1270 lines
46 KiB
C++
1270 lines
46 KiB
C++
/*
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* Copyright (C) 2016 The Android Open Source Project
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*
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* Licensed under the Apache License, Version 2.0 (the "License");
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* you may not use this file except in compliance with the License.
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* You may obtain a copy of the License at
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*
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* http://www.apache.org/licenses/LICENSE-2.0
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*
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* Unless required by applicable law or agreed to in writing, software
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* distributed under the License is distributed on an "AS IS" BASIS,
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* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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* See the License for the specific language governing permissions and
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* limitations under the License.
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*/
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#include <cinttypes>
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#include <cstddef>
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#include <cstdint>
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#include <cstring>
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#include "chre/core/event_loop_manager.h"
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#include "chre/core/settings.h"
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#include "chre/core/wifi_request_manager.h"
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#include "chre/platform/fatal_error.h"
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#include "chre/platform/log.h"
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#include "chre/platform/system_time.h"
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#include "chre/util/nested_data_ptr.h"
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#include "chre/util/system/debug_dump.h"
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#include "chre_api/chre/version.h"
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#include "include/chre/core/event_loop_common.h"
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#include "include/chre/core/wifi_request_manager.h"
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namespace chre {
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WifiRequestManager::WifiRequestManager() {
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// Reserve space for at least one scan monitoring nanoapp. This ensures that
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// the first asynchronous push_back will succeed. Future push_backs will be
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// synchronous and failures will be returned to the client.
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if (!mScanMonitorNanoapps.reserve(1)) {
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FATAL_ERROR_OOM();
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}
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}
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void WifiRequestManager::init() {
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mPlatformWifi.init();
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}
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uint32_t WifiRequestManager::getCapabilities() {
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return mPlatformWifi.getCapabilities();
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}
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bool WifiRequestManager::configureScanMonitor(Nanoapp *nanoapp, bool enable,
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const void *cookie) {
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CHRE_ASSERT(nanoapp);
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bool success = false;
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uint16_t instanceId = nanoapp->getInstanceId();
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bool hasScanMonitorRequest = nanoappHasScanMonitorRequest(instanceId);
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if (!mPendingScanMonitorRequests.empty()) {
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success = addScanMonitorRequestToQueue(nanoapp, enable, cookie);
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} else if (scanMonitorIsInRequestedState(enable, hasScanMonitorRequest)) {
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// The scan monitor is already in the requested state. A success event can
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// be posted immediately.
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success = postScanMonitorAsyncResultEvent(instanceId, true /* success */,
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enable, CHRE_ERROR_NONE, cookie);
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} else if (scanMonitorStateTransitionIsRequired(enable,
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hasScanMonitorRequest)) {
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success = addScanMonitorRequestToQueue(nanoapp, enable, cookie);
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if (success) {
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success = mPlatformWifi.configureScanMonitor(enable);
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if (!success) {
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mPendingScanMonitorRequests.pop_back();
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LOGE("Failed to enable the scan monitor for nanoapp instance %" PRIu16,
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instanceId);
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}
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}
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} else {
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CHRE_ASSERT_LOG(false, "Invalid scan monitor configuration");
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}
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return success;
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}
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uint32_t WifiRequestManager::disableAllSubscriptions(Nanoapp *nanoapp) {
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uint32_t numSubscriptionsDisabled = 0;
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// Disable active scan monitoring.
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if (nanoappHasScanMonitorRequest(nanoapp->getInstanceId()) ||
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nanoappHasPendingScanMonitorRequest(nanoapp->getInstanceId())) {
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numSubscriptionsDisabled++;
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configureScanMonitor(nanoapp, false /*enabled*/, nullptr /*cookie*/);
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}
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// Disable active NAN subscriptions.
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for (size_t i = 0; i < mNanoappSubscriptions.size(); ++i) {
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if (mNanoappSubscriptions[i].nanoappInstanceId ==
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nanoapp->getInstanceId()) {
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numSubscriptionsDisabled++;
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nanSubscribeCancel(nanoapp, mNanoappSubscriptions[i].subscriptionId);
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}
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}
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return numSubscriptionsDisabled;
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}
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bool WifiRequestManager::requestRangingByType(RangingType type,
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const void *rangingParams) {
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bool success = false;
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if (type == RangingType::WIFI_AP) {
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auto *params =
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static_cast<const struct chreWifiRangingParams *>(rangingParams);
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success = mPlatformWifi.requestRanging(params);
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} else {
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auto *params =
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static_cast<const struct chreWifiNanRangingParams *>(rangingParams);
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success = mPlatformWifi.requestNanRanging(params);
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}
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return success;
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}
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bool WifiRequestManager::updateRangingRequest(RangingType type,
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PendingRangingRequest &request,
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const void *rangingParams) {
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bool success = false;
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if (type == RangingType::WIFI_AP) {
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auto *params =
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static_cast<const struct chreWifiRangingParams *>(rangingParams);
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success = request.targetList.copy_array(params->targetList,
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params->targetListLen);
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} else {
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auto *params =
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static_cast<const struct chreWifiNanRangingParams *>(rangingParams);
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std::memcpy(request.nanRangingParams.macAddress, params->macAddress,
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CHRE_WIFI_BSSID_LEN);
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success = true;
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}
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return success;
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}
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bool WifiRequestManager::sendRangingRequest(PendingRangingRequest &request) {
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bool success = false;
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if (request.type == RangingType::WIFI_AP) {
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struct chreWifiRangingParams params = {};
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params.targetListLen = static_cast<uint8_t>(request.targetList.size());
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params.targetList = request.targetList.data();
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success = mPlatformWifi.requestRanging(¶ms);
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} else {
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struct chreWifiNanRangingParams params;
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std::memcpy(params.macAddress, request.nanRangingParams.macAddress,
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CHRE_WIFI_BSSID_LEN);
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success = mPlatformWifi.requestNanRanging(¶ms);
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}
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return success;
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}
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bool WifiRequestManager::requestRanging(RangingType rangingType,
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Nanoapp *nanoapp,
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const void *rangingParams,
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const void *cookie) {
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CHRE_ASSERT(nanoapp);
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CHRE_ASSERT(rangingParams);
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bool success = false;
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if (!mPendingRangingRequests.emplace()) {
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LOGE("Can't issue new RTT request; pending queue full");
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} else {
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PendingRangingRequest &req = mPendingRangingRequests.back();
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req.nanoappInstanceId = nanoapp->getInstanceId();
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req.cookie = cookie;
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if (mPendingRangingRequests.size() == 1) {
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// First in line; dispatch request immediately
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if (!areRequiredSettingsEnabled()) {
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// Treat as success but post async failure per API.
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success = true;
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postRangingAsyncResult(CHRE_ERROR_FUNCTION_DISABLED);
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mPendingRangingRequests.pop_back();
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} else if (!requestRangingByType(rangingType, rangingParams)) {
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LOGE("WiFi ranging request of type %d failed",
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static_cast<int>(rangingType));
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mPendingRangingRequests.pop_back();
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} else {
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success = true;
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mRangingResponseTimeout =
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SystemTime::getMonotonicTime() +
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Nanoseconds(CHRE_WIFI_RANGING_RESULT_TIMEOUT_NS);
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}
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} else {
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// Dispatch request later, after prior requests finish
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// TODO(b/65331248): use a timer to ensure the platform is meeting its
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// contract
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CHRE_ASSERT_LOG(SystemTime::getMonotonicTime() <= mRangingResponseTimeout,
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"WiFi platform didn't give callback in time");
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success = updateRangingRequest(rangingType, req, rangingParams);
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if (!success) {
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LOG_OOM();
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mPendingRangingRequests.pop_back();
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}
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}
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}
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return success;
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}
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bool WifiRequestManager::requestScan(Nanoapp *nanoapp,
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const struct chreWifiScanParams *params,
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const void *cookie) {
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CHRE_ASSERT(nanoapp);
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// TODO(b/65331248): replace with a timer to actively check response timeout
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bool timedOut =
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(mScanRequestingNanoappInstanceId.has_value() &&
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mLastScanRequestTime + Nanoseconds(CHRE_WIFI_SCAN_RESULT_TIMEOUT_NS) <
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SystemTime::getMonotonicTime());
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if (timedOut) {
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LOGE("Scan request async response timed out");
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mScanRequestingNanoappInstanceId.reset();
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}
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// Handle compatibility with nanoapps compiled against API v1.1, which doesn't
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// include the radioChainPref parameter in chreWifiScanParams
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struct chreWifiScanParams paramsCompat;
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if (nanoapp->getTargetApiVersion() < CHRE_API_VERSION_1_2) {
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memcpy(¶msCompat, params, offsetof(chreWifiScanParams, radioChainPref));
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paramsCompat.radioChainPref = CHRE_WIFI_RADIO_CHAIN_PREF_DEFAULT;
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params = ¶msCompat;
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}
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bool success = false;
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if (mScanRequestingNanoappInstanceId.has_value()) {
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LOGE("Active wifi scan request made by 0x%" PRIx64
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" while a request by 0x%" PRIx64 " is in flight",
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nanoapp->getAppId(),
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EventLoopManagerSingleton::get()
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->getEventLoop()
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.findNanoappByInstanceId(mScanRequestingNanoappInstanceId.value())
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->getAppId());
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} else if (!EventLoopManagerSingleton::get()
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->getSettingManager()
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.getSettingEnabled(Setting::WIFI_AVAILABLE)) {
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// Treat as success, but send an async failure per API contract.
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success = true;
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handleScanResponse(false /* pending */, CHRE_ERROR_FUNCTION_DISABLED);
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} else {
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success = mPlatformWifi.requestScan(params);
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if (!success) {
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LOGE("Wifi scan request failed");
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}
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}
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if (success) {
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mScanRequestingNanoappInstanceId = nanoapp->getInstanceId();
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mScanRequestingNanoappCookie = cookie;
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mLastScanRequestTime = SystemTime::getMonotonicTime();
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addWifiScanRequestLog(nanoapp->getInstanceId(), params);
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}
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return success;
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}
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void WifiRequestManager::handleScanMonitorStateChange(bool enabled,
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uint8_t errorCode) {
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struct CallbackState {
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bool enabled;
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uint8_t errorCode;
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};
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auto callback = [](uint16_t /*type*/, void *data, void * /*extraData*/) {
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CallbackState cbState = NestedDataPtr<CallbackState>(data);
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EventLoopManagerSingleton::get()
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->getWifiRequestManager()
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.handleScanMonitorStateChangeSync(cbState.enabled, cbState.errorCode);
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};
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CallbackState cbState = {};
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cbState.enabled = enabled;
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cbState.errorCode = errorCode;
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EventLoopManagerSingleton::get()->deferCallback(
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SystemCallbackType::WifiScanMonitorStateChange,
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NestedDataPtr<CallbackState>(cbState), callback);
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}
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void WifiRequestManager::handleScanResponse(bool pending, uint8_t errorCode) {
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struct CallbackState {
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bool pending;
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uint8_t errorCode;
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};
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auto callback = [](uint16_t /*type*/, void *data, void * /*extraData*/) {
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CallbackState cbState = NestedDataPtr<CallbackState>(data);
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EventLoopManagerSingleton::get()
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->getWifiRequestManager()
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.handleScanResponseSync(cbState.pending, cbState.errorCode);
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};
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CallbackState cbState = {};
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cbState.pending = pending;
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cbState.errorCode = errorCode;
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EventLoopManagerSingleton::get()->deferCallback(
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SystemCallbackType::WifiRequestScanResponse,
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NestedDataPtr<CallbackState>(cbState), callback);
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}
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void WifiRequestManager::handleRangingEvent(
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uint8_t errorCode, struct chreWifiRangingEvent *event) {
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auto callback = [](uint16_t /*type*/, void *data, void *extraData) {
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uint8_t cbErrorCode = NestedDataPtr<uint8_t>(extraData);
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EventLoopManagerSingleton::get()
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->getWifiRequestManager()
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.handleRangingEventSync(
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cbErrorCode, static_cast<struct chreWifiRangingEvent *>(data));
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};
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EventLoopManagerSingleton::get()->deferCallback(
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SystemCallbackType::WifiHandleRangingEvent, event, callback,
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NestedDataPtr<uint8_t>(errorCode));
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}
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void WifiRequestManager::handleScanEvent(struct chreWifiScanEvent *event) {
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auto callback = [](uint16_t /*type*/, void *data, void * /*extraData*/) {
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auto *scanEvent = static_cast<struct chreWifiScanEvent *>(data);
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EventLoopManagerSingleton::get()
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->getWifiRequestManager()
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.postScanEventFatal(scanEvent);
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};
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EventLoopManagerSingleton::get()->deferCallback(
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SystemCallbackType::WifiHandleScanEvent, event, callback);
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}
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void WifiRequestManager::handleNanServiceIdentifierEventSync(
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uint8_t errorCode, uint32_t subscriptionId) {
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if (!mPendingNanSubscribeRequests.empty()) {
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auto &req = mPendingNanSubscribeRequests.front();
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chreWifiNanIdentifierEvent *event =
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memoryAlloc<chreWifiNanIdentifierEvent>();
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if (event == nullptr) {
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LOG_OOM();
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} else {
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event->id = subscriptionId;
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event->result.requestType = CHRE_WIFI_REQUEST_TYPE_NAN_SUBSCRIBE;
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event->result.success = (errorCode == CHRE_ERROR_NONE);
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event->result.errorCode = errorCode;
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event->result.cookie = req.cookie;
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if (errorCode == CHRE_ERROR_NONE) {
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// It is assumed that the NAN discovery engine guarantees a unique ID
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// for each subscription - avoid redundant checks on uniqueness here.
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if (!mNanoappSubscriptions.push_back(NanoappNanSubscriptions(
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req.nanoappInstanceId, subscriptionId))) {
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LOG_OOM();
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// Even though the subscription request was able to successfully
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// obtain an ID, CHRE ran out of memory and couldn't store the
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// instance ID - subscription ID pair. Indicate this in the event
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// result.
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// TODO(b/204226580): Cancel the subscription if we run out of
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// memory.
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event->result.errorCode = CHRE_ERROR_NO_MEMORY;
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}
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}
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EventLoopManagerSingleton::get()->getEventLoop().postEventOrDie(
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CHRE_EVENT_WIFI_NAN_IDENTIFIER_RESULT, event, freeEventDataCallback,
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req.nanoappInstanceId);
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}
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mPendingNanSubscribeRequests.pop();
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dispatchQueuedNanSubscribeRequestWithRetry();
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} else {
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LOGE("Received a NAN identifier event with no pending request!");
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}
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}
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void WifiRequestManager::handleNanServiceIdentifierEvent(
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uint8_t errorCode, uint32_t subscriptionId) {
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auto callback = [](uint16_t /*type*/, void *data, void *extraData) {
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uint8_t errorCode = NestedDataPtr<uint8_t>(data);
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uint32_t subscriptionId = NestedDataPtr<uint32_t>(extraData);
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EventLoopManagerSingleton::get()
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->getWifiRequestManager()
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.handleNanServiceIdentifierEventSync(errorCode, subscriptionId);
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};
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EventLoopManagerSingleton::get()->deferCallback(
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SystemCallbackType::WifiNanServiceIdEvent,
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NestedDataPtr<uint8_t>(errorCode), callback,
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NestedDataPtr<uint32_t>(subscriptionId));
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}
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bool WifiRequestManager::getNappIdFromSubscriptionId(
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uint32_t subscriptionId, uint16_t *nanoappInstanceId) {
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bool success = false;
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for (auto &sub : mNanoappSubscriptions) {
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if (sub.subscriptionId == subscriptionId) {
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*nanoappInstanceId = sub.nanoappInstanceId;
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success = true;
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break;
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}
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}
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return success;
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}
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void WifiRequestManager::handleNanServiceDiscoveryEventSync(
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struct chreWifiNanDiscoveryEvent *event) {
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CHRE_ASSERT(event != nullptr);
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uint16_t nanoappInstanceId;
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if (getNappIdFromSubscriptionId(event->subscribeId, &nanoappInstanceId)) {
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EventLoopManagerSingleton::get()->getEventLoop().postEventOrDie(
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CHRE_EVENT_WIFI_NAN_DISCOVERY_RESULT, event,
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freeNanDiscoveryEventCallback, nanoappInstanceId);
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} else {
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LOGE("Failed to find a nanoapp owning subscription ID %" PRIu32,
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event->subscribeId);
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}
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}
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void WifiRequestManager::handleNanServiceDiscoveryEvent(
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struct chreWifiNanDiscoveryEvent *event) {
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auto callback = [](uint16_t /*type*/, void *data, void * /*extraData*/) {
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auto *event = static_cast<chreWifiNanDiscoveryEvent *>(data);
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EventLoopManagerSingleton::get()
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->getWifiRequestManager()
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.handleNanServiceDiscoveryEventSync(event);
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};
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EventLoopManagerSingleton::get()->deferCallback(
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SystemCallbackType::WifiNanServiceDiscoveryEvent, event, callback);
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}
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void WifiRequestManager::handleNanServiceLostEventSync(uint32_t subscriptionId,
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uint32_t publisherId) {
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uint16_t nanoappInstanceId;
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if (getNappIdFromSubscriptionId(subscriptionId, &nanoappInstanceId)) {
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chreWifiNanSessionLostEvent *event =
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memoryAlloc<chreWifiNanSessionLostEvent>();
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if (event == nullptr) {
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LOG_OOM();
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} else {
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event->id = subscriptionId;
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event->peerId = publisherId;
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EventLoopManagerSingleton::get()->getEventLoop().postEventOrDie(
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CHRE_EVENT_WIFI_NAN_SESSION_LOST, event, freeEventDataCallback,
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nanoappInstanceId);
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}
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} else {
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LOGE("Failed to find a nanoapp owning subscription ID %" PRIu32,
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subscriptionId);
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}
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}
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void WifiRequestManager::handleNanServiceLostEvent(uint32_t subscriptionId,
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uint32_t publisherId) {
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auto callback = [](uint16_t /*type*/, void *data, void *extraData) {
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auto subscriptionId = NestedDataPtr<uint32_t>(data);
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auto publisherId = NestedDataPtr<uint32_t>(extraData);
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EventLoopManagerSingleton::get()
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->getWifiRequestManager()
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.handleNanServiceLostEventSync(subscriptionId, publisherId);
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};
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EventLoopManagerSingleton::get()->deferCallback(
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SystemCallbackType::WifiNanServiceSessionLostEvent,
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NestedDataPtr<uint32_t>(subscriptionId), callback,
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NestedDataPtr<uint32_t>(publisherId));
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}
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void WifiRequestManager::handleNanServiceTerminatedEventSync(
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uint8_t errorCode, uint32_t subscriptionId) {
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uint16_t nanoappInstanceId;
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if (getNappIdFromSubscriptionId(subscriptionId, &nanoappInstanceId)) {
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chreWifiNanSessionTerminatedEvent *event =
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memoryAlloc<chreWifiNanSessionTerminatedEvent>();
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if (event == nullptr) {
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LOG_OOM();
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} else {
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event->id = subscriptionId;
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event->reason = errorCode;
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EventLoopManagerSingleton::get()->getEventLoop().postEventOrDie(
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CHRE_EVENT_WIFI_NAN_SESSION_TERMINATED, event, freeEventDataCallback,
|
|
nanoappInstanceId);
|
|
}
|
|
} else {
|
|
LOGE("Failed to find a nanoapp owning subscription ID %" PRIu32,
|
|
subscriptionId);
|
|
}
|
|
}
|
|
|
|
void WifiRequestManager::handleNanServiceSubscriptionCanceledEventSync(
|
|
uint8_t errorCode, uint32_t subscriptionId) {
|
|
for (size_t i = 0; i < mNanoappSubscriptions.size(); ++i) {
|
|
if (mNanoappSubscriptions[i].subscriptionId == subscriptionId) {
|
|
if (errorCode != CHRE_ERROR_NONE) {
|
|
LOGE("Subscription %" PRIu32 " cancelation error: %" PRIu8,
|
|
subscriptionId, errorCode);
|
|
}
|
|
mNanoappSubscriptions.erase(i);
|
|
break;
|
|
}
|
|
}
|
|
}
|
|
|
|
void WifiRequestManager::handleNanServiceTerminatedEvent(
|
|
uint8_t errorCode, uint32_t subscriptionId) {
|
|
auto callback = [](uint16_t /*type*/, void *data, void *extraData) {
|
|
auto errorCode = NestedDataPtr<uint8_t>(data);
|
|
auto subscriptionId = NestedDataPtr<uint32_t>(extraData);
|
|
EventLoopManagerSingleton::get()
|
|
->getWifiRequestManager()
|
|
.handleNanServiceTerminatedEventSync(errorCode, subscriptionId);
|
|
};
|
|
|
|
EventLoopManagerSingleton::get()->deferCallback(
|
|
SystemCallbackType::WifiNanServiceTerminatedEvent,
|
|
NestedDataPtr<uint8_t>(errorCode), callback,
|
|
NestedDataPtr<uint32_t>(subscriptionId));
|
|
}
|
|
|
|
void WifiRequestManager::handleNanServiceSubscriptionCanceledEvent(
|
|
uint8_t errorCode, uint32_t subscriptionId) {
|
|
auto callback = [](uint16_t /*type*/, void *data, void *extraData) {
|
|
auto errorCode = NestedDataPtr<uint8_t>(data);
|
|
auto subscriptionId = NestedDataPtr<uint32_t>(extraData);
|
|
EventLoopManagerSingleton::get()
|
|
->getWifiRequestManager()
|
|
.handleNanServiceSubscriptionCanceledEventSync(errorCode,
|
|
subscriptionId);
|
|
};
|
|
|
|
EventLoopManagerSingleton::get()->deferCallback(
|
|
SystemCallbackType::WifiNanServiceTerminatedEvent,
|
|
NestedDataPtr<uint8_t>(errorCode), callback,
|
|
NestedDataPtr<uint32_t>(subscriptionId));
|
|
}
|
|
|
|
void WifiRequestManager::logStateToBuffer(DebugDumpWrapper &debugDump) const {
|
|
debugDump.print("\nWifi: scan monitor %s\n",
|
|
scanMonitorIsEnabled() ? "enabled" : "disabled");
|
|
|
|
if (scanMonitorIsEnabled()) {
|
|
debugDump.print(" Wifi scan monitor enabled nanoapps:\n");
|
|
for (uint16_t instanceId : mScanMonitorNanoapps) {
|
|
debugDump.print(" nappId=%" PRIu16 "\n", instanceId);
|
|
}
|
|
}
|
|
|
|
if (mScanRequestingNanoappInstanceId.has_value()) {
|
|
debugDump.print(" Wifi request pending nanoappId=%" PRIu16 "\n",
|
|
mScanRequestingNanoappInstanceId.value());
|
|
}
|
|
|
|
if (!mPendingScanMonitorRequests.empty()) {
|
|
debugDump.print(" Wifi transition queue:\n");
|
|
for (const auto &transition : mPendingScanMonitorRequests) {
|
|
debugDump.print(" enable=%s nappId=%" PRIu16 "\n",
|
|
transition.enable ? "true" : "false",
|
|
transition.nanoappInstanceId);
|
|
}
|
|
}
|
|
|
|
debugDump.print(" Last %zu wifi scan requests:\n",
|
|
mWifiScanRequestLogs.size());
|
|
static_assert(kNumWifiRequestLogs <= INT8_MAX,
|
|
"kNumWifiRequestLogs must be <= INT8_MAX");
|
|
for (int8_t i = static_cast<int8_t>(mWifiScanRequestLogs.size()) - 1; i >= 0;
|
|
i--) {
|
|
const auto &log = mWifiScanRequestLogs[static_cast<size_t>(i)];
|
|
debugDump.print(" ts=%" PRIu64 " nappId=%" PRIu16 " scanType=%" PRIu8
|
|
" maxScanAge(ms)=%" PRIu64 "\n",
|
|
log.timestamp.toRawNanoseconds(), log.instanceId,
|
|
log.scanType, log.maxScanAgeMs.getMilliseconds());
|
|
}
|
|
|
|
debugDump.print(" Last scan event @ %" PRIu64 " ms\n",
|
|
mLastScanEventTime.getMilliseconds());
|
|
|
|
debugDump.print(" API error distribution (error-code indexed):\n");
|
|
debugDump.print(" Scan monitor:\n");
|
|
debugDump.logErrorHistogram(mScanMonitorErrorHistogram,
|
|
ARRAY_SIZE(mScanMonitorErrorHistogram));
|
|
debugDump.print(" Active Scan:\n");
|
|
debugDump.logErrorHistogram(mActiveScanErrorHistogram,
|
|
ARRAY_SIZE(mActiveScanErrorHistogram));
|
|
|
|
if (!mNanoappSubscriptions.empty()) {
|
|
debugDump.print(" Active NAN service subscriptions:\n");
|
|
for (const auto &sub : mNanoappSubscriptions) {
|
|
debugDump.print(" nappID=%" PRIu16 " sub ID=%" PRIu32 "\n",
|
|
sub.nanoappInstanceId, sub.subscriptionId);
|
|
}
|
|
}
|
|
|
|
if (!mPendingNanSubscribeRequests.empty()) {
|
|
debugDump.print(" Pending NAN service subscriptions:\n");
|
|
for (const auto &req : mPendingNanSubscribeRequests) {
|
|
debugDump.print(" nappID=%" PRIu16 " (type %" PRIu8 ") to svc: %s\n",
|
|
req.nanoappInstanceId, req.type, req.service.data());
|
|
}
|
|
}
|
|
}
|
|
|
|
bool WifiRequestManager::scanMonitorIsEnabled() const {
|
|
return !mScanMonitorNanoapps.empty();
|
|
}
|
|
|
|
bool WifiRequestManager::nanoappHasScanMonitorRequest(
|
|
uint16_t instanceId, size_t *nanoappIndex) const {
|
|
size_t index = mScanMonitorNanoapps.find(instanceId);
|
|
bool hasScanMonitorRequest = (index != mScanMonitorNanoapps.size());
|
|
if (hasScanMonitorRequest && nanoappIndex != nullptr) {
|
|
*nanoappIndex = index;
|
|
}
|
|
|
|
return hasScanMonitorRequest;
|
|
}
|
|
|
|
bool WifiRequestManager::scanMonitorIsInRequestedState(
|
|
bool requestedState, bool nanoappHasRequest) const {
|
|
return (requestedState == scanMonitorIsEnabled() ||
|
|
(!requestedState &&
|
|
(!nanoappHasRequest || mScanMonitorNanoapps.size() > 1)));
|
|
}
|
|
|
|
bool WifiRequestManager::scanMonitorStateTransitionIsRequired(
|
|
bool requestedState, bool nanoappHasRequest) const {
|
|
return ((requestedState && mScanMonitorNanoapps.empty()) ||
|
|
(!requestedState && nanoappHasRequest &&
|
|
mScanMonitorNanoapps.size() == 1));
|
|
}
|
|
|
|
bool WifiRequestManager::addScanMonitorRequestToQueue(Nanoapp *nanoapp,
|
|
bool enable,
|
|
const void *cookie) {
|
|
PendingScanMonitorRequest scanMonitorStateTransition;
|
|
scanMonitorStateTransition.nanoappInstanceId = nanoapp->getInstanceId();
|
|
scanMonitorStateTransition.cookie = cookie;
|
|
scanMonitorStateTransition.enable = enable;
|
|
|
|
bool success = mPendingScanMonitorRequests.push(scanMonitorStateTransition);
|
|
if (!success) {
|
|
LOGW("Too many scan monitor state transitions");
|
|
}
|
|
|
|
return success;
|
|
}
|
|
|
|
bool WifiRequestManager::nanoappHasPendingScanMonitorRequest(
|
|
uint16_t instanceId) const {
|
|
const int numRequests = static_cast<int>(mPendingScanMonitorRequests.size());
|
|
for (int i = numRequests - 1; i >= 0; i--) {
|
|
const PendingScanMonitorRequest &request =
|
|
mPendingScanMonitorRequests[static_cast<size_t>(i)];
|
|
// The last pending request determines the state of the scan monitoring.
|
|
if (request.nanoappInstanceId == instanceId) {
|
|
return request.enable;
|
|
}
|
|
}
|
|
|
|
return false;
|
|
}
|
|
|
|
bool WifiRequestManager::updateNanoappScanMonitoringList(bool enable,
|
|
uint16_t instanceId) {
|
|
bool success = true;
|
|
Nanoapp *nanoapp =
|
|
EventLoopManagerSingleton::get()->getEventLoop().findNanoappByInstanceId(
|
|
instanceId);
|
|
size_t nanoappIndex;
|
|
bool hasExistingRequest =
|
|
nanoappHasScanMonitorRequest(instanceId, &nanoappIndex);
|
|
|
|
if (nanoapp == nullptr) {
|
|
// When the scan monitoring is disabled from inside nanoappEnd() or when
|
|
// CHRE cleanup the subscription automatically it is possible that the
|
|
// current method is called after the nanoapp is unloaded. In such a case
|
|
// we still want to remove the nanoapp from mScanMonitorNanoapps.
|
|
if (!enable && hasExistingRequest) {
|
|
mScanMonitorNanoapps.erase(nanoappIndex);
|
|
} else {
|
|
LOGW("Failed to update scan monitoring list for non-existent nanoapp");
|
|
}
|
|
} else {
|
|
if (enable) {
|
|
if (!hasExistingRequest) {
|
|
// The scan monitor was successfully enabled for this nanoapp and
|
|
// there is no existing request. Add it to the list of scan monitoring
|
|
// nanoapps.
|
|
success = mScanMonitorNanoapps.push_back(instanceId);
|
|
if (!success) {
|
|
LOG_OOM();
|
|
} else {
|
|
nanoapp->registerForBroadcastEvent(CHRE_EVENT_WIFI_SCAN_RESULT);
|
|
}
|
|
}
|
|
} else if (hasExistingRequest) {
|
|
// The scan monitor was successfully disabled for a previously enabled
|
|
// nanoapp. Remove it from the list of scan monitoring nanoapps.
|
|
mScanMonitorNanoapps.erase(nanoappIndex);
|
|
nanoapp->unregisterForBroadcastEvent(CHRE_EVENT_WIFI_SCAN_RESULT);
|
|
} // else disabling an inactive request, treat as success per the CHRE API.
|
|
}
|
|
|
|
return success;
|
|
}
|
|
|
|
bool WifiRequestManager::postScanMonitorAsyncResultEvent(
|
|
uint16_t nanoappInstanceId, bool success, bool enable, uint8_t errorCode,
|
|
const void *cookie) {
|
|
// Allocate and post an event to the nanoapp requesting wifi.
|
|
bool eventPosted = false;
|
|
if (!success || updateNanoappScanMonitoringList(enable, nanoappInstanceId)) {
|
|
chreAsyncResult *event = memoryAlloc<chreAsyncResult>();
|
|
if (event == nullptr) {
|
|
LOG_OOM();
|
|
} else {
|
|
event->requestType = CHRE_WIFI_REQUEST_TYPE_CONFIGURE_SCAN_MONITOR;
|
|
event->success = success;
|
|
event->errorCode = errorCode;
|
|
event->reserved = 0;
|
|
event->cookie = cookie;
|
|
|
|
mScanMonitorErrorHistogram[errorCode]++;
|
|
|
|
EventLoopManagerSingleton::get()->getEventLoop().postEventOrDie(
|
|
CHRE_EVENT_WIFI_ASYNC_RESULT, event, freeEventDataCallback,
|
|
nanoappInstanceId);
|
|
eventPosted = true;
|
|
}
|
|
}
|
|
|
|
return eventPosted;
|
|
}
|
|
|
|
void WifiRequestManager::postScanMonitorAsyncResultEventFatal(
|
|
uint16_t nanoappInstanceId, bool success, bool enable, uint8_t errorCode,
|
|
const void *cookie) {
|
|
if (!postScanMonitorAsyncResultEvent(nanoappInstanceId, success, enable,
|
|
errorCode, cookie)) {
|
|
FATAL_ERROR("Failed to send WiFi scan monitor async result event");
|
|
}
|
|
}
|
|
|
|
bool WifiRequestManager::postScanRequestAsyncResultEvent(
|
|
uint16_t nanoappInstanceId, bool success, uint8_t errorCode,
|
|
const void *cookie) {
|
|
// TODO: the body of this function can be extracted to a common helper for use
|
|
// across this function, postScanMonitorAsyncResultEvent,
|
|
// postRangingAsyncResult, and GnssSession::postAsyncResultEvent
|
|
bool eventPosted = false;
|
|
chreAsyncResult *event = memoryAlloc<chreAsyncResult>();
|
|
if (event == nullptr) {
|
|
LOG_OOM();
|
|
} else {
|
|
event->requestType = CHRE_WIFI_REQUEST_TYPE_REQUEST_SCAN;
|
|
event->success = success;
|
|
event->errorCode = errorCode;
|
|
event->reserved = 0;
|
|
event->cookie = cookie;
|
|
|
|
mActiveScanErrorHistogram[errorCode]++;
|
|
|
|
EventLoopManagerSingleton::get()->getEventLoop().postEventOrDie(
|
|
CHRE_EVENT_WIFI_ASYNC_RESULT, event, freeEventDataCallback,
|
|
nanoappInstanceId);
|
|
eventPosted = true;
|
|
}
|
|
|
|
return eventPosted;
|
|
}
|
|
|
|
void WifiRequestManager::postScanRequestAsyncResultEventFatal(
|
|
uint16_t nanoappInstanceId, bool success, uint8_t errorCode,
|
|
const void *cookie) {
|
|
if (!postScanRequestAsyncResultEvent(nanoappInstanceId, success, errorCode,
|
|
cookie)) {
|
|
FATAL_ERROR("Failed to send WiFi scan request async result event");
|
|
}
|
|
}
|
|
|
|
void WifiRequestManager::postScanEventFatal(chreWifiScanEvent *event) {
|
|
mLastScanEventTime = Milliseconds(SystemTime::getMonotonicTime());
|
|
EventLoopManagerSingleton::get()->getEventLoop().postEventOrDie(
|
|
CHRE_EVENT_WIFI_SCAN_RESULT, event, freeWifiScanEventCallback);
|
|
}
|
|
|
|
void WifiRequestManager::handleScanMonitorStateChangeSync(bool enabled,
|
|
uint8_t errorCode) {
|
|
// Success is defined as having no errors ... in life ༼ つ ◕_◕ ༽つ
|
|
bool success = (errorCode == CHRE_ERROR_NONE);
|
|
|
|
// TODO(b/62904616): re-enable this assertion
|
|
// CHRE_ASSERT_LOG(!mScanMonitorStateTransitions.empty(),
|
|
// "handleScanMonitorStateChangeSync called with no
|
|
// transitions");
|
|
if (mPendingScanMonitorRequests.empty()) {
|
|
LOGE(
|
|
"WiFi PAL error: handleScanMonitorStateChangeSync called with no "
|
|
"transitions (enabled %d errorCode %" PRIu8 ")",
|
|
enabled, errorCode);
|
|
}
|
|
|
|
// Always check the front of the queue.
|
|
if (!mPendingScanMonitorRequests.empty()) {
|
|
const auto &stateTransition = mPendingScanMonitorRequests.front();
|
|
success &= (stateTransition.enable == enabled);
|
|
postScanMonitorAsyncResultEventFatal(stateTransition.nanoappInstanceId,
|
|
success, stateTransition.enable,
|
|
errorCode, stateTransition.cookie);
|
|
mPendingScanMonitorRequests.pop();
|
|
}
|
|
|
|
while (!mPendingScanMonitorRequests.empty()) {
|
|
const auto &stateTransition = mPendingScanMonitorRequests.front();
|
|
bool hasScanMonitorRequest =
|
|
nanoappHasScanMonitorRequest(stateTransition.nanoappInstanceId);
|
|
if (scanMonitorIsInRequestedState(stateTransition.enable,
|
|
hasScanMonitorRequest)) {
|
|
// We are already in the target state so just post an event indicating
|
|
// success
|
|
postScanMonitorAsyncResultEventFatal(
|
|
stateTransition.nanoappInstanceId, true /* success */,
|
|
stateTransition.enable, CHRE_ERROR_NONE, stateTransition.cookie);
|
|
} else if (scanMonitorStateTransitionIsRequired(stateTransition.enable,
|
|
hasScanMonitorRequest)) {
|
|
if (mPlatformWifi.configureScanMonitor(stateTransition.enable)) {
|
|
break;
|
|
} else {
|
|
postScanMonitorAsyncResultEventFatal(
|
|
stateTransition.nanoappInstanceId, false /* success */,
|
|
stateTransition.enable, CHRE_ERROR, stateTransition.cookie);
|
|
}
|
|
} else {
|
|
CHRE_ASSERT_LOG(false, "Invalid scan monitor state");
|
|
break;
|
|
}
|
|
|
|
mPendingScanMonitorRequests.pop();
|
|
}
|
|
}
|
|
|
|
void WifiRequestManager::postNanAsyncResultEvent(uint16_t nanoappInstanceId,
|
|
uint8_t requestType,
|
|
bool success,
|
|
uint8_t errorCode,
|
|
const void *cookie) {
|
|
chreAsyncResult *event = memoryAlloc<chreAsyncResult>();
|
|
if (event == nullptr) {
|
|
LOG_OOM();
|
|
} else {
|
|
event->requestType = requestType;
|
|
event->cookie = cookie;
|
|
event->errorCode = errorCode;
|
|
event->success = success;
|
|
|
|
EventLoopManagerSingleton::get()->getEventLoop().postEventOrDie(
|
|
CHRE_EVENT_WIFI_ASYNC_RESULT, event, freeEventDataCallback,
|
|
nanoappInstanceId);
|
|
}
|
|
}
|
|
void WifiRequestManager::handleScanResponseSync(bool pending,
|
|
uint8_t errorCode) {
|
|
// TODO(b/65206783): re-enable this assertion
|
|
// CHRE_ASSERT_LOG(mScanRequestingNanoappInstanceId.has_value(),
|
|
// "handleScanResponseSync called with no outstanding
|
|
// request");
|
|
if (!mScanRequestingNanoappInstanceId.has_value()) {
|
|
LOGE("handleScanResponseSync called with no outstanding request");
|
|
}
|
|
|
|
// TODO: raise this to CHRE_ASSERT_LOG
|
|
if (!pending && errorCode == CHRE_ERROR_NONE) {
|
|
LOGE("Invalid wifi scan response");
|
|
errorCode = CHRE_ERROR;
|
|
}
|
|
|
|
if (mScanRequestingNanoappInstanceId.has_value()) {
|
|
bool success = (pending && errorCode == CHRE_ERROR_NONE);
|
|
if (!success) {
|
|
LOGW("Wifi scan request failed: pending %d, errorCode %" PRIu8, pending,
|
|
errorCode);
|
|
}
|
|
postScanRequestAsyncResultEventFatal(*mScanRequestingNanoappInstanceId,
|
|
success, errorCode,
|
|
mScanRequestingNanoappCookie);
|
|
|
|
// Set a flag to indicate that results may be pending.
|
|
mScanRequestResultsArePending = pending;
|
|
|
|
if (pending) {
|
|
Nanoapp *nanoapp =
|
|
EventLoopManagerSingleton::get()
|
|
->getEventLoop()
|
|
.findNanoappByInstanceId(*mScanRequestingNanoappInstanceId);
|
|
if (nanoapp == nullptr) {
|
|
LOGW("Received WiFi scan response for unknown nanoapp");
|
|
} else {
|
|
nanoapp->registerForBroadcastEvent(CHRE_EVENT_WIFI_SCAN_RESULT);
|
|
}
|
|
} else {
|
|
// If the scan results are not pending, clear the nanoapp instance ID.
|
|
// Otherwise, wait for the results to be delivered and then clear the
|
|
// instance ID.
|
|
mScanRequestingNanoappInstanceId.reset();
|
|
}
|
|
}
|
|
}
|
|
|
|
bool WifiRequestManager::postRangingAsyncResult(uint8_t errorCode) {
|
|
bool eventPosted = false;
|
|
|
|
if (mPendingRangingRequests.empty()) {
|
|
LOGE("Unexpected ranging event callback");
|
|
} else {
|
|
auto *event = memoryAlloc<struct chreAsyncResult>();
|
|
if (event == nullptr) {
|
|
LOG_OOM();
|
|
} else {
|
|
const PendingRangingRequest &req = mPendingRangingRequests.front();
|
|
|
|
event->requestType = CHRE_WIFI_REQUEST_TYPE_RANGING;
|
|
event->success = (errorCode == CHRE_ERROR_NONE);
|
|
event->errorCode = errorCode;
|
|
event->reserved = 0;
|
|
event->cookie = req.cookie;
|
|
|
|
EventLoopManagerSingleton::get()->getEventLoop().postEventOrDie(
|
|
CHRE_EVENT_WIFI_ASYNC_RESULT, event, freeEventDataCallback,
|
|
req.nanoappInstanceId);
|
|
eventPosted = true;
|
|
}
|
|
}
|
|
|
|
return eventPosted;
|
|
}
|
|
|
|
bool WifiRequestManager::dispatchQueuedRangingRequest() {
|
|
bool success = false;
|
|
uint8_t asyncError = CHRE_ERROR_NONE;
|
|
PendingRangingRequest &req = mPendingRangingRequests.front();
|
|
|
|
if (!areRequiredSettingsEnabled()) {
|
|
asyncError = CHRE_ERROR_FUNCTION_DISABLED;
|
|
} else if (!sendRangingRequest(req)) {
|
|
asyncError = CHRE_ERROR;
|
|
} else {
|
|
success = true;
|
|
mRangingResponseTimeout = SystemTime::getMonotonicTime() +
|
|
Nanoseconds(CHRE_WIFI_RANGING_RESULT_TIMEOUT_NS);
|
|
}
|
|
|
|
if (asyncError != CHRE_ERROR_NONE) {
|
|
postRangingAsyncResult(asyncError);
|
|
mPendingRangingRequests.pop();
|
|
}
|
|
|
|
return success;
|
|
}
|
|
|
|
bool WifiRequestManager::dispatchQueuedNanSubscribeRequest() {
|
|
bool success = false;
|
|
|
|
if (!mPendingNanSubscribeRequests.empty()) {
|
|
uint8_t asyncError = CHRE_ERROR_NONE;
|
|
const auto &req = mPendingNanSubscribeRequests.front();
|
|
struct chreWifiNanSubscribeConfig config = {};
|
|
buildNanSubscribeConfigFromRequest(req, &config);
|
|
|
|
if (!areRequiredSettingsEnabled()) {
|
|
asyncError = CHRE_ERROR_FUNCTION_DISABLED;
|
|
} else if (!mPlatformWifi.nanSubscribe(&config)) {
|
|
asyncError = CHRE_ERROR;
|
|
}
|
|
|
|
if (asyncError != CHRE_ERROR_NONE) {
|
|
postNanAsyncResultEvent(req.nanoappInstanceId,
|
|
CHRE_WIFI_REQUEST_TYPE_NAN_SUBSCRIBE,
|
|
false /*success*/, asyncError, req.cookie);
|
|
mPendingNanSubscribeRequests.pop();
|
|
} else {
|
|
success = true;
|
|
}
|
|
}
|
|
return success;
|
|
}
|
|
|
|
void WifiRequestManager::dispatchQueuedNanSubscribeRequestWithRetry() {
|
|
while (!mPendingNanSubscribeRequests.empty() &&
|
|
!dispatchQueuedNanSubscribeRequest())
|
|
;
|
|
}
|
|
|
|
void WifiRequestManager::handleRangingEventSync(
|
|
uint8_t errorCode, struct chreWifiRangingEvent *event) {
|
|
if (!areRequiredSettingsEnabled()) {
|
|
errorCode = CHRE_ERROR_FUNCTION_DISABLED;
|
|
}
|
|
|
|
if (postRangingAsyncResult(errorCode)) {
|
|
if (errorCode != CHRE_ERROR_NONE) {
|
|
LOGW("RTT ranging failed with error %d", errorCode);
|
|
if (event != nullptr) {
|
|
freeWifiRangingEventCallback(CHRE_EVENT_WIFI_RANGING_RESULT, event);
|
|
}
|
|
} else {
|
|
EventLoopManagerSingleton::get()->getEventLoop().postEventOrDie(
|
|
CHRE_EVENT_WIFI_RANGING_RESULT, event, freeWifiRangingEventCallback,
|
|
mPendingRangingRequests.front().nanoappInstanceId);
|
|
}
|
|
mPendingRangingRequests.pop();
|
|
}
|
|
|
|
// If we have any pending requests, try issuing them to the platform until the
|
|
// first one succeeds.
|
|
while (!mPendingRangingRequests.empty() && !dispatchQueuedRangingRequest())
|
|
;
|
|
}
|
|
|
|
void WifiRequestManager::handleFreeWifiScanEvent(chreWifiScanEvent *scanEvent) {
|
|
if (mScanRequestResultsArePending) {
|
|
// Reset the event distribution logic once an entire scan event has been
|
|
// received and processed by the nanoapp requesting the scan event.
|
|
mScanEventResultCountAccumulator += scanEvent->resultCount;
|
|
if (mScanEventResultCountAccumulator >= scanEvent->resultTotal) {
|
|
mScanEventResultCountAccumulator = 0;
|
|
mScanRequestResultsArePending = false;
|
|
}
|
|
|
|
if (!mScanRequestResultsArePending &&
|
|
mScanRequestingNanoappInstanceId.has_value()) {
|
|
Nanoapp *nanoapp =
|
|
EventLoopManagerSingleton::get()
|
|
->getEventLoop()
|
|
.findNanoappByInstanceId(*mScanRequestingNanoappInstanceId);
|
|
if (nanoapp == nullptr) {
|
|
LOGW("Attempted to unsubscribe unknown nanoapp from WiFi scan events");
|
|
} else if (!nanoappHasScanMonitorRequest(
|
|
*mScanRequestingNanoappInstanceId)) {
|
|
nanoapp->unregisterForBroadcastEvent(CHRE_EVENT_WIFI_SCAN_RESULT);
|
|
}
|
|
|
|
mScanRequestingNanoappInstanceId.reset();
|
|
}
|
|
}
|
|
|
|
mPlatformWifi.releaseScanEvent(scanEvent);
|
|
}
|
|
|
|
void WifiRequestManager::addWifiScanRequestLog(
|
|
uint16_t nanoappInstanceId, const chreWifiScanParams *params) {
|
|
mWifiScanRequestLogs.kick_push(
|
|
WifiScanRequestLog(SystemTime::getMonotonicTime(), nanoappInstanceId,
|
|
static_cast<chreWifiScanType>(params->scanType),
|
|
static_cast<Milliseconds>(params->maxScanAgeMs)));
|
|
}
|
|
|
|
void WifiRequestManager::freeWifiScanEventCallback(uint16_t /* eventType */,
|
|
void *eventData) {
|
|
auto *scanEvent = static_cast<struct chreWifiScanEvent *>(eventData);
|
|
EventLoopManagerSingleton::get()
|
|
->getWifiRequestManager()
|
|
.handleFreeWifiScanEvent(scanEvent);
|
|
}
|
|
|
|
void WifiRequestManager::freeWifiRangingEventCallback(uint16_t /* eventType */,
|
|
void *eventData) {
|
|
auto *event = static_cast<struct chreWifiRangingEvent *>(eventData);
|
|
EventLoopManagerSingleton::get()
|
|
->getWifiRequestManager()
|
|
.mPlatformWifi.releaseRangingEvent(event);
|
|
}
|
|
|
|
void WifiRequestManager::freeNanDiscoveryEventCallback(uint16_t /* eventType */,
|
|
void *eventData) {
|
|
auto *event = static_cast<struct chreWifiNanDiscoveryEvent *>(eventData);
|
|
EventLoopManagerSingleton::get()
|
|
->getWifiRequestManager()
|
|
.mPlatformWifi.releaseNanDiscoveryEvent(event);
|
|
}
|
|
|
|
bool WifiRequestManager::nanSubscribe(
|
|
Nanoapp *nanoapp, const struct chreWifiNanSubscribeConfig *config,
|
|
const void *cookie) {
|
|
CHRE_ASSERT(nanoapp);
|
|
|
|
bool success = false;
|
|
|
|
if (!areRequiredSettingsEnabled()) {
|
|
success = true;
|
|
postNanAsyncResultEvent(
|
|
nanoapp->getInstanceId(), CHRE_WIFI_REQUEST_TYPE_NAN_SUBSCRIBE,
|
|
false /*success*/, CHRE_ERROR_FUNCTION_DISABLED, cookie);
|
|
} else {
|
|
if (!mPendingNanSubscribeRequests.emplace()) {
|
|
LOG_OOM();
|
|
} else {
|
|
auto &req = mPendingNanSubscribeRequests.back();
|
|
req.nanoappInstanceId = nanoapp->getInstanceId();
|
|
req.cookie = cookie;
|
|
if (!copyNanSubscribeConfigToRequest(req, config)) {
|
|
LOG_OOM();
|
|
}
|
|
|
|
if (mNanIsAvailable) {
|
|
if (mPendingNanSubscribeRequests.size() == 1) {
|
|
// First in line; dispatch request immediately.
|
|
success = mPlatformWifi.nanSubscribe(config);
|
|
if (!success) {
|
|
mPendingNanSubscribeRequests.pop_back();
|
|
}
|
|
} else {
|
|
success = true;
|
|
}
|
|
} else {
|
|
success = true;
|
|
sendNanConfiguration(true /*enable*/);
|
|
}
|
|
}
|
|
}
|
|
return success;
|
|
}
|
|
|
|
bool WifiRequestManager::nanSubscribeCancel(Nanoapp *nanoapp,
|
|
uint32_t subscriptionId) {
|
|
bool success = false;
|
|
for (size_t i = 0; i < mNanoappSubscriptions.size(); ++i) {
|
|
if (mNanoappSubscriptions[i].subscriptionId == subscriptionId &&
|
|
mNanoappSubscriptions[i].nanoappInstanceId ==
|
|
nanoapp->getInstanceId()) {
|
|
success = mPlatformWifi.nanSubscribeCancel(subscriptionId);
|
|
break;
|
|
}
|
|
}
|
|
|
|
if (!success) {
|
|
LOGE("Failed to cancel subscription %" PRIu32 " for napp %" PRIu16,
|
|
subscriptionId, nanoapp->getInstanceId());
|
|
}
|
|
|
|
return success;
|
|
}
|
|
|
|
bool WifiRequestManager::copyNanSubscribeConfigToRequest(
|
|
PendingNanSubscribeRequest &req,
|
|
const struct chreWifiNanSubscribeConfig *config) {
|
|
bool success = false;
|
|
req.type = config->subscribeType;
|
|
|
|
if (req.service.copy_array(config->service,
|
|
std::strlen(config->service) + 1) &&
|
|
req.serviceSpecificInfo.copy_array(config->serviceSpecificInfo,
|
|
config->serviceSpecificInfoSize) &&
|
|
req.matchFilter.copy_array(config->matchFilter,
|
|
config->matchFilterLength)) {
|
|
success = true;
|
|
} else {
|
|
LOG_OOM();
|
|
}
|
|
|
|
return success;
|
|
}
|
|
|
|
void WifiRequestManager::buildNanSubscribeConfigFromRequest(
|
|
const PendingNanSubscribeRequest &req,
|
|
struct chreWifiNanSubscribeConfig *config) {
|
|
config->subscribeType = req.type;
|
|
config->service = req.service.data();
|
|
config->serviceSpecificInfo = req.serviceSpecificInfo.data();
|
|
config->serviceSpecificInfoSize =
|
|
static_cast<uint32_t>(req.serviceSpecificInfo.size());
|
|
config->matchFilter = req.matchFilter.data();
|
|
config->matchFilterLength = static_cast<uint32_t>(req.matchFilter.size());
|
|
}
|
|
|
|
inline bool WifiRequestManager::areRequiredSettingsEnabled() {
|
|
SettingManager &settingManager =
|
|
EventLoopManagerSingleton::get()->getSettingManager();
|
|
return settingManager.getSettingEnabled(Setting::LOCATION) &&
|
|
settingManager.getSettingEnabled(Setting::WIFI_AVAILABLE);
|
|
}
|
|
|
|
void WifiRequestManager::cancelNanSubscriptionsAndInformNanoapps() {
|
|
for (size_t i = 0; i < mNanoappSubscriptions.size(); ++i) {
|
|
chreWifiNanSessionTerminatedEvent *event =
|
|
memoryAlloc<chreWifiNanSessionTerminatedEvent>();
|
|
if (event == nullptr) {
|
|
LOG_OOM();
|
|
} else {
|
|
event->id = mNanoappSubscriptions[i].subscriptionId;
|
|
event->reason = CHRE_ERROR_FUNCTION_DISABLED;
|
|
EventLoopManagerSingleton::get()->getEventLoop().postEventOrDie(
|
|
CHRE_EVENT_WIFI_NAN_SESSION_TERMINATED, event, freeEventDataCallback,
|
|
mNanoappSubscriptions[i].nanoappInstanceId);
|
|
}
|
|
}
|
|
mNanoappSubscriptions.clear();
|
|
}
|
|
|
|
void WifiRequestManager::cancelNanPendingRequestsAndInformNanoapps() {
|
|
for (size_t i = 0; i < mPendingNanSubscribeRequests.size(); ++i) {
|
|
auto &req = mPendingNanSubscribeRequests[i];
|
|
chreAsyncResult *event = memoryAlloc<chreAsyncResult>();
|
|
if (event == nullptr) {
|
|
LOG_OOM();
|
|
break;
|
|
} else {
|
|
event->requestType = CHRE_WIFI_REQUEST_TYPE_NAN_SUBSCRIBE;
|
|
event->success = false;
|
|
event->errorCode = CHRE_ERROR_FUNCTION_DISABLED;
|
|
event->cookie = req.cookie;
|
|
EventLoopManagerSingleton::get()->getEventLoop().postEventOrDie(
|
|
CHRE_EVENT_WIFI_ASYNC_RESULT, event, freeEventDataCallback,
|
|
req.nanoappInstanceId);
|
|
}
|
|
}
|
|
mPendingNanSubscribeRequests.clear();
|
|
}
|
|
|
|
void WifiRequestManager::handleNanAvailabilitySync(bool available) {
|
|
PendingNanConfigType nanState =
|
|
available ? PendingNanConfigType::ENABLE : PendingNanConfigType::DISABLE;
|
|
mNanIsAvailable = available;
|
|
|
|
if (nanState == mNanConfigRequestToHostPendingType) {
|
|
mNanConfigRequestToHostPending = false;
|
|
mNanConfigRequestToHostPendingType = PendingNanConfigType::UNKNOWN;
|
|
}
|
|
|
|
if (available) {
|
|
dispatchQueuedNanSubscribeRequestWithRetry();
|
|
} else {
|
|
cancelNanPendingRequestsAndInformNanoapps();
|
|
cancelNanSubscriptionsAndInformNanoapps();
|
|
}
|
|
}
|
|
|
|
void WifiRequestManager::updateNanAvailability(bool available) {
|
|
auto callback = [](uint16_t /*type*/, void *data, void * /*extraData*/) {
|
|
bool cbAvail = NestedDataPtr<bool>(data);
|
|
EventLoopManagerSingleton::get()
|
|
->getWifiRequestManager()
|
|
.handleNanAvailabilitySync(cbAvail);
|
|
};
|
|
|
|
EventLoopManagerSingleton::get()->deferCallback(
|
|
SystemCallbackType::WifiNanAvailabilityEvent,
|
|
NestedDataPtr<bool>(available), callback);
|
|
}
|
|
|
|
void WifiRequestManager::sendNanConfiguration(bool enable) {
|
|
PendingNanConfigType requiredState =
|
|
enable ? PendingNanConfigType::ENABLE : PendingNanConfigType::DISABLE;
|
|
if (!mNanConfigRequestToHostPending ||
|
|
(mNanConfigRequestToHostPendingType != requiredState)) {
|
|
mNanConfigRequestToHostPending = true;
|
|
mNanConfigRequestToHostPendingType = requiredState;
|
|
EventLoopManagerSingleton::get()
|
|
->getHostCommsManager()
|
|
.sendNanConfiguration(enable);
|
|
}
|
|
}
|
|
|
|
void WifiRequestManager::onSettingChanged(Setting setting, bool enabled) {
|
|
if ((setting == Setting::WIFI_AVAILABLE) && !enabled) {
|
|
cancelNanPendingRequestsAndInformNanoapps();
|
|
cancelNanSubscriptionsAndInformNanoapps();
|
|
}
|
|
}
|
|
|
|
} // namespace chre
|