nearby: snapshot as of cl/296436629

Signed-off-by: Alexey Polyudov <apolyudov@google.com>
Change-Id: I2cf5bf225b76f4c1541954651f3a7544a14e0cec
This commit is contained in:
Alexey Polyudov
2020-04-04 12:52:31 -07:00
parent 598516303b
commit 204f76077d
195 changed files with 27318 additions and 0 deletions
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cc_library(
name = "sample",
srcs = [
"sample_wifi_medium.cc",
"sample_wifi_medium.h",
],
hdrs = ["sample_platform.h"],
visibility = [
"//googlemac/iPhone/Shared/Nearby/Connections:__subpackages__",
"//core:__subpackages__",
"//location/nearby/setup/core:__subpackages__",
],
deps = [
"//platform:types",
"//platform:utils",
"//platform/api",
"//platform/port:string",
"//absl/time",
],
)
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#ifndef PLATFORM_IMPL_SAMPLE_SAMPLE_PLATFORM_H_
#define PLATFORM_IMPL_SAMPLE_SAMPLE_PLATFORM_H_
#include <cstdint>
#include "platform/api/atomic_boolean.h"
#include "platform/api/atomic_reference.h"
#include "platform/api/ble.h"
#include "platform/api/ble_v2.h"
#include "platform/api/bluetooth_adapter.h"
#include "platform/api/bluetooth_classic.h"
#include "platform/api/condition_variable.h"
#include "platform/api/count_down_latch.h"
#include "platform/api/hash_utils.h"
#include "platform/api/lock.h"
#include "platform/api/multi_thread_executor.h"
#include "platform/api/settable_future.h"
#include "platform/api/single_thread_executor.h"
#include "platform/api/system_clock.h"
#include "platform/api/thread_utils.h"
#include "platform/api/wifi.h"
#include "platform/cancelable.h"
#include "platform/impl/sample/sample_wifi_medium.h"
#include "platform/port/string.h"
#include "platform/ptr.h"
#include "platform/runnable.h"
namespace location {
namespace nearby {
namespace sample {
// The SamplePlatform class below shows an example of the factory functions
// and typedefs.
class SamplePlatform {
public:
class SampleSubmittableExecutor
: public SubmittableExecutor<SampleSubmittableExecutor> {
public:
template <typename T>
Ptr<Future<T> > submit(Ptr<Callable<T> > callable) {
return Ptr<Future<T> >();
}
};
class SampleSingleThreadExecutor
: public SingleThreadExecutor<SampleSubmittableExecutor> {
public:
void execute(Ptr<Runnable> runnable) override {}
void shutdown() override {}
};
class SampleMultiThreadExecutor
: public MultiThreadExecutor<SampleSubmittableExecutor> {
public:
void execute(Ptr<Runnable> runnable) override {}
void shutdown() override {}
};
class SampleScheduledExecutor {
public:
Ptr<Cancelable> schedule(Ptr<Runnable> runnable,
std::int64_t delay_millis) {
return Ptr<Cancelable>();
}
void shutdown() {}
};
typedef SampleSingleThreadExecutor SingleThreadExecutorType;
static Ptr<SingleThreadExecutorType> createSingleThreadExecutor() {
return MakePtr(new SingleThreadExecutorType());
}
typedef SampleMultiThreadExecutor MultiThreadExecutorType;
static Ptr<MultiThreadExecutorType> createMultiThreadExecutor(
std::int32_t max_concurrency) {
return MakePtr(new MultiThreadExecutorType());
}
typedef SampleScheduledExecutor ScheduledExecutorType;
static Ptr<ScheduledExecutorType> createScheduledExecutor() {
return MakePtr(new ScheduledExecutorType());
}
static Ptr<BluetoothAdapter> createBluetoothAdapter() {
return Ptr<BluetoothAdapter>();
}
static Ptr<WifiMedium> createWifiMedium() {
return MakePtr(new SampleWifiMedium());
}
static Ptr<CountDownLatch> createCountDownLatch(std::int32_t count) {
return Ptr<CountDownLatch>();
}
template <typename T>
static Ptr<SettableFuture<T> > createSettableFuture() {
return Ptr<SettableFuture<T> >();
}
static Ptr<ThreadUtils> createThreadUtils() { return Ptr<ThreadUtils>(); }
static Ptr<SystemClock> createSystemClock() { return Ptr<SystemClock>(); }
static Ptr<AtomicBoolean> createAtomicBoolean(bool initial_value) {
return Ptr<AtomicBoolean>();
}
template <typename T>
static Ptr<AtomicReference<T> > createAtomicReference(T initial_value) {
return Ptr<AtomicReference<T> >();
}
static Ptr<BluetoothClassicMedium> createBluetoothClassicMedium() {
return Ptr<BluetoothClassicMedium>();
}
static Ptr<BLEMedium> createBLEMedium() { return Ptr<BLEMedium>(); }
static Ptr<BLEMediumV2> createBLEMediumV2() { return Ptr<BLEMediumV2>(); }
static Ptr<Lock> createLock() { return Ptr<Lock>(); }
static Ptr<ConditionVariable> createConditionVariable(Ptr<Lock> lock) {
return Ptr<ConditionVariable>();
}
static Ptr<HashUtils> createHashUtils() { return Ptr<HashUtils>(); }
static std::string getDeviceId() { return ""; }
static std::string getPayloadPath(int64_t payload_id) {
return "/tmp/" + std::to_string(payload_id);
}
};
} // namespace sample
} // namespace nearby
} // namespace location
#endif // PLATFORM_IMPL_SAMPLE_SAMPLE_PLATFORM_H_
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#include "platform/impl/sample/sample_wifi_medium.h"
#include <cstdint>
#include "platform/prng.h"
#include "absl/time/clock.h"
#include "absl/time/time.h"
namespace location {
namespace nearby {
namespace sample {
namespace {
const char* kOpenSSID = "__OPEN__";
const char* kWpaPskSSID = "__WPA_PSK__";
const char* kWepSSID = "__WEP__";
const char* kNoInternetConnectivitySSID = "__NO_INTERNET_CONNECTIVITY__";
const char* kConnectionFailureSSID = "__CONNECTION_FAILURE__";
const char* kAuthFailureSSID = "__AUTH_FAILURE__";
std::uint32_t boundedUInt32(std::uint32_t upper_limit) {
return Prng().nextUInt32() % (upper_limit + 1);
}
void randomSleep(std::uint32_t upper_limit_millis) {
absl::SleepFor(absl::Milliseconds(boundedUInt32(upper_limit_millis)));
}
} // namespace
std::vector<SampleWifiScanResult> SampleWifiMedium::canned_scan_results_;
SampleWifiMedium::SampleWifiMedium() : current_ssid_() {
// One-time initialization of our static canned_scan_results_.
if (canned_scan_results_.empty()) {
canned_scan_results_.push_back(
SampleWifiScanResult(kOpenSSID, 1, 2401, WifiAuthType::OPEN));
canned_scan_results_.push_back(
SampleWifiScanResult(kWpaPskSSID, 2, 5002, WifiAuthType::WPA_PSK));
canned_scan_results_.push_back(
SampleWifiScanResult(kWepSSID, 3, 2403, WifiAuthType::WEP));
canned_scan_results_.push_back(SampleWifiScanResult(
kNoInternetConnectivitySSID, 4, 5004, WifiAuthType::OPEN));
canned_scan_results_.push_back(SampleWifiScanResult(
kConnectionFailureSSID, 5, 2405, WifiAuthType::OPEN));
canned_scan_results_.push_back(
SampleWifiScanResult(kAuthFailureSSID, 6, 5006, WifiAuthType::OPEN));
}
}
SampleWifiMedium::~SampleWifiMedium() {}
bool SampleWifiMedium::scan(
Ptr<WifiMedium::ScanResultCallback> scan_result_callback) {
// Sleep for up to 10 seconds, to simulate performing an actual Wifi scan.
randomSleep(10 * 1000);
// Construct the response.
std::vector<ConstPtr<WifiScanResult> > scan_results;
for (std::vector<SampleWifiScanResult>::const_iterator it =
canned_scan_results_.begin();
it != canned_scan_results_.end(); it++) {
scan_results.push_back(ConstPtr<WifiScanResult>(
new SampleWifiScanResult(it->getSSID(), it->getSignalStrengthDbm(),
it->getFrequencyMhz(), it->getAuthType())));
}
// And report it back.
scan_result_callback->onScanResults(scan_results);
return false;
}
WifiConnectionStatus::Value SampleWifiMedium::connectToNetwork(
const std::string& ssid, const std::string& password,
WifiAuthType::Value auth_type) {
// Sleep for up to 10 seconds, to simulate actually connecting to the SSID.
randomSleep(10 * 1000);
if (kConnectionFailureSSID == ssid) {
return WifiConnectionStatus::CONNECTION_FAILURE;
}
if (kAuthFailureSSID == ssid) {
return WifiConnectionStatus::AUTH_FAILURE;
}
return WifiConnectionStatus::CONNECTED;
}
bool SampleWifiMedium::verifyInternetConnectivity() {
if (current_ssid_.empty()) {
return false;
}
// Sleep for up to 5 seconds, to simulate actually verifying internet
// connectivity.
randomSleep(5 * 1000);
return current_ssid_ != kNoInternetConnectivitySSID;
}
std::string SampleWifiMedium::getIPAddress() {
return current_ssid_.empty() ? "" : "1.2.3.4";
}
} // namespace sample
} // namespace nearby
} // namespace location
@@ -0,0 +1,59 @@
#ifndef PLATFORM_IMPL_SAMPLE_SAMPLE_WIFI_MEDIUM_H_
#define PLATFORM_IMPL_SAMPLE_SAMPLE_WIFI_MEDIUM_H_
#include "platform/api/wifi.h"
namespace location {
namespace nearby {
namespace sample {
class SampleWifiScanResult : public WifiScanResult {
public:
SampleWifiScanResult(const std::string& ssid,
std::int32_t signal_strength_dbm,
std::int32_t frequency_mhz,
WifiAuthType::Value auth_type)
: ssid_(ssid),
signal_strength_dbm_(signal_strength_dbm),
frequency_mhz_(frequency_mhz),
auth_type_(auth_type) {}
~SampleWifiScanResult() override {}
std::string getSSID() const override { return ssid_; }
std::int32_t getSignalStrengthDbm() const override {
return signal_strength_dbm_;
}
std::int32_t getFrequencyMhz() const override { return frequency_mhz_; }
WifiAuthType::Value getAuthType() const override { return auth_type_; }
private:
const std::string ssid_;
const std::int32_t signal_strength_dbm_;
const std::int32_t frequency_mhz_;
const WifiAuthType::Value auth_type_;
};
class SampleWifiMedium : public WifiMedium {
public:
SampleWifiMedium();
~SampleWifiMedium() override;
bool scan(Ptr<ScanResultCallback> scan_result_callback) override;
WifiConnectionStatus::Value connectToNetwork(
const std::string& ssid, const std::string& password,
WifiAuthType::Value auth_type) override;
bool verifyInternetConnectivity() override;
std::string getIPAddress() override;
private:
static std::vector<SampleWifiScanResult> canned_scan_results_;
// The SSID this Wifi stack is currently connected to; empty string if none.
std::string current_ssid_;
};
} // namespace sample
} // namespace nearby
} // namespace location
#endif // PLATFORM_IMPL_SAMPLE_SAMPLE_WIFI_MEDIUM_H_