Files
espresso_frame/firmware/components/epd7in3e/epd7in3e.c
T
tfaour 1b9226326a Fix hardware-verified bugs: EPD stack overflow and busy-wait spin
Two crashes found flashing to real hardware:

- epd_display_stream's 4KB SPI chunk buffer was a stack local, but the
  default main task stack (3584 bytes) is smaller than that alone --
  Guru Meditation stack protection fault. Made it static instead, and
  bumped CONFIG_ESP_MAIN_TASK_STACK_SIZE to 8192 for headroom in the rest
  of the boot call chain (provisioning -> QR render -> eventually the
  HTTP fetch cycle all run in this one task).

- epd_wait_busy() polled with a 1ms vTaskDelay, which rounds down to 0
  FreeRTOS ticks at the default 100Hz tick rate -- so it never actually
  blocked, tight-spinning the CPU for the panel's real refresh time
  (15-30+s for a full-color pass) and starving the idle task long enough
  to trip the 5s task watchdog. Bumped to 20ms, safely >=1 tick regardless
  of tick rate.

Also updates the EPD pin defaults to the board's actual wiring
(CLK=20 MOSI=19 CS=18 DC=9 RST=10 BUSY=11), confirmed working on hardware.
2026-07-18 14:06:54 -04:00

305 lines
9.1 KiB
C

#include <string.h>
#include "driver/gpio.h"
#include "driver/spi_master.h"
#include "freertos/FreeRTOS.h"
#include "freertos/task.h"
#include "esp_check.h"
#include "esp_log.h"
#include "epd7in3e.h"
/* Command bytes and register values below are a line-for-line transcription
* of Waveshare's official EPD_7in3e.c reference driver (RaspberryPi_JetsonNano/c
* variant) -- this panel's controller has no public datasheet, so the
* upstream driver is the source of truth. Unlike that driver (which toggles
* CS around every single byte), this port holds CS low for the duration of
* each logical command or data phase and DMAs data in chunks, since 192,000
* one-byte SPI transactions would make a full refresh impractically slow. */
#define EPD_SPI_HOST SPI2_HOST
#define EPD_SPI_CHUNK_SIZE 4096
static const char *TAG = "epd7in3e";
#define EPD_CHECK(expr) ESP_RETURN_ON_ERROR((expr), TAG, #expr)
static spi_device_handle_t s_spi;
static void epd_delay_ms(uint32_t ms)
{
vTaskDelay(pdMS_TO_TICKS(ms));
}
/* BUSY: LOW = busy, HIGH = idle. */
static void epd_wait_busy(void)
{
/* A full refresh on this panel can hold BUSY low for 15-30+ seconds.
* A 1ms poll delay rounds down to 0 FreeRTOS ticks at the default
* 100Hz tick rate, so vTaskDelay() never actually blocks -- confirmed
* on hardware as a tight busy-spin that starves the idle task long
* enough to trip the 5s task watchdog. 20ms is safely >= 1 tick
* regardless of tick rate and still imperceptibly responsive here. */
while (gpio_get_level((gpio_num_t)CONFIG_EPD_PIN_BUSY) == 0) {
epd_delay_ms(20);
}
}
static esp_err_t epd_spi_write(const uint8_t *data, size_t len)
{
while (len > 0) {
size_t n = len > EPD_SPI_CHUNK_SIZE ? EPD_SPI_CHUNK_SIZE : len;
spi_transaction_t t = {
.length = n * 8,
.tx_buffer = data,
};
EPD_CHECK(spi_device_polling_transmit(s_spi, &t));
data += n;
len -= n;
}
return ESP_OK;
}
static esp_err_t epd_send_command(uint8_t cmd)
{
gpio_set_level((gpio_num_t)CONFIG_EPD_PIN_DC, 0);
gpio_set_level((gpio_num_t)CONFIG_EPD_PIN_CS, 0);
esp_err_t err = epd_spi_write(&cmd, 1);
gpio_set_level((gpio_num_t)CONFIG_EPD_PIN_CS, 1);
return err;
}
static esp_err_t epd_send_data(const uint8_t *data, size_t len)
{
gpio_set_level((gpio_num_t)CONFIG_EPD_PIN_DC, 1);
gpio_set_level((gpio_num_t)CONFIG_EPD_PIN_CS, 0);
esp_err_t err = epd_spi_write(data, len);
gpio_set_level((gpio_num_t)CONFIG_EPD_PIN_CS, 1);
return err;
}
static esp_err_t epd_send_data_byte(uint8_t data)
{
return epd_send_data(&data, 1);
}
static void epd_reset(void)
{
gpio_set_level((gpio_num_t)CONFIG_EPD_PIN_RST, 1);
epd_delay_ms(20);
gpio_set_level((gpio_num_t)CONFIG_EPD_PIN_RST, 0);
epd_delay_ms(2);
gpio_set_level((gpio_num_t)CONFIG_EPD_PIN_RST, 1);
epd_delay_ms(20);
}
/* Power on, "second setting" registers, refresh, power off -- mirrors
* EPD_7IN3E_TurnOnDisplay() in the reference driver. */
static esp_err_t epd_turn_on_display(void)
{
EPD_CHECK(epd_send_command(0x04)); // POWER_ON
epd_wait_busy();
EPD_CHECK(epd_send_command(0x06));
EPD_CHECK(epd_send_data((uint8_t[]){ 0x6F, 0x1F, 0x17, 0x49 }, 4));
EPD_CHECK(epd_send_command(0x12)); // DISPLAY_REFRESH
EPD_CHECK(epd_send_data_byte(0x00));
epd_wait_busy();
EPD_CHECK(epd_send_command(0x02)); // POWER_OFF
EPD_CHECK(epd_send_data_byte(0x00));
epd_wait_busy();
return ESP_OK;
}
esp_err_t epd_init(void)
{
gpio_config_t out_cfg = {
.pin_bit_mask = (1ULL << CONFIG_EPD_PIN_DC) | (1ULL << CONFIG_EPD_PIN_RST) | (1ULL << CONFIG_EPD_PIN_CS),
.mode = GPIO_MODE_OUTPUT,
};
EPD_CHECK(gpio_config(&out_cfg));
gpio_config_t busy_cfg = {
.pin_bit_mask = (1ULL << CONFIG_EPD_PIN_BUSY),
.mode = GPIO_MODE_INPUT,
};
EPD_CHECK(gpio_config(&busy_cfg));
gpio_set_level((gpio_num_t)CONFIG_EPD_PIN_CS, 1);
spi_bus_config_t bus_cfg = {
.mosi_io_num = CONFIG_EPD_PIN_MOSI,
.miso_io_num = -1,
.sclk_io_num = CONFIG_EPD_PIN_CLK,
.quadwp_io_num = -1,
.quadhd_io_num = -1,
.max_transfer_sz = EPD_SPI_CHUNK_SIZE,
};
EPD_CHECK(spi_bus_initialize(EPD_SPI_HOST, &bus_cfg, SPI_DMA_CH_AUTO));
spi_device_interface_config_t dev_cfg = {
.clock_speed_hz = CONFIG_EPD_SPI_CLOCK_HZ,
.mode = 0,
/* CS is bit-banged around each command/data phase above rather than
* hardware-driven, since a phase can span many chunked SPI
* transactions and must stay asserted across all of them. */
.spics_io_num = -1,
.queue_size = 1,
};
EPD_CHECK(spi_bus_add_device(EPD_SPI_HOST, &dev_cfg, &s_spi));
epd_reset();
epd_wait_busy();
epd_delay_ms(30);
EPD_CHECK(epd_send_command(0xAA)); // CMDH
EPD_CHECK(epd_send_data((uint8_t[]){ 0x49, 0x55, 0x20, 0x08, 0x09, 0x18 }, 6));
EPD_CHECK(epd_send_command(0x01));
EPD_CHECK(epd_send_data_byte(0x3F));
EPD_CHECK(epd_send_command(0x00));
EPD_CHECK(epd_send_data((uint8_t[]){ 0x5F, 0x69 }, 2));
EPD_CHECK(epd_send_command(0x03));
EPD_CHECK(epd_send_data((uint8_t[]){ 0x00, 0x54, 0x00, 0x44 }, 4));
EPD_CHECK(epd_send_command(0x05));
EPD_CHECK(epd_send_data((uint8_t[]){ 0x40, 0x1F, 0x1F, 0x2C }, 4));
EPD_CHECK(epd_send_command(0x06));
EPD_CHECK(epd_send_data((uint8_t[]){ 0x6F, 0x1F, 0x17, 0x49 }, 4));
EPD_CHECK(epd_send_command(0x08));
EPD_CHECK(epd_send_data((uint8_t[]){ 0x6F, 0x1F, 0x1F, 0x22 }, 4));
EPD_CHECK(epd_send_command(0x30));
EPD_CHECK(epd_send_data_byte(0x03));
EPD_CHECK(epd_send_command(0x50));
EPD_CHECK(epd_send_data_byte(0x3F));
EPD_CHECK(epd_send_command(0x60));
EPD_CHECK(epd_send_data((uint8_t[]){ 0x02, 0x00 }, 2));
EPD_CHECK(epd_send_command(0x61));
EPD_CHECK(epd_send_data((uint8_t[]){ 0x03, 0x20, 0x01, 0xE0 }, 4));
EPD_CHECK(epd_send_command(0x84));
EPD_CHECK(epd_send_data_byte(0x01));
EPD_CHECK(epd_send_command(0xE3));
EPD_CHECK(epd_send_data_byte(0x2F));
EPD_CHECK(epd_send_command(0x04)); // POWER_ON; waits for the panel to release the idle signal
epd_wait_busy();
ESP_LOGI(TAG, "EPD initialized (CLK=%d MOSI=%d CS=%d DC=%d RST=%d BUSY=%d)",
CONFIG_EPD_PIN_CLK, CONFIG_EPD_PIN_MOSI, CONFIG_EPD_PIN_CS,
CONFIG_EPD_PIN_DC, CONFIG_EPD_PIN_RST, CONFIG_EPD_PIN_BUSY);
return ESP_OK;
}
esp_err_t epd_display_stream(epd_read_fn_t read_fn, void *ctx)
{
ESP_RETURN_ON_FALSE(read_fn != NULL, ESP_ERR_INVALID_ARG, TAG, "read_fn required");
EPD_CHECK(epd_send_command(0x10));
gpio_set_level((gpio_num_t)CONFIG_EPD_PIN_DC, 1);
gpio_set_level((gpio_num_t)CONFIG_EPD_PIN_CS, 0);
/* Static rather than a stack local: the default main task stack
* (CONFIG_ESP_MAIN_TASK_STACK_SIZE, 3584 bytes) is smaller than this
* 4KB chunk buffer alone, let alone with the rest of the call chain --
* confirmed on hardware as a stack protection fault/crash. Not
* reentrant, but this driver only ever runs from one task at a time. */
static uint8_t chunk[EPD_SPI_CHUNK_SIZE];
size_t total = 0;
size_t n;
esp_err_t err = ESP_OK;
while ((n = read_fn(chunk, sizeof(chunk), ctx)) > 0) {
err = epd_spi_write(chunk, n);
if (err != ESP_OK) {
break;
}
total += n;
}
gpio_set_level((gpio_num_t)CONFIG_EPD_PIN_CS, 1);
EPD_CHECK(err);
if (total != EPD_FRAME_BYTES) {
ESP_LOGW(TAG, "Stream supplied %u bytes, expected %u", (unsigned)total, (unsigned)EPD_FRAME_BYTES);
}
return epd_turn_on_display();
}
typedef struct {
const uint8_t *data;
size_t len;
size_t pos;
} epd_buf_ctx_t;
static size_t epd_buf_read(uint8_t *chunk, size_t chunk_size, void *ctx_)
{
epd_buf_ctx_t *c = (epd_buf_ctx_t *)ctx_;
size_t remaining = c->len - c->pos;
size_t n = remaining < chunk_size ? remaining : chunk_size;
if (n == 0) {
return 0;
}
memcpy(chunk, c->data + c->pos, n);
c->pos += n;
return n;
}
esp_err_t epd_display_buffer(const uint8_t *frame, size_t len)
{
epd_buf_ctx_t buf_ctx = { .data = frame, .len = len, .pos = 0 };
return epd_display_stream(epd_buf_read, &buf_ctx);
}
typedef struct {
uint8_t fill_byte;
size_t remaining;
} epd_fill_ctx_t;
static size_t epd_fill_read(uint8_t *chunk, size_t chunk_size, void *ctx_)
{
epd_fill_ctx_t *c = (epd_fill_ctx_t *)ctx_;
size_t n = c->remaining < chunk_size ? c->remaining : chunk_size;
if (n == 0) {
return 0;
}
memset(chunk, c->fill_byte, n);
c->remaining -= n;
return n;
}
esp_err_t epd_clear(epd_color_t color)
{
epd_fill_ctx_t fill_ctx = {
.fill_byte = (uint8_t)((color << 4) | color),
.remaining = EPD_FRAME_BYTES,
};
return epd_display_stream(epd_fill_read, &fill_ctx);
}
esp_err_t epd_sleep(void)
{
EPD_CHECK(epd_send_command(0x02)); // POWER_OFF
EPD_CHECK(epd_send_data_byte(0x00));
epd_wait_busy();
EPD_CHECK(epd_send_command(0x07)); // DEEP_SLEEP
EPD_CHECK(epd_send_data_byte(0xA5));
return ESP_OK;
}