715 lines
17 KiB
C
715 lines
17 KiB
C
#include "ili9341.h"
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#include "cmsis_os.h"
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#include "uart4.h"
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#include <stdarg.h>
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#include <stdio.h>
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/*
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* ILI9341 TFT LCD 驱动
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* STM32H750 + SPI1 + DMA
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*
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* 本版本相对上一版的主要改动:
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* 1. DMA buffer 不再用裸指针指向硬编码地址,改用链接器 section,
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* 避免和其他默认分配(heap/栈/其他静态变量)物理重叠。
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* —— 需要在 .ld 文件里配合添加一个 section,见文件末尾说明。
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* 2. DMA 完成/错误的等待方式从"HAL_GetTick() 忙等"改成
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* "RTOS 信号量 + 超时",真正让出 CPU,而不是空转。
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* 3. ISR 回调只做最少的事(释放信号量/记录错误码),所有
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* 恢复逻辑、日志打印都放在任务上下文里做,符合
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* "中断里越短越好"的原则。
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* 4. 增加了 HAL_SPI_ErrorCallback,之前只处理了 TxCplt,
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* 一旦发生 SPI 总线错误(比如 CRC/Overrun/ModeFault),
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* 原来的代码只能傻等 100ms 超时,现在能立刻被唤醒并记录。
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* 5. 调试日志走 Print_DMA(非阻塞 UART DMA 发送),不占用
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* 本来就紧张的 SPI/DMA 时间片。
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*/
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extern SPI_HandleTypeDef hspi1;
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static uint16_t lcd_width = ILI9341_WIDTH;
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static uint16_t lcd_height = ILI9341_HEIGHT;
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/* LCD GPIO 控制 */
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#define LCD_CS_LOW() HAL_GPIO_WritePin(LCD_CS_PORT, LCD_CS_PIN, GPIO_PIN_RESET)
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#define LCD_CS_HIGH() HAL_GPIO_WritePin(LCD_CS_PORT, LCD_CS_PIN, GPIO_PIN_SET)
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#define LCD_DC_CMD() HAL_GPIO_WritePin(LCD_DC_PORT, LCD_DC_PIN, GPIO_PIN_RESET)
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#define LCD_DC_DATA() HAL_GPIO_WritePin(LCD_DC_PORT, LCD_DC_PIN, GPIO_PIN_SET)
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#define LCD_RST_LOW() HAL_GPIO_WritePin(LCD_RST_PORT, LCD_RST_PIN, GPIO_PIN_RESET)
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#define LCD_RST_HIGH() HAL_GPIO_WritePin(LCD_RST_PORT, LCD_RST_PIN, GPIO_PIN_SET)
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#define LCD_BL_ON() HAL_GPIO_WritePin(LCD_BL_PORT, LCD_BL_PIN, GPIO_PIN_SET)
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#define LCD_BL_OFF() HAL_GPIO_WritePin(LCD_BL_PORT, LCD_BL_PIN, GPIO_PIN_RESET)
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/*
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* LVGL buffer 使用 20 行:
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* 320 * 20 * 2 = 12800 bytes
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*/
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#define LCD_DMA_MAX_PIXELS (320U * 20U)
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#define LCD_DMA_BUF_SIZE (LCD_DMA_MAX_PIXELS * 2U)
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/*
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* DMA buffer 放到链接器专属 section 里,而不是裸写绝对地址。
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* 需要在 .ld 文件的 MEMORY 区里确认 D2 SRAM(0x30000000 起)
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* 已经声明为一个可用 region(很多 CubeIDE 模板里叫 RAM_D2),
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* 并在 SECTIONS 里加:
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*
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* .dma_buffer (NOLOAD) :
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* {
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* . = ALIGN(32);
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* *(.dma_buffer)
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* . = ALIGN(32);
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* } >RAM_D2
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*
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* 这样链接器会知道这块内存已经被占用,不会再把 heap/栈/其他
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* 全局变量分配到这里,从根本上排除"覆盖冲突"的可能性。
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* 32 字节对齐是为了配合 D-Cache clean-by-address 的对齐要求。
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*/
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#if defined(__GNUC__)
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#define LCD_DMA_BUF_ATTR __attribute__((section(".dma_buffer"), aligned(32)))
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#else
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#define LCD_DMA_BUF_ATTR
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#warning "非 GNU 工具链,请自行确认 lcd_dma_buf 被放置在 DMA 可访问、且不会被其他数据覆盖的内存区域"
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#endif
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LCD_DMA_BUF_ATTR
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static uint8_t lcd_dma_buf[LCD_DMA_BUF_SIZE];
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/* ---- 状态与同步 ---- */
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static volatile uint8_t lcd_dma_busy = 0;
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static volatile uint32_t lcd_dma_start_tick = 0;
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static volatile uint32_t lcd_spi_last_error = 0;
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static osSemaphoreId_t lcd_dma_sem = NULL;
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/* ---- 非阻塞调试日志:走 Print_DMA,忙的时候直接丢弃这条日志 ---- */
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static char lcd_dbg_line[96];
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static void LCD_DebugLogf(const char *fmt, ...)
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{
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if (UART_IsBusy())
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{
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return; /* 调试串口正忙,宁可丢日志也不要阻塞关键路径 */
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}
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va_list args;
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va_start(args, fmt);
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vsnprintf(lcd_dbg_line, sizeof(lcd_dbg_line), fmt, args);
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va_end(args);
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Print_DMA(lcd_dbg_line);
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}
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static void LCD_DMA_EnsureSemaphore(void)
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{
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if (lcd_dma_sem == NULL)
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{
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lcd_dma_sem = osSemaphoreNew(1, 0, NULL);
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}
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}
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/* ========================= 基础 SPI 写命令/数据(阻塞,保持不变) ========================= */
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static void ILI9341_WriteCommand(uint8_t cmd)
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{
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LCD_CS_LOW();
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LCD_DC_CMD();
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HAL_SPI_Transmit(&hspi1, &cmd, 1, HAL_MAX_DELAY);
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LCD_CS_HIGH();
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}
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static void ILI9341_WriteData(uint8_t *data, uint16_t size)
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{
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LCD_CS_LOW();
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LCD_DC_DATA();
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HAL_SPI_Transmit(&hspi1, data, size, HAL_MAX_DELAY);
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LCD_CS_HIGH();
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}
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static void ILI9341_WriteData8(uint8_t data)
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{
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LCD_CS_LOW();
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LCD_DC_DATA();
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HAL_SPI_Transmit(&hspi1, &data, 1, HAL_MAX_DELAY);
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LCD_CS_HIGH();
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}
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static void ILI9341_WriteData16(uint16_t data)
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{
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uint8_t buf[2];
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buf[0] = (uint8_t)(data >> 8);
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buf[1] = (uint8_t)(data & 0xFF);
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LCD_CS_LOW();
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LCD_DC_DATA();
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HAL_SPI_Transmit(&hspi1, buf, 2, HAL_MAX_DELAY);
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LCD_CS_HIGH();
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}
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static void ILI9341_Reset(void)
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{
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LCD_RST_HIGH();
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HAL_Delay(20);
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LCD_RST_LOW();
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HAL_Delay(20);
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LCD_RST_HIGH();
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HAL_Delay(120);
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}
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static void ILI9341_SetAddressWindow(uint16_t x0,
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uint16_t y0,
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uint16_t x1,
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uint16_t y1)
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{
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uint8_t data[4];
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ILI9341_WriteCommand(0x2A);
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data[0] = (uint8_t)(x0 >> 8);
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data[1] = (uint8_t)(x0 & 0xFF);
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data[2] = (uint8_t)(x1 >> 8);
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data[3] = (uint8_t)(x1 & 0xFF);
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ILI9341_WriteData(data, 4);
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ILI9341_WriteCommand(0x2B);
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data[0] = (uint8_t)(y0 >> 8);
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data[1] = (uint8_t)(y0 & 0xFF);
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data[2] = (uint8_t)(y1 >> 8);
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data[3] = (uint8_t)(y1 & 0xFF);
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ILI9341_WriteData(data, 4);
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ILI9341_WriteCommand(0x2C);
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}
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/* ========================= 初始化 ========================= */
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void ILI9341_Init(void)
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{
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LCD_CS_HIGH();
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LCD_BL_ON();
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LCD_DMA_EnsureSemaphore();
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ILI9341_Reset();
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ILI9341_WriteCommand(0x01);
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HAL_Delay(120);
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ILI9341_WriteCommand(0xEF);
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{
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uint8_t data[] = {0x03, 0x80, 0x02};
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ILI9341_WriteData(data, sizeof(data));
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}
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ILI9341_WriteCommand(0xCF);
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{
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uint8_t data[] = {0x00, 0xC1, 0x30};
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ILI9341_WriteData(data, sizeof(data));
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}
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ILI9341_WriteCommand(0xED);
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{
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uint8_t data[] = {0x64, 0x03, 0x12, 0x81};
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ILI9341_WriteData(data, sizeof(data));
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}
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ILI9341_WriteCommand(0xE8);
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{
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uint8_t data[] = {0x85, 0x00, 0x78};
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ILI9341_WriteData(data, sizeof(data));
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}
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ILI9341_WriteCommand(0xCB);
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{
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uint8_t data[] = {0x39, 0x2C, 0x00, 0x34, 0x02};
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ILI9341_WriteData(data, sizeof(data));
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}
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ILI9341_WriteCommand(0xF7);
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ILI9341_WriteData8(0x20);
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ILI9341_WriteCommand(0xEA);
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{
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uint8_t data[] = {0x00, 0x00};
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ILI9341_WriteData(data, sizeof(data));
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}
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ILI9341_WriteCommand(0xC0);
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ILI9341_WriteData8(0x23);
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ILI9341_WriteCommand(0xC1);
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ILI9341_WriteData8(0x10);
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ILI9341_WriteCommand(0xC5);
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{
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uint8_t data[] = {0x3E, 0x28};
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ILI9341_WriteData(data, sizeof(data));
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}
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ILI9341_WriteCommand(0xC7);
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ILI9341_WriteData8(0x86);
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ILI9341_WriteCommand(0x36);
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ILI9341_WriteData8(0x48);
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ILI9341_WriteCommand(0x3A);
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ILI9341_WriteData8(0x55);
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ILI9341_WriteCommand(0xB1);
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{
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uint8_t data[] = {0x00, 0x18};
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ILI9341_WriteData(data, sizeof(data));
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}
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ILI9341_WriteCommand(0xB6);
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{
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uint8_t data[] = {0x08, 0x82, 0x27};
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ILI9341_WriteData(data, sizeof(data));
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}
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ILI9341_WriteCommand(0xF2);
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ILI9341_WriteData8(0x00);
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ILI9341_WriteCommand(0x26);
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ILI9341_WriteData8(0x01);
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ILI9341_WriteCommand(0xE0);
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{
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uint8_t data[] = {
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0x0F, 0x31, 0x2B, 0x0C, 0x0E,
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0x08, 0x4E, 0xF1, 0x37, 0x07,
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0x10, 0x03, 0x0E, 0x09, 0x00
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};
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ILI9341_WriteData(data, sizeof(data));
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}
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ILI9341_WriteCommand(0xE1);
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{
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uint8_t data[] = {
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0x00, 0x0E, 0x14, 0x03, 0x11,
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0x07, 0x31, 0xC1, 0x48, 0x08,
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0x0F, 0x0C, 0x31, 0x36, 0x0F
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};
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ILI9341_WriteData(data, sizeof(data));
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}
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ILI9341_WriteCommand(0x11);
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HAL_Delay(120);
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ILI9341_WriteCommand(0x29);
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HAL_Delay(20);
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ILI9341_SetRotation(0);
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}
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/* ========================= 方向设置 ========================= */
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void ILI9341_SetRotation(uint8_t rotation)
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{
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uint8_t madctl;
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rotation %= 4;
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switch (rotation)
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{
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case 0:
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madctl = 0x48;
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lcd_width = 240;
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lcd_height = 320;
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break;
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case 1:
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madctl = 0x28;
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lcd_width = 320;
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lcd_height = 240;
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break;
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case 2:
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madctl = 0x88;
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lcd_width = 240;
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lcd_height = 320;
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break;
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default:
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madctl = 0xE8;
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lcd_width = 320;
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lcd_height = 240;
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break;
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}
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ILI9341_WriteCommand(0x36);
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ILI9341_WriteData8(madctl);
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}
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/* ========================= 基础绘图(阻塞,保持不变) ========================= */
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void ILI9341_DrawPixel(uint16_t x, uint16_t y, uint16_t color)
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{
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if (x >= lcd_width || y >= lcd_height)
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{
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return;
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}
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ILI9341_SetAddressWindow(x, y, x, y);
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ILI9341_WriteData16(color);
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}
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void ILI9341_FillRect(uint16_t x,
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uint16_t y,
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uint16_t w,
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uint16_t h,
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uint16_t color)
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{
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uint32_t pixels;
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uint8_t buffer[128];
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uint16_t chunk_pixels;
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if (x >= lcd_width || y >= lcd_height)
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{
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return;
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}
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if ((x + w) > lcd_width)
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{
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w = lcd_width - x;
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}
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if ((y + h) > lcd_height)
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{
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h = lcd_height - y;
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}
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pixels = (uint32_t)w * h;
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for (uint16_t i = 0; i < sizeof(buffer); i += 2)
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{
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buffer[i] = (uint8_t)(color >> 8);
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buffer[i + 1] = (uint8_t)(color & 0xFF);
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}
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ILI9341_SetAddressWindow(x, y, x + w - 1, y + h - 1);
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LCD_CS_LOW();
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LCD_DC_DATA();
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while (pixels > 0)
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{
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chunk_pixels = pixels > 64U ? 64U : (uint16_t)pixels;
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HAL_SPI_Transmit(&hspi1,
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buffer,
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chunk_pixels * 2U,
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HAL_MAX_DELAY);
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pixels -= chunk_pixels;
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}
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LCD_CS_HIGH();
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}
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void ILI9341_FillScreen(uint16_t color)
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{
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ILI9341_FillRect(0, 0, lcd_width, lcd_height, color);
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}
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uint16_t ILI9341_Color565(uint8_t r, uint8_t g, uint8_t b)
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{
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return ((r & 0xF8U) << 8) |
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((g & 0xFCU) << 3) |
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(b >> 3);
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}
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/* ========================= LVGL 阻塞区域刷新(保持不变) ========================= */
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void ILI9341_WriteArea(uint16_t x,
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uint16_t y,
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uint16_t w,
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uint16_t h,
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const uint16_t *pixels)
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{
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uint32_t total_pixels;
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uint32_t sent_pixels = 0;
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static uint8_t tx_buf[512];
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if (w == 0 || h == 0 || pixels == NULL)
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{
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return;
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}
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total_pixels = (uint32_t)w * h;
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ILI9341_SetAddressWindow(x, y, x + w - 1, y + h - 1);
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LCD_CS_LOW();
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LCD_DC_DATA();
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while (sent_pixels < total_pixels)
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{
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uint32_t remain = total_pixels - sent_pixels;
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uint32_t chunk_pixels = remain > 256U ? 256U : remain;
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for (uint32_t i = 0; i < chunk_pixels; i++)
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{
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uint16_t color = pixels[sent_pixels + i];
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tx_buf[i * 2U] = (uint8_t)(color >> 8);
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tx_buf[i * 2U + 1] = (uint8_t)(color & 0xFF);
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}
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HAL_SPI_Transmit(&hspi1,
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tx_buf,
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chunk_pixels * 2U,
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HAL_MAX_DELAY);
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sent_pixels += chunk_pixels;
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}
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LCD_CS_HIGH();
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}
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/* ========================= LVGL DMA 区域刷新:重写版 ========================= */
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static void LCD_CleanDCache(void *addr, uint32_t size)
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{
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#if (__DCACHE_PRESENT == 1U)
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if ((SCB->CCR & SCB_CCR_DC_Msk) != 0U)
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{
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uint32_t start_addr = (uint32_t)addr & ~31U;
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uint32_t end_addr = ((uint32_t)addr + size + 31U) & ~31U;
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SCB_CleanDCache_by_Addr((uint32_t *)start_addr, end_addr - start_addr);
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}
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#else
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(void)addr;
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(void)size;
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#endif
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}
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static void ILI9341_SPI_WaitIdle(void)
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{
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||
uint32_t tick_start;
|
||
|
||
#if defined(SPI_FLAG_TXC)
|
||
tick_start = HAL_GetTick();
|
||
|
||
while (__HAL_SPI_GET_FLAG(&hspi1, SPI_FLAG_TXC) == RESET)
|
||
{
|
||
if ((HAL_GetTick() - tick_start) > 20U)
|
||
{
|
||
break;
|
||
}
|
||
}
|
||
#elif defined(SPI_FLAG_EOT)
|
||
tick_start = HAL_GetTick();
|
||
|
||
while (__HAL_SPI_GET_FLAG(&hspi1, SPI_FLAG_EOT) == RESET)
|
||
{
|
||
if ((HAL_GetTick() - tick_start) > 20U)
|
||
{
|
||
break;
|
||
}
|
||
}
|
||
#else
|
||
for (volatile uint32_t i = 0; i < 1000U; i++)
|
||
{
|
||
__NOP();
|
||
}
|
||
#endif
|
||
|
||
__DSB();
|
||
}
|
||
|
||
void ILI9341_WriteArea_DMA(uint16_t x,
|
||
uint16_t y,
|
||
uint16_t w,
|
||
uint16_t h,
|
||
const uint16_t *pixels,
|
||
ILI9341_DmaDoneCallback done_cb,
|
||
void *user_data)
|
||
{
|
||
uint32_t total_pixels;
|
||
uint32_t byte_len;
|
||
|
||
if (w == 0 || h == 0 || pixels == NULL)
|
||
{
|
||
if (done_cb != NULL)
|
||
{
|
||
done_cb(user_data);
|
||
}
|
||
return;
|
||
}
|
||
|
||
total_pixels = (uint32_t)w * h;
|
||
|
||
if (total_pixels > LCD_DMA_MAX_PIXELS)
|
||
{
|
||
/* 超出单次 DMA buffer 容量,退化为阻塞传输 */
|
||
ILI9341_WriteArea(x, y, w, h, pixels);
|
||
|
||
if (done_cb != NULL)
|
||
{
|
||
done_cb(user_data);
|
||
}
|
||
|
||
return;
|
||
}
|
||
|
||
LCD_DMA_EnsureSemaphore();
|
||
|
||
if (lcd_dma_busy)
|
||
{
|
||
/*
|
||
* 正常情况下,LVGL 在上一次 flush 没有调用 flush_ready
|
||
* 之前不会发起新的 flush,所以走到这里说明上一次传输
|
||
* 大概率已经出了问题(信号量没有被正确释放)。
|
||
* 这里做一次强制恢复,而不是继续等待,避免连锁卡死。
|
||
*/
|
||
LCD_DebugLogf("[LCD] WARN busy-reenter, force recover\r\n");
|
||
|
||
HAL_SPI_Abort(&hspi1);
|
||
LCD_CS_HIGH();
|
||
lcd_dma_busy = 0;
|
||
}
|
||
|
||
lcd_dma_busy = 1;
|
||
lcd_spi_last_error = 0;
|
||
|
||
/* 组包到 DMA buffer */
|
||
for (uint32_t i = 0; i < total_pixels; i++)
|
||
{
|
||
uint16_t color = pixels[i];
|
||
|
||
lcd_dma_buf[i * 2U] = (uint8_t)(color >> 8);
|
||
lcd_dma_buf[i * 2U + 1] = (uint8_t)(color & 0xFF);
|
||
}
|
||
|
||
byte_len = total_pixels * 2U;
|
||
|
||
LCD_CleanDCache(lcd_dma_buf, byte_len);
|
||
|
||
ILI9341_SetAddressWindow(x, y, x + w - 1U, y + h - 1U);
|
||
|
||
lcd_dma_start_tick = HAL_GetTick();
|
||
|
||
LCD_CS_LOW();
|
||
LCD_DC_DATA();
|
||
|
||
if (HAL_SPI_Transmit_DMA(&hspi1, lcd_dma_buf, (uint16_t)byte_len) != HAL_OK)
|
||
{
|
||
LCD_CS_HIGH();
|
||
|
||
lcd_dma_busy = 0;
|
||
|
||
LCD_DebugLogf("[LCD] ERR DMA start failed\r\n");
|
||
|
||
if (done_cb != NULL)
|
||
{
|
||
done_cb(user_data);
|
||
}
|
||
|
||
return;
|
||
}
|
||
|
||
/*
|
||
* 真正的关键改动:这里不再用 HAL_GetTick() 忙等,而是让任务
|
||
* 通过信号量挂起,把 CPU 让给调度器;DMA 完成中断
|
||
* (HAL_SPI_TxCpltCallback)或错误中断(HAL_SPI_ErrorCallback)
|
||
* 会释放这个信号量把任务唤醒。100ms 超时依旧作为兜底。
|
||
*/
|
||
if (osSemaphoreAcquire(lcd_dma_sem, 100) != osOK)
|
||
{
|
||
LCD_DebugLogf("[LCD] ERR DMA timeout, aborting\r\n");
|
||
HAL_SPI_Abort(&hspi1);
|
||
}
|
||
else if (lcd_spi_last_error != 0U)
|
||
{
|
||
LCD_DebugLogf("[LCD] ERR SPI err=0x%08lX\r\n",
|
||
(unsigned long)lcd_spi_last_error);
|
||
lcd_spi_last_error = 0U;
|
||
}
|
||
|
||
ILI9341_SPI_WaitIdle();
|
||
|
||
LCD_CS_HIGH();
|
||
|
||
lcd_dma_busy = 0;
|
||
|
||
if (done_cb != NULL)
|
||
{
|
||
done_cb(user_data);
|
||
}
|
||
}
|
||
|
||
void ILI9341_DMA_Watchdog(uint32_t timeout_ms)
|
||
{
|
||
if (!lcd_dma_busy)
|
||
{
|
||
return;
|
||
}
|
||
|
||
uint32_t elapsed = HAL_GetTick() - lcd_dma_start_tick;
|
||
|
||
if (elapsed > timeout_ms)
|
||
{
|
||
LCD_DebugLogf("[LCD] WDG force recover after %lums\r\n",
|
||
(unsigned long)elapsed);
|
||
|
||
HAL_SPI_Abort(&hspi1);
|
||
LCD_CS_HIGH();
|
||
|
||
lcd_dma_busy = 0;
|
||
|
||
/* 如果此时正好有任务卡在 WriteArea_DMA 里等信号量,唤醒它 */
|
||
if (lcd_dma_sem != NULL)
|
||
{
|
||
osSemaphoreRelease(lcd_dma_sem);
|
||
}
|
||
}
|
||
}
|
||
|
||
/*
|
||
* SPI1 TX DMA 完成回调(ISR 上下文)。
|
||
* 只做最必要的事:释放信号量。不打印日志、不调用 LVGL。
|
||
*/
|
||
void HAL_SPI_TxCpltCallback(SPI_HandleTypeDef *hspi)
|
||
{
|
||
if (hspi->Instance == SPI1)
|
||
{
|
||
if (lcd_dma_sem != NULL)
|
||
{
|
||
osSemaphoreRelease(lcd_dma_sem);
|
||
}
|
||
}
|
||
}
|
||
|
||
/*
|
||
* SPI 错误回调(ISR 上下文)。
|
||
* 之前的版本没有实现这个回调,一旦发生总线错误(Overrun/
|
||
* ModeFault/CRC 等),只能傻等 100ms 超时才能恢复。
|
||
* 现在记录错误码并立即释放信号量唤醒等待的任务,
|
||
* 真正的日志打印和处理放到任务上下文(WriteArea_DMA 里)去做。
|
||
*/
|
||
void HAL_SPI_ErrorCallback(SPI_HandleTypeDef *hspi)
|
||
{
|
||
if (hspi->Instance == SPI1)
|
||
{
|
||
lcd_spi_last_error = hspi->ErrorCode;
|
||
|
||
if (lcd_dma_sem != NULL)
|
||
{
|
||
osSemaphoreRelease(lcd_dma_sem);
|
||
}
|
||
}
|
||
} |