blob: 787478520864a97b5610332c07f6c01dc452333a [file] [log] [blame]
Gabriel Biren72cf9a52021-06-25 23:29:26 +00001/*
2 * aidl interface for wpa_hostapd daemon
3 * Copyright (c) 2004-2018, Jouni Malinen <j@w1.fi>
4 * Copyright (c) 2004-2018, Roshan Pius <rpius@google.com>
5 *
6 * This software may be distributed under the terms of the BSD license.
7 * See README for more details.
8 */
9#include <iomanip>
10#include <sstream>
11#include <string>
12#include <vector>
13#include <net/if.h>
14#include <sys/socket.h>
15#include <linux/if_bridge.h>
16
17#include <android-base/file.h>
18#include <android-base/stringprintf.h>
19#include <android-base/unique_fd.h>
20
21#include "hostapd.h"
22#include <aidl/android/hardware/wifi/hostapd/ApInfo.h>
23#include <aidl/android/hardware/wifi/hostapd/BandMask.h>
24#include <aidl/android/hardware/wifi/hostapd/ChannelParams.h>
25#include <aidl/android/hardware/wifi/hostapd/ClientInfo.h>
26#include <aidl/android/hardware/wifi/hostapd/EncryptionType.h>
27#include <aidl/android/hardware/wifi/hostapd/HostapdStatusCode.h>
28#include <aidl/android/hardware/wifi/hostapd/IfaceParams.h>
29#include <aidl/android/hardware/wifi/hostapd/NetworkParams.h>
30#include <aidl/android/hardware/wifi/hostapd/ParamSizeLimits.h>
31
32extern "C"
33{
34#include "common/wpa_ctrl.h"
35#include "drivers/linux_ioctl.h"
36}
37
38// The AIDL implementation for hostapd creates a hostapd.conf dynamically for
39// each interface. This file can then be used to hook onto the normal config
40// file parsing logic in hostapd code. Helps us to avoid duplication of code
41// in the AIDL interface.
42// TOOD(b/71872409): Add unit tests for this.
43namespace {
44constexpr char kConfFileNameFmt[] = "/data/vendor/wifi/hostapd/hostapd_%s.conf";
45
46using android::base::RemoveFileIfExists;
47using android::base::StringPrintf;
48using android::base::WriteStringToFile;
49using aidl::android::hardware::wifi::hostapd::BandMask;
50using aidl::android::hardware::wifi::hostapd::Bandwidth;
51using aidl::android::hardware::wifi::hostapd::ChannelParams;
52using aidl::android::hardware::wifi::hostapd::EncryptionType;
53using aidl::android::hardware::wifi::hostapd::Generation;
54using aidl::android::hardware::wifi::hostapd::HostapdStatusCode;
55using aidl::android::hardware::wifi::hostapd::IfaceParams;
56using aidl::android::hardware::wifi::hostapd::NetworkParams;
57using aidl::android::hardware::wifi::hostapd::ParamSizeLimits;
58
59int band2Ghz = (int)BandMask::BAND_2_GHZ;
60int band5Ghz = (int)BandMask::BAND_5_GHZ;
61int band6Ghz = (int)BandMask::BAND_6_GHZ;
62int band60Ghz = (int)BandMask::BAND_60_GHZ;
63
64#define MAX_PORTS 1024
65bool GetInterfacesInBridge(std::string br_name,
66 std::vector<std::string>* interfaces) {
67 android::base::unique_fd sock(socket(PF_INET, SOCK_DGRAM | SOCK_CLOEXEC, 0));
68 if (sock.get() < 0) {
69 wpa_printf(MSG_ERROR, "Failed to create sock (%s) in %s",
70 strerror(errno), __FUNCTION__);
71 return false;
72 }
73
74 struct ifreq request;
75 int i, ifindices[MAX_PORTS];
76 char if_name[IFNAMSIZ];
77 unsigned long args[3];
78
79 memset(ifindices, 0, MAX_PORTS * sizeof(int));
80
81 args[0] = BRCTL_GET_PORT_LIST;
82 args[1] = (unsigned long) ifindices;
83 args[2] = MAX_PORTS;
84
85 strlcpy(request.ifr_name, br_name.c_str(), IFNAMSIZ);
86 request.ifr_data = (char *)args;
87
88 if (ioctl(sock.get(), SIOCDEVPRIVATE, &request) < 0) {
89 wpa_printf(MSG_ERROR, "Failed to ioctl SIOCDEVPRIVATE in %s",
90 __FUNCTION__);
91 return false;
92 }
93
94 for (i = 0; i < MAX_PORTS; i ++) {
95 memset(if_name, 0, IFNAMSIZ);
96 if (ifindices[i] == 0 || !if_indextoname(ifindices[i], if_name)) {
97 continue;
98 }
99 interfaces->push_back(if_name);
100 }
101 return true;
102}
103
104std::string WriteHostapdConfig(
105 const std::string& interface_name, const std::string& config)
106{
107 const std::string file_path =
108 StringPrintf(kConfFileNameFmt, interface_name.c_str());
109 if (WriteStringToFile(
110 config, file_path, S_IRUSR | S_IWUSR | S_IRGRP | S_IWGRP,
111 getuid(), getgid())) {
112 return file_path;
113 }
114 // Diagnose failure
115 int error = errno;
116 wpa_printf(
117 MSG_ERROR, "Cannot write hostapd config to %s, error: %s",
118 file_path.c_str(), strerror(error));
119 struct stat st;
120 int result = stat(file_path.c_str(), &st);
121 if (result == 0) {
122 wpa_printf(
123 MSG_ERROR, "hostapd config file uid: %d, gid: %d, mode: %d",
124 st.st_uid, st.st_gid, st.st_mode);
125 } else {
126 wpa_printf(
127 MSG_ERROR,
128 "Error calling stat() on hostapd config file: %s",
129 strerror(errno));
130 }
131 return "";
132}
133
134/*
135 * Get the op_class for a channel/band
136 * The logic here is based on Table E-4 in the 802.11 Specification
137 */
138int getOpClassForChannel(int channel, int band, bool support11n, bool support11ac) {
139 // 2GHz Band
140 if ((band & band2Ghz) != 0) {
141 if (channel == 14) {
142 return 82;
143 }
144 if (channel >= 1 && channel <= 13) {
145 if (!support11n) {
146 //20MHz channel
147 return 81;
148 }
149 if (channel <= 9) {
150 // HT40 with secondary channel above primary
151 return 83;
152 }
153 // HT40 with secondary channel below primary
154 return 84;
155 }
156 // Error
157 return 0;
158 }
159
160 // 5GHz Band
161 if ((band & band5Ghz) != 0) {
162 if (support11ac) {
163 switch (channel) {
164 case 42:
165 case 58:
166 case 106:
167 case 122:
168 case 138:
169 case 155:
170 // 80MHz channel
171 return 128;
172 case 50:
173 case 114:
174 // 160MHz channel
175 return 129;
176 }
177 }
178
179 if (!support11n) {
180 if (channel >= 36 && channel <= 48) {
181 return 115;
182 }
183 if (channel >= 52 && channel <= 64) {
184 return 118;
185 }
186 if (channel >= 100 && channel <= 144) {
187 return 121;
188 }
189 if (channel >= 149 && channel <= 161) {
190 return 124;
191 }
192 if (channel >= 165 && channel <= 169) {
193 return 125;
194 }
195 } else {
196 switch (channel) {
197 case 36:
198 case 44:
199 // HT40 with secondary channel above primary
200 return 116;
201 case 40:
202 case 48:
203 // HT40 with secondary channel below primary
204 return 117;
205 case 52:
206 case 60:
207 // HT40 with secondary channel above primary
208 return 119;
209 case 56:
210 case 64:
211 // HT40 with secondary channel below primary
212 return 120;
213 case 100:
214 case 108:
215 case 116:
216 case 124:
217 case 132:
218 case 140:
219 // HT40 with secondary channel above primary
220 return 122;
221 case 104:
222 case 112:
223 case 120:
224 case 128:
225 case 136:
226 case 144:
227 // HT40 with secondary channel below primary
228 return 123;
229 case 149:
230 case 157:
231 // HT40 with secondary channel above primary
232 return 126;
233 case 153:
234 case 161:
235 // HT40 with secondary channel below primary
236 return 127;
237 }
238 }
239 // Error
240 return 0;
241 }
242
243 // 6GHz Band
244 if ((band & band6Ghz) != 0) {
245 // Channels 1, 5. 9, 13, ...
246 if ((channel & 0x03) == 0x01) {
247 // 20MHz channel
248 return 131;
249 }
250 // Channels 3, 11, 19, 27, ...
251 if ((channel & 0x07) == 0x03) {
252 // 40MHz channel
253 return 132;
254 }
255 // Channels 7, 23, 39, 55, ...
256 if ((channel & 0x0F) == 0x07) {
257 // 80MHz channel
258 return 133;
259 }
260 // Channels 15, 47, 69, ...
261 if ((channel & 0x1F) == 0x0F) {
262 // 160MHz channel
263 return 134;
264 }
265 if (channel == 2) {
266 // 20MHz channel
267 return 136;
268 }
269 // Error
270 return 0;
271 }
272
273 if ((band & band60Ghz) != 0) {
274 if (1 <= channel && channel <= 8) {
275 return 180;
276 } else if (9 <= channel && channel <= 15) {
277 return 181;
278 } else if (17 <= channel && channel <= 22) {
279 return 182;
280 } else if (25 <= channel && channel <= 29) {
281 return 183;
282 }
283 // Error
284 return 0;
285 }
286
287 return 0;
288}
289
290bool validatePassphrase(int passphrase_len, int min_len, int max_len)
291{
292 if (min_len != -1 && passphrase_len < min_len) return false;
293 if (max_len != -1 && passphrase_len > max_len) return false;
294 return true;
295}
296
297std::string CreateHostapdConfig(
298 const IfaceParams& iface_params,
299 const ChannelParams& channelParams,
300 const NetworkParams& nw_params,
301 const std::string br_name)
302{
303 if (nw_params.ssid.size() >
304 static_cast<uint32_t>(
305 ParamSizeLimits::SSID_MAX_LEN_IN_BYTES)) {
306 wpa_printf(
307 MSG_ERROR, "Invalid SSID size: %zu", nw_params.ssid.size());
308 return "";
309 }
310
311 // SSID string
312 std::stringstream ss;
313 ss << std::hex;
314 ss << std::setfill('0');
315 for (uint8_t b : nw_params.ssid) {
316 ss << std::setw(2) << static_cast<unsigned int>(b);
317 }
318 const std::string ssid_as_string = ss.str();
319
320 // Encryption config string
321 uint32_t band = 0;
322 band |= static_cast<uint32_t>(channelParams.bandMask);
323 bool is_6Ghz_band_only = band == static_cast<uint32_t>(band6Ghz);
324 bool is_60Ghz_band_only = band == static_cast<uint32_t>(band60Ghz);
325 std::string encryption_config_as_string;
326 switch (nw_params.encryptionType) {
327 case EncryptionType::NONE:
328 // no security params
329 break;
330 case EncryptionType::WPA:
331 if (!validatePassphrase(
332 nw_params.passphrase.size(),
333 static_cast<uint32_t>(ParamSizeLimits::
334 WPA2_PSK_PASSPHRASE_MIN_LEN_IN_BYTES),
335 static_cast<uint32_t>(ParamSizeLimits::
336 WPA2_PSK_PASSPHRASE_MAX_LEN_IN_BYTES))) {
337 return "";
338 }
339 encryption_config_as_string = StringPrintf(
340 "wpa=3\n"
341 "wpa_pairwise=%s\n"
342 "wpa_passphrase=%s",
343 is_60Ghz_band_only ? "GCMP" : "TKIP CCMP",
344 nw_params.passphrase.c_str());
345 break;
346 case EncryptionType::WPA2:
347 if (!validatePassphrase(
348 nw_params.passphrase.size(),
349 static_cast<uint32_t>(ParamSizeLimits::
350 WPA2_PSK_PASSPHRASE_MIN_LEN_IN_BYTES),
351 static_cast<uint32_t>(ParamSizeLimits::
352 WPA2_PSK_PASSPHRASE_MAX_LEN_IN_BYTES))) {
353 return "";
354 }
355 encryption_config_as_string = StringPrintf(
356 "wpa=2\n"
357 "rsn_pairwise=%s\n"
358 "wpa_passphrase=%s",
359 is_60Ghz_band_only ? "GCMP" : "CCMP",
360 nw_params.passphrase.c_str());
361 break;
362 case EncryptionType::WPA3_SAE_TRANSITION:
363 if (!validatePassphrase(
364 nw_params.passphrase.size(),
365 static_cast<uint32_t>(ParamSizeLimits::
366 WPA2_PSK_PASSPHRASE_MIN_LEN_IN_BYTES),
367 static_cast<uint32_t>(ParamSizeLimits::
368 WPA2_PSK_PASSPHRASE_MAX_LEN_IN_BYTES))) {
369 return "";
370 }
371 encryption_config_as_string = StringPrintf(
372 "wpa=2\n"
373 "rsn_pairwise=%s\n"
374 "wpa_key_mgmt=WPA-PSK SAE\n"
375 "ieee80211w=1\n"
376 "sae_require_mfp=1\n"
377 "wpa_passphrase=%s\n"
378 "sae_password=%s",
379 is_60Ghz_band_only ? "GCMP" : "CCMP",
380 nw_params.passphrase.c_str(),
381 nw_params.passphrase.c_str());
382 break;
383 case EncryptionType::WPA3_SAE:
384 if (!validatePassphrase(nw_params.passphrase.size(), 1, -1)) {
385 return "";
386 }
387 encryption_config_as_string = StringPrintf(
388 "wpa=2\n"
389 "rsn_pairwise=%s\n"
390 "wpa_key_mgmt=SAE\n"
391 "ieee80211w=2\n"
392 "sae_require_mfp=2\n"
393 "sae_pwe=%d\n"
394 "sae_password=%s",
395 is_60Ghz_band_only ? "GCMP" : "CCMP",
396 is_6Ghz_band_only ? 1 : 2,
397 nw_params.passphrase.c_str());
398 break;
399 default:
400 wpa_printf(MSG_ERROR, "Unknown encryption type");
401 return "";
402 }
403
404 std::string channel_config_as_string;
405 bool isFirst = true;
406 if (channelParams.enableAcs) {
407 std::string freqList_as_string;
408 for (const auto &range :
409 channelParams.acsChannelFreqRangesMhz) {
410 if (!isFirst) {
411 freqList_as_string += ",";
412 }
413 isFirst = false;
414
415 if (range.startMhz != range.endMhz) {
416 freqList_as_string +=
417 StringPrintf("%d-%d", range.startMhz, range.endMhz);
418 } else {
419 freqList_as_string += StringPrintf("%d", range.startMhz);
420 }
421 }
422 channel_config_as_string = StringPrintf(
423 "channel=0\n"
424 "acs_exclude_dfs=%d\n"
425 "freqlist=%s",
426 channelParams.acsShouldExcludeDfs,
427 freqList_as_string.c_str());
428 } else {
429 int op_class = getOpClassForChannel(
430 channelParams.channel,
431 band,
432 iface_params.hwModeParams.enable80211N,
433 iface_params.hwModeParams.enable80211AC);
434 channel_config_as_string = StringPrintf(
435 "channel=%d\n"
436 "op_class=%d",
437 channelParams.channel, op_class);
438 }
439
440 std::string hw_mode_as_string;
441 std::string ht_cap_vht_oper_chwidth_as_string;
442 std::string enable_edmg_as_string;
443 std::string edmg_channel_as_string;
444 bool is_60Ghz_used = false;
445
446 if (((band & band60Ghz) != 0)) {
447 hw_mode_as_string = "hw_mode=ad";
448 if (iface_params.hwModeParams.enableEdmg) {
449 enable_edmg_as_string = "enable_edmg=1";
450 edmg_channel_as_string = StringPrintf(
451 "edmg_channel=%d",
452 channelParams.channel);
453 }
454 is_60Ghz_used = true;
455 } else if ((band & band2Ghz) != 0) {
456 if (((band & band5Ghz) != 0)
457 || ((band & band6Ghz) != 0)) {
458 hw_mode_as_string = "hw_mode=any";
459 if (iface_params.hwModeParams.enable80211AC) {
460 ht_cap_vht_oper_chwidth_as_string =
461 "ht_capab=[HT40+]\n"
462 "vht_oper_chwidth=1";
463 }
464 } else {
465 hw_mode_as_string = "hw_mode=g";
466 }
467 } else if (((band & band5Ghz) != 0)
468 || ((band & band6Ghz) != 0)) {
469 hw_mode_as_string = "hw_mode=a";
470 if (iface_params.hwModeParams.enable80211AC) {
471 ht_cap_vht_oper_chwidth_as_string =
472 "ht_capab=[HT40+]\n"
473 "vht_oper_chwidth=1";
474 }
475 } else {
476 wpa_printf(MSG_ERROR, "Invalid band");
477 return "";
478 }
479
480 std::string he_params_as_string;
481#ifdef CONFIG_IEEE80211AX
482 if (iface_params.hwModeParams.enable80211AX && !is_60Ghz_used) {
483 he_params_as_string = StringPrintf(
484 "ieee80211ax=1\n"
485 "he_oper_chwidth=1\n"
486 "he_su_beamformer=%d\n"
487 "he_su_beamformee=%d\n"
488 "he_mu_beamformer=%d\n"
489 "he_twt_required=%d\n",
490 iface_params.hwModeParams.enableHeSingleUserBeamformer ? 1 : 0,
491 iface_params.hwModeParams.enableHeSingleUserBeamformee ? 1 : 0,
492 iface_params.hwModeParams.enableHeMultiUserBeamformer ? 1 : 0,
493 iface_params.hwModeParams.enableHeTargetWakeTime ? 1 : 0);
494 } else {
495 he_params_as_string = "ieee80211ax=0";
496 }
497#endif /* CONFIG_IEEE80211AX */
498
499#ifdef CONFIG_INTERWORKING
500 std::string access_network_params_as_string;
501 if (nw_params.isMetered) {
502 access_network_params_as_string = StringPrintf(
503 "interworking=1\n"
504 "access_network_type=2\n"); // CHARGEABLE_PUBLIC_NETWORK
505 } else {
506 access_network_params_as_string = StringPrintf(
507 "interworking=0\n");
508 }
509#endif /* CONFIG_INTERWORKING */
510
511 std::string bridge_as_string;
512 if (!br_name.empty()) {
513 bridge_as_string = StringPrintf("bridge=%s", br_name.c_str());
514 }
515
Serik Beketayev8af7a722021-12-23 12:25:36 -0800516 // vendor_elements string
517 std::string vendor_elements_as_string;
518 if (nw_params.vendorElements.size() > 0) {
519 std::stringstream ss;
520 ss << std::hex;
521 ss << std::setfill('0');
522 for (uint8_t b : nw_params.vendorElements) {
523 ss << std::setw(2) << static_cast<unsigned int>(b);
524 }
525 vendor_elements_as_string = StringPrintf("vendor_elements=%s", ss.str().c_str());
526 }
527
Gabriel Biren72cf9a52021-06-25 23:29:26 +0000528 return StringPrintf(
529 "interface=%s\n"
530 "driver=nl80211\n"
531 "ctrl_interface=/data/vendor/wifi/hostapd/ctrl\n"
532 // ssid2 signals to hostapd that the value is not a literal value
533 // for use as a SSID. In this case, we're giving it a hex
534 // std::string and hostapd needs to expect that.
535 "ssid2=%s\n"
536 "%s\n"
537 "ieee80211n=%d\n"
538 "ieee80211ac=%d\n"
539 "%s\n"
540 "%s\n"
541 "%s\n"
542 "ignore_broadcast_ssid=%d\n"
543 "wowlan_triggers=any\n"
544#ifdef CONFIG_INTERWORKING
545 "%s\n"
546#endif /* CONFIG_INTERWORKING */
547 "%s\n"
548 "%s\n"
549 "%s\n"
Serik Beketayev8af7a722021-12-23 12:25:36 -0800550 "%s\n"
Gabriel Biren72cf9a52021-06-25 23:29:26 +0000551 "%s\n",
552 iface_params.name.c_str(), ssid_as_string.c_str(),
553 channel_config_as_string.c_str(),
554 iface_params.hwModeParams.enable80211N ? 1 : 0,
555 iface_params.hwModeParams.enable80211AC ? 1 : 0,
556 he_params_as_string.c_str(),
557 hw_mode_as_string.c_str(), ht_cap_vht_oper_chwidth_as_string.c_str(),
558 nw_params.isHidden ? 1 : 0,
559#ifdef CONFIG_INTERWORKING
560 access_network_params_as_string.c_str(),
561#endif /* CONFIG_INTERWORKING */
562 encryption_config_as_string.c_str(),
563 bridge_as_string.c_str(),
564 enable_edmg_as_string.c_str(),
Serik Beketayev8af7a722021-12-23 12:25:36 -0800565 edmg_channel_as_string.c_str(),
566 vendor_elements_as_string.c_str());
Gabriel Biren72cf9a52021-06-25 23:29:26 +0000567}
568
569Generation getGeneration(hostapd_hw_modes *current_mode)
570{
571 wpa_printf(MSG_DEBUG, "getGeneration hwmode=%d, ht_enabled=%d,"
572 " vht_enabled=%d, he_supported=%d",
573 current_mode->mode, current_mode->ht_capab != 0,
574 current_mode->vht_capab != 0, current_mode->he_capab->he_supported);
575 switch (current_mode->mode) {
576 case HOSTAPD_MODE_IEEE80211B:
577 return Generation::WIFI_STANDARD_LEGACY;
578 case HOSTAPD_MODE_IEEE80211G:
579 return current_mode->ht_capab == 0 ?
580 Generation::WIFI_STANDARD_LEGACY : Generation::WIFI_STANDARD_11N;
581 case HOSTAPD_MODE_IEEE80211A:
582 if (current_mode->he_capab->he_supported) {
583 return Generation::WIFI_STANDARD_11AX;
584 }
585 return current_mode->vht_capab == 0 ?
586 Generation::WIFI_STANDARD_11N : Generation::WIFI_STANDARD_11AC;
587 case HOSTAPD_MODE_IEEE80211AD:
588 return Generation::WIFI_STANDARD_11AD;
589 default:
590 return Generation::WIFI_STANDARD_UNKNOWN;
591 }
592}
593
594Bandwidth getBandwidth(struct hostapd_config *iconf)
595{
596 wpa_printf(MSG_DEBUG, "getBandwidth %d, isHT=%d, isHT40=%d",
597 iconf->vht_oper_chwidth, iconf->ieee80211n,
598 iconf->secondary_channel);
599 switch (iconf->vht_oper_chwidth) {
600 case CHANWIDTH_80MHZ:
601 return Bandwidth::BANDWIDTH_80;
602 case CHANWIDTH_80P80MHZ:
603 return Bandwidth::BANDWIDTH_80P80;
604 break;
605 case CHANWIDTH_160MHZ:
606 return Bandwidth::BANDWIDTH_160;
607 break;
608 case CHANWIDTH_USE_HT:
609 if (iconf->ieee80211n) {
610 return iconf->secondary_channel != 0 ?
611 Bandwidth::BANDWIDTH_40 : Bandwidth::BANDWIDTH_20;
612 }
613 return Bandwidth::BANDWIDTH_20_NOHT;
614 case CHANWIDTH_2160MHZ:
615 return Bandwidth::BANDWIDTH_2160;
616 case CHANWIDTH_4320MHZ:
617 return Bandwidth::BANDWIDTH_4320;
618 case CHANWIDTH_6480MHZ:
619 return Bandwidth::BANDWIDTH_6480;
620 case CHANWIDTH_8640MHZ:
621 return Bandwidth::BANDWIDTH_8640;
622 default:
623 return Bandwidth::BANDWIDTH_INVALID;
624 }
625}
626
627bool forceStaDisconnection(struct hostapd_data* hapd,
628 const std::vector<uint8_t>& client_address,
629 const uint16_t reason_code) {
630 struct sta_info *sta;
631 for (sta = hapd->sta_list; sta; sta = sta->next) {
632 int res;
633 res = memcmp(sta->addr, client_address.data(), ETH_ALEN);
634 if (res == 0) {
635 wpa_printf(MSG_INFO, "Force client:" MACSTR " disconnect with reason: %d",
636 MAC2STR(client_address.data()), reason_code);
637 ap_sta_disconnect(hapd, sta, sta->addr, reason_code);
638 return true;
639 }
640 }
641 return false;
642}
643
644// hostapd core functions accept "C" style function pointers, so use global
645// functions to pass to the hostapd core function and store the corresponding
646// std::function methods to be invoked.
647//
648// NOTE: Using the pattern from the vendor HAL (wifi_legacy_hal.cpp).
649//
650// Callback to be invoked once setup is complete
651std::function<void(struct hostapd_data*)> on_setup_complete_internal_callback;
652void onAsyncSetupCompleteCb(void* ctx)
653{
654 struct hostapd_data* iface_hapd = (struct hostapd_data*)ctx;
655 if (on_setup_complete_internal_callback) {
656 on_setup_complete_internal_callback(iface_hapd);
657 // Invalidate this callback since we don't want this firing
658 // again in single AP mode.
659 if (strlen(iface_hapd->conf->bridge) > 0) {
660 on_setup_complete_internal_callback = nullptr;
661 }
662 }
663}
664
665// Callback to be invoked on hotspot client connection/disconnection
666std::function<void(struct hostapd_data*, const u8 *mac_addr, int authorized,
667 const u8 *p2p_dev_addr)> on_sta_authorized_internal_callback;
668void onAsyncStaAuthorizedCb(void* ctx, const u8 *mac_addr, int authorized,
669 const u8 *p2p_dev_addr)
670{
671 struct hostapd_data* iface_hapd = (struct hostapd_data*)ctx;
672 if (on_sta_authorized_internal_callback) {
673 on_sta_authorized_internal_callback(iface_hapd, mac_addr,
674 authorized, p2p_dev_addr);
675 }
676}
677
678std::function<void(struct hostapd_data*, int level,
679 enum wpa_msg_type type, const char *txt,
680 size_t len)> on_wpa_msg_internal_callback;
681
682void onAsyncWpaEventCb(void *ctx, int level,
683 enum wpa_msg_type type, const char *txt,
684 size_t len)
685{
686 struct hostapd_data* iface_hapd = (struct hostapd_data*)ctx;
687 if (on_wpa_msg_internal_callback) {
688 on_wpa_msg_internal_callback(iface_hapd, level,
689 type, txt, len);
690 }
691}
692
693inline ndk::ScopedAStatus createStatus(HostapdStatusCode status_code) {
694 return ndk::ScopedAStatus::fromServiceSpecificError(
695 static_cast<int32_t>(status_code));
696}
697
698inline ndk::ScopedAStatus createStatusWithMsg(
699 HostapdStatusCode status_code, std::string msg)
700{
701 return ndk::ScopedAStatus::fromServiceSpecificErrorWithMessage(
702 static_cast<int32_t>(status_code), msg.c_str());
703}
704
705// Method called by death_notifier_ on client death.
706void onDeath(void* cookie) {
707 wpa_printf(MSG_ERROR, "Client died. Terminating...");
708 eloop_terminate();
709}
710
711} // namespace
712
713namespace aidl {
714namespace android {
715namespace hardware {
716namespace wifi {
717namespace hostapd {
718
719Hostapd::Hostapd(struct hapd_interfaces* interfaces)
720 : interfaces_(interfaces)
721{
722 death_notifier_ = AIBinder_DeathRecipient_new(onDeath);
723}
724
725::ndk::ScopedAStatus Hostapd::addAccessPoint(
726 const IfaceParams& iface_params, const NetworkParams& nw_params)
727{
728 return addAccessPointInternal(iface_params, nw_params);
729}
730
731::ndk::ScopedAStatus Hostapd::removeAccessPoint(const std::string& iface_name)
732{
733 return removeAccessPointInternal(iface_name);
734}
735
736::ndk::ScopedAStatus Hostapd::terminate()
737{
738 wpa_printf(MSG_INFO, "Terminating...");
739 // Clear the callback to avoid IPCThreadState shutdown during the
740 // callback event.
741 callbacks_.clear();
742 eloop_terminate();
743 return ndk::ScopedAStatus::ok();
744}
745
746::ndk::ScopedAStatus Hostapd::registerCallback(
747 const std::shared_ptr<IHostapdCallback>& callback)
748{
749 return registerCallbackInternal(callback);
750}
751
752::ndk::ScopedAStatus Hostapd::forceClientDisconnect(
753 const std::string& iface_name, const std::vector<uint8_t>& client_address,
754 Ieee80211ReasonCode reason_code)
755{
756 return forceClientDisconnectInternal(iface_name, client_address, reason_code);
757}
758
759::ndk::ScopedAStatus Hostapd::setDebugParams(DebugLevel level)
760{
761 return setDebugParamsInternal(level);
762}
763
764::ndk::ScopedAStatus Hostapd::addAccessPointInternal(
765 const IfaceParams& iface_params,
766 const NetworkParams& nw_params)
767{
768 int channelParamsSize = iface_params.channelParams.size();
769 if (channelParamsSize == 1) {
770 // Single AP
771 wpa_printf(MSG_INFO, "AddSingleAccessPoint, iface=%s",
772 iface_params.name.c_str());
773 return addSingleAccessPoint(iface_params, iface_params.channelParams[0],
774 nw_params, "");
775 } else if (channelParamsSize == 2) {
776 // Concurrent APs
777 wpa_printf(MSG_INFO, "AddDualAccessPoint, iface=%s",
778 iface_params.name.c_str());
779 return addConcurrentAccessPoints(iface_params, nw_params);
780 }
781 return createStatus(HostapdStatusCode::FAILURE_ARGS_INVALID);
782}
783
784::ndk::ScopedAStatus Hostapd::addConcurrentAccessPoints(
785 const IfaceParams& iface_params, const NetworkParams& nw_params)
786{
787 int channelParamsListSize = iface_params.channelParams.size();
788 // Get available interfaces in bridge
789 std::vector<std::string> managed_interfaces;
790 std::string br_name = StringPrintf(
791 "%s", iface_params.name.c_str());
792 if (!GetInterfacesInBridge(br_name, &managed_interfaces)) {
793 return createStatusWithMsg(HostapdStatusCode::FAILURE_UNKNOWN,
794 "Get interfaces in bridge failed.");
795 }
796 if (managed_interfaces.size() < channelParamsListSize) {
797 return createStatusWithMsg(HostapdStatusCode::FAILURE_UNKNOWN,
798 "Available interfaces less than requested bands");
799 }
800 // start BSS on specified bands
801 for (std::size_t i = 0; i < channelParamsListSize; i ++) {
802 IfaceParams iface_params_new = iface_params;
803 iface_params_new.name = managed_interfaces[i];
804 ndk::ScopedAStatus status = addSingleAccessPoint(
805 iface_params_new, iface_params.channelParams[i], nw_params, br_name);
806 if (!status.isOk()) {
807 wpa_printf(MSG_ERROR, "Failed to addAccessPoint %s",
808 managed_interfaces[i].c_str());
809 return status;
810 }
811 }
812 // Save bridge interface info
813 br_interfaces_[br_name] = managed_interfaces;
814 return ndk::ScopedAStatus::ok();
815}
816
817::ndk::ScopedAStatus Hostapd::addSingleAccessPoint(
818 const IfaceParams& iface_params,
819 const ChannelParams& channelParams,
820 const NetworkParams& nw_params,
821 const std::string br_name)
822{
823 if (hostapd_get_iface(interfaces_, iface_params.name.c_str())) {
824 wpa_printf(
825 MSG_ERROR, "Interface %s already present",
826 iface_params.name.c_str());
827 return createStatus(HostapdStatusCode::FAILURE_IFACE_EXISTS);
828 }
829 const auto conf_params = CreateHostapdConfig(iface_params, channelParams, nw_params, br_name);
830 if (conf_params.empty()) {
831 wpa_printf(MSG_ERROR, "Failed to create config params");
832 return createStatus(HostapdStatusCode::FAILURE_ARGS_INVALID);
833 }
834 const auto conf_file_path =
835 WriteHostapdConfig(iface_params.name, conf_params);
836 if (conf_file_path.empty()) {
837 wpa_printf(MSG_ERROR, "Failed to write config file");
838 return createStatus(HostapdStatusCode::FAILURE_UNKNOWN);
839 }
840 std::string add_iface_param_str = StringPrintf(
841 "%s config=%s", iface_params.name.c_str(),
842 conf_file_path.c_str());
843 std::vector<char> add_iface_param_vec(
844 add_iface_param_str.begin(), add_iface_param_str.end() + 1);
845 if (hostapd_add_iface(interfaces_, add_iface_param_vec.data()) < 0) {
846 wpa_printf(
847 MSG_ERROR, "Adding interface %s failed",
848 add_iface_param_str.c_str());
849 return createStatus(HostapdStatusCode::FAILURE_UNKNOWN);
850 }
851 struct hostapd_data* iface_hapd =
852 hostapd_get_iface(interfaces_, iface_params.name.c_str());
853 WPA_ASSERT(iface_hapd != nullptr && iface_hapd->iface != nullptr);
854 // Register the setup complete callbacks
855 on_setup_complete_internal_callback =
856 [this](struct hostapd_data* iface_hapd) {
857 wpa_printf(
858 MSG_INFO, "AP interface setup completed - state %s",
859 hostapd_state_text(iface_hapd->iface->state));
860 if (iface_hapd->iface->state == HAPD_IFACE_DISABLED) {
861 // Invoke the failure callback on all registered
862 // clients.
863 for (const auto& callback : callbacks_) {
864 callback->onFailure(strlen(iface_hapd->conf->bridge) > 0 ?
Les Leee08c2862021-10-29 16:36:41 +0800865 iface_hapd->conf->bridge : iface_hapd->conf->iface,
866 iface_hapd->conf->iface);
Gabriel Biren72cf9a52021-06-25 23:29:26 +0000867 }
868 }
869 };
870
871 // Register for new client connect/disconnect indication.
872 on_sta_authorized_internal_callback =
873 [this](struct hostapd_data* iface_hapd, const u8 *mac_addr,
874 int authorized, const u8 *p2p_dev_addr) {
875 wpa_printf(MSG_DEBUG, "notify client " MACSTR " %s",
876 MAC2STR(mac_addr),
877 (authorized) ? "Connected" : "Disconnected");
878 ClientInfo info;
879 info.ifaceName = strlen(iface_hapd->conf->bridge) > 0 ?
880 iface_hapd->conf->bridge : iface_hapd->conf->iface;
881 info.apIfaceInstance = iface_hapd->conf->iface;
882 info.clientAddress.assign(mac_addr, mac_addr + ETH_ALEN);
883 info.isConnected = authorized;
884 for (const auto &callback : callbacks_) {
885 callback->onConnectedClientsChanged(info);
886 }
887 };
888
889 // Register for wpa_event which used to get channel switch event
890 on_wpa_msg_internal_callback =
891 [this](struct hostapd_data* iface_hapd, int level,
892 enum wpa_msg_type type, const char *txt,
893 size_t len) {
894 wpa_printf(MSG_DEBUG, "Receive wpa msg : %s", txt);
895 if (os_strncmp(txt, AP_EVENT_ENABLED,
896 strlen(AP_EVENT_ENABLED)) == 0 ||
897 os_strncmp(txt, WPA_EVENT_CHANNEL_SWITCH,
898 strlen(WPA_EVENT_CHANNEL_SWITCH)) == 0) {
899 ApInfo info;
900 info.ifaceName = strlen(iface_hapd->conf->bridge) > 0 ?
901 iface_hapd->conf->bridge : iface_hapd->conf->iface,
902 info.apIfaceInstance = iface_hapd->conf->iface;
903 info.freqMhz = iface_hapd->iface->freq;
904 info.bandwidth = getBandwidth(iface_hapd->iconf);
905 info.generation = getGeneration(iface_hapd->iface->current_mode);
906 info.apIfaceInstanceMacAddress.assign(iface_hapd->own_addr,
907 iface_hapd->own_addr + ETH_ALEN);
908 for (const auto &callback : callbacks_) {
909 callback->onApInstanceInfoChanged(info);
910 }
Yu Ouyang378d3c42021-08-20 17:31:08 +0800911 } else if (os_strncmp(txt, AP_EVENT_DISABLED, strlen(AP_EVENT_DISABLED)) == 0) {
912 // Invoke the failure callback on all registered clients.
913 for (const auto& callback : callbacks_) {
914 callback->onFailure(strlen(iface_hapd->conf->bridge) > 0 ?
Les Leee08c2862021-10-29 16:36:41 +0800915 iface_hapd->conf->bridge : iface_hapd->conf->iface,
916 iface_hapd->conf->iface);
Yu Ouyang378d3c42021-08-20 17:31:08 +0800917 }
Gabriel Biren72cf9a52021-06-25 23:29:26 +0000918 }
Yu Ouyang378d3c42021-08-20 17:31:08 +0800919 };
Gabriel Biren72cf9a52021-06-25 23:29:26 +0000920
921 // Setup callback
922 iface_hapd->setup_complete_cb = onAsyncSetupCompleteCb;
923 iface_hapd->setup_complete_cb_ctx = iface_hapd;
924 iface_hapd->sta_authorized_cb = onAsyncStaAuthorizedCb;
925 iface_hapd->sta_authorized_cb_ctx = iface_hapd;
926 wpa_msg_register_cb(onAsyncWpaEventCb);
927
928 if (hostapd_enable_iface(iface_hapd->iface) < 0) {
929 wpa_printf(
930 MSG_ERROR, "Enabling interface %s failed",
931 iface_params.name.c_str());
932 return createStatus(HostapdStatusCode::FAILURE_UNKNOWN);
933 }
934 return ndk::ScopedAStatus::ok();
935}
936
937::ndk::ScopedAStatus Hostapd::removeAccessPointInternal(const std::string& iface_name)
938{
939 // interfaces to be removed
940 std::vector<std::string> interfaces;
941 bool is_error = false;
942
943 const auto it = br_interfaces_.find(iface_name);
944 if (it != br_interfaces_.end()) {
945 // In case bridge, remove managed interfaces
946 interfaces = it->second;
947 br_interfaces_.erase(iface_name);
948 } else {
949 // else remove current interface
950 interfaces.push_back(iface_name);
951 }
952
953 for (auto& iface : interfaces) {
954 std::vector<char> remove_iface_param_vec(
955 iface.begin(), iface.end() + 1);
956 if (hostapd_remove_iface(interfaces_, remove_iface_param_vec.data()) < 0) {
957 wpa_printf(MSG_INFO, "Remove interface %s failed", iface.c_str());
958 is_error = true;
959 }
960 }
961 if (is_error) {
962 return createStatus(HostapdStatusCode::FAILURE_UNKNOWN);
963 }
964 return ndk::ScopedAStatus::ok();
965}
966
967::ndk::ScopedAStatus Hostapd::registerCallbackInternal(
968 const std::shared_ptr<IHostapdCallback>& callback)
969{
970 binder_status_t status = AIBinder_linkToDeath(callback->asBinder().get(),
971 death_notifier_, this /* cookie */);
972 if (status != STATUS_OK) {
973 wpa_printf(
974 MSG_ERROR,
975 "Error registering for death notification for "
976 "hostapd callback object");
977 return createStatus(HostapdStatusCode::FAILURE_UNKNOWN);
978 }
979 callbacks_.push_back(callback);
980 return ndk::ScopedAStatus::ok();
981}
982
983::ndk::ScopedAStatus Hostapd::forceClientDisconnectInternal(const std::string& iface_name,
984 const std::vector<uint8_t>& client_address, Ieee80211ReasonCode reason_code)
985{
986 struct hostapd_data *hapd = hostapd_get_iface(interfaces_, iface_name.c_str());
987 bool result;
988 if (!hapd) {
989 for (auto const& iface : br_interfaces_) {
990 if (iface.first == iface_name) {
991 for (auto const& instance : iface.second) {
992 hapd = hostapd_get_iface(interfaces_, instance.c_str());
993 if (hapd) {
994 result = forceStaDisconnection(hapd, client_address,
995 (uint16_t) reason_code);
996 if (result) break;
997 }
998 }
999 }
1000 }
1001 } else {
1002 result = forceStaDisconnection(hapd, client_address, (uint16_t) reason_code);
1003 }
1004 if (!hapd) {
1005 wpa_printf(MSG_ERROR, "Interface %s doesn't exist", iface_name.c_str());
1006 return createStatus(HostapdStatusCode::FAILURE_IFACE_UNKNOWN);
1007 }
1008 if (result) {
1009 return ndk::ScopedAStatus::ok();
1010 }
1011 return createStatus(HostapdStatusCode::FAILURE_CLIENT_UNKNOWN);
1012}
1013
1014::ndk::ScopedAStatus Hostapd::setDebugParamsInternal(DebugLevel level)
1015{
1016 wpa_debug_level = static_cast<uint32_t>(level);
1017 return ndk::ScopedAStatus::ok();
1018}
1019
1020} // namespace hostapd
1021} // namespace wifi
1022} // namespace hardware
1023} // namespace android
Les Leee08c2862021-10-29 16:36:41 +08001024} // namespace aidl