182 lines
5.2 KiB
C++
182 lines
5.2 KiB
C++
// Sketch to demonstrate smooth (anti-aliased) graphics funtions:
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// Smooth graphics result in less pixel resolution jaggedness.
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#include <TFT_eSPI.h> // Master copy here: https://github.com/Bodmer/TFT_eSPI
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TFT_eSPI tft = TFT_eSPI(); // Invoke library, pins defined in User_Setup.h
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TFT_eSprite spr = TFT_eSprite(&tft);
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// =========================================================================
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// Setup
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// =========================================================================
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void setup() {
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Serial.begin(115200);
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Serial.println("Booting...");
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// Initialise the screen
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tft.init();
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// Ideally set orientation for good viewing angle range because
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// the anti-aliasing effectiveness varies with screen viewing angle
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tft.setRotation(0);
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tft.fillScreen(TFT_BLACK);
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// Small sprite for spot demo
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spr.createSprite(23, 23);
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}
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// =========================================================================
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// Loop
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// =========================================================================
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void loop() {
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// drawSpot is for small anti-aliased circles, coordinates and radius are
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// floating point to allow sub-pixel positioning (large circles will
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// be slow to draw). Use fillSmoothCircle() for large circles.
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// In this case black is the backgorund colour for the anti-aliasing
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float x = 10.5;
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float y = 10.5;
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float r = 8.6;
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tft.drawSpot(x, y, r, TFT_WHITE, TFT_BLACK);
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// Fill sprite with a colour
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spr.fillSprite(TFT_RED);
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// Draw spot in sprite, the backgorund colour is ommitted so function
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// reads background colour for aliasing. (To use this method with direct write
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// to TFT (tft.drawSpot...) requires the capability to read data from the TFT!)
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spr.drawSpot(x, y, r, TFT_WHITE);
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spr.pushSprite(21, 0);
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// Draw a segmented ring meter type display
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// Centre of screen
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int cx = tft.width() / 2;
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int cy = tft.height() / 2;
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// Inner and outer radius of ring
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float r1 = min(cx, cy) - 40.0;
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float r2 = min(cx, cy) - 10.0;
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// Inner and outer line width
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int w1 = r1 / 25;
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int w2 = r2 / 20;
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// The following will be updated by the getCoord function
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float px1 = 0.0;
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float py1 = 0.0;
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float px2 = 0.0;
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float py2 = 0.0;
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// Wedge line function, an anti-aliased wide line between 2 points, with different
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// line widths at the two ends. Background colour is black.
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for (int angle = -130; angle <= 130; angle += 10) {
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getCoord(cx, cy, &px1, &py1, &px2, &py2, r1, r2, angle);
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uint16_t colour = rainbow(map(angle, -130, 130, 0, 127));
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if (angle > 45) colour = TFT_DARKGREY;
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tft.drawWedgeLine(px1, py1, px2, py2, w1, w2, colour, TFT_BLACK);
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}
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// Smooth dark red filled circle
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tft.fillSmoothCircle(cx, cy, r1 - 8, TFT_MAROON, TFT_BLACK);
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// Draw a white dial pointer using wedge line function
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getCoord(cx, cy, &px1, &py1, &px2, &py2, 0, r1 - 10, 45);
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// Magenta wedge line pointer on red background
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// Line tapers from radius 5 to zero
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tft.drawWedgeLine(cx, cy, px2, py2, 5, 0, TFT_WHITE, TFT_MAROON);
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delay(5000);
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// Test wideLine function
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tft.fillScreen(TFT_BLACK);
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// Line width
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int wd = 5;
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// Screen limits
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int w = tft.width() - wd;
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int h = tft.height() - wd;
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// Line end coords
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int x1 = w - 1;
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int x2 = w - 1;
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int y1 = h - 1;
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int y2 = wd;
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for (x2 = wd; x2 < w; x2 += wd * 3) tft.drawWideLine(x1, y1, x2, y2, wd, TFT_WHITE, TFT_BLACK);
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x2 = wd;
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for (y2 = wd; y2 < h; y2 += wd * 4) tft.drawWideLine(x1, y1, x2, y2, wd, TFT_WHITE, TFT_BLACK);
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delay(5000);
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// Demo filled smooth rounded rectangle
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tft.fillScreen(TFT_BLACK);
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x1 = 30;
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y1 = 30;
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w = tft.width() - 2 * x1;
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h = tft.height() - 2 * y1;
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int rad = 30;
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tft.fillSmoothRoundRect(x1, y1, w, h, rad, TFT_CYAN, TFT_BLACK);
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// Wait forever
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while (1) delay(100);
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}
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// =========================================================================
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// Get coordinates of two ends of a line from r1 to r2, pivot at x,y, angle a
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// =========================================================================
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// Coordinates are returned to caller via the xp and yp pointers
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#define DEG2RAD 0.0174532925
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void getCoord(int16_t x, int16_t y, float *xp1, float *yp1, float *xp2, float *yp2, int16_t r1, int16_t r2, float a)
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{
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float sx = cos( (a - 90) * DEG2RAD);
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float sy = sin( (a - 90) * DEG2RAD);
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*xp1 = sx * r1 + x;
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*yp1 = sy * r1 + y;
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*xp2 = sx * r2 + x;
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*yp2 = sy * r2 + y;
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}
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// =========================================================================
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// Return a 16 bit rainbow colour
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// =========================================================================
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unsigned int rainbow(byte value)
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{
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// Value is expected to be in range 0-127
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// The value is converted to a spectrum colour from 0 = blue through to 127 = red
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byte red = 0; // Red is the top 5 bits of a 16 bit colour value
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byte green = 0;// Green is the middle 6 bits
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byte blue = 0; // Blue is the bottom 5 bits
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byte quadrant = value / 32;
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if (quadrant == 0) {
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blue = 31;
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green = 2 * (value % 32);
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red = 0;
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}
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if (quadrant == 1) {
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blue = 31 - (value % 32);
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green = 63;
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red = 0;
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}
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if (quadrant == 2) {
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blue = 0;
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green = 63;
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red = value % 32;
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}
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if (quadrant == 3) {
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blue = 0;
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green = 63 - 2 * (value % 32);
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red = 31;
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}
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return (red << 11) + (green << 5) + blue;
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}
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