源代码管理 / 远程仓库(本次核心): - 新增 GitHub 私有仓库 Leo-z8/OrangePi_CM5_Project(镜像 Android 13 SDK 关键路径) - 本地 Git 仓库首次推送成功,远端 commit: c79995a30 - 白名单 .gitignore 追加通配符:device/rockchip/*/*/preinstall/*.apk - 2 个 120MB camera360.apk 从 Git 历史排除(超 GitHub 100MB 限制,需另存备份) - 认证方式切换为 SSH ed25519(ssh.github.com:443),永久免密,不依赖 Clash - PAT 一次性推送后已撤销,凭证文件已清理 文档更新(Tailscale + SSH 远程开发操作指南 → v3.1): - 4.5 新增 macOS SMB 挂载方案,并完整对比 Remote-SSH 在驱动开发场景下的差异 - 8.7 改写 GitHub 推送章节,SSH 为主推荐方案,HTTPS+PAT 降为应急备选 - 8.10 新增首次推送踩坑实录:100MB 单文件限制、git rev-list 去重陷阱、rwnd 瓶颈 - 8.11 新增实测数据:.git 774MB / 96,600 文件 / SSH 4-6 MiB/s 稳定无抖动 - 8.9 备份策略明确列出需另存的大文件清单 ESP32 HOLOMAIN 代码(02_HOLOMAIN_香橙派CM5开发板代码.ino): - processCommand 响应统一走 Serial(USB CDC),不再回写 SerialLinux(UART0) - 修复 Android 高频灯光命令占满 UART0 TX 导致 SORC_xxx/SO_BTx 刷卡数据延迟/丢失的问题 Co-Authored-By: Claude Opus 4.7 (1M context) <noreply@anthropic.com>
910 lines
31 KiB
C++
910 lines
31 KiB
C++
#include <SPI.h>
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#include <MFRC522.h>
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#include <FastLED.h>
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#include <Arduino.h>
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#include <driver/ledc.h>
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// RFID引脚定义
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#define RFID_RST_PIN 14 // RC522 复位引脚
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#define RFID_SS_PIN 10 // RC522 CS/SDA引脚(SPI和I2C共用)
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#define RFID_MISO_PIN 13 // MISO 引脚
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#define RFID_MOSI_PIN 12 // MOSI 引脚
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#define RFID_SCK_PIN 11 // SCK 引脚
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// LED定义
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#define LED_PIN_1 4 // 1颗WS2812灯珠引脚
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#define LED_PIN_2 5 // 160颗WS2812灯带引脚(控制灯珠颜色)
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#define LED_PIN_3 48 // 1颗WS2812灯珠引脚(新增)
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#define LED_COUNT_1 1 // 1颗灯珠
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#define LED_COUNT_2 186 // 160颗灯带
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#define LED_COUNT_3 1 // 1颗灯珠(新增)
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// PWM定义
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#define PWM_PIN 6 // PWM输出(控制输出PWM功率)
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#define PWM_CHANNEL 0 // PWM通道
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#define PWM_FREQ 1000 // PWM频率(Hz)
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#define PWM_RESOLUTION 10 // PWM分辨率(位)
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#define DEFAULT_DUTY 819 // 默认占空比(80%)
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// 按钮和输入引脚定义
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#define BTN0_PIN 15 // 按钮0引脚
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#define WAKEUP1_PIN 16 // 唤醒引脚1
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#define BTN1_PIN 17 // 按钮1引脚
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#define BTN2_PIN 18 // 按钮2引脚
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// 任务句柄
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TaskHandle_t TaskRFID, TaskLED1, TaskLED2, TaskLED3, TaskPWM, TaskBTN0, TaskWAKEUP1, TaskBTN1, TaskBTN2;
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// 双串口架构:
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// - Serial = USB-Serial-JTAG (USB2 口),连 Windows 做调试日志
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// - SerialLinux = UART0 (CH343/USB1 口),连 Android 开发板收发业务数据
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// UART0 默认引脚:TX=GPIO43、RX=GPIO44(对应 CH343P 的 RXD/TXD)
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//
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// ⚠️ 重要:必须用 #define 别名引用 Arduino core 自带的 Serial0 对象
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// 不能自己创建 HardwareSerial(0),否则 Arduino core 的 UART0 RX 中断会把
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// 数据放进 Serial0 的 ring buffer,而自建对象的 available() 读不到 → 命令无响应
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#define SerialLinux Serial0
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// Serial 输出互斥锁:防止多任务并发写串口导致数据交错/截断
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SemaphoreHandle_t serialMutex = NULL;
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// 业务数据输出:只发到 UART0 (给 Android 开发板)
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// 调用方:RFID 任务发 SORC_xxx,按键任务发 SO_xxx
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// 为什么不发 Serial (USB CDC):
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// 1. 生产场景只连 Android,Windows 不连,Serial 写入+flush 在无 host 时可能阻塞
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// 2. 阻塞会拖慢 RFID 响应(之前刷卡不灵敏的潜在原因之一)
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// 3. UART0 是广播式通讯,无 host 也能正常写入 FIFO,不阻塞
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// 互斥锁保留:虽然只发一个串口,但防止多任务并发调用时缓冲混乱
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void serialPrintlnSafe(const String& msg) {
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if (serialMutex && xSemaphoreTake(serialMutex, pdMS_TO_TICKS(100)) == pdTRUE) {
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SerialLinux.println(msg);
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SerialLinux.flush(); // UART0 硬件 FIFO 128 字节,115200 波特率约 1ms 完成
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xSemaphoreGive(serialMutex);
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} else {
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// 降级路径:拿不到锁(极少发生)
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SerialLinux.println(msg);
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}
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}
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// 全局变量
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MFRC522 rfid(RFID_SS_PIN, RFID_RST_PIN); // 创建RFID实例
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CRGB leds1[LED_COUNT_1]; // 1颗灯珠数组
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CRGB leds2[LED_COUNT_2]; // 160颗灯带数组
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CRGB leds3[LED_COUNT_3]; // 1颗灯珠数组(新增)
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CRGB frozenLeds2[LED_COUNT_2]; // 保存冻结时的颜色数据(模式5专用)
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uint8_t frozenBrightness = 255; // 保存冻结时的亮度值,用于计算相对亮度比例
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String lastCardData = ""; // 上次读取的RFID卡数据
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int ledMode = 1; // 灯带模式,默认为1(白色)
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int pwmDuty = DEFAULT_DUTY; // PWM占空比
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bool btn0State = HIGH; // 按钮0状态
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bool btn0LongPress = false; // 按钮0长按标志
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bool wakeup1State = LOW; // 唤醒引脚1状态
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bool btn1State = LOW; // 按钮1状态
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bool btn2State = LOW; // 按钮2状态
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int singleLedMode = 7; // 单颗LED模式,默认为7(白色)
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// 灯带动画全局变量
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static uint8_t rainbowHue = 0;
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static int trainPos = 0;
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static unsigned long lastUpdate = 0;
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static const int TRAIN_LENGTH = 16; // 火车灯长度
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static int trainPhase = 0; // 火车阶段:0-正向出站,1-正向前进,2-正向进站,3-反向出站,4-反向前进,5-反向进站
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static const int VIRTUAL_LED_COUNT = LED_COUNT_2 + TRAIN_LENGTH; // 虚拟灯带长度
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// LED亮度线性映射表 (0~100 → 26~255) - 最小阈值10%
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// 用于将用户输入的0-100%亮度值映射到实际的PWM值
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// 避免过低亮度导致LED完全不可见的问题
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const uint8_t brightnessMapLinear[101] = {
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0, 28, 31, 33, 36, 38, 41, 43, 46, 48, // 0-9
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51, 54, 56, 59, 61, 64, 66, 69, 71, 74, // 10-19
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77, 79, 82, 84, 87, 89, 92, 94, 97, 99, // 20-29
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102, 105, 107, 110, 112, 115, 117, 120, 122, 125, // 30-39
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128, 130, 133, 135, 138, 140, 143, 145, 148, 150, // 40-49
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153, 156, 158, 161, 163, 166, 168, 171, 173, 176, // 50-59
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179, 181, 184, 186, 189, 191, 194, 196, 199, 201, // 60-69
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204, 207, 209, 212, 214, 217, 219, 222, 224, 227, // 70-79
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230, 232, 235, 237, 240, 242, 245, 247, 250, 252, // 80-89
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253, 254, 254, 254, 255, 255, 255, 255, 255, 255, // 90-99
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255 // 100%
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};
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// 全局选择映射表
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const uint8_t* brightnessMap = brightnessMapLinear;
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// LED2亮度控制(0-255)
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// 用于控制LED灯带的整体亮度,影响模式1、2、4和5
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// 模式3使用独立的呼吸算法,基于此值计算动态亮度范围
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uint8_t led2Brightness = 102; // 默认40%左右(102/255≈40%)
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// 单颗LED颜色数组
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CRGB singleLedColors[8] = {
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CRGB::Black, // 0: 熄灭
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CRGB::Blue, // 1: 蓝色
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CRGB::Green, // 2: 绿色
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CRGB::Orange, // 3: 橙色
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CRGB::Red, // 4: 红色
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CRGB::Purple, // 5: 紫色
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CRGB::Yellow, // 6: 黄色
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CRGB::White // 7: 白色
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};
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// RC522 硬件复位(运行时调用,不依赖 MFRC522 库的 RST 自动判断)
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// 用于 setup 初始化和运行时检测到 RC522 异常时恢复
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void rc522HardResetRuntime() {
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pinMode(RFID_RST_PIN, OUTPUT);
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digitalWrite(RFID_RST_PIN, LOW);
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delay(10);
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digitalWrite(RFID_RST_PIN, HIGH);
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delay(50);
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}
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// RFID读取任务
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void TaskRFIDcode(void* pvParameters) {
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// 运行时健康检查:每 5 秒读一次 VersionReg,检测到异常自动恢复
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// 防止运行过程中 RC522 因电源波动、WS2812 大电流干扰等原因进入异常状态
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static uint32_t lastHealthCheck = 0;
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const uint32_t HEALTH_CHECK_INTERVAL_MS = 5000;
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for (;;) {
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// 运行时健康检查(和下面的轮询并行)
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uint32_t now = millis();
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if (now - lastHealthCheck > HEALTH_CHECK_INTERVAL_MS) {
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lastHealthCheck = now;
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byte version = rfid.PCD_ReadRegister(MFRC522::VersionReg);
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if (version != 0x91 && version != 0x92) {
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// 通讯异常,自动恢复
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Serial.print("RC522 health check failed (VersionReg=0x");
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Serial.print(version, HEX);
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Serial.println("), reinitializing...");
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rc522HardResetRuntime();
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rfid.PCD_Init();
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}
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}
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// 寻找新卡片
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if (!rfid.PICC_IsNewCardPresent()) {
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delay(10);
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continue;
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}
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// 验证NUID是否可读
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if (!rfid.PICC_ReadCardSerial()) {
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delay(10);
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continue;
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}
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// 读取卡片数据(用户数据区)
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String cardData = "";
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MFRC522::MIFARE_Key key;
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// 准备认证密钥
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for (byte i = 0; i < 6; i++) key.keyByte[i] = 0xFF;
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// 选择卡片
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MFRC522::StatusCode status;
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status = rfid.PCD_Authenticate(MFRC522::PICC_CMD_MF_AUTH_KEY_A, 4, &key, &(rfid.uid));
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if (status != MFRC522::STATUS_OK) {
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// 调试日志用普通 Serial.println:失败频率较高时,避免 flush 阻塞拖慢 RFID 响应
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// 偶尔截断可接受(Linux 端用正则 ^SORC_HA\d+$ 过滤业务数据即可)
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Serial.println(String("Authentication failed: ") + rfid.GetStatusCodeName(status));
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rfid.PICC_HaltA();
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rfid.PCD_StopCrypto1();
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delay(30); // 从 100ms 降到 30ms,提升刷卡响应速度
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continue;
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}
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// 读取数据块
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byte buffer[18];
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byte size = sizeof(buffer);
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status = rfid.MIFARE_Read(4, buffer, &size);
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if (status != MFRC522::STATUS_OK) {
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Serial.println(String("Reading failed: ") + rfid.GetStatusCodeName(status));
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rfid.PICC_HaltA();
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rfid.PCD_StopCrypto1();
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delay(30); // 从 100ms 降到 30ms
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continue;
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}
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// 转换为ASCII字符串
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for (byte i = 0; i < 16; i++) {
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if (buffer[i] >= 32 && buffer[i] <= 126) { // 可打印ASCII字符
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cardData += (char)buffer[i];
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}
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}
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// 移除空白字符
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cardData.trim();
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// 卡片数据格式校验:规则 "HA" + 阿拉伯数字
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// 过滤掉卡片读取异常或数据损坏的情况,避免发送无效数据给 Linux
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auto isValidCardData = [](const String& d) -> bool {
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if (d.length() < 3) return false; // 至少 "HA" + 1 位数字
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if (!d.startsWith("HA")) return false; // 必须以 HA 开头
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for (size_t i = 2; i < d.length(); i++) {
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if (!isdigit(d[i])) return false; // HA 后面必须全是数字
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}
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return true;
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};
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// 3 秒去重窗口:同一张卡 3 秒内只发送一次,超过后允许重发
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// 切换到不同卡立即发送
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static String lastSentCard = "";
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static unsigned long lastSentTime = 0;
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const unsigned long DUPLICATE_WINDOW_MS = 3000;
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if (!cardData.isEmpty() && isValidCardData(cardData)) {
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unsigned long now = millis();
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bool isDuplicate = (cardData == lastSentCard) && (now - lastSentTime < DUPLICATE_WINDOW_MS);
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if (!isDuplicate) {
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serialPrintlnSafe("SORC_" + cardData);
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lastSentCard = cardData;
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lastSentTime = now;
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}
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}
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// 使放置在读卡区的IC卡进入休眠状态,不再重复读卡
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rfid.PICC_HaltA();
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// 停止加密PCD
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rfid.PCD_StopCrypto1();
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delay(100);
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}
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}
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// 注意:以下两个函数已被TaskLEDUnifiedCode替代,保留仅供参考
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// 实际运行中不会被调用,因为setup()中没有创建对应的任务
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// LED1控制任务(已废弃,由TaskLEDUnifiedCode统一处理)
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void TaskLED1code(void* pvParameters) {
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// 此函数已被废弃,不再使用
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// LED1的控制已集成到TaskLEDUnifiedCode中
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vTaskDelete(NULL); // 如果意外创建了此任务,立即删除
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}
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// LED3控制任务(已废弃,由TaskLEDUnifiedCode统一处理)
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void TaskLED3code(void* pvParameters) {
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// 此函数已被废弃,不再使用
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// LED3的控制已集成到TaskLEDUnifiedCode中
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vTaskDelete(NULL); // 如果意外创建了此任务,立即删除
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}
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// PWM控制任务
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void TaskPWMcode(void* pvParameters) {
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for (;;) {
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// 设置PWM占空比
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ledc_set_duty(LEDC_LOW_SPEED_MODE, (ledc_channel_t)PWM_CHANNEL, pwmDuty);
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ledc_update_duty(LEDC_LOW_SPEED_MODE, (ledc_channel_t)PWM_CHANNEL);
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delay(100);
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}
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}
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// 按钮0检测任务
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void TaskBTN0code(void* pvParameters) {
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static unsigned long pressStartTime = 0;
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// 首次进入任务时读取实际电平作为初始值,避免上电时 GPIO 浮空触发虚假边沿事件
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bool lastState = digitalRead(BTN0_PIN);
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btn0State = lastState;
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for (;;) {
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bool currentState = digitalRead(BTN0_PIN);
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// 检测下降沿(按下)
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if (lastState == HIGH && currentState == LOW) {
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pressStartTime = millis();
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btn0State = LOW;
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serialPrintlnSafe("SO_BT0_HIGH");
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btn0LongPress = false;
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}
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// 检测上升沿(释放)
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else if (lastState == LOW && currentState == HIGH) {
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btn0State = HIGH;
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serialPrintlnSafe("SO_BT0_LOW");
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btn0LongPress = false;
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}
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// 检测长按
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else if (currentState == LOW && millis() - pressStartTime >= 2000 && !btn0LongPress) {
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btn0LongPress = true;
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serialPrintlnSafe("SO_BT0_HIGHL");
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}
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lastState = currentState;
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delay(10);
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}
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}
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// WAKEUP1检测任务
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void TaskWAKEUP1code(void* pvParameters) {
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// 首次进入任务时读取实际电平作为初始值,避免上电时 GPIO 浮空触发虚假边沿事件
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bool lastState = digitalRead(WAKEUP1_PIN);
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wakeup1State = lastState;
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for (;;) {
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bool currentState = digitalRead(WAKEUP1_PIN);
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// 检测上升沿
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if (lastState == LOW && currentState == HIGH) {
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wakeup1State = HIGH;
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serialPrintlnSafe("SO_WAKEUP1");
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}
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// 检测下降沿
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else if (lastState == HIGH && currentState == LOW) {
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wakeup1State = LOW;
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serialPrintlnSafe("SO_WAKEUP0");
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}
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lastState = currentState;
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delay(10);
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}
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}
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// 按钮1检测任务
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void TaskBTN1code(void* pvParameters) {
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// 首次进入任务时读取实际电平作为初始值,避免上电时 GPIO 浮空触发虚假边沿事件
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bool lastState = digitalRead(BTN1_PIN);
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||
btn1State = lastState;
|
||
|
||
for (;;) {
|
||
bool currentState = digitalRead(BTN1_PIN);
|
||
|
||
// 检测上升沿
|
||
if (lastState == LOW && currentState == HIGH) {
|
||
btn1State = HIGH;
|
||
serialPrintlnSafe("SO_BT1_HIGH");
|
||
}
|
||
// 检测下降沿
|
||
else if (lastState == HIGH && currentState == LOW) {
|
||
btn1State = LOW;
|
||
serialPrintlnSafe("SO_BT1_LOW");
|
||
}
|
||
|
||
lastState = currentState;
|
||
delay(10);
|
||
}
|
||
}
|
||
|
||
// 按钮2检测任务
|
||
void TaskBTN2code(void* pvParameters) {
|
||
// 首次进入任务时读取实际电平作为初始值,避免上电时 GPIO 浮空触发虚假边沿事件
|
||
bool lastState = digitalRead(BTN2_PIN);
|
||
btn2State = lastState;
|
||
|
||
for (;;) {
|
||
bool currentState = digitalRead(BTN2_PIN);
|
||
|
||
// 检测上升沿
|
||
if (lastState == LOW && currentState == HIGH) {
|
||
btn2State = HIGH;
|
||
serialPrintlnSafe("SO_BT2_HIGH");
|
||
}
|
||
// 检测下降沿
|
||
else if (lastState == HIGH && currentState == LOW) {
|
||
btn2State = LOW;
|
||
serialPrintlnSafe("SO_BT2_LOW");
|
||
}
|
||
|
||
lastState = currentState;
|
||
delay(10);
|
||
}
|
||
}
|
||
|
||
// 处理单条完整命令
|
||
// 响应统一发到 Serial (USB CDC / Windows 调试口),不回发给 SerialLinux (Android)
|
||
// 原因:Android 高频发灯光命令(音乐律动)时,若每条命令都回响应到 UART0 TX,
|
||
// 会堵塞业务数据 SORC_xxx / SO_BTx 的发送,导致刷卡后 Android 收到延迟甚至丢失
|
||
// 参数 src 仅用于保留调用兼容性,响应不再写入 src
|
||
void processCommand(const String& command, Stream& /*src*/) {
|
||
Stream& resp = Serial; // 所有命令响应只发 Windows 调试口
|
||
if (command.startsWith("MO_LED_")) {
|
||
String modeStr = command.substring(7);
|
||
int newMode = modeStr.toInt();
|
||
if (newMode >= 0 && newMode <= 7) {
|
||
singleLedMode = newMode;
|
||
resp.print("Single LED set to mode: ");
|
||
resp.println(newMode);
|
||
} else {
|
||
resp.println("Invalid single LED mode command");
|
||
}
|
||
} else if (command.startsWith("MO_LEDN_")) {
|
||
String modeStr = command.substring(8);
|
||
int newMode = modeStr.toInt();
|
||
if (newMode >= 0 && newMode <= 5) {
|
||
if (led2Brightness == 0) {
|
||
resp.println("当前亮度为0,请先将亮度调整至0以上再切换显示模式!");
|
||
} else {
|
||
ledMode = newMode;
|
||
if (newMode == 4) {
|
||
trainPos = -TRAIN_LENGTH;
|
||
trainPhase = 0;
|
||
rainbowHue = random8();
|
||
}
|
||
if (newMode == 5) {
|
||
memcpy(frozenLeds2, leds2, sizeof(leds2));
|
||
frozenBrightness = led2Brightness;
|
||
}
|
||
resp.print("LED strip set to mode: ");
|
||
resp.println(newMode);
|
||
}
|
||
} else {
|
||
resp.println("Invalid LED strip mode command");
|
||
}
|
||
} else if (command.startsWith("MO_PWM_")) {
|
||
String dutyStr = command.substring(7);
|
||
int newDuty = dutyStr.toInt();
|
||
if (newDuty == 1) {
|
||
pwmDuty = 1023;
|
||
} else if (newDuty == 0 || newDuty == 20 || newDuty == 40 || newDuty == 60 || newDuty == 80) {
|
||
pwmDuty = (newDuty * 1023) / 100;
|
||
} else {
|
||
resp.println("Invalid PWM command");
|
||
}
|
||
resp.print("PWM set to: ");
|
||
resp.print((pwmDuty * 100) / 1023);
|
||
resp.println("%");
|
||
} else if (command.startsWith("MO_BRI_")) {
|
||
String levelStr = command.substring(7);
|
||
levelStr.trim();
|
||
if (levelStr.length() == 0) {
|
||
resp.println("错误: 缺少亮度值");
|
||
return;
|
||
}
|
||
bool isNumeric = true;
|
||
for (char c : levelStr) {
|
||
if (!isdigit(c)) { isNumeric = false; break; }
|
||
}
|
||
if (!isNumeric) {
|
||
resp.println("错误: 亮度值必须为整数");
|
||
return;
|
||
}
|
||
int level = levelStr.toInt();
|
||
if (level >= 0 && level <= 100) {
|
||
led2Brightness = brightnessMap[level];
|
||
resp.print("LED亮度: ");
|
||
resp.print(level);
|
||
resp.println("%");
|
||
} else {
|
||
resp.println("错误: 亮度值需在0-100之间");
|
||
}
|
||
} else if (command == "RESET") {
|
||
// 软复位:响应同时发到两个串口(Windows 和 Android 都能看到重启日志)
|
||
Serial.println("System resetting...");
|
||
SerialLinux.println("System resetting...");
|
||
Serial.flush();
|
||
SerialLinux.flush();
|
||
delay(100);
|
||
ESP.restart();
|
||
}
|
||
}
|
||
|
||
// 从指定流读取命令字节,累积到完整一行后交给 processCommand 处理
|
||
// 每个流需要独立的命令缓冲区(通过引用传入 static 变量保持状态)
|
||
void handleCommandFromStream(Stream& src, String& cmdBuf) {
|
||
while (src.available()) {
|
||
// 命令长度保护:防止恶意或异常数据撑爆内存
|
||
if (cmdBuf.length() > 64) {
|
||
src.println("错误: 命令过长(最大64字符)");
|
||
cmdBuf = "";
|
||
while (src.available()) src.read();
|
||
return;
|
||
}
|
||
|
||
char c = src.read();
|
||
if (c == '\n') {
|
||
cmdBuf.trim(); // 去掉末尾 \r 兼容不同行尾符
|
||
if (cmdBuf.length() > 0) {
|
||
processCommand(cmdBuf, src);
|
||
}
|
||
cmdBuf = "";
|
||
} else {
|
||
cmdBuf += c;
|
||
}
|
||
}
|
||
}
|
||
|
||
|
||
|
||
|
||
// 统一LED控制任务(防闪烁优化版本)
|
||
// 集中管理LED1(单颗)、LED2(灯带)、LED3(强制关闭)的显示逻辑
|
||
// 优化特性:
|
||
// 1. 30FPS稳定更新频率,防止闪烁
|
||
// 2. 修复模式5的双重亮度衰减问题
|
||
// 3. 统一亮度处理机制
|
||
// 4. 内存优化,减少不必要的数据拷贝
|
||
// 5. 防闪烁机制,确保LED显示稳定
|
||
void TaskLEDUnifiedCode(void* pvParameters) {
|
||
static unsigned long lastLEDUpdate = 0;
|
||
// 20FPS 更新频率:兼顾视觉流畅度和 RFID 稳定性
|
||
// 每秒 20 次 WS2812 传输(每次 ~5.6ms 关中断),相比 30FPS 减少 33% 干扰窗口
|
||
const unsigned long LED_UPDATE_INTERVAL = 50;
|
||
|
||
for (;;) {
|
||
unsigned long currentTime = millis();
|
||
|
||
// 控制更新频率,避免过度占用CPU和闪烁问题
|
||
if (currentTime - lastLEDUpdate < LED_UPDATE_INTERVAL) {
|
||
delay(5); // 增加延时,确保任务调度稳定
|
||
continue;
|
||
}
|
||
lastLEDUpdate = currentTime;
|
||
|
||
// ---- LED1 控制(单颗 LED)----
|
||
if (singleLedMode >= 0 && singleLedMode <= 7) {
|
||
leds1[0] = singleLedColors[singleLedMode];
|
||
} else {
|
||
leds1[0] = CRGB::Blue;
|
||
}
|
||
|
||
// ---- LED3 控制(熄灭)----
|
||
leds3[0] = CRGB::Black;
|
||
|
||
// ---- LED2 控制(灯带)----
|
||
switch (ledMode) {
|
||
case 0: // 模式0:全部熄灭,关闭所有LED灯珠
|
||
fill_solid(leds2, LED_COUNT_2, CRGB::Black);
|
||
break;
|
||
|
||
case 1: // 模式1:纯白色静态光,亮度可通过led2Brightness调节
|
||
fill_solid(leds2, LED_COUNT_2, CHSV(0, 0, led2Brightness));
|
||
break;
|
||
|
||
case 2: // 模式2:彩虹流水灯,颜色沿灯带流动,速度和亮度可调
|
||
for (int i = 0; i < LED_COUNT_2; i++) {
|
||
leds2[i] = CHSV(rainbowHue + i * 256 / LED_COUNT_2, 255, led2Brightness);
|
||
}
|
||
rainbowHue++;
|
||
break;
|
||
case 3: // 模式3:彩虹呼吸灯(优化版本),缓慢变色配合呼吸效果
|
||
{
|
||
static unsigned long lastHueUpdate = 0;
|
||
static unsigned long lastBreathUpdate = 0;
|
||
static uint8_t breathingHue = 0;
|
||
static uint8_t breathPhase = 0;
|
||
|
||
unsigned long currentTime = millis();
|
||
|
||
// 每300ms更新一次色相,实现非常缓慢的颜色变化
|
||
if (currentTime - lastHueUpdate > 300) {
|
||
breathingHue += 1;
|
||
lastHueUpdate = currentTime;
|
||
}
|
||
|
||
// 每30ms更新一次呼吸相位,控制亮度变化节奏
|
||
if (currentTime - lastBreathUpdate > 30) {
|
||
breathPhase += 2;
|
||
lastBreathUpdate = currentTime;
|
||
}
|
||
|
||
// 计算呼吸亮度:基于led2Brightness的60%-100%范围,避免过暗
|
||
uint8_t minBrightness = led2Brightness * 60 / 100;
|
||
uint8_t maxBrightness = led2Brightness;
|
||
uint8_t breathValue = map(sin8(breathPhase), 0, 255, minBrightness, maxBrightness);
|
||
|
||
for(int i = 0; i < LED_COUNT_2; i++) {
|
||
leds2[i] = CHSV(breathingHue, 200, breathValue);
|
||
}
|
||
}
|
||
break;
|
||
|
||
|
||
case 4: // 模式4:彩虹火车灯,模拟火车往返运行的动态效果
|
||
if (millis() - lastUpdate > 30) { // 30ms更新间隔,控制火车移动速度
|
||
lastUpdate = millis();
|
||
fill_solid(leds2, LED_COUNT_2, CRGB::Black);
|
||
|
||
switch (trainPhase) {
|
||
case 0: // 阶段0:正向出站,火车从起点逐渐显现
|
||
for (int i = 0; i < TRAIN_LENGTH; i++) {
|
||
int pos = trainPos + i;
|
||
if (pos >= 0 && pos < LED_COUNT_2) {
|
||
uint8_t hue = rainbowHue + (i * 256 / TRAIN_LENGTH);
|
||
leds2[pos] = CHSV(hue, 255, led2Brightness);
|
||
}
|
||
}
|
||
trainPos++;
|
||
if (trainPos >= 0) {
|
||
trainPhase = 1; // 切换到正向前进阶段
|
||
trainPos = 0;
|
||
}
|
||
break;
|
||
|
||
case 1: // 阶段1:正向前进,火车完整显示并向终点移动
|
||
for (int i = 0; i < TRAIN_LENGTH; i++) {
|
||
int pos = trainPos + i;
|
||
if (pos >= 0 && pos < LED_COUNT_2) {
|
||
uint8_t hue = rainbowHue + (i * 256 / TRAIN_LENGTH);
|
||
leds2[pos] = CHSV(hue, 255, led2Brightness);
|
||
}
|
||
}
|
||
trainPos++;
|
||
if (trainPos >= LED_COUNT_2 - TRAIN_LENGTH) {
|
||
trainPhase = 2; // 切换到正向进站阶段
|
||
trainPos = LED_COUNT_2 - TRAIN_LENGTH;
|
||
}
|
||
break;
|
||
|
||
case 2: // 阶段2:正向进站,火车从尾部开始消失
|
||
for (int i = 0; i < TRAIN_LENGTH; i++) {
|
||
int displayPos = LED_COUNT_2 - 1 - i;
|
||
if (displayPos >= trainPos) {
|
||
uint8_t hue = rainbowHue + (i * 256 / TRAIN_LENGTH);
|
||
leds2[displayPos] = CHSV(hue, 255, led2Brightness);
|
||
}
|
||
}
|
||
trainPos++;
|
||
if (trainPos >= LED_COUNT_2) {
|
||
trainPhase = 3; // 切换到反向出站阶段
|
||
trainPos = 0;
|
||
rainbowHue += 64; // 改变彩虹颜色,增加视觉变化
|
||
}
|
||
break;
|
||
|
||
case 3: // 阶段3:反向出站,火车从终点逐渐显现
|
||
for (int i = 0; i < trainPos + 1; i++) {
|
||
int pos = LED_COUNT_2 - 1 - i;
|
||
if (pos >= 0) {
|
||
uint8_t hue = rainbowHue + ((TRAIN_LENGTH - 1 - i) * 256 / TRAIN_LENGTH);
|
||
leds2[pos] = CHSV(hue, 255, led2Brightness);
|
||
}
|
||
}
|
||
trainPos++;
|
||
if (trainPos >= TRAIN_LENGTH) {
|
||
trainPhase = 4; // 切换到反向前进阶段
|
||
trainPos = TRAIN_LENGTH;
|
||
}
|
||
break;
|
||
|
||
case 4: // 阶段4:反向前进,火车完整显示并向起点移动
|
||
for (int i = 0; i < TRAIN_LENGTH; i++) {
|
||
int pos = LED_COUNT_2 - trainPos + i;
|
||
if (pos >= 0 && pos < LED_COUNT_2) {
|
||
uint8_t hue = rainbowHue + ((TRAIN_LENGTH - 1 - i) * 256 / TRAIN_LENGTH);
|
||
leds2[pos] = CHSV(hue, 255, led2Brightness);
|
||
}
|
||
}
|
||
trainPos++;
|
||
if (trainPos >= LED_COUNT_2) {
|
||
trainPhase = 5; // 切换到反向进站阶段
|
||
trainPos = 0;
|
||
}
|
||
break;
|
||
|
||
case 5: // 阶段5:反向进站,火车从头部开始消失
|
||
for (int i = 0; i < TRAIN_LENGTH - trainPos; i++) {
|
||
int pos = i;
|
||
if (pos < LED_COUNT_2) {
|
||
uint8_t hue = rainbowHue + ((TRAIN_LENGTH - 1 - i) * 256 / TRAIN_LENGTH);
|
||
leds2[pos] = CHSV(hue, 255, led2Brightness);
|
||
}
|
||
}
|
||
trainPos++;
|
||
if (trainPos >= TRAIN_LENGTH) {
|
||
trainPhase = 0; // 重新开始正向出站,形成循环
|
||
trainPos = -TRAIN_LENGTH;
|
||
rainbowHue += 64; // 再次改变彩虹颜色
|
||
}
|
||
break;
|
||
}
|
||
}
|
||
break;
|
||
|
||
case 5: // 模式5:冻结当前灯效,保持切换时的图像但允许调节亮度(内存优化版本)
|
||
if (led2Brightness == 0) {
|
||
fill_solid(leds2, LED_COUNT_2, CRGB::Black); // 亮度为0时完全熄灭
|
||
} else {
|
||
// 计算相对亮度比例,避免双重衰减问题
|
||
uint16_t brightnessRatio = (uint16_t)led2Brightness * 255 / frozenBrightness;
|
||
if (brightnessRatio > 255) brightnessRatio = 255;
|
||
|
||
// 直接计算并设置像素颜色,内存优化,避免使用memcpy
|
||
for (int i = 0; i < LED_COUNT_2; i++) {
|
||
leds2[i].r = (frozenLeds2[i].r * brightnessRatio) >> 8;
|
||
leds2[i].g = (frozenLeds2[i].g * brightnessRatio) >> 8;
|
||
leds2[i].b = (frozenLeds2[i].b * brightnessRatio) >> 8;
|
||
}
|
||
}
|
||
break;
|
||
}
|
||
|
||
// ---- 最终统一刷新LED ----
|
||
// 添加FastLED刷新保护,确保数据稳定后再显示
|
||
FastLED.show();
|
||
|
||
// ---- 稳定的延时机制 ----
|
||
// 使用固定延时确保LED显示稳定,避免闪烁
|
||
delay(10); // 10ms延时,确保LED数据传输完成
|
||
}
|
||
}
|
||
|
||
|
||
void setup() {
|
||
// 初始化 USB CDC 串口(Windows 调试)
|
||
// 增大 TX 缓冲区到 4KB:防止多任务并发写串口时 USB CDC 默认缓冲区溢出导致数据截断
|
||
Serial.setTxBufferSize(4096);
|
||
Serial.begin(115200);
|
||
|
||
// 初始化 UART0(CH343/USB1 → Linux 业务通讯)
|
||
// 默认引脚:TX=GPIO43、RX=GPIO44,波特率与 Linux 端保持一致
|
||
SerialLinux.begin(115200);
|
||
|
||
// 创建 Serial 输出互斥锁
|
||
serialMutex = xSemaphoreCreateMutex();
|
||
|
||
Serial.println("System starting...");
|
||
SerialLinux.println("System starting...");
|
||
|
||
// 初始化SPI总线
|
||
SPI.begin(RFID_SCK_PIN, RFID_MISO_PIN, RFID_MOSI_PIN, RFID_SS_PIN);
|
||
|
||
// 初始化RFID:显式硬件复位 + 版本校验 + 失败重试
|
||
// 背景:MFRC522 库的 PCD_Init 自动判断 RST 电平,冷启动时 GPIO14 浮空可能读到 HIGH,
|
||
// 库只做软件复位但 RC522 尚未完成上电 → 芯片卡在异常状态 → 刷卡永远失败。
|
||
// 显式拉低再拉高 RST 可避免这个坑。GitHub miguelbalboa/rfid #229 #269 记录此问题。
|
||
// 复用顶部定义的 rc522HardResetRuntime() 函数
|
||
|
||
// 最多重试 3 次初始化,直到版本寄存器返回合法值
|
||
bool rfidReady = false;
|
||
for (uint8_t attempt = 1; attempt <= 3; attempt++) {
|
||
rc522HardResetRuntime(); // 显式拉低再拉高 RST
|
||
rfid.PCD_Init();
|
||
byte version = rfid.PCD_ReadRegister(MFRC522::VersionReg);
|
||
Serial.print("RC522 init attempt ");
|
||
Serial.print(attempt);
|
||
Serial.print(", VersionReg=0x");
|
||
Serial.println(version, HEX);
|
||
// 0x91=v1.0, 0x92=v2.0 为合法;0x00/0xFF 表示通讯异常
|
||
if (version == 0x91 || version == 0x92) {
|
||
rfidReady = true;
|
||
break;
|
||
}
|
||
delay(100); // 重试前等待
|
||
}
|
||
|
||
if (rfidReady) {
|
||
Serial.println("RFID initialized.");
|
||
} else {
|
||
Serial.println("RFID initialization FAILED after 3 attempts! Check wiring/power.");
|
||
}
|
||
|
||
// 初始化LED
|
||
FastLED.addLeds<WS2812, LED_PIN_1, GRB>(leds1, LED_COUNT_1);
|
||
FastLED.addLeds<WS2812, LED_PIN_2, GRB>(leds2, LED_COUNT_2);
|
||
FastLED.addLeds<WS2812, LED_PIN_3, GRB>(leds3, LED_COUNT_3); // 新增LED3
|
||
|
||
// 启动时先全黑,避免 186 颗 LED 同时点亮产生瞬时 4.5A 大电流
|
||
// 冲击 3.3V/5V 电源导致刚初始化好的 RC522 进入异常状态
|
||
// TaskLEDUnified 启动后会根据 ledMode/led2Brightness 自动恢复默认显示
|
||
fill_solid(leds1, LED_COUNT_1, CRGB::Black);
|
||
fill_solid(leds2, LED_COUNT_2, CRGB::Black);
|
||
fill_solid(leds3, LED_COUNT_3, CRGB::Black);
|
||
FastLED.show();
|
||
Serial.println("LED initialized (dark startup, task will restore default).");
|
||
|
||
// 初始化PWM
|
||
// 创建LED控制器配置
|
||
ledc_timer_config_t ledc_timer = {
|
||
.speed_mode = LEDC_LOW_SPEED_MODE,
|
||
.duty_resolution = (ledc_timer_bit_t)PWM_RESOLUTION,
|
||
.timer_num = (ledc_timer_t)PWM_CHANNEL,
|
||
.freq_hz = PWM_FREQ,
|
||
.clk_cfg = LEDC_AUTO_CLK
|
||
};
|
||
ledc_timer_config(&ledc_timer);
|
||
|
||
// 创建LED通道配置
|
||
ledc_channel_config_t ledc_channel = {
|
||
.gpio_num = PWM_PIN,
|
||
.speed_mode = LEDC_LOW_SPEED_MODE,
|
||
.channel = (ledc_channel_t)PWM_CHANNEL,
|
||
.intr_type = LEDC_INTR_DISABLE,
|
||
.timer_sel = (ledc_timer_t)PWM_CHANNEL,
|
||
.duty = 0,
|
||
.hpoint = 0
|
||
};
|
||
ledc_channel_config(&ledc_channel);
|
||
|
||
// 设置初始占空比
|
||
ledc_set_duty(LEDC_LOW_SPEED_MODE, (ledc_channel_t)PWM_CHANNEL, pwmDuty);
|
||
ledc_update_duty(LEDC_LOW_SPEED_MODE, (ledc_channel_t)PWM_CHANNEL);
|
||
|
||
Serial.println("PWM initialized.");
|
||
|
||
// 初始化输入引脚
|
||
pinMode(BTN0_PIN, INPUT_PULLUP);
|
||
pinMode(WAKEUP1_PIN, INPUT);
|
||
pinMode(BTN1_PIN, INPUT);
|
||
pinMode(BTN2_PIN, INPUT);
|
||
Serial.println("Inputs initialized.");
|
||
|
||
// 创建任务
|
||
// TaskRFID 放 Core 0:避开 Core 1 上 WS2812 bit-banging 关中断窗口,SPI 通讯更稳定
|
||
xTaskCreatePinnedToCore(
|
||
TaskRFIDcode, /* 任务函数 */
|
||
"TaskRFID", /* 任务名称 */
|
||
4096, /* 任务栈大小 */
|
||
NULL, /* 传递给任务的参数 */
|
||
2, /* 任务优先级(提高到 2,避免被按键任务频繁抢占)*/
|
||
&TaskRFID, /* 任务句柄 */
|
||
0); /* 运行在核心0上(与 LED 任务物理隔离)*/
|
||
|
||
xTaskCreatePinnedToCore(
|
||
TaskLEDUnifiedCode,
|
||
"TaskLEDUnified",
|
||
8192, // 建议栈大一点
|
||
NULL,
|
||
3, // 提高优先级,确保LED更新不被其他任务干扰
|
||
NULL,
|
||
1);
|
||
|
||
xTaskCreatePinnedToCore(
|
||
TaskPWMcode,
|
||
"TaskPWM",
|
||
1024,
|
||
NULL,
|
||
1,
|
||
&TaskPWM,
|
||
1);
|
||
|
||
xTaskCreatePinnedToCore(
|
||
TaskBTN0code,
|
||
"TaskBTN0",
|
||
2048,
|
||
NULL,
|
||
1,
|
||
&TaskBTN0,
|
||
0);
|
||
|
||
xTaskCreatePinnedToCore(
|
||
TaskWAKEUP1code,
|
||
"TaskWAKEUP1",
|
||
2048,
|
||
NULL,
|
||
1,
|
||
&TaskWAKEUP1,
|
||
0);
|
||
|
||
xTaskCreatePinnedToCore(
|
||
TaskBTN1code,
|
||
"TaskBTN1",
|
||
2048,
|
||
NULL,
|
||
1,
|
||
&TaskBTN1,
|
||
0);
|
||
|
||
xTaskCreatePinnedToCore(
|
||
TaskBTN2code,
|
||
"TaskBTN2",
|
||
2048,
|
||
NULL,
|
||
1,
|
||
&TaskBTN2,
|
||
0);
|
||
|
||
Serial.println("Tasks created. System ready.");
|
||
}
|
||
|
||
void loop() {
|
||
// 同时处理两个串口的命令输入(双端都能下发控制命令)
|
||
// - Serial (USB-Serial-JTAG):Windows 调试发命令
|
||
// - SerialLinux (UART0 / CH343):Android 开发板发命令
|
||
// 两个缓冲区独立保存,避免一方半发命令被另一方打断
|
||
static String cmdFromSerial = "";
|
||
static String cmdFromLinux = "";
|
||
handleCommandFromStream(Serial, cmdFromSerial);
|
||
handleCommandFromStream(SerialLinux, cmdFromLinux);
|
||
|
||
// 让出CPU时间
|
||
delay(1);
|
||
} |