1 /*
2 * hidl interface for wpa_supplicant daemon
3 * Copyright (c) 2004-2016, Jouni Malinen <j@w1.fi>
4 * Copyright (c) 2004-2016, Roshan Pius <rpius@google.com>
5 * Copyright (C) 2017 Sony Mobile Communications Inc.
6 *
7 * This software may be distributed under the terms of the BSD license.
8 * See README for more details.
9 */
10
11 #include "hidl_manager.h"
12 #include "hidl_return_util.h"
13 #include "iface_config_utils.h"
14 #include "misc_utils.h"
15 #include "p2p_iface.h"
16 #include "sta_network.h"
17
18 extern "C"
19 {
20 #include "ap.h"
21 #include "wps_supplicant.h"
22 #include "wifi_display.h"
23 #include "utils/eloop.h"
24 #include "wpa_supplicant_i.h"
25 #include "driver_i.h"
26 }
27
28 #define P2P_MAX_JOIN_SCAN_ATTEMPTS 3
29 // Wait time before triggering the single channel scan to discover Auto GO.
30 // Use a shorter wait time when the given frequency is GO operating frequency.
31 // The idea is to quickly finish scans and return the status to application.
32 #define P2P_JOIN_SINGLE_CHANNEL_SCAN_INTERVAL_USECS 200000
33 // Wait time before triggering the multiple channel scan to discover Auto GO.
34 #define P2P_JOIN_MULTIPLE_CHANNEL_SCAN_INTERVAL_USECS 1000000
35
36 namespace {
37 const char kConfigMethodStrPbc[] = "pbc";
38 const char kConfigMethodStrDisplay[] = "display";
39 const char kConfigMethodStrKeypad[] = "keypad";
40 constexpr char kSetMiracastMode[] = "MIRACAST ";
41 constexpr uint8_t kWfdDeviceInfoSubelemId = 0;
42 constexpr uint8_t kWfdR2DeviceInfoSubelemId = 11;
43 constexpr char kWfdDeviceInfoSubelemLenHexStr[] = "0006";
44
45 std::function<void()> pending_join_scan_callback = NULL;
46 std::function<void()> pending_scan_res_join_callback = NULL;
47
48 using android::hardware::wifi::supplicant::V1_0::ISupplicantP2pIface;
49 using android::hardware::wifi::supplicant::V1_0::ISupplicantStaNetwork;
convertHidlMiracastModeToInternal(ISupplicantP2pIface::MiracastMode mode)50 uint8_t convertHidlMiracastModeToInternal(
51 ISupplicantP2pIface::MiracastMode mode)
52 {
53 switch (mode) {
54 case ISupplicantP2pIface::MiracastMode::DISABLED:
55 return 0;
56 case ISupplicantP2pIface::MiracastMode::SOURCE:
57 return 1;
58 case ISupplicantP2pIface::MiracastMode::SINK:
59 return 2;
60 };
61 WPA_ASSERT(false);
62 }
63
64 /**
65 * Check if the provided ssid is valid or not.
66 *
67 * Returns 1 if valid, 0 otherwise.
68 */
isSsidValid(const std::vector<uint8_t> & ssid)69 int isSsidValid(const std::vector<uint8_t>& ssid)
70 {
71 if (ssid.size() == 0 ||
72 ssid.size() >
73 static_cast<uint32_t>(ISupplicantStaNetwork::ParamSizeLimits::
74 SSID_MAX_LEN_IN_BYTES)) {
75 return 0;
76 }
77 return 1;
78 }
79
80 /**
81 * Check if the provided psk passhrase is valid or not.
82 *
83 * Returns 1 if valid, 0 otherwise.
84 */
isPskPassphraseValid(const std::string & psk)85 int isPskPassphraseValid(const std::string &psk)
86 {
87 if (psk.size() <
88 static_cast<uint32_t>(ISupplicantStaNetwork::ParamSizeLimits::
89 PSK_PASSPHRASE_MIN_LEN_IN_BYTES) ||
90 psk.size() >
91 static_cast<uint32_t>(ISupplicantStaNetwork::ParamSizeLimits::
92 PSK_PASSPHRASE_MAX_LEN_IN_BYTES)) {
93 return 0;
94 }
95 if (has_ctrl_char((u8 *)psk.c_str(), psk.size())) {
96 return 0;
97 }
98 return 1;
99 }
100
setBandScanFreqsList(struct wpa_supplicant * wpa_s,enum hostapd_hw_mode hw_mode,bool exclude_dfs,struct wpa_driver_scan_params * params)101 static int setBandScanFreqsList(
102 struct wpa_supplicant *wpa_s,
103 enum hostapd_hw_mode hw_mode,
104 bool exclude_dfs,
105 struct wpa_driver_scan_params *params)
106 {
107 struct hostapd_hw_modes *mode;
108 int count, i;
109
110 mode = get_mode(wpa_s->hw.modes, wpa_s->hw.num_modes, hw_mode, 0);
111 if (mode == NULL || !mode->num_channels) {
112 wpa_printf(MSG_ERROR,
113 "P2P: No channels supported in this hw_mode: %d", hw_mode);
114 return -1;
115 }
116
117 /*
118 * Allocate memory for frequency array, allocate one extra
119 * slot for the zero-terminator.
120 */
121 params->freqs = (int *) os_calloc(mode->num_channels + 1, sizeof(int));
122 if (params->freqs == NULL) {
123 return -ENOMEM;
124 }
125 for (count = 0, i = 0; i < mode->num_channels; i++) {
126 if (mode->channels[i].flag & HOSTAPD_CHAN_DISABLED) {
127 continue;
128 }
129 if (exclude_dfs && (mode->channels[i].flag & HOSTAPD_CHAN_RADAR)) {
130 continue;
131 }
132 params->freqs[count++] = mode->channels[i].freq;
133 }
134 if (!count && params->freqs) {
135 wpa_printf(MSG_ERROR,
136 "P2P: All channels(exclude_dfs: %d) are disabled in this hw_mode: %d",
137 exclude_dfs, hw_mode);
138 os_free(params->freqs);
139 return -1;
140 }
141 return 0;
142 }
143
setP2pCliOptimizedScanFreqsList(struct wpa_supplicant * wpa_s,struct wpa_driver_scan_params * params,int freq)144 static int setP2pCliOptimizedScanFreqsList(struct wpa_supplicant *wpa_s,
145 struct wpa_driver_scan_params *params, int freq)
146 {
147 if (freq == 2 || freq == 5) {
148 enum hostapd_hw_mode mode;
149 int ret;
150 if (wpa_s->hw.modes == NULL) {
151 wpa_printf(MSG_DEBUG,
152 "P2P: Unknown what %dG channels the driver supports.", freq);
153 return 0;
154 }
155 mode = freq == 5 ? HOSTAPD_MODE_IEEE80211A : HOSTAPD_MODE_IEEE80211G;
156 if (wpa_s->p2p_join_scan_count < 2) {
157 // scan all non DFS channels in the first two attempts
158 ret = setBandScanFreqsList(wpa_s, mode, true, params);
159 if (ret < 0 && (-ENOMEM != ret)) {
160 // try to scan all channels before returning error
161 ret = setBandScanFreqsList(wpa_s, mode, false, params);
162 }
163 } else {
164 // scan all channels
165 ret = setBandScanFreqsList(wpa_s, mode, false, params);
166 }
167 return ret;
168 } else {
169 if (disabled_freq(wpa_s, freq)) {
170 wpa_printf(MSG_ERROR,
171 "P2P: freq %d is not supported for a client.", freq);
172 return -1;
173 }
174 /*
175 * Allocate memory for frequency array, allocate one extra
176 * slot for the zero-terminator.
177 */
178 params->freqs = (int *) os_calloc(2, sizeof(int));
179 if (params->freqs) {
180 params->freqs[0] = freq;
181 } else {
182 return -ENOMEM;
183 }
184 }
185 return 0;
186 }
187
188 /**
189 * getP2pJoinScanInterval - Get the delay in triggering the scan to discover
190 * Auto GO.
191 */
getP2pJoinScanIntervalUsecs(int freq)192 static int getP2pJoinScanIntervalUsecs(int freq)
193 {
194 if (freq == 5 || freq == 2 || freq == 0) {
195 return P2P_JOIN_MULTIPLE_CHANNEL_SCAN_INTERVAL_USECS;
196 } else {
197 return P2P_JOIN_SINGLE_CHANNEL_SCAN_INTERVAL_USECS;
198 }
199 }
200
201 /*
202 * isAnyEtherAddr - match any ether address
203 *
204 */
isAnyEtherAddr(const u8 * a)205 int isAnyEtherAddr(const u8 *a)
206 {
207 // 02:00:00:00:00:00
208 return (a[0] == 2) && !(a[1] | a[2] | a[3] | a[4] | a[5]);
209 }
210
211 /**
212 * findBssBySsid - Fetch a BSS table entry based on SSID and optional BSSID.
213 * @wpa_s: Pointer to wpa_supplicant data
214 * @bssid: BSSID, 02:00:00:00:00:00 matches any bssid
215 * @ssid: SSID
216 * @ssid_len: Length of @ssid
217 * Returns: Pointer to the BSS entry or %NULL if not found
218 */
findBssBySsid(struct wpa_supplicant * wpa_s,const u8 * bssid,const u8 * ssid,size_t ssid_len)219 struct wpa_bss* findBssBySsid(
220 struct wpa_supplicant *wpa_s, const u8 *bssid,
221 const u8 *ssid, size_t ssid_len)
222 {
223 struct wpa_bss *bss;
224 dl_list_for_each(bss, &wpa_s->bss, struct wpa_bss, list) {
225 if ((isAnyEtherAddr(bssid) ||
226 os_memcmp(bss->bssid, bssid, ETH_ALEN) == 0) &&
227 bss->ssid_len == ssid_len &&
228 os_memcmp(bss->ssid, ssid, ssid_len) == 0)
229 return bss;
230 }
231 return NULL;
232 }
233
addGroupClientNetwork(struct wpa_supplicant * wpa_s,uint8_t * group_owner_bssid,const std::vector<uint8_t> & ssid,const std::string & passphrase)234 struct wpa_ssid* addGroupClientNetwork(
235 struct wpa_supplicant* wpa_s,
236 uint8_t *group_owner_bssid,
237 const std::vector<uint8_t>& ssid,
238 const std::string& passphrase)
239 {
240 struct wpa_ssid* wpa_network = wpa_config_add_network(wpa_s->conf);
241 if (!wpa_network) {
242 return NULL;
243 }
244 // set general network defaults
245 wpa_config_set_network_defaults(wpa_network);
246
247 // set P2p network defaults
248 wpa_network->p2p_group = 1;
249 wpa_network->mode = wpas_mode::WPAS_MODE_INFRA;
250
251 wpa_network->auth_alg = WPA_AUTH_ALG_OPEN;
252 wpa_network->key_mgmt = WPA_KEY_MGMT_PSK;
253 wpa_network->proto = WPA_PROTO_RSN;
254 wpa_network->pairwise_cipher = WPA_CIPHER_CCMP;
255 wpa_network->group_cipher = WPA_CIPHER_CCMP;
256 wpa_network->disabled = 2;
257
258 // set necessary fields
259 os_memcpy(wpa_network->bssid, group_owner_bssid, ETH_ALEN);
260 wpa_network->bssid_set = 1;
261
262 wpa_network->ssid = (uint8_t *)os_malloc(ssid.size());
263 if (wpa_network->ssid == NULL) {
264 wpa_config_remove_network(wpa_s->conf, wpa_network->id);
265 return NULL;
266 }
267 memcpy(wpa_network->ssid, ssid.data(), ssid.size());
268 wpa_network->ssid_len = ssid.size();
269
270 wpa_network->psk_set = 0;
271 wpa_network->passphrase = dup_binstr(passphrase.c_str(), passphrase.length());
272 if (wpa_network->passphrase == NULL) {
273 wpa_config_remove_network(wpa_s->conf, wpa_network->id);
274 return NULL;
275 }
276 wpa_config_update_psk(wpa_network);
277
278 return wpa_network;
279
280 }
281
joinScanWrapper(void * eloop_ctx,void * timeout_ctx)282 void joinScanWrapper(void *eloop_ctx, void *timeout_ctx)
283 {
284 struct wpa_supplicant *wpa_s = (struct wpa_supplicant *) eloop_ctx;
285
286 if (pending_join_scan_callback != NULL) {
287 pending_join_scan_callback();
288 }
289 }
290
scanResJoinWrapper(struct wpa_supplicant * wpa_s,struct wpa_scan_results * scan_res)291 void scanResJoinWrapper(
292 struct wpa_supplicant *wpa_s,
293 struct wpa_scan_results *scan_res)
294 {
295 if (wpa_s->p2p_scan_work) {
296 struct wpa_radio_work *work = wpa_s->p2p_scan_work;
297 wpa_s->p2p_scan_work = NULL;
298 radio_work_done(work);
299 }
300
301 if (pending_scan_res_join_callback) {
302 pending_scan_res_join_callback();
303 }
304 }
305
joinScanReq(struct wpa_supplicant * wpa_s,const std::vector<uint8_t> & ssid,int freq)306 int joinScanReq(
307 struct wpa_supplicant* wpa_s,
308 const std::vector<uint8_t>& ssid,
309 int freq)
310 {
311 int ret;
312 struct wpa_driver_scan_params params;
313 struct wpabuf *ies;
314 size_t ielen;
315 unsigned int bands;
316
317 if (wpa_s->global->p2p == NULL || wpa_s->global->p2p_disabled) {
318 wpa_printf(MSG_ERROR,
319 "P2P: P2P interface is gone, cancel join scan");
320 return -ENXIO;
321 }
322
323 os_memset(¶ms, 0, sizeof(params));
324 if (ssid.size() > 0) {
325 params.ssids[0].ssid = ssid.data();
326 params.ssids[0].ssid_len = ssid.size();
327 } else {
328 params.ssids[0].ssid = (u8 *) P2P_WILDCARD_SSID;
329 params.ssids[0].ssid_len = P2P_WILDCARD_SSID_LEN;
330 }
331 wpa_printf(MSG_DEBUG, "Scan SSID %s for join with frequency %d (reinvoke)",
332 wpa_ssid_txt(params.ssids[0].ssid, params.ssids[0].ssid_len), freq);
333
334 /* Construct an optimized p2p scan channel list */
335 if (freq > 0) {
336 ret = setP2pCliOptimizedScanFreqsList(wpa_s, ¶ms, freq);
337 if (ret < 0) {
338 wpa_printf(MSG_ERROR,
339 "Failed to set frequency in p2p scan params, error = %d", ret);
340 return -1;
341 }
342 }
343
344 ielen = p2p_scan_ie_buf_len(wpa_s->global->p2p);
345 ies = wpabuf_alloc(ielen);
346 if (ies == NULL) {
347 if (params.freqs) {
348 os_free(params.freqs);
349 }
350 return -1;
351 }
352
353 bands = wpas_get_bands(wpa_s, params.freqs);
354 p2p_scan_ie(wpa_s->global->p2p, ies, NULL, bands);
355
356 params.p2p_probe = 1;
357 params.extra_ies = (u8 *) wpabuf_head(ies);
358 params.extra_ies_len = wpabuf_len(ies);
359 if (wpa_s->clear_driver_scan_cache) {
360 wpa_printf(MSG_DEBUG,
361 "Request driver to clear scan cache due to local BSS flush");
362 params.only_new_results = 1;
363 }
364
365 ret = wpa_drv_scan(wpa_s, ¶ms);
366 if (!ret) {
367 os_get_reltime(&wpa_s->scan_trigger_time);
368 if (wpa_s->scan_res_handler) {
369 wpa_printf(MSG_DEBUG, "Replace current running scan result handler");
370 }
371 wpa_s->p2p_join_scan_count++;
372 wpa_s->scan_res_handler = scanResJoinWrapper;
373 wpa_s->own_scan_requested = 1;
374 wpa_s->clear_driver_scan_cache = 0;
375 }
376
377 if (params.freqs) {
378 os_free(params.freqs);
379 }
380
381 wpabuf_free(ies);
382
383 return ret;
384 }
385
joinGroup(struct wpa_supplicant * wpa_s,uint8_t * group_owner_bssid,const std::vector<uint8_t> & ssid,const std::string & passphrase)386 int joinGroup(
387 struct wpa_supplicant* wpa_s,
388 uint8_t *group_owner_bssid,
389 const std::vector<uint8_t>& ssid,
390 const std::string& passphrase)
391 {
392 int ret = 0;
393 int he = wpa_s->conf->p2p_go_he;
394 int vht = wpa_s->conf->p2p_go_vht;
395 int ht40 = wpa_s->conf->p2p_go_ht40 || vht;
396
397 // Construct a network for adding group.
398 // Group client follows the persistent attribute of Group Owner.
399 // If joined group is persistent, it adds a persistent network on GroupStarted.
400 struct wpa_ssid *wpa_network = addGroupClientNetwork(
401 wpa_s, group_owner_bssid, ssid, passphrase);
402 if (wpa_network == NULL) {
403 wpa_printf(MSG_ERROR, "P2P: Cannot construct a network for group join.");
404 return -1;
405 }
406
407 // this is temporary network only for establishing the connection.
408 wpa_network->temporary = 1;
409
410 if (wpas_p2p_group_add_persistent(
411 wpa_s, wpa_network, 0, 0, 0, 0, ht40, vht,
412 CHANWIDTH_USE_HT, he, 0, NULL, 0, 0)) {
413 ret = -1;
414 }
415
416 // Always remove this temporary network at the end.
417 wpa_config_remove_network(wpa_s->conf, wpa_network->id);
418 return ret;
419 }
420
notifyGroupJoinFailure(struct wpa_supplicant * wpa_s)421 void notifyGroupJoinFailure(
422 struct wpa_supplicant* wpa_s)
423 {
424 u8 zero_addr[ETH_ALEN] = {0};
425 std::vector<uint8_t> ssid = {'D', 'I', 'R', 'E','C', 'T', '-'};
426 std::string passphrase = "";
427 struct wpa_ssid *wpa_network = addGroupClientNetwork(
428 wpa_s, zero_addr, ssid, passphrase);
429 if (wpa_network) {
430 wpa_network->temporary = 1;
431 wpas_notify_p2p_group_formation_failure(wpa_s, "Failed to find the group.");
432 wpas_notify_p2p_group_removed(
433 wpa_s, wpa_network, "client");
434 wpa_config_remove_network(
435 wpa_s->conf, wpa_network->id);
436 } else {
437 wpa_printf(MSG_ERROR,
438 "P2P: Cannot construct a network.");
439 }
440 }
441
scanResJoinIgnore(struct wpa_supplicant * wpa_s,struct wpa_scan_results * scan_res)442 void scanResJoinIgnore(struct wpa_supplicant *wpa_s, struct wpa_scan_results *scan_res) {
443 wpa_printf(MSG_DEBUG, "P2P: Ignore group join scan results.");
444
445 if (wpa_s->p2p_scan_work) {
446 struct wpa_radio_work *work = wpa_s->p2p_scan_work;
447 wpa_s->p2p_scan_work = NULL;
448 radio_work_done(work);
449 }
450
451 }
452
453 } // namespace
454
455 namespace android {
456 namespace hardware {
457 namespace wifi {
458 namespace supplicant {
459 namespace V1_4 {
460 namespace implementation {
461 using hidl_return_util::validateAndCall;
462 using V1_0::SupplicantStatusCode;
463
P2pIface(struct wpa_global * wpa_global,const char ifname[])464 P2pIface::P2pIface(struct wpa_global* wpa_global, const char ifname[])
465 : wpa_global_(wpa_global), ifname_(ifname), is_valid_(true)
466 {}
467
invalidate()468 void P2pIface::invalidate() { is_valid_ = false; }
isValid()469 bool P2pIface::isValid()
470 {
471 return (is_valid_ && (retrieveIfacePtr() != nullptr));
472 }
getName(getName_cb _hidl_cb)473 Return<void> P2pIface::getName(getName_cb _hidl_cb)
474 {
475 return validateAndCall(
476 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
477 &P2pIface::getNameInternal, _hidl_cb);
478 }
479
getType(getType_cb _hidl_cb)480 Return<void> P2pIface::getType(getType_cb _hidl_cb)
481 {
482 return validateAndCall(
483 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
484 &P2pIface::getTypeInternal, _hidl_cb);
485 }
486
addNetwork(addNetwork_cb _hidl_cb)487 Return<void> P2pIface::addNetwork(addNetwork_cb _hidl_cb)
488 {
489 return validateAndCall(
490 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
491 &P2pIface::addNetworkInternal, _hidl_cb);
492 }
493
removeNetwork(SupplicantNetworkId id,removeNetwork_cb _hidl_cb)494 Return<void> P2pIface::removeNetwork(
495 SupplicantNetworkId id, removeNetwork_cb _hidl_cb)
496 {
497 return validateAndCall(
498 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
499 &P2pIface::removeNetworkInternal, _hidl_cb, id);
500 }
501
getNetwork(SupplicantNetworkId id,getNetwork_cb _hidl_cb)502 Return<void> P2pIface::getNetwork(
503 SupplicantNetworkId id, getNetwork_cb _hidl_cb)
504 {
505 return validateAndCall(
506 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
507 &P2pIface::getNetworkInternal, _hidl_cb, id);
508 }
509
listNetworks(listNetworks_cb _hidl_cb)510 Return<void> P2pIface::listNetworks(listNetworks_cb _hidl_cb)
511 {
512 return validateAndCall(
513 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
514 &P2pIface::listNetworksInternal, _hidl_cb);
515 }
516
registerCallback(const sp<ISupplicantP2pIfaceCallback> & callback,registerCallback_cb _hidl_cb)517 Return<void> P2pIface::registerCallback(
518 const sp<ISupplicantP2pIfaceCallback>& callback,
519 registerCallback_cb _hidl_cb)
520 {
521 return validateAndCall(
522 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
523 &P2pIface::registerCallbackInternal, _hidl_cb, callback);
524 }
525
getDeviceAddress(getDeviceAddress_cb _hidl_cb)526 Return<void> P2pIface::getDeviceAddress(getDeviceAddress_cb _hidl_cb)
527 {
528 return validateAndCall(
529 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
530 &P2pIface::getDeviceAddressInternal, _hidl_cb);
531 }
532
setSsidPostfix(const hidl_vec<uint8_t> & postfix,setSsidPostfix_cb _hidl_cb)533 Return<void> P2pIface::setSsidPostfix(
534 const hidl_vec<uint8_t>& postfix, setSsidPostfix_cb _hidl_cb)
535 {
536 return validateAndCall(
537 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
538 &P2pIface::setSsidPostfixInternal, _hidl_cb, postfix);
539 }
540
setGroupIdle(const hidl_string & group_ifname,uint32_t timeout_in_sec,setGroupIdle_cb _hidl_cb)541 Return<void> P2pIface::setGroupIdle(
542 const hidl_string& group_ifname, uint32_t timeout_in_sec,
543 setGroupIdle_cb _hidl_cb)
544 {
545 return validateAndCall(
546 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
547 &P2pIface::setGroupIdleInternal, _hidl_cb, group_ifname,
548 timeout_in_sec);
549 }
550
setPowerSave(const hidl_string & group_ifname,bool enable,setPowerSave_cb _hidl_cb)551 Return<void> P2pIface::setPowerSave(
552 const hidl_string& group_ifname, bool enable, setPowerSave_cb _hidl_cb)
553 {
554 return validateAndCall(
555 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
556 &P2pIface::setPowerSaveInternal, _hidl_cb, group_ifname, enable);
557 }
558
find(uint32_t timeout_in_sec,find_cb _hidl_cb)559 Return<void> P2pIface::find(uint32_t timeout_in_sec, find_cb _hidl_cb)
560 {
561 return validateAndCall(
562 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
563 &P2pIface::findInternal, _hidl_cb, timeout_in_sec);
564 }
565
stopFind(stopFind_cb _hidl_cb)566 Return<void> P2pIface::stopFind(stopFind_cb _hidl_cb)
567 {
568 return validateAndCall(
569 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
570 &P2pIface::stopFindInternal, _hidl_cb);
571 }
572
flush(flush_cb _hidl_cb)573 Return<void> P2pIface::flush(flush_cb _hidl_cb)
574 {
575 return validateAndCall(
576 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
577 &P2pIface::flushInternal, _hidl_cb);
578 }
579
connect(const hidl_array<uint8_t,6> & peer_address,ISupplicantP2pIface::WpsProvisionMethod provision_method,const hidl_string & pre_selected_pin,bool join_existing_group,bool persistent,uint32_t go_intent,connect_cb _hidl_cb)580 Return<void> P2pIface::connect(
581 const hidl_array<uint8_t, 6>& peer_address,
582 ISupplicantP2pIface::WpsProvisionMethod provision_method,
583 const hidl_string& pre_selected_pin, bool join_existing_group,
584 bool persistent, uint32_t go_intent, connect_cb _hidl_cb)
585 {
586 return validateAndCall(
587 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
588 &P2pIface::connectInternal, _hidl_cb, peer_address,
589 provision_method, pre_selected_pin, join_existing_group, persistent,
590 go_intent);
591 }
592
cancelConnect(cancelConnect_cb _hidl_cb)593 Return<void> P2pIface::cancelConnect(cancelConnect_cb _hidl_cb)
594 {
595 return validateAndCall(
596 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
597 &P2pIface::cancelConnectInternal, _hidl_cb);
598 }
599
provisionDiscovery(const hidl_array<uint8_t,6> & peer_address,ISupplicantP2pIface::WpsProvisionMethod provision_method,provisionDiscovery_cb _hidl_cb)600 Return<void> P2pIface::provisionDiscovery(
601 const hidl_array<uint8_t, 6>& peer_address,
602 ISupplicantP2pIface::WpsProvisionMethod provision_method,
603 provisionDiscovery_cb _hidl_cb)
604 {
605 return validateAndCall(
606 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
607 &P2pIface::provisionDiscoveryInternal, _hidl_cb, peer_address,
608 provision_method);
609 }
610
addGroup(bool persistent,SupplicantNetworkId persistent_network_id,addGroup_cb _hidl_cb)611 Return<void> P2pIface::addGroup(
612 bool persistent, SupplicantNetworkId persistent_network_id,
613 addGroup_cb _hidl_cb)
614 {
615 return validateAndCall(
616 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
617 &P2pIface::addGroupInternal, _hidl_cb, persistent,
618 persistent_network_id);
619 }
620
removeGroup(const hidl_string & group_ifname,removeGroup_cb _hidl_cb)621 Return<void> P2pIface::removeGroup(
622 const hidl_string& group_ifname, removeGroup_cb _hidl_cb)
623 {
624 return validateAndCall(
625 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
626 &P2pIface::removeGroupInternal, _hidl_cb, group_ifname);
627 }
628
reject(const hidl_array<uint8_t,6> & peer_address,reject_cb _hidl_cb)629 Return<void> P2pIface::reject(
630 const hidl_array<uint8_t, 6>& peer_address, reject_cb _hidl_cb)
631 {
632 return validateAndCall(
633 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
634 &P2pIface::rejectInternal, _hidl_cb, peer_address);
635 }
636
invite(const hidl_string & group_ifname,const hidl_array<uint8_t,6> & go_device_address,const hidl_array<uint8_t,6> & peer_address,invite_cb _hidl_cb)637 Return<void> P2pIface::invite(
638 const hidl_string& group_ifname,
639 const hidl_array<uint8_t, 6>& go_device_address,
640 const hidl_array<uint8_t, 6>& peer_address, invite_cb _hidl_cb)
641 {
642 return validateAndCall(
643 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
644 &P2pIface::inviteInternal, _hidl_cb, group_ifname,
645 go_device_address, peer_address);
646 }
647
reinvoke(SupplicantNetworkId persistent_network_id,const hidl_array<uint8_t,6> & peer_address,reinvoke_cb _hidl_cb)648 Return<void> P2pIface::reinvoke(
649 SupplicantNetworkId persistent_network_id,
650 const hidl_array<uint8_t, 6>& peer_address, reinvoke_cb _hidl_cb)
651 {
652 return validateAndCall(
653 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
654 &P2pIface::reinvokeInternal, _hidl_cb, persistent_network_id,
655 peer_address);
656 }
657
configureExtListen(uint32_t period_in_millis,uint32_t interval_in_millis,configureExtListen_cb _hidl_cb)658 Return<void> P2pIface::configureExtListen(
659 uint32_t period_in_millis, uint32_t interval_in_millis,
660 configureExtListen_cb _hidl_cb)
661 {
662 return validateAndCall(
663 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
664 &P2pIface::configureExtListenInternal, _hidl_cb, period_in_millis,
665 interval_in_millis);
666 }
667
setListenChannel(uint32_t channel,uint32_t operating_class,setListenChannel_cb _hidl_cb)668 Return<void> P2pIface::setListenChannel(
669 uint32_t channel, uint32_t operating_class, setListenChannel_cb _hidl_cb)
670 {
671 return validateAndCall(
672 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
673 &P2pIface::setListenChannelInternal, _hidl_cb, channel,
674 operating_class);
675 }
676
setDisallowedFrequencies(const hidl_vec<FreqRange> & ranges,setDisallowedFrequencies_cb _hidl_cb)677 Return<void> P2pIface::setDisallowedFrequencies(
678 const hidl_vec<FreqRange>& ranges, setDisallowedFrequencies_cb _hidl_cb)
679 {
680 return validateAndCall(
681 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
682 &P2pIface::setDisallowedFrequenciesInternal, _hidl_cb, ranges);
683 }
684
getSsid(const hidl_array<uint8_t,6> & peer_address,getSsid_cb _hidl_cb)685 Return<void> P2pIface::getSsid(
686 const hidl_array<uint8_t, 6>& peer_address, getSsid_cb _hidl_cb)
687 {
688 return validateAndCall(
689 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
690 &P2pIface::getSsidInternal, _hidl_cb, peer_address);
691 }
692
getGroupCapability(const hidl_array<uint8_t,6> & peer_address,getGroupCapability_cb _hidl_cb)693 Return<void> P2pIface::getGroupCapability(
694 const hidl_array<uint8_t, 6>& peer_address, getGroupCapability_cb _hidl_cb)
695 {
696 return validateAndCall(
697 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
698 &P2pIface::getGroupCapabilityInternal, _hidl_cb, peer_address);
699 }
700
addBonjourService(const hidl_vec<uint8_t> & query,const hidl_vec<uint8_t> & response,addBonjourService_cb _hidl_cb)701 Return<void> P2pIface::addBonjourService(
702 const hidl_vec<uint8_t>& query, const hidl_vec<uint8_t>& response,
703 addBonjourService_cb _hidl_cb)
704 {
705 return validateAndCall(
706 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
707 &P2pIface::addBonjourServiceInternal, _hidl_cb, query, response);
708 }
709
removeBonjourService(const hidl_vec<uint8_t> & query,removeBonjourService_cb _hidl_cb)710 Return<void> P2pIface::removeBonjourService(
711 const hidl_vec<uint8_t>& query, removeBonjourService_cb _hidl_cb)
712 {
713 return validateAndCall(
714 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
715 &P2pIface::removeBonjourServiceInternal, _hidl_cb, query);
716 }
717
addUpnpService(uint32_t version,const hidl_string & service_name,addUpnpService_cb _hidl_cb)718 Return<void> P2pIface::addUpnpService(
719 uint32_t version, const hidl_string& service_name,
720 addUpnpService_cb _hidl_cb)
721 {
722 return validateAndCall(
723 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
724 &P2pIface::addUpnpServiceInternal, _hidl_cb, version, service_name);
725 }
726
removeUpnpService(uint32_t version,const hidl_string & service_name,removeUpnpService_cb _hidl_cb)727 Return<void> P2pIface::removeUpnpService(
728 uint32_t version, const hidl_string& service_name,
729 removeUpnpService_cb _hidl_cb)
730 {
731 return validateAndCall(
732 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
733 &P2pIface::removeUpnpServiceInternal, _hidl_cb, version,
734 service_name);
735 }
736
flushServices(flushServices_cb _hidl_cb)737 Return<void> P2pIface::flushServices(flushServices_cb _hidl_cb)
738 {
739 return validateAndCall(
740 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
741 &P2pIface::flushServicesInternal, _hidl_cb);
742 }
743
requestServiceDiscovery(const hidl_array<uint8_t,6> & peer_address,const hidl_vec<uint8_t> & query,requestServiceDiscovery_cb _hidl_cb)744 Return<void> P2pIface::requestServiceDiscovery(
745 const hidl_array<uint8_t, 6>& peer_address, const hidl_vec<uint8_t>& query,
746 requestServiceDiscovery_cb _hidl_cb)
747 {
748 return validateAndCall(
749 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
750 &P2pIface::requestServiceDiscoveryInternal, _hidl_cb, peer_address,
751 query);
752 }
753
cancelServiceDiscovery(uint64_t identifier,cancelServiceDiscovery_cb _hidl_cb)754 Return<void> P2pIface::cancelServiceDiscovery(
755 uint64_t identifier, cancelServiceDiscovery_cb _hidl_cb)
756 {
757 return validateAndCall(
758 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
759 &P2pIface::cancelServiceDiscoveryInternal, _hidl_cb, identifier);
760 }
761
setMiracastMode(ISupplicantP2pIface::MiracastMode mode,setMiracastMode_cb _hidl_cb)762 Return<void> P2pIface::setMiracastMode(
763 ISupplicantP2pIface::MiracastMode mode, setMiracastMode_cb _hidl_cb)
764 {
765 return validateAndCall(
766 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
767 &P2pIface::setMiracastModeInternal, _hidl_cb, mode);
768 }
769
startWpsPbc(const hidl_string & group_ifname,const hidl_array<uint8_t,6> & bssid,startWpsPbc_cb _hidl_cb)770 Return<void> P2pIface::startWpsPbc(
771 const hidl_string& group_ifname, const hidl_array<uint8_t, 6>& bssid,
772 startWpsPbc_cb _hidl_cb)
773 {
774 return validateAndCall(
775 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
776 &P2pIface::startWpsPbcInternal, _hidl_cb, group_ifname, bssid);
777 }
778
startWpsPinKeypad(const hidl_string & group_ifname,const hidl_string & pin,startWpsPinKeypad_cb _hidl_cb)779 Return<void> P2pIface::startWpsPinKeypad(
780 const hidl_string& group_ifname, const hidl_string& pin,
781 startWpsPinKeypad_cb _hidl_cb)
782 {
783 return validateAndCall(
784 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
785 &P2pIface::startWpsPinKeypadInternal, _hidl_cb, group_ifname, pin);
786 }
787
startWpsPinDisplay(const hidl_string & group_ifname,const hidl_array<uint8_t,6> & bssid,startWpsPinDisplay_cb _hidl_cb)788 Return<void> P2pIface::startWpsPinDisplay(
789 const hidl_string& group_ifname, const hidl_array<uint8_t, 6>& bssid,
790 startWpsPinDisplay_cb _hidl_cb)
791 {
792 return validateAndCall(
793 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
794 &P2pIface::startWpsPinDisplayInternal, _hidl_cb, group_ifname,
795 bssid);
796 }
797
cancelWps(const hidl_string & group_ifname,cancelWps_cb _hidl_cb)798 Return<void> P2pIface::cancelWps(
799 const hidl_string& group_ifname, cancelWps_cb _hidl_cb)
800 {
801 return validateAndCall(
802 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
803 &P2pIface::cancelWpsInternal, _hidl_cb, group_ifname);
804 }
805
setWpsDeviceName(const hidl_string & name,setWpsDeviceName_cb _hidl_cb)806 Return<void> P2pIface::setWpsDeviceName(
807 const hidl_string& name, setWpsDeviceName_cb _hidl_cb)
808 {
809 return validateAndCall(
810 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
811 &P2pIface::setWpsDeviceNameInternal, _hidl_cb, name);
812 }
813
setWpsDeviceType(const hidl_array<uint8_t,8> & type,setWpsDeviceType_cb _hidl_cb)814 Return<void> P2pIface::setWpsDeviceType(
815 const hidl_array<uint8_t, 8>& type, setWpsDeviceType_cb _hidl_cb)
816 {
817 return validateAndCall(
818 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
819 &P2pIface::setWpsDeviceTypeInternal, _hidl_cb, type);
820 }
821
setWpsManufacturer(const hidl_string & manufacturer,setWpsManufacturer_cb _hidl_cb)822 Return<void> P2pIface::setWpsManufacturer(
823 const hidl_string& manufacturer, setWpsManufacturer_cb _hidl_cb)
824 {
825 return validateAndCall(
826 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
827 &P2pIface::setWpsManufacturerInternal, _hidl_cb, manufacturer);
828 }
829
setWpsModelName(const hidl_string & model_name,setWpsModelName_cb _hidl_cb)830 Return<void> P2pIface::setWpsModelName(
831 const hidl_string& model_name, setWpsModelName_cb _hidl_cb)
832 {
833 return validateAndCall(
834 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
835 &P2pIface::setWpsModelNameInternal, _hidl_cb, model_name);
836 }
837
setWpsModelNumber(const hidl_string & model_number,setWpsModelNumber_cb _hidl_cb)838 Return<void> P2pIface::setWpsModelNumber(
839 const hidl_string& model_number, setWpsModelNumber_cb _hidl_cb)
840 {
841 return validateAndCall(
842 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
843 &P2pIface::setWpsModelNumberInternal, _hidl_cb, model_number);
844 }
845
setWpsSerialNumber(const hidl_string & serial_number,setWpsSerialNumber_cb _hidl_cb)846 Return<void> P2pIface::setWpsSerialNumber(
847 const hidl_string& serial_number, setWpsSerialNumber_cb _hidl_cb)
848 {
849 return validateAndCall(
850 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
851 &P2pIface::setWpsSerialNumberInternal, _hidl_cb, serial_number);
852 }
853
setWpsConfigMethods(uint16_t config_methods,setWpsConfigMethods_cb _hidl_cb)854 Return<void> P2pIface::setWpsConfigMethods(
855 uint16_t config_methods, setWpsConfigMethods_cb _hidl_cb)
856 {
857 return validateAndCall(
858 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
859 &P2pIface::setWpsConfigMethodsInternal, _hidl_cb, config_methods);
860 }
861
enableWfd(bool enable,enableWfd_cb _hidl_cb)862 Return<void> P2pIface::enableWfd(bool enable, enableWfd_cb _hidl_cb)
863 {
864 return validateAndCall(
865 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
866 &P2pIface::enableWfdInternal, _hidl_cb, enable);
867 }
868
setWfdDeviceInfo(const hidl_array<uint8_t,6> & info,setWfdDeviceInfo_cb _hidl_cb)869 Return<void> P2pIface::setWfdDeviceInfo(
870 const hidl_array<uint8_t, 6>& info, setWfdDeviceInfo_cb _hidl_cb)
871 {
872 return validateAndCall(
873 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
874 &P2pIface::setWfdDeviceInfoInternal, _hidl_cb, info);
875 }
876
createNfcHandoverRequestMessage(createNfcHandoverRequestMessage_cb _hidl_cb)877 Return<void> P2pIface::createNfcHandoverRequestMessage(
878 createNfcHandoverRequestMessage_cb _hidl_cb)
879 {
880 return validateAndCall(
881 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
882 &P2pIface::createNfcHandoverRequestMessageInternal, _hidl_cb);
883 }
884
createNfcHandoverSelectMessage(createNfcHandoverSelectMessage_cb _hidl_cb)885 Return<void> P2pIface::createNfcHandoverSelectMessage(
886 createNfcHandoverSelectMessage_cb _hidl_cb)
887 {
888 return validateAndCall(
889 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
890 &P2pIface::createNfcHandoverSelectMessageInternal, _hidl_cb);
891 }
892
reportNfcHandoverResponse(const hidl_vec<uint8_t> & request,reportNfcHandoverResponse_cb _hidl_cb)893 Return<void> P2pIface::reportNfcHandoverResponse(
894 const hidl_vec<uint8_t>& request, reportNfcHandoverResponse_cb _hidl_cb)
895 {
896 return validateAndCall(
897 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
898 &P2pIface::reportNfcHandoverResponseInternal, _hidl_cb, request);
899 }
900
reportNfcHandoverInitiation(const hidl_vec<uint8_t> & select,reportNfcHandoverInitiation_cb _hidl_cb)901 Return<void> P2pIface::reportNfcHandoverInitiation(
902 const hidl_vec<uint8_t>& select, reportNfcHandoverInitiation_cb _hidl_cb)
903 {
904 return validateAndCall(
905 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
906 &P2pIface::reportNfcHandoverInitiationInternal, _hidl_cb, select);
907 }
908
saveConfig(saveConfig_cb _hidl_cb)909 Return<void> P2pIface::saveConfig(saveConfig_cb _hidl_cb)
910 {
911 return validateAndCall(
912 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
913 &P2pIface::saveConfigInternal, _hidl_cb);
914 }
915
addGroup_1_2(const hidl_vec<uint8_t> & ssid,const hidl_string & passphrase,bool persistent,uint32_t freq,const hidl_array<uint8_t,6> & peer_address,bool join,addGroup_cb _hidl_cb)916 Return<void> P2pIface::addGroup_1_2(
917 const hidl_vec<uint8_t>& ssid, const hidl_string& passphrase,
918 bool persistent, uint32_t freq, const hidl_array<uint8_t, 6>& peer_address,
919 bool join, addGroup_cb _hidl_cb)
920 {
921 return validateAndCall(
922 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
923 &P2pIface::addGroup_1_2Internal, _hidl_cb,
924 ssid, passphrase, persistent, freq, peer_address, join);
925 }
926
setMacRandomization(bool enable,setMacRandomization_cb _hidl_cb)927 Return<void> P2pIface::setMacRandomization(bool enable, setMacRandomization_cb _hidl_cb)
928 {
929 return validateAndCall(
930 this, SupplicantStatusCode::FAILURE_IFACE_INVALID,
931 &P2pIface::setMacRandomizationInternal, _hidl_cb, enable);
932 }
933
setEdmg(bool enable,setEdmg_cb _hidl_cb)934 Return<void> P2pIface::setEdmg(bool enable, setEdmg_cb _hidl_cb)
935 {
936 return validateAndCall(
937 this, V1_4::SupplicantStatusCode::FAILURE_NETWORK_INVALID,
938 &P2pIface::setEdmgInternal, _hidl_cb, enable);
939 }
940
getEdmg(getEdmg_cb _hidl_cb)941 Return<void> P2pIface::getEdmg(getEdmg_cb _hidl_cb)
942 {
943 return validateAndCall(
944 this, V1_4::SupplicantStatusCode::FAILURE_NETWORK_INVALID,
945 &P2pIface::getEdmgInternal, _hidl_cb);
946 }
947
registerCallback_1_4(const sp<V1_4::ISupplicantP2pIfaceCallback> & callback,registerCallback_1_4_cb _hidl_cb)948 Return<void> P2pIface::registerCallback_1_4(
949 const sp<V1_4::ISupplicantP2pIfaceCallback>& callback,
950 registerCallback_1_4_cb _hidl_cb)
951 {
952 return validateAndCall(
953 this, V1_4::SupplicantStatusCode::FAILURE_IFACE_INVALID,
954 &P2pIface::registerCallback_1_4Internal, _hidl_cb, callback);
955 }
956
setWfdR2DeviceInfo(const hidl_array<uint8_t,4> & info,setWfdR2DeviceInfo_cb _hidl_cb)957 Return<void> P2pIface::setWfdR2DeviceInfo(
958 const hidl_array<uint8_t, 4>& info, setWfdR2DeviceInfo_cb _hidl_cb)
959 {
960 return validateAndCall(
961 this, V1_4::SupplicantStatusCode::FAILURE_IFACE_INVALID,
962 &P2pIface::setWfdR2DeviceInfoInternal, _hidl_cb, info);
963 }
964
getNameInternal()965 std::pair<SupplicantStatus, std::string> P2pIface::getNameInternal()
966 {
967 return {{SupplicantStatusCode::SUCCESS, ""}, ifname_};
968 }
969
getTypeInternal()970 std::pair<SupplicantStatus, IfaceType> P2pIface::getTypeInternal()
971 {
972 return {{SupplicantStatusCode::SUCCESS, ""}, IfaceType::P2P};
973 }
974
975 std::pair<SupplicantStatus, sp<ISupplicantP2pNetwork>>
addNetworkInternal()976 P2pIface::addNetworkInternal()
977 {
978 android::sp<ISupplicantP2pNetwork> network;
979 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
980 struct wpa_ssid* ssid = wpa_supplicant_add_network(wpa_s);
981 if (!ssid) {
982 return {{SupplicantStatusCode::FAILURE_UNKNOWN, ""}, network};
983 }
984 HidlManager* hidl_manager = HidlManager::getInstance();
985 if (!hidl_manager ||
986 hidl_manager->getP2pNetworkHidlObjectByIfnameAndNetworkId(
987 wpa_s->ifname, ssid->id, &network)) {
988 return {{SupplicantStatusCode::FAILURE_UNKNOWN, ""}, network};
989 }
990 return {{SupplicantStatusCode::SUCCESS, ""}, network};
991 }
992
removeNetworkInternal(SupplicantNetworkId id)993 SupplicantStatus P2pIface::removeNetworkInternal(SupplicantNetworkId id)
994 {
995 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
996 int result = wpa_supplicant_remove_network(wpa_s, id);
997 if (result == -1) {
998 return {SupplicantStatusCode::FAILURE_NETWORK_UNKNOWN, ""};
999 }
1000 if (result != 0) {
1001 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1002 }
1003 return {SupplicantStatusCode::SUCCESS, ""};
1004 }
1005
1006 std::pair<SupplicantStatus, sp<ISupplicantP2pNetwork>>
getNetworkInternal(SupplicantNetworkId id)1007 P2pIface::getNetworkInternal(SupplicantNetworkId id)
1008 {
1009 android::sp<ISupplicantP2pNetwork> network;
1010 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1011 struct wpa_ssid* ssid = wpa_config_get_network(wpa_s->conf, id);
1012 if (!ssid) {
1013 return {{SupplicantStatusCode::FAILURE_NETWORK_UNKNOWN, ""},
1014 network};
1015 }
1016 HidlManager* hidl_manager = HidlManager::getInstance();
1017 if (!hidl_manager ||
1018 hidl_manager->getP2pNetworkHidlObjectByIfnameAndNetworkId(
1019 wpa_s->ifname, ssid->id, &network)) {
1020 return {{SupplicantStatusCode::FAILURE_UNKNOWN, ""}, network};
1021 }
1022 return {{SupplicantStatusCode::SUCCESS, ""}, network};
1023 }
1024
1025 std::pair<SupplicantStatus, std::vector<SupplicantNetworkId>>
listNetworksInternal()1026 P2pIface::listNetworksInternal()
1027 {
1028 std::vector<SupplicantNetworkId> network_ids;
1029 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1030 for (struct wpa_ssid* wpa_ssid = wpa_s->conf->ssid; wpa_ssid;
1031 wpa_ssid = wpa_ssid->next) {
1032 network_ids.emplace_back(wpa_ssid->id);
1033 }
1034 return {{SupplicantStatusCode::SUCCESS, ""}, std::move(network_ids)};
1035 }
1036
registerCallbackInternal(const sp<ISupplicantP2pIfaceCallback> & callback)1037 SupplicantStatus P2pIface::registerCallbackInternal(
1038 const sp<ISupplicantP2pIfaceCallback>& callback)
1039 {
1040 HidlManager* hidl_manager = HidlManager::getInstance();
1041 if (!hidl_manager ||
1042 hidl_manager->addP2pIfaceCallbackHidlObject(ifname_, callback)) {
1043 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1044 }
1045 return {SupplicantStatusCode::SUCCESS, ""};
1046 }
1047
1048 std::pair<SupplicantStatus, std::array<uint8_t, 6>>
getDeviceAddressInternal()1049 P2pIface::getDeviceAddressInternal()
1050 {
1051 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1052 std::array<uint8_t, 6> addr;
1053 static_assert(ETH_ALEN == addr.size(), "Size mismatch");
1054 os_memcpy(addr.data(), wpa_s->global->p2p_dev_addr, ETH_ALEN);
1055 return {{SupplicantStatusCode::SUCCESS, ""}, addr};
1056 }
1057
setSsidPostfixInternal(const std::vector<uint8_t> & postfix)1058 SupplicantStatus P2pIface::setSsidPostfixInternal(
1059 const std::vector<uint8_t>& postfix)
1060 {
1061 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1062 if (p2p_set_ssid_postfix(
1063 wpa_s->global->p2p, postfix.data(), postfix.size())) {
1064 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1065 }
1066 return {SupplicantStatusCode::SUCCESS, ""};
1067 }
1068
setGroupIdleInternal(const std::string & group_ifname,uint32_t timeout_in_sec)1069 SupplicantStatus P2pIface::setGroupIdleInternal(
1070 const std::string& group_ifname, uint32_t timeout_in_sec)
1071 {
1072 struct wpa_supplicant* wpa_group_s =
1073 retrieveGroupIfacePtr(group_ifname);
1074 if (!wpa_group_s) {
1075 return {SupplicantStatusCode::FAILURE_IFACE_UNKNOWN, ""};
1076 }
1077 wpa_group_s->conf->p2p_group_idle = timeout_in_sec;
1078 return {SupplicantStatusCode::SUCCESS, ""};
1079 }
1080
setPowerSaveInternal(const std::string & group_ifname,bool enable)1081 SupplicantStatus P2pIface::setPowerSaveInternal(
1082 const std::string& group_ifname, bool enable)
1083 {
1084 struct wpa_supplicant* wpa_group_s =
1085 retrieveGroupIfacePtr(group_ifname);
1086 if (!wpa_group_s) {
1087 return {SupplicantStatusCode::FAILURE_IFACE_UNKNOWN, ""};
1088 }
1089 if (wpa_drv_set_p2p_powersave(wpa_group_s, enable, -1, -1)) {
1090 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1091 }
1092 return {SupplicantStatusCode::SUCCESS, ""};
1093 }
1094
findInternal(uint32_t timeout_in_sec)1095 SupplicantStatus P2pIface::findInternal(uint32_t timeout_in_sec)
1096 {
1097 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1098 if (wpa_s->wpa_state == WPA_INTERFACE_DISABLED) {
1099 return {SupplicantStatusCode::FAILURE_IFACE_DISABLED, ""};
1100 }
1101 uint32_t search_delay = wpas_p2p_search_delay(wpa_s);
1102 if (wpas_p2p_find(
1103 wpa_s, timeout_in_sec, P2P_FIND_START_WITH_FULL, 0, nullptr,
1104 nullptr, search_delay, 0, nullptr, 0)) {
1105 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1106 }
1107 return {SupplicantStatusCode::SUCCESS, ""};
1108 }
1109
stopFindInternal()1110 SupplicantStatus P2pIface::stopFindInternal()
1111 {
1112 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1113 if (wpa_s->wpa_state == WPA_INTERFACE_DISABLED) {
1114 return {SupplicantStatusCode::FAILURE_IFACE_DISABLED, ""};
1115 }
1116 if (wpa_s->scan_res_handler == scanResJoinWrapper) {
1117 wpa_printf(MSG_DEBUG, "P2P: Stop pending group scan for stopping find).");
1118 pending_scan_res_join_callback = NULL;
1119 wpa_s->scan_res_handler = scanResJoinIgnore;
1120 }
1121 wpas_p2p_stop_find(wpa_s);
1122 return {SupplicantStatusCode::SUCCESS, ""};
1123 }
1124
flushInternal()1125 SupplicantStatus P2pIface::flushInternal()
1126 {
1127 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1128 os_memset(wpa_s->p2p_auth_invite, 0, ETH_ALEN);
1129 wpa_s->force_long_sd = 0;
1130 wpas_p2p_stop_find(wpa_s);
1131 wpa_s->parent->p2ps_method_config_any = 0;
1132 if (wpa_s->global->p2p)
1133 p2p_flush(wpa_s->global->p2p);
1134 return {SupplicantStatusCode::SUCCESS, ""};
1135 }
1136
1137 // This method only implements support for subset (needed by Android framework)
1138 // of parameters that can be specified for connect.
connectInternal(const std::array<uint8_t,6> & peer_address,ISupplicantP2pIface::WpsProvisionMethod provision_method,const std::string & pre_selected_pin,bool join_existing_group,bool persistent,uint32_t go_intent)1139 std::pair<SupplicantStatus, std::string> P2pIface::connectInternal(
1140 const std::array<uint8_t, 6>& peer_address,
1141 ISupplicantP2pIface::WpsProvisionMethod provision_method,
1142 const std::string& pre_selected_pin, bool join_existing_group,
1143 bool persistent, uint32_t go_intent)
1144 {
1145 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1146 if (go_intent > 15) {
1147 return {{SupplicantStatusCode::FAILURE_ARGS_INVALID, ""}, {}};
1148 }
1149 int go_intent_signed = join_existing_group ? -1 : go_intent;
1150 p2p_wps_method wps_method = {};
1151 switch (provision_method) {
1152 case WpsProvisionMethod::PBC:
1153 wps_method = WPS_PBC;
1154 break;
1155 case WpsProvisionMethod::DISPLAY:
1156 wps_method = WPS_PIN_DISPLAY;
1157 break;
1158 case WpsProvisionMethod::KEYPAD:
1159 wps_method = WPS_PIN_KEYPAD;
1160 break;
1161 }
1162 int he = wpa_s->conf->p2p_go_he;
1163 int vht = wpa_s->conf->p2p_go_vht;
1164 int ht40 = wpa_s->conf->p2p_go_ht40 || vht;
1165 const char* pin =
1166 pre_selected_pin.length() > 0 ? pre_selected_pin.data() : nullptr;
1167 bool auto_join = !join_existing_group;
1168 int new_pin = wpas_p2p_connect(
1169 wpa_s, peer_address.data(), pin, wps_method, persistent, auto_join,
1170 join_existing_group, false, go_intent_signed, 0, 0, -1, false, ht40,
1171 vht, CHANWIDTH_USE_HT, he, 0, nullptr, 0);
1172 if (new_pin < 0) {
1173 return {{SupplicantStatusCode::FAILURE_UNKNOWN, ""}, {}};
1174 }
1175 std::string pin_ret;
1176 if (provision_method == WpsProvisionMethod::DISPLAY &&
1177 pre_selected_pin.empty()) {
1178 pin_ret = misc_utils::convertWpsPinToString(new_pin);
1179 }
1180 return {{SupplicantStatusCode::SUCCESS, ""}, pin_ret};
1181 }
1182
cancelConnectInternal()1183 SupplicantStatus P2pIface::cancelConnectInternal()
1184 {
1185 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1186 if (wpa_s->scan_res_handler == scanResJoinWrapper) {
1187 wpa_printf(MSG_DEBUG, "P2P: Stop pending group scan for canceling connect");
1188 pending_scan_res_join_callback = NULL;
1189 wpa_s->scan_res_handler = scanResJoinIgnore;
1190 }
1191 if (wpas_p2p_cancel(wpa_s)) {
1192 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1193 }
1194 return {SupplicantStatusCode::SUCCESS, ""};
1195 }
1196
provisionDiscoveryInternal(const std::array<uint8_t,6> & peer_address,ISupplicantP2pIface::WpsProvisionMethod provision_method)1197 SupplicantStatus P2pIface::provisionDiscoveryInternal(
1198 const std::array<uint8_t, 6>& peer_address,
1199 ISupplicantP2pIface::WpsProvisionMethod provision_method)
1200 {
1201 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1202 p2ps_provision* prov_param;
1203 const char* config_method_str = nullptr;
1204 switch (provision_method) {
1205 case WpsProvisionMethod::PBC:
1206 config_method_str = kConfigMethodStrPbc;
1207 break;
1208 case WpsProvisionMethod::DISPLAY:
1209 config_method_str = kConfigMethodStrDisplay;
1210 break;
1211 case WpsProvisionMethod::KEYPAD:
1212 config_method_str = kConfigMethodStrKeypad;
1213 break;
1214 }
1215 if (wpas_p2p_prov_disc(
1216 wpa_s, peer_address.data(), config_method_str,
1217 WPAS_P2P_PD_FOR_GO_NEG, nullptr)) {
1218 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1219 }
1220 return {SupplicantStatusCode::SUCCESS, ""};
1221 }
1222
addGroupInternal(bool persistent,SupplicantNetworkId persistent_network_id)1223 SupplicantStatus P2pIface::addGroupInternal(
1224 bool persistent, SupplicantNetworkId persistent_network_id)
1225 {
1226 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1227 int he = wpa_s->conf->p2p_go_he;
1228 int vht = wpa_s->conf->p2p_go_vht;
1229 int ht40 = wpa_s->conf->p2p_go_ht40 || vht;
1230 struct wpa_ssid* ssid =
1231 wpa_config_get_network(wpa_s->conf, persistent_network_id);
1232 if (ssid == NULL) {
1233 if (wpas_p2p_group_add(
1234 wpa_s, persistent, 0, 0, ht40, vht,
1235 CHANWIDTH_USE_HT, he, 0)) {
1236 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1237 } else {
1238 return {SupplicantStatusCode::SUCCESS, ""};
1239 }
1240 } else if (ssid->disabled == 2) {
1241 if (wpas_p2p_group_add_persistent(
1242 wpa_s, ssid, 0, 0, 0, 0, ht40, vht,
1243 CHANWIDTH_USE_HT, he, 0, NULL, 0, 0)) {
1244 return {SupplicantStatusCode::FAILURE_NETWORK_UNKNOWN,
1245 ""};
1246 } else {
1247 return {SupplicantStatusCode::SUCCESS, ""};
1248 }
1249 }
1250 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1251 }
1252
removeGroupInternal(const std::string & group_ifname)1253 SupplicantStatus P2pIface::removeGroupInternal(const std::string& group_ifname)
1254 {
1255 struct wpa_supplicant* wpa_group_s =
1256 retrieveGroupIfacePtr(group_ifname);
1257 if (!wpa_group_s) {
1258 return {SupplicantStatusCode::FAILURE_IFACE_UNKNOWN, ""};
1259 }
1260 wpa_group_s->global->p2p_go_found_external_scan = 0;
1261 if (wpas_p2p_group_remove(wpa_group_s, group_ifname.c_str())) {
1262 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1263 }
1264 return {SupplicantStatusCode::SUCCESS, ""};
1265 }
1266
rejectInternal(const std::array<uint8_t,6> & peer_address)1267 SupplicantStatus P2pIface::rejectInternal(
1268 const std::array<uint8_t, 6>& peer_address)
1269 {
1270 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1271 if (wpa_s->global->p2p_disabled || wpa_s->global->p2p == NULL) {
1272 return {SupplicantStatusCode::FAILURE_IFACE_DISABLED, ""};
1273 }
1274 if (wpas_p2p_reject(wpa_s, peer_address.data())) {
1275 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1276 }
1277 return {SupplicantStatusCode::SUCCESS, ""};
1278 }
1279
inviteInternal(const std::string & group_ifname,const std::array<uint8_t,6> & go_device_address,const std::array<uint8_t,6> & peer_address)1280 SupplicantStatus P2pIface::inviteInternal(
1281 const std::string& group_ifname,
1282 const std::array<uint8_t, 6>& go_device_address,
1283 const std::array<uint8_t, 6>& peer_address)
1284 {
1285 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1286 if (wpas_p2p_invite_group(
1287 wpa_s, group_ifname.c_str(), peer_address.data(),
1288 go_device_address.data())) {
1289 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1290 }
1291 return {SupplicantStatusCode::SUCCESS, ""};
1292 }
1293
reinvokeInternal(SupplicantNetworkId persistent_network_id,const std::array<uint8_t,6> & peer_address)1294 SupplicantStatus P2pIface::reinvokeInternal(
1295 SupplicantNetworkId persistent_network_id,
1296 const std::array<uint8_t, 6>& peer_address)
1297 {
1298 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1299 int he = wpa_s->conf->p2p_go_he;
1300 int vht = wpa_s->conf->p2p_go_vht;
1301 int ht40 = wpa_s->conf->p2p_go_ht40 || vht;
1302 struct wpa_ssid* ssid =
1303 wpa_config_get_network(wpa_s->conf, persistent_network_id);
1304 if (ssid == NULL || ssid->disabled != 2) {
1305 return {SupplicantStatusCode::FAILURE_NETWORK_UNKNOWN, ""};
1306 }
1307 if (wpas_p2p_invite(
1308 wpa_s, peer_address.data(), ssid, NULL, 0, 0, ht40, vht,
1309 CHANWIDTH_USE_HT, 0, he, 0)) {
1310 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1311 }
1312 return {SupplicantStatusCode::SUCCESS, ""};
1313 }
1314
configureExtListenInternal(uint32_t period_in_millis,uint32_t interval_in_millis)1315 SupplicantStatus P2pIface::configureExtListenInternal(
1316 uint32_t period_in_millis, uint32_t interval_in_millis)
1317 {
1318 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1319 if (wpas_p2p_ext_listen(wpa_s, period_in_millis, interval_in_millis)) {
1320 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1321 }
1322 return {SupplicantStatusCode::SUCCESS, ""};
1323 }
1324
setListenChannelInternal(uint32_t channel,uint32_t operating_class)1325 SupplicantStatus P2pIface::setListenChannelInternal(
1326 uint32_t channel, uint32_t operating_class)
1327 {
1328 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1329 if (p2p_set_listen_channel(
1330 wpa_s->global->p2p, operating_class, channel, 1)) {
1331 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1332 }
1333 return {SupplicantStatusCode::SUCCESS, ""};
1334 }
1335
setDisallowedFrequenciesInternal(const std::vector<FreqRange> & ranges)1336 SupplicantStatus P2pIface::setDisallowedFrequenciesInternal(
1337 const std::vector<FreqRange>& ranges)
1338 {
1339 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1340 using DestT = struct wpa_freq_range_list::wpa_freq_range;
1341 DestT* freq_ranges = nullptr;
1342 // Empty ranges is used to enable all frequencies.
1343 if (ranges.size() != 0) {
1344 freq_ranges = static_cast<DestT*>(
1345 os_malloc(sizeof(DestT) * ranges.size()));
1346 if (!freq_ranges) {
1347 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1348 }
1349 uint32_t i = 0;
1350 for (const auto& range : ranges) {
1351 freq_ranges[i].min = range.min;
1352 freq_ranges[i].max = range.max;
1353 i++;
1354 }
1355 }
1356
1357 os_free(wpa_s->global->p2p_disallow_freq.range);
1358 wpa_s->global->p2p_disallow_freq.range = freq_ranges;
1359 wpa_s->global->p2p_disallow_freq.num = ranges.size();
1360 wpas_p2p_update_channel_list(wpa_s, WPAS_P2P_CHANNEL_UPDATE_DISALLOW);
1361 return {SupplicantStatusCode::SUCCESS, ""};
1362 }
1363
getSsidInternal(const std::array<uint8_t,6> & peer_address)1364 std::pair<SupplicantStatus, std::vector<uint8_t>> P2pIface::getSsidInternal(
1365 const std::array<uint8_t, 6>& peer_address)
1366 {
1367 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1368 const struct p2p_peer_info* info =
1369 p2p_get_peer_info(wpa_s->global->p2p, peer_address.data(), 0);
1370 if (!info) {
1371 return {{SupplicantStatusCode::FAILURE_UNKNOWN, ""}, {}};
1372 }
1373 const struct p2p_device* dev =
1374 reinterpret_cast<const struct p2p_device*>(
1375 (reinterpret_cast<const uint8_t*>(info)) -
1376 offsetof(struct p2p_device, info));
1377 std::vector<uint8_t> ssid;
1378 if (dev && dev->oper_ssid_len) {
1379 ssid.assign(
1380 dev->oper_ssid, dev->oper_ssid + dev->oper_ssid_len);
1381 }
1382 return {{SupplicantStatusCode::SUCCESS, ""}, ssid};
1383 }
1384
getGroupCapabilityInternal(const std::array<uint8_t,6> & peer_address)1385 std::pair<SupplicantStatus, uint32_t> P2pIface::getGroupCapabilityInternal(
1386 const std::array<uint8_t, 6>& peer_address)
1387 {
1388 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1389 const struct p2p_peer_info* info =
1390 p2p_get_peer_info(wpa_s->global->p2p, peer_address.data(), 0);
1391 if (!info) {
1392 return {{SupplicantStatusCode::FAILURE_UNKNOWN, ""}, {}};
1393 }
1394 return {{SupplicantStatusCode::SUCCESS, ""}, info->group_capab};
1395 }
1396
addBonjourServiceInternal(const std::vector<uint8_t> & query,const std::vector<uint8_t> & response)1397 SupplicantStatus P2pIface::addBonjourServiceInternal(
1398 const std::vector<uint8_t>& query, const std::vector<uint8_t>& response)
1399 {
1400 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1401 auto query_buf = misc_utils::convertVectorToWpaBuf(query);
1402 auto response_buf = misc_utils::convertVectorToWpaBuf(response);
1403 if (!query_buf || !response_buf) {
1404 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1405 }
1406 if (wpas_p2p_service_add_bonjour(
1407 wpa_s, query_buf.get(), response_buf.get())) {
1408 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1409 }
1410 // If successful, the wpabuf is referenced internally and hence should
1411 // not be freed.
1412 query_buf.release();
1413 response_buf.release();
1414 return {SupplicantStatusCode::SUCCESS, ""};
1415 }
1416
removeBonjourServiceInternal(const std::vector<uint8_t> & query)1417 SupplicantStatus P2pIface::removeBonjourServiceInternal(
1418 const std::vector<uint8_t>& query)
1419 {
1420 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1421 auto query_buf = misc_utils::convertVectorToWpaBuf(query);
1422 if (!query_buf) {
1423 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1424 }
1425 if (wpas_p2p_service_del_bonjour(wpa_s, query_buf.get())) {
1426 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1427 }
1428 return {SupplicantStatusCode::SUCCESS, ""};
1429 }
1430
addUpnpServiceInternal(uint32_t version,const std::string & service_name)1431 SupplicantStatus P2pIface::addUpnpServiceInternal(
1432 uint32_t version, const std::string& service_name)
1433 {
1434 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1435 if (wpas_p2p_service_add_upnp(wpa_s, version, service_name.c_str())) {
1436 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1437 }
1438 return {SupplicantStatusCode::SUCCESS, ""};
1439 }
1440
removeUpnpServiceInternal(uint32_t version,const std::string & service_name)1441 SupplicantStatus P2pIface::removeUpnpServiceInternal(
1442 uint32_t version, const std::string& service_name)
1443 {
1444 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1445 if (wpas_p2p_service_del_upnp(wpa_s, version, service_name.c_str())) {
1446 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1447 }
1448 return {SupplicantStatusCode::SUCCESS, ""};
1449 }
1450
flushServicesInternal()1451 SupplicantStatus P2pIface::flushServicesInternal()
1452 {
1453 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1454 wpas_p2p_service_flush(wpa_s);
1455 return {SupplicantStatusCode::SUCCESS, ""};
1456 }
1457
requestServiceDiscoveryInternal(const std::array<uint8_t,6> & peer_address,const std::vector<uint8_t> & query)1458 std::pair<SupplicantStatus, uint64_t> P2pIface::requestServiceDiscoveryInternal(
1459 const std::array<uint8_t, 6>& peer_address,
1460 const std::vector<uint8_t>& query)
1461 {
1462 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1463 auto query_buf = misc_utils::convertVectorToWpaBuf(query);
1464 if (!query_buf) {
1465 return {{SupplicantStatusCode::FAILURE_UNKNOWN, ""}, {}};
1466 }
1467 const uint8_t* dst_addr = is_zero_ether_addr(peer_address.data())
1468 ? nullptr
1469 : peer_address.data();
1470 uint64_t identifier =
1471 wpas_p2p_sd_request(wpa_s, dst_addr, query_buf.get());
1472 if (identifier == 0) {
1473 return {{SupplicantStatusCode::FAILURE_UNKNOWN, ""}, {}};
1474 }
1475 return {{SupplicantStatusCode::SUCCESS, ""}, identifier};
1476 }
1477
cancelServiceDiscoveryInternal(uint64_t identifier)1478 SupplicantStatus P2pIface::cancelServiceDiscoveryInternal(uint64_t identifier)
1479 {
1480 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1481 if (wpas_p2p_sd_cancel_request(wpa_s, identifier)) {
1482 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1483 }
1484 return {SupplicantStatusCode::SUCCESS, ""};
1485 }
1486
setMiracastModeInternal(ISupplicantP2pIface::MiracastMode mode)1487 SupplicantStatus P2pIface::setMiracastModeInternal(
1488 ISupplicantP2pIface::MiracastMode mode)
1489 {
1490 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1491 uint8_t mode_internal = convertHidlMiracastModeToInternal(mode);
1492 const std::string cmd_str =
1493 kSetMiracastMode + std::to_string(mode_internal);
1494 std::vector<char> cmd(
1495 cmd_str.c_str(), cmd_str.c_str() + cmd_str.size() + 1);
1496 char driver_cmd_reply_buf[4096] = {};
1497 if (wpa_drv_driver_cmd(
1498 wpa_s, cmd.data(), driver_cmd_reply_buf,
1499 sizeof(driver_cmd_reply_buf))) {
1500 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1501 }
1502 return {SupplicantStatusCode::SUCCESS, ""};
1503 }
1504
startWpsPbcInternal(const std::string & group_ifname,const std::array<uint8_t,6> & bssid)1505 SupplicantStatus P2pIface::startWpsPbcInternal(
1506 const std::string& group_ifname, const std::array<uint8_t, 6>& bssid)
1507 {
1508 struct wpa_supplicant* wpa_group_s =
1509 retrieveGroupIfacePtr(group_ifname);
1510 if (!wpa_group_s) {
1511 return {SupplicantStatusCode::FAILURE_IFACE_UNKNOWN, ""};
1512 }
1513 const uint8_t* bssid_addr =
1514 is_zero_ether_addr(bssid.data()) ? nullptr : bssid.data();
1515 #ifdef CONFIG_AP
1516 if (wpa_group_s->ap_iface) {
1517 if (wpa_supplicant_ap_wps_pbc(wpa_group_s, bssid_addr, NULL)) {
1518 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1519 }
1520 return {SupplicantStatusCode::SUCCESS, ""};
1521 }
1522 #endif /* CONFIG_AP */
1523 if (wpas_wps_start_pbc(wpa_group_s, bssid_addr, 0, 0)) {
1524 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1525 }
1526 return {SupplicantStatusCode::SUCCESS, ""};
1527 }
1528
startWpsPinKeypadInternal(const std::string & group_ifname,const std::string & pin)1529 SupplicantStatus P2pIface::startWpsPinKeypadInternal(
1530 const std::string& group_ifname, const std::string& pin)
1531 {
1532 struct wpa_supplicant* wpa_group_s =
1533 retrieveGroupIfacePtr(group_ifname);
1534 if (!wpa_group_s) {
1535 return {SupplicantStatusCode::FAILURE_IFACE_UNKNOWN, ""};
1536 }
1537 #ifdef CONFIG_AP
1538 if (wpa_group_s->ap_iface) {
1539 if (wpa_supplicant_ap_wps_pin(
1540 wpa_group_s, nullptr, pin.c_str(), nullptr, 0, 0) < 0) {
1541 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1542 }
1543 return {SupplicantStatusCode::SUCCESS, ""};
1544 }
1545 #endif /* CONFIG_AP */
1546 if (wpas_wps_start_pin(
1547 wpa_group_s, nullptr, pin.c_str(), 0, DEV_PW_DEFAULT)) {
1548 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1549 }
1550 return {SupplicantStatusCode::SUCCESS, ""};
1551 }
1552
startWpsPinDisplayInternal(const std::string & group_ifname,const std::array<uint8_t,6> & bssid)1553 std::pair<SupplicantStatus, std::string> P2pIface::startWpsPinDisplayInternal(
1554 const std::string& group_ifname, const std::array<uint8_t, 6>& bssid)
1555 {
1556 struct wpa_supplicant* wpa_group_s =
1557 retrieveGroupIfacePtr(group_ifname);
1558 if (!wpa_group_s) {
1559 return {{SupplicantStatusCode::FAILURE_IFACE_UNKNOWN, ""}, ""};
1560 }
1561 const uint8_t* bssid_addr =
1562 is_zero_ether_addr(bssid.data()) ? nullptr : bssid.data();
1563 int pin = wpas_wps_start_pin(
1564 wpa_group_s, bssid_addr, nullptr, 0, DEV_PW_DEFAULT);
1565 if (pin < 0) {
1566 return {{SupplicantStatusCode::FAILURE_UNKNOWN, ""}, ""};
1567 }
1568 return {{SupplicantStatusCode::SUCCESS, ""},
1569 misc_utils::convertWpsPinToString(pin)};
1570 }
1571
cancelWpsInternal(const std::string & group_ifname)1572 SupplicantStatus P2pIface::cancelWpsInternal(const std::string& group_ifname)
1573 {
1574 struct wpa_supplicant* wpa_group_s =
1575 retrieveGroupIfacePtr(group_ifname);
1576 if (!wpa_group_s) {
1577 return {SupplicantStatusCode::FAILURE_IFACE_UNKNOWN, ""};
1578 }
1579 if (wpas_wps_cancel(wpa_group_s)) {
1580 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1581 }
1582 return {SupplicantStatusCode::SUCCESS, ""};
1583 }
1584
setWpsDeviceNameInternal(const std::string & name)1585 SupplicantStatus P2pIface::setWpsDeviceNameInternal(const std::string& name)
1586 {
1587 return iface_config_utils::setWpsDeviceName(retrieveIfacePtr(), name);
1588 }
1589
setWpsDeviceTypeInternal(const std::array<uint8_t,8> & type)1590 SupplicantStatus P2pIface::setWpsDeviceTypeInternal(
1591 const std::array<uint8_t, 8>& type)
1592 {
1593 return iface_config_utils::setWpsDeviceType(retrieveIfacePtr(), type);
1594 }
1595
setWpsManufacturerInternal(const std::string & manufacturer)1596 SupplicantStatus P2pIface::setWpsManufacturerInternal(
1597 const std::string& manufacturer)
1598 {
1599 return iface_config_utils::setWpsManufacturer(
1600 retrieveIfacePtr(), manufacturer);
1601 }
1602
setWpsModelNameInternal(const std::string & model_name)1603 SupplicantStatus P2pIface::setWpsModelNameInternal(
1604 const std::string& model_name)
1605 {
1606 return iface_config_utils::setWpsModelName(
1607 retrieveIfacePtr(), model_name);
1608 }
1609
setWpsModelNumberInternal(const std::string & model_number)1610 SupplicantStatus P2pIface::setWpsModelNumberInternal(
1611 const std::string& model_number)
1612 {
1613 return iface_config_utils::setWpsModelNumber(
1614 retrieveIfacePtr(), model_number);
1615 }
1616
setWpsSerialNumberInternal(const std::string & serial_number)1617 SupplicantStatus P2pIface::setWpsSerialNumberInternal(
1618 const std::string& serial_number)
1619 {
1620 return iface_config_utils::setWpsSerialNumber(
1621 retrieveIfacePtr(), serial_number);
1622 }
1623
setWpsConfigMethodsInternal(uint16_t config_methods)1624 SupplicantStatus P2pIface::setWpsConfigMethodsInternal(uint16_t config_methods)
1625 {
1626 return iface_config_utils::setWpsConfigMethods(
1627 retrieveIfacePtr(), config_methods);
1628 }
1629
enableWfdInternal(bool enable)1630 SupplicantStatus P2pIface::enableWfdInternal(bool enable)
1631 {
1632 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1633 wifi_display_enable(wpa_s->global, enable);
1634 return {SupplicantStatusCode::SUCCESS, ""};
1635 }
1636
setWfdDeviceInfoInternal(const std::array<uint8_t,6> & info)1637 SupplicantStatus P2pIface::setWfdDeviceInfoInternal(
1638 const std::array<uint8_t, 6>& info)
1639 {
1640 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1641 std::vector<char> wfd_device_info_hex(info.size() * 2 + 1);
1642 wpa_snprintf_hex(
1643 wfd_device_info_hex.data(), wfd_device_info_hex.size(), info.data(),
1644 info.size());
1645 // |wifi_display_subelem_set| expects the first 2 bytes
1646 // to hold the lenght of the subelement. In this case it's
1647 // fixed to 6, so prepend that.
1648 std::string wfd_device_info_set_cmd_str =
1649 std::to_string(kWfdDeviceInfoSubelemId) + " " +
1650 kWfdDeviceInfoSubelemLenHexStr + wfd_device_info_hex.data();
1651 std::vector<char> wfd_device_info_set_cmd(
1652 wfd_device_info_set_cmd_str.c_str(),
1653 wfd_device_info_set_cmd_str.c_str() +
1654 wfd_device_info_set_cmd_str.size() + 1);
1655 if (wifi_display_subelem_set(
1656 wpa_s->global, wfd_device_info_set_cmd.data())) {
1657 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1658 }
1659 return {SupplicantStatusCode::SUCCESS, ""};
1660 }
1661
1662 std::pair<SupplicantStatus, std::vector<uint8_t>>
createNfcHandoverRequestMessageInternal()1663 P2pIface::createNfcHandoverRequestMessageInternal()
1664 {
1665 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1666 auto buf = misc_utils::createWpaBufUniquePtr(
1667 wpas_p2p_nfc_handover_req(wpa_s, 1));
1668 if (!buf) {
1669 return {{SupplicantStatusCode::FAILURE_UNKNOWN, ""}, {}};
1670 }
1671 return {{SupplicantStatusCode::SUCCESS, ""},
1672 misc_utils::convertWpaBufToVector(buf.get())};
1673 }
1674
1675 std::pair<SupplicantStatus, std::vector<uint8_t>>
createNfcHandoverSelectMessageInternal()1676 P2pIface::createNfcHandoverSelectMessageInternal()
1677 {
1678 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1679 auto buf = misc_utils::createWpaBufUniquePtr(
1680 wpas_p2p_nfc_handover_sel(wpa_s, 1, 0));
1681 if (!buf) {
1682 return {{SupplicantStatusCode::FAILURE_UNKNOWN, ""}, {}};
1683 }
1684 return {{SupplicantStatusCode::SUCCESS, ""},
1685 misc_utils::convertWpaBufToVector(buf.get())};
1686 }
1687
reportNfcHandoverResponseInternal(const std::vector<uint8_t> & request)1688 SupplicantStatus P2pIface::reportNfcHandoverResponseInternal(
1689 const std::vector<uint8_t>& request)
1690 {
1691 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1692 auto req = misc_utils::convertVectorToWpaBuf(request);
1693 auto sel = misc_utils::convertVectorToWpaBuf(std::vector<uint8_t>{0});
1694 if (!req || !sel) {
1695 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1696 }
1697
1698 if (wpas_p2p_nfc_report_handover(wpa_s, 0, req.get(), sel.get(), 0)) {
1699 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1700 }
1701 return {SupplicantStatusCode::SUCCESS, ""};
1702 }
1703
reportNfcHandoverInitiationInternal(const std::vector<uint8_t> & select)1704 SupplicantStatus P2pIface::reportNfcHandoverInitiationInternal(
1705 const std::vector<uint8_t>& select)
1706 {
1707 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1708 auto req = misc_utils::convertVectorToWpaBuf(std::vector<uint8_t>{0});
1709 auto sel = misc_utils::convertVectorToWpaBuf(select);
1710 if (!req || !sel) {
1711 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1712 }
1713
1714 if (wpas_p2p_nfc_report_handover(wpa_s, 1, req.get(), sel.get(), 0)) {
1715 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1716 }
1717 return {SupplicantStatusCode::SUCCESS, ""};
1718 }
1719
saveConfigInternal()1720 SupplicantStatus P2pIface::saveConfigInternal()
1721 {
1722 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1723 if (!wpa_s->conf->update_config) {
1724 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1725 }
1726 if (wpa_config_write(wpa_s->confname, wpa_s->conf)) {
1727 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1728 }
1729 return {SupplicantStatusCode::SUCCESS, ""};
1730 }
1731
addGroup_1_2Internal(const std::vector<uint8_t> & ssid,const std::string & passphrase,bool persistent,uint32_t freq,const std::array<uint8_t,6> & peer_address,bool joinExistingGroup)1732 SupplicantStatus P2pIface::addGroup_1_2Internal(
1733 const std::vector<uint8_t>& ssid, const std::string& passphrase,
1734 bool persistent, uint32_t freq, const std::array<uint8_t, 6>& peer_address,
1735 bool joinExistingGroup)
1736 {
1737 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1738 int he = wpa_s->conf->p2p_go_he;
1739 int vht = wpa_s->conf->p2p_go_vht;
1740 int ht40 = wpa_s->conf->p2p_go_ht40 || vht;
1741
1742 if (wpa_s->global->p2p == NULL || wpa_s->global->p2p_disabled) {
1743 return {SupplicantStatusCode::FAILURE_IFACE_DISABLED, ""};
1744 }
1745
1746 if (!isSsidValid(ssid)) {
1747 return {SupplicantStatusCode::FAILURE_ARGS_INVALID, "SSID is invalid."};
1748 }
1749
1750 if (!isPskPassphraseValid(passphrase)) {
1751 return {SupplicantStatusCode::FAILURE_ARGS_INVALID, "passphrase is invalid."};
1752 }
1753
1754 if (!joinExistingGroup) {
1755 struct p2p_data *p2p = wpa_s->global->p2p;
1756 os_memcpy(p2p->ssid, ssid.data(), ssid.size());
1757 p2p->ssid_len = ssid.size();
1758 p2p->ssid_set = 1;
1759
1760 os_memset(p2p->passphrase, 0, sizeof(p2p->passphrase));
1761 os_memcpy(p2p->passphrase, passphrase.c_str(), passphrase.length());
1762 p2p->passphrase_set = 1;
1763
1764 if (wpas_p2p_group_add(
1765 wpa_s, persistent, freq, 0, ht40, vht,
1766 CHANWIDTH_USE_HT, he, 0)) {
1767 return {SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1768 }
1769 return {SupplicantStatusCode::SUCCESS, ""};
1770 }
1771
1772 // The rest is for group join.
1773 wpa_printf(MSG_DEBUG, "P2P: Stop any on-going P2P FIND before group join.");
1774 wpas_p2p_stop_find(wpa_s);
1775
1776 struct wpa_bss *bss = findBssBySsid(
1777 wpa_s, peer_address.data(),
1778 ssid.data(), ssid.size());
1779 if (bss != NULL) {
1780 wpa_printf(MSG_DEBUG, "P2P: Join group with Group Owner " MACSTR,
1781 MAC2STR(bss->bssid));
1782 if (0 != joinGroup(wpa_s, bss->bssid, ssid, passphrase)) {
1783 // no need to notify group join failure here,
1784 // it will be handled by wpas_p2p_group_add_persistent
1785 // called in joinGroup.
1786 return {SupplicantStatusCode::FAILURE_UNKNOWN, "Failed to join a group."};
1787 }
1788 return {SupplicantStatusCode::SUCCESS, ""};
1789 }
1790
1791 wpa_printf(MSG_INFO, "No matched BSS exists, try to find it by scan");
1792
1793 if (pending_scan_res_join_callback != NULL) {
1794 wpa_printf(MSG_WARNING, "P2P: Renew scan result callback with new request.");
1795 }
1796
1797 pending_join_scan_callback =
1798 [wpa_s, ssid, freq]() {
1799 if (wpa_s->global->p2p == NULL || wpa_s->global->p2p_disabled) {
1800 return;
1801 }
1802 int ret = joinScanReq(wpa_s, ssid, freq);
1803 // for BUSY case, the scan might be occupied by WiFi.
1804 // Do not give up immediately, but try again later.
1805 if (-EBUSY == ret) {
1806 // re-schedule this join scan and don't consume retry count.
1807 if (pending_scan_res_join_callback) {
1808 pending_scan_res_join_callback();
1809 }
1810 } else if (0 != ret) {
1811 notifyGroupJoinFailure(wpa_s);
1812 pending_scan_res_join_callback = NULL;
1813 }
1814 };
1815
1816 pending_scan_res_join_callback = [wpa_s, ssid, passphrase, peer_address, freq, this]() {
1817 if (wpa_s->global->p2p == NULL || wpa_s->global->p2p_disabled) {
1818 return;
1819 }
1820
1821 wpa_printf(MSG_DEBUG, "P2P: Scan results received for join (reinvoke).");
1822
1823 struct wpa_bss *bss = findBssBySsid(
1824 wpa_s, peer_address.data(), ssid.data(), ssid.size());
1825 if (bss) {
1826 wpa_s->global->p2p_go_found_external_scan = 1;
1827 if (0 != joinGroup(wpa_s, bss->bssid, ssid, passphrase)) {
1828 wpa_printf(MSG_ERROR, "P2P: Failed to join a group.");
1829 wpa_s->global->p2p_go_found_external_scan = 0;
1830 }
1831 // no need to notify group join failure here,
1832 // it will be handled by wpas_p2p_group_add_persistent
1833 // called in joinGroup.
1834 pending_scan_res_join_callback = NULL;
1835 return;
1836 }
1837 wpa_printf(MSG_DEBUG, "P2P: Join scan count %d.", wpa_s->p2p_join_scan_count);
1838 eloop_cancel_timeout(joinScanWrapper, wpa_s, NULL);
1839 if (wpa_s->p2p_join_scan_count < P2P_MAX_JOIN_SCAN_ATTEMPTS) {
1840 wpa_printf(MSG_DEBUG, "P2P: Try join again later.");
1841 eloop_register_timeout(0, getP2pJoinScanIntervalUsecs(freq),
1842 joinScanWrapper, wpa_s, this);
1843 return;
1844 }
1845
1846 wpa_printf(MSG_ERROR, "P2P: Failed to find the group with "
1847 "network name %s - stop join attempt",
1848 ssid.data());
1849 notifyGroupJoinFailure(wpa_s);
1850 pending_scan_res_join_callback = NULL;
1851 };
1852
1853 wpa_s->p2p_join_scan_count = 0;
1854 pending_join_scan_callback();
1855 if (pending_scan_res_join_callback == NULL) {
1856 return {SupplicantStatusCode::FAILURE_UNKNOWN, "Failed to start scan."};
1857 }
1858 return {SupplicantStatusCode::SUCCESS, ""};
1859 }
1860
setMacRandomizationInternal(bool enable)1861 SupplicantStatus P2pIface::setMacRandomizationInternal(bool enable)
1862 {
1863 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1864 bool currentEnabledState = !!wpa_s->conf->p2p_device_random_mac_addr;
1865 u8 *addr = NULL;
1866
1867 // The same state, no change is needed.
1868 if (currentEnabledState == enable) {
1869 wpa_printf(MSG_DEBUG, "The random MAC is %s already.",
1870 (enable) ? "enabled" : "disabled");
1871 return {SupplicantStatusCode::SUCCESS, ""};
1872 }
1873
1874 if (enable) {
1875 wpa_s->conf->p2p_device_random_mac_addr = 1;
1876 wpa_s->conf->p2p_interface_random_mac_addr = 1;
1877
1878 // restore config if it failed to set up MAC address.
1879 if (wpas_p2p_mac_setup(wpa_s) < 0) {
1880 wpa_s->conf->p2p_device_random_mac_addr = 0;
1881 wpa_s->conf->p2p_interface_random_mac_addr = 0;
1882 return {SupplicantStatusCode::FAILURE_UNKNOWN,
1883 "Failed to set up MAC address."};
1884 }
1885 } else {
1886 // disable random MAC will use original MAC address
1887 // regardless of any saved persistent groups.
1888 if (wpa_drv_set_mac_addr(wpa_s, NULL) < 0) {
1889 wpa_printf(MSG_ERROR, "Failed to restore MAC address");
1890 return {SupplicantStatusCode::FAILURE_UNKNOWN,
1891 "Failed to restore MAC address."};
1892 }
1893
1894 if (wpa_supplicant_update_mac_addr(wpa_s) < 0) {
1895 wpa_printf(MSG_INFO, "Could not update MAC address information");
1896 return {SupplicantStatusCode::FAILURE_UNKNOWN,
1897 "Failed to update MAC address."};
1898 }
1899 wpa_s->conf->p2p_device_random_mac_addr = 0;
1900 wpa_s->conf->p2p_interface_random_mac_addr = 0;
1901 }
1902
1903 // update internal data to send out correct device address in action frame.
1904 os_memcpy(wpa_s->global->p2p_dev_addr, wpa_s->own_addr, ETH_ALEN);
1905 os_memcpy(wpa_s->global->p2p->cfg->dev_addr, wpa_s->global->p2p_dev_addr, ETH_ALEN);
1906
1907 return {SupplicantStatusCode::SUCCESS, ""};
1908 }
1909
setEdmgInternal(bool enable)1910 V1_4::SupplicantStatus P2pIface::setEdmgInternal(bool enable)
1911 {
1912 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1913 wpa_printf(MSG_DEBUG, "set p2p_go_edmg to %d", enable);
1914 wpa_s->conf->p2p_go_edmg = enable ? 1 : 0;
1915 wpa_s->p2p_go_edmg = enable ? 1 : 0;
1916 return {V1_4::SupplicantStatusCode::SUCCESS, ""};
1917 }
1918
getEdmgInternal()1919 std::pair<V1_4::SupplicantStatus, bool> P2pIface::getEdmgInternal()
1920 {
1921 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1922 return {{V1_4::SupplicantStatusCode::SUCCESS, ""},
1923 (wpa_s->p2p_go_edmg == 1)};
1924 }
1925
registerCallback_1_4Internal(const sp<V1_4::ISupplicantP2pIfaceCallback> & callback)1926 V1_4::SupplicantStatus P2pIface::registerCallback_1_4Internal(
1927 const sp<V1_4::ISupplicantP2pIfaceCallback>& callback)
1928 {
1929 HidlManager* hidl_manager = HidlManager::getInstance();
1930 if (!hidl_manager ||
1931 hidl_manager->addP2pIfaceCallbackHidlObject(ifname_, callback)) {
1932 return {V1_4::SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1933 }
1934 return {V1_4::SupplicantStatusCode::SUCCESS, ""};
1935 }
1936
setWfdR2DeviceInfoInternal(const std::array<uint8_t,4> & info)1937 V1_4::SupplicantStatus P2pIface::setWfdR2DeviceInfoInternal(
1938 const std::array<uint8_t, 4>& info)
1939 {
1940 struct wpa_supplicant* wpa_s = retrieveIfacePtr();
1941 uint32_t wfd_r2_device_info_hex_len = info.size() * 2 + 1;
1942 std::vector<char> wfd_r2_device_info_hex(wfd_r2_device_info_hex_len);
1943 wpa_snprintf_hex(
1944 wfd_r2_device_info_hex.data(), wfd_r2_device_info_hex.size(),
1945 info.data(),info.size());
1946 std::string wfd_r2_device_info_set_cmd_str =
1947 std::to_string(kWfdR2DeviceInfoSubelemId) + " " +
1948 wfd_r2_device_info_hex.data();
1949 std::vector<char> wfd_r2_device_info_set_cmd(
1950 wfd_r2_device_info_set_cmd_str.c_str(),
1951 wfd_r2_device_info_set_cmd_str.c_str() +
1952 wfd_r2_device_info_set_cmd_str.size() + 1);
1953 if (wifi_display_subelem_set(
1954 wpa_s->global, wfd_r2_device_info_set_cmd.data())) {
1955 return {V1_4::SupplicantStatusCode::FAILURE_UNKNOWN, ""};
1956 }
1957 return {V1_4::SupplicantStatusCode::SUCCESS, ""};
1958 }
1959
1960 /**
1961 * Retrieve the underlying |wpa_supplicant| struct
1962 * pointer for this iface.
1963 * If the underlying iface is removed, then all RPC method calls on this object
1964 * will return failure.
1965 */
retrieveIfacePtr()1966 wpa_supplicant* P2pIface::retrieveIfacePtr()
1967 {
1968 return wpa_supplicant_get_iface(wpa_global_, ifname_.c_str());
1969 }
1970
1971 /**
1972 * Retrieve the underlying |wpa_supplicant| struct
1973 * pointer for this group iface.
1974 */
retrieveGroupIfacePtr(const std::string & group_ifname)1975 wpa_supplicant* P2pIface::retrieveGroupIfacePtr(const std::string& group_ifname)
1976 {
1977 return wpa_supplicant_get_iface(wpa_global_, group_ifname.c_str());
1978 }
1979
1980 } // namespace implementation
1981 } // namespace V1_4
1982 } // namespace supplicant
1983 } // namespace wifi
1984 } // namespace hardware
1985 } // namespace android
1986