2026-07-09 21:03:38 +02:00

337 lines
11 KiB
C++

#ifdef ESP_PLATFORM
#include <sdkconfig.h>
#endif
#if defined(CONFIG_SOC_WIFI_SUPPORTED) || defined(CONFIG_SLAVE_SOC_WIFI_SUPPORTED)
#include <esp_wifi.h> // for WIFI_TASK_CORE_ID
#include <tactility/concurrent/dispatcher.h>
#include <tactility/concurrent/event_group.h>
#include <tactility/concurrent/thread.h>
#include <tactility/device.h>
#include <tactility/driver.h>
#include <tactility/drivers/esp32_wifi_pinned.h>
#include <tactility/drivers/wifi.h>
#include <tactility/log.h>
#include <cstring>
#include <functional>
#include <new>
#define TAG "esp32_wifi_pinned"
namespace {
constexpr uint32_t CALL_DONE_FLAG = 1U;
constexpr configSTACK_DEPTH_TYPE PINNED_THREAD_STACK_SIZE = 4096;
// This driver wraps "espressif,esp32-wifi" (created as a child device) and
// marshals every call that mutates WiFi state onto a dedicated task pinned to
// WIFI_TASK_CORE_ID. ESP-IDF's WiFi driver misbehaves (hangs waiting on its
// internal task semaphore, tripping the watchdog) when those calls originate
// from an arbitrary caller task/core, so this driver guarantees the correct
// core regardless of who calls the WifiApi.
struct Esp32WifiPinnedCtx {
Device* device = nullptr;
Device* child = nullptr;
Thread* thread = nullptr;
DispatcherHandle_t dispatcher = nullptr;
volatile bool running = false;
};
#define GET_CTX(device) (static_cast<Esp32WifiPinnedCtx*>(device_get_driver_data(device)))
struct MarshalledCall {
const std::function<void()>* work;
EventGroupHandle_t done;
};
void marshal_trampoline(void* context) {
auto* call = static_cast<MarshalledCall*>(context);
(*call->work)();
event_group_set(call->done, CALL_DONE_FLAG);
}
/** Runs `work` synchronously on the pinned WiFi task, blocking the caller until it completes. */
error_t run_on_pinned_thread(Esp32WifiPinnedCtx* ctx, const std::function<void()>& work) {
if (ctx == nullptr || ctx->thread == nullptr) {
return ERROR_INVALID_STATE;
}
// Avoid deadlocking when already running on the pinned thread (e.g. during device_start()).
if (thread_get_current() == ctx->thread) {
work();
return ERROR_NONE;
}
MarshalledCall call = { .work = &work, .done = nullptr };
event_group_construct(&call.done);
error_t err = dispatcher_dispatch(ctx->dispatcher, &call, marshal_trampoline);
if (err != ERROR_NONE) {
event_group_destruct(&call.done);
return err;
}
event_group_wait(call.done, CALL_DONE_FLAG, false, true, nullptr, portMAX_DELAY);
event_group_destruct(&call.done);
return ERROR_NONE;
}
void request_stop(void* context) {
static_cast<Esp32WifiPinnedCtx*>(context)->running = false;
}
int32_t pinned_thread_main(void* context) {
auto* ctx = static_cast<Esp32WifiPinnedCtx*>(context);
while (ctx->running) {
dispatcher_consume(ctx->dispatcher);
}
return 0;
}
// ---- Work that must run on the pinned thread (see start_device/stop_device) ----
error_t start_child_work(Esp32WifiPinnedCtx* ctx) {
ctx->child = new(std::nothrow) Device();
if (ctx->child == nullptr) {
return ERROR_OUT_OF_MEMORY;
}
std::memset(ctx->child, 0, sizeof(Device));
ctx->child->parent = ctx->device;
ctx->child->name = ctx->device->name;
error_t err = device_construct_add_start(ctx->child, "espressif,esp32-wifi");
if (err != ERROR_NONE) {
LOG_E(TAG, "%s: failed to start child wifi device: %s", ctx->device->name, error_to_string(err));
delete ctx->child;
ctx->child = nullptr;
}
return err;
}
void stop_child_work(Esp32WifiPinnedCtx* ctx) {
if (ctx->child == nullptr) {
return;
}
if (device_is_ready(ctx->child)) {
device_stop(ctx->child);
}
if (device_is_added(ctx->child)) {
device_remove(ctx->child);
}
device_destruct(ctx->child);
delete ctx->child;
ctx->child = nullptr;
}
// ---- WifiApi: read-only calls forward straight to the child, no core affinity needed ----
error_t api_get_radio_state(Device* device, WifiRadioState* state) {
auto* ctx = GET_CTX(device);
if (ctx == nullptr || ctx->child == nullptr) return ERROR_INVALID_STATE;
return wifi_get_radio_state(ctx->child, state);
}
error_t api_get_station_state(Device* device, WifiStationState* state) {
auto* ctx = GET_CTX(device);
if (ctx == nullptr || ctx->child == nullptr) return ERROR_INVALID_STATE;
return wifi_get_station_state(ctx->child, state);
}
error_t api_get_access_point_state(Device* device, WifiAccessPointState* state) {
auto* ctx = GET_CTX(device);
if (ctx == nullptr || ctx->child == nullptr) return ERROR_INVALID_STATE;
return wifi_get_access_point_state(ctx->child, state);
}
bool api_is_scanning(Device* device) {
auto* ctx = GET_CTX(device);
if (ctx == nullptr || ctx->child == nullptr) return false;
return wifi_is_scanning(ctx->child);
}
error_t api_get_scan_results(Device* device, WifiApRecord* results, size_t* num_results) {
auto* ctx = GET_CTX(device);
if (ctx == nullptr || ctx->child == nullptr) return ERROR_INVALID_STATE;
return wifi_get_scan_results(ctx->child, results, num_results);
}
error_t api_station_get_ipv4_address(Device* device, char* ipv4) {
auto* ctx = GET_CTX(device);
if (ctx == nullptr || ctx->child == nullptr) return ERROR_INVALID_STATE;
return wifi_station_get_ipv4_address(ctx->child, ipv4);
}
error_t api_station_get_target_ssid(Device* device, char* ssid) {
auto* ctx = GET_CTX(device);
if (ctx == nullptr || ctx->child == nullptr) return ERROR_INVALID_STATE;
return wifi_station_get_target_ssid(ctx->child, ssid);
}
error_t api_station_get_rssi(Device* device, int32_t* rssi) {
auto* ctx = GET_CTX(device);
if (ctx == nullptr || ctx->child == nullptr) return ERROR_INVALID_STATE;
return wifi_station_get_rssi(ctx->child, rssi);
}
error_t api_add_event_callback(Device* device, void* callback_context, WifiEventCallback callback) {
auto* ctx = GET_CTX(device);
if (ctx == nullptr || ctx->child == nullptr) return ERROR_INVALID_STATE;
return wifi_add_event_callback(ctx->child, callback_context, callback);
}
error_t api_remove_event_callback(Device* device, WifiEventCallback callback) {
auto* ctx = GET_CTX(device);
if (ctx == nullptr || ctx->child == nullptr) return ERROR_INVALID_STATE;
return wifi_remove_event_callback(ctx->child, callback);
}
// ---- WifiApi: state-changing calls are marshalled onto the pinned WiFi task ----
error_t api_scan(Device* device) {
auto* ctx = GET_CTX(device);
if (ctx == nullptr || ctx->child == nullptr) return ERROR_INVALID_STATE;
error_t result = ERROR_NONE;
Device* child = ctx->child;
error_t err = run_on_pinned_thread(ctx, [child, &result]() {
result = wifi_scan(child);
});
return err != ERROR_NONE ? err : result;
}
error_t api_station_connect(Device* device, const char* ssid, const char* password, int32_t channel) {
auto* ctx = GET_CTX(device);
if (ctx == nullptr || ctx->child == nullptr) return ERROR_INVALID_STATE;
error_t result = ERROR_NONE;
Device* child = ctx->child;
error_t err = run_on_pinned_thread(ctx, [child, ssid, password, channel, &result]() {
result = wifi_station_connect(child, ssid, password, channel);
});
return err != ERROR_NONE ? err : result;
}
error_t api_station_disconnect(Device* device) {
auto* ctx = GET_CTX(device);
if (ctx == nullptr || ctx->child == nullptr) return ERROR_INVALID_STATE;
error_t result = ERROR_NONE;
Device* child = ctx->child;
error_t err = run_on_pinned_thread(ctx, [child, &result]() {
result = wifi_station_disconnect(child);
});
return err != ERROR_NONE ? err : result;
}
const WifiApi esp32_wifi_pinned_api = {
.get_radio_state = api_get_radio_state,
.get_station_state = api_get_station_state,
.get_access_point_state = api_get_access_point_state,
.is_scanning = api_is_scanning,
.scan = api_scan,
.get_scan_results = api_get_scan_results,
.station_get_ipv4_address = api_station_get_ipv4_address,
.station_get_target_ssid = api_station_get_target_ssid,
.station_connect = api_station_connect,
.station_disconnect = api_station_disconnect,
.station_get_rssi = api_station_get_rssi,
.add_event_callback = api_add_event_callback,
.remove_event_callback = api_remove_event_callback
};
// ---- Driver lifecycle ----
// Starting/stopping the child (which brings the ESP-IDF WiFi stack up/down)
// also happens on the pinned thread, since esp_wifi_init/start/stop/deinit
// are subject to the same core-affinity requirement as the state-changing
// WifiApi calls above.
error_t start_device(Device* device) {
auto* ctx = new(std::nothrow) Esp32WifiPinnedCtx();
if (ctx == nullptr) return ERROR_OUT_OF_MEMORY;
ctx->device = device;
device_set_driver_data(device, ctx);
ctx->dispatcher = dispatcher_alloc();
ctx->running = true;
ctx->thread = thread_alloc_full(
"esp32_wifi_pinned",
PINNED_THREAD_STACK_SIZE,
pinned_thread_main,
ctx,
WIFI_TASK_CORE_ID
);
if (ctx->thread == nullptr || thread_start(ctx->thread) != ERROR_NONE) {
LOG_E(TAG, "%s: failed to start pinned wifi task", device->name);
if (ctx->thread != nullptr) thread_free(ctx->thread);
dispatcher_free(ctx->dispatcher);
device_set_driver_data(device, nullptr);
delete ctx;
return ERROR_RESOURCE;
}
error_t result = ERROR_NONE;
error_t err = run_on_pinned_thread(ctx, [ctx, &result]() {
result = start_child_work(ctx);
});
if (err == ERROR_NONE) {
err = result;
}
if (err != ERROR_NONE) {
dispatcher_dispatch(ctx->dispatcher, ctx, request_stop);
thread_join(ctx->thread, portMAX_DELAY, 10);
thread_free(ctx->thread);
dispatcher_free(ctx->dispatcher);
device_set_driver_data(device, nullptr);
delete ctx;
return err;
}
return ERROR_NONE;
}
error_t stop_device(Device* device) {
auto* ctx = GET_CTX(device);
if (ctx == nullptr) return ERROR_NONE;
error_t err = run_on_pinned_thread(ctx, [ctx]() {
stop_child_work(ctx);
});
if (err != ERROR_NONE) {
LOG_E(TAG, "%s: failed to stop child wifi device on pinned task: %s", device->name, error_to_string(err));
}
dispatcher_dispatch(ctx->dispatcher, ctx, request_stop);
thread_join(ctx->thread, portMAX_DELAY, 10);
thread_free(ctx->thread);
dispatcher_free(ctx->dispatcher);
device_set_driver_data(device, nullptr);
delete ctx;
return err;
}
} // namespace
extern "C" {
extern Module platform_esp32_module;
Driver esp32_wifi_pinned_driver = {
.name = "esp32_wifi_pinned",
.compatible = (const char*[]) { "espressif,esp32-wifi-pinned", nullptr },
.start_device = start_device,
.stop_device = stop_device,
.api = (const void*)&esp32_wifi_pinned_api,
.device_type = &WIFI_TYPE,
.owner = &platform_esp32_module,
.internal = nullptr
};
} // extern "C"
#endif // CONFIG_SOC_WIFI_SUPPORTED or CONFIG_SLAVE_SOC_WIFI_SUPPORTED