bwfm.c revision 1.36 1 1.36 gutterid /* $NetBSD: bwfm.c,v 1.36 2023/12/31 21:32:43 gutteridge Exp $ */
2 1.1 jmcneill /* $OpenBSD: bwfm.c,v 1.5 2017/10/16 22:27:16 patrick Exp $ */
3 1.1 jmcneill /*
4 1.1 jmcneill * Copyright (c) 2010-2016 Broadcom Corporation
5 1.1 jmcneill * Copyright (c) 2016,2017 Patrick Wildt <patrick (at) blueri.se>
6 1.1 jmcneill *
7 1.1 jmcneill * Permission to use, copy, modify, and/or distribute this software for any
8 1.1 jmcneill * purpose with or without fee is hereby granted, provided that the above
9 1.1 jmcneill * copyright notice and this permission notice appear in all copies.
10 1.1 jmcneill *
11 1.1 jmcneill * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES
12 1.1 jmcneill * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF
13 1.1 jmcneill * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR
14 1.1 jmcneill * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
15 1.1 jmcneill * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN
16 1.1 jmcneill * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF
17 1.1 jmcneill * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
18 1.1 jmcneill */
19 1.1 jmcneill
20 1.1 jmcneill #include <sys/param.h>
21 1.27 riastrad #include <sys/types.h>
22 1.27 riastrad
23 1.1 jmcneill #include <sys/buf.h>
24 1.27 riastrad #include <sys/device.h>
25 1.1 jmcneill #include <sys/kernel.h>
26 1.27 riastrad #include <sys/kmem.h>
27 1.29 riastrad #include <sys/pool.h>
28 1.1 jmcneill #include <sys/queue.h>
29 1.1 jmcneill #include <sys/socket.h>
30 1.27 riastrad #include <sys/systm.h>
31 1.1 jmcneill #include <sys/workqueue.h>
32 1.1 jmcneill
33 1.1 jmcneill #include <net/bpf.h>
34 1.1 jmcneill #include <net/if.h>
35 1.1 jmcneill #include <net/if_dl.h>
36 1.27 riastrad #include <net/if_ether.h>
37 1.1 jmcneill #include <net/if_media.h>
38 1.1 jmcneill
39 1.1 jmcneill #include <netinet/in.h>
40 1.1 jmcneill
41 1.1 jmcneill #include <net80211/ieee80211_var.h>
42 1.1 jmcneill
43 1.28 riastrad #include <dev/firmload.h>
44 1.28 riastrad
45 1.25 jdolecek #include <dev/ic/bwfmreg.h>
46 1.1 jmcneill #include <dev/ic/bwfmvar.h>
47 1.1 jmcneill
48 1.1 jmcneill /* #define BWFM_DEBUG */
49 1.1 jmcneill #ifdef BWFM_DEBUG
50 1.1 jmcneill #define DPRINTF(x) do { if (bwfm_debug > 0) printf x; } while (0)
51 1.1 jmcneill #define DPRINTFN(n, x) do { if (bwfm_debug >= (n)) printf x; } while (0)
52 1.1 jmcneill static int bwfm_debug = 1;
53 1.1 jmcneill #else
54 1.1 jmcneill #define DPRINTF(x) do { ; } while (0)
55 1.1 jmcneill #define DPRINTFN(n, x) do { ; } while (0)
56 1.1 jmcneill #endif
57 1.1 jmcneill
58 1.1 jmcneill #define DEVNAME(sc) device_xname((sc)->sc_dev)
59 1.1 jmcneill
60 1.1 jmcneill void bwfm_start(struct ifnet *);
61 1.1 jmcneill int bwfm_init(struct ifnet *);
62 1.1 jmcneill void bwfm_stop(struct ifnet *, int);
63 1.1 jmcneill void bwfm_watchdog(struct ifnet *);
64 1.1 jmcneill int bwfm_ioctl(struct ifnet *, u_long, void *);
65 1.1 jmcneill int bwfm_media_change(struct ifnet *);
66 1.1 jmcneill
67 1.1 jmcneill int bwfm_send_mgmt(struct ieee80211com *, struct ieee80211_node *,
68 1.1 jmcneill int, int);
69 1.1 jmcneill void bwfm_recv_mgmt(struct ieee80211com *, struct mbuf *,
70 1.1 jmcneill struct ieee80211_node *, int, int, uint32_t);
71 1.1 jmcneill int bwfm_key_set(struct ieee80211com *, const struct ieee80211_key *,
72 1.35 mrg const uint8_t[IEEE80211_ADDR_LEN]);
73 1.1 jmcneill int bwfm_key_delete(struct ieee80211com *, const struct ieee80211_key *);
74 1.1 jmcneill int bwfm_newstate(struct ieee80211com *, enum ieee80211_state, int);
75 1.1 jmcneill void bwfm_newstate_cb(struct bwfm_softc *, struct bwfm_cmd_newstate *);
76 1.4 jmcneill void bwfm_newassoc(struct ieee80211_node *, int);
77 1.1 jmcneill void bwfm_task(struct work *, void *);
78 1.1 jmcneill
79 1.1 jmcneill int bwfm_chip_attach(struct bwfm_softc *);
80 1.1 jmcneill int bwfm_chip_detach(struct bwfm_softc *, int);
81 1.1 jmcneill struct bwfm_core *bwfm_chip_get_core(struct bwfm_softc *, int);
82 1.1 jmcneill struct bwfm_core *bwfm_chip_get_pmu(struct bwfm_softc *);
83 1.1 jmcneill int bwfm_chip_ai_isup(struct bwfm_softc *, struct bwfm_core *);
84 1.1 jmcneill void bwfm_chip_ai_disable(struct bwfm_softc *, struct bwfm_core *,
85 1.1 jmcneill uint32_t, uint32_t);
86 1.1 jmcneill void bwfm_chip_ai_reset(struct bwfm_softc *, struct bwfm_core *,
87 1.1 jmcneill uint32_t, uint32_t, uint32_t);
88 1.1 jmcneill void bwfm_chip_dmp_erom_scan(struct bwfm_softc *);
89 1.1 jmcneill int bwfm_chip_dmp_get_regaddr(struct bwfm_softc *, uint32_t *,
90 1.1 jmcneill uint32_t *, uint32_t *);
91 1.11 maya int bwfm_chip_cr4_set_active(struct bwfm_softc *, const uint32_t);
92 1.1 jmcneill void bwfm_chip_cr4_set_passive(struct bwfm_softc *);
93 1.11 maya int bwfm_chip_ca7_set_active(struct bwfm_softc *, const uint32_t);
94 1.1 jmcneill void bwfm_chip_ca7_set_passive(struct bwfm_softc *);
95 1.11 maya int bwfm_chip_cm3_set_active(struct bwfm_softc *);
96 1.1 jmcneill void bwfm_chip_cm3_set_passive(struct bwfm_softc *);
97 1.11 maya void bwfm_chip_socram_ramsize(struct bwfm_softc *, struct bwfm_core *);
98 1.11 maya void bwfm_chip_sysmem_ramsize(struct bwfm_softc *, struct bwfm_core *);
99 1.11 maya void bwfm_chip_tcm_ramsize(struct bwfm_softc *, struct bwfm_core *);
100 1.11 maya void bwfm_chip_tcm_rambase(struct bwfm_softc *);
101 1.1 jmcneill
102 1.32 mlelstv void bwfm_process_blob(struct bwfm_softc *, const char *, uint8_t **,
103 1.32 mlelstv size_t *);
104 1.1 jmcneill int bwfm_proto_bcdc_query_dcmd(struct bwfm_softc *, int,
105 1.1 jmcneill int, char *, size_t *);
106 1.1 jmcneill int bwfm_proto_bcdc_set_dcmd(struct bwfm_softc *, int,
107 1.1 jmcneill int, char *, size_t);
108 1.1 jmcneill
109 1.1 jmcneill int bwfm_fwvar_cmd_get_data(struct bwfm_softc *, int, void *, size_t);
110 1.1 jmcneill int bwfm_fwvar_cmd_set_data(struct bwfm_softc *, int, void *, size_t);
111 1.1 jmcneill int bwfm_fwvar_cmd_get_int(struct bwfm_softc *, int, uint32_t *);
112 1.1 jmcneill int bwfm_fwvar_cmd_set_int(struct bwfm_softc *, int, uint32_t);
113 1.1 jmcneill int bwfm_fwvar_var_get_data(struct bwfm_softc *, const char *, void *, size_t);
114 1.1 jmcneill int bwfm_fwvar_var_set_data(struct bwfm_softc *, const char *, void *, size_t);
115 1.1 jmcneill int bwfm_fwvar_var_get_int(struct bwfm_softc *, const char *, uint32_t *);
116 1.1 jmcneill int bwfm_fwvar_var_set_int(struct bwfm_softc *, const char *, uint32_t);
117 1.1 jmcneill
118 1.1 jmcneill struct ieee80211_channel *bwfm_bss2chan(struct bwfm_softc *, struct bwfm_bss_info *);
119 1.1 jmcneill void bwfm_scan(struct bwfm_softc *);
120 1.1 jmcneill void bwfm_connect(struct bwfm_softc *);
121 1.17 jmcneill void bwfm_get_sta_info(struct bwfm_softc *, struct ifmediareq *);
122 1.1 jmcneill
123 1.11 maya void bwfm_rx(struct bwfm_softc *, struct mbuf *);
124 1.15 mlelstv void bwfm_rx_event(struct bwfm_softc *, struct mbuf *);
125 1.15 mlelstv void bwfm_rx_event_cb(struct bwfm_softc *, struct mbuf *);
126 1.1 jmcneill void bwfm_scan_node(struct bwfm_softc *, struct bwfm_bss_info *, size_t);
127 1.1 jmcneill
128 1.23 jdolecek static const uint8_t bwfm_2ghz_channels[] = {
129 1.1 jmcneill 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13,
130 1.1 jmcneill };
131 1.23 jdolecek static const uint8_t bwfm_5ghz_channels[] = {
132 1.1 jmcneill 34, 36, 38, 40, 42, 44, 46, 48, 52, 56, 60, 64, 100, 104, 108, 112,
133 1.1 jmcneill 116, 120, 124, 128, 132, 136, 140, 144, 149, 153, 157, 161, 165,
134 1.1 jmcneill };
135 1.1 jmcneill
136 1.23 jdolecek const struct bwfm_proto_ops bwfm_proto_bcdc_ops = {
137 1.1 jmcneill .proto_query_dcmd = bwfm_proto_bcdc_query_dcmd,
138 1.1 jmcneill .proto_set_dcmd = bwfm_proto_bcdc_set_dcmd,
139 1.1 jmcneill };
140 1.1 jmcneill
141 1.21 thorpej static const struct {
142 1.21 thorpej const char *suffix;
143 1.21 thorpej const char *description;
144 1.21 thorpej } bwfm_firmware_filetypes[] = {
145 1.21 thorpej [BWFM_FILETYPE_UCODE] = {
146 1.21 thorpej .suffix = "bin",
147 1.21 thorpej .description = "Firmware",
148 1.21 thorpej },
149 1.21 thorpej [BWFM_FILETYPE_NVRAM] = {
150 1.21 thorpej .suffix = "txt",
151 1.21 thorpej .description = "NVRAM",
152 1.21 thorpej },
153 1.22 thorpej [BWFM_FILETYPE_CLM] = {
154 1.22 thorpej .suffix = "clm_blob",
155 1.22 thorpej .description = "CLM",
156 1.22 thorpej },
157 1.32 mlelstv [BWFM_FILETYPE_TXCAP] = {
158 1.32 mlelstv .suffix = "txcap_blob",
159 1.32 mlelstv .description = "TXCAP",
160 1.32 mlelstv },
161 1.32 mlelstv [BWFM_FILETYPE_CAL] = {
162 1.32 mlelstv .suffix = "cal_blob",
163 1.32 mlelstv .description = "CAL",
164 1.32 mlelstv },
165 1.21 thorpej };
166 1.21 thorpej
167 1.21 thorpej static void
168 1.21 thorpej bwfm_firmware_read_file(struct bwfm_softc * const sc,
169 1.21 thorpej const struct bwfm_firmware_selector * const fwp,
170 1.21 thorpej struct bwfm_firmware_context * const ctx,
171 1.21 thorpej unsigned int const which)
172 1.21 thorpej {
173 1.21 thorpej firmware_handle_t fwh;
174 1.21 thorpej char *names[2];
175 1.21 thorpej int i, error;
176 1.21 thorpej
177 1.21 thorpej names[1] = kmem_asprintf("%s.%s", fwp->fwsel_basename,
178 1.21 thorpej bwfm_firmware_filetypes[which].suffix);
179 1.21 thorpej names[0] = ctx->ctx_model ? kmem_asprintf("%s.%s.%s",
180 1.21 thorpej fwp->fwsel_basename, ctx->ctx_model,
181 1.21 thorpej bwfm_firmware_filetypes[which].suffix) : NULL;
182 1.21 thorpej
183 1.21 thorpej aprint_verbose_dev(sc->sc_dev, "%s file default: %s\n",
184 1.21 thorpej bwfm_firmware_filetypes[which].description, names[1]);
185 1.21 thorpej if (names[0]) {
186 1.21 thorpej aprint_verbose_dev(sc->sc_dev, "%s file model-spec: %s\n",
187 1.21 thorpej bwfm_firmware_filetypes[which].description, names[0]);
188 1.21 thorpej }
189 1.21 thorpej
190 1.21 thorpej for (i = 0; i < 2; i++) {
191 1.21 thorpej if (names[i] == NULL)
192 1.21 thorpej continue;
193 1.21 thorpej error = firmware_open("if_bwfm", names[i], &fwh);
194 1.21 thorpej if (error == 0)
195 1.21 thorpej break;
196 1.21 thorpej }
197 1.21 thorpej if (i == 2)
198 1.21 thorpej goto out;
199 1.21 thorpej
200 1.21 thorpej aprint_verbose_dev(sc->sc_dev, "Found %s file: %s\n",
201 1.21 thorpej bwfm_firmware_filetypes[which].description, names[i]);
202 1.21 thorpej
203 1.21 thorpej size_t size = firmware_get_size(fwh);
204 1.21 thorpej void *data = firmware_malloc(size);
205 1.21 thorpej if (data == NULL) {
206 1.21 thorpej aprint_error_dev(sc->sc_dev,
207 1.21 thorpej "unable to allocate %zu bytes for %s image\n", size,
208 1.21 thorpej bwfm_firmware_filetypes[which].description);
209 1.21 thorpej firmware_close(fwh);
210 1.21 thorpej goto out;
211 1.21 thorpej }
212 1.21 thorpej error = firmware_read(fwh, 0, data, size);
213 1.21 thorpej firmware_close(fwh);
214 1.21 thorpej if (error) {
215 1.21 thorpej aprint_error_dev(sc->sc_dev,
216 1.21 thorpej "failed to read %s file, error %d\n",
217 1.21 thorpej bwfm_firmware_filetypes[which].description,
218 1.21 thorpej error);
219 1.21 thorpej firmware_free(data, size);
220 1.21 thorpej goto out;
221 1.21 thorpej }
222 1.21 thorpej
223 1.21 thorpej ctx->ctx_file[which].ctx_f_data = data;
224 1.21 thorpej ctx->ctx_file[which].ctx_f_size = size;
225 1.21 thorpej out:
226 1.21 thorpej for (i = 0; i < 2; i++) {
227 1.21 thorpej if (names[i])
228 1.21 thorpej kmem_free(names[i], strlen(names[i])+1);
229 1.21 thorpej }
230 1.21 thorpej }
231 1.21 thorpej
232 1.21 thorpej void
233 1.21 thorpej bwfm_firmware_context_init(struct bwfm_firmware_context * const ctx,
234 1.21 thorpej uint32_t const chip, uint32_t const chiprev, const char * const model,
235 1.21 thorpej uint32_t req)
236 1.21 thorpej {
237 1.21 thorpej memset(ctx, 0, sizeof(*ctx));
238 1.21 thorpej ctx->ctx_chip = chip;
239 1.21 thorpej ctx->ctx_chiprev = chiprev;
240 1.21 thorpej ctx->ctx_model = model;
241 1.21 thorpej
242 1.21 thorpej /* all devices require ucode */
243 1.21 thorpej ctx->ctx_req = req | BWFM_FWREQ(BWFM_FILETYPE_UCODE);
244 1.21 thorpej }
245 1.21 thorpej
246 1.21 thorpej bool
247 1.21 thorpej bwfm_firmware_open(struct bwfm_softc * const sc,
248 1.21 thorpej const struct bwfm_firmware_selector * const fwtab,
249 1.21 thorpej struct bwfm_firmware_context * const ctx)
250 1.21 thorpej {
251 1.21 thorpej const struct bwfm_firmware_selector *fwp;
252 1.21 thorpej unsigned int i;
253 1.21 thorpej
254 1.21 thorpej KASSERT(fwtab != NULL);
255 1.21 thorpej KASSERT(ctx != NULL);
256 1.21 thorpej
257 1.21 thorpej /* First locate the appropriate entry for this chip / rev. */
258 1.21 thorpej for (fwp = fwtab; fwp->fwsel_basename != NULL; fwp++) {
259 1.21 thorpej if (fwp->fwsel_chip == ctx->ctx_chip &&
260 1.21 thorpej fwp->fwsel_revmask & __BIT(ctx->ctx_chiprev))
261 1.21 thorpej break;
262 1.21 thorpej }
263 1.21 thorpej if (fwp->fwsel_basename == NULL) {
264 1.21 thorpej aprint_error_dev(sc->sc_dev,
265 1.21 thorpej "No firmware entry for chip 0x%x/%u rev %u model %s\n",
266 1.21 thorpej ctx->ctx_chip, ctx->ctx_chip, ctx->ctx_chiprev,
267 1.21 thorpej ctx->ctx_model);
268 1.21 thorpej return false;
269 1.21 thorpej }
270 1.21 thorpej
271 1.21 thorpej bool rv = true;
272 1.21 thorpej
273 1.21 thorpej /*
274 1.21 thorpej * Read in each file that the front-end has requested as
275 1.21 thorpej * either required or optional.
276 1.21 thorpej */
277 1.21 thorpej for (i = 0; i < BWFM_NFILETYPES; i++) {
278 1.21 thorpej if (ctx->ctx_req & (BWFM_FWREQ(i) | BWFM_FWOPT(i)))
279 1.21 thorpej bwfm_firmware_read_file(sc, fwp, ctx, i);
280 1.21 thorpej if ((ctx->ctx_req & BWFM_FWREQ(i)) &&
281 1.21 thorpej ctx->ctx_file[i].ctx_f_data == NULL) {
282 1.21 thorpej aprint_error_dev(sc->sc_dev,
283 1.21 thorpej "%s file not available\n",
284 1.21 thorpej bwfm_firmware_filetypes[i].description);
285 1.21 thorpej rv = false;
286 1.21 thorpej }
287 1.21 thorpej }
288 1.21 thorpej
289 1.21 thorpej if (rv == false)
290 1.21 thorpej bwfm_firmware_close(ctx);
291 1.21 thorpej
292 1.21 thorpej return rv;
293 1.21 thorpej }
294 1.21 thorpej
295 1.21 thorpej void
296 1.21 thorpej bwfm_firmware_close(struct bwfm_firmware_context * const ctx)
297 1.21 thorpej {
298 1.21 thorpej for (int i = 0; i < BWFM_NFILETYPES; i++) {
299 1.21 thorpej if (ctx->ctx_file[i].ctx_f_data == NULL)
300 1.21 thorpej continue;
301 1.21 thorpej firmware_free(ctx->ctx_file[i].ctx_f_data,
302 1.21 thorpej ctx->ctx_file[i].ctx_f_size);
303 1.21 thorpej ctx->ctx_file[i].ctx_f_data = NULL;
304 1.21 thorpej }
305 1.21 thorpej }
306 1.21 thorpej
307 1.21 thorpej void *
308 1.21 thorpej bwfm_firmware_data(struct bwfm_firmware_context * const ctx,
309 1.21 thorpej unsigned int const which, size_t *sizep)
310 1.21 thorpej {
311 1.21 thorpej KASSERT(which < BWFM_NFILETYPES);
312 1.21 thorpej KASSERT(sizep != NULL);
313 1.21 thorpej
314 1.21 thorpej *sizep = ctx->ctx_file[which].ctx_f_size;
315 1.21 thorpej return ctx->ctx_file[which].ctx_f_data;
316 1.21 thorpej }
317 1.21 thorpej
318 1.21 thorpej const char *
319 1.21 thorpej bwfm_firmware_description(unsigned int const which)
320 1.21 thorpej {
321 1.21 thorpej KASSERT(which < BWFM_NFILETYPES);
322 1.21 thorpej
323 1.21 thorpej return bwfm_firmware_filetypes[which].description;
324 1.21 thorpej }
325 1.21 thorpej
326 1.1 jmcneill void
327 1.1 jmcneill bwfm_attach(struct bwfm_softc *sc)
328 1.1 jmcneill {
329 1.1 jmcneill struct ieee80211com *ic = &sc->sc_ic;
330 1.1 jmcneill struct ifnet *ifp = &sc->sc_if;
331 1.1 jmcneill char fw_version[BWFM_DCMD_SMLEN];
332 1.1 jmcneill uint32_t bandlist[3];
333 1.32 mlelstv int nmode, vhtmode;
334 1.1 jmcneill uint32_t tmp;
335 1.11 maya int i, j, error;
336 1.1 jmcneill
337 1.1 jmcneill error = workqueue_create(&sc->sc_taskq, DEVNAME(sc),
338 1.16 mlelstv bwfm_task, sc, PRI_NONE, IPL_NET, 0);
339 1.1 jmcneill if (error != 0) {
340 1.1 jmcneill printf("%s: could not create workqueue\n", DEVNAME(sc));
341 1.1 jmcneill return;
342 1.1 jmcneill }
343 1.29 riastrad sc->sc_freetask = pool_cache_init(sizeof(struct bwfm_task), 0, 0, 0,
344 1.29 riastrad "bwfmtask", NULL, IPL_NET /* XXX IPL_SOFTNET? */,
345 1.29 riastrad NULL, NULL, NULL);
346 1.29 riastrad pool_cache_prime(sc->sc_freetask, BWFM_TASK_COUNT);
347 1.1 jmcneill
348 1.5 jmcneill /* Stop the device in case it was previously initialized */
349 1.5 jmcneill bwfm_fwvar_cmd_set_int(sc, BWFM_C_DOWN, 1);
350 1.5 jmcneill
351 1.1 jmcneill if (bwfm_fwvar_cmd_get_int(sc, BWFM_C_GET_VERSION, &tmp)) {
352 1.1 jmcneill printf("%s: could not read io type\n", DEVNAME(sc));
353 1.1 jmcneill return;
354 1.1 jmcneill } else
355 1.1 jmcneill sc->sc_io_type = tmp;
356 1.1 jmcneill if (bwfm_fwvar_var_get_data(sc, "cur_etheraddr", ic->ic_myaddr,
357 1.1 jmcneill sizeof(ic->ic_myaddr))) {
358 1.1 jmcneill printf("%s: could not read mac address\n", DEVNAME(sc));
359 1.1 jmcneill return;
360 1.1 jmcneill }
361 1.1 jmcneill
362 1.32 mlelstv printf("%s: address %s\n", DEVNAME(sc), ether_sprintf(ic->ic_myaddr));
363 1.32 mlelstv
364 1.32 mlelstv bwfm_process_blob(sc, "clmload", &sc->sc_clm, &sc->sc_clmsize);
365 1.32 mlelstv bwfm_process_blob(sc, "txcapload", &sc->sc_txcap, &sc->sc_txcapsize);
366 1.32 mlelstv bwfm_process_blob(sc, "calload", &sc->sc_cal, &sc->sc_calsize);
367 1.32 mlelstv
368 1.1 jmcneill memset(fw_version, 0, sizeof(fw_version));
369 1.1 jmcneill if (bwfm_fwvar_var_get_data(sc, "ver", fw_version, sizeof(fw_version)) == 0)
370 1.1 jmcneill printf("%s: %s", DEVNAME(sc), fw_version);
371 1.1 jmcneill
372 1.1 jmcneill ic->ic_ifp = ifp;
373 1.1 jmcneill ic->ic_phytype = IEEE80211_T_OFDM;
374 1.1 jmcneill ic->ic_opmode = IEEE80211_M_STA;
375 1.1 jmcneill ic->ic_state = IEEE80211_S_INIT;
376 1.1 jmcneill
377 1.1 jmcneill ic->ic_caps =
378 1.1 jmcneill IEEE80211_C_WEP |
379 1.1 jmcneill IEEE80211_C_TKIP |
380 1.1 jmcneill IEEE80211_C_AES |
381 1.1 jmcneill IEEE80211_C_AES_CCM |
382 1.34 mlelstv IEEE80211_C_PMGT |
383 1.1 jmcneill #if notyet
384 1.19 msaitoh IEEE80211_C_MONITOR | /* monitor mode supported */
385 1.1 jmcneill IEEE80211_C_IBSS |
386 1.1 jmcneill IEEE80211_C_TXPMGT |
387 1.1 jmcneill IEEE80211_C_WME |
388 1.1 jmcneill #endif
389 1.1 jmcneill IEEE80211_C_SHSLOT | /* short slot time supported */
390 1.1 jmcneill IEEE80211_C_SHPREAMBLE | /* short preamble supported */
391 1.1 jmcneill IEEE80211_C_WPA | /* 802.11i */
392 1.1 jmcneill /* IEEE80211_C_WPA_4WAY */0; /* WPA 4-way handshake in hw */
393 1.1 jmcneill
394 1.1 jmcneill /* IBSS channel undefined for now. */
395 1.1 jmcneill ic->ic_ibss_chan = &ic->ic_channels[0];
396 1.1 jmcneill
397 1.32 mlelstv if (bwfm_fwvar_var_get_int(sc, "nmode", &nmode))
398 1.32 mlelstv nmode = 0;
399 1.32 mlelstv if (bwfm_fwvar_var_get_int(sc, "vhtmode", &vhtmode))
400 1.32 mlelstv vhtmode = 0;
401 1.1 jmcneill if (bwfm_fwvar_cmd_get_data(sc, BWFM_C_GET_BANDLIST, bandlist,
402 1.1 jmcneill sizeof(bandlist))) {
403 1.1 jmcneill printf("%s: couldn't get supported band list\n", DEVNAME(sc));
404 1.1 jmcneill return;
405 1.27 riastrad }
406 1.1 jmcneill const u_int nbands = le32toh(bandlist[0]);
407 1.1 jmcneill for (i = 1; i <= MIN(nbands, __arraycount(bandlist) - 1); i++) {
408 1.1 jmcneill switch (le32toh(bandlist[i])) {
409 1.1 jmcneill case BWFM_BAND_2G:
410 1.1 jmcneill ic->ic_sup_rates[IEEE80211_MODE_11B] = ieee80211_std_rateset_11b;
411 1.1 jmcneill ic->ic_sup_rates[IEEE80211_MODE_11G] = ieee80211_std_rateset_11g;
412 1.1 jmcneill
413 1.11 maya for (j = 0; j < __arraycount(bwfm_2ghz_channels); j++) {
414 1.11 maya uint8_t chan = bwfm_2ghz_channels[j];
415 1.1 jmcneill ic->ic_channels[chan].ic_freq =
416 1.1 jmcneill ieee80211_ieee2mhz(chan, IEEE80211_CHAN_2GHZ);
417 1.1 jmcneill ic->ic_channels[chan].ic_flags =
418 1.1 jmcneill IEEE80211_CHAN_CCK | IEEE80211_CHAN_OFDM |
419 1.1 jmcneill IEEE80211_CHAN_DYN | IEEE80211_CHAN_2GHZ;
420 1.32 mlelstv if (nmode)
421 1.32 mlelstv ic->ic_channels[chan].ic_flags |=
422 1.32 mlelstv IEEE80211_CHAN_HT;
423 1.1 jmcneill }
424 1.1 jmcneill break;
425 1.1 jmcneill case BWFM_BAND_5G:
426 1.1 jmcneill ic->ic_sup_rates[IEEE80211_MODE_11A] = ieee80211_std_rateset_11a;
427 1.1 jmcneill
428 1.11 maya for (j = 0; j < __arraycount(bwfm_5ghz_channels); j++) {
429 1.11 maya uint8_t chan = bwfm_5ghz_channels[j];
430 1.1 jmcneill ic->ic_channels[chan].ic_freq =
431 1.1 jmcneill ieee80211_ieee2mhz(chan, IEEE80211_CHAN_5GHZ);
432 1.1 jmcneill ic->ic_channels[chan].ic_flags =
433 1.1 jmcneill IEEE80211_CHAN_A;
434 1.32 mlelstv if (nmode)
435 1.32 mlelstv ic->ic_channels[chan].ic_flags |=
436 1.32 mlelstv IEEE80211_CHAN_HT;
437 1.32 mlelstv if (vhtmode)
438 1.32 mlelstv ic->ic_channels[chan].ic_flags |=
439 1.32 mlelstv IEEE80211_CHAN_VHT;
440 1.1 jmcneill }
441 1.1 jmcneill break;
442 1.32 mlelstv default:
443 1.32 mlelstv printf("%s: unsupported band 0x%x\n", DEVNAME(sc),
444 1.32 mlelstv le32toh(bandlist[i]));
445 1.32 mlelstv break;
446 1.1 jmcneill }
447 1.1 jmcneill }
448 1.1 jmcneill
449 1.1 jmcneill ifp->if_softc = sc;
450 1.1 jmcneill ifp->if_flags = IFF_BROADCAST | IFF_SIMPLEX | IFF_MULTICAST;
451 1.1 jmcneill ifp->if_init = bwfm_init;
452 1.1 jmcneill ifp->if_ioctl = bwfm_ioctl;
453 1.1 jmcneill ifp->if_start = bwfm_start;
454 1.14 maya ifp->if_stop = bwfm_stop;
455 1.1 jmcneill ifp->if_watchdog = bwfm_watchdog;
456 1.1 jmcneill IFQ_SET_READY(&ifp->if_snd);
457 1.1 jmcneill memcpy(ifp->if_xname, DEVNAME(sc), IFNAMSIZ);
458 1.1 jmcneill
459 1.31 riastrad if_initialize(ifp);
460 1.1 jmcneill ieee80211_ifattach(ic);
461 1.1 jmcneill sc->sc_newstate = ic->ic_newstate;
462 1.1 jmcneill ic->ic_newstate = bwfm_newstate;
463 1.4 jmcneill ic->ic_newassoc = bwfm_newassoc;
464 1.1 jmcneill ic->ic_send_mgmt = bwfm_send_mgmt;
465 1.1 jmcneill ic->ic_recv_mgmt = bwfm_recv_mgmt;
466 1.1 jmcneill ic->ic_crypto.cs_key_set = bwfm_key_set;
467 1.1 jmcneill ic->ic_crypto.cs_key_delete = bwfm_key_delete;
468 1.26 mrg
469 1.26 mrg ifp->if_percpuq = if_percpuq_create(ifp);
470 1.26 mrg if_deferred_start_init(ifp, NULL);
471 1.26 mrg if_register(ifp);
472 1.6 jmcneill ieee80211_media_init(ic, bwfm_media_change, ieee80211_media_status);
473 1.1 jmcneill
474 1.1 jmcneill ieee80211_announce(ic);
475 1.1 jmcneill
476 1.1 jmcneill sc->sc_if_attached = true;
477 1.1 jmcneill }
478 1.1 jmcneill
479 1.1 jmcneill int
480 1.1 jmcneill bwfm_detach(struct bwfm_softc *sc, int flags)
481 1.1 jmcneill {
482 1.1 jmcneill struct ieee80211com *ic = &sc->sc_ic;
483 1.1 jmcneill struct ifnet *ifp = ic->ic_ifp;
484 1.1 jmcneill
485 1.1 jmcneill if (sc->sc_if_attached) {
486 1.1 jmcneill bpf_detach(ifp);
487 1.1 jmcneill ieee80211_ifdetach(ic);
488 1.1 jmcneill if_detach(ifp);
489 1.1 jmcneill }
490 1.1 jmcneill
491 1.1 jmcneill if (sc->sc_taskq)
492 1.1 jmcneill workqueue_destroy(sc->sc_taskq);
493 1.1 jmcneill if (sc->sc_freetask)
494 1.29 riastrad pool_cache_destroy(sc->sc_freetask);
495 1.1 jmcneill
496 1.1 jmcneill return 0;
497 1.1 jmcneill }
498 1.1 jmcneill
499 1.1 jmcneill void
500 1.1 jmcneill bwfm_start(struct ifnet *ifp)
501 1.1 jmcneill {
502 1.1 jmcneill struct bwfm_softc *sc = ifp->if_softc;
503 1.1 jmcneill struct ieee80211com *ic = &sc->sc_ic;
504 1.1 jmcneill struct mbuf *m;
505 1.1 jmcneill int error;
506 1.1 jmcneill
507 1.1 jmcneill if ((ifp->if_flags & (IFF_RUNNING | IFF_OACTIVE)) != IFF_RUNNING)
508 1.1 jmcneill return;
509 1.1 jmcneill
510 1.1 jmcneill /* TODO: return if no link? */
511 1.1 jmcneill
512 1.33 mlelstv if (sc->sc_setpm) {
513 1.33 mlelstv sc->sc_setpm = false;
514 1.33 mlelstv if (bwfm_fwvar_cmd_set_int(sc, BWFM_C_SET_PM, sc->sc_pm))
515 1.33 mlelstv printf("%s: could not set power\n", DEVNAME(sc));
516 1.33 mlelstv }
517 1.33 mlelstv
518 1.1 jmcneill for (;;) {
519 1.1 jmcneill /* Discard management packets (fw handles this for us) */
520 1.1 jmcneill IF_DEQUEUE(&ic->ic_mgtq, m);
521 1.1 jmcneill if (m != NULL) {
522 1.1 jmcneill m_freem(m);
523 1.1 jmcneill continue;
524 1.1 jmcneill }
525 1.1 jmcneill
526 1.11 maya if (sc->sc_bus_ops->bs_txcheck(sc)) {
527 1.11 maya ifp->if_flags |= IFF_OACTIVE;
528 1.11 maya break;
529 1.11 maya }
530 1.11 maya
531 1.1 jmcneill IFQ_DEQUEUE(&ifp->if_snd, m);
532 1.1 jmcneill if (m == NULL)
533 1.1 jmcneill break;
534 1.1 jmcneill
535 1.13 riastrad error = sc->sc_bus_ops->bs_txdata(sc, &m);
536 1.1 jmcneill if (error == ENOBUFS) {
537 1.1 jmcneill IF_PREPEND(&ifp->if_snd, m);
538 1.1 jmcneill ifp->if_flags |= IFF_OACTIVE;
539 1.1 jmcneill break;
540 1.1 jmcneill }
541 1.1 jmcneill if (error != 0) {
542 1.20 thorpej if_statinc(ifp, if_oerrors);
543 1.1 jmcneill m_freem(m);
544 1.15 mlelstv continue;
545 1.1 jmcneill }
546 1.15 mlelstv
547 1.15 mlelstv bpf_mtap(ifp, m, BPF_D_OUT);
548 1.1 jmcneill }
549 1.1 jmcneill }
550 1.1 jmcneill
551 1.1 jmcneill int
552 1.1 jmcneill bwfm_init(struct ifnet *ifp)
553 1.1 jmcneill {
554 1.1 jmcneill struct bwfm_softc *sc = ifp->if_softc;
555 1.1 jmcneill struct ieee80211com *ic = &sc->sc_ic;
556 1.1 jmcneill uint8_t evmask[BWFM_EVENT_MASK_LEN];
557 1.1 jmcneill struct bwfm_join_pref_params join_pref[2];
558 1.1 jmcneill
559 1.1 jmcneill if (bwfm_fwvar_var_set_int(sc, "mpc", 1)) {
560 1.1 jmcneill printf("%s: could not set mpc\n", DEVNAME(sc));
561 1.1 jmcneill return EIO;
562 1.1 jmcneill }
563 1.1 jmcneill
564 1.1 jmcneill /* Select target by RSSI (boost on 5GHz) */
565 1.1 jmcneill join_pref[0].type = BWFM_JOIN_PREF_RSSI_DELTA;
566 1.1 jmcneill join_pref[0].len = 2;
567 1.1 jmcneill join_pref[0].rssi_gain = BWFM_JOIN_PREF_RSSI_BOOST;
568 1.1 jmcneill join_pref[0].band = BWFM_JOIN_PREF_BAND_5G;
569 1.1 jmcneill join_pref[1].type = BWFM_JOIN_PREF_RSSI;
570 1.1 jmcneill join_pref[1].len = 2;
571 1.1 jmcneill join_pref[1].rssi_gain = 0;
572 1.1 jmcneill join_pref[1].band = 0;
573 1.1 jmcneill if (bwfm_fwvar_var_set_data(sc, "join_pref", join_pref,
574 1.1 jmcneill sizeof(join_pref))) {
575 1.1 jmcneill printf("%s: could not set join pref\n", DEVNAME(sc));
576 1.1 jmcneill return EIO;
577 1.1 jmcneill }
578 1.1 jmcneill
579 1.1 jmcneill memset(evmask, 0, sizeof(evmask));
580 1.1 jmcneill
581 1.1 jmcneill #define ENABLE_EVENT(e) evmask[(e) / 8] |= 1 << ((e) % 8)
582 1.1 jmcneill /* Events used to drive the state machine */
583 1.18 mlelstv switch (ic->ic_opmode) {
584 1.18 mlelstv case IEEE80211_M_STA:
585 1.18 mlelstv ENABLE_EVENT(BWFM_E_IF);
586 1.18 mlelstv ENABLE_EVENT(BWFM_E_LINK);
587 1.18 mlelstv ENABLE_EVENT(BWFM_E_AUTH);
588 1.18 mlelstv ENABLE_EVENT(BWFM_E_ASSOC);
589 1.18 mlelstv ENABLE_EVENT(BWFM_E_DEAUTH);
590 1.18 mlelstv ENABLE_EVENT(BWFM_E_DISASSOC);
591 1.18 mlelstv ENABLE_EVENT(BWFM_E_SET_SSID);
592 1.18 mlelstv ENABLE_EVENT(BWFM_E_ESCAN_RESULT);
593 1.18 mlelstv break;
594 1.18 mlelstv #ifndef IEEE80211_STA_ONLY
595 1.18 mlelstv case IEEE80211_M_HOSTAP:
596 1.18 mlelstv ENABLE_EVENT(BWFM_E_AUTH_IND);
597 1.18 mlelstv ENABLE_EVENT(BWFM_E_ASSOC_IND);
598 1.18 mlelstv ENABLE_EVENT(BWFM_E_REASSOC_IND);
599 1.18 mlelstv ENABLE_EVENT(BWFM_E_DEAUTH_IND);
600 1.18 mlelstv ENABLE_EVENT(BWFM_E_DISASSOC_IND);
601 1.18 mlelstv ENABLE_EVENT(BWFM_E_ESCAN_RESULT);
602 1.18 mlelstv ENABLE_EVENT(BWFM_E_ESCAN_RESULT);
603 1.18 mlelstv break;
604 1.18 mlelstv #endif
605 1.18 mlelstv default:
606 1.18 mlelstv break;
607 1.18 mlelstv }
608 1.1 jmcneill #undef ENABLE_EVENT
609 1.1 jmcneill
610 1.1 jmcneill #ifdef BWFM_DEBUG
611 1.1 jmcneill memset(evmask, 0xff, sizeof(evmask));
612 1.1 jmcneill #endif
613 1.27 riastrad
614 1.1 jmcneill if (bwfm_fwvar_var_set_data(sc, "event_msgs", evmask, sizeof(evmask))) {
615 1.1 jmcneill printf("%s: could not set event mask\n", DEVNAME(sc));
616 1.1 jmcneill return EIO;
617 1.1 jmcneill }
618 1.1 jmcneill
619 1.1 jmcneill if (bwfm_fwvar_cmd_set_int(sc, BWFM_C_SET_SCAN_CHANNEL_TIME,
620 1.1 jmcneill BWFM_DEFAULT_SCAN_CHANNEL_TIME)) {
621 1.1 jmcneill printf("%s: could not set scan channel time\n", DEVNAME(sc));
622 1.1 jmcneill return EIO;
623 1.1 jmcneill }
624 1.1 jmcneill if (bwfm_fwvar_cmd_set_int(sc, BWFM_C_SET_SCAN_UNASSOC_TIME,
625 1.1 jmcneill BWFM_DEFAULT_SCAN_UNASSOC_TIME)) {
626 1.1 jmcneill printf("%s: could not set scan unassoc time\n", DEVNAME(sc));
627 1.1 jmcneill return EIO;
628 1.1 jmcneill }
629 1.1 jmcneill if (bwfm_fwvar_cmd_set_int(sc, BWFM_C_SET_SCAN_PASSIVE_TIME,
630 1.1 jmcneill BWFM_DEFAULT_SCAN_PASSIVE_TIME)) {
631 1.1 jmcneill printf("%s: could not set scan passive time\n", DEVNAME(sc));
632 1.1 jmcneill return EIO;
633 1.1 jmcneill }
634 1.1 jmcneill
635 1.36 gutterid /*
636 1.36 gutterid * Use CAM (constantly awake) when we are running as AP
637 1.36 gutterid * otherwise use fast power saving.
638 1.36 gutterid */
639 1.34 mlelstv if (ic->ic_flags & IEEE80211_F_PMGTON) {
640 1.34 mlelstv sc->sc_pm = BWFM_PM_FAST_PS;
641 1.18 mlelstv #ifndef IEEE80211_STA_ONLY
642 1.34 mlelstv if (ic->ic_opmode == IEEE80211_M_HOSTAP)
643 1.34 mlelstv sc->sc_pm = BWFM_PM_CAM;
644 1.34 mlelstv #endif
645 1.34 mlelstv } else {
646 1.33 mlelstv sc->sc_pm = BWFM_PM_CAM;
647 1.34 mlelstv }
648 1.33 mlelstv sc->sc_setpm = true;
649 1.1 jmcneill
650 1.1 jmcneill bwfm_fwvar_var_set_int(sc, "txbf", 1);
651 1.1 jmcneill bwfm_fwvar_cmd_set_int(sc, BWFM_C_UP, 0);
652 1.1 jmcneill bwfm_fwvar_cmd_set_int(sc, BWFM_C_SET_INFRA, 1);
653 1.1 jmcneill bwfm_fwvar_cmd_set_int(sc, BWFM_C_SET_AP, 0);
654 1.1 jmcneill
655 1.1 jmcneill /* Disable all offloading (ARP, NDP, TCP/UDP cksum). */
656 1.1 jmcneill bwfm_fwvar_var_set_int(sc, "arp_ol", 0);
657 1.1 jmcneill bwfm_fwvar_var_set_int(sc, "arpoe", 0);
658 1.1 jmcneill bwfm_fwvar_var_set_int(sc, "ndoe", 0);
659 1.1 jmcneill bwfm_fwvar_var_set_int(sc, "toe", 0);
660 1.1 jmcneill
661 1.7 jmcneill /* Accept all multicast frames. */
662 1.7 jmcneill bwfm_fwvar_var_set_int(sc, "allmulti", 1);
663 1.7 jmcneill
664 1.7 jmcneill /* Setup promiscuous mode */
665 1.7 jmcneill bwfm_fwvar_cmd_set_int(sc, BWFM_C_SET_PROMISC,
666 1.7 jmcneill (ifp->if_flags & IFF_PROMISC) ? 1 : 0);
667 1.7 jmcneill
668 1.1 jmcneill /*
669 1.1 jmcneill * Tell the firmware supplicant that we are going to handle the
670 1.1 jmcneill * WPA handshake ourselves.
671 1.1 jmcneill */
672 1.1 jmcneill bwfm_fwvar_var_set_int(sc, "sup_wpa", 0);
673 1.1 jmcneill
674 1.1 jmcneill ifp->if_flags |= IFF_RUNNING;
675 1.1 jmcneill ifp->if_flags &= ~IFF_OACTIVE;
676 1.1 jmcneill
677 1.1 jmcneill if (ic->ic_opmode != IEEE80211_M_MONITOR) {
678 1.1 jmcneill if (ic->ic_roaming != IEEE80211_ROAMING_MANUAL)
679 1.1 jmcneill ieee80211_new_state(ic, IEEE80211_S_SCAN, -1);
680 1.1 jmcneill } else {
681 1.1 jmcneill ieee80211_new_state(ic, IEEE80211_S_RUN, -1);
682 1.1 jmcneill }
683 1.1 jmcneill
684 1.1 jmcneill return 0;
685 1.1 jmcneill }
686 1.1 jmcneill
687 1.1 jmcneill void
688 1.1 jmcneill bwfm_stop(struct ifnet *ifp, int disable)
689 1.1 jmcneill {
690 1.1 jmcneill struct bwfm_softc *sc = ifp->if_softc;
691 1.1 jmcneill struct ieee80211com *ic = &sc->sc_ic;
692 1.18 mlelstv struct bwfm_join_params join;
693 1.1 jmcneill
694 1.1 jmcneill sc->sc_tx_timer = 0;
695 1.1 jmcneill ifp->if_timer = 0;
696 1.1 jmcneill ifp->if_flags &= ~(IFF_RUNNING | IFF_OACTIVE);
697 1.1 jmcneill
698 1.32 mlelstv ieee80211_new_state(ic, IEEE80211_S_INIT, -1);
699 1.32 mlelstv
700 1.18 mlelstv memset(&join, 0, sizeof(join));
701 1.18 mlelstv bwfm_fwvar_cmd_set_data(sc, BWFM_C_SET_SSID, &join, sizeof(join));
702 1.34 mlelstv bwfm_fwvar_cmd_set_int(sc, BWFM_C_SET_PM, 0);
703 1.1 jmcneill bwfm_fwvar_cmd_set_int(sc, BWFM_C_DOWN, 1);
704 1.18 mlelstv bwfm_fwvar_cmd_set_int(sc, BWFM_C_SET_AP, 0);
705 1.18 mlelstv bwfm_fwvar_cmd_set_int(sc, BWFM_C_SET_INFRA, 0);
706 1.18 mlelstv bwfm_fwvar_cmd_set_int(sc, BWFM_C_UP, 1);
707 1.18 mlelstv bwfm_fwvar_cmd_set_int(sc, BWFM_C_SET_PM, BWFM_PM_FAST_PS);
708 1.32 mlelstv bwfm_fwvar_var_set_int(sc, "mpc", 1);
709 1.18 mlelstv
710 1.18 mlelstv if (sc->sc_bus_ops->bs_stop)
711 1.18 mlelstv sc->sc_bus_ops->bs_stop(sc);
712 1.33 mlelstv
713 1.33 mlelstv sc->sc_setpm = true;
714 1.1 jmcneill }
715 1.1 jmcneill
716 1.1 jmcneill void
717 1.1 jmcneill bwfm_watchdog(struct ifnet *ifp)
718 1.1 jmcneill {
719 1.1 jmcneill struct bwfm_softc *sc = ifp->if_softc;
720 1.1 jmcneill struct ieee80211com *ic = &sc->sc_ic;
721 1.1 jmcneill
722 1.1 jmcneill ifp->if_timer = 0;
723 1.1 jmcneill
724 1.1 jmcneill if (sc->sc_tx_timer > 0) {
725 1.1 jmcneill if (--sc->sc_tx_timer == 0) {
726 1.1 jmcneill printf("%s: device timeout\n", DEVNAME(sc));
727 1.20 thorpej if_statinc(ifp, if_oerrors);
728 1.1 jmcneill return;
729 1.1 jmcneill }
730 1.1 jmcneill ifp->if_timer = 1;
731 1.1 jmcneill }
732 1.1 jmcneill ieee80211_watchdog(ic);
733 1.1 jmcneill }
734 1.1 jmcneill
735 1.1 jmcneill int
736 1.1 jmcneill bwfm_ioctl(struct ifnet *ifp, u_long cmd, void *data)
737 1.1 jmcneill {
738 1.1 jmcneill struct bwfm_softc *sc = ifp->if_softc;
739 1.1 jmcneill struct ieee80211com *ic = &sc->sc_ic;
740 1.33 mlelstv int s, error = 0, oflags;
741 1.1 jmcneill
742 1.1 jmcneill s = splnet();
743 1.1 jmcneill
744 1.1 jmcneill switch (cmd) {
745 1.1 jmcneill case SIOCSIFFLAGS:
746 1.33 mlelstv oflags = ifp->if_flags;
747 1.1 jmcneill if ((error = ifioctl_common(ifp, cmd, data)) != 0)
748 1.1 jmcneill break;
749 1.1 jmcneill switch (ifp->if_flags & (IFF_UP | IFF_RUNNING)) {
750 1.1 jmcneill case IFF_UP | IFF_RUNNING:
751 1.1 jmcneill break;
752 1.1 jmcneill case IFF_UP:
753 1.33 mlelstv if ((oflags & IFF_UP) == 0)
754 1.33 mlelstv bwfm_init(ifp);
755 1.1 jmcneill break;
756 1.1 jmcneill case IFF_RUNNING:
757 1.33 mlelstv if ((oflags & IFF_UP) != 0)
758 1.33 mlelstv bwfm_stop(ifp, 1);
759 1.1 jmcneill break;
760 1.1 jmcneill case 0:
761 1.1 jmcneill break;
762 1.1 jmcneill }
763 1.1 jmcneill break;
764 1.1 jmcneill
765 1.1 jmcneill case SIOCADDMULTI:
766 1.1 jmcneill case SIOCDELMULTI:
767 1.1 jmcneill if ((error = ether_ioctl(ifp, cmd, data)) == ENETRESET) {
768 1.1 jmcneill /* setup multicast filter, etc */
769 1.1 jmcneill error = 0;
770 1.1 jmcneill }
771 1.1 jmcneill break;
772 1.1 jmcneill
773 1.17 jmcneill case SIOCGIFMEDIA:
774 1.17 jmcneill error = ieee80211_ioctl(ic, cmd, data);
775 1.17 jmcneill if (error == 0 && ic->ic_state == IEEE80211_S_RUN)
776 1.17 jmcneill bwfm_get_sta_info(sc, (struct ifmediareq *)data);
777 1.17 jmcneill break;
778 1.17 jmcneill
779 1.1 jmcneill default:
780 1.1 jmcneill error = ieee80211_ioctl(ic, cmd, data);
781 1.1 jmcneill }
782 1.1 jmcneill
783 1.1 jmcneill if (error == ENETRESET) {
784 1.1 jmcneill if ((ifp->if_flags & IFF_UP) != 0 &&
785 1.34 mlelstv (ifp->if_flags & IFF_RUNNING) != 0) {
786 1.1 jmcneill bwfm_init(ifp);
787 1.1 jmcneill }
788 1.1 jmcneill error = 0;
789 1.1 jmcneill }
790 1.1 jmcneill
791 1.1 jmcneill splx(s);
792 1.1 jmcneill
793 1.1 jmcneill return error;
794 1.1 jmcneill }
795 1.1 jmcneill
796 1.1 jmcneill int
797 1.1 jmcneill bwfm_send_mgmt(struct ieee80211com *ic, struct ieee80211_node *ni,
798 1.1 jmcneill int type, int arg)
799 1.1 jmcneill {
800 1.1 jmcneill return 0;
801 1.1 jmcneill }
802 1.1 jmcneill
803 1.1 jmcneill void
804 1.1 jmcneill bwfm_recv_mgmt(struct ieee80211com *ic, struct mbuf *m0,
805 1.1 jmcneill struct ieee80211_node *ni, int subtype, int rssi, uint32_t rstamp)
806 1.1 jmcneill {
807 1.1 jmcneill }
808 1.1 jmcneill
809 1.1 jmcneill int
810 1.1 jmcneill bwfm_key_set(struct ieee80211com *ic, const struct ieee80211_key *wk,
811 1.1 jmcneill const uint8_t mac[IEEE80211_ADDR_LEN])
812 1.1 jmcneill {
813 1.1 jmcneill struct bwfm_softc *sc = ic->ic_ifp->if_softc;
814 1.1 jmcneill struct bwfm_task *t;
815 1.1 jmcneill
816 1.29 riastrad t = pool_cache_get(sc->sc_freetask, PR_NOWAIT);
817 1.1 jmcneill if (t == NULL) {
818 1.1 jmcneill printf("%s: no free tasks\n", DEVNAME(sc));
819 1.1 jmcneill return 0;
820 1.1 jmcneill }
821 1.1 jmcneill
822 1.29 riastrad t->t_sc = sc;
823 1.1 jmcneill t->t_cmd = BWFM_TASK_KEY_SET;
824 1.1 jmcneill t->t_key.key = wk;
825 1.1 jmcneill memcpy(t->t_key.mac, mac, sizeof(t->t_key.mac));
826 1.1 jmcneill workqueue_enqueue(sc->sc_taskq, (struct work *)t, NULL);
827 1.1 jmcneill return 1;
828 1.1 jmcneill }
829 1.1 jmcneill
830 1.1 jmcneill static void
831 1.1 jmcneill bwfm_key_set_cb(struct bwfm_softc *sc, struct bwfm_cmd_key *ck)
832 1.1 jmcneill {
833 1.1 jmcneill const struct ieee80211_key *wk = ck->key;
834 1.1 jmcneill const uint8_t *mac = ck->mac;
835 1.1 jmcneill struct bwfm_wsec_key wsec_key;
836 1.1 jmcneill uint32_t wsec_enable, wsec;
837 1.1 jmcneill bool ext_key;
838 1.1 jmcneill
839 1.1 jmcneill #ifdef BWFM_DEBUG
840 1.1 jmcneill printf("key_set: key cipher %s len %d: ", wk->wk_cipher->ic_name, wk->wk_keylen);
841 1.1 jmcneill for (int j = 0; j < sizeof(wk->wk_key); j++)
842 1.1 jmcneill printf("%02x", wk->wk_key[j]);
843 1.1 jmcneill #endif
844 1.1 jmcneill
845 1.1 jmcneill if ((wk->wk_flags & IEEE80211_KEY_GROUP) == 0 &&
846 1.1 jmcneill wk->wk_cipher->ic_cipher != IEEE80211_CIPHER_WEP) {
847 1.1 jmcneill ext_key = true;
848 1.1 jmcneill } else {
849 1.1 jmcneill ext_key = false;
850 1.1 jmcneill }
851 1.1 jmcneill
852 1.1 jmcneill #ifdef BWFM_DEBUG
853 1.1 jmcneill printf(", ext_key = %d", ext_key);
854 1.1 jmcneill printf(", mac = %02x:%02x:%02x:%02x:%02x:%02x",
855 1.1 jmcneill mac[0], mac[1], mac[2], mac[3], mac[4], mac[5]);
856 1.1 jmcneill printf("\n");
857 1.1 jmcneill #endif
858 1.1 jmcneill
859 1.1 jmcneill memset(&wsec_key, 0, sizeof(wsec_key));
860 1.1 jmcneill if (ext_key && !IEEE80211_IS_MULTICAST(mac))
861 1.1 jmcneill memcpy(wsec_key.ea, mac, sizeof(wsec_key.ea));
862 1.1 jmcneill wsec_key.index = htole32(wk->wk_keyix);
863 1.1 jmcneill wsec_key.len = htole32(wk->wk_keylen);
864 1.1 jmcneill memcpy(wsec_key.data, wk->wk_key, sizeof(wsec_key.data));
865 1.1 jmcneill if (!ext_key)
866 1.18 mlelstv wsec_key.flags = htole32(BWFM_WSEC_PRIMARY_KEY);
867 1.1 jmcneill
868 1.1 jmcneill switch (wk->wk_cipher->ic_cipher) {
869 1.1 jmcneill case IEEE80211_CIPHER_WEP:
870 1.1 jmcneill if (wk->wk_keylen == 5)
871 1.1 jmcneill wsec_key.algo = htole32(BWFM_CRYPTO_ALGO_WEP1);
872 1.1 jmcneill else if (wk->wk_keylen == 13)
873 1.1 jmcneill wsec_key.algo = htole32(BWFM_CRYPTO_ALGO_WEP128);
874 1.1 jmcneill else
875 1.1 jmcneill return;
876 1.1 jmcneill wsec_enable = BWFM_WSEC_WEP;
877 1.1 jmcneill break;
878 1.1 jmcneill case IEEE80211_CIPHER_TKIP:
879 1.1 jmcneill wsec_key.algo = htole32(BWFM_CRYPTO_ALGO_TKIP);
880 1.1 jmcneill wsec_enable = BWFM_WSEC_TKIP;
881 1.1 jmcneill break;
882 1.1 jmcneill case IEEE80211_CIPHER_AES_CCM:
883 1.1 jmcneill wsec_key.algo = htole32(BWFM_CRYPTO_ALGO_AES_CCM);
884 1.1 jmcneill wsec_enable = BWFM_WSEC_AES;
885 1.1 jmcneill break;
886 1.1 jmcneill default:
887 1.1 jmcneill printf("%s: %s: cipher %s not supported\n", DEVNAME(sc),
888 1.1 jmcneill __func__, wk->wk_cipher->ic_name);
889 1.1 jmcneill return;
890 1.1 jmcneill }
891 1.1 jmcneill
892 1.1 jmcneill if (bwfm_fwvar_var_set_data(sc, "wsec_key", &wsec_key, sizeof(wsec_key)))
893 1.1 jmcneill return;
894 1.1 jmcneill
895 1.1 jmcneill bwfm_fwvar_var_set_int(sc, "wpa_auth", BWFM_WPA_AUTH_WPA2_PSK);
896 1.1 jmcneill
897 1.1 jmcneill bwfm_fwvar_var_get_int(sc, "wsec", &wsec);
898 1.1 jmcneill wsec |= wsec_enable;
899 1.1 jmcneill bwfm_fwvar_var_set_int(sc, "wsec", wsec);
900 1.1 jmcneill }
901 1.1 jmcneill
902 1.1 jmcneill int
903 1.1 jmcneill bwfm_key_delete(struct ieee80211com *ic, const struct ieee80211_key *wk)
904 1.1 jmcneill {
905 1.1 jmcneill struct bwfm_softc *sc = ic->ic_ifp->if_softc;
906 1.1 jmcneill struct bwfm_task *t;
907 1.1 jmcneill
908 1.29 riastrad t = pool_cache_get(sc->sc_freetask, PR_NOWAIT);
909 1.1 jmcneill if (t == NULL) {
910 1.1 jmcneill printf("%s: no free tasks\n", DEVNAME(sc));
911 1.1 jmcneill return 0;
912 1.1 jmcneill }
913 1.1 jmcneill
914 1.29 riastrad t->t_sc = sc;
915 1.1 jmcneill t->t_cmd = BWFM_TASK_KEY_DELETE;
916 1.1 jmcneill t->t_key.key = wk;
917 1.1 jmcneill memset(t->t_key.mac, 0, sizeof(t->t_key.mac));
918 1.1 jmcneill workqueue_enqueue(sc->sc_taskq, (struct work *)t, NULL);
919 1.1 jmcneill
920 1.1 jmcneill return 1;
921 1.1 jmcneill }
922 1.1 jmcneill
923 1.1 jmcneill static void
924 1.1 jmcneill bwfm_key_delete_cb(struct bwfm_softc *sc, struct bwfm_cmd_key *ck)
925 1.1 jmcneill {
926 1.1 jmcneill const struct ieee80211_key *wk = ck->key;
927 1.1 jmcneill struct bwfm_wsec_key wsec_key;
928 1.1 jmcneill
929 1.1 jmcneill memset(&wsec_key, 0, sizeof(wsec_key));
930 1.1 jmcneill wsec_key.index = htole32(wk->wk_keyix);
931 1.18 mlelstv wsec_key.flags = htole32(BWFM_WSEC_PRIMARY_KEY);
932 1.1 jmcneill
933 1.1 jmcneill if (bwfm_fwvar_var_set_data(sc, "wsec_key", &wsec_key, sizeof(wsec_key)))
934 1.1 jmcneill return;
935 1.1 jmcneill }
936 1.1 jmcneill
937 1.1 jmcneill int
938 1.1 jmcneill bwfm_newstate(struct ieee80211com *ic, enum ieee80211_state nstate, int arg)
939 1.1 jmcneill {
940 1.1 jmcneill struct bwfm_softc *sc = ic->ic_ifp->if_softc;
941 1.1 jmcneill struct bwfm_task *t;
942 1.1 jmcneill
943 1.29 riastrad t = pool_cache_get(sc->sc_freetask, PR_NOWAIT);
944 1.1 jmcneill if (t == NULL) {
945 1.1 jmcneill printf("%s: no free tasks\n", DEVNAME(sc));
946 1.1 jmcneill return EIO;
947 1.1 jmcneill }
948 1.1 jmcneill
949 1.29 riastrad t->t_sc = sc;
950 1.1 jmcneill t->t_cmd = BWFM_TASK_NEWSTATE;
951 1.1 jmcneill t->t_newstate.state = nstate;
952 1.1 jmcneill t->t_newstate.arg = arg;
953 1.1 jmcneill workqueue_enqueue(sc->sc_taskq, (struct work *)t, NULL);
954 1.1 jmcneill
955 1.1 jmcneill return 0;
956 1.1 jmcneill }
957 1.1 jmcneill
958 1.1 jmcneill void
959 1.1 jmcneill bwfm_newstate_cb(struct bwfm_softc *sc, struct bwfm_cmd_newstate *cmd)
960 1.1 jmcneill {
961 1.1 jmcneill struct ieee80211com *ic = &sc->sc_ic;
962 1.1 jmcneill enum ieee80211_state ostate = ic->ic_state;
963 1.1 jmcneill enum ieee80211_state nstate = cmd->state;
964 1.1 jmcneill int s;
965 1.1 jmcneill
966 1.1 jmcneill DPRINTF(("%s: newstate %d -> %d\n", DEVNAME(sc), ostate, nstate));
967 1.1 jmcneill
968 1.1 jmcneill s = splnet();
969 1.1 jmcneill
970 1.1 jmcneill switch (nstate) {
971 1.1 jmcneill case IEEE80211_S_INIT:
972 1.1 jmcneill break;
973 1.1 jmcneill
974 1.1 jmcneill case IEEE80211_S_SCAN:
975 1.1 jmcneill if (ostate != IEEE80211_S_SCAN) {
976 1.1 jmcneill /* Start of scanning */
977 1.1 jmcneill bwfm_scan(sc);
978 1.1 jmcneill }
979 1.1 jmcneill break;
980 1.1 jmcneill
981 1.1 jmcneill case IEEE80211_S_AUTH:
982 1.1 jmcneill bwfm_connect(sc);
983 1.1 jmcneill break;
984 1.1 jmcneill
985 1.1 jmcneill case IEEE80211_S_ASSOC:
986 1.1 jmcneill break;
987 1.1 jmcneill
988 1.1 jmcneill case IEEE80211_S_RUN:
989 1.1 jmcneill break;
990 1.1 jmcneill }
991 1.1 jmcneill
992 1.1 jmcneill sc->sc_newstate(ic, nstate, cmd->arg);
993 1.1 jmcneill
994 1.1 jmcneill splx(s);
995 1.1 jmcneill }
996 1.1 jmcneill
997 1.1 jmcneill void
998 1.4 jmcneill bwfm_newassoc(struct ieee80211_node *ni, int isnew)
999 1.4 jmcneill {
1000 1.4 jmcneill /* Firmware handles rate adaptation for us */
1001 1.4 jmcneill ni->ni_txrate = 0;
1002 1.4 jmcneill }
1003 1.4 jmcneill
1004 1.4 jmcneill void
1005 1.1 jmcneill bwfm_task(struct work *wk, void *arg)
1006 1.1 jmcneill {
1007 1.1 jmcneill struct bwfm_task *t = (struct bwfm_task *)wk;
1008 1.1 jmcneill struct bwfm_softc *sc = t->t_sc;
1009 1.1 jmcneill
1010 1.1 jmcneill switch (t->t_cmd) {
1011 1.1 jmcneill case BWFM_TASK_NEWSTATE:
1012 1.1 jmcneill bwfm_newstate_cb(sc, &t->t_newstate);
1013 1.1 jmcneill break;
1014 1.1 jmcneill case BWFM_TASK_KEY_SET:
1015 1.1 jmcneill bwfm_key_set_cb(sc, &t->t_key);
1016 1.1 jmcneill break;
1017 1.1 jmcneill case BWFM_TASK_KEY_DELETE:
1018 1.1 jmcneill bwfm_key_delete_cb(sc, &t->t_key);
1019 1.1 jmcneill break;
1020 1.15 mlelstv case BWFM_TASK_RX_EVENT:
1021 1.15 mlelstv bwfm_rx_event_cb(sc, t->t_mbuf);
1022 1.15 mlelstv break;
1023 1.1 jmcneill default:
1024 1.1 jmcneill panic("bwfm: unknown task command %d", t->t_cmd);
1025 1.1 jmcneill }
1026 1.1 jmcneill
1027 1.29 riastrad pool_cache_put(sc->sc_freetask, t);
1028 1.1 jmcneill }
1029 1.1 jmcneill
1030 1.1 jmcneill int
1031 1.1 jmcneill bwfm_media_change(struct ifnet *ifp)
1032 1.1 jmcneill {
1033 1.1 jmcneill return 0;
1034 1.1 jmcneill }
1035 1.1 jmcneill
1036 1.1 jmcneill /* Chip initialization (SDIO, PCIe) */
1037 1.1 jmcneill int
1038 1.1 jmcneill bwfm_chip_attach(struct bwfm_softc *sc)
1039 1.1 jmcneill {
1040 1.1 jmcneill struct bwfm_core *core;
1041 1.1 jmcneill int need_socram = 0;
1042 1.1 jmcneill int has_socram = 0;
1043 1.1 jmcneill int cpu_found = 0;
1044 1.1 jmcneill uint32_t val;
1045 1.1 jmcneill
1046 1.1 jmcneill LIST_INIT(&sc->sc_chip.ch_list);
1047 1.1 jmcneill
1048 1.1 jmcneill if (sc->sc_buscore_ops->bc_prepare(sc) != 0) {
1049 1.1 jmcneill printf("%s: failed buscore prepare\n", DEVNAME(sc));
1050 1.1 jmcneill return 1;
1051 1.1 jmcneill }
1052 1.1 jmcneill
1053 1.1 jmcneill val = sc->sc_buscore_ops->bc_read(sc,
1054 1.1 jmcneill BWFM_CHIP_BASE + BWFM_CHIP_REG_CHIPID);
1055 1.1 jmcneill sc->sc_chip.ch_chip = BWFM_CHIP_CHIPID_ID(val);
1056 1.1 jmcneill sc->sc_chip.ch_chiprev = BWFM_CHIP_CHIPID_REV(val);
1057 1.1 jmcneill
1058 1.1 jmcneill if ((sc->sc_chip.ch_chip > 0xa000) || (sc->sc_chip.ch_chip < 0x4000))
1059 1.1 jmcneill snprintf(sc->sc_chip.ch_name, sizeof(sc->sc_chip.ch_name),
1060 1.1 jmcneill "%d", sc->sc_chip.ch_chip);
1061 1.1 jmcneill else
1062 1.1 jmcneill snprintf(sc->sc_chip.ch_name, sizeof(sc->sc_chip.ch_name),
1063 1.1 jmcneill "%x", sc->sc_chip.ch_chip);
1064 1.1 jmcneill
1065 1.1 jmcneill switch (BWFM_CHIP_CHIPID_TYPE(val))
1066 1.1 jmcneill {
1067 1.1 jmcneill case BWFM_CHIP_CHIPID_TYPE_SOCI_SB:
1068 1.1 jmcneill printf("%s: SoC interconnect SB not implemented\n",
1069 1.1 jmcneill DEVNAME(sc));
1070 1.1 jmcneill return 1;
1071 1.1 jmcneill case BWFM_CHIP_CHIPID_TYPE_SOCI_AI:
1072 1.1 jmcneill sc->sc_chip.ch_core_isup = bwfm_chip_ai_isup;
1073 1.1 jmcneill sc->sc_chip.ch_core_disable = bwfm_chip_ai_disable;
1074 1.1 jmcneill sc->sc_chip.ch_core_reset = bwfm_chip_ai_reset;
1075 1.1 jmcneill bwfm_chip_dmp_erom_scan(sc);
1076 1.1 jmcneill break;
1077 1.1 jmcneill default:
1078 1.1 jmcneill printf("%s: SoC interconnect %d unknown\n",
1079 1.1 jmcneill DEVNAME(sc), BWFM_CHIP_CHIPID_TYPE(val));
1080 1.1 jmcneill return 1;
1081 1.1 jmcneill }
1082 1.1 jmcneill
1083 1.1 jmcneill LIST_FOREACH(core, &sc->sc_chip.ch_list, co_link) {
1084 1.1 jmcneill DPRINTF(("%s: 0x%x:%-2d base 0x%08x wrap 0x%08x\n",
1085 1.1 jmcneill DEVNAME(sc), core->co_id, core->co_rev,
1086 1.1 jmcneill core->co_base, core->co_wrapbase));
1087 1.1 jmcneill
1088 1.1 jmcneill switch (core->co_id) {
1089 1.1 jmcneill case BWFM_AGENT_CORE_ARM_CM3:
1090 1.1 jmcneill need_socram = true;
1091 1.1 jmcneill /* FALLTHROUGH */
1092 1.1 jmcneill case BWFM_AGENT_CORE_ARM_CR4:
1093 1.1 jmcneill case BWFM_AGENT_CORE_ARM_CA7:
1094 1.1 jmcneill cpu_found = true;
1095 1.1 jmcneill break;
1096 1.1 jmcneill case BWFM_AGENT_INTERNAL_MEM:
1097 1.1 jmcneill has_socram = true;
1098 1.1 jmcneill break;
1099 1.1 jmcneill default:
1100 1.1 jmcneill break;
1101 1.1 jmcneill }
1102 1.1 jmcneill }
1103 1.1 jmcneill
1104 1.1 jmcneill if (!cpu_found) {
1105 1.1 jmcneill printf("%s: CPU core not detected\n", DEVNAME(sc));
1106 1.1 jmcneill return 1;
1107 1.1 jmcneill }
1108 1.1 jmcneill if (need_socram && !has_socram) {
1109 1.1 jmcneill printf("%s: RAM core not provided\n", DEVNAME(sc));
1110 1.1 jmcneill return 1;
1111 1.1 jmcneill }
1112 1.1 jmcneill
1113 1.11 maya bwfm_chip_set_passive(sc);
1114 1.1 jmcneill
1115 1.1 jmcneill if (sc->sc_buscore_ops->bc_reset) {
1116 1.1 jmcneill sc->sc_buscore_ops->bc_reset(sc);
1117 1.11 maya bwfm_chip_set_passive(sc);
1118 1.1 jmcneill }
1119 1.1 jmcneill
1120 1.11 maya if ((core = bwfm_chip_get_core(sc, BWFM_AGENT_CORE_ARM_CR4)) != NULL) {
1121 1.11 maya bwfm_chip_tcm_ramsize(sc, core);
1122 1.11 maya bwfm_chip_tcm_rambase(sc);
1123 1.11 maya } else if ((core = bwfm_chip_get_core(sc, BWFM_AGENT_SYS_MEM)) != NULL) {
1124 1.11 maya bwfm_chip_sysmem_ramsize(sc, core);
1125 1.11 maya bwfm_chip_tcm_rambase(sc);
1126 1.11 maya } else if ((core = bwfm_chip_get_core(sc, BWFM_AGENT_INTERNAL_MEM)) != NULL) {
1127 1.11 maya bwfm_chip_socram_ramsize(sc, core);
1128 1.11 maya }
1129 1.1 jmcneill
1130 1.1 jmcneill core = bwfm_chip_get_core(sc, BWFM_AGENT_CORE_CHIPCOMMON);
1131 1.1 jmcneill sc->sc_chip.ch_cc_caps = sc->sc_buscore_ops->bc_read(sc,
1132 1.1 jmcneill core->co_base + BWFM_CHIP_REG_CAPABILITIES);
1133 1.1 jmcneill sc->sc_chip.ch_cc_caps_ext = sc->sc_buscore_ops->bc_read(sc,
1134 1.1 jmcneill core->co_base + BWFM_CHIP_REG_CAPABILITIES_EXT);
1135 1.1 jmcneill
1136 1.1 jmcneill core = bwfm_chip_get_pmu(sc);
1137 1.1 jmcneill if (sc->sc_chip.ch_cc_caps & BWFM_CHIP_REG_CAPABILITIES_PMU) {
1138 1.1 jmcneill sc->sc_chip.ch_pmucaps = sc->sc_buscore_ops->bc_read(sc,
1139 1.1 jmcneill core->co_base + BWFM_CHIP_REG_PMUCAPABILITIES);
1140 1.1 jmcneill sc->sc_chip.ch_pmurev = sc->sc_chip.ch_pmucaps &
1141 1.1 jmcneill BWFM_CHIP_REG_PMUCAPABILITIES_REV_MASK;
1142 1.1 jmcneill }
1143 1.1 jmcneill
1144 1.1 jmcneill if (sc->sc_buscore_ops->bc_setup)
1145 1.1 jmcneill sc->sc_buscore_ops->bc_setup(sc);
1146 1.1 jmcneill
1147 1.1 jmcneill return 0;
1148 1.1 jmcneill }
1149 1.1 jmcneill
1150 1.1 jmcneill struct bwfm_core *
1151 1.1 jmcneill bwfm_chip_get_core(struct bwfm_softc *sc, int id)
1152 1.1 jmcneill {
1153 1.1 jmcneill struct bwfm_core *core;
1154 1.1 jmcneill
1155 1.1 jmcneill LIST_FOREACH(core, &sc->sc_chip.ch_list, co_link) {
1156 1.1 jmcneill if (core->co_id == id)
1157 1.1 jmcneill return core;
1158 1.1 jmcneill }
1159 1.1 jmcneill
1160 1.1 jmcneill return NULL;
1161 1.1 jmcneill }
1162 1.1 jmcneill
1163 1.1 jmcneill struct bwfm_core *
1164 1.1 jmcneill bwfm_chip_get_pmu(struct bwfm_softc *sc)
1165 1.1 jmcneill {
1166 1.1 jmcneill struct bwfm_core *cc, *pmu;
1167 1.1 jmcneill
1168 1.1 jmcneill cc = bwfm_chip_get_core(sc, BWFM_AGENT_CORE_CHIPCOMMON);
1169 1.1 jmcneill if (cc->co_rev >= 35 && sc->sc_chip.ch_cc_caps_ext &
1170 1.1 jmcneill BWFM_CHIP_REG_CAPABILITIES_EXT_AOB_PRESENT) {
1171 1.1 jmcneill pmu = bwfm_chip_get_core(sc, BWFM_AGENT_CORE_PMU);
1172 1.1 jmcneill if (pmu)
1173 1.1 jmcneill return pmu;
1174 1.1 jmcneill }
1175 1.1 jmcneill
1176 1.1 jmcneill return cc;
1177 1.1 jmcneill }
1178 1.1 jmcneill
1179 1.1 jmcneill /* Functions for the AI interconnect */
1180 1.1 jmcneill int
1181 1.1 jmcneill bwfm_chip_ai_isup(struct bwfm_softc *sc, struct bwfm_core *core)
1182 1.1 jmcneill {
1183 1.1 jmcneill uint32_t ioctl, reset;
1184 1.1 jmcneill
1185 1.1 jmcneill ioctl = sc->sc_buscore_ops->bc_read(sc,
1186 1.1 jmcneill core->co_wrapbase + BWFM_AGENT_IOCTL);
1187 1.1 jmcneill reset = sc->sc_buscore_ops->bc_read(sc,
1188 1.1 jmcneill core->co_wrapbase + BWFM_AGENT_RESET_CTL);
1189 1.1 jmcneill
1190 1.1 jmcneill if (((ioctl & (BWFM_AGENT_IOCTL_FGC | BWFM_AGENT_IOCTL_CLK)) ==
1191 1.1 jmcneill BWFM_AGENT_IOCTL_CLK) &&
1192 1.1 jmcneill ((reset & BWFM_AGENT_RESET_CTL_RESET) == 0))
1193 1.1 jmcneill return 1;
1194 1.1 jmcneill
1195 1.1 jmcneill return 0;
1196 1.1 jmcneill }
1197 1.1 jmcneill
1198 1.1 jmcneill void
1199 1.1 jmcneill bwfm_chip_ai_disable(struct bwfm_softc *sc, struct bwfm_core *core,
1200 1.1 jmcneill uint32_t prereset, uint32_t reset)
1201 1.1 jmcneill {
1202 1.1 jmcneill uint32_t val;
1203 1.1 jmcneill int i;
1204 1.1 jmcneill
1205 1.1 jmcneill val = sc->sc_buscore_ops->bc_read(sc,
1206 1.1 jmcneill core->co_wrapbase + BWFM_AGENT_RESET_CTL);
1207 1.1 jmcneill if ((val & BWFM_AGENT_RESET_CTL_RESET) == 0) {
1208 1.1 jmcneill
1209 1.1 jmcneill sc->sc_buscore_ops->bc_write(sc,
1210 1.1 jmcneill core->co_wrapbase + BWFM_AGENT_IOCTL,
1211 1.1 jmcneill prereset | BWFM_AGENT_IOCTL_FGC | BWFM_AGENT_IOCTL_CLK);
1212 1.1 jmcneill sc->sc_buscore_ops->bc_read(sc,
1213 1.1 jmcneill core->co_wrapbase + BWFM_AGENT_IOCTL);
1214 1.1 jmcneill
1215 1.1 jmcneill sc->sc_buscore_ops->bc_write(sc,
1216 1.1 jmcneill core->co_wrapbase + BWFM_AGENT_RESET_CTL,
1217 1.1 jmcneill BWFM_AGENT_RESET_CTL_RESET);
1218 1.1 jmcneill delay(20);
1219 1.1 jmcneill
1220 1.1 jmcneill for (i = 300; i > 0; i--) {
1221 1.1 jmcneill if (sc->sc_buscore_ops->bc_read(sc,
1222 1.1 jmcneill core->co_wrapbase + BWFM_AGENT_RESET_CTL) ==
1223 1.1 jmcneill BWFM_AGENT_RESET_CTL_RESET)
1224 1.1 jmcneill break;
1225 1.1 jmcneill }
1226 1.1 jmcneill if (i == 0)
1227 1.1 jmcneill printf("%s: timeout on core reset\n", DEVNAME(sc));
1228 1.1 jmcneill }
1229 1.1 jmcneill
1230 1.1 jmcneill sc->sc_buscore_ops->bc_write(sc,
1231 1.1 jmcneill core->co_wrapbase + BWFM_AGENT_IOCTL,
1232 1.1 jmcneill reset | BWFM_AGENT_IOCTL_FGC | BWFM_AGENT_IOCTL_CLK);
1233 1.1 jmcneill sc->sc_buscore_ops->bc_read(sc,
1234 1.1 jmcneill core->co_wrapbase + BWFM_AGENT_IOCTL);
1235 1.1 jmcneill }
1236 1.1 jmcneill
1237 1.1 jmcneill void
1238 1.1 jmcneill bwfm_chip_ai_reset(struct bwfm_softc *sc, struct bwfm_core *core,
1239 1.1 jmcneill uint32_t prereset, uint32_t reset, uint32_t postreset)
1240 1.1 jmcneill {
1241 1.1 jmcneill int i;
1242 1.1 jmcneill
1243 1.1 jmcneill bwfm_chip_ai_disable(sc, core, prereset, reset);
1244 1.1 jmcneill
1245 1.1 jmcneill for (i = 50; i > 0; i--) {
1246 1.1 jmcneill if ((sc->sc_buscore_ops->bc_read(sc,
1247 1.1 jmcneill core->co_wrapbase + BWFM_AGENT_RESET_CTL) &
1248 1.1 jmcneill BWFM_AGENT_RESET_CTL_RESET) == 0)
1249 1.1 jmcneill break;
1250 1.1 jmcneill sc->sc_buscore_ops->bc_write(sc,
1251 1.1 jmcneill core->co_wrapbase + BWFM_AGENT_RESET_CTL, 0);
1252 1.1 jmcneill delay(60);
1253 1.1 jmcneill }
1254 1.1 jmcneill if (i == 0)
1255 1.1 jmcneill printf("%s: timeout on core reset\n", DEVNAME(sc));
1256 1.1 jmcneill
1257 1.1 jmcneill sc->sc_buscore_ops->bc_write(sc,
1258 1.1 jmcneill core->co_wrapbase + BWFM_AGENT_IOCTL,
1259 1.1 jmcneill postreset | BWFM_AGENT_IOCTL_CLK);
1260 1.1 jmcneill sc->sc_buscore_ops->bc_read(sc,
1261 1.1 jmcneill core->co_wrapbase + BWFM_AGENT_IOCTL);
1262 1.1 jmcneill }
1263 1.1 jmcneill
1264 1.1 jmcneill void
1265 1.1 jmcneill bwfm_chip_dmp_erom_scan(struct bwfm_softc *sc)
1266 1.1 jmcneill {
1267 1.1 jmcneill uint32_t erom, val, base, wrap;
1268 1.1 jmcneill uint8_t type = 0;
1269 1.1 jmcneill uint16_t id;
1270 1.1 jmcneill uint8_t nmw, nsw, rev;
1271 1.1 jmcneill struct bwfm_core *core;
1272 1.1 jmcneill
1273 1.1 jmcneill erom = sc->sc_buscore_ops->bc_read(sc,
1274 1.1 jmcneill BWFM_CHIP_BASE + BWFM_CHIP_REG_EROMPTR);
1275 1.1 jmcneill while (type != BWFM_DMP_DESC_EOT) {
1276 1.1 jmcneill val = sc->sc_buscore_ops->bc_read(sc, erom);
1277 1.1 jmcneill type = val & BWFM_DMP_DESC_MASK;
1278 1.1 jmcneill erom += 4;
1279 1.1 jmcneill
1280 1.1 jmcneill if (type != BWFM_DMP_DESC_COMPONENT)
1281 1.1 jmcneill continue;
1282 1.1 jmcneill
1283 1.1 jmcneill id = (val & BWFM_DMP_COMP_PARTNUM)
1284 1.1 jmcneill >> BWFM_DMP_COMP_PARTNUM_S;
1285 1.1 jmcneill
1286 1.1 jmcneill val = sc->sc_buscore_ops->bc_read(sc, erom);
1287 1.1 jmcneill type = val & BWFM_DMP_DESC_MASK;
1288 1.1 jmcneill erom += 4;
1289 1.1 jmcneill
1290 1.1 jmcneill if (type != BWFM_DMP_DESC_COMPONENT) {
1291 1.1 jmcneill printf("%s: not component descriptor\n", DEVNAME(sc));
1292 1.1 jmcneill return;
1293 1.1 jmcneill }
1294 1.1 jmcneill
1295 1.1 jmcneill nmw = (val & BWFM_DMP_COMP_NUM_MWRAP)
1296 1.1 jmcneill >> BWFM_DMP_COMP_NUM_MWRAP_S;
1297 1.1 jmcneill nsw = (val & BWFM_DMP_COMP_NUM_SWRAP)
1298 1.1 jmcneill >> BWFM_DMP_COMP_NUM_SWRAP_S;
1299 1.1 jmcneill rev = (val & BWFM_DMP_COMP_REVISION)
1300 1.1 jmcneill >> BWFM_DMP_COMP_REVISION_S;
1301 1.1 jmcneill
1302 1.1 jmcneill if (nmw + nsw == 0 && id != BWFM_AGENT_CORE_PMU)
1303 1.1 jmcneill continue;
1304 1.1 jmcneill
1305 1.1 jmcneill if (bwfm_chip_dmp_get_regaddr(sc, &erom, &base, &wrap))
1306 1.1 jmcneill continue;
1307 1.1 jmcneill
1308 1.1 jmcneill core = kmem_alloc(sizeof(*core), KM_SLEEP);
1309 1.1 jmcneill core->co_id = id;
1310 1.1 jmcneill core->co_base = base;
1311 1.1 jmcneill core->co_wrapbase = wrap;
1312 1.1 jmcneill core->co_rev = rev;
1313 1.1 jmcneill LIST_INSERT_HEAD(&sc->sc_chip.ch_list, core, co_link);
1314 1.1 jmcneill }
1315 1.1 jmcneill }
1316 1.1 jmcneill
1317 1.1 jmcneill int
1318 1.1 jmcneill bwfm_chip_dmp_get_regaddr(struct bwfm_softc *sc, uint32_t *erom,
1319 1.1 jmcneill uint32_t *base, uint32_t *wrap)
1320 1.1 jmcneill {
1321 1.1 jmcneill uint8_t type = 0, mpnum __unused = 0;
1322 1.1 jmcneill uint8_t stype, sztype, wraptype;
1323 1.1 jmcneill uint32_t val;
1324 1.1 jmcneill
1325 1.1 jmcneill *base = 0;
1326 1.1 jmcneill *wrap = 0;
1327 1.1 jmcneill
1328 1.1 jmcneill val = sc->sc_buscore_ops->bc_read(sc, *erom);
1329 1.1 jmcneill type = val & BWFM_DMP_DESC_MASK;
1330 1.1 jmcneill if (type == BWFM_DMP_DESC_MASTER_PORT) {
1331 1.1 jmcneill mpnum = (val & BWFM_DMP_MASTER_PORT_NUM)
1332 1.1 jmcneill >> BWFM_DMP_MASTER_PORT_NUM_S;
1333 1.1 jmcneill wraptype = BWFM_DMP_SLAVE_TYPE_MWRAP;
1334 1.1 jmcneill *erom += 4;
1335 1.1 jmcneill } else if ((type & ~BWFM_DMP_DESC_ADDRSIZE_GT32) ==
1336 1.1 jmcneill BWFM_DMP_DESC_ADDRESS)
1337 1.1 jmcneill wraptype = BWFM_DMP_SLAVE_TYPE_SWRAP;
1338 1.1 jmcneill else
1339 1.1 jmcneill return 1;
1340 1.1 jmcneill
1341 1.1 jmcneill do {
1342 1.1 jmcneill do {
1343 1.1 jmcneill val = sc->sc_buscore_ops->bc_read(sc, *erom);
1344 1.1 jmcneill type = val & BWFM_DMP_DESC_MASK;
1345 1.1 jmcneill if (type == BWFM_DMP_DESC_COMPONENT)
1346 1.1 jmcneill return 0;
1347 1.1 jmcneill if (type == BWFM_DMP_DESC_EOT)
1348 1.1 jmcneill return 1;
1349 1.1 jmcneill *erom += 4;
1350 1.1 jmcneill } while ((type & ~BWFM_DMP_DESC_ADDRSIZE_GT32) !=
1351 1.1 jmcneill BWFM_DMP_DESC_ADDRESS);
1352 1.1 jmcneill
1353 1.1 jmcneill if (type & BWFM_DMP_DESC_ADDRSIZE_GT32)
1354 1.1 jmcneill *erom += 4;
1355 1.1 jmcneill
1356 1.1 jmcneill sztype = (val & BWFM_DMP_SLAVE_SIZE_TYPE)
1357 1.1 jmcneill >> BWFM_DMP_SLAVE_SIZE_TYPE_S;
1358 1.1 jmcneill if (sztype == BWFM_DMP_SLAVE_SIZE_DESC) {
1359 1.1 jmcneill val = sc->sc_buscore_ops->bc_read(sc, *erom);
1360 1.1 jmcneill type = val & BWFM_DMP_DESC_MASK;
1361 1.1 jmcneill if (type & BWFM_DMP_DESC_ADDRSIZE_GT32)
1362 1.1 jmcneill *erom += 8;
1363 1.1 jmcneill else
1364 1.1 jmcneill *erom += 4;
1365 1.1 jmcneill }
1366 1.1 jmcneill if (sztype != BWFM_DMP_SLAVE_SIZE_4K)
1367 1.1 jmcneill continue;
1368 1.1 jmcneill
1369 1.1 jmcneill stype = (val & BWFM_DMP_SLAVE_TYPE) >> BWFM_DMP_SLAVE_TYPE_S;
1370 1.1 jmcneill if (*base == 0 && stype == BWFM_DMP_SLAVE_TYPE_SLAVE)
1371 1.1 jmcneill *base = val & BWFM_DMP_SLAVE_ADDR_BASE;
1372 1.1 jmcneill if (*wrap == 0 && stype == wraptype)
1373 1.1 jmcneill *wrap = val & BWFM_DMP_SLAVE_ADDR_BASE;
1374 1.1 jmcneill } while (*base == 0 || *wrap == 0);
1375 1.1 jmcneill
1376 1.1 jmcneill return 0;
1377 1.1 jmcneill }
1378 1.1 jmcneill
1379 1.1 jmcneill /* Core configuration */
1380 1.11 maya int
1381 1.11 maya bwfm_chip_set_active(struct bwfm_softc *sc, const uint32_t rstvec)
1382 1.11 maya {
1383 1.11 maya if (bwfm_chip_get_core(sc, BWFM_AGENT_CORE_ARM_CR4) != NULL)
1384 1.11 maya return bwfm_chip_cr4_set_active(sc, rstvec);
1385 1.11 maya if (bwfm_chip_get_core(sc, BWFM_AGENT_CORE_ARM_CA7) != NULL)
1386 1.11 maya return bwfm_chip_ca7_set_active(sc, rstvec);
1387 1.11 maya if (bwfm_chip_get_core(sc, BWFM_AGENT_CORE_ARM_CM3) != NULL)
1388 1.11 maya return bwfm_chip_cm3_set_active(sc);
1389 1.11 maya return 1;
1390 1.11 maya }
1391 1.11 maya
1392 1.11 maya void
1393 1.11 maya bwfm_chip_set_passive(struct bwfm_softc *sc)
1394 1.11 maya {
1395 1.11 maya if (bwfm_chip_get_core(sc, BWFM_AGENT_CORE_ARM_CR4) != NULL) {
1396 1.11 maya bwfm_chip_cr4_set_passive(sc);
1397 1.11 maya return;
1398 1.11 maya }
1399 1.11 maya if (bwfm_chip_get_core(sc, BWFM_AGENT_CORE_ARM_CA7) != NULL) {
1400 1.11 maya bwfm_chip_ca7_set_passive(sc);
1401 1.11 maya return;
1402 1.11 maya }
1403 1.11 maya if (bwfm_chip_get_core(sc, BWFM_AGENT_CORE_ARM_CM3) != NULL) {
1404 1.11 maya bwfm_chip_cm3_set_passive(sc);
1405 1.11 maya return;
1406 1.11 maya }
1407 1.11 maya }
1408 1.11 maya
1409 1.11 maya int
1410 1.11 maya bwfm_chip_cr4_set_active(struct bwfm_softc *sc, const uint32_t rstvec)
1411 1.11 maya {
1412 1.11 maya struct bwfm_core *core;
1413 1.11 maya
1414 1.11 maya sc->sc_buscore_ops->bc_activate(sc, rstvec);
1415 1.11 maya core = bwfm_chip_get_core(sc, BWFM_AGENT_CORE_ARM_CR4);
1416 1.11 maya sc->sc_chip.ch_core_reset(sc, core,
1417 1.11 maya BWFM_AGENT_IOCTL_ARMCR4_CPUHALT, 0, 0);
1418 1.11 maya
1419 1.11 maya return 0;
1420 1.11 maya }
1421 1.11 maya
1422 1.1 jmcneill void
1423 1.1 jmcneill bwfm_chip_cr4_set_passive(struct bwfm_softc *sc)
1424 1.1 jmcneill {
1425 1.11 maya struct bwfm_core *core;
1426 1.11 maya uint32_t val;
1427 1.11 maya
1428 1.11 maya core = bwfm_chip_get_core(sc, BWFM_AGENT_CORE_ARM_CR4);
1429 1.11 maya val = sc->sc_buscore_ops->bc_read(sc,
1430 1.11 maya core->co_wrapbase + BWFM_AGENT_IOCTL);
1431 1.11 maya sc->sc_chip.ch_core_reset(sc, core,
1432 1.11 maya val & BWFM_AGENT_IOCTL_ARMCR4_CPUHALT,
1433 1.11 maya BWFM_AGENT_IOCTL_ARMCR4_CPUHALT,
1434 1.11 maya BWFM_AGENT_IOCTL_ARMCR4_CPUHALT);
1435 1.11 maya
1436 1.11 maya core = bwfm_chip_get_core(sc, BWFM_AGENT_CORE_80211);
1437 1.11 maya sc->sc_chip.ch_core_reset(sc, core, BWFM_AGENT_D11_IOCTL_PHYRESET |
1438 1.11 maya BWFM_AGENT_D11_IOCTL_PHYCLOCKEN, BWFM_AGENT_D11_IOCTL_PHYCLOCKEN,
1439 1.11 maya BWFM_AGENT_D11_IOCTL_PHYCLOCKEN);
1440 1.11 maya }
1441 1.11 maya
1442 1.11 maya int
1443 1.11 maya bwfm_chip_ca7_set_active(struct bwfm_softc *sc, const uint32_t rstvec)
1444 1.11 maya {
1445 1.11 maya struct bwfm_core *core;
1446 1.11 maya
1447 1.11 maya sc->sc_buscore_ops->bc_activate(sc, rstvec);
1448 1.11 maya core = bwfm_chip_get_core(sc, BWFM_AGENT_CORE_ARM_CA7);
1449 1.11 maya sc->sc_chip.ch_core_reset(sc, core,
1450 1.11 maya BWFM_AGENT_IOCTL_ARMCR4_CPUHALT, 0, 0);
1451 1.11 maya
1452 1.11 maya return 0;
1453 1.1 jmcneill }
1454 1.1 jmcneill
1455 1.1 jmcneill void
1456 1.1 jmcneill bwfm_chip_ca7_set_passive(struct bwfm_softc *sc)
1457 1.1 jmcneill {
1458 1.11 maya struct bwfm_core *core;
1459 1.11 maya uint32_t val;
1460 1.11 maya
1461 1.11 maya core = bwfm_chip_get_core(sc, BWFM_AGENT_CORE_ARM_CA7);
1462 1.11 maya val = sc->sc_buscore_ops->bc_read(sc,
1463 1.11 maya core->co_wrapbase + BWFM_AGENT_IOCTL);
1464 1.11 maya sc->sc_chip.ch_core_reset(sc, core,
1465 1.11 maya val & BWFM_AGENT_IOCTL_ARMCR4_CPUHALT,
1466 1.11 maya BWFM_AGENT_IOCTL_ARMCR4_CPUHALT,
1467 1.11 maya BWFM_AGENT_IOCTL_ARMCR4_CPUHALT);
1468 1.11 maya
1469 1.11 maya core = bwfm_chip_get_core(sc, BWFM_AGENT_CORE_80211);
1470 1.11 maya sc->sc_chip.ch_core_reset(sc, core, BWFM_AGENT_D11_IOCTL_PHYRESET |
1471 1.11 maya BWFM_AGENT_D11_IOCTL_PHYCLOCKEN, BWFM_AGENT_D11_IOCTL_PHYCLOCKEN,
1472 1.11 maya BWFM_AGENT_D11_IOCTL_PHYCLOCKEN);
1473 1.11 maya }
1474 1.11 maya
1475 1.11 maya int
1476 1.11 maya bwfm_chip_cm3_set_active(struct bwfm_softc *sc)
1477 1.11 maya {
1478 1.11 maya struct bwfm_core *core;
1479 1.11 maya
1480 1.11 maya core = bwfm_chip_get_core(sc, BWFM_AGENT_INTERNAL_MEM);
1481 1.11 maya if (!sc->sc_chip.ch_core_isup(sc, core))
1482 1.11 maya return 1;
1483 1.11 maya
1484 1.11 maya sc->sc_buscore_ops->bc_activate(sc, 0);
1485 1.11 maya
1486 1.11 maya core = bwfm_chip_get_core(sc, BWFM_AGENT_CORE_ARM_CM3);
1487 1.11 maya sc->sc_chip.ch_core_reset(sc, core, 0, 0, 0);
1488 1.11 maya
1489 1.11 maya return 0;
1490 1.1 jmcneill }
1491 1.1 jmcneill
1492 1.1 jmcneill void
1493 1.1 jmcneill bwfm_chip_cm3_set_passive(struct bwfm_softc *sc)
1494 1.1 jmcneill {
1495 1.1 jmcneill struct bwfm_core *core;
1496 1.1 jmcneill
1497 1.1 jmcneill core = bwfm_chip_get_core(sc, BWFM_AGENT_CORE_ARM_CM3);
1498 1.1 jmcneill sc->sc_chip.ch_core_disable(sc, core, 0, 0);
1499 1.1 jmcneill core = bwfm_chip_get_core(sc, BWFM_AGENT_CORE_80211);
1500 1.1 jmcneill sc->sc_chip.ch_core_reset(sc, core, BWFM_AGENT_D11_IOCTL_PHYRESET |
1501 1.1 jmcneill BWFM_AGENT_D11_IOCTL_PHYCLOCKEN, BWFM_AGENT_D11_IOCTL_PHYCLOCKEN,
1502 1.1 jmcneill BWFM_AGENT_D11_IOCTL_PHYCLOCKEN);
1503 1.1 jmcneill core = bwfm_chip_get_core(sc, BWFM_AGENT_INTERNAL_MEM);
1504 1.1 jmcneill sc->sc_chip.ch_core_reset(sc, core, 0, 0, 0);
1505 1.1 jmcneill
1506 1.1 jmcneill if (sc->sc_chip.ch_chip == BRCM_CC_43430_CHIP_ID) {
1507 1.1 jmcneill sc->sc_buscore_ops->bc_write(sc,
1508 1.1 jmcneill core->co_base + BWFM_SOCRAM_BANKIDX, 3);
1509 1.1 jmcneill sc->sc_buscore_ops->bc_write(sc,
1510 1.1 jmcneill core->co_base + BWFM_SOCRAM_BANKPDA, 0);
1511 1.1 jmcneill }
1512 1.1 jmcneill }
1513 1.1 jmcneill
1514 1.15 mlelstv int
1515 1.15 mlelstv bwfm_chip_sr_capable(struct bwfm_softc *sc)
1516 1.15 mlelstv {
1517 1.15 mlelstv struct bwfm_core *core;
1518 1.15 mlelstv uint32_t reg;
1519 1.15 mlelstv
1520 1.15 mlelstv if (sc->sc_chip.ch_pmurev < 17)
1521 1.15 mlelstv return 0;
1522 1.15 mlelstv
1523 1.15 mlelstv switch (sc->sc_chip.ch_chip) {
1524 1.15 mlelstv case BRCM_CC_4345_CHIP_ID:
1525 1.15 mlelstv case BRCM_CC_4354_CHIP_ID:
1526 1.15 mlelstv case BRCM_CC_4356_CHIP_ID:
1527 1.15 mlelstv core = bwfm_chip_get_pmu(sc);
1528 1.15 mlelstv sc->sc_buscore_ops->bc_write(sc, core->co_base +
1529 1.15 mlelstv BWFM_CHIP_REG_CHIPCONTROL_ADDR, 3);
1530 1.15 mlelstv reg = sc->sc_buscore_ops->bc_read(sc, core->co_base +
1531 1.15 mlelstv BWFM_CHIP_REG_CHIPCONTROL_DATA);
1532 1.15 mlelstv return (reg & (1 << 2)) != 0;
1533 1.15 mlelstv case BRCM_CC_43241_CHIP_ID:
1534 1.15 mlelstv case BRCM_CC_4335_CHIP_ID:
1535 1.15 mlelstv case BRCM_CC_4339_CHIP_ID:
1536 1.15 mlelstv core = bwfm_chip_get_pmu(sc);
1537 1.15 mlelstv sc->sc_buscore_ops->bc_write(sc, core->co_base +
1538 1.15 mlelstv BWFM_CHIP_REG_CHIPCONTROL_ADDR, 3);
1539 1.15 mlelstv reg = sc->sc_buscore_ops->bc_read(sc, core->co_base +
1540 1.15 mlelstv BWFM_CHIP_REG_CHIPCONTROL_DATA);
1541 1.15 mlelstv return reg != 0;
1542 1.15 mlelstv case BRCM_CC_43430_CHIP_ID:
1543 1.15 mlelstv core = bwfm_chip_get_core(sc, BWFM_AGENT_CORE_CHIPCOMMON);
1544 1.15 mlelstv reg = sc->sc_buscore_ops->bc_read(sc, core->co_base +
1545 1.15 mlelstv BWFM_CHIP_REG_SR_CONTROL1);
1546 1.15 mlelstv return reg != 0;
1547 1.15 mlelstv default:
1548 1.15 mlelstv core = bwfm_chip_get_pmu(sc);
1549 1.15 mlelstv reg = sc->sc_buscore_ops->bc_read(sc, core->co_base +
1550 1.15 mlelstv BWFM_CHIP_REG_PMUCAPABILITIES_EXT);
1551 1.15 mlelstv if ((reg & BWFM_CHIP_REG_PMUCAPABILITIES_SR_SUPP) == 0)
1552 1.15 mlelstv return 0;
1553 1.15 mlelstv reg = sc->sc_buscore_ops->bc_read(sc, core->co_base +
1554 1.15 mlelstv BWFM_CHIP_REG_RETENTION_CTL);
1555 1.15 mlelstv return (reg & (BWFM_CHIP_REG_RETENTION_CTL_MACPHY_DIS |
1556 1.15 mlelstv BWFM_CHIP_REG_RETENTION_CTL_LOGIC_DIS)) == 0;
1557 1.15 mlelstv }
1558 1.15 mlelstv }
1559 1.15 mlelstv
1560 1.11 maya /* RAM size helpers */
1561 1.11 maya void
1562 1.11 maya bwfm_chip_socram_ramsize(struct bwfm_softc *sc, struct bwfm_core *core)
1563 1.11 maya {
1564 1.11 maya uint32_t coreinfo, nb, lss, banksize, bankinfo;
1565 1.11 maya uint32_t ramsize = 0, srsize = 0;
1566 1.11 maya int i;
1567 1.11 maya
1568 1.11 maya if (!sc->sc_chip.ch_core_isup(sc, core))
1569 1.11 maya sc->sc_chip.ch_core_reset(sc, core, 0, 0, 0);
1570 1.11 maya
1571 1.11 maya coreinfo = sc->sc_buscore_ops->bc_read(sc,
1572 1.11 maya core->co_base + BWFM_SOCRAM_COREINFO);
1573 1.11 maya nb = (coreinfo & BWFM_SOCRAM_COREINFO_SRNB_MASK)
1574 1.11 maya >> BWFM_SOCRAM_COREINFO_SRNB_SHIFT;
1575 1.11 maya
1576 1.11 maya if (core->co_rev <= 7 || core->co_rev == 12) {
1577 1.11 maya banksize = coreinfo & BWFM_SOCRAM_COREINFO_SRBSZ_MASK;
1578 1.11 maya lss = (coreinfo & BWFM_SOCRAM_COREINFO_LSS_MASK)
1579 1.11 maya >> BWFM_SOCRAM_COREINFO_LSS_SHIFT;
1580 1.11 maya if (lss != 0)
1581 1.11 maya nb--;
1582 1.11 maya ramsize = nb * (1 << (banksize + BWFM_SOCRAM_COREINFO_SRBSZ_BASE));
1583 1.11 maya if (lss != 0)
1584 1.11 maya ramsize += (1 << ((lss - 1) + BWFM_SOCRAM_COREINFO_SRBSZ_BASE));
1585 1.11 maya } else {
1586 1.11 maya for (i = 0; i < nb; i++) {
1587 1.11 maya sc->sc_buscore_ops->bc_write(sc,
1588 1.11 maya core->co_base + BWFM_SOCRAM_BANKIDX,
1589 1.11 maya (BWFM_SOCRAM_BANKIDX_MEMTYPE_RAM <<
1590 1.11 maya BWFM_SOCRAM_BANKIDX_MEMTYPE_SHIFT) | i);
1591 1.11 maya bankinfo = sc->sc_buscore_ops->bc_read(sc,
1592 1.11 maya core->co_base + BWFM_SOCRAM_BANKINFO);
1593 1.11 maya banksize = ((bankinfo & BWFM_SOCRAM_BANKINFO_SZMASK) + 1)
1594 1.11 maya * BWFM_SOCRAM_BANKINFO_SZBASE;
1595 1.11 maya ramsize += banksize;
1596 1.11 maya if (bankinfo & BWFM_SOCRAM_BANKINFO_RETNTRAM_MASK)
1597 1.11 maya srsize += banksize;
1598 1.11 maya }
1599 1.11 maya }
1600 1.11 maya
1601 1.11 maya switch (sc->sc_chip.ch_chip) {
1602 1.11 maya case BRCM_CC_4334_CHIP_ID:
1603 1.11 maya if (sc->sc_chip.ch_chiprev < 2)
1604 1.11 maya srsize = 32 * 1024;
1605 1.11 maya break;
1606 1.11 maya case BRCM_CC_43430_CHIP_ID:
1607 1.11 maya srsize = 64 * 1024;
1608 1.11 maya break;
1609 1.11 maya default:
1610 1.11 maya break;
1611 1.11 maya }
1612 1.11 maya
1613 1.11 maya sc->sc_chip.ch_ramsize = ramsize;
1614 1.11 maya sc->sc_chip.ch_srsize = srsize;
1615 1.11 maya }
1616 1.11 maya
1617 1.11 maya void
1618 1.11 maya bwfm_chip_sysmem_ramsize(struct bwfm_softc *sc, struct bwfm_core *core)
1619 1.11 maya {
1620 1.11 maya uint32_t coreinfo, nb, banksize, bankinfo;
1621 1.11 maya uint32_t ramsize = 0;
1622 1.11 maya int i;
1623 1.11 maya
1624 1.11 maya if (!sc->sc_chip.ch_core_isup(sc, core))
1625 1.11 maya sc->sc_chip.ch_core_reset(sc, core, 0, 0, 0);
1626 1.11 maya
1627 1.11 maya coreinfo = sc->sc_buscore_ops->bc_read(sc,
1628 1.11 maya core->co_base + BWFM_SOCRAM_COREINFO);
1629 1.11 maya nb = (coreinfo & BWFM_SOCRAM_COREINFO_SRNB_MASK)
1630 1.11 maya >> BWFM_SOCRAM_COREINFO_SRNB_SHIFT;
1631 1.11 maya
1632 1.11 maya for (i = 0; i < nb; i++) {
1633 1.11 maya sc->sc_buscore_ops->bc_write(sc,
1634 1.11 maya core->co_base + BWFM_SOCRAM_BANKIDX,
1635 1.11 maya (BWFM_SOCRAM_BANKIDX_MEMTYPE_RAM <<
1636 1.11 maya BWFM_SOCRAM_BANKIDX_MEMTYPE_SHIFT) | i);
1637 1.11 maya bankinfo = sc->sc_buscore_ops->bc_read(sc,
1638 1.11 maya core->co_base + BWFM_SOCRAM_BANKINFO);
1639 1.11 maya banksize = ((bankinfo & BWFM_SOCRAM_BANKINFO_SZMASK) + 1)
1640 1.11 maya * BWFM_SOCRAM_BANKINFO_SZBASE;
1641 1.11 maya ramsize += banksize;
1642 1.11 maya }
1643 1.11 maya
1644 1.11 maya sc->sc_chip.ch_ramsize = ramsize;
1645 1.11 maya }
1646 1.11 maya
1647 1.11 maya void
1648 1.11 maya bwfm_chip_tcm_ramsize(struct bwfm_softc *sc, struct bwfm_core *core)
1649 1.11 maya {
1650 1.11 maya uint32_t cap, nab, nbb, totb, bxinfo, ramsize = 0;
1651 1.11 maya int i;
1652 1.11 maya
1653 1.11 maya cap = sc->sc_buscore_ops->bc_read(sc, core->co_base + BWFM_ARMCR4_CAP);
1654 1.11 maya nab = (cap & BWFM_ARMCR4_CAP_TCBANB_MASK) >> BWFM_ARMCR4_CAP_TCBANB_SHIFT;
1655 1.11 maya nbb = (cap & BWFM_ARMCR4_CAP_TCBBNB_MASK) >> BWFM_ARMCR4_CAP_TCBBNB_SHIFT;
1656 1.11 maya totb = nab + nbb;
1657 1.11 maya
1658 1.11 maya for (i = 0; i < totb; i++) {
1659 1.11 maya sc->sc_buscore_ops->bc_write(sc,
1660 1.11 maya core->co_base + BWFM_ARMCR4_BANKIDX, i);
1661 1.11 maya bxinfo = sc->sc_buscore_ops->bc_read(sc,
1662 1.11 maya core->co_base + BWFM_ARMCR4_BANKINFO);
1663 1.11 maya ramsize += ((bxinfo & BWFM_ARMCR4_BANKINFO_BSZ_MASK) + 1) *
1664 1.11 maya BWFM_ARMCR4_BANKINFO_BSZ_MULT;
1665 1.11 maya }
1666 1.11 maya
1667 1.11 maya sc->sc_chip.ch_ramsize = ramsize;
1668 1.11 maya }
1669 1.11 maya
1670 1.11 maya void
1671 1.11 maya bwfm_chip_tcm_rambase(struct bwfm_softc *sc)
1672 1.11 maya {
1673 1.11 maya switch (sc->sc_chip.ch_chip) {
1674 1.11 maya case BRCM_CC_4345_CHIP_ID:
1675 1.11 maya sc->sc_chip.ch_rambase = 0x198000;
1676 1.11 maya break;
1677 1.11 maya case BRCM_CC_4335_CHIP_ID:
1678 1.11 maya case BRCM_CC_4339_CHIP_ID:
1679 1.11 maya case BRCM_CC_4350_CHIP_ID:
1680 1.11 maya case BRCM_CC_4354_CHIP_ID:
1681 1.11 maya case BRCM_CC_4356_CHIP_ID:
1682 1.11 maya case BRCM_CC_43567_CHIP_ID:
1683 1.11 maya case BRCM_CC_43569_CHIP_ID:
1684 1.11 maya case BRCM_CC_43570_CHIP_ID:
1685 1.11 maya case BRCM_CC_4358_CHIP_ID:
1686 1.11 maya case BRCM_CC_4359_CHIP_ID:
1687 1.11 maya case BRCM_CC_43602_CHIP_ID:
1688 1.11 maya case BRCM_CC_4371_CHIP_ID:
1689 1.11 maya sc->sc_chip.ch_rambase = 0x180000;
1690 1.11 maya break;
1691 1.11 maya case BRCM_CC_43465_CHIP_ID:
1692 1.11 maya case BRCM_CC_43525_CHIP_ID:
1693 1.11 maya case BRCM_CC_4365_CHIP_ID:
1694 1.11 maya case BRCM_CC_4366_CHIP_ID:
1695 1.11 maya sc->sc_chip.ch_rambase = 0x200000;
1696 1.11 maya break;
1697 1.11 maya case CY_CC_4373_CHIP_ID:
1698 1.11 maya sc->sc_chip.ch_rambase = 0x160000;
1699 1.11 maya break;
1700 1.11 maya default:
1701 1.11 maya printf("%s: unknown chip: %d\n", DEVNAME(sc),
1702 1.11 maya sc->sc_chip.ch_chip);
1703 1.11 maya break;
1704 1.11 maya }
1705 1.11 maya }
1706 1.11 maya
1707 1.1 jmcneill /* BCDC protocol implementation */
1708 1.1 jmcneill int
1709 1.1 jmcneill bwfm_proto_bcdc_query_dcmd(struct bwfm_softc *sc, int ifidx,
1710 1.1 jmcneill int cmd, char *buf, size_t *len)
1711 1.1 jmcneill {
1712 1.1 jmcneill struct bwfm_proto_bcdc_dcmd *dcmd;
1713 1.1 jmcneill size_t size = sizeof(dcmd->hdr) + *len;
1714 1.18 mlelstv int reqid;
1715 1.1 jmcneill int ret = 1;
1716 1.1 jmcneill
1717 1.18 mlelstv reqid = sc->sc_bcdc_reqid++;
1718 1.1 jmcneill
1719 1.1 jmcneill dcmd = kmem_zalloc(sizeof(*dcmd), KM_SLEEP);
1720 1.1 jmcneill if (*len > sizeof(dcmd->buf))
1721 1.1 jmcneill goto err;
1722 1.1 jmcneill
1723 1.1 jmcneill dcmd->hdr.cmd = htole32(cmd);
1724 1.1 jmcneill dcmd->hdr.len = htole32(*len);
1725 1.1 jmcneill dcmd->hdr.flags |= BWFM_BCDC_DCMD_GET;
1726 1.1 jmcneill dcmd->hdr.flags |= BWFM_BCDC_DCMD_ID_SET(reqid);
1727 1.1 jmcneill dcmd->hdr.flags |= BWFM_BCDC_DCMD_IF_SET(ifidx);
1728 1.1 jmcneill dcmd->hdr.flags = htole32(dcmd->hdr.flags);
1729 1.1 jmcneill memcpy(&dcmd->buf, buf, *len);
1730 1.1 jmcneill
1731 1.1 jmcneill if (sc->sc_bus_ops->bs_txctl(sc, (void *)dcmd,
1732 1.1 jmcneill sizeof(dcmd->hdr) + *len)) {
1733 1.1 jmcneill DPRINTF(("%s: tx failed\n", DEVNAME(sc)));
1734 1.1 jmcneill goto err;
1735 1.1 jmcneill }
1736 1.1 jmcneill
1737 1.1 jmcneill do {
1738 1.1 jmcneill if (sc->sc_bus_ops->bs_rxctl(sc, (void *)dcmd, &size)) {
1739 1.1 jmcneill DPRINTF(("%s: rx failed\n", DEVNAME(sc)));
1740 1.1 jmcneill goto err;
1741 1.1 jmcneill }
1742 1.1 jmcneill dcmd->hdr.cmd = le32toh(dcmd->hdr.cmd);
1743 1.1 jmcneill dcmd->hdr.len = le32toh(dcmd->hdr.len);
1744 1.1 jmcneill dcmd->hdr.flags = le32toh(dcmd->hdr.flags);
1745 1.1 jmcneill dcmd->hdr.status = le32toh(dcmd->hdr.status);
1746 1.1 jmcneill } while (BWFM_BCDC_DCMD_ID_GET(dcmd->hdr.flags) != reqid);
1747 1.1 jmcneill
1748 1.1 jmcneill if (BWFM_BCDC_DCMD_ID_GET(dcmd->hdr.flags) != reqid) {
1749 1.1 jmcneill printf("%s: unexpected request id\n", DEVNAME(sc));
1750 1.1 jmcneill goto err;
1751 1.1 jmcneill }
1752 1.1 jmcneill
1753 1.1 jmcneill if (buf) {
1754 1.1 jmcneill if (size < *len)
1755 1.1 jmcneill *len = size;
1756 1.1 jmcneill memcpy(buf, dcmd->buf, *len);
1757 1.1 jmcneill }
1758 1.1 jmcneill
1759 1.1 jmcneill if (dcmd->hdr.flags & BWFM_BCDC_DCMD_ERROR)
1760 1.1 jmcneill ret = dcmd->hdr.status;
1761 1.1 jmcneill else
1762 1.1 jmcneill ret = 0;
1763 1.1 jmcneill err:
1764 1.1 jmcneill kmem_free(dcmd, sizeof(*dcmd));
1765 1.1 jmcneill return ret;
1766 1.1 jmcneill }
1767 1.1 jmcneill
1768 1.1 jmcneill int
1769 1.1 jmcneill bwfm_proto_bcdc_set_dcmd(struct bwfm_softc *sc, int ifidx,
1770 1.1 jmcneill int cmd, char *buf, size_t len)
1771 1.1 jmcneill {
1772 1.1 jmcneill struct bwfm_proto_bcdc_dcmd *dcmd;
1773 1.1 jmcneill size_t size = sizeof(dcmd->hdr) + len;
1774 1.18 mlelstv int ret = 1, reqid;
1775 1.1 jmcneill
1776 1.18 mlelstv reqid = sc->sc_bcdc_reqid++;
1777 1.1 jmcneill
1778 1.1 jmcneill dcmd = kmem_zalloc(sizeof(*dcmd), KM_SLEEP);
1779 1.1 jmcneill if (len > sizeof(dcmd->buf))
1780 1.1 jmcneill goto err;
1781 1.1 jmcneill
1782 1.1 jmcneill dcmd->hdr.cmd = htole32(cmd);
1783 1.1 jmcneill dcmd->hdr.len = htole32(len);
1784 1.1 jmcneill dcmd->hdr.flags |= BWFM_BCDC_DCMD_SET;
1785 1.1 jmcneill dcmd->hdr.flags |= BWFM_BCDC_DCMD_ID_SET(reqid);
1786 1.1 jmcneill dcmd->hdr.flags |= BWFM_BCDC_DCMD_IF_SET(ifidx);
1787 1.1 jmcneill dcmd->hdr.flags = htole32(dcmd->hdr.flags);
1788 1.1 jmcneill memcpy(&dcmd->buf, buf, len);
1789 1.1 jmcneill
1790 1.1 jmcneill if (sc->sc_bus_ops->bs_txctl(sc, (void *)dcmd, size)) {
1791 1.1 jmcneill DPRINTF(("%s: tx failed\n", DEVNAME(sc)));
1792 1.1 jmcneill goto err;
1793 1.1 jmcneill }
1794 1.1 jmcneill
1795 1.1 jmcneill do {
1796 1.1 jmcneill if (sc->sc_bus_ops->bs_rxctl(sc, (void *)dcmd, &size)) {
1797 1.1 jmcneill DPRINTF(("%s: rx failed\n", DEVNAME(sc)));
1798 1.1 jmcneill goto err;
1799 1.1 jmcneill }
1800 1.1 jmcneill dcmd->hdr.cmd = le32toh(dcmd->hdr.cmd);
1801 1.1 jmcneill dcmd->hdr.len = le32toh(dcmd->hdr.len);
1802 1.1 jmcneill dcmd->hdr.flags = le32toh(dcmd->hdr.flags);
1803 1.1 jmcneill dcmd->hdr.status = le32toh(dcmd->hdr.status);
1804 1.1 jmcneill } while (BWFM_BCDC_DCMD_ID_GET(dcmd->hdr.flags) != reqid);
1805 1.1 jmcneill
1806 1.1 jmcneill if (BWFM_BCDC_DCMD_ID_GET(dcmd->hdr.flags) != reqid) {
1807 1.1 jmcneill printf("%s: unexpected request id\n", DEVNAME(sc));
1808 1.1 jmcneill goto err;
1809 1.1 jmcneill }
1810 1.1 jmcneill
1811 1.1 jmcneill if (dcmd->hdr.flags & BWFM_BCDC_DCMD_ERROR)
1812 1.1 jmcneill return dcmd->hdr.status;
1813 1.1 jmcneill
1814 1.1 jmcneill ret = 0;
1815 1.1 jmcneill err:
1816 1.1 jmcneill kmem_free(dcmd, sizeof(*dcmd));
1817 1.1 jmcneill return ret;
1818 1.1 jmcneill }
1819 1.1 jmcneill
1820 1.32 mlelstv void
1821 1.32 mlelstv bwfm_process_blob(struct bwfm_softc *sc, const char *var, uint8_t **blob,
1822 1.32 mlelstv size_t *blobsize)
1823 1.32 mlelstv {
1824 1.32 mlelstv struct bwfm_dload_data *data;
1825 1.32 mlelstv size_t off, remain, len;
1826 1.32 mlelstv
1827 1.32 mlelstv if (*blob == NULL || *blobsize == 0)
1828 1.32 mlelstv return;
1829 1.32 mlelstv
1830 1.32 mlelstv off = 0;
1831 1.32 mlelstv remain = *blobsize;
1832 1.32 mlelstv data = kmem_alloc(sizeof(*data) + BWFM_DLOAD_MAX_LEN, KM_SLEEP);
1833 1.32 mlelstv
1834 1.32 mlelstv while (remain) {
1835 1.32 mlelstv len = uimin(remain, BWFM_DLOAD_MAX_LEN);
1836 1.32 mlelstv
1837 1.32 mlelstv data->flag = htole16(BWFM_DLOAD_FLAG_HANDLER_VER_1);
1838 1.32 mlelstv if (off == 0)
1839 1.32 mlelstv data->flag |= htole16(BWFM_DLOAD_FLAG_BEGIN);
1840 1.32 mlelstv if (remain <= BWFM_DLOAD_MAX_LEN)
1841 1.32 mlelstv data->flag |= htole16(BWFM_DLOAD_FLAG_END);
1842 1.32 mlelstv data->type = htole16(BWFM_DLOAD_TYPE_CLM);
1843 1.32 mlelstv data->len = htole32(len);
1844 1.32 mlelstv data->crc = 0;
1845 1.32 mlelstv memcpy(data->data, *blob + off, len);
1846 1.32 mlelstv
1847 1.32 mlelstv if (bwfm_fwvar_var_set_data(sc, var, data,
1848 1.32 mlelstv sizeof(*data) + len)) {
1849 1.32 mlelstv printf("%s: could not load blob (%s)\n", DEVNAME(sc),
1850 1.32 mlelstv var);
1851 1.32 mlelstv break;
1852 1.32 mlelstv }
1853 1.32 mlelstv
1854 1.32 mlelstv off += len;
1855 1.32 mlelstv remain -= len;
1856 1.32 mlelstv }
1857 1.32 mlelstv
1858 1.32 mlelstv kmem_free(data, sizeof(*data) + BWFM_DLOAD_MAX_LEN);
1859 1.32 mlelstv // kmem_free(*blob, *blobsize);
1860 1.32 mlelstv *blob = NULL;
1861 1.32 mlelstv *blobsize = 0;
1862 1.32 mlelstv }
1863 1.32 mlelstv
1864 1.1 jmcneill /* FW Variable code */
1865 1.1 jmcneill int
1866 1.1 jmcneill bwfm_fwvar_cmd_get_data(struct bwfm_softc *sc, int cmd, void *data, size_t len)
1867 1.1 jmcneill {
1868 1.1 jmcneill return sc->sc_proto_ops->proto_query_dcmd(sc, 0, cmd, data, &len);
1869 1.1 jmcneill }
1870 1.1 jmcneill
1871 1.1 jmcneill int
1872 1.1 jmcneill bwfm_fwvar_cmd_set_data(struct bwfm_softc *sc, int cmd, void *data, size_t len)
1873 1.1 jmcneill {
1874 1.1 jmcneill return sc->sc_proto_ops->proto_set_dcmd(sc, 0, cmd, data, len);
1875 1.1 jmcneill }
1876 1.1 jmcneill
1877 1.1 jmcneill int
1878 1.1 jmcneill bwfm_fwvar_cmd_get_int(struct bwfm_softc *sc, int cmd, uint32_t *data)
1879 1.1 jmcneill {
1880 1.1 jmcneill int ret;
1881 1.1 jmcneill ret = bwfm_fwvar_cmd_get_data(sc, cmd, data, sizeof(*data));
1882 1.1 jmcneill *data = le32toh(*data);
1883 1.1 jmcneill return ret;
1884 1.1 jmcneill }
1885 1.1 jmcneill
1886 1.1 jmcneill int
1887 1.1 jmcneill bwfm_fwvar_cmd_set_int(struct bwfm_softc *sc, int cmd, uint32_t data)
1888 1.1 jmcneill {
1889 1.1 jmcneill data = htole32(data);
1890 1.1 jmcneill return bwfm_fwvar_cmd_set_data(sc, cmd, &data, sizeof(data));
1891 1.1 jmcneill }
1892 1.1 jmcneill
1893 1.1 jmcneill int
1894 1.1 jmcneill bwfm_fwvar_var_get_data(struct bwfm_softc *sc, const char *name, void *data, size_t len)
1895 1.1 jmcneill {
1896 1.1 jmcneill char *buf;
1897 1.1 jmcneill int ret;
1898 1.1 jmcneill
1899 1.1 jmcneill buf = kmem_alloc(strlen(name) + 1 + len, KM_SLEEP);
1900 1.1 jmcneill memcpy(buf, name, strlen(name) + 1);
1901 1.1 jmcneill memcpy(buf + strlen(name) + 1, data, len);
1902 1.1 jmcneill ret = bwfm_fwvar_cmd_get_data(sc, BWFM_C_GET_VAR,
1903 1.1 jmcneill buf, strlen(name) + 1 + len);
1904 1.1 jmcneill memcpy(data, buf, len);
1905 1.1 jmcneill kmem_free(buf, strlen(name) + 1 + len);
1906 1.1 jmcneill return ret;
1907 1.1 jmcneill }
1908 1.1 jmcneill
1909 1.1 jmcneill int
1910 1.1 jmcneill bwfm_fwvar_var_set_data(struct bwfm_softc *sc, const char *name, void *data, size_t len)
1911 1.1 jmcneill {
1912 1.1 jmcneill char *buf;
1913 1.1 jmcneill int ret;
1914 1.1 jmcneill
1915 1.1 jmcneill buf = kmem_alloc(strlen(name) + 1 + len, KM_SLEEP);
1916 1.1 jmcneill memcpy(buf, name, strlen(name) + 1);
1917 1.1 jmcneill memcpy(buf + strlen(name) + 1, data, len);
1918 1.1 jmcneill ret = bwfm_fwvar_cmd_set_data(sc, BWFM_C_SET_VAR,
1919 1.1 jmcneill buf, strlen(name) + 1 + len);
1920 1.1 jmcneill kmem_free(buf, strlen(name) + 1 + len);
1921 1.1 jmcneill return ret;
1922 1.1 jmcneill }
1923 1.1 jmcneill
1924 1.1 jmcneill int
1925 1.1 jmcneill bwfm_fwvar_var_get_int(struct bwfm_softc *sc, const char *name, uint32_t *data)
1926 1.1 jmcneill {
1927 1.1 jmcneill int ret;
1928 1.1 jmcneill ret = bwfm_fwvar_var_get_data(sc, name, data, sizeof(*data));
1929 1.1 jmcneill *data = le32toh(*data);
1930 1.1 jmcneill return ret;
1931 1.1 jmcneill }
1932 1.1 jmcneill
1933 1.1 jmcneill int
1934 1.1 jmcneill bwfm_fwvar_var_set_int(struct bwfm_softc *sc, const char *name, uint32_t data)
1935 1.1 jmcneill {
1936 1.1 jmcneill data = htole32(data);
1937 1.1 jmcneill return bwfm_fwvar_var_set_data(sc, name, &data, sizeof(data));
1938 1.1 jmcneill }
1939 1.1 jmcneill
1940 1.1 jmcneill /* 802.11 code */
1941 1.1 jmcneill void
1942 1.1 jmcneill bwfm_scan(struct bwfm_softc *sc)
1943 1.1 jmcneill {
1944 1.1 jmcneill struct bwfm_escan_params *params;
1945 1.1 jmcneill uint32_t nssid = 0, nchannel = 0;
1946 1.1 jmcneill size_t params_size;
1947 1.1 jmcneill
1948 1.1 jmcneill #if 0
1949 1.1 jmcneill /* Active scan is used for scanning for an SSID */
1950 1.1 jmcneill bwfm_fwvar_cmd_set_int(sc, BWFM_C_SET_PASSIVE_SCAN, 0);
1951 1.1 jmcneill #endif
1952 1.1 jmcneill bwfm_fwvar_cmd_set_int(sc, BWFM_C_SET_PASSIVE_SCAN, 1);
1953 1.1 jmcneill
1954 1.1 jmcneill params_size = sizeof(*params);
1955 1.1 jmcneill params_size += sizeof(uint32_t) * ((nchannel + 1) / 2);
1956 1.1 jmcneill params_size += sizeof(struct bwfm_ssid) * nssid;
1957 1.1 jmcneill
1958 1.1 jmcneill params = kmem_zalloc(params_size, KM_SLEEP);
1959 1.1 jmcneill memset(params->scan_params.bssid, 0xff,
1960 1.1 jmcneill sizeof(params->scan_params.bssid));
1961 1.1 jmcneill params->scan_params.bss_type = 2;
1962 1.1 jmcneill params->scan_params.nprobes = htole32(-1);
1963 1.1 jmcneill params->scan_params.active_time = htole32(-1);
1964 1.1 jmcneill params->scan_params.passive_time = htole32(-1);
1965 1.1 jmcneill params->scan_params.home_time = htole32(-1);
1966 1.1 jmcneill params->version = htole32(BWFM_ESCAN_REQ_VERSION);
1967 1.1 jmcneill params->action = htole16(WL_ESCAN_ACTION_START);
1968 1.1 jmcneill params->sync_id = htole16(0x1234);
1969 1.1 jmcneill
1970 1.1 jmcneill #if 0
1971 1.1 jmcneill /* Scan a specific channel */
1972 1.1 jmcneill params->scan_params.channel_list[0] = htole16(
1973 1.1 jmcneill (1 & 0xff) << 0 |
1974 1.1 jmcneill (3 & 0x3) << 8 |
1975 1.1 jmcneill (2 & 0x3) << 10 |
1976 1.1 jmcneill (2 & 0x3) << 12
1977 1.1 jmcneill );
1978 1.1 jmcneill params->scan_params.channel_num = htole32(
1979 1.1 jmcneill (1 & 0xffff) << 0
1980 1.1 jmcneill );
1981 1.1 jmcneill #endif
1982 1.1 jmcneill
1983 1.1 jmcneill bwfm_fwvar_var_set_data(sc, "escan", params, params_size);
1984 1.1 jmcneill kmem_free(params, params_size);
1985 1.1 jmcneill }
1986 1.1 jmcneill
1987 1.1 jmcneill static __inline int
1988 1.1 jmcneill bwfm_iswpaoui(const uint8_t *frm)
1989 1.1 jmcneill {
1990 1.1 jmcneill return frm[1] > 3 && le32dec(frm+2) == ((WPA_OUI_TYPE<<24)|WPA_OUI);
1991 1.1 jmcneill }
1992 1.1 jmcneill
1993 1.1 jmcneill /*
1994 1.1 jmcneill * Derive wireless security settings from WPA/RSN IE.
1995 1.1 jmcneill */
1996 1.1 jmcneill static uint32_t
1997 1.1 jmcneill bwfm_get_wsec(struct bwfm_softc *sc)
1998 1.1 jmcneill {
1999 1.1 jmcneill struct ieee80211com *ic = &sc->sc_ic;
2000 1.1 jmcneill uint8_t *wpa = ic->ic_opt_ie;
2001 1.1 jmcneill
2002 1.1 jmcneill KASSERT(ic->ic_opt_ie_len > 0);
2003 1.1 jmcneill
2004 1.1 jmcneill if (wpa[0] != IEEE80211_ELEMID_RSN) {
2005 1.1 jmcneill if (ic->ic_opt_ie_len < 12)
2006 1.1 jmcneill return BWFM_WSEC_NONE;
2007 1.1 jmcneill
2008 1.1 jmcneill /* non-RSN IE, expect that we are doing WPA1 */
2009 1.1 jmcneill if ((ic->ic_flags & IEEE80211_F_WPA1) == 0)
2010 1.1 jmcneill return BWFM_WSEC_NONE;
2011 1.1 jmcneill
2012 1.1 jmcneill /* Must contain WPA OUI */
2013 1.1 jmcneill if (!bwfm_iswpaoui(wpa))
2014 1.1 jmcneill return BWFM_WSEC_NONE;
2015 1.1 jmcneill
2016 1.1 jmcneill switch (le32dec(wpa + 8)) {
2017 1.1 jmcneill case ((WPA_CSE_TKIP<<24)|WPA_OUI):
2018 1.1 jmcneill return BWFM_WSEC_TKIP;
2019 1.1 jmcneill case ((WPA_CSE_CCMP<<24)|WPA_OUI):
2020 1.1 jmcneill return BWFM_WSEC_AES;
2021 1.1 jmcneill default:
2022 1.1 jmcneill return BWFM_WSEC_NONE;
2023 1.1 jmcneill }
2024 1.1 jmcneill } else {
2025 1.1 jmcneill if (ic->ic_opt_ie_len < 14)
2026 1.1 jmcneill return BWFM_WSEC_NONE;
2027 1.1 jmcneill
2028 1.1 jmcneill /* RSN IE, expect that we are doing WPA2 */
2029 1.1 jmcneill if ((ic->ic_flags & IEEE80211_F_WPA2) == 0)
2030 1.1 jmcneill return BWFM_WSEC_NONE;
2031 1.1 jmcneill
2032 1.1 jmcneill switch (le32dec(wpa + 10)) {
2033 1.1 jmcneill case ((RSN_CSE_TKIP<<24)|RSN_OUI):
2034 1.1 jmcneill return BWFM_WSEC_TKIP;
2035 1.1 jmcneill case ((RSN_CSE_CCMP<<24)|RSN_OUI):
2036 1.1 jmcneill return BWFM_WSEC_AES;
2037 1.1 jmcneill default:
2038 1.1 jmcneill return BWFM_WSEC_NONE;
2039 1.1 jmcneill }
2040 1.1 jmcneill }
2041 1.1 jmcneill }
2042 1.1 jmcneill
2043 1.1 jmcneill void
2044 1.1 jmcneill bwfm_connect(struct bwfm_softc *sc)
2045 1.1 jmcneill {
2046 1.1 jmcneill struct ieee80211com *ic = &sc->sc_ic;
2047 1.1 jmcneill struct ieee80211_node *ni = ic->ic_bss;
2048 1.1 jmcneill struct bwfm_ext_join_params *params;
2049 1.1 jmcneill
2050 1.1 jmcneill if (ic->ic_flags & IEEE80211_F_WPA) {
2051 1.1 jmcneill uint32_t wsec = 0;
2052 1.1 jmcneill uint32_t wpa = 0;
2053 1.1 jmcneill
2054 1.1 jmcneill if (ic->ic_opt_ie_len)
2055 1.1 jmcneill bwfm_fwvar_var_set_data(sc, "wpaie", ic->ic_opt_ie, ic->ic_opt_ie_len);
2056 1.1 jmcneill
2057 1.1 jmcneill if (ic->ic_flags & IEEE80211_F_WPA1)
2058 1.1 jmcneill wpa |= BWFM_WPA_AUTH_WPA_PSK;
2059 1.1 jmcneill if (ic->ic_flags & IEEE80211_F_WPA2)
2060 1.1 jmcneill wpa |= BWFM_WPA_AUTH_WPA2_PSK;
2061 1.1 jmcneill
2062 1.1 jmcneill wsec |= bwfm_get_wsec(sc);
2063 1.1 jmcneill
2064 1.1 jmcneill DPRINTF(("%s: WPA enabled, ic_flags = 0x%x, wpa 0x%x, wsec 0x%x\n",
2065 1.1 jmcneill DEVNAME(sc), ic->ic_flags, wpa, wsec));
2066 1.1 jmcneill
2067 1.1 jmcneill bwfm_fwvar_var_set_int(sc, "wpa_auth", wpa);
2068 1.1 jmcneill bwfm_fwvar_var_set_int(sc, "wsec", wsec);
2069 1.1 jmcneill } else {
2070 1.1 jmcneill bwfm_fwvar_var_set_int(sc, "wpa_auth", BWFM_WPA_AUTH_DISABLED);
2071 1.1 jmcneill bwfm_fwvar_var_set_int(sc, "wsec", BWFM_WSEC_NONE);
2072 1.1 jmcneill }
2073 1.1 jmcneill
2074 1.1 jmcneill bwfm_fwvar_var_set_int(sc, "auth", BWFM_AUTH_OPEN);
2075 1.1 jmcneill bwfm_fwvar_var_set_int(sc, "mfp", BWFM_MFP_NONE);
2076 1.1 jmcneill
2077 1.1 jmcneill if (ni->ni_esslen && ni->ni_esslen < BWFM_MAX_SSID_LEN) {
2078 1.1 jmcneill params = kmem_zalloc(sizeof(*params), KM_SLEEP);
2079 1.1 jmcneill memcpy(params->ssid.ssid, ni->ni_essid, ni->ni_esslen);
2080 1.1 jmcneill params->ssid.len = htole32(ni->ni_esslen);
2081 1.1 jmcneill memcpy(params->assoc.bssid, ni->ni_bssid, sizeof(params->assoc.bssid));
2082 1.1 jmcneill params->scan.scan_type = -1;
2083 1.1 jmcneill params->scan.nprobes = htole32(-1);
2084 1.1 jmcneill params->scan.active_time = htole32(-1);
2085 1.1 jmcneill params->scan.passive_time = htole32(-1);
2086 1.1 jmcneill params->scan.home_time = htole32(-1);
2087 1.1 jmcneill if (bwfm_fwvar_var_set_data(sc, "join", params, sizeof(*params))) {
2088 1.1 jmcneill struct bwfm_join_params join;
2089 1.1 jmcneill memset(&join, 0, sizeof(join));
2090 1.1 jmcneill memcpy(join.ssid.ssid, ni->ni_essid, ni->ni_esslen);
2091 1.1 jmcneill join.ssid.len = htole32(ni->ni_esslen);
2092 1.1 jmcneill memcpy(join.assoc.bssid, ni->ni_bssid, sizeof(join.assoc.bssid));
2093 1.1 jmcneill bwfm_fwvar_cmd_set_data(sc, BWFM_C_SET_SSID, &join,
2094 1.1 jmcneill sizeof(join));
2095 1.1 jmcneill }
2096 1.1 jmcneill kmem_free(params, sizeof(*params));
2097 1.1 jmcneill }
2098 1.1 jmcneill }
2099 1.1 jmcneill
2100 1.1 jmcneill void
2101 1.17 jmcneill bwfm_get_sta_info(struct bwfm_softc *sc, struct ifmediareq *ifmr)
2102 1.17 jmcneill {
2103 1.17 jmcneill struct ieee80211com *ic = &sc->sc_ic;
2104 1.17 jmcneill struct ieee80211_node *ni = ic->ic_bss;
2105 1.17 jmcneill struct bwfm_sta_info sta;
2106 1.17 jmcneill uint32_t flags, txrate;
2107 1.17 jmcneill
2108 1.17 jmcneill memset(&sta, 0, sizeof(sta));
2109 1.17 jmcneill memcpy(&sta, ni->ni_macaddr, sizeof(ni->ni_macaddr));
2110 1.17 jmcneill
2111 1.17 jmcneill if (bwfm_fwvar_var_get_data(sc, "sta_info", &sta, sizeof(sta)))
2112 1.17 jmcneill return;
2113 1.17 jmcneill
2114 1.17 jmcneill if (!IEEE80211_ADDR_EQ(ni->ni_macaddr, sta.ea))
2115 1.17 jmcneill return;
2116 1.17 jmcneill
2117 1.17 jmcneill if (le16toh(sta.ver) < 4)
2118 1.17 jmcneill return;
2119 1.17 jmcneill
2120 1.17 jmcneill flags = le32toh(sta.flags);
2121 1.17 jmcneill if ((flags & BWFM_STA_SCBSTATS) == 0)
2122 1.17 jmcneill return;
2123 1.17 jmcneill
2124 1.17 jmcneill txrate = le32toh(sta.tx_rate);
2125 1.17 jmcneill if (txrate == 0xffffffff)
2126 1.17 jmcneill return;
2127 1.17 jmcneill
2128 1.17 jmcneill if ((flags & BWFM_STA_VHT_CAP) != 0) {
2129 1.17 jmcneill ifmr->ifm_active &= ~IFM_TMASK;
2130 1.17 jmcneill ifmr->ifm_active |= IFM_IEEE80211_VHT;
2131 1.17 jmcneill ifmr->ifm_active &= ~IFM_MMASK;
2132 1.17 jmcneill ifmr->ifm_active |= IFM_IEEE80211_11AC;
2133 1.17 jmcneill } else if ((flags & BWFM_STA_N_CAP) != 0) {
2134 1.17 jmcneill ifmr->ifm_active &= ~IFM_TMASK;
2135 1.17 jmcneill ifmr->ifm_active |= IFM_IEEE80211_MCS;
2136 1.17 jmcneill ifmr->ifm_active &= ~IFM_MMASK;
2137 1.17 jmcneill if (IEEE80211_IS_CHAN_2GHZ(ic->ic_curchan))
2138 1.17 jmcneill ifmr->ifm_active |= IFM_IEEE80211_11NG;
2139 1.17 jmcneill else
2140 1.17 jmcneill ifmr->ifm_active |= IFM_IEEE80211_11NA;
2141 1.17 jmcneill }
2142 1.17 jmcneill }
2143 1.17 jmcneill
2144 1.17 jmcneill void
2145 1.11 maya bwfm_rx(struct bwfm_softc *sc, struct mbuf *m)
2146 1.1 jmcneill {
2147 1.1 jmcneill struct ieee80211com *ic = &sc->sc_ic;
2148 1.1 jmcneill struct ifnet *ifp = ic->ic_ifp;
2149 1.11 maya struct bwfm_event *e = mtod(m, struct bwfm_event *);
2150 1.1 jmcneill
2151 1.11 maya if (m->m_len >= sizeof(e->ehdr) &&
2152 1.1 jmcneill ntohs(e->ehdr.ether_type) == BWFM_ETHERTYPE_LINK_CTL &&
2153 1.1 jmcneill memcmp(BWFM_BRCM_OUI, e->hdr.oui, sizeof(e->hdr.oui)) == 0 &&
2154 1.11 maya ntohs(e->hdr.usr_subtype) == BWFM_BRCM_SUBTYPE_EVENT) {
2155 1.15 mlelstv bwfm_rx_event(sc, m);
2156 1.15 mlelstv // m_freem(m);
2157 1.1 jmcneill return;
2158 1.1 jmcneill }
2159 1.1 jmcneill
2160 1.18 mlelstv m_set_rcvif(m, ifp);
2161 1.18 mlelstv if_percpuq_enqueue(ifp->if_percpuq, m);
2162 1.15 mlelstv }
2163 1.15 mlelstv
2164 1.15 mlelstv void
2165 1.15 mlelstv bwfm_rx_event(struct bwfm_softc *sc, struct mbuf *m)
2166 1.15 mlelstv {
2167 1.15 mlelstv struct bwfm_task *t;
2168 1.15 mlelstv
2169 1.29 riastrad t = pool_cache_get(sc->sc_freetask, PR_NOWAIT);
2170 1.15 mlelstv if (t == NULL) {
2171 1.15 mlelstv m_freem(m);
2172 1.15 mlelstv printf("%s: no free tasks\n", DEVNAME(sc));
2173 1.15 mlelstv return;
2174 1.1 jmcneill }
2175 1.1 jmcneill
2176 1.29 riastrad t->t_sc = sc;
2177 1.15 mlelstv t->t_cmd = BWFM_TASK_RX_EVENT;
2178 1.15 mlelstv t->t_mbuf = m;
2179 1.15 mlelstv workqueue_enqueue(sc->sc_taskq, (struct work*)t, NULL);
2180 1.1 jmcneill }
2181 1.1 jmcneill
2182 1.1 jmcneill void
2183 1.15 mlelstv bwfm_rx_event_cb(struct bwfm_softc *sc, struct mbuf *m)
2184 1.1 jmcneill {
2185 1.1 jmcneill struct ieee80211com *ic = &sc->sc_ic;
2186 1.15 mlelstv struct bwfm_event *e = mtod(m, void *);
2187 1.15 mlelstv size_t len = m->m_len;
2188 1.1 jmcneill int s;
2189 1.1 jmcneill
2190 1.15 mlelstv DPRINTF(("%s: event %p len %lu datalen %u code %u status %u"
2191 1.15 mlelstv " reason %u\n", __func__, e, len, ntohl(e->msg.datalen),
2192 1.1 jmcneill ntohl(e->msg.event_type), ntohl(e->msg.status),
2193 1.1 jmcneill ntohl(e->msg.reason)));
2194 1.1 jmcneill
2195 1.15 mlelstv if (ntohl(e->msg.event_type) >= BWFM_E_LAST) {
2196 1.15 mlelstv m_freem(m);
2197 1.1 jmcneill return;
2198 1.15 mlelstv }
2199 1.1 jmcneill
2200 1.1 jmcneill switch (ntohl(e->msg.event_type)) {
2201 1.1 jmcneill case BWFM_E_ESCAN_RESULT: {
2202 1.15 mlelstv struct bwfm_escan_results *res = (void *)&e[1];
2203 1.1 jmcneill struct bwfm_bss_info *bss;
2204 1.1 jmcneill int i;
2205 1.1 jmcneill if (ntohl(e->msg.status) != BWFM_E_STATUS_PARTIAL) {
2206 1.1 jmcneill /* Scan complete */
2207 1.1 jmcneill s = splnet();
2208 1.1 jmcneill if (ic->ic_opmode != IEEE80211_M_MONITOR)
2209 1.1 jmcneill ieee80211_end_scan(ic);
2210 1.1 jmcneill splx(s);
2211 1.1 jmcneill break;
2212 1.1 jmcneill }
2213 1.1 jmcneill len -= sizeof(*e);
2214 1.1 jmcneill if (len < sizeof(*res) || len < le32toh(res->buflen)) {
2215 1.15 mlelstv m_freem(m);
2216 1.1 jmcneill printf("%s: results too small\n", DEVNAME(sc));
2217 1.1 jmcneill return;
2218 1.1 jmcneill }
2219 1.1 jmcneill len -= sizeof(*res);
2220 1.1 jmcneill if (len < le16toh(res->bss_count) * sizeof(struct bwfm_bss_info)) {
2221 1.15 mlelstv m_freem(m);
2222 1.1 jmcneill printf("%s: results too small\n", DEVNAME(sc));
2223 1.1 jmcneill return;
2224 1.1 jmcneill }
2225 1.1 jmcneill bss = &res->bss_info[0];
2226 1.1 jmcneill for (i = 0; i < le16toh(res->bss_count); i++) {
2227 1.2 jmcneill /* Fix alignment of bss_info */
2228 1.25 jdolecek if (len > sizeof(sc->sc_bss_buf)) {
2229 1.2 jmcneill printf("%s: bss_info buffer too big\n", DEVNAME(sc));
2230 1.2 jmcneill } else {
2231 1.25 jdolecek memcpy(&sc->sc_bss_buf, &res->bss_info[i], len);
2232 1.25 jdolecek bwfm_scan_node(sc, &sc->sc_bss_buf.bss_info,
2233 1.25 jdolecek len);
2234 1.2 jmcneill }
2235 1.1 jmcneill len -= sizeof(*bss) + le32toh(bss->length);
2236 1.1 jmcneill bss = (void *)(((uintptr_t)bss) + le32toh(bss->length));
2237 1.1 jmcneill if (len <= 0)
2238 1.1 jmcneill break;
2239 1.1 jmcneill }
2240 1.1 jmcneill break;
2241 1.1 jmcneill }
2242 1.1 jmcneill
2243 1.1 jmcneill case BWFM_E_SET_SSID:
2244 1.1 jmcneill if (ntohl(e->msg.status) == BWFM_E_STATUS_SUCCESS) {
2245 1.1 jmcneill ieee80211_new_state(ic, IEEE80211_S_RUN, -1);
2246 1.1 jmcneill } else {
2247 1.1 jmcneill ieee80211_new_state(ic, IEEE80211_S_SCAN, -1);
2248 1.1 jmcneill }
2249 1.1 jmcneill break;
2250 1.1 jmcneill
2251 1.1 jmcneill case BWFM_E_ASSOC:
2252 1.1 jmcneill if (ntohl(e->msg.status) == BWFM_E_STATUS_SUCCESS) {
2253 1.1 jmcneill ieee80211_new_state(ic, IEEE80211_S_ASSOC, -1);
2254 1.1 jmcneill } else {
2255 1.1 jmcneill ieee80211_new_state(ic, IEEE80211_S_SCAN, -1);
2256 1.1 jmcneill }
2257 1.1 jmcneill break;
2258 1.1 jmcneill
2259 1.1 jmcneill case BWFM_E_LINK:
2260 1.1 jmcneill if (ntohl(e->msg.status) == BWFM_E_STATUS_SUCCESS &&
2261 1.1 jmcneill ntohl(e->msg.reason) == 0)
2262 1.1 jmcneill break;
2263 1.11 maya
2264 1.1 jmcneill /* Link status has changed */
2265 1.1 jmcneill ieee80211_new_state(ic, IEEE80211_S_SCAN, -1);
2266 1.1 jmcneill break;
2267 1.1 jmcneill
2268 1.1 jmcneill default:
2269 1.1 jmcneill break;
2270 1.1 jmcneill }
2271 1.15 mlelstv
2272 1.15 mlelstv m_freem(m);
2273 1.1 jmcneill }
2274 1.1 jmcneill
2275 1.1 jmcneill void
2276 1.1 jmcneill bwfm_scan_node(struct bwfm_softc *sc, struct bwfm_bss_info *bss, size_t len)
2277 1.1 jmcneill {
2278 1.1 jmcneill struct ieee80211com *ic = &sc->sc_ic;
2279 1.1 jmcneill struct ieee80211_frame wh;
2280 1.1 jmcneill struct ieee80211_scanparams scan;
2281 1.1 jmcneill uint8_t rates[sizeof(bss->rates) + 2];
2282 1.1 jmcneill uint8_t ssid[sizeof(bss->ssid) + 2];
2283 1.1 jmcneill uint8_t *frm, *sfrm, *efrm;
2284 1.1 jmcneill uint64_t tsf;
2285 1.1 jmcneill
2286 1.1 jmcneill tsf = 0;
2287 1.1 jmcneill sfrm = ((uint8_t *)bss) + le16toh(bss->ie_offset);
2288 1.1 jmcneill efrm = sfrm + le32toh(bss->ie_length);
2289 1.1 jmcneill
2290 1.1 jmcneill /* Fake a wireless header with the scan result's BSSID */
2291 1.1 jmcneill memset(&wh, 0, sizeof(wh));
2292 1.1 jmcneill IEEE80211_ADDR_COPY(wh.i_addr2, bss->bssid);
2293 1.1 jmcneill IEEE80211_ADDR_COPY(wh.i_addr3, bss->bssid);
2294 1.1 jmcneill
2295 1.1 jmcneill if (efrm - sfrm < 12) {
2296 1.1 jmcneill ic->ic_stats.is_rx_elem_toosmall++;
2297 1.1 jmcneill return;
2298 1.1 jmcneill }
2299 1.1 jmcneill
2300 1.1 jmcneill rates[0] = 0;
2301 1.1 jmcneill rates[1] = le32toh(bss->nrates);
2302 1.1 jmcneill memcpy(&rates[2], bss->rates, sizeof(bss->rates));
2303 1.1 jmcneill
2304 1.1 jmcneill ssid[0] = 0;
2305 1.1 jmcneill ssid[1] = bss->ssid_len;
2306 1.1 jmcneill memcpy(&ssid[2], bss->ssid, sizeof(bss->ssid));
2307 1.1 jmcneill
2308 1.1 jmcneill /* Build scan result */
2309 1.1 jmcneill memset(&scan, 0, sizeof(scan));
2310 1.10 maxv scan.sp_tstamp = (uint8_t *)&tsf;
2311 1.10 maxv scan.sp_bintval = le16toh(bss->beacon_period);
2312 1.10 maxv scan.sp_capinfo = le16toh(bss->capability);
2313 1.10 maxv scan.sp_bchan = ieee80211_chan2ieee(ic, ic->ic_curchan);
2314 1.10 maxv scan.sp_chan = scan.sp_bchan;
2315 1.10 maxv scan.sp_rates = rates;
2316 1.10 maxv scan.sp_ssid = ssid;
2317 1.1 jmcneill
2318 1.1 jmcneill for (frm = sfrm; frm < efrm; frm += frm[1] + 2) {
2319 1.1 jmcneill switch (frm[0]) {
2320 1.1 jmcneill case IEEE80211_ELEMID_COUNTRY:
2321 1.10 maxv scan.sp_country = frm;
2322 1.1 jmcneill break;
2323 1.1 jmcneill case IEEE80211_ELEMID_FHPARMS:
2324 1.1 jmcneill if (ic->ic_phytype == IEEE80211_T_FH) {
2325 1.8 maxv if (frm + 6 >= efrm)
2326 1.8 maxv break;
2327 1.10 maxv scan.sp_fhdwell = le16dec(&frm[2]);
2328 1.10 maxv scan.sp_chan = IEEE80211_FH_CHAN(frm[4], frm[5]);
2329 1.10 maxv scan.sp_fhindex = frm[6];
2330 1.1 jmcneill }
2331 1.1 jmcneill break;
2332 1.1 jmcneill case IEEE80211_ELEMID_DSPARMS:
2333 1.8 maxv if (ic->ic_phytype != IEEE80211_T_FH) {
2334 1.8 maxv if (frm + 2 >= efrm)
2335 1.8 maxv break;
2336 1.10 maxv scan.sp_chan = frm[2];
2337 1.8 maxv }
2338 1.1 jmcneill break;
2339 1.1 jmcneill case IEEE80211_ELEMID_TIM:
2340 1.10 maxv scan.sp_tim = frm;
2341 1.10 maxv scan.sp_timoff = frm - sfrm;
2342 1.1 jmcneill break;
2343 1.1 jmcneill case IEEE80211_ELEMID_XRATES:
2344 1.10 maxv scan.sp_xrates = frm;
2345 1.1 jmcneill break;
2346 1.1 jmcneill case IEEE80211_ELEMID_ERP:
2347 1.8 maxv if (frm + 1 >= efrm)
2348 1.8 maxv break;
2349 1.1 jmcneill if (frm[1] != 1) {
2350 1.1 jmcneill ic->ic_stats.is_rx_elem_toobig++;
2351 1.1 jmcneill break;
2352 1.1 jmcneill }
2353 1.10 maxv scan.sp_erp = frm[2];
2354 1.1 jmcneill break;
2355 1.1 jmcneill case IEEE80211_ELEMID_RSN:
2356 1.10 maxv scan.sp_wpa = frm;
2357 1.1 jmcneill break;
2358 1.1 jmcneill case IEEE80211_ELEMID_VENDOR:
2359 1.8 maxv if (frm + 1 >= efrm)
2360 1.8 maxv break;
2361 1.8 maxv if (frm + frm[1] + 2 >= efrm)
2362 1.8 maxv break;
2363 1.1 jmcneill if (bwfm_iswpaoui(frm))
2364 1.10 maxv scan.sp_wpa = frm;
2365 1.1 jmcneill break;
2366 1.1 jmcneill }
2367 1.9 maxv if (frm + 1 >= efrm)
2368 1.9 maxv break;
2369 1.1 jmcneill }
2370 1.1 jmcneill
2371 1.1 jmcneill if (ic->ic_flags & IEEE80211_F_SCAN)
2372 1.1 jmcneill ieee80211_add_scan(ic, &scan, &wh, IEEE80211_FC0_SUBTYPE_BEACON,
2373 1.1 jmcneill le32toh(bss->rssi), 0);
2374 1.1 jmcneill }
2375