wakeup(&ring->desc[desc->idx]);
2378 1.1 ober }
2379 1.1 ober
2380 1.33 christos /*
2381 1.33 christos * Process an INT_FH_RX or INT_SW_RX interrupt.
2382 1.33 christos */
2383 1.1 ober static void
2384 1.1 ober iwn_notif_intr(struct iwn_softc *sc)
2385 1.1 ober {
2386 1.53 christos struct iwn_ops *ops = &sc->ops;
2387 1.1 ober struct ieee80211com *ic = &sc->sc_ic;
2388 1.1 ober struct ifnet *ifp = ic->ic_ifp;
2389 1.1 ober uint16_t hw;
2390 1.1 ober
2391 1.33 christos bus_dmamap_sync(sc->sc_dmat, sc->rxq.stat_dma.map,
2392 1.33 christos 0, sc->rxq.stat_dma.size, BUS_DMASYNC_POSTREAD);
2393 1.33 christos
2394 1.33 christos hw = le16toh(sc->rxq.stat->closed_count) & 0xfff;
2395 1.1 ober while (sc->rxq.cur != hw) {
2396 1.40 christos struct iwn_rx_data *data = &sc->rxq.data[sc->rxq.cur];
2397 1.40 christos struct iwn_rx_desc *desc;
2398 1.1 ober
2399 1.33 christos bus_dmamap_sync(sc->sc_dmat, data->map, 0, sizeof (*desc),
2400 1.33 christos BUS_DMASYNC_POSTREAD);
2401 1.40 christos desc = mtod(data->m, struct iwn_rx_desc *);
2402 1.33 christos
2403 1.33 christos DPRINTFN(4, ("notification qid=%d idx=%d flags=%x type=%d\n",
2404 1.33 christos desc->qid & 0xf, desc->idx, desc->flags, desc->type));
2405 1.1 ober
2406 1.33 christos if (!(desc->qid & 0x80)) /* Reply to a command. */
2407 1.33 christos iwn_cmd_done(sc, desc);
2408 1.1 ober
2409 1.1 ober switch (desc->type) {
2410 1.33 christos case IWN_RX_PHY:
2411 1.40 christos iwn_rx_phy(sc, desc, data);
2412 1.1 ober break;
2413 1.1 ober
2414 1.33 christos case IWN_RX_DONE: /* 4965AGN only. */
2415 1.33 christos case IWN_MPDU_RX_DONE:
2416 1.33 christos /* An 802.11 frame has been received. */
2417 1.33 christos iwn_rx_done(sc, desc, data);
2418 1.1 ober break;
2419 1.40 christos #ifndef IEEE80211_NO_HT
2420 1.40 christos case IWN_RX_COMPRESSED_BA:
2421 1.40 christos /* A Compressed BlockAck has been received. */
2422 1.40 christos iwn_rx_compressed_ba(sc, desc, data);
2423 1.40 christos break;
2424 1.40 christos #endif
2425 1.1 ober case IWN_TX_DONE:
2426 1.33 christos /* An 802.11 frame has been transmitted. */
2427 1.53 christos ops->tx_done(sc, desc, data);
2428 1.1 ober break;
2429 1.1 ober
2430 1.1 ober case IWN_RX_STATISTICS:
2431 1.1 ober case IWN_BEACON_STATISTICS:
2432 1.33 christos iwn_rx_statistics(sc, desc, data);
2433 1.1 ober break;
2434 1.1 ober
2435 1.1 ober case IWN_BEACON_MISSED:
2436 1.1 ober {
2437 1.1 ober struct iwn_beacon_missed *miss =
2438 1.1 ober (struct iwn_beacon_missed *)(desc + 1);
2439 1.33 christos
2440 1.33 christos bus_dmamap_sync(sc->sc_dmat, data->map, sizeof (*desc),
2441 1.33 christos sizeof (*miss), BUS_DMASYNC_POSTREAD);
2442 1.1 ober /*
2443 1.1 ober * If more than 5 consecutive beacons are missed,
2444 1.1 ober * reinitialize the sensitivity state machine.
2445 1.1 ober */
2446 1.33 christos DPRINTF(("beacons missed %d/%d\n",
2447 1.33 christos le32toh(miss->consecutive), le32toh(miss->total)));
2448 1.1 ober if (ic->ic_state == IEEE80211_S_RUN &&
2449 1.1 ober le32toh(miss->consecutive) > 5)
2450 1.1 ober (void)iwn_init_sensitivity(sc);
2451 1.1 ober break;
2452 1.1 ober }
2453 1.1 ober case IWN_UC_READY:
2454 1.1 ober {
2455 1.40 christos struct iwn_ucode_info *uc =
2456 1.40 christos (struct iwn_ucode_info *)(desc + 1);
2457 1.40 christos
2458 1.40 christos /* The microcontroller is ready. */
2459 1.40 christos bus_dmamap_sync(sc->sc_dmat, data->map, sizeof (*desc),
2460 1.40 christos sizeof (*uc), BUS_DMASYNC_POSTREAD);
2461 1.40 christos DPRINTF(("microcode alive notification version=%d.%d "
2462 1.40 christos "subtype=%x alive=%x\n", uc->major, uc->minor,
2463 1.40 christos uc->subtype, le32toh(uc->valid)));
2464 1.40 christos
2465 1.40 christos if (le32toh(uc->valid) != 1) {
2466 1.40 christos aprint_error_dev(sc->sc_dev,
2467 1.40 christos "microcontroller initialization "
2468 1.40 christos "failed\n");
2469 1.40 christos break;
2470 1.40 christos }
2471 1.40 christos if (uc->subtype == IWN_UCODE_INIT) {
2472 1.40 christos /* Save microcontroller report. */
2473 1.40 christos memcpy(&sc->ucode_info, uc, sizeof (*uc));
2474 1.40 christos }
2475 1.40 christos /* Save the address of the error log in SRAM. */
2476 1.40 christos sc->errptr = le32toh(uc->errptr);
2477 1.1 ober break;
2478 1.1 ober }
2479 1.1 ober case IWN_STATE_CHANGED:
2480 1.1 ober {
2481 1.1 ober uint32_t *status = (uint32_t *)(desc + 1);
2482 1.1 ober
2483 1.33 christos /* Enabled/disabled notification. */
2484 1.33 christos bus_dmamap_sync(sc->sc_dmat, data->map, sizeof (*desc),
2485 1.33 christos sizeof (*status), BUS_DMASYNC_POSTREAD);
2486 1.1 ober DPRINTF(("state changed to %x\n", le32toh(*status)));
2487 1.1 ober
2488 1.1 ober if (le32toh(*status) & 1) {
2489 1.33 christos /* The radio button has to be pushed. */
2490 1.33 christos aprint_error_dev(sc->sc_dev,
2491 1.33 christos "Radio transmitter is off\n");
2492 1.33 christos /* Turn the interface down. */
2493 1.40 christos ifp->if_flags &= ~IFF_UP;
2494 1.1 ober iwn_stop(ifp, 1);
2495 1.33 christos return; /* No further processing. */
2496 1.1 ober }
2497 1.1 ober break;
2498 1.1 ober }
2499 1.1 ober case IWN_START_SCAN:
2500 1.1 ober {
2501 1.1 ober struct iwn_start_scan *scan =
2502 1.1 ober (struct iwn_start_scan *)(desc + 1);
2503 1.1 ober
2504 1.33 christos bus_dmamap_sync(sc->sc_dmat, data->map, sizeof (*desc),
2505 1.33 christos sizeof (*scan), BUS_DMASYNC_POSTREAD);
2506 1.1 ober DPRINTFN(2, ("scanning channel %d status %x\n",
2507 1.33 christos scan->chan, le32toh(scan->status)));
2508 1.1 ober
2509 1.33 christos /* Fix current channel. */
2510 1.1 ober ic->ic_bss->ni_chan = &ic->ic_channels[scan->chan];
2511 1.1 ober break;
2512 1.1 ober }
2513 1.1 ober case IWN_STOP_SCAN:
2514 1.1 ober {
2515 1.1 ober struct iwn_stop_scan *scan =
2516 1.1 ober (struct iwn_stop_scan *)(desc + 1);
2517 1.1 ober
2518 1.33 christos bus_dmamap_sync(sc->sc_dmat, data->map, sizeof (*desc),
2519 1.33 christos sizeof (*scan), BUS_DMASYNC_POSTREAD);
2520 1.1 ober DPRINTF(("scan finished nchan=%d status=%d chan=%d\n",
2521 1.33 christos scan->nchan, scan->status, scan->chan));
2522 1.1 ober
2523 1.33 christos if (scan->status == 1 && scan->chan <= 14 &&
2524 1.33 christos (sc->sc_flags & IWN_FLAG_HAS_5GHZ)) {
2525 1.1 ober /*
2526 1.33 christos * We just finished scanning 2GHz channels,
2527 1.33 christos * start scanning 5GHz ones.
2528 1.1 ober */
2529 1.76 nonaka sc->sc_flags &= ~IWN_FLAG_SCANNING_2GHZ;
2530 1.76 nonaka sc->sc_flags |= IWN_FLAG_SCANNING_5GHZ;
2531 1.33 christos if (iwn_scan(sc, IEEE80211_CHAN_5GHZ) == 0)
2532 1.1 ober break;
2533 1.1 ober }
2534 1.40 christos sc->sc_flags &= ~IWN_FLAG_SCANNING;
2535 1.1 ober ieee80211_end_scan(ic);
2536 1.1 ober break;
2537 1.1 ober }
2538 1.33 christos case IWN5000_CALIBRATION_RESULT:
2539 1.33 christos iwn5000_rx_calib_results(sc, desc, data);
2540 1.33 christos break;
2541 1.33 christos
2542 1.33 christos case IWN5000_CALIBRATION_DONE:
2543 1.40 christos sc->sc_flags |= IWN_FLAG_CALIB_DONE;
2544 1.33 christos wakeup(sc);
2545 1.33 christos break;
2546 1.1 ober }
2547 1.1 ober
2548 1.1 ober sc->rxq.cur = (sc->rxq.cur + 1) % IWN_RX_RING_COUNT;
2549 1.1 ober }
2550 1.1 ober
2551 1.33 christos /* Tell the firmware what we have processed. */
2552 1.1 ober hw = (hw == 0) ? IWN_RX_RING_COUNT - 1 : hw - 1;
2553 1.33 christos IWN_WRITE(sc, IWN_FH_RX_WPTR, hw & ~7);
2554 1.1 ober }
2555 1.1 ober
2556 1.33 christos /*
2557 1.33 christos * Process an INT_WAKEUP interrupt raised when the microcontroller wakes up
2558 1.33 christos * from power-down sleep mode.
2559 1.33 christos */
2560 1.33 christos static void
2561 1.33 christos iwn_wakeup_intr(struct iwn_softc *sc)
2562 1.1 ober {
2563 1.33 christos int qid;
2564 1.1 ober
2565 1.33 christos DPRINTF(("ucode wakeup from power-down sleep\n"));
2566 1.1 ober
2567 1.33 christos /* Wakeup RX and TX rings. */
2568 1.33 christos IWN_WRITE(sc, IWN_FH_RX_WPTR, sc->rxq.cur & ~7);
2569 1.53 christos for (qid = 0; qid < sc->ntxqs; qid++) {
2570 1.33 christos struct iwn_tx_ring *ring = &sc->txq[qid];
2571 1.33 christos IWN_WRITE(sc, IWN_HBUS_TARG_WRPTR, qid << 8 | ring->cur);
2572 1.1 ober }
2573 1.33 christos }
2574 1.1 ober
2575 1.33 christos /*
2576 1.33 christos * Dump the error log of the firmware when a firmware panic occurs. Although
2577 1.33 christos * we can't debug the firmware because it is neither open source nor free, it
2578 1.33 christos * can help us to identify certain classes of problems.
2579 1.33 christos */
2580 1.40 christos static void
2581 1.33 christos iwn_fatal_intr(struct iwn_softc *sc)
2582 1.33 christos {
2583 1.33 christos struct iwn_fw_dump dump;
2584 1.33 christos int i;
2585 1.1 ober
2586 1.40 christos /* Force a complete recalibration on next init. */
2587 1.40 christos sc->sc_flags &= ~IWN_FLAG_CALIB_DONE;
2588 1.40 christos
2589 1.33 christos /* Check that the error log address is valid. */
2590 1.33 christos if (sc->errptr < IWN_FW_DATA_BASE ||
2591 1.33 christos sc->errptr + sizeof (dump) >
2592 1.53 christos IWN_FW_DATA_BASE + sc->fw_data_maxsz) {
2593 1.33 christos aprint_error_dev(sc->sc_dev,
2594 1.33 christos "bad firmware error log address 0x%08x\n", sc->errptr);
2595 1.33 christos return;
2596 1.33 christos }
2597 1.33 christos if (iwn_nic_lock(sc) != 0) {
2598 1.33 christos aprint_error_dev(sc->sc_dev,
2599 1.33 christos "could not read firmware error log\n");
2600 1.33 christos return;
2601 1.33 christos }
2602 1.33 christos /* Read firmware error log from SRAM. */
2603 1.33 christos iwn_mem_read_region_4(sc, sc->errptr, (uint32_t *)&dump,
2604 1.33 christos sizeof (dump) / sizeof (uint32_t));
2605 1.33 christos iwn_nic_unlock(sc);
2606 1.1 ober
2607 1.33 christos if (dump.valid == 0) {
2608 1.40 christos aprint_error_dev(sc->sc_dev,
2609 1.40 christos "firmware error log is empty\n");
2610 1.33 christos return;
2611 1.33 christos }
2612 1.40 christos aprint_error("firmware error log:\n");
2613 1.40 christos aprint_error(" error type = \"%s\" (0x%08X)\n",
2614 1.40 christos (dump.id < __arraycount(iwn_fw_errmsg)) ?
2615 1.33 christos iwn_fw_errmsg[dump.id] : "UNKNOWN",
2616 1.33 christos dump.id);
2617 1.40 christos aprint_error(" program counter = 0x%08X\n", dump.pc);
2618 1.40 christos aprint_error(" source line = 0x%08X\n", dump.src_line);
2619 1.40 christos aprint_error(" error data = 0x%08X%08X\n",
2620 1.33 christos dump.error_data[0], dump.error_data[1]);
2621 1.40 christos aprint_error(" branch link = 0x%08X%08X\n",
2622 1.33 christos dump.branch_link[0], dump.branch_link[1]);
2623 1.40 christos aprint_error(" interrupt link = 0x%08X%08X\n",
2624 1.33 christos dump.interrupt_link[0], dump.interrupt_link[1]);
2625 1.40 christos aprint_error(" time = %u\n", dump.time[0]);
2626 1.33 christos
2627 1.33 christos /* Dump driver status (TX and RX rings) while we're here. */
2628 1.40 christos aprint_error("driver status:\n");
2629 1.53 christos for (i = 0; i < sc->ntxqs; i++) {
2630 1.33 christos struct iwn_tx_ring *ring = &sc->txq[i];
2631 1.40 christos aprint_error(" tx ring %2d: qid=%-2d cur=%-3d queued=%-3d\n",
2632 1.33 christos i, ring->qid, ring->cur, ring->queued);
2633 1.33 christos }
2634 1.40 christos aprint_error(" rx ring: cur=%d\n", sc->rxq.cur);
2635 1.40 christos aprint_error(" 802.11 state %d\n", sc->sc_ic.ic_state);
2636 1.33 christos }
2637 1.33 christos
2638 1.33 christos static int
2639 1.33 christos iwn_intr(void *arg)
2640 1.33 christos {
2641 1.33 christos struct iwn_softc *sc = arg;
2642 1.33 christos struct ifnet *ifp = sc->sc_ic.ic_ifp;
2643 1.40 christos uint32_t r1, r2, tmp;
2644 1.33 christos
2645 1.33 christos /* Disable interrupts. */
2646 1.40 christos IWN_WRITE(sc, IWN_INT_MASK, 0);
2647 1.33 christos
2648 1.40 christos /* Read interrupts from ICT (fast) or from registers (slow). */
2649 1.40 christos if (sc->sc_flags & IWN_FLAG_USE_ICT) {
2650 1.80 hkenken bus_dmamap_sync(sc->sc_dmat, sc->ict_dma.map, 0,
2651 1.80 hkenken IWN_ICT_SIZE, BUS_DMASYNC_POSTREAD);
2652 1.40 christos tmp = 0;
2653 1.40 christos while (sc->ict[sc->ict_cur] != 0) {
2654 1.40 christos tmp |= sc->ict[sc->ict_cur];
2655 1.40 christos sc->ict[sc->ict_cur] = 0; /* Acknowledge. */
2656 1.40 christos sc->ict_cur = (sc->ict_cur + 1) % IWN_ICT_COUNT;
2657 1.40 christos }
2658 1.80 hkenken bus_dmamap_sync(sc->sc_dmat, sc->ict_dma.map, 0,
2659 1.80 hkenken IWN_ICT_SIZE, BUS_DMASYNC_PREWRITE);
2660 1.40 christos tmp = le32toh(tmp);
2661 1.40 christos if (tmp == 0xffffffff) /* Shouldn't happen. */
2662 1.40 christos tmp = 0;
2663 1.44 christos else if (tmp & 0xc0000) /* Workaround a HW bug. */
2664 1.40 christos tmp |= 0x8000;
2665 1.40 christos r1 = (tmp & 0xff00) << 16 | (tmp & 0xff);
2666 1.40 christos r2 = 0; /* Unused. */
2667 1.40 christos } else {
2668 1.40 christos r1 = IWN_READ(sc, IWN_INT);
2669 1.40 christos if (r1 == 0xffffffff || (r1 & 0xfffffff0) == 0xa5a5a5a0)
2670 1.40 christos return 0; /* Hardware gone! */
2671 1.40 christos r2 = IWN_READ(sc, IWN_FH_INT);
2672 1.40 christos }
2673 1.33 christos if (r1 == 0 && r2 == 0) {
2674 1.33 christos if (ifp->if_flags & IFF_UP)
2675 1.40 christos IWN_WRITE(sc, IWN_INT_MASK, sc->int_mask);
2676 1.33 christos return 0; /* Interrupt not for us. */
2677 1.33 christos }
2678 1.33 christos
2679 1.33 christos /* Acknowledge interrupts. */
2680 1.33 christos IWN_WRITE(sc, IWN_INT, r1);
2681 1.40 christos if (!(sc->sc_flags & IWN_FLAG_USE_ICT))
2682 1.40 christos IWN_WRITE(sc, IWN_FH_INT, r2);
2683 1.1 ober
2684 1.33 christos if (r1 & IWN_INT_RF_TOGGLED) {
2685 1.40 christos tmp = IWN_READ(sc, IWN_GP_CNTRL);
2686 1.40 christos aprint_error_dev(sc->sc_dev,
2687 1.40 christos "RF switch: radio %s\n",
2688 1.33 christos (tmp & IWN_GP_CNTRL_RFKILL) ? "enabled" : "disabled");
2689 1.1 ober }
2690 1.33 christos if (r1 & IWN_INT_CT_REACHED) {
2691 1.40 christos aprint_error_dev(sc->sc_dev,
2692 1.40 christos "critical temperature reached!\n");
2693 1.1 ober }
2694 1.33 christos if (r1 & (IWN_INT_SW_ERR | IWN_INT_HW_ERR)) {
2695 1.40 christos aprint_error_dev(sc->sc_dev,
2696 1.40 christos "fatal firmware error\n");
2697 1.33 christos /* Dump firmware error log and stop. */
2698 1.33 christos iwn_fatal_intr(sc);
2699 1.40 christos ifp->if_flags &= ~IFF_UP;
2700 1.40 christos iwn_stop(ifp, 1);
2701 1.1 ober return 1;
2702 1.1 ober }
2703 1.40 christos if ((r1 & (IWN_INT_FH_RX | IWN_INT_SW_RX | IWN_INT_RX_PERIODIC)) ||
2704 1.40 christos (r2 & IWN_FH_INT_RX)) {
2705 1.40 christos if (sc->sc_flags & IWN_FLAG_USE_ICT) {
2706 1.40 christos if (r1 & (IWN_INT_FH_RX | IWN_INT_SW_RX))
2707 1.40 christos IWN_WRITE(sc, IWN_FH_INT, IWN_FH_INT_RX);
2708 1.40 christos IWN_WRITE_1(sc, IWN_INT_PERIODIC,
2709 1.40 christos IWN_INT_PERIODIC_DIS);
2710 1.40 christos iwn_notif_intr(sc);
2711 1.40 christos if (r1 & (IWN_INT_FH_RX | IWN_INT_SW_RX)) {
2712 1.40 christos IWN_WRITE_1(sc, IWN_INT_PERIODIC,
2713 1.40 christos IWN_INT_PERIODIC_ENA);
2714 1.40 christos }
2715 1.40 christos } else
2716 1.40 christos iwn_notif_intr(sc);
2717 1.40 christos }
2718 1.33 christos
2719 1.40 christos if ((r1 & IWN_INT_FH_TX) || (r2 & IWN_FH_INT_TX)) {
2720 1.40 christos if (sc->sc_flags & IWN_FLAG_USE_ICT)
2721 1.40 christos IWN_WRITE(sc, IWN_FH_INT, IWN_FH_INT_TX);
2722 1.33 christos wakeup(sc); /* FH DMA transfer completed. */
2723 1.40 christos }
2724 1.1 ober
2725 1.33 christos if (r1 & IWN_INT_ALIVE)
2726 1.33 christos wakeup(sc); /* Firmware is alive. */
2727 1.1 ober
2728 1.33 christos if (r1 & IWN_INT_WAKEUP)
2729 1.33 christos iwn_wakeup_intr(sc);
2730 1.1 ober
2731 1.33 christos /* Re-enable interrupts. */
2732 1.1 ober if (ifp->if_flags & IFF_UP)
2733 1.40 christos IWN_WRITE(sc, IWN_INT_MASK, sc->int_mask);
2734 1.1 ober
2735 1.1 ober return 1;
2736 1.1 ober }
2737 1.1 ober
2738 1.33 christos /*
2739 1.33 christos * Update TX scheduler ring when transmitting an 802.11 frame (4965AGN and
2740 1.53 christos * 5000 adapters use a slightly different format).
2741 1.33 christos */
2742 1.33 christos static void
2743 1.33 christos iwn4965_update_sched(struct iwn_softc *sc, int qid, int idx, uint8_t id,
2744 1.33 christos uint16_t len)
2745 1.33 christos {
2746 1.33 christos uint16_t *w = &sc->sched[qid * IWN4965_SCHED_COUNT + idx];
2747 1.33 christos
2748 1.33 christos *w = htole16(len + 8);
2749 1.33 christos bus_dmamap_sync(sc->sc_dmat, sc->sched_dma.map,
2750 1.33 christos (char *)(void *)w - (char *)(void *)sc->sched_dma.vaddr,
2751 1.40 christos sizeof (uint16_t),
2752 1.40 christos BUS_DMASYNC_PREWRITE);
2753 1.33 christos if (idx < IWN_SCHED_WINSZ) {
2754 1.33 christos *(w + IWN_TX_RING_COUNT) = *w;
2755 1.33 christos bus_dmamap_sync(sc->sc_dmat, sc->sched_dma.map,
2756 1.33 christos (char *)(void *)(w + IWN_TX_RING_COUNT) -
2757 1.33 christos (char *)(void *)sc->sched_dma.vaddr,
2758 1.33 christos sizeof (uint16_t), BUS_DMASYNC_PREWRITE);
2759 1.33 christos }
2760 1.33 christos }
2761 1.33 christos
2762 1.33 christos static void
2763 1.33 christos iwn5000_update_sched(struct iwn_softc *sc, int qid, int idx, uint8_t id,
2764 1.33 christos uint16_t len)
2765 1.1 ober {
2766 1.33 christos uint16_t *w = &sc->sched[qid * IWN5000_SCHED_COUNT + idx];
2767 1.33 christos
2768 1.33 christos *w = htole16(id << 12 | (len + 8));
2769 1.33 christos bus_dmamap_sync(sc->sc_dmat, sc->sched_dma.map,
2770 1.33 christos (char *)(void *)w - (char *)(void *)sc->sched_dma.vaddr,
2771 1.33 christos sizeof (uint16_t), BUS_DMASYNC_PREWRITE);
2772 1.33 christos if (idx < IWN_SCHED_WINSZ) {
2773 1.33 christos *(w + IWN_TX_RING_COUNT) = *w;
2774 1.33 christos bus_dmamap_sync(sc->sc_dmat, sc->sched_dma.map,
2775 1.33 christos (char *)(void *)(w + IWN_TX_RING_COUNT) -
2776 1.33 christos (char *)(void *)sc->sched_dma.vaddr,
2777 1.33 christos sizeof (uint16_t), BUS_DMASYNC_PREWRITE);
2778 1.33 christos }
2779 1.1 ober }
2780 1.1 ober
2781 1.40 christos #ifdef notyet
2782 1.33 christos static void
2783 1.33 christos iwn5000_reset_sched(struct iwn_softc *sc, int qid, int idx)
2784 1.33 christos {
2785 1.33 christos uint16_t *w = &sc->sched[qid * IWN5000_SCHED_COUNT + idx];
2786 1.33 christos
2787 1.33 christos *w = (*w & htole16(0xf000)) | htole16(1);
2788 1.33 christos bus_dmamap_sync(sc->sc_dmat, sc->sched_dma.map,
2789 1.33 christos (char *)(void *)w - (char *)(void *)sc->sched_dma.vaddr,
2790 1.33 christos sizeof (uint16_t), BUS_DMASYNC_PREWRITE);
2791 1.33 christos if (idx < IWN_SCHED_WINSZ) {
2792 1.33 christos *(w + IWN_TX_RING_COUNT) = *w;
2793 1.33 christos bus_dmamap_sync(sc->sc_dmat, sc->sched_dma.map,
2794 1.33 christos (char *)(void *)(w + IWN_TX_RING_COUNT) -
2795 1.33 christos (char *)(void *)sc->sched_dma.vaddr,
2796 1.33 christos sizeof (uint16_t), BUS_DMASYNC_PREWRITE);
2797 1.33 christos }
2798 1.33 christos }
2799 1.40 christos #endif
2800 1.1 ober
2801 1.1 ober static int
2802 1.33 christos iwn_tx(struct iwn_softc *sc, struct mbuf *m, struct ieee80211_node *ni, int ac)
2803 1.1 ober {
2804 1.1 ober struct ieee80211com *ic = &sc->sc_ic;
2805 1.33 christos struct iwn_node *wn = (void *)ni;
2806 1.33 christos struct iwn_tx_ring *ring;
2807 1.1 ober struct iwn_tx_desc *desc;
2808 1.1 ober struct iwn_tx_data *data;
2809 1.1 ober struct iwn_tx_cmd *cmd;
2810 1.1 ober struct iwn_cmd_data *tx;
2811 1.33 christos const struct iwn_rate *rinfo;
2812 1.1 ober struct ieee80211_frame *wh;
2813 1.33 christos struct ieee80211_key *k = NULL;
2814 1.33 christos struct mbuf *m1;
2815 1.1 ober uint32_t flags;
2816 1.33 christos u_int hdrlen;
2817 1.33 christos bus_dma_segment_t *seg;
2818 1.40 christos uint8_t tid, ridx, txant, type;
2819 1.40 christos int i, totlen, error, pad;
2820 1.40 christos
2821 1.40 christos const struct chanAccParams *cap;
2822 1.40 christos int noack;
2823 1.40 christos int hdrlen2;
2824 1.1 ober
2825 1.33 christos wh = mtod(m, struct ieee80211_frame *);
2826 1.44 christos hdrlen = ieee80211_anyhdrsize(wh);
2827 1.33 christos type = wh->i_fc[0] & IEEE80211_FC0_TYPE_MASK;
2828 1.1 ober
2829 1.64 christos hdrlen2 = (ieee80211_has_qos(wh)) ?
2830 1.40 christos sizeof (struct ieee80211_qosframe) :
2831 1.40 christos sizeof (struct ieee80211_frame);
2832 1.40 christos
2833 1.40 christos if (hdrlen != hdrlen2)
2834 1.40 christos aprint_error_dev(sc->sc_dev, "hdrlen error (%d != %d)\n",
2835 1.40 christos hdrlen, hdrlen2);
2836 1.40 christos
2837 1.44 christos /* XXX OpenBSD sets a different tid when using QOS */
2838 1.40 christos tid = 0;
2839 1.64 christos if (ieee80211_has_qos(wh)) {
2840 1.44 christos cap = &ic->ic_wme.wme_chanParams;
2841 1.44 christos noack = cap->cap_wmeParams[ac].wmep_noackPolicy;
2842 1.1 ober }
2843 1.44 christos else
2844 1.44 christos noack = 0;
2845 1.1 ober
2846 1.33 christos ring = &sc->txq[ac];
2847 1.33 christos desc = &ring->desc[ring->cur];
2848 1.33 christos data = &ring->data[ring->cur];
2849 1.33 christos
2850 1.33 christos /* Choose a TX rate index. */
2851 1.40 christos if (IEEE80211_IS_MULTICAST(wh->i_addr1) ||
2852 1.40 christos type != IEEE80211_FC0_TYPE_DATA) {
2853 1.33 christos ridx = (ic->ic_curmode == IEEE80211_MODE_11A) ?
2854 1.33 christos IWN_RIDX_OFDM6 : IWN_RIDX_CCK1;
2855 1.40 christos } else if (ic->ic_fixed_rate != -1) {
2856 1.40 christos ridx = sc->fixed_ridx;
2857 1.40 christos } else
2858 1.40 christos ridx = wn->ridx[ni->ni_txrate];
2859 1.33 christos rinfo = &iwn_rates[ridx];
2860 1.1 ober
2861 1.44 christos /* Encrypt the frame if need be. */
2862 1.44 christos /*
2863 1.44 christos * XXX For now, NetBSD swaps the encryption and bpf sections
2864 1.44 christos * in order to match old code and other drivers. Tests with
2865 1.44 christos * tcpdump indicates that the order is irrelevant, however,
2866 1.44 christos * as bpf produces unencrypted data for both ordering choices.
2867 1.44 christos */
2868 1.40 christos if (wh->i_fc[1] & IEEE80211_FC1_WEP) {
2869 1.40 christos k = ieee80211_crypto_encap(ic, ni, m);
2870 1.40 christos if (k == NULL) {
2871 1.40 christos m_freem(m);
2872 1.40 christos return ENOBUFS;
2873 1.40 christos }
2874 1.44 christos /* Packet header may have moved, reset our local pointer. */
2875 1.40 christos wh = mtod(m, struct ieee80211_frame *);
2876 1.40 christos }
2877 1.44 christos totlen = m->m_pkthdr.len;
2878 1.40 christos
2879 1.40 christos if (sc->sc_drvbpf != NULL) {
2880 1.40 christos struct iwn_tx_radiotap_header *tap = &sc->sc_txtap;
2881 1.40 christos
2882 1.40 christos tap->wt_flags = 0;
2883 1.40 christos tap->wt_chan_freq = htole16(ni->ni_chan->ic_freq);
2884 1.40 christos tap->wt_chan_flags = htole16(ni->ni_chan->ic_flags);
2885 1.40 christos tap->wt_rate = rinfo->rate;
2886 1.40 christos tap->wt_hwqueue = ac;
2887 1.40 christos if (wh->i_fc[1] & IEEE80211_FC1_WEP)
2888 1.40 christos tap->wt_flags |= IEEE80211_RADIOTAP_F_WEP;
2889 1.40 christos
2890 1.40 christos bpf_mtap2(sc->sc_drvbpf, tap, sc->sc_txtap_len, m);
2891 1.40 christos }
2892 1.40 christos
2893 1.40 christos /* Prepare TX firmware command. */
2894 1.40 christos cmd = &ring->cmd[ring->cur];
2895 1.40 christos cmd->code = IWN_CMD_TX_DATA;
2896 1.40 christos cmd->flags = 0;
2897 1.40 christos cmd->qid = ring->qid;
2898 1.40 christos cmd->idx = ring->cur;
2899 1.40 christos
2900 1.40 christos tx = (struct iwn_cmd_data *)cmd->data;
2901 1.40 christos /* NB: No need to clear tx, all fields are reinitialized here. */
2902 1.40 christos tx->scratch = 0; /* clear "scratch" area */
2903 1.40 christos
2904 1.40 christos flags = 0;
2905 1.44 christos if (!IEEE80211_IS_MULTICAST(wh->i_addr1)) {
2906 1.44 christos /* Unicast frame, check if an ACK is expected. */
2907 1.44 christos if (!noack)
2908 1.44 christos flags |= IWN_TX_NEED_ACK;
2909 1.44 christos }
2910 1.40 christos
2911 1.40 christos #ifdef notyet
2912 1.44 christos /* XXX NetBSD does not define IEEE80211_FC0_SUBTYPE_BAR */
2913 1.40 christos if ((wh->i_fc[0] &
2914 1.40 christos (IEEE80211_FC0_TYPE_MASK | IEEE80211_FC0_SUBTYPE_MASK)) ==
2915 1.40 christos (IEEE80211_FC0_TYPE_CTL | IEEE80211_FC0_SUBTYPE_BAR))
2916 1.40 christos flags |= IWN_TX_IMM_BA; /* Cannot happen yet. */
2917 1.63 christos #endif
2918 1.40 christos
2919 1.40 christos if (wh->i_fc[1] & IEEE80211_FC1_MORE_FRAG)
2920 1.40 christos flags |= IWN_TX_MORE_FRAG; /* Cannot happen yet. */
2921 1.40 christos
2922 1.40 christos /* Check if frame must be protected using RTS/CTS or CTS-to-self. */
2923 1.40 christos if (!IEEE80211_IS_MULTICAST(wh->i_addr1)) {
2924 1.40 christos /* NB: Group frames are sent using CCK in 802.11b/g. */
2925 1.40 christos if (totlen + IEEE80211_CRC_LEN > ic->ic_rtsthreshold) {
2926 1.40 christos flags |= IWN_TX_NEED_RTS;
2927 1.40 christos } else if ((ic->ic_flags & IEEE80211_F_USEPROT) &&
2928 1.40 christos ridx >= IWN_RIDX_OFDM6) {
2929 1.40 christos if (ic->ic_protmode == IEEE80211_PROT_CTSONLY)
2930 1.40 christos flags |= IWN_TX_NEED_CTS;
2931 1.40 christos else if (ic->ic_protmode == IEEE80211_PROT_RTSCTS)
2932 1.40 christos flags |= IWN_TX_NEED_RTS;
2933 1.40 christos }
2934 1.40 christos if (flags & (IWN_TX_NEED_RTS | IWN_TX_NEED_CTS)) {
2935 1.40 christos if (sc->hw_type != IWN_HW_REV_TYPE_4965) {
2936 1.40 christos /* 5000 autoselects RTS/CTS or CTS-to-self. */
2937 1.40 christos flags &= ~(IWN_TX_NEED_RTS | IWN_TX_NEED_CTS);
2938 1.40 christos flags |= IWN_TX_NEED_PROTECTION;
2939 1.40 christos } else
2940 1.40 christos flags |= IWN_TX_FULL_TXOP;
2941 1.40 christos }
2942 1.40 christos }
2943 1.40 christos
2944 1.40 christos if (IEEE80211_IS_MULTICAST(wh->i_addr1) ||
2945 1.40 christos type != IEEE80211_FC0_TYPE_DATA)
2946 1.53 christos tx->id = sc->broadcast_id;
2947 1.40 christos else
2948 1.40 christos tx->id = wn->id;
2949 1.40 christos
2950 1.40 christos if (type == IEEE80211_FC0_TYPE_MGT) {
2951 1.40 christos uint8_t subtype = wh->i_fc[0] & IEEE80211_FC0_SUBTYPE_MASK;
2952 1.40 christos
2953 1.40 christos #ifndef IEEE80211_STA_ONLY
2954 1.40 christos /* Tell HW to set timestamp in probe responses. */
2955 1.44 christos /* XXX NetBSD rev 1.11 added probe requests here but */
2956 1.44 christos /* probe requests do not take timestamps (from Bergamini). */
2957 1.44 christos if (subtype == IEEE80211_FC0_SUBTYPE_PROBE_RESP)
2958 1.40 christos flags |= IWN_TX_INSERT_TSTAMP;
2959 1.40 christos #endif
2960 1.44 christos /* XXX NetBSD rev 1.11 and 1.20 added AUTH/DAUTH and RTS/CTS */
2961 1.44 christos /* changes here. These are not needed (from Bergamini). */
2962 1.40 christos if (subtype == IEEE80211_FC0_SUBTYPE_ASSOC_REQ ||
2963 1.44 christos subtype == IEEE80211_FC0_SUBTYPE_REASSOC_REQ)
2964 1.40 christos tx->timeout = htole16(3);
2965 1.44 christos else
2966 1.40 christos tx->timeout = htole16(2);
2967 1.40 christos } else
2968 1.40 christos tx->timeout = htole16(0);
2969 1.40 christos
2970 1.40 christos if (hdrlen & 3) {
2971 1.53 christos /* First segment length must be a multiple of 4. */
2972 1.40 christos flags |= IWN_TX_NEED_PADDING;
2973 1.40 christos pad = 4 - (hdrlen & 3);
2974 1.40 christos } else
2975 1.40 christos pad = 0;
2976 1.40 christos
2977 1.40 christos tx->len = htole16(totlen);
2978 1.44 christos tx->tid = tid;
2979 1.40 christos tx->rts_ntries = 60;
2980 1.40 christos tx->data_ntries = 15;
2981 1.40 christos tx->lifetime = htole32(IWN_LIFETIME_INFINITE);
2982 1.40 christos tx->plcp = rinfo->plcp;
2983 1.40 christos tx->rflags = rinfo->flags;
2984 1.53 christos if (tx->id == sc->broadcast_id) {
2985 1.40 christos /* Group or management frame. */
2986 1.40 christos tx->linkq = 0;
2987 1.40 christos /* XXX Alternate between antenna A and B? */
2988 1.40 christos txant = IWN_LSB(sc->txchainmask);
2989 1.40 christos tx->rflags |= IWN_RFLAG_ANT(txant);
2990 1.40 christos } else {
2991 1.40 christos tx->linkq = ni->ni_rates.rs_nrates - ni->ni_txrate - 1;
2992 1.40 christos flags |= IWN_TX_LINKQ; /* enable MRR */
2993 1.40 christos }
2994 1.40 christos /* Set physical address of "scratch area". */
2995 1.40 christos tx->loaddr = htole32(IWN_LOADDR(data->scratch_paddr));
2996 1.40 christos tx->hiaddr = IWN_HIADDR(data->scratch_paddr);
2997 1.40 christos
2998 1.40 christos /* Copy 802.11 header in TX command. */
2999 1.44 christos /* XXX NetBSD changed this in rev 1.20 */
3000 1.40 christos memcpy(((uint8_t *)tx) + sizeof(*tx), wh, hdrlen);
3001 1.40 christos
3002 1.40 christos /* Trim 802.11 header. */
3003 1.44 christos m_adj(m, hdrlen);
3004 1.44 christos tx->security = 0;
3005 1.40 christos tx->flags = htole32(flags);
3006 1.40 christos
3007 1.40 christos error = bus_dmamap_load_mbuf(sc->sc_dmat, data->map, m,
3008 1.44 christos BUS_DMA_NOWAIT | BUS_DMA_WRITE);
3009 1.40 christos if (error != 0) {
3010 1.44 christos if (error != EFBIG) {
3011 1.44 christos aprint_error_dev(sc->sc_dev,
3012 1.44 christos "can't map mbuf (error %d)\n", error);
3013 1.44 christos m_freem(m);
3014 1.44 christos return error;
3015 1.44 christos }
3016 1.40 christos /* Too many DMA segments, linearize mbuf. */
3017 1.40 christos MGETHDR(m1, M_DONTWAIT, MT_DATA);
3018 1.40 christos if (m1 == NULL) {
3019 1.40 christos m_freem(m);
3020 1.40 christos return ENOBUFS;
3021 1.40 christos }
3022 1.40 christos if (m->m_pkthdr.len > MHLEN) {
3023 1.40 christos MCLGET(m1, M_DONTWAIT);
3024 1.40 christos if (!(m1->m_flags & M_EXT)) {
3025 1.40 christos m_freem(m);
3026 1.40 christos m_freem(m1);
3027 1.40 christos return ENOBUFS;
3028 1.40 christos }
3029 1.40 christos }
3030 1.40 christos m_copydata(m, 0, m->m_pkthdr.len, mtod(m1, void *));
3031 1.40 christos m1->m_pkthdr.len = m1->m_len = m->m_pkthdr.len;
3032 1.40 christos m_freem(m);
3033 1.40 christos m = m1;
3034 1.40 christos
3035 1.40 christos error = bus_dmamap_load_mbuf(sc->sc_dmat, data->map, m,
3036 1.44 christos BUS_DMA_NOWAIT | BUS_DMA_WRITE);
3037 1.40 christos if (error != 0) {
3038 1.40 christos aprint_error_dev(sc->sc_dev,
3039 1.40 christos "can't map mbuf (error %d)\n", error);
3040 1.40 christos m_freem(m);
3041 1.40 christos return error;
3042 1.40 christos }
3043 1.40 christos }
3044 1.40 christos
3045 1.40 christos data->m = m;
3046 1.40 christos data->ni = ni;
3047 1.40 christos
3048 1.40 christos DPRINTFN(4, ("sending data: qid=%d idx=%d len=%d nsegs=%d\n",
3049 1.40 christos ring->qid, ring->cur, m->m_pkthdr.len, data->map->dm_nsegs));
3050 1.40 christos
3051 1.40 christos /* Fill TX descriptor. */
3052 1.40 christos desc->nsegs = 1 + data->map->dm_nsegs;
3053 1.40 christos /* First DMA segment is used by the TX command. */
3054 1.40 christos desc->segs[0].addr = htole32(IWN_LOADDR(data->cmd_paddr));
3055 1.40 christos desc->segs[0].len = htole16(IWN_HIADDR(data->cmd_paddr) |
3056 1.40 christos (4 + sizeof (*tx) + hdrlen + pad) << 4);
3057 1.40 christos /* Other DMA segments are for data payload. */
3058 1.40 christos seg = data->map->dm_segs;
3059 1.40 christos for (i = 1; i <= data->map->dm_nsegs; i++) {
3060 1.40 christos desc->segs[i].addr = htole32(IWN_LOADDR(seg->ds_addr));
3061 1.40 christos desc->segs[i].len = htole16(IWN_HIADDR(seg->ds_addr) |
3062 1.40 christos seg->ds_len << 4);
3063 1.40 christos seg++;
3064 1.40 christos }
3065 1.40 christos
3066 1.40 christos bus_dmamap_sync(sc->sc_dmat, data->map, 0, data->map->dm_mapsize,
3067 1.40 christos BUS_DMASYNC_PREWRITE);
3068 1.40 christos bus_dmamap_sync(sc->sc_dmat, ring->cmd_dma.map,
3069 1.40 christos (char *)(void *)cmd - (char *)(void *)ring->cmd_dma.vaddr,
3070 1.40 christos sizeof (*cmd), BUS_DMASYNC_PREWRITE);
3071 1.40 christos bus_dmamap_sync(sc->sc_dmat, ring->desc_dma.map,
3072 1.40 christos (char *)(void *)desc - (char *)(void *)ring->desc_dma.vaddr,
3073 1.40 christos sizeof (*desc), BUS_DMASYNC_PREWRITE);
3074 1.40 christos
3075 1.40 christos #ifdef notyet
3076 1.40 christos /* Update TX scheduler. */
3077 1.53 christos ops->update_sched(sc, ring->qid, ring->cur, tx->id, totlen);
3078 1.40 christos #endif
3079 1.40 christos
3080 1.40 christos /* Kick TX ring. */
3081 1.40 christos ring->cur = (ring->cur + 1) % IWN_TX_RING_COUNT;
3082 1.40 christos IWN_WRITE(sc, IWN_HBUS_TARG_WRPTR, ring->qid << 8 | ring->cur);
3083 1.40 christos
3084 1.40 christos /* Mark TX ring as full if we reach a certain threshold. */
3085 1.40 christos if (++ring->queued > IWN_TX_RING_HIMARK)
3086 1.40 christos sc->qfullmsk |= 1 << ring->qid;
3087 1.40 christos
3088 1.40 christos return 0;
3089 1.40 christos }
3090 1.40 christos
3091 1.40 christos static void
3092 1.40 christos iwn_start(struct ifnet *ifp)
3093 1.40 christos {
3094 1.40 christos struct iwn_softc *sc = ifp->if_softc;
3095 1.40 christos struct ieee80211com *ic = &sc->sc_ic;
3096 1.40 christos struct ieee80211_node *ni;
3097 1.40 christos struct ether_header *eh;
3098 1.40 christos struct mbuf *m;
3099 1.40 christos int ac;
3100 1.40 christos
3101 1.40 christos if ((ifp->if_flags & (IFF_RUNNING | IFF_OACTIVE)) != IFF_RUNNING)
3102 1.40 christos return;
3103 1.40 christos
3104 1.40 christos for (;;) {
3105 1.40 christos if (sc->qfullmsk != 0) {
3106 1.40 christos ifp->if_flags |= IFF_OACTIVE;
3107 1.40 christos break;
3108 1.33 christos }
3109 1.33 christos /* Send pending management frames first. */
3110 1.33 christos IF_DEQUEUE(&ic->ic_mgtq, m);
3111 1.33 christos if (m != NULL) {
3112 1.77 ozaki ni = M_GETCTX(m, struct ieee80211_node *);
3113 1.33 christos ac = 0;
3114 1.33 christos goto sendit;
3115 1.33 christos }
3116 1.33 christos if (ic->ic_state != IEEE80211_S_RUN)
3117 1.33 christos break;
3118 1.8 blymn
3119 1.33 christos /* Encapsulate and send data frames. */
3120 1.33 christos IFQ_DEQUEUE(&ifp->if_snd, m);
3121 1.33 christos if (m == NULL)
3122 1.33 christos break;
3123 1.33 christos if (m->m_len < sizeof (*eh) &&
3124 1.33 christos (m = m_pullup(m, sizeof (*eh))) == NULL) {
3125 1.33 christos ifp->if_oerrors++;
3126 1.33 christos continue;
3127 1.33 christos }
3128 1.33 christos eh = mtod(m, struct ether_header *);
3129 1.33 christos ni = ieee80211_find_txnode(ic, eh->ether_dhost);
3130 1.33 christos if (ni == NULL) {
3131 1.33 christos m_freem(m);
3132 1.33 christos ifp->if_oerrors++;
3133 1.33 christos continue;
3134 1.33 christos }
3135 1.33 christos /* classify mbuf so we can find which tx ring to use */
3136 1.33 christos if (ieee80211_classify(ic, m, ni) != 0) {
3137 1.33 christos m_freem(m);
3138 1.33 christos ieee80211_free_node(ni);
3139 1.33 christos ifp->if_oerrors++;
3140 1.33 christos continue;
3141 1.33 christos }
3142 1.1 ober
3143 1.40 christos /* No QoS encapsulation for EAPOL frames. */
3144 1.33 christos ac = (eh->ether_type != htons(ETHERTYPE_PAE)) ?
3145 1.33 christos M_WME_GETAC(m) : WME_AC_BE;
3146 1.40 christos
3147 1.38 joerg bpf_mtap(ifp, m);
3148 1.40 christos
3149 1.33 christos if ((m = ieee80211_encap(ic, m, ni)) == NULL) {
3150 1.33 christos ieee80211_free_node(ni);
3151 1.33 christos ifp->if_oerrors++;
3152 1.33 christos continue;
3153 1.33 christos }
3154 1.33 christos sendit:
3155 1.38 joerg bpf_mtap3(ic->ic_rawbpf, m);
3156 1.40 christos
3157 1.33 christos if (iwn_tx(sc, m, ni, ac) != 0) {
3158 1.33 christos ieee80211_free_node(ni);
3159 1.33 christos ifp->if_oerrors++;
3160 1.33 christos continue;
3161 1.1 ober }
3162 1.1 ober
3163 1.1 ober sc->sc_tx_timer = 5;
3164 1.1 ober ifp->if_timer = 1;
3165 1.1 ober }
3166 1.1 ober }
3167 1.1 ober
3168 1.1 ober static void
3169 1.1 ober iwn_watchdog(struct ifnet *ifp)
3170 1.1 ober {
3171 1.1 ober struct iwn_softc *sc = ifp->if_softc;
3172 1.1 ober
3173 1.1 ober ifp->if_timer = 0;
3174 1.1 ober
3175 1.1 ober if (sc->sc_tx_timer > 0) {
3176 1.1 ober if (--sc->sc_tx_timer == 0) {
3177 1.40 christos aprint_error_dev(sc->sc_dev,
3178 1.40 christos "device timeout\n");
3179 1.40 christos ifp->if_flags &= ~IFF_UP;
3180 1.1 ober iwn_stop(ifp, 1);
3181 1.1 ober ifp->if_oerrors++;
3182 1.1 ober return;
3183 1.1 ober }
3184 1.1 ober ifp->if_timer = 1;
3185 1.1 ober }
3186 1.1 ober
3187 1.1 ober ieee80211_watchdog(&sc->sc_ic);
3188 1.1 ober }
3189 1.1 ober
3190 1.1 ober static int
3191 1.40 christos iwn_ioctl(struct ifnet *ifp, u_long cmd, void *data)
3192 1.1 ober {
3193 1.1 ober struct iwn_softc *sc = ifp->if_softc;
3194 1.1 ober struct ieee80211com *ic = &sc->sc_ic;
3195 1.40 christos const struct sockaddr *sa;
3196 1.1 ober int s, error = 0;
3197 1.1 ober
3198 1.1 ober s = splnet();
3199 1.1 ober
3200 1.1 ober switch (cmd) {
3201 1.33 christos case SIOCSIFADDR:
3202 1.40 christos ifp->if_flags |= IFF_UP;
3203 1.33 christos /* FALLTHROUGH */
3204 1.1 ober case SIOCSIFFLAGS:
3205 1.44 christos /* XXX Added as it is in every NetBSD driver */
3206 1.25 dyoung if ((error = ifioctl_common(ifp, cmd, data)) != 0)
3207 1.25 dyoung break;
3208 1.1 ober if (ifp->if_flags & IFF_UP) {
3209 1.40 christos if (!(ifp->if_flags & IFF_RUNNING))
3210 1.33 christos error = iwn_init(ifp);
3211 1.1 ober } else {
3212 1.1 ober if (ifp->if_flags & IFF_RUNNING)
3213 1.1 ober iwn_stop(ifp, 1);
3214 1.1 ober }
3215 1.1 ober break;
3216 1.1 ober
3217 1.1 ober case SIOCADDMULTI:
3218 1.1 ober case SIOCDELMULTI:
3219 1.40 christos sa = ifreq_getaddr(SIOCADDMULTI, (struct ifreq *)data);
3220 1.40 christos error = (cmd == SIOCADDMULTI) ?
3221 1.40 christos ether_addmulti(sa, &sc->sc_ec) :
3222 1.40 christos ether_delmulti(sa, &sc->sc_ec);
3223 1.33 christos
3224 1.40 christos if (error == ENETRESET)
3225 1.1 ober error = 0;
3226 1.1 ober break;
3227 1.1 ober
3228 1.1 ober default:
3229 1.1 ober error = ieee80211_ioctl(ic, cmd, data);
3230 1.1 ober }
3231 1.1 ober
3232 1.1 ober if (error == ENETRESET) {
3233 1.33 christos error = 0;
3234 1.40 christos if ((ifp->if_flags & (IFF_UP | IFF_RUNNING)) ==
3235 1.40 christos (IFF_UP | IFF_RUNNING)) {
3236 1.33 christos iwn_stop(ifp, 0);
3237 1.33 christos error = iwn_init(ifp);
3238 1.33 christos }
3239 1.1 ober }
3240 1.46 christos
3241 1.1 ober splx(s);
3242 1.1 ober return error;
3243 1.1 ober }
3244 1.1 ober
3245 1.33 christos /*
3246 1.33 christos * Send a command to the firmware.
3247 1.33 christos */
3248 1.33 christos static int
3249 1.33 christos iwn_cmd(struct iwn_softc *sc, int code, const void *buf, int size, int async)
3250 1.1 ober {
3251 1.33 christos struct iwn_tx_ring *ring = &sc->txq[4];
3252 1.33 christos struct iwn_tx_desc *desc;
3253 1.33 christos struct iwn_tx_data *data;
3254 1.33 christos struct iwn_tx_cmd *cmd;
3255 1.33 christos struct mbuf *m;
3256 1.33 christos bus_addr_t paddr;
3257 1.33 christos int totlen, error;
3258 1.33 christos
3259 1.33 christos desc = &ring->desc[ring->cur];
3260 1.33 christos data = &ring->data[ring->cur];
3261 1.33 christos totlen = 4 + size;
3262 1.1 ober
3263 1.33 christos if (size > sizeof cmd->data) {
3264 1.33 christos /* Command is too large to fit in a descriptor. */
3265 1.33 christos if (totlen > MCLBYTES)
3266 1.33 christos return EINVAL;
3267 1.33 christos MGETHDR(m, M_DONTWAIT, MT_DATA);
3268 1.33 christos if (m == NULL)
3269 1.33 christos return ENOMEM;
3270 1.33 christos if (totlen > MHLEN) {
3271 1.33 christos MCLGET(m, M_DONTWAIT);
3272 1.33 christos if (!(m->m_flags & M_EXT)) {
3273 1.33 christos m_freem(m);
3274 1.33 christos return ENOMEM;
3275 1.33 christos }
3276 1.33 christos }
3277 1.33 christos cmd = mtod(m, struct iwn_tx_cmd *);
3278 1.33 christos error = bus_dmamap_load(sc->sc_dmat, data->map, cmd, totlen,
3279 1.40 christos NULL, BUS_DMA_NOWAIT | BUS_DMA_WRITE);
3280 1.33 christos if (error != 0) {
3281 1.33 christos m_freem(m);
3282 1.33 christos return error;
3283 1.33 christos }
3284 1.33 christos data->m = m;
3285 1.33 christos paddr = data->map->dm_segs[0].ds_addr;
3286 1.33 christos } else {
3287 1.33 christos cmd = &ring->cmd[ring->cur];
3288 1.33 christos paddr = data->cmd_paddr;
3289 1.1 ober }
3290 1.1 ober
3291 1.33 christos cmd->code = code;
3292 1.33 christos cmd->flags = 0;
3293 1.33 christos cmd->qid = ring->qid;
3294 1.33 christos cmd->idx = ring->cur;
3295 1.33 christos memcpy(cmd->data, buf, size);
3296 1.1 ober
3297 1.33 christos desc->nsegs = 1;
3298 1.33 christos desc->segs[0].addr = htole32(IWN_LOADDR(paddr));
3299 1.33 christos desc->segs[0].len = htole16(IWN_HIADDR(paddr) | totlen << 4);
3300 1.33 christos
3301 1.33 christos if (size > sizeof cmd->data) {
3302 1.33 christos bus_dmamap_sync(sc->sc_dmat, data->map, 0, totlen,
3303 1.33 christos BUS_DMASYNC_PREWRITE);
3304 1.33 christos } else {
3305 1.33 christos bus_dmamap_sync(sc->sc_dmat, ring->cmd_dma.map,
3306 1.33 christos (char *)(void *)cmd - (char *)(void *)ring->cmd_dma.vaddr,
3307 1.33 christos totlen, BUS_DMASYNC_PREWRITE);
3308 1.33 christos }
3309 1.33 christos bus_dmamap_sync(sc->sc_dmat, ring->desc_dma.map,
3310 1.33 christos (char *)(void *)desc - (char *)(void *)ring->desc_dma.vaddr,
3311 1.33 christos sizeof (*desc), BUS_DMASYNC_PREWRITE);
3312 1.1 ober
3313 1.40 christos #ifdef notyet
3314 1.33 christos /* Update TX scheduler. */
3315 1.53 christos ops->update_sched(sc, ring->qid, ring->cur, 0, 0);
3316 1.40 christos #endif
3317 1.40 christos DPRINTFN(4, ("iwn_cmd %d size=%d %s\n", code, size, async ? " (async)" : ""));
3318 1.1 ober
3319 1.33 christos /* Kick command ring. */
3320 1.33 christos ring->cur = (ring->cur + 1) % IWN_TX_RING_COUNT;
3321 1.33 christos IWN_WRITE(sc, IWN_HBUS_TARG_WRPTR, ring->qid << 8 | ring->cur);
3322 1.1 ober
3323 1.33 christos return async ? 0 : tsleep(desc, PCATCH, "iwncmd", hz);
3324 1.1 ober }
3325 1.1 ober
3326 1.33 christos static int
3327 1.33 christos iwn4965_add_node(struct iwn_softc *sc, struct iwn_node_info *node, int async)
3328 1.33 christos {
3329 1.33 christos struct iwn4965_node_info hnode;
3330 1.33 christos char *src, *dst;
3331 1.1 ober
3332 1.33 christos /*
3333 1.33 christos * We use the node structure for 5000 Series internally (it is
3334 1.33 christos * a superset of the one for 4965AGN). We thus copy the common
3335 1.33 christos * fields before sending the command.
3336 1.33 christos */
3337 1.33 christos src = (char *)node;
3338 1.33 christos dst = (char *)&hnode;
3339 1.33 christos memcpy(dst, src, 48);
3340 1.33 christos /* Skip TSC, RX MIC and TX MIC fields from ``src''. */
3341 1.33 christos memcpy(dst + 48, src + 72, 20);
3342 1.33 christos return iwn_cmd(sc, IWN_CMD_ADD_NODE, &hnode, sizeof hnode, async);
3343 1.1 ober }
3344 1.1 ober
3345 1.33 christos static int
3346 1.33 christos iwn5000_add_node(struct iwn_softc *sc, struct iwn_node_info *node, int async)
3347 1.1 ober {
3348 1.33 christos /* Direct mapping. */
3349 1.33 christos return iwn_cmd(sc, IWN_CMD_ADD_NODE, node, sizeof (*node), async);
3350 1.1 ober }
3351 1.1 ober
3352 1.1 ober static int
3353 1.33 christos iwn_set_link_quality(struct iwn_softc *sc, struct ieee80211_node *ni)
3354 1.1 ober {
3355 1.33 christos struct iwn_node *wn = (void *)ni;
3356 1.33 christos struct ieee80211_rateset *rs = &ni->ni_rates;
3357 1.33 christos struct iwn_cmd_link_quality linkq;
3358 1.33 christos const struct iwn_rate *rinfo;
3359 1.33 christos uint8_t txant;
3360 1.33 christos int i, txrate;
3361 1.33 christos
3362 1.33 christos /* Use the first valid TX antenna. */
3363 1.40 christos txant = IWN_LSB(sc->txchainmask);
3364 1.33 christos
3365 1.33 christos memset(&linkq, 0, sizeof linkq);
3366 1.33 christos linkq.id = wn->id;
3367 1.33 christos linkq.antmsk_1stream = txant;
3368 1.40 christos linkq.antmsk_2stream = IWN_ANT_AB;
3369 1.40 christos linkq.ampdu_max = 31;
3370 1.33 christos linkq.ampdu_threshold = 3;
3371 1.33 christos linkq.ampdu_limit = htole16(4000); /* 4ms */
3372 1.1 ober
3373 1.33 christos /* Start at highest available bit-rate. */
3374 1.33 christos txrate = rs->rs_nrates - 1;
3375 1.33 christos for (i = 0; i < IWN_MAX_TX_RETRIES; i++) {
3376 1.33 christos rinfo = &iwn_rates[wn->ridx[txrate]];
3377 1.33 christos linkq.retry[i].plcp = rinfo->plcp;
3378 1.33 christos linkq.retry[i].rflags = rinfo->flags;
3379 1.33 christos linkq.retry[i].rflags |= IWN_RFLAG_ANT(txant);
3380 1.33 christos /* Next retry at immediate lower bit-rate. */
3381 1.33 christos if (txrate > 0)
3382 1.33 christos txrate--;
3383 1.1 ober }
3384 1.33 christos return iwn_cmd(sc, IWN_CMD_LINK_QUALITY, &linkq, sizeof linkq, 1);
3385 1.1 ober }
3386 1.1 ober
3387 1.1 ober /*
3388 1.33 christos * Broadcast node is used to send group-addressed and management frames.
3389 1.1 ober */
3390 1.1 ober static int
3391 1.33 christos iwn_add_broadcast_node(struct iwn_softc *sc, int async)
3392 1.1 ober {
3393 1.53 christos struct iwn_ops *ops = &sc->ops;
3394 1.33 christos struct iwn_node_info node;
3395 1.33 christos struct iwn_cmd_link_quality linkq;
3396 1.33 christos const struct iwn_rate *rinfo;
3397 1.33 christos uint8_t txant;
3398 1.33 christos int i, error;
3399 1.1 ober
3400 1.33 christos memset(&node, 0, sizeof node);
3401 1.33 christos IEEE80211_ADDR_COPY(node.macaddr, etherbroadcastaddr);
3402 1.53 christos node.id = sc->broadcast_id;
3403 1.33 christos DPRINTF(("adding broadcast node\n"));
3404 1.53 christos if ((error = ops->add_node(sc, &node, async)) != 0)
3405 1.33 christos return error;
3406 1.1 ober
3407 1.33 christos /* Use the first valid TX antenna. */
3408 1.40 christos txant = IWN_LSB(sc->txchainmask);
3409 1.1 ober
3410 1.33 christos memset(&linkq, 0, sizeof linkq);
3411 1.53 christos linkq.id = sc->broadcast_id;
3412 1.33 christos linkq.antmsk_1stream = txant;
3413 1.40 christos linkq.antmsk_2stream = IWN_ANT_AB;
3414 1.33 christos linkq.ampdu_max = 64;
3415 1.33 christos linkq.ampdu_threshold = 3;
3416 1.33 christos linkq.ampdu_limit = htole16(4000); /* 4ms */
3417 1.33 christos
3418 1.33 christos /* Use lowest mandatory bit-rate. */
3419 1.33 christos rinfo = (sc->sc_ic.ic_curmode != IEEE80211_MODE_11A) ?
3420 1.33 christos &iwn_rates[IWN_RIDX_CCK1] : &iwn_rates[IWN_RIDX_OFDM6];
3421 1.33 christos linkq.retry[0].plcp = rinfo->plcp;
3422 1.33 christos linkq.retry[0].rflags = rinfo->flags;
3423 1.33 christos linkq.retry[0].rflags |= IWN_RFLAG_ANT(txant);
3424 1.33 christos /* Use same bit-rate for all TX retries. */
3425 1.33 christos for (i = 1; i < IWN_MAX_TX_RETRIES; i++) {
3426 1.33 christos linkq.retry[i].plcp = linkq.retry[0].plcp;
3427 1.33 christos linkq.retry[i].rflags = linkq.retry[0].rflags;
3428 1.33 christos }
3429 1.40 christos return iwn_cmd(sc, IWN_CMD_LINK_QUALITY, &linkq, sizeof linkq, async);
3430 1.1 ober }
3431 1.1 ober
3432 1.1 ober static void
3433 1.1 ober iwn_set_led(struct iwn_softc *sc, uint8_t which, uint8_t off, uint8_t on)
3434 1.1 ober {
3435 1.1 ober struct iwn_cmd_led led;
3436 1.1 ober
3437 1.33 christos /* Clear microcode LED ownership. */
3438 1.33 christos IWN_CLRBITS(sc, IWN_LED, IWN_LED_BSM_CTRL);
3439 1.33 christos
3440 1.1 ober led.which = which;
3441 1.33 christos led.unit = htole32(10000); /* on/off in unit of 100ms */
3442 1.1 ober led.off = off;
3443 1.1 ober led.on = on;
3444 1.1 ober (void)iwn_cmd(sc, IWN_CMD_SET_LED, &led, sizeof led, 1);
3445 1.1 ober }
3446 1.1 ober
3447 1.1 ober /*
3448 1.40 christos * Set the critical temperature at which the firmware will stop the radio
3449 1.40 christos * and notify us.
3450 1.1 ober */
3451 1.1 ober static int
3452 1.1 ober iwn_set_critical_temp(struct iwn_softc *sc)
3453 1.1 ober {
3454 1.1 ober struct iwn_critical_temp crit;
3455 1.40 christos int32_t temp;
3456 1.1 ober
3457 1.33 christos IWN_WRITE(sc, IWN_UCODE_GP1_CLR, IWN_UCODE_GP1_CTEMP_STOP_RF);
3458 1.1 ober
3459 1.40 christos if (sc->hw_type == IWN_HW_REV_TYPE_5150)
3460 1.40 christos temp = (IWN_CTOK(110) - sc->temp_off) * -5;
3461 1.40 christos else if (sc->hw_type == IWN_HW_REV_TYPE_4965)
3462 1.40 christos temp = IWN_CTOK(110);
3463 1.40 christos else
3464 1.40 christos temp = 110;
3465 1.1 ober memset(&crit, 0, sizeof crit);
3466 1.40 christos crit.tempR = htole32(temp);
3467 1.40 christos DPRINTF(("setting critical temperature to %d\n", temp));
3468 1.1 ober return iwn_cmd(sc, IWN_CMD_SET_CRITICAL_TEMP, &crit, sizeof crit, 0);
3469 1.1 ober }
3470 1.1 ober
3471 1.33 christos static int
3472 1.33 christos iwn_set_timing(struct iwn_softc *sc, struct ieee80211_node *ni)
3473 1.1 ober {
3474 1.33 christos struct iwn_cmd_timing cmd;
3475 1.1 ober uint64_t val, mod;
3476 1.1 ober
3477 1.33 christos memset(&cmd, 0, sizeof cmd);
3478 1.33 christos memcpy(&cmd.tstamp, ni->ni_tstamp.data, sizeof (uint64_t));
3479 1.33 christos cmd.bintval = htole16(ni->ni_intval);
3480 1.33 christos cmd.lintval = htole16(10);
3481 1.1 ober
3482 1.33 christos /* Compute remaining time until next beacon. */
3483 1.1 ober val = (uint64_t)ni->ni_intval * 1024; /* msecs -> usecs */
3484 1.33 christos mod = le64toh(cmd.tstamp) % val;
3485 1.33 christos cmd.binitval = htole32((uint32_t)(val - mod));
3486 1.1 ober
3487 1.53 christos DPRINTF(("timing bintval=%u, tstamp=%" PRIu64 ", init=%" PRIu32 "\n",
3488 1.40 christos ni->ni_intval, le64toh(cmd.tstamp), (uint32_t)(val - mod)));
3489 1.1 ober
3490 1.33 christos return iwn_cmd(sc, IWN_CMD_TIMING, &cmd, sizeof cmd, 1);
3491 1.1 ober }
3492 1.1 ober
3493 1.1 ober static void
3494 1.33 christos iwn4965_power_calibration(struct iwn_softc *sc, int temp)
3495 1.1 ober {
3496 1.53 christos /* Adjust TX power if need be (delta >= 3 degC). */
3497 1.1 ober DPRINTF(("temperature %d->%d\n", sc->temp, temp));
3498 1.33 christos if (abs(temp - sc->temp) >= 3) {
3499 1.33 christos /* Record temperature of last calibration. */
3500 1.33 christos sc->temp = temp;
3501 1.33 christos (void)iwn4965_set_txpower(sc, 1);
3502 1.1 ober }
3503 1.1 ober }
3504 1.1 ober
3505 1.1 ober /*
3506 1.33 christos * Set TX power for current channel (each rate has its own power settings).
3507 1.1 ober * This function takes into account the regulatory information from EEPROM,
3508 1.1 ober * the current temperature and the current voltage.
3509 1.1 ober */
3510 1.1 ober static int
3511 1.33 christos iwn4965_set_txpower(struct iwn_softc *sc, int async)
3512 1.1 ober {
3513 1.33 christos /* Fixed-point arithmetic division using a n-bit fractional part. */
3514 1.33 christos #define fdivround(a, b, n) \
3515 1.1 ober ((((1 << n) * (a)) / (b) + (1 << n) / 2) / (1 << n))
3516 1.33 christos /* Linear interpolation. */
3517 1.33 christos #define interpolate(x, x1, y1, x2, y2, n) \
3518 1.1 ober ((y1) + fdivround(((int)(x) - (x1)) * ((y2) - (y1)), (x2) - (x1), n))
3519 1.1 ober
3520 1.1 ober static const int tdiv[IWN_NATTEN_GROUPS] = { 9, 8, 8, 8, 6 };
3521 1.1 ober struct ieee80211com *ic = &sc->sc_ic;
3522 1.1 ober struct iwn_ucode_info *uc = &sc->ucode_info;
3523 1.33 christos struct ieee80211_channel *ch;
3524 1.33 christos struct iwn4965_cmd_txpower cmd;
3525 1.33 christos struct iwn4965_eeprom_chan_samples *chans;
3526 1.1 ober const uint8_t *rf_gain, *dsp_gain;
3527 1.1 ober int32_t vdiff, tdiff;
3528 1.1 ober int i, c, grp, maxpwr;
3529 1.33 christos uint8_t chan;
3530 1.1 ober
3531 1.33 christos /* Retrieve current channel from last RXON. */
3532 1.33 christos chan = sc->rxon.chan;
3533 1.33 christos DPRINTF(("setting TX power for channel %d\n", chan));
3534 1.33 christos ch = &ic->ic_channels[chan];
3535 1.1 ober
3536 1.1 ober memset(&cmd, 0, sizeof cmd);
3537 1.1 ober cmd.band = IEEE80211_IS_CHAN_5GHZ(ch) ? 0 : 1;
3538 1.1 ober cmd.chan = chan;
3539 1.1 ober
3540 1.1 ober if (IEEE80211_IS_CHAN_5GHZ(ch)) {
3541 1.33 christos maxpwr = sc->maxpwr5GHz;
3542 1.33 christos rf_gain = iwn4965_rf_gain_5ghz;
3543 1.33 christos dsp_gain = iwn4965_dsp_gain_5ghz;
3544 1.1 ober } else {
3545 1.33 christos maxpwr = sc->maxpwr2GHz;
3546 1.33 christos rf_gain = iwn4965_rf_gain_2ghz;
3547 1.33 christos dsp_gain = iwn4965_dsp_gain_2ghz;
3548 1.1 ober }
3549 1.1 ober
3550 1.33 christos /* Compute voltage compensation. */
3551 1.1 ober vdiff = ((int32_t)le32toh(uc->volt) - sc->eeprom_voltage) / 7;
3552 1.1 ober if (vdiff > 0)
3553 1.1 ober vdiff *= 2;
3554 1.1 ober if (abs(vdiff) > 2)
3555 1.1 ober vdiff = 0;
3556 1.1 ober DPRINTF(("voltage compensation=%d (UCODE=%d, EEPROM=%d)\n",
3557 1.33 christos vdiff, le32toh(uc->volt), sc->eeprom_voltage));
3558 1.1 ober
3559 1.40 christos /* Get channel attenuation group. */
3560 1.1 ober if (chan <= 20) /* 1-20 */
3561 1.1 ober grp = 4;
3562 1.1 ober else if (chan <= 43) /* 34-43 */
3563 1.1 ober grp = 0;
3564 1.1 ober else if (chan <= 70) /* 44-70 */
3565 1.1 ober grp = 1;
3566 1.1 ober else if (chan <= 124) /* 71-124 */
3567 1.1 ober grp = 2;
3568 1.1 ober else /* 125-200 */
3569 1.1 ober grp = 3;
3570 1.1 ober DPRINTF(("chan %d, attenuation group=%d\n", chan, grp));
3571 1.1 ober
3572 1.40 christos /* Get channel sub-band. */
3573 1.1 ober for (i = 0; i < IWN_NBANDS; i++)
3574 1.1 ober if (sc->bands[i].lo != 0 &&
3575 1.1 ober sc->bands[i].lo <= chan && chan <= sc->bands[i].hi)
3576 1.1 ober break;
3577 1.40 christos if (i == IWN_NBANDS) /* Can't happen in real-life. */
3578 1.40 christos return EINVAL;
3579 1.1 ober chans = sc->bands[i].chans;
3580 1.1 ober DPRINTF(("chan %d sub-band=%d\n", chan, i));
3581 1.1 ober
3582 1.33 christos for (c = 0; c < 2; c++) {
3583 1.1 ober uint8_t power, gain, temp;
3584 1.1 ober int maxchpwr, pwr, ridx, idx;
3585 1.1 ober
3586 1.1 ober power = interpolate(chan,
3587 1.1 ober chans[0].num, chans[0].samples[c][1].power,
3588 1.1 ober chans[1].num, chans[1].samples[c][1].power, 1);
3589 1.1 ober gain = interpolate(chan,
3590 1.1 ober chans[0].num, chans[0].samples[c][1].gain,
3591 1.1 ober chans[1].num, chans[1].samples[c][1].gain, 1);
3592 1.1 ober temp = interpolate(chan,
3593 1.1 ober chans[0].num, chans[0].samples[c][1].temp,
3594 1.1 ober chans[1].num, chans[1].samples[c][1].temp, 1);
3595 1.33 christos DPRINTF(("TX chain %d: power=%d gain=%d temp=%d\n",
3596 1.33 christos c, power, gain, temp));
3597 1.1 ober
3598 1.33 christos /* Compute temperature compensation. */
3599 1.1 ober tdiff = ((sc->temp - temp) * 2) / tdiv[grp];
3600 1.1 ober DPRINTF(("temperature compensation=%d (current=%d, "
3601 1.33 christos "EEPROM=%d)\n", tdiff, sc->temp, temp));
3602 1.1 ober
3603 1.1 ober for (ridx = 0; ridx <= IWN_RIDX_MAX; ridx++) {
3604 1.40 christos /* Convert dBm to half-dBm. */
3605 1.1 ober maxchpwr = sc->maxpwr[chan] * 2;
3606 1.33 christos if ((ridx / 8) & 1)
3607 1.33 christos maxchpwr -= 6; /* MIMO 2T: -3dB */
3608 1.1 ober
3609 1.33 christos pwr = maxpwr;
3610 1.1 ober
3611 1.33 christos /* Adjust TX power based on rate. */
3612 1.33 christos if ((ridx % 8) == 5)
3613 1.33 christos pwr -= 15; /* OFDM48: -7.5dB */
3614 1.33 christos else if ((ridx % 8) == 6)
3615 1.33 christos pwr -= 17; /* OFDM54: -8.5dB */
3616 1.33 christos else if ((ridx % 8) == 7)
3617 1.33 christos pwr -= 20; /* OFDM60: -10dB */
3618 1.33 christos else
3619 1.33 christos pwr -= 10; /* Others: -5dB */
3620 1.1 ober
3621 1.40 christos /* Do not exceed channel max TX power. */
3622 1.1 ober if (pwr > maxchpwr)
3623 1.1 ober pwr = maxchpwr;
3624 1.1 ober
3625 1.1 ober idx = gain - (pwr - power) - tdiff - vdiff;
3626 1.1 ober if ((ridx / 8) & 1) /* MIMO */
3627 1.1 ober idx += (int32_t)le32toh(uc->atten[grp][c]);
3628 1.1 ober
3629 1.1 ober if (cmd.band == 0)
3630 1.1 ober idx += 9; /* 5GHz */
3631 1.1 ober if (ridx == IWN_RIDX_MAX)
3632 1.1 ober idx += 5; /* CCK */
3633 1.1 ober
3634 1.33 christos /* Make sure idx stays in a valid range. */
3635 1.1 ober if (idx < 0)
3636 1.1 ober idx = 0;
3637 1.33 christos else if (idx > IWN4965_MAX_PWR_INDEX)
3638 1.33 christos idx = IWN4965_MAX_PWR_INDEX;
3639 1.1 ober
3640 1.33 christos DPRINTF(("TX chain %d, rate idx %d: power=%d\n",
3641 1.33 christos c, ridx, idx));
3642 1.1 ober cmd.power[ridx].rf_gain[c] = rf_gain[idx];
3643 1.1 ober cmd.power[ridx].dsp_gain[c] = dsp_gain[idx];
3644 1.1 ober }
3645 1.1 ober }
3646 1.1 ober
3647 1.33 christos DPRINTF(("setting TX power for chan %d\n", chan));
3648 1.1 ober return iwn_cmd(sc, IWN_CMD_TXPOWER, &cmd, sizeof cmd, async);
3649 1.1 ober
3650 1.1 ober #undef interpolate
3651 1.1 ober #undef fdivround
3652 1.1 ober }
3653 1.1 ober
3654 1.33 christos static int
3655 1.33 christos iwn5000_set_txpower(struct iwn_softc *sc, int async)
3656 1.33 christos {
3657 1.33 christos struct iwn5000_cmd_txpower cmd;
3658 1.33 christos
3659 1.33 christos /*
3660 1.33 christos * TX power calibration is handled automatically by the firmware
3661 1.33 christos * for 5000 Series.
3662 1.33 christos */
3663 1.33 christos memset(&cmd, 0, sizeof cmd);
3664 1.33 christos cmd.global_limit = 2 * IWN5000_TXPOWER_MAX_DBM; /* 16 dBm */
3665 1.33 christos cmd.flags = IWN5000_TXPOWER_NO_CLOSED;
3666 1.33 christos cmd.srv_limit = IWN5000_TXPOWER_AUTO;
3667 1.33 christos DPRINTF(("setting TX power\n"));
3668 1.33 christos return iwn_cmd(sc, IWN_CMD_TXPOWER_DBM, &cmd, sizeof cmd, async);
3669 1.33 christos }
3670 1.33 christos
3671 1.1 ober /*
3672 1.33 christos * Retrieve the maximum RSSI (in dBm) among receivers.
3673 1.1 ober */
3674 1.1 ober static int
3675 1.33 christos iwn4965_get_rssi(const struct iwn_rx_stat *stat)
3676 1.1 ober {
3677 1.33 christos const struct iwn4965_rx_phystat *phy = (const void *)stat->phybuf;
3678 1.1 ober uint8_t mask, agc;
3679 1.1 ober int rssi;
3680 1.1 ober
3681 1.40 christos mask = (le16toh(phy->antenna) >> 4) & IWN_ANT_ABC;
3682 1.33 christos agc = (le16toh(phy->agc) >> 7) & 0x7f;
3683 1.1 ober
3684 1.1 ober rssi = 0;
3685 1.33 christos if (mask & IWN_ANT_A)
3686 1.33 christos rssi = MAX(rssi, phy->rssi[0]);
3687 1.33 christos if (mask & IWN_ANT_B)
3688 1.33 christos rssi = MAX(rssi, phy->rssi[2]);
3689 1.33 christos if (mask & IWN_ANT_C)
3690 1.33 christos rssi = MAX(rssi, phy->rssi[4]);
3691 1.33 christos
3692 1.33 christos return rssi - agc - IWN_RSSI_TO_DBM;
3693 1.33 christos }
3694 1.33 christos
3695 1.33 christos static int
3696 1.33 christos iwn5000_get_rssi(const struct iwn_rx_stat *stat)
3697 1.33 christos {
3698 1.33 christos const struct iwn5000_rx_phystat *phy = (const void *)stat->phybuf;
3699 1.33 christos uint8_t agc;
3700 1.33 christos int rssi;
3701 1.33 christos
3702 1.33 christos agc = (le32toh(phy->agc) >> 9) & 0x7f;
3703 1.33 christos
3704 1.33 christos rssi = MAX(le16toh(phy->rssi[0]) & 0xff,
3705 1.33 christos le16toh(phy->rssi[1]) & 0xff);
3706 1.33 christos rssi = MAX(le16toh(phy->rssi[2]) & 0xff, rssi);
3707 1.1 ober
3708 1.1 ober return rssi - agc - IWN_RSSI_TO_DBM;
3709 1.1 ober }
3710 1.1 ober
3711 1.1 ober /*
3712 1.33 christos * Retrieve the average noise (in dBm) among receivers.
3713 1.1 ober */
3714 1.1 ober static int
3715 1.1 ober iwn_get_noise(const struct iwn_rx_general_stats *stats)
3716 1.1 ober {
3717 1.1 ober int i, total, nbant, noise;
3718 1.1 ober
3719 1.1 ober total = nbant = 0;
3720 1.1 ober for (i = 0; i < 3; i++) {
3721 1.1 ober if ((noise = le32toh(stats->noise[i]) & 0xff) == 0)
3722 1.1 ober continue;
3723 1.1 ober total += noise;
3724 1.1 ober nbant++;
3725 1.1 ober }
3726 1.33 christos /* There should be at least one antenna but check anyway. */
3727 1.1 ober return (nbant == 0) ? -127 : (total / nbant) - 107;
3728 1.1 ober }
3729 1.1 ober
3730 1.1 ober /*
3731 1.33 christos * Compute temperature (in degC) from last received statistics.
3732 1.1 ober */
3733 1.1 ober static int
3734 1.33 christos iwn4965_get_temperature(struct iwn_softc *sc)
3735 1.1 ober {
3736 1.1 ober struct iwn_ucode_info *uc = &sc->ucode_info;
3737 1.1 ober int32_t r1, r2, r3, r4, temp;
3738 1.1 ober
3739 1.1 ober r1 = le32toh(uc->temp[0].chan20MHz);
3740 1.1 ober r2 = le32toh(uc->temp[1].chan20MHz);
3741 1.1 ober r3 = le32toh(uc->temp[2].chan20MHz);
3742 1.1 ober r4 = le32toh(sc->rawtemp);
3743 1.1 ober
3744 1.53 christos if (r1 == r3) /* Prevents division by 0 (should not happen). */
3745 1.1 ober return 0;
3746 1.1 ober
3747 1.33 christos /* Sign-extend 23-bit R4 value to 32-bit. */
3748 1.53 christos r4 = ((r4 & 0xffffff) ^ 0x800000) - 0x800000;
3749 1.33 christos /* Compute temperature in Kelvin. */
3750 1.1 ober temp = (259 * (r4 - r2)) / (r3 - r1);
3751 1.1 ober temp = (temp * 97) / 100 + 8;
3752 1.1 ober
3753 1.1 ober DPRINTF(("temperature %dK/%dC\n", temp, IWN_KTOC(temp)));
3754 1.1 ober return IWN_KTOC(temp);
3755 1.1 ober }
3756 1.1 ober
3757 1.33 christos static int
3758 1.33 christos iwn5000_get_temperature(struct iwn_softc *sc)
3759 1.33 christos {
3760 1.40 christos int32_t temp;
3761 1.40 christos
3762 1.33 christos /*
3763 1.33 christos * Temperature is not used by the driver for 5000 Series because
3764 1.33 christos * TX power calibration is handled by firmware. We export it to
3765 1.33 christos * users through the sensor framework though.
3766 1.33 christos */
3767 1.40 christos temp = le32toh(sc->rawtemp);
3768 1.40 christos if (sc->hw_type == IWN_HW_REV_TYPE_5150) {
3769 1.40 christos temp = (temp / -5) + sc->temp_off;
3770 1.40 christos temp = IWN_KTOC(temp);
3771 1.40 christos }
3772 1.40 christos return temp;
3773 1.33 christos }
3774 1.33 christos
3775 1.1 ober /*
3776 1.1 ober * Initialize sensitivity calibration state machine.
3777 1.1 ober */
3778 1.1 ober static int
3779 1.1 ober iwn_init_sensitivity(struct iwn_softc *sc)
3780 1.1 ober {
3781 1.53 christos struct iwn_ops *ops = &sc->ops;
3782 1.1 ober struct iwn_calib_state *calib = &sc->calib;
3783 1.33 christos uint32_t flags;
3784 1.1 ober int error;
3785 1.1 ober
3786 1.33 christos /* Reset calibration state machine. */
3787 1.1 ober memset(calib, 0, sizeof (*calib));
3788 1.1 ober calib->state = IWN_CALIB_STATE_INIT;
3789 1.1 ober calib->cck_state = IWN_CCK_STATE_HIFA;
3790 1.33 christos /* Set initial correlation values. */
3791 1.40 christos calib->ofdm_x1 = sc->limits->min_ofdm_x1;
3792 1.40 christos calib->ofdm_mrc_x1 = sc->limits->min_ofdm_mrc_x1;
3793 1.40 christos calib->ofdm_x4 = sc->limits->min_ofdm_x4;
3794 1.40 christos calib->ofdm_mrc_x4 = sc->limits->min_ofdm_mrc_x4;
3795 1.33 christos calib->cck_x4 = 125;
3796 1.40 christos calib->cck_mrc_x4 = sc->limits->min_cck_mrc_x4;
3797 1.40 christos calib->energy_cck = sc->limits->energy_cck;
3798 1.1 ober
3799 1.33 christos /* Write initial sensitivity. */
3800 1.1 ober if ((error = iwn_send_sensitivity(sc)) != 0)
3801 1.1 ober return error;
3802 1.1 ober
3803 1.33 christos /* Write initial gains. */
3804 1.53 christos if ((error = ops->init_gains(sc)) != 0)
3805 1.33 christos return error;
3806 1.33 christos
3807 1.33 christos /* Request statistics at each beacon interval. */
3808 1.33 christos flags = 0;
3809 1.33 christos DPRINTF(("sending request for statistics\n"));
3810 1.33 christos return iwn_cmd(sc, IWN_CMD_GET_STATISTICS, &flags, sizeof flags, 1);
3811 1.1 ober }
3812 1.1 ober
3813 1.1 ober /*
3814 1.1 ober * Collect noise and RSSI statistics for the first 20 beacons received
3815 1.1 ober * after association and use them to determine connected antennas and
3816 1.33 christos * to set differential gains.
3817 1.1 ober */
3818 1.1 ober static void
3819 1.33 christos iwn_collect_noise(struct iwn_softc *sc,
3820 1.1 ober const struct iwn_rx_general_stats *stats)
3821 1.1 ober {
3822 1.53 christos struct iwn_ops *ops = &sc->ops;
3823 1.1 ober struct iwn_calib_state *calib = &sc->calib;
3824 1.33 christos uint32_t val;
3825 1.33 christos int i;
3826 1.1 ober
3827 1.33 christos /* Accumulate RSSI and noise for all 3 antennas. */
3828 1.1 ober for (i = 0; i < 3; i++) {
3829 1.1 ober calib->rssi[i] += le32toh(stats->rssi[i]) & 0xff;
3830 1.1 ober calib->noise[i] += le32toh(stats->noise[i]) & 0xff;
3831 1.1 ober }
3832 1.33 christos /* NB: We update differential gains only once after 20 beacons. */
3833 1.1 ober if (++calib->nbeacons < 20)
3834 1.1 ober return;
3835 1.1 ober
3836 1.33 christos /* Determine highest average RSSI. */
3837 1.33 christos val = MAX(calib->rssi[0], calib->rssi[1]);
3838 1.33 christos val = MAX(calib->rssi[2], val);
3839 1.1 ober
3840 1.33 christos /* Determine which antennas are connected. */
3841 1.40 christos sc->chainmask = sc->rxchainmask;
3842 1.1 ober for (i = 0; i < 3; i++)
3843 1.40 christos if (val - calib->rssi[i] > 15 * 20)
3844 1.40 christos sc->chainmask &= ~(1 << i);
3845 1.44 christos DPRINTF(("RX chains mask: theoretical=0x%x, actual=0x%x\n",
3846 1.44 christos sc->rxchainmask, sc->chainmask));
3847 1.44 christos
3848 1.33 christos /* If none of the TX antennas are connected, keep at least one. */
3849 1.40 christos if ((sc->chainmask & sc->txchainmask) == 0)
3850 1.40 christos sc->chainmask |= IWN_LSB(sc->txchainmask);
3851 1.33 christos
3852 1.53 christos (void)ops->set_gains(sc);
3853 1.33 christos calib->state = IWN_CALIB_STATE_RUN;
3854 1.33 christos
3855 1.33 christos #ifdef notyet
3856 1.33 christos /* XXX Disable RX chains with no antennas connected. */
3857 1.40 christos sc->rxon.rxchain = htole16(IWN_RXCHAIN_SEL(sc->chainmask));
3858 1.53 christos (void)iwn_cmd(sc, IWN_CMD_RXON, &sc->rxon, sc->rxonsz, 1);
3859 1.40 christos #endif
3860 1.33 christos
3861 1.33 christos /* Enable power-saving mode if requested by user. */
3862 1.33 christos if (sc->sc_ic.ic_flags & IEEE80211_F_PMGTON)
3863 1.33 christos (void)iwn_set_pslevel(sc, 0, 3, 1);
3864 1.33 christos }
3865 1.33 christos
3866 1.33 christos static int
3867 1.33 christos iwn4965_init_gains(struct iwn_softc *sc)
3868 1.33 christos {
3869 1.33 christos struct iwn_phy_calib_gain cmd;
3870 1.33 christos
3871 1.33 christos memset(&cmd, 0, sizeof cmd);
3872 1.33 christos cmd.code = IWN4965_PHY_CALIB_DIFF_GAIN;
3873 1.33 christos /* Differential gains initially set to 0 for all 3 antennas. */
3874 1.33 christos DPRINTF(("setting initial differential gains\n"));
3875 1.33 christos return iwn_cmd(sc, IWN_CMD_PHY_CALIB, &cmd, sizeof cmd, 1);
3876 1.33 christos }
3877 1.33 christos
3878 1.33 christos static int
3879 1.33 christos iwn5000_init_gains(struct iwn_softc *sc)
3880 1.33 christos {
3881 1.33 christos struct iwn_phy_calib cmd;
3882 1.33 christos
3883 1.33 christos memset(&cmd, 0, sizeof cmd);
3884 1.72 nonaka cmd.code = sc->reset_noise_gain;
3885 1.33 christos cmd.ngroups = 1;
3886 1.33 christos cmd.isvalid = 1;
3887 1.33 christos DPRINTF(("setting initial differential gains\n"));
3888 1.33 christos return iwn_cmd(sc, IWN_CMD_PHY_CALIB, &cmd, sizeof cmd, 1);
3889 1.33 christos }
3890 1.33 christos
3891 1.33 christos static int
3892 1.33 christos iwn4965_set_gains(struct iwn_softc *sc)
3893 1.33 christos {
3894 1.33 christos struct iwn_calib_state *calib = &sc->calib;
3895 1.33 christos struct iwn_phy_calib_gain cmd;
3896 1.33 christos int i, delta, noise;
3897 1.1 ober
3898 1.33 christos /* Get minimal noise among connected antennas. */
3899 1.33 christos noise = INT_MAX; /* NB: There's at least one antenna. */
3900 1.1 ober for (i = 0; i < 3; i++)
3901 1.40 christos if (sc->chainmask & (1 << i))
3902 1.33 christos noise = MIN(calib->noise[i], noise);
3903 1.1 ober
3904 1.1 ober memset(&cmd, 0, sizeof cmd);
3905 1.33 christos cmd.code = IWN4965_PHY_CALIB_DIFF_GAIN;
3906 1.33 christos /* Set differential gains for connected antennas. */
3907 1.1 ober for (i = 0; i < 3; i++) {
3908 1.40 christos if (sc->chainmask & (1 << i)) {
3909 1.33 christos /* Compute attenuation (in unit of 1.5dB). */
3910 1.33 christos delta = (noise - (int32_t)calib->noise[i]) / 30;
3911 1.33 christos /* NB: delta <= 0 */
3912 1.33 christos /* Limit to [-4.5dB,0]. */
3913 1.33 christos cmd.gain[i] = MIN(abs(delta), 3);
3914 1.33 christos if (delta < 0)
3915 1.33 christos cmd.gain[i] |= 1 << 2; /* sign bit */
3916 1.1 ober }
3917 1.1 ober }
3918 1.1 ober DPRINTF(("setting differential gains Ant A/B/C: %x/%x/%x (%x)\n",
3919 1.40 christos cmd.gain[0], cmd.gain[1], cmd.gain[2], sc->chainmask));
3920 1.33 christos return iwn_cmd(sc, IWN_CMD_PHY_CALIB, &cmd, sizeof cmd, 1);
3921 1.33 christos }
3922 1.33 christos
3923 1.33 christos static int
3924 1.33 christos iwn5000_set_gains(struct iwn_softc *sc)
3925 1.33 christos {
3926 1.33 christos struct iwn_calib_state *calib = &sc->calib;
3927 1.33 christos struct iwn_phy_calib_gain cmd;
3928 1.40 christos int i, ant, div, delta;
3929 1.33 christos
3930 1.40 christos /* We collected 20 beacons and !=6050 need a 1.5 factor. */
3931 1.40 christos div = (sc->hw_type == IWN_HW_REV_TYPE_6050) ? 20 : 30;
3932 1.33 christos
3933 1.33 christos memset(&cmd, 0, sizeof cmd);
3934 1.72 nonaka cmd.code = sc->noise_gain;
3935 1.33 christos cmd.ngroups = 1;
3936 1.33 christos cmd.isvalid = 1;
3937 1.40 christos /* Get first available RX antenna as referential. */
3938 1.40 christos ant = IWN_LSB(sc->rxchainmask);
3939 1.40 christos /* Set differential gains for other antennas. */
3940 1.40 christos for (i = ant + 1; i < 3; i++) {
3941 1.40 christos if (sc->chainmask & (1 << i)) {
3942 1.40 christos /* The delta is relative to antenna "ant". */
3943 1.40 christos delta = ((int32_t)calib->noise[ant] -
3944 1.40 christos (int32_t)calib->noise[i]) / div;
3945 1.33 christos /* Limit to [-4.5dB,+4.5dB]. */
3946 1.33 christos cmd.gain[i - 1] = MIN(abs(delta), 3);
3947 1.33 christos if (delta < 0)
3948 1.33 christos cmd.gain[i - 1] |= 1 << 2; /* sign bit */
3949 1.33 christos }
3950 1.33 christos }
3951 1.40 christos DPRINTF(("setting differential gains: %x/%x (%x)\n",
3952 1.40 christos cmd.gain[0], cmd.gain[1], sc->chainmask));
3953 1.33 christos return iwn_cmd(sc, IWN_CMD_PHY_CALIB, &cmd, sizeof cmd, 1);
3954 1.1 ober }
3955 1.1 ober
3956 1.1 ober /*
3957 1.33 christos * Tune RF RX sensitivity based on the number of false alarms detected
3958 1.1 ober * during the last beacon period.
3959 1.1 ober */
3960 1.1 ober static void
3961 1.1 ober iwn_tune_sensitivity(struct iwn_softc *sc, const struct iwn_rx_stats *stats)
3962 1.1 ober {
3963 1.33 christos #define inc(val, inc, max) \
3964 1.33 christos if ((val) < (max)) { \
3965 1.33 christos if ((val) < (max) - (inc)) \
3966 1.33 christos (val) += (inc); \
3967 1.33 christos else \
3968 1.33 christos (val) = (max); \
3969 1.33 christos needs_update = 1; \
3970 1.33 christos }
3971 1.33 christos #define dec(val, dec, min) \
3972 1.33 christos if ((val) > (min)) { \
3973 1.33 christos if ((val) > (min) + (dec)) \
3974 1.33 christos (val) -= (dec); \
3975 1.33 christos else \
3976 1.33 christos (val) = (min); \
3977 1.33 christos needs_update = 1; \
3978 1.1 ober }
3979 1.1 ober
3980 1.40 christos const struct iwn_sensitivity_limits *limits = sc->limits;
3981 1.1 ober struct iwn_calib_state *calib = &sc->calib;
3982 1.1 ober uint32_t val, rxena, fa;
3983 1.1 ober uint32_t energy[3], energy_min;
3984 1.1 ober uint8_t noise[3], noise_ref;
3985 1.1 ober int i, needs_update = 0;
3986 1.1 ober
3987 1.33 christos /* Check that we've been enabled long enough. */
3988 1.1 ober if ((rxena = le32toh(stats->general.load)) == 0)
3989 1.1 ober return;
3990 1.1 ober
3991 1.33 christos /* Compute number of false alarms since last call for OFDM. */
3992 1.1 ober fa = le32toh(stats->ofdm.bad_plcp) - calib->bad_plcp_ofdm;
3993 1.1 ober fa += le32toh(stats->ofdm.fa) - calib->fa_ofdm;
3994 1.1 ober fa *= 200 * 1024; /* 200TU */
3995 1.1 ober
3996 1.33 christos /* Save counters values for next call. */
3997 1.1 ober calib->bad_plcp_ofdm = le32toh(stats->ofdm.bad_plcp);
3998 1.1 ober calib->fa_ofdm = le32toh(stats->ofdm.fa);
3999 1.1 ober
4000 1.1 ober if (fa > 50 * rxena) {
4001 1.33 christos /* High false alarm count, decrease sensitivity. */
4002 1.1 ober DPRINTFN(2, ("OFDM high false alarm count: %u\n", fa));
4003 1.33 christos inc(calib->ofdm_x1, 1, limits->max_ofdm_x1);
4004 1.33 christos inc(calib->ofdm_mrc_x1, 1, limits->max_ofdm_mrc_x1);
4005 1.33 christos inc(calib->ofdm_x4, 1, limits->max_ofdm_x4);
4006 1.33 christos inc(calib->ofdm_mrc_x4, 1, limits->max_ofdm_mrc_x4);
4007 1.1 ober
4008 1.1 ober } else if (fa < 5 * rxena) {
4009 1.33 christos /* Low false alarm count, increase sensitivity. */
4010 1.1 ober DPRINTFN(2, ("OFDM low false alarm count: %u\n", fa));
4011 1.33 christos dec(calib->ofdm_x1, 1, limits->min_ofdm_x1);
4012 1.33 christos dec(calib->ofdm_mrc_x1, 1, limits->min_ofdm_mrc_x1);
4013 1.33 christos dec(calib->ofdm_x4, 1, limits->min_ofdm_x4);
4014 1.33 christos dec(calib->ofdm_mrc_x4, 1, limits->min_ofdm_mrc_x4);
4015 1.1 ober }
4016 1.1 ober
4017 1.33 christos /* Compute maximum noise among 3 receivers. */
4018 1.1 ober for (i = 0; i < 3; i++)
4019 1.1 ober noise[i] = (le32toh(stats->general.noise[i]) >> 8) & 0xff;
4020 1.33 christos val = MAX(noise[0], noise[1]);
4021 1.33 christos val = MAX(noise[2], val);
4022 1.33 christos /* Insert it into our samples table. */
4023 1.1 ober calib->noise_samples[calib->cur_noise_sample] = val;
4024 1.1 ober calib->cur_noise_sample = (calib->cur_noise_sample + 1) % 20;
4025 1.1 ober
4026 1.33 christos /* Compute maximum noise among last 20 samples. */
4027 1.1 ober noise_ref = calib->noise_samples[0];
4028 1.1 ober for (i = 1; i < 20; i++)
4029 1.33 christos noise_ref = MAX(noise_ref, calib->noise_samples[i]);
4030 1.1 ober
4031 1.33 christos /* Compute maximum energy among 3 receivers. */
4032 1.1 ober for (i = 0; i < 3; i++)
4033 1.1 ober energy[i] = le32toh(stats->general.energy[i]);
4034 1.33 christos val = MIN(energy[0], energy[1]);
4035 1.33 christos val = MIN(energy[2], val);
4036 1.33 christos /* Insert it into our samples table. */
4037 1.1 ober calib->energy_samples[calib->cur_energy_sample] = val;
4038 1.1 ober calib->cur_energy_sample = (calib->cur_energy_sample + 1) % 10;
4039 1.1 ober
4040 1.33 christos /* Compute minimum energy among last 10 samples. */
4041 1.1 ober energy_min = calib->energy_samples[0];
4042 1.1 ober for (i = 1; i < 10; i++)
4043 1.33 christos energy_min = MAX(energy_min, calib->energy_samples[i]);
4044 1.1 ober energy_min += 6;
4045 1.1 ober
4046 1.33 christos /* Compute number of false alarms since last call for CCK. */
4047 1.1 ober fa = le32toh(stats->cck.bad_plcp) - calib->bad_plcp_cck;
4048 1.1 ober fa += le32toh(stats->cck.fa) - calib->fa_cck;
4049 1.1 ober fa *= 200 * 1024; /* 200TU */
4050 1.1 ober
4051 1.33 christos /* Save counters values for next call. */
4052 1.1 ober calib->bad_plcp_cck = le32toh(stats->cck.bad_plcp);
4053 1.1 ober calib->fa_cck = le32toh(stats->cck.fa);
4054 1.1 ober
4055 1.1 ober if (fa > 50 * rxena) {
4056 1.33 christos /* High false alarm count, decrease sensitivity. */
4057 1.1 ober DPRINTFN(2, ("CCK high false alarm count: %u\n", fa));
4058 1.1 ober calib->cck_state = IWN_CCK_STATE_HIFA;
4059 1.1 ober calib->low_fa = 0;
4060 1.1 ober
4061 1.33 christos if (calib->cck_x4 > 160) {
4062 1.1 ober calib->noise_ref = noise_ref;
4063 1.1 ober if (calib->energy_cck > 2)
4064 1.33 christos dec(calib->energy_cck, 2, energy_min);
4065 1.1 ober }
4066 1.33 christos if (calib->cck_x4 < 160) {
4067 1.33 christos calib->cck_x4 = 161;
4068 1.1 ober needs_update = 1;
4069 1.1 ober } else
4070 1.33 christos inc(calib->cck_x4, 3, limits->max_cck_x4);
4071 1.1 ober
4072 1.33 christos inc(calib->cck_mrc_x4, 3, limits->max_cck_mrc_x4);
4073 1.1 ober
4074 1.1 ober } else if (fa < 5 * rxena) {
4075 1.33 christos /* Low false alarm count, increase sensitivity. */
4076 1.1 ober DPRINTFN(2, ("CCK low false alarm count: %u\n", fa));
4077 1.1 ober calib->cck_state = IWN_CCK_STATE_LOFA;
4078 1.1 ober calib->low_fa++;
4079 1.1 ober
4080 1.33 christos if (calib->cck_state != IWN_CCK_STATE_INIT &&
4081 1.33 christos (((int32_t)calib->noise_ref - (int32_t)noise_ref) > 2 ||
4082 1.33 christos calib->low_fa > 100)) {
4083 1.33 christos inc(calib->energy_cck, 2, limits->min_energy_cck);
4084 1.33 christos dec(calib->cck_x4, 3, limits->min_cck_x4);
4085 1.33 christos dec(calib->cck_mrc_x4, 3, limits->min_cck_mrc_x4);
4086 1.1 ober }
4087 1.1 ober } else {
4088 1.33 christos /* Not worth to increase or decrease sensitivity. */
4089 1.1 ober DPRINTFN(2, ("CCK normal false alarm count: %u\n", fa));
4090 1.1 ober calib->low_fa = 0;
4091 1.1 ober calib->noise_ref = noise_ref;
4092 1.1 ober
4093 1.1 ober if (calib->cck_state == IWN_CCK_STATE_HIFA) {
4094 1.33 christos /* Previous interval had many false alarms. */
4095 1.33 christos dec(calib->energy_cck, 8, energy_min);
4096 1.1 ober }
4097 1.1 ober calib->cck_state = IWN_CCK_STATE_INIT;
4098 1.1 ober }
4099 1.1 ober
4100 1.1 ober if (needs_update)
4101 1.1 ober (void)iwn_send_sensitivity(sc);
4102 1.33 christos #undef dec
4103 1.33 christos #undef inc
4104 1.1 ober }
4105 1.1 ober
4106 1.1 ober static int
4107 1.1 ober iwn_send_sensitivity(struct iwn_softc *sc)
4108 1.1 ober {
4109 1.1 ober struct iwn_calib_state *calib = &sc->calib;
4110 1.72 nonaka struct iwn_enhanced_sensitivity_cmd cmd;
4111 1.72 nonaka int len;
4112 1.1 ober
4113 1.1 ober memset(&cmd, 0, sizeof cmd);
4114 1.72 nonaka len = sizeof (struct iwn_sensitivity_cmd);
4115 1.1 ober cmd.which = IWN_SENSITIVITY_WORKTBL;
4116 1.33 christos /* OFDM modulation. */
4117 1.33 christos cmd.corr_ofdm_x1 = htole16(calib->ofdm_x1);
4118 1.33 christos cmd.corr_ofdm_mrc_x1 = htole16(calib->ofdm_mrc_x1);
4119 1.33 christos cmd.corr_ofdm_x4 = htole16(calib->ofdm_x4);
4120 1.33 christos cmd.corr_ofdm_mrc_x4 = htole16(calib->ofdm_mrc_x4);
4121 1.40 christos cmd.energy_ofdm = htole16(sc->limits->energy_ofdm);
4122 1.33 christos cmd.energy_ofdm_th = htole16(62);
4123 1.33 christos /* CCK modulation. */
4124 1.33 christos cmd.corr_cck_x4 = htole16(calib->cck_x4);
4125 1.33 christos cmd.corr_cck_mrc_x4 = htole16(calib->cck_mrc_x4);
4126 1.33 christos cmd.energy_cck = htole16(calib->energy_cck);
4127 1.33 christos /* Barker modulation: use default values. */
4128 1.33 christos cmd.corr_barker = htole16(190);
4129 1.33 christos cmd.corr_barker_mrc = htole16(390);
4130 1.72 nonaka if (!(sc->sc_flags & IWN_FLAG_ENH_SENS))
4131 1.72 nonaka goto send;
4132 1.72 nonaka /* Enhanced sensitivity settings. */
4133 1.72 nonaka len = sizeof (struct iwn_enhanced_sensitivity_cmd);
4134 1.72 nonaka cmd.ofdm_det_slope_mrc = htole16(668);
4135 1.72 nonaka cmd.ofdm_det_icept_mrc = htole16(4);
4136 1.72 nonaka cmd.ofdm_det_slope = htole16(486);
4137 1.72 nonaka cmd.ofdm_det_icept = htole16(37);
4138 1.72 nonaka cmd.cck_det_slope_mrc = htole16(853);
4139 1.72 nonaka cmd.cck_det_icept_mrc = htole16(4);
4140 1.72 nonaka cmd.cck_det_slope = htole16(476);
4141 1.72 nonaka cmd.cck_det_icept = htole16(99);
4142 1.72 nonaka send:
4143 1.33 christos DPRINTFN(2, ("setting sensitivity %d/%d/%d/%d/%d/%d/%d\n",
4144 1.33 christos calib->ofdm_x1, calib->ofdm_mrc_x1, calib->ofdm_x4,
4145 1.33 christos calib->ofdm_mrc_x4, calib->cck_x4, calib->cck_mrc_x4,
4146 1.33 christos calib->energy_cck));
4147 1.72 nonaka return iwn_cmd(sc, IWN_CMD_SET_SENSITIVITY, &cmd, len, 1);
4148 1.33 christos }
4149 1.33 christos
4150 1.33 christos /*
4151 1.33 christos * Set STA mode power saving level (between 0 and 5).
4152 1.33 christos * Level 0 is CAM (Continuously Aware Mode), 5 is for maximum power saving.
4153 1.33 christos */
4154 1.33 christos static int
4155 1.33 christos iwn_set_pslevel(struct iwn_softc *sc, int dtim, int level, int async)
4156 1.33 christos {
4157 1.33 christos struct iwn_pmgt_cmd cmd;
4158 1.33 christos const struct iwn_pmgt *pmgt;
4159 1.40 christos uint32_t maxp, skip_dtim;
4160 1.33 christos pcireg_t reg;
4161 1.33 christos int i;
4162 1.33 christos
4163 1.33 christos /* Select which PS parameters to use. */
4164 1.33 christos if (dtim <= 2)
4165 1.33 christos pmgt = &iwn_pmgt[0][level];
4166 1.33 christos else if (dtim <= 10)
4167 1.33 christos pmgt = &iwn_pmgt[1][level];
4168 1.33 christos else
4169 1.33 christos pmgt = &iwn_pmgt[2][level];
4170 1.33 christos
4171 1.33 christos memset(&cmd, 0, sizeof cmd);
4172 1.33 christos if (level != 0) /* not CAM */
4173 1.33 christos cmd.flags |= htole16(IWN_PS_ALLOW_SLEEP);
4174 1.33 christos if (level == 5)
4175 1.33 christos cmd.flags |= htole16(IWN_PS_FAST_PD);
4176 1.33 christos /* Retrieve PCIe Active State Power Management (ASPM). */
4177 1.33 christos reg = pci_conf_read(sc->sc_pct, sc->sc_pcitag,
4178 1.65 msaitoh sc->sc_cap_off + PCIE_LCSR);
4179 1.65 msaitoh if (!(reg & PCIE_LCSR_ASPM_L0S)) /* L0s Entry disabled. */
4180 1.33 christos cmd.flags |= htole16(IWN_PS_PCI_PMGT);
4181 1.33 christos cmd.rxtimeout = htole32(pmgt->rxtimeout * 1024);
4182 1.33 christos cmd.txtimeout = htole32(pmgt->txtimeout * 1024);
4183 1.33 christos
4184 1.33 christos if (dtim == 0) {
4185 1.33 christos dtim = 1;
4186 1.33 christos skip_dtim = 0;
4187 1.33 christos } else
4188 1.33 christos skip_dtim = pmgt->skip_dtim;
4189 1.33 christos if (skip_dtim != 0) {
4190 1.33 christos cmd.flags |= htole16(IWN_PS_SLEEP_OVER_DTIM);
4191 1.40 christos maxp = pmgt->intval[4];
4192 1.40 christos if (maxp == (uint32_t)-1)
4193 1.40 christos maxp = dtim * (skip_dtim + 1);
4194 1.40 christos else if (maxp > dtim)
4195 1.40 christos maxp = (maxp / dtim) * dtim;
4196 1.33 christos } else
4197 1.40 christos maxp = dtim;
4198 1.33 christos for (i = 0; i < 5; i++)
4199 1.40 christos cmd.intval[i] = htole32(MIN(maxp, pmgt->intval[i]));
4200 1.1 ober
4201 1.33 christos DPRINTF(("setting power saving level to %d\n", level));
4202 1.33 christos return iwn_cmd(sc, IWN_CMD_SET_POWER_MODE, &cmd, sizeof cmd, async);
4203 1.1 ober }
4204 1.1 ober
4205 1.60 mbalmer int
4206 1.59 elric iwn5000_runtime_calib(struct iwn_softc *sc)
4207 1.59 elric {
4208 1.59 elric struct iwn5000_calib_config cmd;
4209 1.59 elric
4210 1.59 elric memset(&cmd, 0, sizeof cmd);
4211 1.59 elric cmd.ucode.once.enable = 0xffffffff;
4212 1.59 elric cmd.ucode.once.start = IWN5000_CALIB_DC;
4213 1.59 elric DPRINTF(("configuring runtime calibration\n"));
4214 1.59 elric return iwn_cmd(sc, IWN5000_CMD_CALIB_CONFIG, &cmd, sizeof(cmd), 0);
4215 1.59 elric }
4216 1.59 elric
4217 1.1 ober static int
4218 1.67 prlw1 iwn_config_bt_coex_bluetooth(struct iwn_softc *sc)
4219 1.67 prlw1 {
4220 1.67 prlw1 struct iwn_bluetooth bluetooth;
4221 1.67 prlw1
4222 1.67 prlw1 memset(&bluetooth, 0, sizeof bluetooth);
4223 1.67 prlw1 bluetooth.flags = IWN_BT_COEX_ENABLE;
4224 1.67 prlw1 bluetooth.lead_time = IWN_BT_LEAD_TIME_DEF;
4225 1.67 prlw1 bluetooth.max_kill = IWN_BT_MAX_KILL_DEF;
4226 1.67 prlw1
4227 1.67 prlw1 DPRINTF(("configuring bluetooth coexistence\n"));
4228 1.67 prlw1 return iwn_cmd(sc, IWN_CMD_BT_COEX, &bluetooth, sizeof bluetooth, 0);
4229 1.67 prlw1 }
4230 1.67 prlw1
4231 1.67 prlw1 static int
4232 1.67 prlw1 iwn_config_bt_coex_prio_table(struct iwn_softc *sc)
4233 1.67 prlw1 {
4234 1.67 prlw1 uint8_t prio_table[16];
4235 1.67 prlw1
4236 1.67 prlw1 memset(&prio_table, 0, sizeof prio_table);
4237 1.67 prlw1 prio_table[ 0] = 6; /* init calibration 1 */
4238 1.67 prlw1 prio_table[ 1] = 7; /* init calibration 2 */
4239 1.67 prlw1 prio_table[ 2] = 2; /* periodic calib low 1 */
4240 1.67 prlw1 prio_table[ 3] = 3; /* periodic calib low 2 */
4241 1.67 prlw1 prio_table[ 4] = 4; /* periodic calib high 1 */
4242 1.67 prlw1 prio_table[ 5] = 5; /* periodic calib high 2 */
4243 1.67 prlw1 prio_table[ 6] = 6; /* dtim */
4244 1.67 prlw1 prio_table[ 7] = 8; /* scan52 */
4245 1.67 prlw1 prio_table[ 8] = 10; /* scan24 */
4246 1.67 prlw1
4247 1.67 prlw1 DPRINTF(("sending priority lookup table\n"));
4248 1.67 prlw1 return iwn_cmd(sc, IWN_CMD_BT_COEX_PRIO_TABLE,
4249 1.67 prlw1 &prio_table, sizeof prio_table, 0);
4250 1.67 prlw1 }
4251 1.67 prlw1
4252 1.67 prlw1 static int
4253 1.72 nonaka iwn_config_bt_coex_adv_config(struct iwn_softc *sc, struct iwn_bt_basic *basic,
4254 1.72 nonaka size_t len)
4255 1.67 prlw1 {
4256 1.72 nonaka struct iwn_btcoex_prot btprot;
4257 1.67 prlw1 int error;
4258 1.67 prlw1
4259 1.72 nonaka basic->bt.flags = IWN_BT_COEX_ENABLE;
4260 1.72 nonaka basic->bt.lead_time = IWN_BT_LEAD_TIME_DEF;
4261 1.72 nonaka basic->bt.max_kill = IWN_BT_MAX_KILL_DEF;
4262 1.72 nonaka basic->bt.bt3_timer_t7_value = IWN_BT_BT3_T7_DEF;
4263 1.72 nonaka basic->bt.kill_ack_mask = IWN_BT_KILL_ACK_MASK_DEF;
4264 1.72 nonaka basic->bt.kill_cts_mask = IWN_BT_KILL_CTS_MASK_DEF;
4265 1.72 nonaka basic->bt3_prio_sample_time = IWN_BT_BT3_PRIO_SAMPLE_DEF;
4266 1.72 nonaka basic->bt3_timer_t2_value = IWN_BT_BT3_T2_DEF;
4267 1.72 nonaka basic->bt3_lookup_table[ 0] = htole32(0xaaaaaaaa); /* Normal */
4268 1.72 nonaka basic->bt3_lookup_table[ 1] = htole32(0xaaaaaaaa);
4269 1.72 nonaka basic->bt3_lookup_table[ 2] = htole32(0xaeaaaaaa);
4270 1.72 nonaka basic->bt3_lookup_table[ 3] = htole32(0xaaaaaaaa);
4271 1.72 nonaka basic->bt3_lookup_table[ 4] = htole32(0xcc00ff28);
4272 1.72 nonaka basic->bt3_lookup_table[ 5] = htole32(0x0000aaaa);
4273 1.72 nonaka basic->bt3_lookup_table[ 6] = htole32(0xcc00aaaa);
4274 1.72 nonaka basic->bt3_lookup_table[ 7] = htole32(0x0000aaaa);
4275 1.72 nonaka basic->bt3_lookup_table[ 8] = htole32(0xc0004000);
4276 1.72 nonaka basic->bt3_lookup_table[ 9] = htole32(0x00004000);
4277 1.72 nonaka basic->bt3_lookup_table[10] = htole32(0xf0005000);
4278 1.72 nonaka basic->bt3_lookup_table[11] = htole32(0xf0005000);
4279 1.72 nonaka basic->reduce_txpower = 0; /* as not implemented */
4280 1.72 nonaka basic->valid = IWN_BT_ALL_VALID_MASK;
4281 1.67 prlw1
4282 1.67 prlw1 DPRINTF(("configuring advanced bluetooth coexistence v1\n"));
4283 1.72 nonaka error = iwn_cmd(sc, IWN_CMD_BT_COEX, basic, len, 0);
4284 1.67 prlw1 if (error != 0) {
4285 1.67 prlw1 aprint_error_dev(sc->sc_dev,
4286 1.67 prlw1 "could not configure advanced bluetooth coexistence\n");
4287 1.67 prlw1 return error;
4288 1.67 prlw1 }
4289 1.67 prlw1
4290 1.67 prlw1 error = iwn_config_bt_coex_prio_table(sc);
4291 1.67 prlw1 if (error != 0) {
4292 1.67 prlw1 aprint_error_dev(sc->sc_dev,
4293 1.67 prlw1 "could not configure send BT priority table\n");
4294 1.67 prlw1 return error;
4295 1.67 prlw1 }
4296 1.67 prlw1
4297 1.72 nonaka /* Force BT state machine change */
4298 1.72 nonaka memset(&btprot, 0, sizeof btprot);
4299 1.72 nonaka btprot.open = 1;
4300 1.72 nonaka btprot.type = 1;
4301 1.72 nonaka error = iwn_cmd(sc, IWN_CMD_BT_COEX_PROT, &btprot, sizeof btprot, 1);
4302 1.72 nonaka if (error != 0) {
4303 1.72 nonaka aprint_error_dev(sc->sc_dev, "could not open BT protcol\n");
4304 1.72 nonaka return error;
4305 1.72 nonaka }
4306 1.72 nonaka
4307 1.72 nonaka btprot.open = 0;
4308 1.72 nonaka error = iwn_cmd(sc, IWN_CMD_BT_COEX_PROT, &btprot, sizeof btprot, 1);
4309 1.72 nonaka if (error != 0) {
4310 1.72 nonaka aprint_error_dev(sc->sc_dev, "could not close BT protcol\n");
4311 1.72 nonaka return error;
4312 1.72 nonaka }
4313 1.72 nonaka return 0;
4314 1.72 nonaka }
4315 1.72 nonaka
4316 1.72 nonaka static int
4317 1.72 nonaka iwn_config_bt_coex_adv1(struct iwn_softc *sc)
4318 1.72 nonaka {
4319 1.72 nonaka struct iwn_bt_adv1 d;
4320 1.72 nonaka
4321 1.72 nonaka memset(&d, 0, sizeof d);
4322 1.72 nonaka d.prio_boost = IWN_BT_PRIO_BOOST_DEF;
4323 1.72 nonaka d.tx_prio_boost = 0;
4324 1.72 nonaka d.rx_prio_boost = 0;
4325 1.72 nonaka return iwn_config_bt_coex_adv_config(sc, &d.basic, sizeof d);
4326 1.72 nonaka }
4327 1.72 nonaka
4328 1.72 nonaka static int
4329 1.72 nonaka iwn_config_bt_coex_adv2(struct iwn_softc *sc)
4330 1.72 nonaka {
4331 1.72 nonaka struct iwn_bt_adv2 d;
4332 1.72 nonaka
4333 1.72 nonaka memset(&d, 0, sizeof d);
4334 1.72 nonaka d.prio_boost = IWN_BT_PRIO_BOOST_DEF;
4335 1.72 nonaka d.tx_prio_boost = 0;
4336 1.72 nonaka d.rx_prio_boost = 0;
4337 1.72 nonaka return iwn_config_bt_coex_adv_config(sc, &d.basic, sizeof d);
4338 1.67 prlw1 }
4339 1.67 prlw1
4340 1.67 prlw1 static int
4341 1.33 christos iwn_config(struct iwn_softc *sc)
4342 1.11 blymn {
4343 1.53 christos struct iwn_ops *ops = &sc->ops;
4344 1.33 christos struct ieee80211com *ic = &sc->sc_ic;
4345 1.33 christos struct ifnet *ifp = ic->ic_ifp;
4346 1.40 christos uint32_t txmask;
4347 1.33 christos uint16_t rxchain;
4348 1.11 blymn int error;
4349 1.11 blymn
4350 1.67 prlw1 error = ops->config_bt_coex(sc);
4351 1.67 prlw1 if (error != 0) {
4352 1.67 prlw1 aprint_error_dev(sc->sc_dev,
4353 1.67 prlw1 "could not configure bluetooth coexistence\n");
4354 1.67 prlw1 return error;
4355 1.67 prlw1 }
4356 1.67 prlw1
4357 1.72 nonaka /* Set radio temperature sensor offset. */
4358 1.72 nonaka if (sc->hw_type == IWN_HW_REV_TYPE_6005) {
4359 1.72 nonaka error = iwn6000_temp_offset_calib(sc);
4360 1.72 nonaka if (error != 0) {
4361 1.72 nonaka aprint_error_dev(sc->sc_dev,
4362 1.72 nonaka "could not set temperature offset\n");
4363 1.72 nonaka return error;
4364 1.72 nonaka }
4365 1.72 nonaka }
4366 1.72 nonaka
4367 1.72 nonaka if (sc->hw_type == IWN_HW_REV_TYPE_2030 ||
4368 1.72 nonaka sc->hw_type == IWN_HW_REV_TYPE_2000 ||
4369 1.72 nonaka sc->hw_type == IWN_HW_REV_TYPE_135 ||
4370 1.72 nonaka sc->hw_type == IWN_HW_REV_TYPE_105) {
4371 1.72 nonaka error = iwn2000_temp_offset_calib(sc);
4372 1.72 nonaka if (error != 0) {
4373 1.72 nonaka aprint_error_dev(sc->sc_dev,
4374 1.72 nonaka "could not set temperature offset\n");
4375 1.72 nonaka return error;
4376 1.72 nonaka }
4377 1.72 nonaka }
4378 1.72 nonaka
4379 1.59 elric if (sc->hw_type == IWN_HW_REV_TYPE_6050 ||
4380 1.59 elric sc->hw_type == IWN_HW_REV_TYPE_6005) {
4381 1.59 elric /* Configure runtime DC calibration. */
4382 1.59 elric error = iwn5000_runtime_calib(sc);
4383 1.59 elric if (error != 0) {
4384 1.61 elric aprint_error_dev(sc->sc_dev,
4385 1.61 elric "could not configure runtime calibration\n");
4386 1.59 elric return error;
4387 1.59 elric }
4388 1.59 elric }
4389 1.59 elric
4390 1.40 christos /* Configure valid TX chains for 5000 Series. */
4391 1.40 christos if (sc->hw_type != IWN_HW_REV_TYPE_4965) {
4392 1.40 christos txmask = htole32(sc->txchainmask);
4393 1.40 christos DPRINTF(("configuring valid TX chains 0x%x\n", txmask));
4394 1.40 christos error = iwn_cmd(sc, IWN5000_CMD_TX_ANT_CONFIG, &txmask,
4395 1.40 christos sizeof txmask, 0);
4396 1.40 christos if (error != 0) {
4397 1.40 christos aprint_error_dev(sc->sc_dev,
4398 1.40 christos "could not configure valid TX chains\n");
4399 1.40 christos return error;
4400 1.40 christos }
4401 1.11 blymn }
4402 1.33 christos
4403 1.40 christos /* Set mode, channel, RX filter and enable RX. */
4404 1.33 christos memset(&sc->rxon, 0, sizeof (struct iwn_rxon));
4405 1.33 christos IEEE80211_ADDR_COPY(ic->ic_myaddr, CLLADDR(ifp->if_sadl));
4406 1.33 christos IEEE80211_ADDR_COPY(sc->rxon.myaddr, ic->ic_myaddr);
4407 1.33 christos IEEE80211_ADDR_COPY(sc->rxon.wlap, ic->ic_myaddr);
4408 1.40 christos sc->rxon.chan = ieee80211_chan2ieee(ic, ic->ic_ibss_chan);
4409 1.33 christos sc->rxon.flags = htole32(IWN_RXON_TSF | IWN_RXON_CTS_TO_SELF);
4410 1.33 christos if (IEEE80211_IS_CHAN_2GHZ(ic->ic_ibss_chan))
4411 1.33 christos sc->rxon.flags |= htole32(IWN_RXON_AUTO | IWN_RXON_24GHZ);
4412 1.33 christos switch (ic->ic_opmode) {
4413 1.33 christos case IEEE80211_M_STA:
4414 1.33 christos sc->rxon.mode = IWN_MODE_STA;
4415 1.33 christos sc->rxon.filter = htole32(IWN_FILTER_MULTICAST);
4416 1.33 christos break;
4417 1.33 christos case IEEE80211_M_MONITOR:
4418 1.33 christos sc->rxon.mode = IWN_MODE_MONITOR;
4419 1.33 christos sc->rxon.filter = htole32(IWN_FILTER_MULTICAST |
4420 1.33 christos IWN_FILTER_CTL | IWN_FILTER_PROMISC);
4421 1.33 christos break;
4422 1.33 christos default:
4423 1.33 christos /* Should not get there. */
4424 1.33 christos break;
4425 1.1 ober }
4426 1.33 christos sc->rxon.cck_mask = 0x0f; /* not yet negotiated */
4427 1.33 christos sc->rxon.ofdm_mask = 0xff; /* not yet negotiated */
4428 1.33 christos sc->rxon.ht_single_mask = 0xff;
4429 1.33 christos sc->rxon.ht_dual_mask = 0xff;
4430 1.40 christos sc->rxon.ht_triple_mask = 0xff;
4431 1.40 christos rxchain =
4432 1.40 christos IWN_RXCHAIN_VALID(sc->rxchainmask) |
4433 1.40 christos IWN_RXCHAIN_MIMO_COUNT(2) |
4434 1.40 christos IWN_RXCHAIN_IDLE_COUNT(2);
4435 1.33 christos sc->rxon.rxchain = htole16(rxchain);
4436 1.33 christos DPRINTF(("setting configuration\n"));
4437 1.53 christos error = iwn_cmd(sc, IWN_CMD_RXON, &sc->rxon, sc->rxonsz, 0);
4438 1.1 ober if (error != 0) {
4439 1.40 christos aprint_error_dev(sc->sc_dev,
4440 1.40 christos "RXON command failed\n");
4441 1.40 christos return error;
4442 1.40 christos }
4443 1.40 christos
4444 1.40 christos if ((error = iwn_add_broadcast_node(sc, 0)) != 0) {
4445 1.40 christos aprint_error_dev(sc->sc_dev,
4446 1.40 christos "could not add broadcast node\n");
4447 1.1 ober return error;
4448 1.1 ober }
4449 1.1 ober
4450 1.33 christos /* Configuration has changed, set TX power accordingly. */
4451 1.53 christos if ((error = ops->set_txpower(sc, 0)) != 0) {
4452 1.40 christos aprint_error_dev(sc->sc_dev,
4453 1.40 christos "could not set TX power\n");
4454 1.1 ober return error;
4455 1.1 ober }
4456 1.1 ober
4457 1.40 christos if ((error = iwn_set_critical_temp(sc)) != 0) {
4458 1.40 christos aprint_error_dev(sc->sc_dev,
4459 1.40 christos "could not set critical temperature\n");
4460 1.11 blymn return error;
4461 1.33 christos }
4462 1.11 blymn
4463 1.40 christos /* Set power saving level to CAM during initialization. */
4464 1.40 christos if ((error = iwn_set_pslevel(sc, 0, 0, 0)) != 0) {
4465 1.33 christos aprint_error_dev(sc->sc_dev,
4466 1.40 christos "could not set power saving level\n");
4467 1.33 christos return error;
4468 1.33 christos }
4469 1.33 christos return 0;
4470 1.33 christos }
4471 1.33 christos
4472 1.72 nonaka static uint16_t
4473 1.72 nonaka iwn_get_active_dwell_time(struct iwn_softc *sc, uint16_t flags,
4474 1.72 nonaka uint8_t n_probes)
4475 1.72 nonaka {
4476 1.72 nonaka /* No channel? Default to 2GHz settings */
4477 1.72 nonaka if (flags & IEEE80211_CHAN_2GHZ)
4478 1.72 nonaka return IWN_ACTIVE_DWELL_TIME_2GHZ +
4479 1.72 nonaka IWN_ACTIVE_DWELL_FACTOR_2GHZ * (n_probes + 1);
4480 1.72 nonaka
4481 1.72 nonaka /* 5GHz dwell time */
4482 1.72 nonaka return IWN_ACTIVE_DWELL_TIME_5GHZ +
4483 1.72 nonaka IWN_ACTIVE_DWELL_FACTOR_5GHZ * (n_probes + 1);
4484 1.72 nonaka }
4485 1.72 nonaka
4486 1.72 nonaka /*
4487 1.72 nonaka * Limit the total dwell time to 85% of the beacon interval.
4488 1.72 nonaka *
4489 1.72 nonaka * Returns the dwell time in milliseconds.
4490 1.72 nonaka */
4491 1.72 nonaka static uint16_t
4492 1.72 nonaka iwn_limit_dwell(struct iwn_softc *sc, uint16_t dwell_time)
4493 1.72 nonaka {
4494 1.72 nonaka struct ieee80211com *ic = &sc->sc_ic;
4495 1.72 nonaka struct ieee80211_node *ni = ic->ic_bss;
4496 1.72 nonaka int bintval = 0;
4497 1.72 nonaka
4498 1.72 nonaka /* bintval is in TU (1.024mS) */
4499 1.72 nonaka if (ni != NULL)
4500 1.72 nonaka bintval = ni->ni_intval;
4501 1.72 nonaka
4502 1.72 nonaka /*
4503 1.72 nonaka * If it's non-zero, we should calculate the minimum of
4504 1.72 nonaka * it and the DWELL_BASE.
4505 1.72 nonaka *
4506 1.72 nonaka * XXX Yes, the math should take into account that bintval
4507 1.72 nonaka * is 1.024mS, not 1mS..
4508 1.72 nonaka */
4509 1.72 nonaka if (bintval > 0)
4510 1.72 nonaka return MIN(IWN_PASSIVE_DWELL_BASE, ((bintval * 85) / 100));
4511 1.72 nonaka
4512 1.72 nonaka /* No association context? Default */
4513 1.72 nonaka return IWN_PASSIVE_DWELL_BASE;
4514 1.72 nonaka }
4515 1.72 nonaka
4516 1.72 nonaka static uint16_t
4517 1.72 nonaka iwn_get_passive_dwell_time(struct iwn_softc *sc, uint16_t flags)
4518 1.72 nonaka {
4519 1.72 nonaka uint16_t passive;
4520 1.72 nonaka if (flags & IEEE80211_CHAN_2GHZ)
4521 1.72 nonaka passive = IWN_PASSIVE_DWELL_BASE + IWN_PASSIVE_DWELL_TIME_2GHZ;
4522 1.72 nonaka else
4523 1.72 nonaka passive = IWN_PASSIVE_DWELL_BASE + IWN_PASSIVE_DWELL_TIME_5GHZ;
4524 1.72 nonaka
4525 1.72 nonaka /* Clamp to the beacon interval if we're associated */
4526 1.72 nonaka return iwn_limit_dwell(sc, passive);
4527 1.72 nonaka }
4528 1.72 nonaka
4529 1.33 christos static int
4530 1.33 christos iwn_scan(struct iwn_softc *sc, uint16_t flags)
4531 1.33 christos {
4532 1.33 christos struct ieee80211com *ic = &sc->sc_ic;
4533 1.33 christos struct iwn_scan_hdr *hdr;
4534 1.33 christos struct iwn_cmd_data *tx;
4535 1.40 christos struct iwn_scan_essid *essid;
4536 1.33 christos struct iwn_scan_chan *chan;
4537 1.33 christos struct ieee80211_frame *wh;
4538 1.33 christos struct ieee80211_rateset *rs;
4539 1.33 christos struct ieee80211_channel *c;
4540 1.33 christos uint8_t *buf, *frm;
4541 1.72 nonaka uint16_t rxchain, dwell_active, dwell_passive;
4542 1.33 christos uint8_t txant;
4543 1.72 nonaka int buflen, error, is_active;
4544 1.33 christos
4545 1.33 christos buf = malloc(IWN_SCAN_MAXSZ, M_DEVBUF, M_NOWAIT | M_ZERO);
4546 1.33 christos if (buf == NULL) {
4547 1.33 christos aprint_error_dev(sc->sc_dev,
4548 1.33 christos "could not allocate buffer for scan command\n");
4549 1.33 christos return ENOMEM;
4550 1.33 christos }
4551 1.33 christos hdr = (struct iwn_scan_hdr *)buf;
4552 1.33 christos /*
4553 1.33 christos * Move to the next channel if no frames are received within 10ms
4554 1.33 christos * after sending the probe request.
4555 1.33 christos */
4556 1.33 christos hdr->quiet_time = htole16(10); /* timeout in milliseconds */
4557 1.33 christos hdr->quiet_threshold = htole16(1); /* min # of packets */
4558 1.33 christos
4559 1.33 christos /* Select antennas for scanning. */
4560 1.40 christos rxchain =
4561 1.40 christos IWN_RXCHAIN_VALID(sc->rxchainmask) |
4562 1.40 christos IWN_RXCHAIN_FORCE_MIMO_SEL(sc->rxchainmask) |
4563 1.40 christos IWN_RXCHAIN_DRIVER_FORCE;
4564 1.33 christos if ((flags & IEEE80211_CHAN_5GHZ) &&
4565 1.33 christos sc->hw_type == IWN_HW_REV_TYPE_4965) {
4566 1.33 christos /* Ant A must be avoided in 5GHz because of an HW bug. */
4567 1.40 christos rxchain |= IWN_RXCHAIN_FORCE_SEL(IWN_ANT_BC);
4568 1.33 christos } else /* Use all available RX antennas. */
4569 1.40 christos rxchain |= IWN_RXCHAIN_FORCE_SEL(sc->rxchainmask);
4570 1.33 christos hdr->rxchain = htole16(rxchain);
4571 1.33 christos hdr->filter = htole32(IWN_FILTER_MULTICAST | IWN_FILTER_BEACON);
4572 1.33 christos
4573 1.40 christos tx = (struct iwn_cmd_data *)(hdr + 1);
4574 1.33 christos tx->flags = htole32(IWN_TX_AUTO_SEQ);
4575 1.53 christos tx->id = sc->broadcast_id;
4576 1.33 christos tx->lifetime = htole32(IWN_LIFETIME_INFINITE);
4577 1.33 christos
4578 1.33 christos if (flags & IEEE80211_CHAN_5GHZ) {
4579 1.46 christos hdr->crc_threshold = 0xffff;
4580 1.33 christos /* Send probe requests at 6Mbps. */
4581 1.33 christos tx->plcp = iwn_rates[IWN_RIDX_OFDM6].plcp;
4582 1.33 christos rs = &ic->ic_sup_rates[IEEE80211_MODE_11A];
4583 1.33 christos } else {
4584 1.33 christos hdr->flags = htole32(IWN_RXON_24GHZ | IWN_RXON_AUTO);
4585 1.33 christos /* Send probe requests at 1Mbps. */
4586 1.33 christos tx->plcp = iwn_rates[IWN_RIDX_CCK1].plcp;
4587 1.33 christos tx->rflags = IWN_RFLAG_CCK;
4588 1.33 christos rs = &ic->ic_sup_rates[IEEE80211_MODE_11G];
4589 1.33 christos }
4590 1.33 christos /* Use the first valid TX antenna. */
4591 1.40 christos txant = IWN_LSB(sc->txchainmask);
4592 1.33 christos tx->rflags |= IWN_RFLAG_ANT(txant);
4593 1.33 christos
4594 1.72 nonaka /*
4595 1.72 nonaka * Only do active scanning if we're announcing a probe request
4596 1.72 nonaka * for a given SSID (or more, if we ever add it to the driver.)
4597 1.72 nonaka */
4598 1.72 nonaka is_active = 0;
4599 1.72 nonaka
4600 1.40 christos essid = (struct iwn_scan_essid *)(tx + 1);
4601 1.33 christos if (ic->ic_des_esslen != 0) {
4602 1.40 christos essid[0].id = IEEE80211_ELEMID_SSID;
4603 1.40 christos essid[0].len = ic->ic_des_esslen;
4604 1.40 christos memcpy(essid[0].data, ic->ic_des_essid, ic->ic_des_esslen);
4605 1.72 nonaka
4606 1.72 nonaka is_active = 1;
4607 1.33 christos }
4608 1.33 christos /*
4609 1.33 christos * Build a probe request frame. Most of the following code is a
4610 1.33 christos * copy & paste of what is done in net80211.
4611 1.33 christos */
4612 1.40 christos wh = (struct ieee80211_frame *)(essid + 20);
4613 1.33 christos wh->i_fc[0] = IEEE80211_FC0_VERSION_0 | IEEE80211_FC0_TYPE_MGT |
4614 1.33 christos IEEE80211_FC0_SUBTYPE_PROBE_REQ;
4615 1.33 christos wh->i_fc[1] = IEEE80211_FC1_DIR_NODS;
4616 1.33 christos IEEE80211_ADDR_COPY(wh->i_addr1, etherbroadcastaddr);
4617 1.33 christos IEEE80211_ADDR_COPY(wh->i_addr2, ic->ic_myaddr);
4618 1.33 christos IEEE80211_ADDR_COPY(wh->i_addr3, etherbroadcastaddr);
4619 1.33 christos *(uint16_t *)&wh->i_dur[0] = 0; /* filled by HW */
4620 1.33 christos *(uint16_t *)&wh->i_seq[0] = 0; /* filled by HW */
4621 1.33 christos
4622 1.40 christos frm = (uint8_t *)(wh + 1);
4623 1.40 christos frm = ieee80211_add_ssid(frm, NULL, 0);
4624 1.40 christos frm = ieee80211_add_rates(frm, rs);
4625 1.46 christos #ifndef IEEE80211_NO_HT
4626 1.46 christos if (ic->ic_flags & IEEE80211_F_HTON)
4627 1.46 christos frm = ieee80211_add_htcaps(frm, ic);
4628 1.46 christos #endif
4629 1.40 christos if (rs->rs_nrates > IEEE80211_RATE_SIZE)
4630 1.40 christos frm = ieee80211_add_xrates(frm, rs);
4631 1.33 christos
4632 1.33 christos /* Set length of probe request. */
4633 1.33 christos tx->len = htole16(frm - (uint8_t *)wh);
4634 1.33 christos
4635 1.72 nonaka
4636 1.72 nonaka /*
4637 1.72 nonaka * If active scanning is requested but a certain channel is
4638 1.72 nonaka * marked passive, we can do active scanning if we detect
4639 1.72 nonaka * transmissions.
4640 1.72 nonaka *
4641 1.72 nonaka * There is an issue with some firmware versions that triggers
4642 1.72 nonaka * a sysassert on a "good CRC threshold" of zero (== disabled),
4643 1.72 nonaka * on a radar channel even though this means that we should NOT
4644 1.72 nonaka * send probes.
4645 1.72 nonaka *
4646 1.72 nonaka * The "good CRC threshold" is the number of frames that we
4647 1.72 nonaka * need to receive during our dwell time on a channel before
4648 1.72 nonaka * sending out probes -- setting this to a huge value will
4649 1.72 nonaka * mean we never reach it, but at the same time work around
4650 1.72 nonaka * the aforementioned issue. Thus use IWN_GOOD_CRC_TH_NEVER
4651 1.72 nonaka * here instead of IWN_GOOD_CRC_TH_DISABLED.
4652 1.72 nonaka *
4653 1.72 nonaka * This was fixed in later versions along with some other
4654 1.72 nonaka * scan changes, and the threshold behaves as a flag in those
4655 1.72 nonaka * versions.
4656 1.72 nonaka */
4657 1.72 nonaka
4658 1.72 nonaka /*
4659 1.72 nonaka * If we're doing active scanning, set the crc_threshold
4660 1.72 nonaka * to a suitable value. This is different to active veruss
4661 1.72 nonaka * passive scanning depending upon the channel flags; the
4662 1.72 nonaka * firmware will obey that particular check for us.
4663 1.72 nonaka */
4664 1.72 nonaka if (sc->tlv_feature_flags & IWN_UCODE_TLV_FLAGS_NEWSCAN)
4665 1.72 nonaka hdr->crc_threshold = is_active ?
4666 1.72 nonaka IWN_GOOD_CRC_TH_DEFAULT : IWN_GOOD_CRC_TH_DISABLED;
4667 1.72 nonaka else
4668 1.72 nonaka hdr->crc_threshold = is_active ?
4669 1.72 nonaka IWN_GOOD_CRC_TH_DEFAULT : IWN_GOOD_CRC_TH_NEVER;
4670 1.72 nonaka
4671 1.33 christos chan = (struct iwn_scan_chan *)frm;
4672 1.33 christos for (c = &ic->ic_channels[1];
4673 1.33 christos c <= &ic->ic_channels[IEEE80211_CHAN_MAX]; c++) {
4674 1.33 christos if ((c->ic_flags & flags) != flags)
4675 1.33 christos continue;
4676 1.33 christos
4677 1.33 christos chan->chan = htole16(ieee80211_chan2ieee(ic, c));
4678 1.33 christos DPRINTFN(2, ("adding channel %d\n", chan->chan));
4679 1.33 christos chan->flags = 0;
4680 1.33 christos if (!(c->ic_flags & IEEE80211_CHAN_PASSIVE))
4681 1.33 christos chan->flags |= htole32(IWN_CHAN_ACTIVE);
4682 1.33 christos if (ic->ic_des_esslen != 0)
4683 1.33 christos chan->flags |= htole32(IWN_CHAN_NPBREQS(1));
4684 1.72 nonaka
4685 1.72 nonaka /*
4686 1.72 nonaka * Calculate the active/passive dwell times.
4687 1.72 nonaka */
4688 1.72 nonaka
4689 1.72 nonaka dwell_active = iwn_get_active_dwell_time(sc, flags, is_active);
4690 1.72 nonaka dwell_passive = iwn_get_passive_dwell_time(sc, flags);
4691 1.72 nonaka
4692 1.72 nonaka /* Make sure they're valid */
4693 1.72 nonaka if (dwell_passive <= dwell_active)
4694 1.72 nonaka dwell_passive = dwell_active + 1;
4695 1.72 nonaka
4696 1.72 nonaka chan->active = htole16(dwell_active);
4697 1.72 nonaka chan->passive = htole16(dwell_passive);
4698 1.72 nonaka
4699 1.33 christos chan->dsp_gain = 0x6e;
4700 1.33 christos if (IEEE80211_IS_CHAN_5GHZ(c)) {
4701 1.33 christos chan->rf_gain = 0x3b;
4702 1.33 christos } else {
4703 1.33 christos chan->rf_gain = 0x28;
4704 1.33 christos }
4705 1.33 christos hdr->nchan++;
4706 1.33 christos chan++;
4707 1.33 christos }
4708 1.33 christos
4709 1.33 christos buflen = (uint8_t *)chan - buf;
4710 1.33 christos hdr->len = htole16(buflen);
4711 1.33 christos
4712 1.33 christos DPRINTF(("sending scan command nchan=%d\n", hdr->nchan));
4713 1.33 christos error = iwn_cmd(sc, IWN_CMD_SCAN, buf, buflen, 1);
4714 1.33 christos free(buf, M_DEVBUF);
4715 1.33 christos return error;
4716 1.33 christos }
4717 1.33 christos
4718 1.33 christos static int
4719 1.33 christos iwn_auth(struct iwn_softc *sc)
4720 1.33 christos {
4721 1.53 christos struct iwn_ops *ops = &sc->ops;
4722 1.33 christos struct ieee80211com *ic = &sc->sc_ic;
4723 1.33 christos struct ieee80211_node *ni = ic->ic_bss;
4724 1.33 christos int error;
4725 1.33 christos
4726 1.40 christos /* Update adapter configuration. */
4727 1.33 christos IEEE80211_ADDR_COPY(sc->rxon.bssid, ni->ni_bssid);
4728 1.40 christos sc->rxon.chan = ieee80211_chan2ieee(ic, ni->ni_chan);
4729 1.33 christos sc->rxon.flags = htole32(IWN_RXON_TSF | IWN_RXON_CTS_TO_SELF);
4730 1.33 christos if (IEEE80211_IS_CHAN_2GHZ(ni->ni_chan))
4731 1.33 christos sc->rxon.flags |= htole32(IWN_RXON_AUTO | IWN_RXON_24GHZ);
4732 1.33 christos if (ic->ic_flags & IEEE80211_F_SHSLOT)
4733 1.33 christos sc->rxon.flags |= htole32(IWN_RXON_SHSLOT);
4734 1.33 christos if (ic->ic_flags & IEEE80211_F_SHPREAMBLE)
4735 1.33 christos sc->rxon.flags |= htole32(IWN_RXON_SHPREAMBLE);
4736 1.33 christos switch (ic->ic_curmode) {
4737 1.33 christos case IEEE80211_MODE_11A:
4738 1.33 christos sc->rxon.cck_mask = 0;
4739 1.33 christos sc->rxon.ofdm_mask = 0x15;
4740 1.33 christos break;
4741 1.33 christos case IEEE80211_MODE_11B:
4742 1.33 christos sc->rxon.cck_mask = 0x03;
4743 1.33 christos sc->rxon.ofdm_mask = 0;
4744 1.33 christos break;
4745 1.33 christos default: /* Assume 802.11b/g. */
4746 1.33 christos sc->rxon.cck_mask = 0x0f;
4747 1.33 christos sc->rxon.ofdm_mask = 0x15;
4748 1.33 christos }
4749 1.33 christos DPRINTF(("rxon chan %d flags %x cck %x ofdm %x\n", sc->rxon.chan,
4750 1.33 christos sc->rxon.flags, sc->rxon.cck_mask, sc->rxon.ofdm_mask));
4751 1.53 christos error = iwn_cmd(sc, IWN_CMD_RXON, &sc->rxon, sc->rxonsz, 1);
4752 1.33 christos if (error != 0) {
4753 1.40 christos aprint_error_dev(sc->sc_dev,
4754 1.40 christos "RXON command failed\n");
4755 1.33 christos return error;
4756 1.33 christos }
4757 1.33 christos
4758 1.33 christos /* Configuration has changed, set TX power accordingly. */
4759 1.53 christos if ((error = ops->set_txpower(sc, 1)) != 0) {
4760 1.40 christos aprint_error_dev(sc->sc_dev,
4761 1.40 christos "could not set TX power\n");
4762 1.33 christos return error;
4763 1.33 christos }
4764 1.33 christos /*
4765 1.40 christos * Reconfiguring RXON clears the firmware nodes table so we must
4766 1.33 christos * add the broadcast node again.
4767 1.33 christos */
4768 1.33 christos if ((error = iwn_add_broadcast_node(sc, 1)) != 0) {
4769 1.40 christos aprint_error_dev(sc->sc_dev,
4770 1.40 christos "could not add broadcast node\n");
4771 1.1 ober return error;
4772 1.1 ober }
4773 1.1 ober return 0;
4774 1.1 ober }
4775 1.1 ober
4776 1.1 ober static int
4777 1.1 ober iwn_run(struct iwn_softc *sc)
4778 1.1 ober {
4779 1.53 christos struct iwn_ops *ops = &sc->ops;
4780 1.1 ober struct ieee80211com *ic = &sc->sc_ic;
4781 1.1 ober struct ieee80211_node *ni = ic->ic_bss;
4782 1.40 christos struct iwn_node_info node;
4783 1.1 ober int error;
4784 1.1 ober
4785 1.1 ober if (ic->ic_opmode == IEEE80211_M_MONITOR) {
4786 1.33 christos /* Link LED blinks while monitoring. */
4787 1.1 ober iwn_set_led(sc, IWN_LED_LINK, 5, 5);
4788 1.1 ober return 0;
4789 1.1 ober }
4790 1.33 christos if ((error = iwn_set_timing(sc, ni)) != 0) {
4791 1.40 christos aprint_error_dev(sc->sc_dev,
4792 1.40 christos "could not set timing\n");
4793 1.33 christos return error;
4794 1.33 christos }
4795 1.1 ober
4796 1.40 christos /* Update adapter configuration. */
4797 1.33 christos sc->rxon.associd = htole16(IEEE80211_AID(ni->ni_associd));
4798 1.33 christos /* Short preamble and slot time are negotiated when associating. */
4799 1.33 christos sc->rxon.flags &= ~htole32(IWN_RXON_SHPREAMBLE | IWN_RXON_SHSLOT);
4800 1.1 ober if (ic->ic_flags & IEEE80211_F_SHSLOT)
4801 1.33 christos sc->rxon.flags |= htole32(IWN_RXON_SHSLOT);
4802 1.1 ober if (ic->ic_flags & IEEE80211_F_SHPREAMBLE)
4803 1.33 christos sc->rxon.flags |= htole32(IWN_RXON_SHPREAMBLE);
4804 1.33 christos sc->rxon.filter |= htole32(IWN_FILTER_BSS);
4805 1.33 christos DPRINTF(("rxon chan %d flags %x\n", sc->rxon.chan, sc->rxon.flags));
4806 1.53 christos error = iwn_cmd(sc, IWN_CMD_RXON, &sc->rxon, sc->rxonsz, 1);
4807 1.1 ober if (error != 0) {
4808 1.11 blymn aprint_error_dev(sc->sc_dev,
4809 1.33 christos "could not update configuration\n");
4810 1.1 ober return error;
4811 1.1 ober }
4812 1.1 ober
4813 1.33 christos /* Configuration has changed, set TX power accordingly. */
4814 1.53 christos if ((error = ops->set_txpower(sc, 1)) != 0) {
4815 1.40 christos aprint_error_dev(sc->sc_dev,
4816 1.40 christos "could not set TX power\n");
4817 1.1 ober return error;
4818 1.1 ober }
4819 1.1 ober
4820 1.33 christos /* Fake a join to initialize the TX rate. */
4821 1.33 christos ((struct iwn_node *)ni)->id = IWN_ID_BSS;
4822 1.33 christos iwn_newassoc(ni, 1);
4823 1.33 christos
4824 1.33 christos /* Add BSS node. */
4825 1.40 christos memset(&node, 0, sizeof node);
4826 1.40 christos IEEE80211_ADDR_COPY(node.macaddr, ni->ni_macaddr);
4827 1.40 christos node.id = IWN_ID_BSS;
4828 1.40 christos #ifdef notyet
4829 1.40 christos node.htflags = htole32(IWN_AMDPU_SIZE_FACTOR(3) |
4830 1.40 christos IWN_AMDPU_DENSITY(5)); /* 2us */
4831 1.40 christos #endif
4832 1.40 christos DPRINTF(("adding BSS node\n"));
4833 1.53 christos error = ops->add_node(sc, &node, 1);
4834 1.40 christos if (error != 0) {
4835 1.40 christos aprint_error_dev(sc->sc_dev,
4836 1.40 christos "could not add BSS node\n");
4837 1.40 christos return error;
4838 1.40 christos }
4839 1.40 christos DPRINTF(("setting link quality for node %d\n", node.id));
4840 1.40 christos if ((error = iwn_set_link_quality(sc, ni)) != 0) {
4841 1.40 christos aprint_error_dev(sc->sc_dev,
4842 1.40 christos "could not setup link quality for node %d\n", node.id);
4843 1.40 christos return error;
4844 1.40 christos }
4845 1.40 christos
4846 1.40 christos if ((error = iwn_init_sensitivity(sc)) != 0) {
4847 1.40 christos aprint_error_dev(sc->sc_dev,
4848 1.40 christos "could not set sensitivity\n");
4849 1.40 christos return error;
4850 1.40 christos }
4851 1.33 christos /* Start periodic calibration timer. */
4852 1.33 christos sc->calib.state = IWN_CALIB_STATE_ASSOC;
4853 1.33 christos sc->calib_cnt = 0;
4854 1.40 christos callout_schedule(&sc->calib_to, hz/2);
4855 1.33 christos
4856 1.33 christos /* Link LED always on while associated. */
4857 1.33 christos iwn_set_led(sc, IWN_LED_LINK, 0, 1);
4858 1.33 christos return 0;
4859 1.33 christos }
4860 1.33 christos
4861 1.40 christos #ifdef IWN_HWCRYPTO
4862 1.33 christos /*
4863 1.33 christos * We support CCMP hardware encryption/decryption of unicast frames only.
4864 1.33 christos * HW support for TKIP really sucks. We should let TKIP die anyway.
4865 1.33 christos */
4866 1.33 christos static int
4867 1.33 christos iwn_set_key(struct ieee80211com *ic, struct ieee80211_node *ni,
4868 1.33 christos struct ieee80211_key *k)
4869 1.33 christos {
4870 1.33 christos struct iwn_softc *sc = ic->ic_softc;
4871 1.53 christos struct iwn_ops *ops = &sc->ops;
4872 1.33 christos struct iwn_node *wn = (void *)ni;
4873 1.33 christos struct iwn_node_info node;
4874 1.33 christos uint16_t kflags;
4875 1.33 christos
4876 1.33 christos if ((k->k_flags & IEEE80211_KEY_GROUP) ||
4877 1.33 christos k->k_cipher != IEEE80211_CIPHER_CCMP)
4878 1.33 christos return ieee80211_set_key(ic, ni, k);
4879 1.33 christos
4880 1.33 christos kflags = IWN_KFLAG_CCMP | IWN_KFLAG_MAP | IWN_KFLAG_KID(k->k_id);
4881 1.33 christos if (k->k_flags & IEEE80211_KEY_GROUP)
4882 1.33 christos kflags |= IWN_KFLAG_GROUP;
4883 1.33 christos
4884 1.33 christos memset(&node, 0, sizeof node);
4885 1.33 christos node.id = (k->k_flags & IEEE80211_KEY_GROUP) ?
4886 1.53 christos sc->broadcast_id : wn->id;
4887 1.33 christos node.control = IWN_NODE_UPDATE;
4888 1.33 christos node.flags = IWN_FLAG_SET_KEY;
4889 1.33 christos node.kflags = htole16(kflags);
4890 1.33 christos node.kid = k->k_id;
4891 1.33 christos memcpy(node.key, k->k_key, k->k_len);
4892 1.33 christos DPRINTF(("set key id=%d for node %d\n", k->k_id, node.id));
4893 1.53 christos return ops->add_node(sc, &node, 1);
4894 1.33 christos }
4895 1.33 christos
4896 1.33 christos static void
4897 1.33 christos iwn_delete_key(struct ieee80211com *ic, struct ieee80211_node *ni,
4898 1.33 christos struct ieee80211_key *k)
4899 1.33 christos {
4900 1.33 christos struct iwn_softc *sc = ic->ic_softc;
4901 1.53 christos struct iwn_ops *ops = &sc->ops;
4902 1.33 christos struct iwn_node *wn = (void *)ni;
4903 1.33 christos struct iwn_node_info node;
4904 1.1 ober
4905 1.33 christos if ((k->k_flags & IEEE80211_KEY_GROUP) ||
4906 1.33 christos k->k_cipher != IEEE80211_CIPHER_CCMP) {
4907 1.33 christos /* See comment about other ciphers above. */
4908 1.33 christos ieee80211_delete_key(ic, ni, k);
4909 1.33 christos return;
4910 1.1 ober }
4911 1.33 christos if (ic->ic_state != IEEE80211_S_RUN)
4912 1.33 christos return; /* Nothing to do. */
4913 1.33 christos memset(&node, 0, sizeof node);
4914 1.33 christos node.id = (k->k_flags & IEEE80211_KEY_GROUP) ?
4915 1.53 christos sc->broadcast_id : wn->id;
4916 1.33 christos node.control = IWN_NODE_UPDATE;
4917 1.33 christos node.flags = IWN_FLAG_SET_KEY;
4918 1.33 christos node.kflags = htole16(IWN_KFLAG_INVALID);
4919 1.33 christos node.kid = 0xff;
4920 1.33 christos DPRINTF(("delete keys for node %d\n", node.id));
4921 1.53 christos (void)ops->add_node(sc, &node, 1);
4922 1.33 christos }
4923 1.33 christos #endif
4924 1.33 christos
4925 1.44 christos /* XXX Added for NetBSD (copied from rev 1.39). */
4926 1.40 christos
4927 1.40 christos static int
4928 1.40 christos iwn_wme_update(struct ieee80211com *ic)
4929 1.40 christos {
4930 1.40 christos #define IWN_EXP2(v) htole16((1 << (v)) - 1)
4931 1.40 christos #define IWN_USEC(v) htole16(IEEE80211_TXOP_TO_US(v))
4932 1.40 christos struct iwn_softc *sc = ic->ic_ifp->if_softc;
4933 1.40 christos const struct wmeParams *wmep;
4934 1.40 christos struct iwn_edca_params cmd;
4935 1.40 christos int ac;
4936 1.40 christos
4937 1.40 christos /* don't override default WME values if WME is not actually enabled */
4938 1.40 christos if (!(ic->ic_flags & IEEE80211_F_WME))
4939 1.40 christos return 0;
4940 1.40 christos cmd.flags = 0;
4941 1.40 christos for (ac = 0; ac < WME_NUM_AC; ac++) {
4942 1.40 christos wmep = &ic->ic_wme.wme_chanParams.cap_wmeParams[ac];
4943 1.40 christos cmd.ac[ac].aifsn = wmep->wmep_aifsn;
4944 1.40 christos cmd.ac[ac].cwmin = IWN_EXP2(wmep->wmep_logcwmin);
4945 1.40 christos cmd.ac[ac].cwmax = IWN_EXP2(wmep->wmep_logcwmax);
4946 1.40 christos cmd.ac[ac].txoplimit = IWN_USEC(wmep->wmep_txopLimit);
4947 1.40 christos
4948 1.40 christos DPRINTF(("setting WME for queue %d aifsn=%d cwmin=%d cwmax=%d "
4949 1.40 christos "txop=%d\n", ac, cmd.ac[ac].aifsn,
4950 1.40 christos cmd.ac[ac].cwmin,
4951 1.40 christos cmd.ac[ac].cwmax, cmd.ac[ac].txoplimit));
4952 1.40 christos }
4953 1.40 christos return iwn_cmd(sc, IWN_CMD_EDCA_PARAMS, &cmd, sizeof cmd, 1);
4954 1.40 christos #undef IWN_USEC
4955 1.40 christos #undef IWN_EXP2
4956 1.40 christos }
4957 1.40 christos
4958 1.33 christos #ifndef IEEE80211_NO_HT
4959 1.33 christos /*
4960 1.40 christos * This function is called by upper layer when an ADDBA request is received
4961 1.33 christos * from another STA and before the ADDBA response is sent.
4962 1.33 christos */
4963 1.33 christos static int
4964 1.33 christos iwn_ampdu_rx_start(struct ieee80211com *ic, struct ieee80211_node *ni,
4965 1.40 christos uint8_t tid)
4966 1.33 christos {
4967 1.40 christos struct ieee80211_rx_ba *ba = &ni->ni_rx_ba[tid];
4968 1.33 christos struct iwn_softc *sc = ic->ic_softc;
4969 1.53 christos struct iwn_ops *ops = &sc->ops;
4970 1.33 christos struct iwn_node *wn = (void *)ni;
4971 1.33 christos struct iwn_node_info node;
4972 1.33 christos
4973 1.33 christos memset(&node, 0, sizeof node);
4974 1.33 christos node.id = wn->id;
4975 1.33 christos node.control = IWN_NODE_UPDATE;
4976 1.33 christos node.flags = IWN_FLAG_SET_ADDBA;
4977 1.33 christos node.addba_tid = tid;
4978 1.40 christos node.addba_ssn = htole16(ba->ba_winstart);
4979 1.40 christos DPRINTFN(2, ("ADDBA RA=%d TID=%d SSN=%d\n", wn->id, tid,
4980 1.40 christos ba->ba_winstart));
4981 1.53 christos return ops->add_node(sc, &node, 1);
4982 1.33 christos }
4983 1.33 christos
4984 1.33 christos /*
4985 1.33 christos * This function is called by upper layer on teardown of an HT-immediate
4986 1.53 christos * Block Ack agreement (eg. uppon receipt of a DELBA frame).
4987 1.33 christos */
4988 1.33 christos static void
4989 1.33 christos iwn_ampdu_rx_stop(struct ieee80211com *ic, struct ieee80211_node *ni,
4990 1.40 christos uint8_t tid)
4991 1.33 christos {
4992 1.33 christos struct iwn_softc *sc = ic->ic_softc;
4993 1.53 christos struct iwn_ops *ops = &sc->ops;
4994 1.33 christos struct iwn_node *wn = (void *)ni;
4995 1.33 christos struct iwn_node_info node;
4996 1.1 ober
4997 1.33 christos memset(&node, 0, sizeof node);
4998 1.33 christos node.id = wn->id;
4999 1.33 christos node.control = IWN_NODE_UPDATE;
5000 1.33 christos node.flags = IWN_FLAG_SET_DELBA;
5001 1.33 christos node.delba_tid = tid;
5002 1.33 christos DPRINTFN(2, ("DELBA RA=%d TID=%d\n", wn->id, tid));
5003 1.53 christos (void)ops->add_node(sc, &node, 1);
5004 1.33 christos }
5005 1.33 christos
5006 1.33 christos /*
5007 1.40 christos * This function is called by upper layer when an ADDBA response is received
5008 1.33 christos * from another STA.
5009 1.33 christos */
5010 1.33 christos static int
5011 1.33 christos iwn_ampdu_tx_start(struct ieee80211com *ic, struct ieee80211_node *ni,
5012 1.40 christos uint8_t tid)
5013 1.33 christos {
5014 1.40 christos struct ieee80211_tx_ba *ba = &ni->ni_tx_ba[tid];
5015 1.33 christos struct iwn_softc *sc = ic->ic_softc;
5016 1.53 christos struct iwn_ops *ops = &sc->ops;
5017 1.33 christos struct iwn_node *wn = (void *)ni;
5018 1.33 christos struct iwn_node_info node;
5019 1.33 christos int error;
5020 1.33 christos
5021 1.33 christos /* Enable TX for the specified RA/TID. */
5022 1.33 christos wn->disable_tid &= ~(1 << tid);
5023 1.33 christos memset(&node, 0, sizeof node);
5024 1.33 christos node.id = wn->id;
5025 1.33 christos node.control = IWN_NODE_UPDATE;
5026 1.33 christos node.flags = IWN_FLAG_SET_DISABLE_TID;
5027 1.33 christos node.disable_tid = htole16(wn->disable_tid);
5028 1.53 christos error = ops->add_node(sc, &node, 1);
5029 1.33 christos if (error != 0)
5030 1.33 christos return error;
5031 1.33 christos
5032 1.33 christos if ((error = iwn_nic_lock(sc)) != 0)
5033 1.33 christos return error;
5034 1.53 christos ops->ampdu_tx_start(sc, ni, tid, ba->ba_winstart);
5035 1.33 christos iwn_nic_unlock(sc);
5036 1.33 christos return 0;
5037 1.33 christos }
5038 1.33 christos
5039 1.33 christos static void
5040 1.33 christos iwn_ampdu_tx_stop(struct ieee80211com *ic, struct ieee80211_node *ni,
5041 1.40 christos uint8_t tid)
5042 1.33 christos {
5043 1.40 christos struct ieee80211_tx_ba *ba = &ni->ni_tx_ba[tid];
5044 1.33 christos struct iwn_softc *sc = ic->ic_softc;
5045 1.53 christos struct iwn_ops *ops = &sc->ops;
5046 1.33 christos
5047 1.33 christos if (iwn_nic_lock(sc) != 0)
5048 1.33 christos return;
5049 1.53 christos ops->ampdu_tx_stop(sc, tid, ba->ba_winstart);
5050 1.33 christos iwn_nic_unlock(sc);
5051 1.33 christos }
5052 1.33 christos
5053 1.33 christos static void
5054 1.33 christos iwn4965_ampdu_tx_start(struct iwn_softc *sc, struct ieee80211_node *ni,
5055 1.33 christos uint8_t tid, uint16_t ssn)
5056 1.33 christos {
5057 1.33 christos struct iwn_node *wn = (void *)ni;
5058 1.33 christos int qid = 7 + tid;
5059 1.33 christos
5060 1.33 christos /* Stop TX scheduler while we're changing its configuration. */
5061 1.33 christos iwn_prph_write(sc, IWN4965_SCHED_QUEUE_STATUS(qid),
5062 1.33 christos IWN4965_TXQ_STATUS_CHGACT);
5063 1.33 christos
5064 1.33 christos /* Assign RA/TID translation to the queue. */
5065 1.33 christos iwn_mem_write_2(sc, sc->sched_base + IWN4965_SCHED_TRANS_TBL(qid),
5066 1.33 christos wn->id << 4 | tid);
5067 1.33 christos
5068 1.40 christos /* Enable chain-building mode for the queue. */
5069 1.33 christos iwn_prph_setbits(sc, IWN4965_SCHED_QCHAIN_SEL, 1 << qid);
5070 1.33 christos
5071 1.33 christos /* Set starting sequence number from the ADDBA request. */
5072 1.40 christos IWN_WRITE(sc, IWN_HBUS_TARG_WRPTR, qid << 8 | (ssn & 0xff));
5073 1.33 christos iwn_prph_write(sc, IWN4965_SCHED_QUEUE_RDPTR(qid), ssn);
5074 1.33 christos
5075 1.33 christos /* Set scheduler window size. */
5076 1.33 christos iwn_mem_write(sc, sc->sched_base + IWN4965_SCHED_QUEUE_OFFSET(qid),
5077 1.33 christos IWN_SCHED_WINSZ);
5078 1.33 christos /* Set scheduler frame limit. */
5079 1.33 christos iwn_mem_write(sc, sc->sched_base + IWN4965_SCHED_QUEUE_OFFSET(qid) + 4,
5080 1.33 christos IWN_SCHED_LIMIT << 16);
5081 1.33 christos
5082 1.33 christos /* Enable interrupts for the queue. */
5083 1.33 christos iwn_prph_setbits(sc, IWN4965_SCHED_INTR_MASK, 1 << qid);
5084 1.33 christos
5085 1.33 christos /* Mark the queue as active. */
5086 1.33 christos iwn_prph_write(sc, IWN4965_SCHED_QUEUE_STATUS(qid),
5087 1.33 christos IWN4965_TXQ_STATUS_ACTIVE | IWN4965_TXQ_STATUS_AGGR_ENA |
5088 1.33 christos iwn_tid2fifo[tid] << 1);
5089 1.33 christos }
5090 1.33 christos
5091 1.33 christos static void
5092 1.33 christos iwn4965_ampdu_tx_stop(struct iwn_softc *sc, uint8_t tid, uint16_t ssn)
5093 1.33 christos {
5094 1.33 christos int qid = 7 + tid;
5095 1.33 christos
5096 1.33 christos /* Stop TX scheduler while we're changing its configuration. */
5097 1.33 christos iwn_prph_write(sc, IWN4965_SCHED_QUEUE_STATUS(qid),
5098 1.33 christos IWN4965_TXQ_STATUS_CHGACT);
5099 1.33 christos
5100 1.33 christos /* Set starting sequence number from the ADDBA request. */
5101 1.40 christos IWN_WRITE(sc, IWN_HBUS_TARG_WRPTR, qid << 8 | (ssn & 0xff));
5102 1.33 christos iwn_prph_write(sc, IWN4965_SCHED_QUEUE_RDPTR(qid), ssn);
5103 1.33 christos
5104 1.33 christos /* Disable interrupts for the queue. */
5105 1.33 christos iwn_prph_clrbits(sc, IWN4965_SCHED_INTR_MASK, 1 << qid);
5106 1.33 christos
5107 1.33 christos /* Mark the queue as inactive. */
5108 1.33 christos iwn_prph_write(sc, IWN4965_SCHED_QUEUE_STATUS(qid),
5109 1.33 christos IWN4965_TXQ_STATUS_INACTIVE | iwn_tid2fifo[tid] << 1);
5110 1.33 christos }
5111 1.33 christos
5112 1.33 christos static void
5113 1.33 christos iwn5000_ampdu_tx_start(struct iwn_softc *sc, struct ieee80211_node *ni,
5114 1.33 christos uint8_t tid, uint16_t ssn)
5115 1.33 christos {
5116 1.33 christos struct iwn_node *wn = (void *)ni;
5117 1.33 christos int qid = 10 + tid;
5118 1.33 christos
5119 1.33 christos /* Stop TX scheduler while we're changing its configuration. */
5120 1.33 christos iwn_prph_write(sc, IWN5000_SCHED_QUEUE_STATUS(qid),
5121 1.33 christos IWN5000_TXQ_STATUS_CHGACT);
5122 1.33 christos
5123 1.33 christos /* Assign RA/TID translation to the queue. */
5124 1.33 christos iwn_mem_write_2(sc, sc->sched_base + IWN5000_SCHED_TRANS_TBL(qid),
5125 1.33 christos wn->id << 4 | tid);
5126 1.33 christos
5127 1.40 christos /* Enable chain-building mode for the queue. */
5128 1.33 christos iwn_prph_setbits(sc, IWN5000_SCHED_QCHAIN_SEL, 1 << qid);
5129 1.33 christos
5130 1.33 christos /* Enable aggregation for the queue. */
5131 1.33 christos iwn_prph_setbits(sc, IWN5000_SCHED_AGGR_SEL, 1 << qid);
5132 1.33 christos
5133 1.33 christos /* Set starting sequence number from the ADDBA request. */
5134 1.40 christos IWN_WRITE(sc, IWN_HBUS_TARG_WRPTR, qid << 8 | (ssn & 0xff));
5135 1.33 christos iwn_prph_write(sc, IWN5000_SCHED_QUEUE_RDPTR(qid), ssn);
5136 1.33 christos
5137 1.33 christos /* Set scheduler window size and frame limit. */
5138 1.33 christos iwn_mem_write(sc, sc->sched_base + IWN5000_SCHED_QUEUE_OFFSET(qid) + 4,
5139 1.33 christos IWN_SCHED_LIMIT << 16 | IWN_SCHED_WINSZ);
5140 1.33 christos
5141 1.33 christos /* Enable interrupts for the queue. */
5142 1.33 christos iwn_prph_setbits(sc, IWN5000_SCHED_INTR_MASK, 1 << qid);
5143 1.33 christos
5144 1.33 christos /* Mark the queue as active. */
5145 1.33 christos iwn_prph_write(sc, IWN5000_SCHED_QUEUE_STATUS(qid),
5146 1.33 christos IWN5000_TXQ_STATUS_ACTIVE | iwn_tid2fifo[tid]);
5147 1.33 christos }
5148 1.33 christos
5149 1.33 christos static void
5150 1.33 christos iwn5000_ampdu_tx_stop(struct iwn_softc *sc, uint8_t tid, uint16_t ssn)
5151 1.33 christos {
5152 1.33 christos int qid = 10 + tid;
5153 1.33 christos
5154 1.33 christos /* Stop TX scheduler while we're changing its configuration. */
5155 1.33 christos iwn_prph_write(sc, IWN5000_SCHED_QUEUE_STATUS(qid),
5156 1.33 christos IWN5000_TXQ_STATUS_CHGACT);
5157 1.33 christos
5158 1.33 christos /* Disable aggregation for the queue. */
5159 1.33 christos iwn_prph_clrbits(sc, IWN5000_SCHED_AGGR_SEL, 1 << qid);
5160 1.33 christos
5161 1.33 christos /* Set starting sequence number from the ADDBA request. */
5162 1.40 christos IWN_WRITE(sc, IWN_HBUS_TARG_WRPTR, qid << 8 | (ssn & 0xff));
5163 1.33 christos iwn_prph_write(sc, IWN5000_SCHED_QUEUE_RDPTR(qid), ssn);
5164 1.33 christos
5165 1.33 christos /* Disable interrupts for the queue. */
5166 1.33 christos iwn_prph_clrbits(sc, IWN5000_SCHED_INTR_MASK, 1 << qid);
5167 1.33 christos
5168 1.33 christos /* Mark the queue as inactive. */
5169 1.33 christos iwn_prph_write(sc, IWN5000_SCHED_QUEUE_STATUS(qid),
5170 1.33 christos IWN5000_TXQ_STATUS_INACTIVE | iwn_tid2fifo[tid]);
5171 1.33 christos }
5172 1.40 christos #endif /* !IEEE80211_NO_HT */
5173 1.33 christos
5174 1.33 christos /*
5175 1.33 christos * Query calibration tables from the initialization firmware. We do this
5176 1.33 christos * only once at first boot. Called from a process context.
5177 1.33 christos */
5178 1.33 christos static int
5179 1.33 christos iwn5000_query_calibration(struct iwn_softc *sc)
5180 1.33 christos {
5181 1.33 christos struct iwn5000_calib_config cmd;
5182 1.33 christos int error;
5183 1.33 christos
5184 1.33 christos memset(&cmd, 0, sizeof cmd);
5185 1.33 christos cmd.ucode.once.enable = 0xffffffff;
5186 1.33 christos cmd.ucode.once.start = 0xffffffff;
5187 1.33 christos cmd.ucode.once.send = 0xffffffff;
5188 1.33 christos cmd.ucode.flags = 0xffffffff;
5189 1.33 christos DPRINTF(("sending calibration query\n"));
5190 1.33 christos error = iwn_cmd(sc, IWN5000_CMD_CALIB_CONFIG, &cmd, sizeof cmd, 0);
5191 1.33 christos if (error != 0)
5192 1.1 ober return error;
5193 1.1 ober
5194 1.33 christos /* Wait at most two seconds for calibration to complete. */
5195 1.40 christos if (!(sc->sc_flags & IWN_FLAG_CALIB_DONE))
5196 1.40 christos error = tsleep(sc, PCATCH, "iwncal", 2 * hz);
5197 1.40 christos return error;
5198 1.33 christos }
5199 1.33 christos
5200 1.33 christos /*
5201 1.33 christos * Send calibration results to the runtime firmware. These results were
5202 1.33 christos * obtained on first boot from the initialization firmware.
5203 1.33 christos */
5204 1.33 christos static int
5205 1.33 christos iwn5000_send_calibration(struct iwn_softc *sc)
5206 1.33 christos {
5207 1.33 christos int idx, error;
5208 1.1 ober
5209 1.33 christos for (idx = 0; idx < 5; idx++) {
5210 1.33 christos if (sc->calibcmd[idx].buf == NULL)
5211 1.33 christos continue; /* No results available. */
5212 1.33 christos DPRINTF(("send calibration result idx=%d len=%d\n",
5213 1.33 christos idx, sc->calibcmd[idx].len));
5214 1.33 christos error = iwn_cmd(sc, IWN_CMD_PHY_CALIB, sc->calibcmd[idx].buf,
5215 1.33 christos sc->calibcmd[idx].len, 0);
5216 1.33 christos if (error != 0) {
5217 1.11 blymn aprint_error_dev(sc->sc_dev,
5218 1.33 christos "could not send calibration result\n");
5219 1.11 blymn return error;
5220 1.11 blymn }
5221 1.11 blymn }
5222 1.33 christos return 0;
5223 1.33 christos }
5224 1.33 christos
5225 1.40 christos static int
5226 1.40 christos iwn5000_send_wimax_coex(struct iwn_softc *sc)
5227 1.40 christos {
5228 1.40 christos struct iwn5000_wimax_coex wimax;
5229 1.40 christos
5230 1.40 christos #ifdef notyet
5231 1.40 christos if (sc->hw_type == IWN_HW_REV_TYPE_6050) {
5232 1.40 christos /* Enable WiMAX coexistence for combo adapters. */
5233 1.40 christos wimax.flags =
5234 1.40 christos IWN_WIMAX_COEX_ASSOC_WA_UNMASK |
5235 1.40 christos IWN_WIMAX_COEX_UNASSOC_WA_UNMASK |
5236 1.40 christos IWN_WIMAX_COEX_STA_TABLE_VALID |
5237 1.40 christos IWN_WIMAX_COEX_ENABLE;
5238 1.40 christos memcpy(wimax.events, iwn6050_wimax_events,
5239 1.40 christos sizeof iwn6050_wimax_events);
5240 1.40 christos } else
5241 1.40 christos #endif
5242 1.40 christos {
5243 1.40 christos /* Disable WiMAX coexistence. */
5244 1.40 christos wimax.flags = 0;
5245 1.40 christos memset(wimax.events, 0, sizeof wimax.events);
5246 1.40 christos }
5247 1.40 christos DPRINTF(("Configuring WiMAX coexistence\n"));
5248 1.40 christos return iwn_cmd(sc, IWN5000_CMD_WIMAX_COEX, &wimax, sizeof wimax, 0);
5249 1.40 christos }
5250 1.40 christos
5251 1.72 nonaka static int
5252 1.72 nonaka iwn6000_temp_offset_calib(struct iwn_softc *sc)
5253 1.72 nonaka {
5254 1.72 nonaka struct iwn6000_phy_calib_temp_offset cmd;
5255 1.72 nonaka
5256 1.72 nonaka memset(&cmd, 0, sizeof cmd);
5257 1.72 nonaka cmd.code = IWN6000_PHY_CALIB_TEMP_OFFSET;
5258 1.72 nonaka cmd.ngroups = 1;
5259 1.72 nonaka cmd.isvalid = 1;
5260 1.72 nonaka if (sc->eeprom_temp != 0)
5261 1.72 nonaka cmd.offset = htole16(sc->eeprom_temp);
5262 1.72 nonaka else
5263 1.72 nonaka cmd.offset = htole16(IWN_DEFAULT_TEMP_OFFSET);
5264 1.72 nonaka DPRINTF(("setting radio sensor offset to %d\n", le16toh(cmd.offset)));
5265 1.72 nonaka return iwn_cmd(sc, IWN_CMD_PHY_CALIB, &cmd, sizeof cmd, 0);
5266 1.72 nonaka }
5267 1.72 nonaka
5268 1.72 nonaka static int
5269 1.72 nonaka iwn2000_temp_offset_calib(struct iwn_softc *sc)
5270 1.72 nonaka {
5271 1.72 nonaka struct iwn2000_phy_calib_temp_offset cmd;
5272 1.72 nonaka
5273 1.72 nonaka memset(&cmd, 0, sizeof cmd);
5274 1.72 nonaka cmd.code = IWN2000_PHY_CALIB_TEMP_OFFSET;
5275 1.72 nonaka cmd.ngroups = 1;
5276 1.72 nonaka cmd.isvalid = 1;
5277 1.72 nonaka if (sc->eeprom_rawtemp != 0) {
5278 1.72 nonaka cmd.offset_low = htole16(sc->eeprom_rawtemp);
5279 1.72 nonaka cmd.offset_high = htole16(sc->eeprom_temp);
5280 1.72 nonaka } else {
5281 1.72 nonaka cmd.offset_low = htole16(IWN_DEFAULT_TEMP_OFFSET);
5282 1.72 nonaka cmd.offset_high = htole16(IWN_DEFAULT_TEMP_OFFSET);
5283 1.72 nonaka }
5284 1.72 nonaka cmd.burnt_voltage_ref = htole16(sc->eeprom_voltage);
5285 1.72 nonaka DPRINTF(("setting radio sensor offset to %d:%d, voltage to %d\n",
5286 1.72 nonaka le16toh(cmd.offset_low), le16toh(cmd.offset_high),
5287 1.72 nonaka le16toh(cmd.burnt_voltage_ref)));
5288 1.72 nonaka return iwn_cmd(sc, IWN_CMD_PHY_CALIB, &cmd, sizeof cmd, 0);
5289 1.72 nonaka }
5290 1.72 nonaka
5291 1.33 christos /*
5292 1.33 christos * This function is called after the runtime firmware notifies us of its
5293 1.53 christos * readiness (called in a process context).
5294 1.33 christos */
5295 1.33 christos static int
5296 1.33 christos iwn4965_post_alive(struct iwn_softc *sc)
5297 1.33 christos {
5298 1.33 christos int error, qid;
5299 1.11 blymn
5300 1.33 christos if ((error = iwn_nic_lock(sc)) != 0)
5301 1.33 christos return error;
5302 1.11 blymn
5303 1.40 christos /* Clear TX scheduler state in SRAM. */
5304 1.33 christos sc->sched_base = iwn_prph_read(sc, IWN_SCHED_SRAM_ADDR);
5305 1.33 christos iwn_mem_set_region_4(sc, sc->sched_base + IWN4965_SCHED_CTX_OFF, 0,
5306 1.40 christos IWN4965_SCHED_CTX_LEN / sizeof (uint32_t));
5307 1.33 christos
5308 1.53 christos /* Set physical address of TX scheduler rings (1KB aligned). */
5309 1.33 christos iwn_prph_write(sc, IWN4965_SCHED_DRAM_ADDR, sc->sched_dma.paddr >> 10);
5310 1.33 christos
5311 1.33 christos IWN_SETBITS(sc, IWN_FH_TX_CHICKEN, IWN_FH_TX_CHICKEN_SCHED_RETRY);
5312 1.33 christos
5313 1.33 christos /* Disable chain mode for all our 16 queues. */
5314 1.33 christos iwn_prph_write(sc, IWN4965_SCHED_QCHAIN_SEL, 0);
5315 1.33 christos
5316 1.33 christos for (qid = 0; qid < IWN4965_NTXQUEUES; qid++) {
5317 1.33 christos iwn_prph_write(sc, IWN4965_SCHED_QUEUE_RDPTR(qid), 0);
5318 1.33 christos IWN_WRITE(sc, IWN_HBUS_TARG_WRPTR, qid << 8 | 0);
5319 1.33 christos
5320 1.33 christos /* Set scheduler window size. */
5321 1.33 christos iwn_mem_write(sc, sc->sched_base +
5322 1.33 christos IWN4965_SCHED_QUEUE_OFFSET(qid), IWN_SCHED_WINSZ);
5323 1.33 christos /* Set scheduler frame limit. */
5324 1.33 christos iwn_mem_write(sc, sc->sched_base +
5325 1.33 christos IWN4965_SCHED_QUEUE_OFFSET(qid) + 4,
5326 1.33 christos IWN_SCHED_LIMIT << 16);
5327 1.33 christos }
5328 1.33 christos
5329 1.33 christos /* Enable interrupts for all our 16 queues. */
5330 1.33 christos iwn_prph_write(sc, IWN4965_SCHED_INTR_MASK, 0xffff);
5331 1.33 christos /* Identify TX FIFO rings (0-7). */
5332 1.33 christos iwn_prph_write(sc, IWN4965_SCHED_TXFACT, 0xff);
5333 1.1 ober
5334 1.33 christos /* Mark TX rings (4 EDCA + cmd + 2 HCCA) as active. */
5335 1.33 christos for (qid = 0; qid < 7; qid++) {
5336 1.33 christos static uint8_t qid2fifo[] = { 3, 2, 1, 0, 4, 5, 6 };
5337 1.33 christos iwn_prph_write(sc, IWN4965_SCHED_QUEUE_STATUS(qid),
5338 1.33 christos IWN4965_TXQ_STATUS_ACTIVE | qid2fifo[qid] << 1);
5339 1.33 christos }
5340 1.33 christos iwn_nic_unlock(sc);
5341 1.1 ober return 0;
5342 1.1 ober }
5343 1.1 ober
5344 1.1 ober /*
5345 1.33 christos * This function is called after the initialization or runtime firmware
5346 1.53 christos * notifies us of its readiness (called in a process context).
5347 1.1 ober */
5348 1.1 ober static int
5349 1.33 christos iwn5000_post_alive(struct iwn_softc *sc)
5350 1.1 ober {
5351 1.33 christos int error, qid;
5352 1.33 christos
5353 1.40 christos /* Switch to using ICT interrupt mode. */
5354 1.40 christos iwn5000_ict_reset(sc);
5355 1.40 christos
5356 1.33 christos if ((error = iwn_nic_lock(sc)) != 0)
5357 1.33 christos return error;
5358 1.1 ober
5359 1.40 christos /* Clear TX scheduler state in SRAM. */
5360 1.33 christos sc->sched_base = iwn_prph_read(sc, IWN_SCHED_SRAM_ADDR);
5361 1.33 christos iwn_mem_set_region_4(sc, sc->sched_base + IWN5000_SCHED_CTX_OFF, 0,
5362 1.40 christos IWN5000_SCHED_CTX_LEN / sizeof (uint32_t));
5363 1.33 christos
5364 1.53 christos /* Set physical address of TX scheduler rings (1KB aligned). */
5365 1.33 christos iwn_prph_write(sc, IWN5000_SCHED_DRAM_ADDR, sc->sched_dma.paddr >> 10);
5366 1.33 christos
5367 1.33 christos IWN_SETBITS(sc, IWN_FH_TX_CHICKEN, IWN_FH_TX_CHICKEN_SCHED_RETRY);
5368 1.33 christos
5369 1.40 christos /* Enable chain mode for all queues, except command queue. */
5370 1.40 christos iwn_prph_write(sc, IWN5000_SCHED_QCHAIN_SEL, 0xfffef);
5371 1.33 christos iwn_prph_write(sc, IWN5000_SCHED_AGGR_SEL, 0);
5372 1.33 christos
5373 1.33 christos for (qid = 0; qid < IWN5000_NTXQUEUES; qid++) {
5374 1.33 christos iwn_prph_write(sc, IWN5000_SCHED_QUEUE_RDPTR(qid), 0);
5375 1.33 christos IWN_WRITE(sc, IWN_HBUS_TARG_WRPTR, qid << 8 | 0);
5376 1.33 christos
5377 1.33 christos iwn_mem_write(sc, sc->sched_base +
5378 1.33 christos IWN5000_SCHED_QUEUE_OFFSET(qid), 0);
5379 1.33 christos /* Set scheduler window size and frame limit. */
5380 1.33 christos iwn_mem_write(sc, sc->sched_base +
5381 1.33 christos IWN5000_SCHED_QUEUE_OFFSET(qid) + 4,
5382 1.33 christos IWN_SCHED_LIMIT << 16 | IWN_SCHED_WINSZ);
5383 1.33 christos }
5384 1.33 christos
5385 1.33 christos /* Enable interrupts for all our 20 queues. */
5386 1.33 christos iwn_prph_write(sc, IWN5000_SCHED_INTR_MASK, 0xfffff);
5387 1.33 christos /* Identify TX FIFO rings (0-7). */
5388 1.33 christos iwn_prph_write(sc, IWN5000_SCHED_TXFACT, 0xff);
5389 1.1 ober
5390 1.33 christos /* Mark TX rings (4 EDCA + cmd + 2 HCCA) as active. */
5391 1.33 christos for (qid = 0; qid < 7; qid++) {
5392 1.33 christos static uint8_t qid2fifo[] = { 3, 2, 1, 0, 7, 5, 6 };
5393 1.33 christos iwn_prph_write(sc, IWN5000_SCHED_QUEUE_STATUS(qid),
5394 1.33 christos IWN5000_TXQ_STATUS_ACTIVE | qid2fifo[qid]);
5395 1.33 christos }
5396 1.33 christos iwn_nic_unlock(sc);
5397 1.33 christos
5398 1.40 christos /* Configure WiMAX coexistence for combo adapters. */
5399 1.40 christos error = iwn5000_send_wimax_coex(sc);
5400 1.33 christos if (error != 0) {
5401 1.33 christos aprint_error_dev(sc->sc_dev,
5402 1.33 christos "could not configure WiMAX coexistence\n");
5403 1.33 christos return error;
5404 1.1 ober }
5405 1.33 christos if (sc->hw_type != IWN_HW_REV_TYPE_5150) {
5406 1.33 christos struct iwn5000_phy_calib_crystal cmd;
5407 1.33 christos
5408 1.33 christos /* Perform crystal calibration. */
5409 1.33 christos memset(&cmd, 0, sizeof cmd);
5410 1.33 christos cmd.code = IWN5000_PHY_CALIB_CRYSTAL;
5411 1.33 christos cmd.ngroups = 1;
5412 1.33 christos cmd.isvalid = 1;
5413 1.33 christos cmd.cap_pin[0] = le32toh(sc->eeprom_crystal) & 0xff;
5414 1.33 christos cmd.cap_pin[1] = (le32toh(sc->eeprom_crystal) >> 16) & 0xff;
5415 1.33 christos DPRINTF(("sending crystal calibration %d, %d\n",
5416 1.33 christos cmd.cap_pin[0], cmd.cap_pin[1]));
5417 1.33 christos error = iwn_cmd(sc, IWN_CMD_PHY_CALIB, &cmd, sizeof cmd, 0);
5418 1.33 christos if (error != 0) {
5419 1.33 christos aprint_error_dev(sc->sc_dev,
5420 1.33 christos "crystal calibration failed\n");
5421 1.33 christos return error;
5422 1.33 christos }
5423 1.33 christos }
5424 1.40 christos if (!(sc->sc_flags & IWN_FLAG_CALIB_DONE)) {
5425 1.33 christos /* Query calibration from the initialization firmware. */
5426 1.33 christos if ((error = iwn5000_query_calibration(sc)) != 0) {
5427 1.33 christos aprint_error_dev(sc->sc_dev,
5428 1.33 christos "could not query calibration\n");
5429 1.33 christos return error;
5430 1.33 christos }
5431 1.33 christos /*
5432 1.40 christos * We have the calibration results now, reboot with the
5433 1.40 christos * runtime firmware (call ourselves recursively!)
5434 1.33 christos */
5435 1.33 christos iwn_hw_stop(sc);
5436 1.33 christos error = iwn_hw_init(sc);
5437 1.33 christos } else {
5438 1.33 christos /* Send calibration results to runtime firmware. */
5439 1.33 christos error = iwn5000_send_calibration(sc);
5440 1.1 ober }
5441 1.33 christos return error;
5442 1.33 christos }
5443 1.33 christos
5444 1.33 christos /*
5445 1.33 christos * The firmware boot code is small and is intended to be copied directly into
5446 1.53 christos * the NIC internal memory (no DMA transfer).
5447 1.33 christos */
5448 1.33 christos static int
5449 1.33 christos iwn4965_load_bootcode(struct iwn_softc *sc, const uint8_t *ucode, int size)
5450 1.33 christos {
5451 1.33 christos int error, ntries;
5452 1.33 christos
5453 1.33 christos size /= sizeof (uint32_t);
5454 1.1 ober
5455 1.33 christos if ((error = iwn_nic_lock(sc)) != 0)
5456 1.33 christos return error;
5457 1.1 ober
5458 1.33 christos /* Copy microcode image into NIC memory. */
5459 1.33 christos iwn_prph_write_region_4(sc, IWN_BSM_SRAM_BASE,
5460 1.33 christos (const uint32_t *)ucode, size);
5461 1.1 ober
5462 1.33 christos iwn_prph_write(sc, IWN_BSM_WR_MEM_SRC, 0);
5463 1.33 christos iwn_prph_write(sc, IWN_BSM_WR_MEM_DST, IWN_FW_TEXT_BASE);
5464 1.33 christos iwn_prph_write(sc, IWN_BSM_WR_DWCOUNT, size);
5465 1.1 ober
5466 1.33 christos /* Start boot load now. */
5467 1.33 christos iwn_prph_write(sc, IWN_BSM_WR_CTRL, IWN_BSM_WR_CTRL_START);
5468 1.1 ober
5469 1.33 christos /* Wait for transfer to complete. */
5470 1.33 christos for (ntries = 0; ntries < 1000; ntries++) {
5471 1.33 christos if (!(iwn_prph_read(sc, IWN_BSM_WR_CTRL) &
5472 1.33 christos IWN_BSM_WR_CTRL_START))
5473 1.33 christos break;
5474 1.33 christos DELAY(10);
5475 1.33 christos }
5476 1.33 christos if (ntries == 1000) {
5477 1.40 christos aprint_error_dev(sc->sc_dev,
5478 1.40 christos "could not load boot firmware\n");
5479 1.33 christos iwn_nic_unlock(sc);
5480 1.33 christos return ETIMEDOUT;
5481 1.1 ober }
5482 1.1 ober
5483 1.33 christos /* Enable boot after power up. */
5484 1.33 christos iwn_prph_write(sc, IWN_BSM_WR_CTRL, IWN_BSM_WR_CTRL_START_EN);
5485 1.1 ober
5486 1.33 christos iwn_nic_unlock(sc);
5487 1.33 christos return 0;
5488 1.33 christos }
5489 1.1 ober
5490 1.33 christos static int
5491 1.33 christos iwn4965_load_firmware(struct iwn_softc *sc)
5492 1.33 christos {
5493 1.33 christos struct iwn_fw_info *fw = &sc->fw;
5494 1.33 christos struct iwn_dma_info *dma = &sc->fw_dma;
5495 1.33 christos int error;
5496 1.1 ober
5497 1.33 christos /* Copy initialization sections into pre-allocated DMA-safe memory. */
5498 1.33 christos memcpy(dma->vaddr, fw->init.data, fw->init.datasz);
5499 1.33 christos bus_dmamap_sync(sc->sc_dmat, dma->map, 0, fw->init.datasz,
5500 1.33 christos BUS_DMASYNC_PREWRITE);
5501 1.33 christos memcpy((char *)dma->vaddr + IWN4965_FW_DATA_MAXSZ,
5502 1.33 christos fw->init.text, fw->init.textsz);
5503 1.33 christos bus_dmamap_sync(sc->sc_dmat, dma->map, IWN4965_FW_DATA_MAXSZ,
5504 1.33 christos fw->init.textsz, BUS_DMASYNC_PREWRITE);
5505 1.1 ober
5506 1.33 christos /* Tell adapter where to find initialization sections. */
5507 1.33 christos if ((error = iwn_nic_lock(sc)) != 0)
5508 1.33 christos return error;
5509 1.33 christos iwn_prph_write(sc, IWN_BSM_DRAM_DATA_ADDR, dma->paddr >> 4);
5510 1.33 christos iwn_prph_write(sc, IWN_BSM_DRAM_DATA_SIZE, fw->init.datasz);
5511 1.33 christos iwn_prph_write(sc, IWN_BSM_DRAM_TEXT_ADDR,
5512 1.33 christos (dma->paddr + IWN4965_FW_DATA_MAXSZ) >> 4);
5513 1.33 christos iwn_prph_write(sc, IWN_BSM_DRAM_TEXT_SIZE, fw->init.textsz);
5514 1.33 christos iwn_nic_unlock(sc);
5515 1.1 ober
5516 1.33 christos /* Load firmware boot code. */
5517 1.33 christos error = iwn4965_load_bootcode(sc, fw->boot.text, fw->boot.textsz);
5518 1.33 christos if (error != 0) {
5519 1.40 christos aprint_error_dev(sc->sc_dev,
5520 1.40 christos "could not load boot firmware\n");
5521 1.33 christos return error;
5522 1.33 christos }
5523 1.33 christos /* Now press "execute". */
5524 1.33 christos IWN_WRITE(sc, IWN_RESET, 0);
5525 1.1 ober
5526 1.33 christos /* Wait at most one second for first alive notification. */
5527 1.33 christos if ((error = tsleep(sc, PCATCH, "iwninit", hz)) != 0) {
5528 1.33 christos aprint_error_dev(sc->sc_dev,
5529 1.40 christos "timeout waiting for adapter to initialize\n");
5530 1.33 christos return error;
5531 1.33 christos }
5532 1.1 ober
5533 1.33 christos /* Retrieve current temperature for initial TX power calibration. */
5534 1.33 christos sc->rawtemp = sc->ucode_info.temp[3].chan20MHz;
5535 1.33 christos sc->temp = iwn4965_get_temperature(sc);
5536 1.1 ober
5537 1.33 christos /* Copy runtime sections into pre-allocated DMA-safe memory. */
5538 1.33 christos memcpy(dma->vaddr, fw->main.data, fw->main.datasz);
5539 1.33 christos bus_dmamap_sync(sc->sc_dmat, dma->map, 0, fw->main.datasz,
5540 1.33 christos BUS_DMASYNC_PREWRITE);
5541 1.33 christos memcpy((char *)dma->vaddr + IWN4965_FW_DATA_MAXSZ,
5542 1.33 christos fw->main.text, fw->main.textsz);
5543 1.33 christos bus_dmamap_sync(sc->sc_dmat, dma->map, IWN4965_FW_DATA_MAXSZ,
5544 1.33 christos fw->main.textsz, BUS_DMASYNC_PREWRITE);
5545 1.1 ober
5546 1.33 christos /* Tell adapter where to find runtime sections. */
5547 1.33 christos if ((error = iwn_nic_lock(sc)) != 0)
5548 1.33 christos return error;
5549 1.33 christos iwn_prph_write(sc, IWN_BSM_DRAM_DATA_ADDR, dma->paddr >> 4);
5550 1.33 christos iwn_prph_write(sc, IWN_BSM_DRAM_DATA_SIZE, fw->main.datasz);
5551 1.33 christos iwn_prph_write(sc, IWN_BSM_DRAM_TEXT_ADDR,
5552 1.33 christos (dma->paddr + IWN4965_FW_DATA_MAXSZ) >> 4);
5553 1.33 christos iwn_prph_write(sc, IWN_BSM_DRAM_TEXT_SIZE,
5554 1.33 christos IWN_FW_UPDATED | fw->main.textsz);
5555 1.33 christos iwn_nic_unlock(sc);
5556 1.1 ober
5557 1.33 christos return 0;
5558 1.33 christos }
5559 1.1 ober
5560 1.33 christos static int
5561 1.33 christos iwn5000_load_firmware_section(struct iwn_softc *sc, uint32_t dst,
5562 1.33 christos const uint8_t *section, int size)
5563 1.33 christos {
5564 1.33 christos struct iwn_dma_info *dma = &sc->fw_dma;
5565 1.33 christos int error;
5566 1.1 ober
5567 1.33 christos /* Copy firmware section into pre-allocated DMA-safe memory. */
5568 1.33 christos memcpy(dma->vaddr, section, size);
5569 1.33 christos bus_dmamap_sync(sc->sc_dmat, dma->map, 0, size, BUS_DMASYNC_PREWRITE);
5570 1.1 ober
5571 1.33 christos if ((error = iwn_nic_lock(sc)) != 0)
5572 1.1 ober return error;
5573 1.1 ober
5574 1.40 christos IWN_WRITE(sc, IWN_FH_TX_CONFIG(IWN_SRVC_DMACHNL),
5575 1.33 christos IWN_FH_TX_CONFIG_DMA_PAUSE);
5576 1.1 ober
5577 1.40 christos IWN_WRITE(sc, IWN_FH_SRAM_ADDR(IWN_SRVC_DMACHNL), dst);
5578 1.40 christos IWN_WRITE(sc, IWN_FH_TFBD_CTRL0(IWN_SRVC_DMACHNL),
5579 1.33 christos IWN_LOADDR(dma->paddr));
5580 1.40 christos IWN_WRITE(sc, IWN_FH_TFBD_CTRL1(IWN_SRVC_DMACHNL),
5581 1.33 christos IWN_HIADDR(dma->paddr) << 28 | size);
5582 1.40 christos IWN_WRITE(sc, IWN_FH_TXBUF_STATUS(IWN_SRVC_DMACHNL),
5583 1.33 christos IWN_FH_TXBUF_STATUS_TBNUM(1) |
5584 1.33 christos IWN_FH_TXBUF_STATUS_TBIDX(1) |
5585 1.33 christos IWN_FH_TXBUF_STATUS_TFBD_VALID);
5586 1.33 christos
5587 1.33 christos /* Kick Flow Handler to start DMA transfer. */
5588 1.40 christos IWN_WRITE(sc, IWN_FH_TX_CONFIG(IWN_SRVC_DMACHNL),
5589 1.33 christos IWN_FH_TX_CONFIG_DMA_ENA | IWN_FH_TX_CONFIG_CIRQ_HOST_ENDTFD);
5590 1.20 blymn
5591 1.33 christos iwn_nic_unlock(sc);
5592 1.1 ober
5593 1.33 christos /* Wait at most five seconds for FH DMA transfer to complete. */
5594 1.33 christos return tsleep(sc, PCATCH, "iwninit", 5 * hz);
5595 1.1 ober }
5596 1.1 ober
5597 1.1 ober static int
5598 1.33 christos iwn5000_load_firmware(struct iwn_softc *sc)
5599 1.1 ober {
5600 1.33 christos struct iwn_fw_part *fw;
5601 1.1 ober int error;
5602 1.1 ober
5603 1.33 christos /* Load the initialization firmware on first boot only. */
5604 1.40 christos fw = (sc->sc_flags & IWN_FLAG_CALIB_DONE) ?
5605 1.40 christos &sc->fw.main : &sc->fw.init;
5606 1.33 christos
5607 1.33 christos error = iwn5000_load_firmware_section(sc, IWN_FW_TEXT_BASE,
5608 1.33 christos fw->text, fw->textsz);
5609 1.33 christos if (error != 0) {
5610 1.33 christos aprint_error_dev(sc->sc_dev,
5611 1.40 christos "could not load firmware %s section\n", ".text");
5612 1.33 christos return error;
5613 1.33 christos }
5614 1.33 christos error = iwn5000_load_firmware_section(sc, IWN_FW_DATA_BASE,
5615 1.33 christos fw->data, fw->datasz);
5616 1.1 ober if (error != 0) {
5617 1.33 christos aprint_error_dev(sc->sc_dev,
5618 1.40 christos "could not load firmware %s section\n", ".data");
5619 1.1 ober return error;
5620 1.1 ober }
5621 1.1 ober
5622 1.33 christos /* Now press "execute". */
5623 1.33 christos IWN_WRITE(sc, IWN_RESET, 0);
5624 1.33 christos return 0;
5625 1.33 christos }
5626 1.33 christos
5627 1.46 christos /*
5628 1.46 christos * Extract text and data sections from a legacy firmware image.
5629 1.46 christos */
5630 1.46 christos static int
5631 1.46 christos iwn_read_firmware_leg(struct iwn_softc *sc, struct iwn_fw_info *fw)
5632 1.46 christos {
5633 1.46 christos const uint32_t *ptr;
5634 1.46 christos size_t hdrlen = 24;
5635 1.46 christos uint32_t rev;
5636 1.46 christos
5637 1.46 christos ptr = (const uint32_t *)fw->data;
5638 1.46 christos rev = le32toh(*ptr++);
5639 1.46 christos
5640 1.46 christos /* Check firmware API version. */
5641 1.46 christos if (IWN_FW_API(rev) <= 1) {
5642 1.46 christos aprint_error_dev(sc->sc_dev,
5643 1.46 christos "bad firmware, need API version >=2\n");
5644 1.46 christos return EINVAL;
5645 1.46 christos }
5646 1.46 christos if (IWN_FW_API(rev) >= 3) {
5647 1.46 christos /* Skip build number (version 2 header). */
5648 1.46 christos hdrlen += 4;
5649 1.46 christos ptr++;
5650 1.46 christos }
5651 1.46 christos if (fw->size < hdrlen) {
5652 1.46 christos aprint_error_dev(sc->sc_dev,
5653 1.46 christos "firmware too short: %zd bytes\n", fw->size);
5654 1.46 christos return EINVAL;
5655 1.46 christos }
5656 1.46 christos fw->main.textsz = le32toh(*ptr++);
5657 1.46 christos fw->main.datasz = le32toh(*ptr++);
5658 1.46 christos fw->init.textsz = le32toh(*ptr++);
5659 1.46 christos fw->init.datasz = le32toh(*ptr++);
5660 1.46 christos fw->boot.textsz = le32toh(*ptr++);
5661 1.46 christos
5662 1.46 christos /* Check that all firmware sections fit. */
5663 1.46 christos if (fw->size < hdrlen + fw->main.textsz + fw->main.datasz +
5664 1.46 christos fw->init.textsz + fw->init.datasz + fw->boot.textsz) {
5665 1.46 christos aprint_error_dev(sc->sc_dev,
5666 1.46 christos "firmware too short: %zd bytes\n", fw->size);
5667 1.46 christos return EINVAL;
5668 1.46 christos }
5669 1.46 christos
5670 1.46 christos /* Get pointers to firmware sections. */
5671 1.46 christos fw->main.text = (const uint8_t *)ptr;
5672 1.46 christos fw->main.data = fw->main.text + fw->main.textsz;
5673 1.46 christos fw->init.text = fw->main.data + fw->main.datasz;
5674 1.46 christos fw->init.data = fw->init.text + fw->init.textsz;
5675 1.46 christos fw->boot.text = fw->init.data + fw->init.datasz;
5676 1.46 christos return 0;
5677 1.46 christos }
5678 1.46 christos
5679 1.46 christos /*
5680 1.46 christos * Extract text and data sections from a TLV firmware image.
5681 1.46 christos */
5682 1.46 christos static int
5683 1.46 christos iwn_read_firmware_tlv(struct iwn_softc *sc, struct iwn_fw_info *fw,
5684 1.46 christos uint16_t alt)
5685 1.46 christos {
5686 1.46 christos const struct iwn_fw_tlv_hdr *hdr;
5687 1.46 christos const struct iwn_fw_tlv *tlv;
5688 1.46 christos const uint8_t *ptr, *end;
5689 1.46 christos uint64_t altmask;
5690 1.46 christos uint32_t len;
5691 1.46 christos
5692 1.46 christos if (fw->size < sizeof (*hdr)) {
5693 1.46 christos aprint_error_dev(sc->sc_dev,
5694 1.46 christos "firmware too short: %zd bytes\n", fw->size);
5695 1.46 christos return EINVAL;
5696 1.46 christos }
5697 1.46 christos hdr = (const struct iwn_fw_tlv_hdr *)fw->data;
5698 1.46 christos if (hdr->signature != htole32(IWN_FW_SIGNATURE)) {
5699 1.46 christos aprint_error_dev(sc->sc_dev,
5700 1.46 christos "bad firmware signature 0x%08x\n", le32toh(hdr->signature));
5701 1.46 christos return EINVAL;
5702 1.46 christos }
5703 1.46 christos DPRINTF(("FW: \"%.64s\", build 0x%x\n", hdr->descr,
5704 1.46 christos le32toh(hdr->build)));
5705 1.46 christos
5706 1.46 christos /*
5707 1.46 christos * Select the closest supported alternative that is less than
5708 1.46 christos * or equal to the specified one.
5709 1.46 christos */
5710 1.46 christos altmask = le64toh(hdr->altmask);
5711 1.46 christos while (alt > 0 && !(altmask & (1ULL << alt)))
5712 1.46 christos alt--; /* Downgrade. */
5713 1.46 christos DPRINTF(("using alternative %d\n", alt));
5714 1.46 christos
5715 1.46 christos ptr = (const uint8_t *)(hdr + 1);
5716 1.46 christos end = (const uint8_t *)(fw->data + fw->size);
5717 1.46 christos
5718 1.46 christos /* Parse type-length-value fields. */
5719 1.46 christos while (ptr + sizeof (*tlv) <= end) {
5720 1.46 christos tlv = (const struct iwn_fw_tlv *)ptr;
5721 1.46 christos len = le32toh(tlv->len);
5722 1.46 christos
5723 1.46 christos ptr += sizeof (*tlv);
5724 1.46 christos if (ptr + len > end) {
5725 1.46 christos aprint_error_dev(sc->sc_dev,
5726 1.46 christos "firmware too short: %zd bytes\n", fw->size);
5727 1.46 christos return EINVAL;
5728 1.46 christos }
5729 1.46 christos /* Skip other alternatives. */
5730 1.46 christos if (tlv->alt != 0 && tlv->alt != htole16(alt))
5731 1.46 christos goto next;
5732 1.46 christos
5733 1.46 christos switch (le16toh(tlv->type)) {
5734 1.46 christos case IWN_FW_TLV_MAIN_TEXT:
5735 1.46 christos fw->main.text = ptr;
5736 1.46 christos fw->main.textsz = len;
5737 1.46 christos break;
5738 1.46 christos case IWN_FW_TLV_MAIN_DATA:
5739 1.46 christos fw->main.data = ptr;
5740 1.46 christos fw->main.datasz = len;
5741 1.46 christos break;
5742 1.46 christos case IWN_FW_TLV_INIT_TEXT:
5743 1.46 christos fw->init.text = ptr;
5744 1.46 christos fw->init.textsz = len;
5745 1.46 christos break;
5746 1.46 christos case IWN_FW_TLV_INIT_DATA:
5747 1.46 christos fw->init.data = ptr;
5748 1.46 christos fw->init.datasz = len;
5749 1.46 christos break;
5750 1.46 christos case IWN_FW_TLV_BOOT_TEXT:
5751 1.46 christos fw->boot.text = ptr;
5752 1.46 christos fw->boot.textsz = len;
5753 1.46 christos break;
5754 1.72 nonaka case IWN_FW_TLV_ENH_SENS:
5755 1.72 nonaka if (len != 0) {
5756 1.72 nonaka aprint_error_dev(sc->sc_dev,
5757 1.72 nonaka "TLV type %d has invalid size %u\n",
5758 1.72 nonaka le16toh(tlv->type), len);
5759 1.72 nonaka goto next;
5760 1.72 nonaka }
5761 1.72 nonaka sc->sc_flags |= IWN_FLAG_ENH_SENS;
5762 1.72 nonaka break;
5763 1.72 nonaka case IWN_FW_TLV_PHY_CALIB:
5764 1.72 nonaka if (len != sizeof(uint32_t)) {
5765 1.72 nonaka aprint_error_dev(sc->sc_dev,
5766 1.72 nonaka "TLV type %d has invalid size %u\n",
5767 1.72 nonaka le16toh(tlv->type), len);
5768 1.72 nonaka goto next;
5769 1.72 nonaka }
5770 1.72 nonaka if (le32toh(*ptr) <= IWN5000_PHY_CALIB_MAX) {
5771 1.72 nonaka sc->reset_noise_gain = le32toh(*ptr);
5772 1.72 nonaka sc->noise_gain = le32toh(*ptr) + 1;
5773 1.72 nonaka }
5774 1.72 nonaka break;
5775 1.72 nonaka case IWN_FW_TLV_FLAGS:
5776 1.72 nonaka if (len < sizeof(uint32_t))
5777 1.72 nonaka break;
5778 1.72 nonaka if (len % sizeof(uint32_t))
5779 1.72 nonaka break;
5780 1.72 nonaka sc->tlv_feature_flags = le32toh(*ptr);
5781 1.72 nonaka DPRINTF(("feature: 0x%08x\n", sc->tlv_feature_flags));
5782 1.72 nonaka break;
5783 1.46 christos default:
5784 1.46 christos DPRINTF(("TLV type %d not handled\n",
5785 1.46 christos le16toh(tlv->type)));
5786 1.46 christos break;
5787 1.46 christos }
5788 1.46 christos next: /* TLV fields are 32-bit aligned. */
5789 1.46 christos ptr += (len + 3) & ~3;
5790 1.46 christos }
5791 1.46 christos return 0;
5792 1.46 christos }
5793 1.46 christos
5794 1.33 christos static int
5795 1.33 christos iwn_read_firmware(struct iwn_softc *sc)
5796 1.33 christos {
5797 1.33 christos struct iwn_fw_info *fw = &sc->fw;
5798 1.33 christos firmware_handle_t fwh;
5799 1.33 christos int error;
5800 1.33 christos
5801 1.72 nonaka /*
5802 1.72 nonaka * Some PHY calibration commands are firmware-dependent; these
5803 1.72 nonaka * are the default values that will be overridden if
5804 1.72 nonaka * necessary.
5805 1.72 nonaka */
5806 1.72 nonaka sc->reset_noise_gain = IWN5000_PHY_CALIB_RESET_NOISE_GAIN;
5807 1.72 nonaka sc->noise_gain = IWN5000_PHY_CALIB_NOISE_GAIN;
5808 1.72 nonaka
5809 1.42 christos /* Initialize for error returns */
5810 1.42 christos fw->data = NULL;
5811 1.46 christos fw->size = 0;
5812 1.42 christos
5813 1.40 christos /* Open firmware image. */
5814 1.33 christos if ((error = firmware_open("if_iwn", sc->fwname, &fwh)) != 0) {
5815 1.33 christos aprint_error_dev(sc->sc_dev,
5816 1.40 christos "could not get firmware handle %s\n", sc->fwname);
5817 1.1 ober return error;
5818 1.1 ober }
5819 1.46 christos fw->size = firmware_get_size(fwh);
5820 1.46 christos if (fw->size < sizeof (uint32_t)) {
5821 1.33 christos aprint_error_dev(sc->sc_dev,
5822 1.46 christos "firmware too short: %zd bytes\n", fw->size);
5823 1.40 christos firmware_close(fwh);
5824 1.40 christos return EINVAL;
5825 1.40 christos }
5826 1.40 christos
5827 1.40 christos /* Read the firmware. */
5828 1.46 christos fw->data = firmware_malloc(fw->size);
5829 1.40 christos if (fw->data == NULL) {
5830 1.40 christos aprint_error_dev(sc->sc_dev,
5831 1.40 christos "not enough memory to stock firmware %s\n", sc->fwname);
5832 1.40 christos firmware_close(fwh);
5833 1.40 christos return ENOMEM;
5834 1.33 christos }
5835 1.46 christos error = firmware_read(fwh, 0, fw->data, fw->size);
5836 1.42 christos firmware_close(fwh);
5837 1.42 christos if (error != 0) {
5838 1.40 christos aprint_error_dev(sc->sc_dev,
5839 1.40 christos "could not read firmware %s\n", sc->fwname);
5840 1.42 christos goto out;
5841 1.33 christos }
5842 1.40 christos
5843 1.46 christos /* Retrieve text and data sections. */
5844 1.46 christos if (*(const uint32_t *)fw->data != 0) /* Legacy image. */
5845 1.46 christos error = iwn_read_firmware_leg(sc, fw);
5846 1.46 christos else
5847 1.46 christos error = iwn_read_firmware_tlv(sc, fw, 1);
5848 1.46 christos if (error != 0) {
5849 1.40 christos aprint_error_dev(sc->sc_dev,
5850 1.46 christos "could not read firmware sections\n");
5851 1.42 christos goto out;
5852 1.40 christos }
5853 1.33 christos
5854 1.46 christos /* Make sure text and data sections fit in hardware memory. */
5855 1.53 christos if (fw->main.textsz > sc->fw_text_maxsz ||
5856 1.53 christos fw->main.datasz > sc->fw_data_maxsz ||
5857 1.53 christos fw->init.textsz > sc->fw_text_maxsz ||
5858 1.53 christos fw->init.datasz > sc->fw_data_maxsz ||
5859 1.33 christos fw->boot.textsz > IWN_FW_BOOT_TEXT_MAXSZ ||
5860 1.33 christos (fw->boot.textsz & 3) != 0) {
5861 1.40 christos aprint_error_dev(sc->sc_dev,
5862 1.46 christos "firmware sections too large\n");
5863 1.42 christos goto out;
5864 1.1 ober }
5865 1.1 ober
5866 1.46 christos /* We can proceed with loading the firmware. */
5867 1.33 christos return 0;
5868 1.42 christos out:
5869 1.46 christos firmware_free(fw->data, fw->size);
5870 1.42 christos fw->data = NULL;
5871 1.46 christos fw->size = 0;
5872 1.42 christos return error ? error : EINVAL;
5873 1.33 christos }
5874 1.33 christos
5875 1.33 christos static int
5876 1.33 christos iwn_clock_wait(struct iwn_softc *sc)
5877 1.33 christos {
5878 1.33 christos int ntries;
5879 1.33 christos
5880 1.33 christos /* Set "initialization complete" bit. */
5881 1.33 christos IWN_SETBITS(sc, IWN_GP_CNTRL, IWN_GP_CNTRL_INIT_DONE);
5882 1.33 christos
5883 1.33 christos /* Wait for clock stabilization. */
5884 1.40 christos for (ntries = 0; ntries < 2500; ntries++) {
5885 1.33 christos if (IWN_READ(sc, IWN_GP_CNTRL) & IWN_GP_CNTRL_MAC_CLOCK_READY)
5886 1.33 christos return 0;
5887 1.40 christos DELAY(10);
5888 1.1 ober }
5889 1.33 christos aprint_error_dev(sc->sc_dev,
5890 1.33 christos "timeout waiting for clock stabilization\n");
5891 1.33 christos return ETIMEDOUT;
5892 1.33 christos }
5893 1.33 christos
5894 1.33 christos static int
5895 1.40 christos iwn_apm_init(struct iwn_softc *sc)
5896 1.1 ober {
5897 1.40 christos pcireg_t reg;
5898 1.33 christos int error;
5899 1.1 ober
5900 1.53 christos /* Disable L0s exit timer (NMI bug workaround). */
5901 1.33 christos IWN_SETBITS(sc, IWN_GIO_CHICKEN, IWN_GIO_CHICKEN_DIS_L0S_TIMER);
5902 1.53 christos /* Don't wait for ICH L0s (ICH bug workaround). */
5903 1.33 christos IWN_SETBITS(sc, IWN_GIO_CHICKEN, IWN_GIO_CHICKEN_L1A_NO_L0S_RX);
5904 1.1 ober
5905 1.53 christos /* Set FH wait threshold to max (HW bug under stress workaround). */
5906 1.33 christos IWN_SETBITS(sc, IWN_DBG_HPET_MEM, 0xffff0000);
5907 1.1 ober
5908 1.40 christos /* Enable HAP INTA to move adapter from L1a to L0s. */
5909 1.33 christos IWN_SETBITS(sc, IWN_HW_IF_CONFIG, IWN_HW_IF_CONFIG_HAP_WAKE_L1A);
5910 1.1 ober
5911 1.40 christos /* Retrieve PCIe Active State Power Management (ASPM). */
5912 1.40 christos reg = pci_conf_read(sc->sc_pct, sc->sc_pcitag,
5913 1.65 msaitoh sc->sc_cap_off + PCIE_LCSR);
5914 1.40 christos /* Workaround for HW instability in PCIe L0->L0s->L1 transition. */
5915 1.65 msaitoh if (reg & PCIE_LCSR_ASPM_L1) /* L1 Entry enabled. */
5916 1.40 christos IWN_SETBITS(sc, IWN_GIO, IWN_GIO_L0S_ENA);
5917 1.40 christos else
5918 1.40 christos IWN_CLRBITS(sc, IWN_GIO, IWN_GIO_L0S_ENA);
5919 1.40 christos
5920 1.40 christos if (sc->hw_type != IWN_HW_REV_TYPE_4965 &&
5921 1.40 christos sc->hw_type <= IWN_HW_REV_TYPE_1000)
5922 1.33 christos IWN_SETBITS(sc, IWN_ANA_PLL, IWN_ANA_PLL_INIT);
5923 1.1 ober
5924 1.40 christos /* Wait for clock stabilization before accessing prph. */
5925 1.33 christos if ((error = iwn_clock_wait(sc)) != 0)
5926 1.40 christos return error;
5927 1.1 ober
5928 1.33 christos if ((error = iwn_nic_lock(sc)) != 0)
5929 1.33 christos return error;
5930 1.40 christos if (sc->hw_type == IWN_HW_REV_TYPE_4965) {
5931 1.53 christos /* Enable DMA and BSM (Bootstrap State Machine). */
5932 1.40 christos iwn_prph_write(sc, IWN_APMG_CLK_EN,
5933 1.40 christos IWN_APMG_CLK_CTRL_DMA_CLK_RQT |
5934 1.40 christos IWN_APMG_CLK_CTRL_BSM_CLK_RQT);
5935 1.40 christos } else {
5936 1.40 christos /* Enable DMA. */
5937 1.40 christos iwn_prph_write(sc, IWN_APMG_CLK_EN,
5938 1.40 christos IWN_APMG_CLK_CTRL_DMA_CLK_RQT);
5939 1.40 christos }
5940 1.33 christos DELAY(20);
5941 1.40 christos /* Disable L1-Active. */
5942 1.33 christos iwn_prph_setbits(sc, IWN_APMG_PCI_STT, IWN_APMG_PCI_STT_L1A_DIS);
5943 1.33 christos iwn_nic_unlock(sc);
5944 1.1 ober
5945 1.33 christos return 0;
5946 1.1 ober }
5947 1.1 ober
5948 1.1 ober static void
5949 1.33 christos iwn_apm_stop_master(struct iwn_softc *sc)
5950 1.1 ober {
5951 1.1 ober int ntries;
5952 1.1 ober
5953 1.40 christos /* Stop busmaster DMA activity. */
5954 1.33 christos IWN_SETBITS(sc, IWN_RESET, IWN_RESET_STOP_MASTER);
5955 1.1 ober for (ntries = 0; ntries < 100; ntries++) {
5956 1.33 christos if (IWN_READ(sc, IWN_RESET) & IWN_RESET_MASTER_DISABLED)
5957 1.33 christos return;
5958 1.1 ober DELAY(10);
5959 1.1 ober }
5960 1.40 christos aprint_error_dev(sc->sc_dev,
5961 1.40 christos "timeout waiting for master\n");
5962 1.1 ober }
5963 1.1 ober
5964 1.33 christos static void
5965 1.33 christos iwn_apm_stop(struct iwn_softc *sc)
5966 1.1 ober {
5967 1.33 christos iwn_apm_stop_master(sc);
5968 1.1 ober
5969 1.40 christos /* Reset the entire device. */
5970 1.33 christos IWN_SETBITS(sc, IWN_RESET, IWN_RESET_SW);
5971 1.33 christos DELAY(10);
5972 1.33 christos /* Clear "initialization complete" bit. */
5973 1.33 christos IWN_CLRBITS(sc, IWN_GP_CNTRL, IWN_GP_CNTRL_INIT_DONE);
5974 1.33 christos }
5975 1.1 ober
5976 1.33 christos static int
5977 1.33 christos iwn4965_nic_config(struct iwn_softc *sc)
5978 1.33 christos {
5979 1.33 christos if (IWN_RFCFG_TYPE(sc->rfcfg) == 1) {
5980 1.33 christos /*
5981 1.33 christos * I don't believe this to be correct but this is what the
5982 1.33 christos * vendor driver is doing. Probably the bits should not be
5983 1.33 christos * shifted in IWN_RFCFG_*.
5984 1.33 christos */
5985 1.33 christos IWN_SETBITS(sc, IWN_HW_IF_CONFIG,
5986 1.33 christos IWN_RFCFG_TYPE(sc->rfcfg) |
5987 1.33 christos IWN_RFCFG_STEP(sc->rfcfg) |
5988 1.33 christos IWN_RFCFG_DASH(sc->rfcfg));
5989 1.1 ober }
5990 1.33 christos IWN_SETBITS(sc, IWN_HW_IF_CONFIG,
5991 1.33 christos IWN_HW_IF_CONFIG_RADIO_SI | IWN_HW_IF_CONFIG_MAC_SI);
5992 1.1 ober return 0;
5993 1.1 ober }
5994 1.1 ober
5995 1.33 christos static int
5996 1.33 christos iwn5000_nic_config(struct iwn_softc *sc)
5997 1.1 ober {
5998 1.40 christos uint32_t tmp;
5999 1.33 christos int error;
6000 1.1 ober
6001 1.33 christos if (IWN_RFCFG_TYPE(sc->rfcfg) < 3) {
6002 1.33 christos IWN_SETBITS(sc, IWN_HW_IF_CONFIG,
6003 1.33 christos IWN_RFCFG_TYPE(sc->rfcfg) |
6004 1.33 christos IWN_RFCFG_STEP(sc->rfcfg) |
6005 1.33 christos IWN_RFCFG_DASH(sc->rfcfg));
6006 1.33 christos }
6007 1.33 christos IWN_SETBITS(sc, IWN_HW_IF_CONFIG,
6008 1.33 christos IWN_HW_IF_CONFIG_RADIO_SI | IWN_HW_IF_CONFIG_MAC_SI);
6009 1.1 ober
6010 1.33 christos if ((error = iwn_nic_lock(sc)) != 0)
6011 1.33 christos return error;
6012 1.33 christos iwn_prph_setbits(sc, IWN_APMG_PS, IWN_APMG_PS_EARLY_PWROFF_DIS);
6013 1.40 christos
6014 1.40 christos if (sc->hw_type == IWN_HW_REV_TYPE_1000) {
6015 1.40 christos /*
6016 1.40 christos * Select first Switching Voltage Regulator (1.32V) to
6017 1.40 christos * solve a stability issue related to noisy DC2DC line
6018 1.40 christos * in the silicon of 1000 Series.
6019 1.40 christos */
6020 1.40 christos tmp = iwn_prph_read(sc, IWN_APMG_DIGITAL_SVR);
6021 1.40 christos tmp &= ~IWN_APMG_DIGITAL_SVR_VOLTAGE_MASK;
6022 1.40 christos tmp |= IWN_APMG_DIGITAL_SVR_VOLTAGE_1_32;
6023 1.40 christos iwn_prph_write(sc, IWN_APMG_DIGITAL_SVR, tmp);
6024 1.40 christos }
6025 1.33 christos iwn_nic_unlock(sc);
6026 1.40 christos
6027 1.40 christos if (sc->sc_flags & IWN_FLAG_INTERNAL_PA) {
6028 1.40 christos /* Use internal power amplifier only. */
6029 1.40 christos IWN_WRITE(sc, IWN_GP_DRIVER, IWN_GP_DRIVER_RADIO_2X2_IPA);
6030 1.40 christos }
6031 1.53 christos if ((sc->hw_type == IWN_HW_REV_TYPE_6050 ||
6032 1.53 christos sc->hw_type == IWN_HW_REV_TYPE_6005) && sc->calib_ver >= 6) {
6033 1.40 christos /* Indicate that ROM calibration version is >=6. */
6034 1.40 christos IWN_SETBITS(sc, IWN_GP_DRIVER, IWN_GP_DRIVER_CALIB_VER6);
6035 1.40 christos }
6036 1.53 christos if (sc->hw_type == IWN_HW_REV_TYPE_6005)
6037 1.53 christos IWN_SETBITS(sc, IWN_GP_DRIVER, IWN_GP_DRIVER_6050_1X2);
6038 1.72 nonaka if (sc->hw_type == IWN_HW_REV_TYPE_2030 ||
6039 1.72 nonaka sc->hw_type == IWN_HW_REV_TYPE_2000 ||
6040 1.72 nonaka sc->hw_type == IWN_HW_REV_TYPE_135 ||
6041 1.72 nonaka sc->hw_type == IWN_HW_REV_TYPE_105)
6042 1.72 nonaka IWN_SETBITS(sc, IWN_GP_DRIVER, IWN_GP_DRIVER_RADIO_IQ_INVERT);
6043 1.33 christos return 0;
6044 1.1 ober }
6045 1.1 ober
6046 1.40 christos /*
6047 1.40 christos * Take NIC ownership over Intel Active Management Technology (AMT).
6048 1.40 christos */
6049 1.40 christos static int
6050 1.40 christos iwn_hw_prepare(struct iwn_softc *sc)
6051 1.40 christos {
6052 1.40 christos int ntries;
6053 1.40 christos
6054 1.40 christos /* Check if hardware is ready. */
6055 1.40 christos IWN_SETBITS(sc, IWN_HW_IF_CONFIG, IWN_HW_IF_CONFIG_NIC_READY);
6056 1.40 christos for (ntries = 0; ntries < 5; ntries++) {
6057 1.40 christos if (IWN_READ(sc, IWN_HW_IF_CONFIG) &
6058 1.40 christos IWN_HW_IF_CONFIG_NIC_READY)
6059 1.40 christos return 0;
6060 1.40 christos DELAY(10);
6061 1.40 christos }
6062 1.40 christos
6063 1.40 christos /* Hardware not ready, force into ready state. */
6064 1.40 christos IWN_SETBITS(sc, IWN_HW_IF_CONFIG, IWN_HW_IF_CONFIG_PREPARE);
6065 1.40 christos for (ntries = 0; ntries < 15000; ntries++) {
6066 1.40 christos if (!(IWN_READ(sc, IWN_HW_IF_CONFIG) &
6067 1.40 christos IWN_HW_IF_CONFIG_PREPARE_DONE))
6068 1.40 christos break;
6069 1.40 christos DELAY(10);
6070 1.40 christos }
6071 1.40 christos if (ntries == 15000)
6072 1.40 christos return ETIMEDOUT;
6073 1.40 christos
6074 1.40 christos /* Hardware should be ready now. */
6075 1.40 christos IWN_SETBITS(sc, IWN_HW_IF_CONFIG, IWN_HW_IF_CONFIG_NIC_READY);
6076 1.40 christos for (ntries = 0; ntries < 5; ntries++) {
6077 1.40 christos if (IWN_READ(sc, IWN_HW_IF_CONFIG) &
6078 1.40 christos IWN_HW_IF_CONFIG_NIC_READY)
6079 1.40 christos return 0;
6080 1.40 christos DELAY(10);
6081 1.40 christos }
6082 1.40 christos return ETIMEDOUT;
6083 1.40 christos }
6084 1.40 christos
6085 1.1 ober static int
6086 1.33 christos iwn_hw_init(struct iwn_softc *sc)
6087 1.1 ober {
6088 1.53 christos struct iwn_ops *ops = &sc->ops;
6089 1.40 christos int error, chnl, qid;
6090 1.1 ober
6091 1.33 christos /* Clear pending interrupts. */
6092 1.33 christos IWN_WRITE(sc, IWN_INT, 0xffffffff);
6093 1.33 christos
6094 1.40 christos if ((error = iwn_apm_init(sc)) != 0) {
6095 1.40 christos aprint_error_dev(sc->sc_dev,
6096 1.40 christos "could not power ON adapter\n");
6097 1.33 christos return error;
6098 1.1 ober }
6099 1.1 ober
6100 1.33 christos /* Select VMAIN power source. */
6101 1.33 christos if ((error = iwn_nic_lock(sc)) != 0)
6102 1.33 christos return error;
6103 1.33 christos iwn_prph_clrbits(sc, IWN_APMG_PS, IWN_APMG_PS_PWR_SRC_MASK);
6104 1.33 christos iwn_nic_unlock(sc);
6105 1.33 christos
6106 1.33 christos /* Perform adapter-specific initialization. */
6107 1.53 christos if ((error = ops->nic_config(sc)) != 0)
6108 1.33 christos return error;
6109 1.1 ober
6110 1.33 christos /* Initialize RX ring. */
6111 1.33 christos if ((error = iwn_nic_lock(sc)) != 0)
6112 1.33 christos return error;
6113 1.33 christos IWN_WRITE(sc, IWN_FH_RX_CONFIG, 0);
6114 1.33 christos IWN_WRITE(sc, IWN_FH_RX_WPTR, 0);
6115 1.53 christos /* Set physical address of RX ring (256-byte aligned). */
6116 1.33 christos IWN_WRITE(sc, IWN_FH_RX_BASE, sc->rxq.desc_dma.paddr >> 8);
6117 1.53 christos /* Set physical address of RX status (16-byte aligned). */
6118 1.33 christos IWN_WRITE(sc, IWN_FH_STATUS_WPTR, sc->rxq.stat_dma.paddr >> 4);
6119 1.33 christos /* Enable RX. */
6120 1.33 christos IWN_WRITE(sc, IWN_FH_RX_CONFIG,
6121 1.40 christos IWN_FH_RX_CONFIG_ENA |
6122 1.33 christos IWN_FH_RX_CONFIG_IGN_RXF_EMPTY | /* HW bug workaround */
6123 1.33 christos IWN_FH_RX_CONFIG_IRQ_DST_HOST |
6124 1.33 christos IWN_FH_RX_CONFIG_SINGLE_FRAME |
6125 1.33 christos IWN_FH_RX_CONFIG_RB_TIMEOUT(0) |
6126 1.33 christos IWN_FH_RX_CONFIG_NRBD(IWN_RX_RING_COUNT_LOG));
6127 1.33 christos iwn_nic_unlock(sc);
6128 1.33 christos IWN_WRITE(sc, IWN_FH_RX_WPTR, (IWN_RX_RING_COUNT - 1) & ~7);
6129 1.1 ober
6130 1.33 christos if ((error = iwn_nic_lock(sc)) != 0)
6131 1.33 christos return error;
6132 1.1 ober
6133 1.33 christos /* Initialize TX scheduler. */
6134 1.53 christos iwn_prph_write(sc, sc->sched_txfact_addr, 0);
6135 1.1 ober
6136 1.53 christos /* Set physical address of "keep warm" page (16-byte aligned). */
6137 1.33 christos IWN_WRITE(sc, IWN_FH_KW_ADDR, sc->kw_dma.paddr >> 4);
6138 1.1 ober
6139 1.33 christos /* Initialize TX rings. */
6140 1.53 christos for (qid = 0; qid < sc->ntxqs; qid++) {
6141 1.1 ober struct iwn_tx_ring *txq = &sc->txq[qid];
6142 1.33 christos
6143 1.53 christos /* Set physical address of TX ring (256-byte aligned). */
6144 1.33 christos IWN_WRITE(sc, IWN_FH_CBBC_QUEUE(qid),
6145 1.33 christos txq->desc_dma.paddr >> 8);
6146 1.40 christos }
6147 1.40 christos iwn_nic_unlock(sc);
6148 1.40 christos
6149 1.40 christos /* Enable DMA channels. */
6150 1.53 christos for (chnl = 0; chnl < sc->ndmachnls; chnl++) {
6151 1.40 christos IWN_WRITE(sc, IWN_FH_TX_CONFIG(chnl),
6152 1.33 christos IWN_FH_TX_CONFIG_DMA_ENA |
6153 1.33 christos IWN_FH_TX_CONFIG_DMA_CREDIT_ENA);
6154 1.33 christos }
6155 1.33 christos
6156 1.33 christos /* Clear "radio off" and "commands blocked" bits. */
6157 1.33 christos IWN_WRITE(sc, IWN_UCODE_GP1_CLR, IWN_UCODE_GP1_RFKILL);
6158 1.33 christos IWN_WRITE(sc, IWN_UCODE_GP1_CLR, IWN_UCODE_GP1_CMD_BLOCKED);
6159 1.33 christos
6160 1.33 christos /* Clear pending interrupts. */
6161 1.33 christos IWN_WRITE(sc, IWN_INT, 0xffffffff);
6162 1.33 christos /* Enable interrupt coalescing. */
6163 1.33 christos IWN_WRITE(sc, IWN_INT_COALESCING, 512 / 8);
6164 1.33 christos /* Enable interrupts. */
6165 1.40 christos IWN_WRITE(sc, IWN_INT_MASK, sc->int_mask);
6166 1.33 christos
6167 1.33 christos /* _Really_ make sure "radio off" bit is cleared! */
6168 1.33 christos IWN_WRITE(sc, IWN_UCODE_GP1_CLR, IWN_UCODE_GP1_RFKILL);
6169 1.33 christos IWN_WRITE(sc, IWN_UCODE_GP1_CLR, IWN_UCODE_GP1_RFKILL);
6170 1.33 christos
6171 1.53 christos /* Enable shadow registers. */
6172 1.53 christos if (sc->hw_type >= IWN_HW_REV_TYPE_6000)
6173 1.53 christos IWN_SETBITS(sc, IWN_SHADOW_REG_CTRL, 0x800fffff);
6174 1.53 christos
6175 1.53 christos if ((error = ops->load_firmware(sc)) != 0) {
6176 1.40 christos aprint_error_dev(sc->sc_dev,
6177 1.40 christos "could not load firmware\n");
6178 1.33 christos return error;
6179 1.33 christos }
6180 1.33 christos /* Wait at most one second for firmware alive notification. */
6181 1.33 christos if ((error = tsleep(sc, PCATCH, "iwninit", hz)) != 0) {
6182 1.33 christos aprint_error_dev(sc->sc_dev,
6183 1.40 christos "timeout waiting for adapter to initialize\n");
6184 1.33 christos return error;
6185 1.33 christos }
6186 1.33 christos /* Do post-firmware initialization. */
6187 1.53 christos return ops->post_alive(sc);
6188 1.33 christos }
6189 1.33 christos
6190 1.33 christos static void
6191 1.33 christos iwn_hw_stop(struct iwn_softc *sc)
6192 1.33 christos {
6193 1.40 christos int chnl, qid, ntries;
6194 1.33 christos
6195 1.33 christos IWN_WRITE(sc, IWN_RESET, IWN_RESET_NEVO);
6196 1.33 christos
6197 1.33 christos /* Disable interrupts. */
6198 1.40 christos IWN_WRITE(sc, IWN_INT_MASK, 0);
6199 1.33 christos IWN_WRITE(sc, IWN_INT, 0xffffffff);
6200 1.33 christos IWN_WRITE(sc, IWN_FH_INT, 0xffffffff);
6201 1.40 christos sc->sc_flags &= ~IWN_FLAG_USE_ICT;
6202 1.33 christos
6203 1.33 christos /* Make sure we no longer hold the NIC lock. */
6204 1.33 christos iwn_nic_unlock(sc);
6205 1.33 christos
6206 1.33 christos /* Stop TX scheduler. */
6207 1.53 christos iwn_prph_write(sc, sc->sched_txfact_addr, 0);
6208 1.33 christos
6209 1.40 christos /* Stop all DMA channels. */
6210 1.40 christos if (iwn_nic_lock(sc) == 0) {
6211 1.53 christos for (chnl = 0; chnl < sc->ndmachnls; chnl++) {
6212 1.40 christos IWN_WRITE(sc, IWN_FH_TX_CONFIG(chnl), 0);
6213 1.40 christos for (ntries = 0; ntries < 200; ntries++) {
6214 1.53 christos if (IWN_READ(sc, IWN_FH_TX_STATUS) &
6215 1.40 christos IWN_FH_TX_STATUS_IDLE(chnl))
6216 1.40 christos break;
6217 1.40 christos DELAY(10);
6218 1.40 christos }
6219 1.40 christos }
6220 1.40 christos iwn_nic_unlock(sc);
6221 1.40 christos }
6222 1.33 christos
6223 1.33 christos /* Stop RX ring. */
6224 1.33 christos iwn_reset_rx_ring(sc, &sc->rxq);
6225 1.33 christos
6226 1.40 christos /* Reset all TX rings. */
6227 1.53 christos for (qid = 0; qid < sc->ntxqs; qid++)
6228 1.40 christos iwn_reset_tx_ring(sc, &sc->txq[qid]);
6229 1.40 christos
6230 1.33 christos if (iwn_nic_lock(sc) == 0) {
6231 1.40 christos iwn_prph_write(sc, IWN_APMG_CLK_DIS,
6232 1.40 christos IWN_APMG_CLK_CTRL_DMA_CLK_RQT);
6233 1.33 christos iwn_nic_unlock(sc);
6234 1.1 ober }
6235 1.33 christos DELAY(5);
6236 1.33 christos /* Power OFF adapter. */
6237 1.33 christos iwn_apm_stop(sc);
6238 1.33 christos }
6239 1.33 christos
6240 1.33 christos static int
6241 1.33 christos iwn_init(struct ifnet *ifp)
6242 1.33 christos {
6243 1.33 christos struct iwn_softc *sc = ifp->if_softc;
6244 1.33 christos struct ieee80211com *ic = &sc->sc_ic;
6245 1.33 christos int error;
6246 1.1 ober
6247 1.48 christos mutex_enter(&sc->sc_mtx);
6248 1.47 christos if (sc->sc_flags & IWN_FLAG_HW_INITED)
6249 1.49 christos goto out;
6250 1.40 christos if ((error = iwn_hw_prepare(sc)) != 0) {
6251 1.40 christos aprint_error_dev(sc->sc_dev,
6252 1.40 christos "hardware not ready\n");
6253 1.40 christos goto fail;
6254 1.40 christos }
6255 1.40 christos
6256 1.33 christos /* Check that the radio is not disabled by hardware switch. */
6257 1.33 christos if (!(IWN_READ(sc, IWN_GP_CNTRL) & IWN_GP_CNTRL_RFKILL)) {
6258 1.33 christos aprint_error_dev(sc->sc_dev,
6259 1.33 christos "radio is disabled by hardware switch\n");
6260 1.33 christos error = EPERM; /* :-) */
6261 1.33 christos goto fail;
6262 1.1 ober }
6263 1.28 blymn
6264 1.33 christos /* Read firmware images from the filesystem. */
6265 1.33 christos if ((error = iwn_read_firmware(sc)) != 0) {
6266 1.40 christos aprint_error_dev(sc->sc_dev,
6267 1.40 christos "could not read firmware\n");
6268 1.33 christos goto fail;
6269 1.1 ober }
6270 1.1 ober
6271 1.40 christos /* Initialize interrupt mask to default value. */
6272 1.40 christos sc->int_mask = IWN_INT_MASK_DEF;
6273 1.40 christos sc->sc_flags &= ~IWN_FLAG_USE_ICT;
6274 1.40 christos
6275 1.33 christos /* Initialize hardware and upload firmware. */
6276 1.46 christos KASSERT(sc->fw.data != NULL && sc->fw.size > 0);
6277 1.33 christos error = iwn_hw_init(sc);
6278 1.46 christos firmware_free(sc->fw.data, sc->fw.size);
6279 1.42 christos sc->fw.data = NULL;
6280 1.46 christos sc->fw.size = 0;
6281 1.33 christos if (error != 0) {
6282 1.40 christos aprint_error_dev(sc->sc_dev,
6283 1.40 christos "could not initialize hardware\n");
6284 1.33 christos goto fail;
6285 1.33 christos }
6286 1.8 blymn
6287 1.33 christos /* Configure adapter now that it is ready. */
6288 1.1 ober if ((error = iwn_config(sc)) != 0) {
6289 1.40 christos aprint_error_dev(sc->sc_dev,
6290 1.40 christos "could not configure device\n");
6291 1.33 christos goto fail;
6292 1.1 ober }
6293 1.1 ober
6294 1.1 ober ifp->if_flags &= ~IFF_OACTIVE;
6295 1.1 ober ifp->if_flags |= IFF_RUNNING;
6296 1.1 ober
6297 1.40 christos if (ic->ic_opmode != IEEE80211_M_MONITOR)
6298 1.40 christos ieee80211_begin_scan(ic, 0);
6299 1.40 christos else
6300 1.1 ober ieee80211_new_state(ic, IEEE80211_S_RUN, -1);
6301 1.1 ober
6302 1.47 christos sc->sc_flags |= IWN_FLAG_HW_INITED;
6303 1.49 christos out:
6304 1.48 christos mutex_exit(&sc->sc_mtx);
6305 1.1 ober return 0;
6306 1.1 ober
6307 1.48 christos fail: mutex_exit(&sc->sc_mtx);
6308 1.47 christos iwn_stop(ifp, 1);
6309 1.1 ober return error;
6310 1.1 ober }
6311 1.1 ober
6312 1.1 ober static void
6313 1.1 ober iwn_stop(struct ifnet *ifp, int disable)
6314 1.1 ober {
6315 1.1 ober struct iwn_softc *sc = ifp->if_softc;
6316 1.1 ober struct ieee80211com *ic = &sc->sc_ic;
6317 1.1 ober
6318 1.50 christos if (!disable)
6319 1.50 christos mutex_enter(&sc->sc_mtx);
6320 1.47 christos sc->sc_flags &= ~IWN_FLAG_HW_INITED;
6321 1.1 ober ifp->if_timer = sc->sc_tx_timer = 0;
6322 1.1 ober ifp->if_flags &= ~(IFF_RUNNING | IFF_OACTIVE);
6323 1.1 ober
6324 1.1 ober ieee80211_new_state(ic, IEEE80211_S_INIT, -1);
6325 1.1 ober
6326 1.33 christos /* Power OFF hardware. */
6327 1.33 christos iwn_hw_stop(sc);
6328 1.1 ober
6329 1.50 christos if (!disable)
6330 1.50 christos mutex_exit(&sc->sc_mtx);
6331 1.40 christos }
6332 1.40 christos
6333 1.44 christos /*
6334 1.44 christos * XXX MCLGETI alternative
6335 1.44 christos *
6336 1.44 christos * With IWN_USE_RBUF defined it uses the rbuf cache for receive buffers
6337 1.44 christos * as long as there are available free buffers then it uses MEXTMALLOC.,
6338 1.44 christos * Without IWN_USE_RBUF defined it uses MEXTMALLOC exclusively.
6339 1.44 christos * The MCLGET4K code is used for testing an alternative mbuf cache.
6340 1.44 christos */
6341 1.44 christos
6342 1.40 christos static struct mbuf *
6343 1.40 christos MCLGETIalt(struct iwn_softc *sc, int how,
6344 1.40 christos struct ifnet *ifp __unused, u_int size)
6345 1.40 christos {
6346 1.40 christos struct mbuf *m;
6347 1.40 christos #ifdef IWN_USE_RBUF
6348 1.40 christos struct iwn_rbuf *rbuf;
6349 1.40 christos #endif
6350 1.40 christos
6351 1.40 christos MGETHDR(m, how, MT_DATA);
6352 1.40 christos if (m == NULL)
6353 1.40 christos return NULL;
6354 1.40 christos
6355 1.40 christos #ifdef IWN_USE_RBUF
6356 1.40 christos if (sc->rxq.nb_free_entries > 0 &&
6357 1.40 christos (rbuf = iwn_alloc_rbuf(sc)) != NULL) {
6358 1.40 christos /* Attach buffer to mbuf header. */
6359 1.40 christos MEXTADD(m, rbuf->vaddr, size, 0, iwn_free_rbuf, rbuf);
6360 1.40 christos m->m_flags |= M_EXT_RW;
6361 1.40 christos }
6362 1.40 christos else {
6363 1.40 christos MEXTMALLOC(m, size, how);
6364 1.40 christos if ((m->m_flags & M_EXT) == 0) {
6365 1.40 christos m_freem(m);
6366 1.40 christos return NULL;
6367 1.40 christos }
6368 1.40 christos }
6369 1.40 christos
6370 1.40 christos #else
6371 1.40 christos #ifdef MCLGET4K
6372 1.40 christos if (size == 4096)
6373 1.40 christos MCLGET4K(m, how);
6374 1.40 christos else
6375 1.40 christos panic("size must be 4k");
6376 1.40 christos #else
6377 1.40 christos MEXTMALLOC(m, size, how);
6378 1.40 christos #endif
6379 1.40 christos if ((m->m_flags & M_EXT) == 0) {
6380 1.40 christos m_freem(m);
6381 1.40 christos return NULL;
6382 1.40 christos }
6383 1.40 christos #endif
6384 1.40 christos
6385 1.40 christos return m;
6386 1.40 christos }
6387 1.40 christos
6388 1.40 christos #ifdef IWN_USE_RBUF
6389 1.40 christos static struct iwn_rbuf *
6390 1.40 christos iwn_alloc_rbuf(struct iwn_softc *sc)
6391 1.40 christos {
6392 1.40 christos struct iwn_rbuf *rbuf;
6393 1.40 christos mutex_enter(&sc->rxq.freelist_mtx);
6394 1.40 christos
6395 1.40 christos rbuf = SLIST_FIRST(&sc->rxq.freelist);
6396 1.40 christos if (rbuf != NULL) {
6397 1.40 christos SLIST_REMOVE_HEAD(&sc->rxq.freelist, next);
6398 1.40 christos sc->rxq.nb_free_entries --;
6399 1.40 christos }
6400 1.40 christos mutex_exit(&sc->rxq.freelist_mtx);
6401 1.40 christos return rbuf;
6402 1.40 christos }
6403 1.40 christos
6404 1.40 christos /*
6405 1.40 christos * This is called automatically by the network stack when the mbuf to which
6406 1.40 christos * our RX buffer is attached is freed.
6407 1.40 christos */
6408 1.40 christos static void
6409 1.40 christos iwn_free_rbuf(struct mbuf* m, void *buf, size_t size, void *arg)
6410 1.40 christos {
6411 1.40 christos struct iwn_rbuf *rbuf = arg;
6412 1.40 christos struct iwn_softc *sc = rbuf->sc;
6413 1.40 christos
6414 1.40 christos /* Put the RX buffer back in the free list. */
6415 1.40 christos mutex_enter(&sc->rxq.freelist_mtx);
6416 1.40 christos SLIST_INSERT_HEAD(&sc->rxq.freelist, rbuf, next);
6417 1.40 christos mutex_exit(&sc->rxq.freelist_mtx);
6418 1.40 christos
6419 1.40 christos sc->rxq.nb_free_entries ++;
6420 1.40 christos if (__predict_true(m != NULL))
6421 1.40 christos pool_cache_put(mb_cache, m);
6422 1.40 christos }
6423 1.40 christos
6424 1.40 christos static int
6425 1.40 christos iwn_alloc_rpool(struct iwn_softc *sc)
6426 1.40 christos {
6427 1.40 christos struct iwn_rx_ring *ring = &sc->rxq;
6428 1.40 christos struct iwn_rbuf *rbuf;
6429 1.40 christos int i, error;
6430 1.40 christos
6431 1.40 christos mutex_init(&ring->freelist_mtx, MUTEX_DEFAULT, IPL_NET);
6432 1.40 christos
6433 1.40 christos /* Allocate a big chunk of DMA'able memory... */
6434 1.40 christos error = iwn_dma_contig_alloc(sc->sc_dmat, &ring->buf_dma, NULL,
6435 1.40 christos IWN_RBUF_COUNT * IWN_RBUF_SIZE, PAGE_SIZE);
6436 1.40 christos if (error != 0) {
6437 1.40 christos aprint_error_dev(sc->sc_dev,
6438 1.40 christos "could not allocate RX buffers DMA memory\n");
6439 1.40 christos return error;
6440 1.40 christos }
6441 1.40 christos /* ...and split it into chunks of IWN_RBUF_SIZE bytes. */
6442 1.40 christos SLIST_INIT(&ring->freelist);
6443 1.40 christos for (i = 0; i < IWN_RBUF_COUNT; i++) {
6444 1.40 christos rbuf = &ring->rbuf[i];
6445 1.40 christos
6446 1.40 christos rbuf->sc = sc; /* Backpointer for callbacks. */
6447 1.40 christos rbuf->vaddr = (void *)((vaddr_t)ring->buf_dma.vaddr + i * IWN_RBUF_SIZE);
6448 1.40 christos rbuf->paddr = ring->buf_dma.paddr + i * IWN_RBUF_SIZE;
6449 1.40 christos
6450 1.40 christos SLIST_INSERT_HEAD(&ring->freelist, rbuf, next);
6451 1.40 christos }
6452 1.40 christos ring->nb_free_entries = IWN_RBUF_COUNT;
6453 1.40 christos return 0;
6454 1.40 christos }
6455 1.40 christos
6456 1.40 christos static void
6457 1.40 christos iwn_free_rpool(struct iwn_softc *sc)
6458 1.40 christos {
6459 1.40 christos iwn_dma_contig_free(&sc->rxq.buf_dma);
6460 1.40 christos }
6461 1.33 christos #endif
6462 1.40 christos
6463 1.40 christos /*
6464 1.40 christos * XXX: Hack to set the current channel to the value advertised in beacons or
6465 1.40 christos * probe responses. Only used during AP detection.
6466 1.40 christos * XXX: Duplicated from if_iwi.c
6467 1.40 christos */
6468 1.40 christos static void
6469 1.76 nonaka iwn_fix_channel(struct ieee80211com *ic, struct mbuf *m,
6470 1.76 nonaka struct iwn_rx_stat *stat)
6471 1.1 ober {
6472 1.76 nonaka struct iwn_softc *sc = ic->ic_ifp->if_softc;
6473 1.40 christos struct ieee80211_frame *wh;
6474 1.40 christos uint8_t subtype;
6475 1.40 christos uint8_t *frm, *efrm;
6476 1.40 christos
6477 1.40 christos wh = mtod(m, struct ieee80211_frame *);
6478 1.40 christos
6479 1.40 christos if ((wh->i_fc[0] & IEEE80211_FC0_TYPE_MASK) != IEEE80211_FC0_TYPE_MGT)
6480 1.40 christos return;
6481 1.40 christos
6482 1.40 christos subtype = wh->i_fc[0] & IEEE80211_FC0_SUBTYPE_MASK;
6483 1.40 christos
6484 1.40 christos if (subtype != IEEE80211_FC0_SUBTYPE_BEACON &&
6485 1.40 christos subtype != IEEE80211_FC0_SUBTYPE_PROBE_RESP)
6486 1.40 christos return;
6487 1.40 christos
6488 1.76 nonaka if (sc->sc_flags & IWN_FLAG_SCANNING_5GHZ) {
6489 1.76 nonaka int chan = le16toh(stat->chan);
6490 1.76 nonaka if (chan < __arraycount(ic->ic_channels))
6491 1.76 nonaka ic->ic_curchan = &ic->ic_channels[chan];
6492 1.76 nonaka return;
6493 1.76 nonaka }
6494 1.76 nonaka
6495 1.40 christos frm = (uint8_t *)(wh + 1);
6496 1.40 christos efrm = mtod(m, uint8_t *) + m->m_len;
6497 1.1 ober
6498 1.40 christos frm += 12; /* skip tstamp, bintval and capinfo fields */
6499 1.40 christos while (frm < efrm) {
6500 1.40 christos if (*frm == IEEE80211_ELEMID_DSPARMS)
6501 1.40 christos #if IEEE80211_CHAN_MAX < 255
6502 1.40 christos if (frm[2] <= IEEE80211_CHAN_MAX)
6503 1.33 christos #endif
6504 1.40 christos ic->ic_curchan = &ic->ic_channels[frm[2]];
6505 1.1 ober
6506 1.40 christos frm += frm[1] + 2;
6507 1.40 christos }
6508 1.1 ober }
6509 1.40 christos
6510 1.67 prlw1 #ifdef notyetMODULE
6511 1.67 prlw1
6512 1.67 prlw1 MODULE(MODULE_CLASS_DRIVER, if_iwn, "pci");
6513 1.67 prlw1
6514 1.67 prlw1 #ifdef _MODULE
6515 1.67 prlw1 #include "ioconf.c"
6516 1.67 prlw1 #endif
6517 1.67 prlw1
6518 1.67 prlw1 static int
6519 1.67 prlw1 if_iwn_modcmd(modcmd_t cmd, void *data)
6520 1.67 prlw1 {
6521 1.67 prlw1 int error = 0;
6522 1.67 prlw1
6523 1.67 prlw1 switch (cmd) {
6524 1.67 prlw1 case MODULE_CMD_INIT:
6525 1.67 prlw1 #ifdef _MODULE
6526 1.67 prlw1 error = config_init_component(cfdriver_ioconf_if_iwn,
6527 1.67 prlw1 cfattach_ioconf_if_iwn, cfdata_ioconf_if_iwn);
6528 1.67 prlw1 #endif
6529 1.67 prlw1 return error;
6530 1.67 prlw1 case MODULE_CMD_FINI:
6531 1.67 prlw1 #ifdef _MODULE
6532 1.67 prlw1 error = config_fini_component(cfdriver_ioconf_if_iwn,
6533 1.67 prlw1 cfattach_ioconf_if_iwn, cfdata_ioconf_if_iwn);
6534 1.67 prlw1 #endif
6535 1.67 prlw1 return error;
6536 1.67 prlw1 case MODULE_CMD_AUTOUNLOAD:
6537 1.67 prlw1 #ifdef _MODULE
6538 1.67 prlw1 /* XXX This is not optional! */
6539 1.67 prlw1 #endif
6540 1.67 prlw1 return error;
6541 1.67 prlw1 default:
6542 1.67 prlw1 return ENOTTY;
6543 1.67 prlw1 }
6544 1.67 prlw1 }
6545 1.67 prlw1 #endif
6546