mirror of
https://github.com/esphome/esphome.git
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6153bcc6ad
Co-authored-by: Paulus Schoutsen <balloob@gmail.com>
370 lines
10 KiB
C++
370 lines
10 KiB
C++
#pragma once
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#include "esphome/core/component.h"
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#include "esphome/core/defines.h"
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#include "esphome/core/automation.h"
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#include "esphome/core/helpers.h"
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#include "esphome/components/network/ip_address.h"
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#include <string>
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#ifdef USE_ESP32_FRAMEWORK_ARDUINO
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#include <esp_wifi.h>
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#include <WiFiType.h>
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#include <WiFi.h>
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#endif
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#ifdef USE_ESP8266
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#include <ESP8266WiFi.h>
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#include <ESP8266WiFiType.h>
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#if defined(USE_ESP8266) && USE_ARDUINO_VERSION_CODE < VERSION_CODE(2, 4, 0)
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extern "C" {
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#include <user_interface.h>
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};
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#endif
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#endif
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#ifdef USE_RP2040
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extern "C" {
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#include "cyw43.h"
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#include "cyw43_country.h"
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#include "pico/cyw43_arch.h"
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}
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#include <WiFi.h>
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#endif
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namespace esphome {
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namespace wifi {
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struct SavedWifiSettings {
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char ssid[33];
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char password[65];
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} PACKED; // NOLINT
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enum WiFiComponentState {
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/** Nothing has been initialized yet. Internal AP, if configured, is disabled at this point. */
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WIFI_COMPONENT_STATE_OFF = 0,
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/** WiFi is in cooldown mode because something went wrong, scanning will begin after a short period of time. */
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WIFI_COMPONENT_STATE_COOLDOWN,
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/** WiFi is in STA-only mode and currently scanning for APs. */
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WIFI_COMPONENT_STATE_STA_SCANNING,
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/** WiFi is in STA(+AP) mode and currently connecting to an AP. */
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WIFI_COMPONENT_STATE_STA_CONNECTING,
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/** WiFi is in STA(+AP) mode and currently connecting to an AP a second time.
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*
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* This is required because for some reason ESPs don't like to connect to WiFi APs directly after
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* a scan.
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* */
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WIFI_COMPONENT_STATE_STA_CONNECTING_2,
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/** WiFi is in STA(+AP) mode and successfully connected. */
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WIFI_COMPONENT_STATE_STA_CONNECTED,
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/** WiFi is in AP-only mode and internal AP is already enabled. */
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WIFI_COMPONENT_STATE_AP,
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};
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enum class WiFiSTAConnectStatus : int {
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IDLE,
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CONNECTING,
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CONNECTED,
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ERROR_NETWORK_NOT_FOUND,
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ERROR_CONNECT_FAILED,
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};
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/// Struct for setting static IPs in WiFiComponent.
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struct ManualIP {
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network::IPAddress static_ip;
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network::IPAddress gateway;
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network::IPAddress subnet;
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network::IPAddress dns1; ///< The first DNS server. 0.0.0.0 for default.
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network::IPAddress dns2; ///< The second DNS server. 0.0.0.0 for default.
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};
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#ifdef USE_WIFI_WPA2_EAP
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struct EAPAuth {
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std::string identity; // required for all auth types
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std::string username;
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std::string password;
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const char *ca_cert; // optionally verify authentication server
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// used for EAP-TLS
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const char *client_cert;
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const char *client_key;
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};
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#endif // USE_WIFI_WPA2_EAP
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using bssid_t = std::array<uint8_t, 6>;
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class WiFiAP {
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public:
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void set_ssid(const std::string &ssid);
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void set_bssid(bssid_t bssid);
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void set_bssid(optional<bssid_t> bssid);
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void set_password(const std::string &password);
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#ifdef USE_WIFI_WPA2_EAP
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void set_eap(optional<EAPAuth> eap_auth);
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#endif // USE_WIFI_WPA2_EAP
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void set_channel(optional<uint8_t> channel);
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void set_priority(float priority) { priority_ = priority; }
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void set_manual_ip(optional<ManualIP> manual_ip);
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void set_hidden(bool hidden);
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const std::string &get_ssid() const;
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const optional<bssid_t> &get_bssid() const;
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const std::string &get_password() const;
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#ifdef USE_WIFI_WPA2_EAP
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const optional<EAPAuth> &get_eap() const;
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#endif // USE_WIFI_WPA2_EAP
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const optional<uint8_t> &get_channel() const;
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float get_priority() const { return priority_; }
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const optional<ManualIP> &get_manual_ip() const;
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bool get_hidden() const;
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protected:
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std::string ssid_;
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optional<bssid_t> bssid_;
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std::string password_;
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#ifdef USE_WIFI_WPA2_EAP
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optional<EAPAuth> eap_;
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#endif // USE_WIFI_WPA2_EAP
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optional<uint8_t> channel_;
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float priority_{0};
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optional<ManualIP> manual_ip_;
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bool hidden_{false};
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};
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class WiFiScanResult {
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public:
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WiFiScanResult(const bssid_t &bssid, std::string ssid, uint8_t channel, int8_t rssi, bool with_auth, bool is_hidden);
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bool matches(const WiFiAP &config);
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bool get_matches() const;
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void set_matches(bool matches);
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const bssid_t &get_bssid() const;
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const std::string &get_ssid() const;
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uint8_t get_channel() const;
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int8_t get_rssi() const;
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bool get_with_auth() const;
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bool get_is_hidden() const;
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float get_priority() const { return priority_; }
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void set_priority(float priority) { priority_ = priority; }
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bool operator==(const WiFiScanResult &rhs) const;
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protected:
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bool matches_{false};
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bssid_t bssid_;
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std::string ssid_;
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uint8_t channel_;
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int8_t rssi_;
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bool with_auth_;
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bool is_hidden_;
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float priority_{0.0f};
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};
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struct WiFiSTAPriority {
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bssid_t bssid;
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float priority;
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};
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enum WiFiPowerSaveMode {
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WIFI_POWER_SAVE_NONE = 0,
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WIFI_POWER_SAVE_LIGHT,
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WIFI_POWER_SAVE_HIGH,
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};
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#ifdef USE_ESP_IDF
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struct IDFWiFiEvent;
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#endif
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/// This component is responsible for managing the ESP WiFi interface.
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class WiFiComponent : public Component {
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public:
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/// Construct a WiFiComponent.
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WiFiComponent();
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void set_sta(const WiFiAP &ap);
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void add_sta(const WiFiAP &ap);
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void clear_sta();
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/** Setup an Access Point that should be created if no connection to a station can be made.
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*
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* This can also be used without set_sta(). Then the AP will always be active.
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*
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* If both STA and AP are defined, then both will be enabled at startup, but if a connection to a station
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* can be made, the AP will be turned off again.
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*/
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void set_ap(const WiFiAP &ap);
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WiFiAP get_ap() { return this->ap_; }
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void start_scanning();
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void check_scanning_finished();
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void start_connecting(const WiFiAP &ap, bool two);
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void set_fast_connect(bool fast_connect);
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void set_ap_timeout(uint32_t ap_timeout) { ap_timeout_ = ap_timeout; }
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void check_connecting_finished();
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void retry_connect();
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bool can_proceed() override;
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void set_reboot_timeout(uint32_t reboot_timeout);
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bool is_connected();
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void set_power_save_mode(WiFiPowerSaveMode power_save);
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void set_output_power(float output_power) { output_power_ = output_power; }
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void save_wifi_sta(const std::string &ssid, const std::string &password);
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// ========== INTERNAL METHODS ==========
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// (In most use cases you won't need these)
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/// Setup WiFi interface.
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void setup() override;
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void dump_config() override;
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/// WIFI setup_priority.
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float get_setup_priority() const override;
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float get_loop_priority() const override;
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/// Reconnect WiFi if required.
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void loop() override;
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bool has_sta() const;
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bool has_ap() const;
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#ifdef USE_WIFI_11KV_SUPPORT
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void set_btm(bool btm);
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void set_rrm(bool rrm);
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#endif
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network::IPAddress get_ip_address();
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std::string get_use_address() const;
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void set_use_address(const std::string &use_address);
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const std::vector<WiFiScanResult> &get_scan_result() const { return scan_result_; }
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network::IPAddress wifi_soft_ap_ip();
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bool has_sta_priority(const bssid_t &bssid) {
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for (auto &it : this->sta_priorities_) {
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if (it.bssid == bssid)
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return true;
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}
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return false;
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}
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float get_sta_priority(const bssid_t bssid) {
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for (auto &it : this->sta_priorities_) {
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if (it.bssid == bssid)
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return it.priority;
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}
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return 0.0f;
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}
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void set_sta_priority(const bssid_t bssid, float priority) {
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for (auto &it : this->sta_priorities_) {
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if (it.bssid == bssid) {
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it.priority = priority;
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return;
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}
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}
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this->sta_priorities_.push_back(WiFiSTAPriority{
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.bssid = bssid,
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.priority = priority,
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});
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}
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network::IPAddress wifi_sta_ip();
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std::string wifi_ssid();
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bssid_t wifi_bssid();
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int8_t wifi_rssi();
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protected:
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static std::string format_mac_addr(const uint8_t mac[6]);
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void setup_ap_config_();
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void print_connect_params_();
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void wifi_loop_();
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bool wifi_mode_(optional<bool> sta, optional<bool> ap);
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bool wifi_sta_pre_setup_();
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bool wifi_apply_output_power_(float output_power);
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bool wifi_apply_power_save_();
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bool wifi_sta_ip_config_(optional<ManualIP> manual_ip);
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bool wifi_apply_hostname_();
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bool wifi_sta_connect_(const WiFiAP &ap);
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void wifi_pre_setup_();
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WiFiSTAConnectStatus wifi_sta_connect_status_();
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bool wifi_scan_start_();
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bool wifi_ap_ip_config_(optional<ManualIP> manual_ip);
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bool wifi_start_ap_(const WiFiAP &ap);
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bool wifi_disconnect_();
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int32_t wifi_channel_();
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network::IPAddress wifi_subnet_mask_();
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network::IPAddress wifi_gateway_ip_();
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network::IPAddress wifi_dns_ip_(int num);
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bool is_captive_portal_active_();
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bool is_esp32_improv_active_();
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#ifdef USE_ESP8266
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static void wifi_event_callback(System_Event_t *event);
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void wifi_scan_done_callback_(void *arg, STATUS status);
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static void s_wifi_scan_done_callback(void *arg, STATUS status);
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#endif
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#ifdef USE_ESP32_FRAMEWORK_ARDUINO
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#if ESP_IDF_VERSION_MAJOR >= 4
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void wifi_event_callback_(arduino_event_id_t event, arduino_event_info_t info);
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#else
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void wifi_event_callback_(system_event_id_t event, system_event_info_t info);
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#endif
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void wifi_scan_done_callback_();
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#endif
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#ifdef USE_ESP_IDF
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void wifi_process_event_(IDFWiFiEvent *data);
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#endif
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#ifdef USE_RP2040
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static int s_wifi_scan_result(void *env, const cyw43_ev_scan_result_t *result);
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void wifi_scan_result(void *env, const cyw43_ev_scan_result_t *result);
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#endif
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std::string use_address_;
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std::vector<WiFiAP> sta_;
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std::vector<WiFiSTAPriority> sta_priorities_;
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WiFiAP selected_ap_;
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bool fast_connect_{false};
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bool has_ap_{false};
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WiFiAP ap_;
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WiFiComponentState state_{WIFI_COMPONENT_STATE_OFF};
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uint32_t action_started_;
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uint8_t num_retried_{0};
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uint32_t last_connected_{0};
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uint32_t reboot_timeout_{};
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uint32_t ap_timeout_{};
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WiFiPowerSaveMode power_save_{WIFI_POWER_SAVE_NONE};
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bool error_from_callback_{false};
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std::vector<WiFiScanResult> scan_result_;
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bool scan_done_{false};
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bool ap_setup_{false};
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optional<float> output_power_;
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ESPPreferenceObject pref_;
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bool has_saved_wifi_settings_{false};
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#ifdef USE_WIFI_11KV_SUPPORT
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bool btm_{false};
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bool rrm_{false};
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#endif
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};
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extern WiFiComponent *global_wifi_component; // NOLINT(cppcoreguidelines-avoid-non-const-global-variables)
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template<typename... Ts> class WiFiConnectedCondition : public Condition<Ts...> {
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public:
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bool check(Ts... x) override;
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};
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template<typename... Ts> bool WiFiConnectedCondition<Ts...>::check(Ts... x) {
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return global_wifi_component->is_connected();
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}
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} // namespace wifi
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} // namespace esphome
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