Files
tactility/Tactility/Source/PreferencesEsp.cpp
T
Ken Van Hoeylandt f660550f86 App hub and more (#383)
- Added `AppHub` app
- Added `AppHubDetails` app
- Added `cJSON` dependency
- Renamed `AppSim` module to `FirmwareSim`
- Added extra `tt::app::alertdialg::start()`
- Renamed `addApp()`, `removeApp()`, `findAppById()` and `getApps()` to `addAppManifest()`, `removeAppManifest()`, `findAppManifestById()` and `getAppManifests()`
- Added `tt::lvgl::toolbar_clear_actions()`
- Added `tt::network::EspHttpClient` as a thread-safe wrapper around `esp_http_client`
- Added `tt::network::http::download()` to download files
- Added `tt::network::ntp::isSynced()`
- When time is synced, the timestamp is stored in NVS flash. On boot, it is restored. This helps SSL connections when doing a quick reset: when WiFi reconnects, the user doesn't have to wait for NTP sync before SSL works.
- Added `tt::json::Reader` as a `cJSON` wrapper
- Added `int64_t` support for `Preferences`
- Added `int64_t` support for `Bundle`
- Added dependencies: `cJSON`, `esp-tls`
- When time is synced via NTP, disable time sync.
- Added docs to 'tt::file::` functions
- Added `tt::string::join()` that works with `std::vector<const char*>`
- Fixed `tt::file::getLastPathSegment()` for the scenario when a path was passed with only a single segment
- Set `CONFIG_ESP_MAIN_TASK_STACK_SIZE=5120` (from about 3k) for all boards
- Set `CONFIG_MBEDTLS_SSL_PROTO_TLS1_3=y` for all boards
2025-10-25 00:20:48 +02:00

136 lines
4.0 KiB
C++

#ifdef ESP_PLATFORM
#include <Tactility/Preferences.h>
#include <Tactility/TactilityCore.h>
#include <nvs_flash.h>
namespace tt {
constexpr auto* TAG = "Preferences";
bool Preferences::optBool(const std::string& key, bool& out) const {
nvs_handle_t handle;
if (nvs_open(namespace_, NVS_READWRITE, &handle) != ESP_OK) {
TT_LOG_E(TAG, "Failed to open namespace %s", namespace_);
return false;
} else {
uint8_t out_number;
bool success = nvs_get_u8(handle, key.c_str(), &out_number) == ESP_OK;
nvs_close(handle);
if (success) {
out = (bool)out_number;
}
return success;
}
}
bool Preferences::optInt32(const std::string& key, int32_t& out) const {
nvs_handle_t handle;
if (nvs_open(namespace_, NVS_READWRITE, &handle) != ESP_OK) {
TT_LOG_E(TAG, "Failed to open namespace %s", namespace_);
return false;
} else {
bool success = nvs_get_i32(handle, key.c_str(), &out) == ESP_OK;
nvs_close(handle);
return success;
}
}
bool Preferences::optInt64(const std::string& key, int64_t& out) const {
nvs_handle_t handle;
if (nvs_open(namespace_, NVS_READWRITE, &handle) != ESP_OK) {
TT_LOG_E(TAG, "Failed to open namespace %s", namespace_);
return false;
} else {
bool success = nvs_get_i64(handle, key.c_str(), &out) == ESP_OK;
nvs_close(handle);
return success;
}
}
bool Preferences::optString(const std::string& key, std::string& out) const {
nvs_handle_t handle;
if (nvs_open(namespace_, NVS_READWRITE, &handle) != ESP_OK) {
TT_LOG_E(TAG, "Failed to open namespace %s", namespace_);
return false;
} else {
size_t out_size = 256;
char* out_data = static_cast<char*>(malloc(out_size));
bool success = nvs_get_str(handle, key.c_str(), out_data, &out_size) == ESP_OK;
nvs_close(handle);
out = out_data;
free(out_data);
return success;
}
}
bool Preferences::hasBool(const std::string& key) const {
bool temp;
return optBool(key, temp);
}
bool Preferences::hasInt32(const std::string& key) const {
int32_t temp;
return optInt32(key, temp);
}
bool Preferences::hasInt64(const std::string& key) const {
int64_t temp;
return optInt64(key, temp);
}
bool Preferences::hasString(const std::string& key) const {
std::string temp;
return optString(key, temp);
}
void Preferences::putBool(const std::string& key, bool value) {
nvs_handle_t handle;
if (nvs_open(namespace_, NVS_READWRITE, &handle) == ESP_OK) {
if (nvs_set_u8(handle, key.c_str(), (uint8_t)value) != ESP_OK) {
TT_LOG_E(TAG, "Failed to write %s:%s", namespace_, key.c_str());
}
nvs_close(handle);
} else {
TT_LOG_E(TAG, "Failed to open namespace %s", namespace_);
}
}
void Preferences::putInt32(const std::string& key, int32_t value) {
nvs_handle_t handle;
if (nvs_open(namespace_, NVS_READWRITE, &handle) == ESP_OK) {
if (nvs_set_i32(handle, key.c_str(), value) != ESP_OK) {
TT_LOG_E(TAG, "Failed to write %s:%s", namespace_, key.c_str());
}
nvs_close(handle);
} else {
TT_LOG_E(TAG, "Failed to open namespace %s", namespace_);
}
}
void Preferences::putInt64(const std::string& key, int64_t value) {
nvs_handle_t handle;
if (nvs_open(namespace_, NVS_READWRITE, &handle) == ESP_OK) {
if (nvs_set_i64(handle, key.c_str(), value) != ESP_OK) {
TT_LOG_E(TAG, "Failed to write %s:%s", namespace_, key.c_str());
}
nvs_close(handle);
} else {
TT_LOG_E(TAG, "Failed to open namespace %s", namespace_);
}
}
void Preferences::putString(const std::string& key, const std::string& text) {
nvs_handle_t handle;
if (nvs_open(namespace_, NVS_READWRITE, &handle) == ESP_OK) {
nvs_set_str(handle, key.c_str(), text.c_str());
nvs_close(handle);
} else {
TT_LOG_E(TAG, "Failed to open namespace %s", namespace_);
}
}
} // namespace
#endif