Hierdie tutorialie is deel van: Makerfabs MaTouch AI ESP32S3 2.8" Camera
Die nuutste MaTouch AI-bord integreer I2S-steminvoer/I2S-luidspreker/3-megapixel-kamera OV3660/320*240-resolusie-skerm, met ESP32S3-kragtige verwerker & Wifi-vermoë, om hierdie bord 'n goeie hulpmiddel/platform vir AI-ontwikkeling met ESP32 te maak.
Makerfabs MaTouch ESP32-S3 2.8" Kamera en Raakskerm: 3MP-foto's na SD-kaart
Lewende soekerskerm, 3-megapixel-foto's, gestoor op SD met 'n regte tydstempel
'n Werkende kamera-toep: 'n lewende soekerskerm teen ongeveer 25 rame per sekonde, drie raakknoppies, en foto's wat op die microSD-kaart gestoor word met die korrekte datum en tyd vanaf die bord se battery-ondersteunde klok.
Kamera en raakskerm wat op die MaTouch AI ESP32-S3-bord loop
Die drie knoppies
SNAP - onmiddellike foto teen die soekerskermresolusie. Vinnig en werk altyd.
3 MP - 'n regte 2048×1536-foto. Die skerm word vir ongeveer twee sekondes donker; dit is die kamerabestuurder wat herbegin, en dit word hieronder verduidelik.
FLIP - spieël die beeld vir wanneer jy die lens weg van jouself af rig.
Hoekom die skerm donker word vir die 3 MP-skoot
'n Kamera se pixelformaat is vasgestel wanneer die bestuurder begin. Jy kan die resolusie aan die gang verander, maar jy kan nie van RGB565 (wat die skerm nodig het) na JPEG (wat die lêer nodig het) oorskakel sonder om die bestuurder te herbegin nie. Dus roep die hoëresolusie-roete esp_camera_deinit() aan, herbegin in JPEG-modus teen volle resolusie, neem die skoot, en herstel dan die soekerskerm. Die pouse is eerlik, nie 'n fout nie.
Tydstempels sonder die internet
Foto's word gestoor as /IMG_260730_143052.jpg - jaar, maand, dag, uur, minuut, sekonde. Dit kom van die PCF8563T-reëletydklok, wat deur die battery aan die gang gehou word, sodat die tyd oorleef wanneer dit ontkoppel word. As die klok krag verloor het, saai die skets dit vanaf die oomblik wat die skets gekompileer is.
'n Regstelling aan die vervaardiger se voorbeeld
Die verskaffer se eie kamera-voorbeeld definieer die SD-kaart op penne 2, 42 en 41. Daardie pengetalle is van 'n ander bord gekopieer - op hierdie een is dit die mikrofoon-penne. Die SD-kaart is eintlik op die skerm se SPI-bus met sy eie skyfieselet op IO47, wat is wat die kode hier gebruik. Dit maak saak as jy ooit die kamera en die mikrofoons in dieselfde skets wil laat werk.
Een SPI-bus deel
Die skerm en die SD-kaart sit op dieselfde drie drade, so beide moet deur dieselfde SPI-bestuurder gaan. Hierdie skets gebruik Arduino_HWSPI met die standaard SPI-objek juis om daardie rede. Om 'n verskillende bestuurder vir elkeen te gebruik, is die klassieke oorsaak van 'n skerm wat vries die oomblik dat die SD-kaart gemonteer word.
Oor die MaTouch AI ESP32-S3 2.8"-bord
Elke projek op hierdie bladsy loop op die MaTouch AI ESP32-S3 2.8" TFT ST7789V van Makerfabs. Dit is 'n alles-in-een-bord: 'n kleurraakskerm, 'n 3 megapixel-kamera, twee mikrofoons en 'n regte luidsprekerversterker, alles aangedryf deur 'n ESP32-S3 met 8 MB PSRAM. Daardie kombinasie is wat hierdie AI-projekte moontlik maak op 'n enkele bord met niks anders aangeheg nie.
Die 8 MB PSRAM maak meer saak as enige ander getal hier. Dit is wat die bord in staat stel om 'n kameraraam, 'n paar sekondes opgeneemde klank, of 'n base64-geënkodeerde foto gelyktydig in geheue te hou - nie een daarvan pas in die ESP32 se normale RAM nie.
Vervaardigerdokumentasie: Makerfabs-wiki-bladsy.
Kernspesifikasies
Verwerker: ESP32-S3, dubbelkern 240 MHz, WiFi 2.4 GHz + Bluetooth 5.0
Geheue: 16 MB-flits, 8 MB PSRAM (vereis deur byna elke projek hier)
Skerm: 2.8" IPS, 320×240, ST7789V-bestuurder, SPI
Raak: GT911-kapasitief, volg 5 vingers gelyktydig
Kamera: OV3660, 3 megapixel, tot 2048×1536
Mikrofoons: twee INMP441 I2S-digitale mikke ('n egte stereopaar)
Luidspreker: MAX98357A klas-D-versterker, 3.2 W in 4 Ω
Berging: microSD-kaartsleuf (SPI-modus)
Krag: USB-C, JST-batterykonnektor, TP4056-laaier, kragskakelaar
Ook op die bord: WS2812B RGB-LED, PCF8563T-battery-ondersteunde reëletydklok, en 'n MAX17048-batterymeter wat nie in die amptelike spesifikasies gelys is nie
Die twee USB-C-poorte is nie dieselfde nie. Die bord se luidspreker deel sy seinpenne (IO19 en IO20) met die inheemse USB-poort, omdat daardie penne die ESP32-S3 se vasbedrade USB-datalyne is. Laai altyd op en gee krag deur die CH340K USB-C-poort (die een langs die RESET-knoppie), en stel USB CDC On Boot op Disabled. Gebruik die verkeerde poort en klank sal wangedra of oplaai sal misluk.
Arduino IDE-instellings
Hierdie instellings maak saak. Die meeste probleme wat mense met hierdie bord rapporteer, is een van hierdie wat verkeerd is, en hulle stel terug wanneer jy die kernweergawe verander, so kyk hulle weer na enige verandering.
Instelling | Waarde |
|---|---|
Bord | ESP32S3 Dev Module |
ESP32-kernweergawe | 2.0.17 |
PSRAM | OPI PSRAM |
Flitsgrootte | 16MB (128Mb) |
Partisie-skema | 16M Flash (3MB APP/9.9MB FATFS) |
USB CDC On Boot | Disabled |
Oplaaispoed | 921600 |
Vee alle flits uit voor oplaai | Disabled |
Poort | die CH340K USB-C-poort |
Gebruik ESP32-kern 2.0.17, nie 3.x nie. Espressif het die op-toestel-gesigsdeteksiemodelle in kern 3 verwyder, dus sal die gesigsprojekte nie daar saamstel nie. Deur 2.0.17 vas te pen, bly elke projek op hierdie bladsy werkend met een konfigurasie. In Board Manager laat die weergawe-aftreklys jou toe om enige tyd heen en weer te wissel.
Gebruik GFX Library for Arduino weergawe 1.5.6, nie 1.6.x nie. Die 1.6-vrystellings is vir ESP32-kern 3 gebou en kan by opstart op kern 2.0.17 vashaak. As jou skerm swart bly na oplaai, is dit die eerste ding om na te kyk.
Vereiste biblioteke
Installeer hierdie deur Tools → Manage Libraries in die Arduino IDE. Weergawenommers maak saak - gebruik asseblief die wat gelys word.
Biblioteek | Weergawe | Skrywer |
|---|---|---|
GFX Library for Arduino | 1.5.6 | moononournation |
bb_captouch | 1.3.1 | Larry Bank |
Probleemoplossing
Simeptoom | Oorsaak en regstelling |
|---|---|
Skerm bly swart | Verkeerde GFX-biblioteekweergawe (gebruik 1.5.6) of verkeerde bordinstellings. |
|
|
Niks laai op nie / geen COM-poort nie | Verkeerde USB-C-poort, of die CH340-drywer is nie geïnstalleer nie. |
Kamera misluk en herstel nooit nie | Die kamera se reset-lyn is aan die bord se RESET-knoppie gekoppel, dus kan sagteware dit nie herbegin nie. Druk RESET. As dit steeds misluk, plaas die kamera se lintkabel weer in. |
Laai die kode af
Die volledige Arduino-skets vir hierdie projek, tesame met pins.h en alles anders wat dit benodig, is gratis om af te laai.
Pak dit uit, open die .ino-lêer in die Arduino IDE, kontroleer die instellings hierbo, en laai op deur die CH340K USB-C-poort.
Waar om hierdie bord te koop
Hierdie is affiliasieskakels. Dit kos jou niks ekstra nie en dit help om die gratis kode en tutoriaal op hierdie webwerf te ondersteun - dankie.
Hierdie handleiding is deel van: Makerfabs MaTouch AI ESP32S3 2.8" Camera
/*
* ===========================================================================
* 02_Camera_Touch — MaTouch AI ESP32-S3 2.8" TFT ST7789V
* ===========================================================================
*
* ---------------------------------------------------------------------------
----------
* ROBOJAX.COM - MaTouch AI ESP32-S3 2.8" project series
*
* WATCH THE VIDEO
* https://youtu.be/6AL3g3tC_Hk
*
* WRITTEN TUTORIALS - every project, with photos and full explanation
* Camera and touchscreen.... https://robojax.com/RTJ849
* Offline face recognition.. https://robojax.com/RTJ850
* AI voice assistant........ https://robojax.com/RTJ851
* AI vision................. https://robojax.com/RTJ852
*
* GET THE BOARD - SAVE $5 with coupon code: Robojax_Makerfab
* https://www.makerfabs.com/matouch-ai-esp32s3-2-8-tft-st7789v.html
* (enter the code at checkout)
*
* All of this code is free. If it helped you, a subscribe on YouTube is
* the best way to support more of it.
*
* Watching the video first will save you time - it shows the Arduino IDE
* settings and the library versions being set up step by step.
* ---------------------------------------------------------------------------
*
* Live camera viewfinder with a touch interface, saving real photos to the
* microSD card, each one stamped with the true date and time from the board's
* battery-backed RTC.
*
* Three buttons down the right hand side:
*
* SNAP quick save. Converts the frame already on screen to JPEG.
* Instant, 240x240, always works.
*
* 3 MP the real thing. Tears the camera down, brings it back up at
* 2048x1536 JPEG, takes the shot, and restores the viewfinder.
* Takes a couple of seconds. This is the OV3660's full
* 3 megapixels, not an upscale.
*
* MIRROR flips the image, for when you turn the board around to point
* the lens at someone else.
*
* Photos land on the SD card as /IMG_260729_143052.jpg
*
* No WiFi, no API keys, no internet.
*
* ---------------------------------------------------------------------------
* WHY THE 3 MP BUTTON HAS TO WORK SO HARD
* A camera's pixel format is fixed when the driver starts. You can change the
* resolution on the fly, but you cannot switch RGB565 (what the screen wants)
* to JPEG (what the SD card wants) without restarting the driver. So the
* hi-res path deinitialises and reinitialises. That is normal, and it is why
* the screen goes black for a moment.
*
* ---------------------------------------------------------------------------
* BOARD SETTINGS - see pins.h. In short: ESP32S3 Dev Module, core 2.0.17,
* OPI PSRAM, 16MB flash, 16M partition scheme, upload via the CH340K port.
*
* LIBRARIES
* GFX Library for Arduino v1.5.6
* bb_captouch v1.3.1
*
* ---------------------------------------------------------------------------
* FUNCTIONS IN THIS SKETCH
* rtcRead() / rtcWrite(...) read/set the PCF8563 battery-backed clock
* rtcSeedFromBuildTime() set the clock from compile time if it lost power
* getTouch(&x,&y) read the touch panel, mapped to screen coordinates
* inBox(...) hit-test a touch against a button rectangle
* camStart(...) start the camera in a given format/size
* camStartPreview() start the 240x240 RGB565 live-view camera
* makeFilename(...) /IMG_YYMMDD_HHMMSS.jpg from the RTC time
* writeToSD(...) save a buffer to the SD card
* snapQuick() SNAP button: re-encode the preview frame to JPEG
* snapHiRes() 3MP button: restart camera in JPEG mode, full res
* drawButton(...) / drawButtons() / drawStatus() the touch UI
* setup() / loop() boot / viewfinder + edge-detected button taps
*
* Robojax.com
* ===========================================================================
*/
#include <Arduino_GFX_Library.h>
#include <bb_captouch.h>
#include <Wire.h>
#include <SPI.h>
#include <SD.h>
#include "esp_camera.h"
#include "img_converters.h" // frame2jpg()
#include "pins.h"
/* The TFT and SD share pins 13/12/48, so both must go through the SAME SPI
* peripheral: Arduino_HWSPI wraps the standard SPI object the SD library
* uses. (Arduino_ESP32SPI would grab a different peripheral, and the display
* goes dark the moment the SD card claims the pins.) */
Arduino_HWSPI *bus = new Arduino_HWSPI(
TFT_DC, TFT_CS, TFT_SCLK, TFT_MOSI, TFT_MISO, &SPI, true /* shared bus */);
Arduino_GFX *gfx = new Arduino_ST7789(bus, TFT_RES, 1, true);
BBCapTouch bbct;
/* --- layout: 240x240 viewfinder on the left, 80px button column on the right */
#define VIEW_W 240
#define BTN_X 242
#define BTN_W 78
#define BTN_SNAP_Y 2
#define BTN_HIRES_Y 62
#define BTN_MIRROR_Y 122
#define BTN_H 56
#define STATUS_Y 186
bool ok_sd = false;
bool ok_rtc = false;
bool mirrored = true; // the lens is upside down relative to the screen
int shot_count = 0;
char status[48] = "ready";
/* --- the RTC time structure ------------------------------------------------
* Defined up here, before any function, with explicit prototypes below.
* WHY: the Arduino IDE auto-generates function prototypes and can insert them
* ABOVE this struct - a function returning RtcTime then fails to compile with
* "RtcTime does not name a type". Writing the prototypes ourselves stops the
* IDE generating its own, so the order stays correct.
* ------------------------------------------------------------------------- */
struct RtcTime {
int year, mon, day, hour, min, sec;
bool valid;
};
// explicit prototypes - do not remove (see comment above)
RtcTime rtcRead();
void rtcWrite(int year, int mon, int day, int hour, int min, int sec);
void rtcSeedFromBuildTime();
bool getTouch(uint16_t *x, uint16_t *y);
bool camStart(pixformat_t fmt, framesize_t size, int fb_count, int quality);
bool camStartPreview();
void makeFilename(char *out, size_t n);
bool writeToSD(const char *path, const uint8_t *data, size_t len);
void snapQuick();
void snapHiRes();
void drawButton(int y, const char *label, uint16_t colour);
void drawButtons();
void drawStatus();
/* ===========================================================================
* RTC — PCF8563T
* =========================================================================== */
static inline uint8_t bcd2dec(uint8_t b) { return (uint8_t)((b >> 4) * 10 + (b & 0x0F)); }
static inline uint8_t dec2bcd(uint8_t d) { return (uint8_t)(((d / 10) << 4) | (d % 10)); }
RtcTime rtcRead() {
RtcTime t = {2026, 1, 1, 0, 0, 0, false};
Wire.beginTransmission(ADDR_PCF8563);
Wire.write(0x02);
if (Wire.endTransmission(false) != 0) return t;
if (Wire.requestFrom((int)ADDR_PCF8563, 7) != 7) return t;
uint8_t r[7];
for (uint8_t i = 0; i < 7; i++) r[i] = Wire.read();
t.valid = !(r[0] & 0x80); // bit 7 = Voltage Low: time is unreliable
t.sec = bcd2dec(r[0] & 0x7F);
t.min = bcd2dec(r[1] & 0x7F);
t.hour = bcd2dec(r[2] & 0x3F);
t.day = bcd2dec(r[3] & 0x3F);
t.mon = bcd2dec(r[5] & 0x1F);
t.year = bcd2dec(r[6]) + 2000;
return t;
}
void rtcWrite(int year, int mon, int day, int hour, int min, int sec) {
Wire.beginTransmission(ADDR_PCF8563);
Wire.write(0x02);
Wire.write(dec2bcd(sec)); // writing clears the Voltage Low flag
Wire.write(dec2bcd(min));
Wire.write(dec2bcd(hour));
Wire.write(dec2bcd(day));
Wire.write(0x00); // weekday - we do not use it
Wire.write(dec2bcd(mon)); // century bit left at 0 => 20xx
Wire.write(dec2bcd(year % 100));
Wire.endTransmission();
}
/* If the RTC has lost power, seed it from the moment this sketch was compiled.
* Close enough for photo timestamps, and it means the clock is never blank. */
void rtcSeedFromBuildTime() {
const char *mon_names = "JanFebMarAprMayJunJulAugSepOctNovDec";
char mon_str[4] = {0};
int day, year, hour, min, sec;
sscanf(__DATE__, "%3s %d %d", mon_str, &day, &year);
sscanf(__TIME__, "%d:%d:%d", &hour, &min, &sec);
int mon = 1;
for (int i = 0; i < 12; i++)
if (strncmp(mon_str, mon_names + i * 3, 3) == 0) { mon = i + 1; break; }
rtcWrite(year, mon, day, hour, min, sec);
Serial.printf("RTC seeded from build time: %04d-%02d-%02d %02d:%02d:%02d\n",
year, mon, day, hour, min, sec);
}
/* ===========================================================================
* Touch
* =========================================================================== */
bool getTouch(uint16_t *x, uint16_t *y) {
TOUCHINFO ti;
if (!bbct.getSamples(&ti)) return false;
if (ti.count < 1) return false;
*x = ti.y[0];
*y = (ti.x[0] > 240) ? 0 : (240 - ti.x[0]);
return true;
}
static inline bool inBox(uint16_t x, uint16_t y, int bx, int by, int bw, int bh) {
return (x >= bx && x < bx + bw && y >= by && y < by + bh);
}
/* ===========================================================================
* Camera
* =========================================================================== */
bool camStart(pixformat_t fmt, framesize_t size, int fb_count, int quality) {
camera_config_t c;
c.ledc_channel = LEDC_CHANNEL_0;
c.ledc_timer = LEDC_TIMER_0;
c.pin_d0 = CAM_PIN_D0; c.pin_d1 = CAM_PIN_D1;
c.pin_d2 = CAM_PIN_D2; c.pin_d3 = CAM_PIN_D3;
c.pin_d4 = CAM_PIN_D4; c.pin_d5 = CAM_PIN_D5;
c.pin_d6 = CAM_PIN_D6; c.pin_d7 = CAM_PIN_D7;
c.pin_xclk = CAM_PIN_XCLK;
c.pin_pclk = CAM_PIN_PCLK;
c.pin_vsync = CAM_PIN_VSYNC;
c.pin_href = CAM_PIN_HREF;
/* Share the I2C bus Wire already drives (touch/RTC live there too) instead
* of letting the camera install a second driver on the same pins - that
* kills touch and the RTC. Wire.begin() must run before this function. */
c.pin_sccb_sda = -1;
c.pin_sccb_scl = -1;
c.sccb_i2c_port = 0; // Wire = I2C port 0
c.pin_pwdn = CAM_PIN_PWDN;
c.pin_reset = CAM_PIN_RESET;
c.xclk_freq_hz = 20000000;
c.frame_size = size;
c.pixel_format = fmt;
c.grab_mode = CAMERA_GRAB_WHEN_EMPTY;
c.fb_location = CAMERA_FB_IN_PSRAM;
c.jpeg_quality = quality;
c.fb_count = fb_count;
esp_err_t err = esp_camera_init(&c);
if (err != ESP_OK) {
Serial.printf("esp_camera_init failed: 0x%x\n", err);
return false;
}
sensor_t *s = esp_camera_sensor_get();
if (s) {
s->set_hmirror(s, mirrored ? 1 : 0);
s->set_vflip(s, mirrored ? 1 : 0);
s->set_brightness(s, 1);
s->set_saturation(s, 0);
}
return true;
}
bool camStartPreview() {
if (camStart(PIXFORMAT_RGB565, FRAMESIZE_240X240, 2, 12)) return true;
/* Retry with ONE frame buffer. The camera's DMA buffer must live in
* internal RAM, and if something else grabbed it first this is the
* difference between working and "cam_dma_config failed". */
Serial.println("camera: retrying with a single frame buffer (low DMA RAM)");
return camStart(PIXFORMAT_RGB565, FRAMESIZE_240X240, 1, 12);
}
/* ===========================================================================
* Saving
* =========================================================================== */
void makeFilename(char *out, size_t n) {
RtcTime t = rtcRead();
snprintf(out, n, "/IMG_%02d%02d%02d_%02d%02d%02d.jpg",
t.year % 100, t.mon, t.day, t.hour, t.min, t.sec);
}
bool writeToSD(const char *path, const uint8_t *data, size_t len) {
if (!ok_sd) { snprintf(status, sizeof(status), "no SD card"); return false; }
File f = SD.open(path, FILE_WRITE);
if (!f) { snprintf(status, sizeof(status), "SD open failed"); return false; }
size_t written = f.write(data, len);
f.close();
if (written != len) { snprintf(status, sizeof(status), "SD write short"); return false; }
Serial.printf("Saved %s (%u bytes)\n", path, (unsigned)len);
return true;
}
/* Quick save: re-encode the RGB565 frame already in hand. */
void snapQuick() {
snprintf(status, sizeof(status), "saving...");
drawStatus();
camera_fb_t *fb = esp_camera_fb_get();
if (!fb) { snprintf(status, sizeof(status), "no frame"); return; }
uint8_t *jpg = NULL;
size_t jpg_len = 0;
bool ok = frame2jpg(fb, 90, &jpg, &jpg_len);
esp_camera_fb_return(fb);
if (!ok || !jpg) { snprintf(status, sizeof(status), "jpeg encode failed"); return; }
char path[32];
makeFilename(path, sizeof(path));
if (writeToSD(path, jpg, jpg_len)) {
shot_count++;
snprintf(status, sizeof(status), "%s %uKB", path + 1, (unsigned)(jpg_len / 1024));
}
free(jpg);
}
/* Full resolution: restart the driver in JPEG mode at 2048x1536. */
void snapHiRes() {
snprintf(status, sizeof(status), "3MP: restarting cam");
drawStatus();
gfx->fillRect(0, 0, VIEW_W, 240, BLACK);
gfx->setTextColor(YELLOW);
gfx->setCursor(60, 110);
gfx->print("capturing 3 MP...");
esp_camera_deinit();
delay(120);
if (!camStart(PIXFORMAT_JPEG, FRAMESIZE_QXGA, 1, 10)) {
snprintf(status, sizeof(status), "3MP init failed");
delay(120);
if (!camStartPreview()) snprintf(status, sizeof(status), "CAM DEAD - press RESET");
return;
}
// Throw away the first few frames so exposure and white balance settle,
// otherwise the hi-res shot comes out darker than the viewfinder.
for (int i = 0; i < 3; i++) {
camera_fb_t *w = esp_camera_fb_get();
if (w) esp_camera_fb_return(w);
delay(120);
}
camera_fb_t *fb = esp_camera_fb_get();
if (fb && fb->len > 0) {
char path[32];
makeFilename(path, sizeof(path));
if (writeToSD(path, fb->buf, fb->len)) {
shot_count++;
snprintf(status, sizeof(status), "3MP %ux%u %uKB",
fb->width, fb->height, (unsigned)(fb->len / 1024));
}
} else {
snprintf(status, sizeof(status), "3MP capture failed");
}
if (fb) esp_camera_fb_return(fb);
// Back to the viewfinder
esp_camera_deinit();
delay(120);
if (!camStartPreview()) {
snprintf(status, sizeof(status), "CAM DEAD - press RESET");
gfx->fillRect(0, 0, VIEW_W, 240, RED);
}
drawButtons();
}
/* ===========================================================================
* UI
* =========================================================================== */
void drawButton(int y, const char *label, uint16_t colour) {
gfx->fillRoundRect(BTN_X, y, BTN_W, BTN_H, 6, colour);
gfx->drawRoundRect(BTN_X, y, BTN_W, BTN_H, 6, WHITE);
gfx->setTextSize(2);
gfx->setTextColor(WHITE);
int len = strlen(label);
gfx->setCursor(BTN_X + (BTN_W - len * 12) / 2, y + (BTN_H - 16) / 2);
gfx->print(label);
gfx->setTextSize(1);
}
void drawButtons() {
drawButton(BTN_SNAP_Y, "SNAP", gfx->color565(0, 90, 160));
drawButton(BTN_HIRES_Y, "3 MP", gfx->color565(140, 70, 0));
drawButton(BTN_MIRROR_Y, "FLIP", gfx->color565(80, 80, 90));
}
void drawStatus() {
gfx->fillRect(BTN_X, STATUS_Y, BTN_W, 240 - STATUS_Y, BLACK);
gfx->setTextColor(CYAN);
gfx->setTextSize(1);
gfx->setCursor(BTN_X + 2, STATUS_Y + 2);
gfx->printf("shots:%d", shot_count);
RtcTime t = rtcRead();
gfx->setCursor(BTN_X + 2, STATUS_Y + 14);
gfx->setTextColor(ok_rtc ? GREEN : RED);
gfx->printf("%02d:%02d:%02d", t.hour, t.min, t.sec);
// Status text wraps across the narrow column, 13 characters at a time
gfx->setTextColor(YELLOW);
int row = 0;
for (size_t i = 0; i < strlen(status) && row < 3; i += 13, row++) {
char chunk[14] = {0};
strncpy(chunk, status + i, 13);
gfx->setCursor(BTN_X + 2, STATUS_Y + 26 + row * 10);
gfx->print(chunk);
}
}
/* ===========================================================================
* SETUP
* =========================================================================== */
void setup() {
Serial.begin(115200);
delay(400);
Serial.println("\n=== 02 Camera + Touch | Robojax.com ===");
pinMode(TFT_BLK, OUTPUT);
digitalWrite(TFT_BLK, LOW);
pinMode(SD_CS, OUTPUT);
digitalWrite(SD_CS, HIGH);
// one shared SPI bus for TFT + SD, started before either device
SPI.begin(TFT_SCLK, TFT_MISO, TFT_MOSI);
gfx->begin();
gfx->fillScreen(BLACK);
gfx->setTextSize(1);
digitalWrite(TFT_BLK, HIGH);
gfx->setTextColor(CYAN);
gfx->setCursor(4, 4);
gfx->print("MaTouch AI - camera demo (Robojax.com)");
// Touch. Pulses IO18, which is also the LCD reset - harmless at this point.
bbct.init(TOUCH_SDA, TOUCH_SCL, TOUCH_RST, TOUCH_INT);
delay(50);
// RTC on the shared I2C bus (must be up before the camera - shared SCCB)
Wire.begin(I2C_SDA, I2C_SCL, 100000);
delay(20);
RtcTime t = rtcRead();
ok_rtc = (t.year >= 2020);
if (ok_rtc && !t.valid) {
Serial.println("RTC lost power - seeding from build time");
rtcSeedFromBuildTime();
}
gfx->setCursor(4, 16);
gfx->setTextColor(ok_rtc ? GREEN : RED);
gfx->print(ok_rtc ? "RTC ok" : "RTC not found");
/* ---- CAMERA BEFORE SD. This order matters. ----
* The camera's DMA buffer must come from internal (not PSRAM) memory, and
* mounting the SD card first can take enough of it that the camera driver
* fails with "cam_dma_config failed / 0xffffffff". Camera first, SD second,
* and both fit. (On ESP32 core 3.x the allocation is looser and the old
* order happened to work - which is why this only appeared on 2.0.17.) */
gfx->setCursor(4, 28);
gfx->setTextColor(YELLOW);
gfx->print("starting camera...");
Serial.printf("free internal RAM before camera: %u bytes\n",
(unsigned)heap_caps_get_free_size(MALLOC_CAP_INTERNAL));
if (!camStartPreview()) {
gfx->fillScreen(RED);
gfx->setTextColor(WHITE);
gfx->setTextSize(2);
gfx->setCursor(20, 90);
gfx->print("CAMERA FAILED");
gfx->setTextSize(1);
gfx->setCursor(20, 120);
gfx->print("0xffffffff / cam_dma_config = out of DMA memory:");
gfx->setCursor(20, 132);
gfx->print(" check Tools > PSRAM = OPI PSRAM, then press RESET.");
gfx->setCursor(20, 150);
gfx->print("Any other error = reseat the camera FPC cable.");
gfx->setCursor(20, 162);
gfx->print("The camera reset line is tied to board RESET, so it");
gfx->setCursor(20, 174);
gfx->print("cannot be restarted from software - use the button.");
while (1) delay(1000);
}
// SD card LAST. Same three wires as the display, its own chip select on IO47.
const uint32_t speeds[] = {40000000, 20000000, 10000000, 4000000};
for (uint8_t i = 0; i < 4 && !ok_sd; i++)
if (SD.begin(SD_CS, SPI, speeds[i])) ok_sd = true;
digitalWrite(SD_CS, HIGH);
gfx->setCursor(4, 40);
gfx->setTextColor(ok_sd ? GREEN : RED);
gfx->print(ok_sd ? "SD ok" : "SD FAILED - photos will not save");
Serial.println(ok_sd ? "SD ok" : "SD failed");
delay(600);
gfx->fillScreen(BLACK);
drawButtons();
drawStatus();
Serial.println("Running. SNAP = quick, 3 MP = full resolution, FLIP = mirror.");
}
/* ===========================================================================
* LOOP
* =========================================================================== */
void loop() {
static uint32_t last_status = 0;
/* touch edge detection: a button fires exactly once per physical tap.
* touch_down latches on the first touched frame and only releases after
* several consecutive untouched frames (the GT911 occasionally skips a
* sample mid-press, which must not count as a release). */
static bool touch_down = false;
static uint8_t release_count = 0;
/* FPS: averaged over half a second and redrawn only then - redrawing it
* every frame just makes it flicker unreadably. */
static uint32_t fps_window_start = 0;
static uint16_t fps_frames = 0;
// --- viewfinder ---
camera_fb_t *fb = esp_camera_fb_get();
if (fb) {
gfx->draw16bitBeRGBBitmap(0, 0, (uint16_t *)fb->buf, fb->width, fb->height);
esp_camera_fb_return(fb);
fps_frames++;
}
// --- touch: act only on the moment the finger first lands ---
uint16_t x, y;
if (getTouch(&x, &y)) {
release_count = 0;
if (!touch_down) { // new tap, not a held finger
touch_down = true;
if (inBox(x, y, BTN_X, BTN_SNAP_Y, BTN_W, BTN_H)) {
snapQuick();
drawStatus();
} else if (inBox(x, y, BTN_X, BTN_HIRES_Y, BTN_W, BTN_H)) {
snapHiRes();
drawStatus();
} else if (inBox(x, y, BTN_X, BTN_MIRROR_Y, BTN_W, BTN_H)) {
mirrored = !mirrored;
sensor_t *s = esp_camera_sensor_get();
if (s) { s->set_hmirror(s, mirrored ? 1 : 0); s->set_vflip(s, mirrored ? 1 : 0); }
snprintf(status, sizeof(status), mirrored ? "mirrored" : "normal");
drawStatus();
}
}
} else if (touch_down) {
// require ~4 consecutive empty reads (~130ms) before declaring release
if (++release_count >= 4) { touch_down = false; release_count = 0; }
}
// --- FPS, averaged, top left corner of the viewfinder ---
uint32_t now = millis();
if (now - fps_window_start >= 500) {
float fps = fps_frames * 1000.0f / (now - fps_window_start);
fps_window_start = now;
fps_frames = 0;
gfx->fillRect(2, 2, 56, 10, BLACK);
gfx->setTextColor(GREEN);
gfx->setTextSize(1);
gfx->setCursor(4, 3);
gfx->printf("FPS %.1f", fps);
}
if (now - last_status > 1000) { last_status = now; drawStatus(); }
}
Goedere wat jy dalk nodig het
-
AnderProduct page for MaTouch AI ESP32S3 2.8" TFT ST7789Vmakerfabs.com
Hulpbronne en verwysings
-
DokumentasieMakerfabs MaTouch ESP32-S3 2.8" Camera and Touchscreen: User's Manualwiki.makerfabs.com
-
Dokumentasie
-
DokumentasieProduct page for MaTouch AI ESP32S3 2.8" TFT ST7789Vmakerfabs.com
-
AflaaiArduino GFX Library on GitHubgithub.com
Lêers📁
Vereiste lêer (.h)
Ander Lêers
Skeematies
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MaTouch_AI 2.8“ MaTouch AI ESP32S3 2.8" TFT ST7789V schematicThe latest MaTouch AI board integrate I2S voice input/I2S speaker/ 3 million camera OV3660/ 320*240 resolution display, with ESP32S3 strong processor& Wifi ability, to make this board a good tool/platform for AI development with ESP32.
MaTouch_AI 2.8“ SPI TFT ST7789V V1.1.PDF0.15 MB