This tutorial is part of: Makerfabs MaTouch AI ESP32S3 2.8" Camera
The 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.
Makerfabs MaTouch ESP32-S3 2.8" kamera i ekran na dodir: 3MP fotografije na SD karticu
Živi tražilo, fotografije od 3 megapiksela, spremljene na SD karticu sa stvarnim vremenskim pečatom
Radna kamera aplikacija: živo tražilo pri oko 25 sličica u sekundi, tri dodirna dugmeta i fotografije spremljene na microSD karticu s ispravnim datumom i vremenom iz sata na ploči koji radi na bateriju.
Kamera i ekran na dodir rade na MaTouch AI ESP32-S3 ploči
Tri dugmeta
SNAP - trenutna fotografija u rezoluciji tražila. Brzo i uvijek radi.
3 MP - prava fotografija od 2048×1536 piksela. Ekran potamni na oko dvije sekunde; to je ponovno pokretanje upravljačkog programa kamere, što je objašnjeno u nastavku.
FLIP - zrcali sliku za slučaj kada objektiv usmjerite od sebe.
Zašto ekran potamni za snimak od 3 MP
Format piksela kamere je fiksiran kada se upravljački program pokrene. Možete promijeniti rezoluciju u hodu, ali ne možete prebaciti s RGB565 (što ekran treba) na JPEG (što datoteka treba) bez ponovnog pokretanja upravljačkog programa. Zato put visoke rezolucije poziva esp_camera_deinit(), ponovno se pokreće u JPEG načinu pri punoj rezoluciji, snimi fotografiju, a zatim vraća tražilo. Pauza je iskrena, nije greška.
Vremenski pečati bez interneta
Fotografije se spremaju kao /IMG_260730_143052.jpg - godina, mjesec, dan, sat, minuta, sekunda. To dolazi iz PCF8563T sata realnog vremena, koji održava baterija, tako da vrijeme preživi isključivanje. Ako je sat izgubio napajanje, skica ga postavlja iz trenutka kada je skica kompajlirana.
Ispravka proizvođačevog primjera
Proizvođačev vlastiti primjer kamere definira SD karticu na pinovima 2, 42 i 41. Ti brojevi pinova su kopirani s druge ploče - na ovoj su to pinovi mikrofona. SD kartica je zapravo na SPI sabirnici ekrana s vlastitim chip selectom na IO47, što je ono što kod ovdje koristi. Ovo je važno ako ikada želite da kamera i mikrofoni rade u istoj skici.
Dijeljenje jedne SPI sabirnice
Ekran i SD kartica su na iste tri žice, tako da oba moraju prolaziti kroz isti SPI upravljački program. Ova skica koristi Arduino_HWSPI sa standardnim SPI objektom upravo iz tog razloga. Korištenje različitog upravljačkog programa za svaki je klasičan uzrok ekrana koji se zamrzne čim se SD kartica montira.
O MaTouch AI ESP32-S3 2.8" ploči
Svaki projekt na ovoj stranici radi na MaTouch AI ESP32-S3 2.8" TFT ST7789V od Makerfabsa. To je sve-u-jednom ploča: ekran u boji na dodir, kamera od 3 megapiksela, dva mikrofona i pravi pojačivač zvučnika, sve pokreće ESP32-S3 s 8 MB PSRAM-a. Ta kombinacija omogućava ove AI projekte na jednoj ploči bez ičega drugog priključenog.
8 MB PSRAM-a je važnije od bilo kojeg drugog broja ovdje. To omogućava ploči da istovremeno drži kadar kamere, nekoliko sekundi snimljenog zvuka ili base64-kodiranu fotografiju u memoriji - ništa od toga ne stane u normalni RAM ESP32-a.
Dokumentacija proizvođača: Makerfabs wiki stranica.
Ključne specifikacije
Procesor: ESP32-S3, dvojezgreni 240 MHz, WiFi 2.4 GHz + Bluetooth 5.0
Memorija: 16 MB flash, 8 MB PSRAM (potrebno za gotovo svaki projekt ovdje)
Ekran: 2.8" IPS, 320×240, ST7789V upravljački program, SPI
Dodir: GT911 kapacitivni, prati 5 prstiju istovremeno
Kamera: OV3660, 3 megapiksela, do 2048×1536
Mikrofoni: dva INMP441 I2S digitalna mikrofona (pravi stereo par)
Zvučnik: MAX98357A klasa-D pojačivač, 3.2 W na 4 Ω
Pohrana: microSD kartica slot (SPI način)
Napajanje: USB-C, JST konektor za bateriju, TP4056 punjač, prekidač za napajanje
Također na ploči: WS2812B RGB LED, PCF8563T sat realnog vremena na bateriju i MAX17048 mjerač napunjenosti baterije koji nije naveden u službenim specifikacijama
Dva USB-C porta nisu ista. Zvučnik ploče dijeli svoje signalne pinove (IO19 i IO20) s nativnim USB portom, jer su ti pinovi hardverski USB podatkovni vodovi ESP32-S3. Uvijek prenosite i napajajte kroz CH340K USB-C port (onaj pored RESET dugmeta) i postavite USB CDC On Boot na Disabled. Ako koristite pogrešan port, zvuk će se loše ponašati ili prijenosi neće uspjeti.
Arduino IDE postavke
Ove postavke su važne. Većina problema koje ljudi prijavljuju s ovom pločom je jedna od ovih pogrešnih i one se resetiraju kada promijenite verziju jezgre, pa ih provjerite ponovo nakon svake promjene.
Postavka | Vrijednost |
|---|---|
Ploča | ESP32S3 Dev Module |
Verzija ESP32 jezgre | 2.0.17 |
PSRAM | OPI PSRAM |
Veličina flasha | 16MB (128Mb) |
Particijska shema | 16M Flash (3MB APP/9.9MB FATFS) |
USB CDC On Boot | Disabled |
Brzina prijenosa | 921600 |
Obriši sav flash prije prijenosa | Disabled |
Port | CH340K USB-C port |
Koristite ESP32 core 2.0.17, ne 3.x. Espressif je uklonio modele za prepoznavanje lica na uređaju u core 3, pa se projekti za lice neće kompajlirati tamo. Zaključavanje na 2.0.17 osigurava da svaki projekt na ovoj stranici radi s jednom konfiguracijom. U Boards Manageru, padajući izbornik verzija omogućava vam prebacivanje naprijed-nazad kad god želite.
Koristite GFX Library for Arduino verziju 1.5.6, ne 1.6.x. Izdanja 1.6 su napravljena za ESP32 core 3 i mogu se zamrznuti pri pokretanju na core 2.0.17. Ako vaš ekran ostane crn nakon uploada, ovo je prva stvar koju treba provjeriti.
Potrebne biblioteke
Instalirajte ih putem Tools → Manage Libraries u Arduino IDE-u. Brojevi verzija su važni - molimo koristite navedene.
Biblioteka | Verzija | Autor |
|---|---|---|
GFX Library for Arduino | 1.5.6 | moononournation |
bb_captouch | 1.3.1 | Larry Bank |
Rješavanje problema
Simptom | Uzrok i popravak |
|---|---|
Ekran ostaje crn | Pogrešna verzija GFX biblioteke (koristite 1.5.6) ili pogrešne postavke ploče. |
|
|
Ništa se ne uploada / nema COM porta | Pogrešan USB-C priključak ili CH340 upravljački program nije instaliran. |
Kamera ne uspijeva i nikad se ne oporavi | Reset linija kamere povezana je s RESET gumbom ploče, pa je softver ne može ponovno pokrenuti. Pritisnite RESET. Ako i dalje ne uspije, ponovno umetnite kabel kamere. |
Preuzmite kod
Kompletan Arduino skicu za ovaj projekt, zajedno s pins.h i svime ostalim što mu treba, možete besplatno preuzeti.
Raspakirajte ga, otvorite .ino datoteku u Arduino IDE-u, provjerite gornje postavke i uploadajte putem CH340K USB-C priključka.
Gdje kupiti ovu ploču
Ovo su affiliate linkovi. Ne koštaju vas ništa dodatno i pomažu podržati besplatni kod i tutorijale na ovoj stranici - hvala.
This tutorial is part of: Makerfabs MaTouch AI ESP32S3 2.8" Camera
- Makerfabs MaTouch ESP32-S3 2.8" kamera Offline prepoznavanje lica na ESP32-S3 - Bez interneta, bez API ključa
- Makerfabs MaTouch ESP32-S3 2.8" kamera Izgradite AI glasovnog asistenta na ESP32-S3 (Azure + DeepSeek)
- Makerfabs MaTouch ESP32-S3 2.8" kamera ESP32-S3 AI vizija: Usmjerite kameru i pitajte šta vidi
/*
* ===========================================================================
* 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(); }
}
Things you might need
-
OtherProduct page for MaTouch AI ESP32S3 2.8" TFT ST7789Vmakerfabs.com
Resources & references
-
DocumentationMakerfabs MaTouch ESP32-S3 2.8" Camera and Touchscreen: user's manualwiki.makerfabs.com
-
Documentation
-
DocumentationProduct page for MaTouch AI ESP32S3 2.8" TFT ST7789Vmakerfabs.com
-
DownloadArduino GFX Library on Githubgithub.com
Files📁
Required File (.h)
Other Files
Schematic
-
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