349 lines
		
	
	
		
			7.3 KiB
		
	
	
	
		
			C++
		
	
	
	
			
		
		
	
	
			349 lines
		
	
	
		
			7.3 KiB
		
	
	
	
		
			C++
		
	
	
	
/*
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 Example sketch for TFT_eSPI library.
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 No fonts are needed.
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 Draws a 3d rotating cube on the TFT screen.
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 Original code was found at http://forum.freetronics.com/viewtopic.php?f=37&t=5495
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 */
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#define BLACK 0x0000
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#define WHITE 0xFFFF
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#include <SPI.h>
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#include <TFT_eSPI.h> // Hardware-specific library
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TFT_eSPI tft = TFT_eSPI();       // Invoke custom library
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int16_t h;
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int16_t w;
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int inc = -2;
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float xx, xy, xz;
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float yx, yy, yz;
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float zx, zy, zz;
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float fact;
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int Xan, Yan;
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int Xoff;
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int Yoff;
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int Zoff;
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struct Point3d
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{
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  int x;
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  int y;
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  int z;
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};
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struct Point2d
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{
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  int x;
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  int y;
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};
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int LinestoRender; // lines to render.
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int OldLinestoRender; // lines to render just in case it changes. this makes sure the old lines all get erased.
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struct Line3d
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{
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  Point3d p0;
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  Point3d p1;
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};
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struct Line2d
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{
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  Point2d p0;
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  Point2d p1;
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};
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Line3d Lines[20];
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Line2d Render[20];
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Line2d ORender[20];
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/***********************************************************************************************************************************/
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void setup() {
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  tft.init();
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  h = tft.height();
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  w = tft.width();
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  tft.setRotation(1);
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  tft.fillScreen(TFT_BLACK);
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  cube();
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  fact = 180 / 3.14159259; // conversion from degrees to radians.
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  Xoff = 240; // Position the center of the 3d conversion space into the center of the TFT screen.
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  Yoff = 160;
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  Zoff = 550; // Z offset in 3D space (smaller = closer and bigger rendering)
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}
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/***********************************************************************************************************************************/
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void loop() {
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  // Rotate around x and y axes in 1 degree increments
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  Xan++;
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  Yan++;
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  Yan = Yan % 360;
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  Xan = Xan % 360; // prevents overflow.
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  SetVars(); //sets up the global vars to do the 3D conversion.
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  // Zoom in and out on Z axis within limits
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  // the cube intersects with the screen for values < 160
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  Zoff += inc; 
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  if (Zoff > 500) inc = -1;     // Switch to zoom in
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  else if (Zoff < 160) inc = 1; // Switch to zoom out
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  for (int i = 0; i < LinestoRender ; i++)
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  {
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    ORender[i] = Render[i]; // stores the old line segment so we can delete it later.
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    ProcessLine(&Render[i], Lines[i]); // converts the 3d line segments to 2d.
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  }
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  RenderImage(); // go draw it!
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  delay(14); // Delay to reduce loop rate (reduces flicker caused by aliasing with TFT screen refresh rate)
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}
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/***********************************************************************************************************************************/
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void RenderImage( void)
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{
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  // renders all the lines after erasing the old ones.
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  // in here is the only code actually interfacing with the OLED. so if you use a different lib, this is where to change it.
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  for (int i = 0; i < OldLinestoRender; i++ )
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  {
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    tft.drawLine(ORender[i].p0.x, ORender[i].p0.y, ORender[i].p1.x, ORender[i].p1.y, BLACK); // erase the old lines.
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  }
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  for (int i = 0; i < LinestoRender; i++ )
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  {
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    uint16_t color = TFT_BLUE;
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    if (i < 4) color = TFT_RED;
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    if (i > 7) color = TFT_GREEN;
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    tft.drawLine(Render[i].p0.x, Render[i].p0.y, Render[i].p1.x, Render[i].p1.y, color);
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  }
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  OldLinestoRender = LinestoRender;
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}
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/***********************************************************************************************************************************/
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// Sets the global vars for the 3d transform. Any points sent through "process" will be transformed using these figures.
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// only needs to be called if Xan or Yan are changed.
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void SetVars(void)
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{
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  float Xan2, Yan2, Zan2;
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  float s1, s2, s3, c1, c2, c3;
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  Xan2 = Xan / fact; // convert degrees to radians.
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  Yan2 = Yan / fact;
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  // Zan is assumed to be zero
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  s1 = sin(Yan2);
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  s2 = sin(Xan2);
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  c1 = cos(Yan2);
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  c2 = cos(Xan2);
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  xx = c1;
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  xy = 0;
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  xz = -s1;
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  yx = (s1 * s2);
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  yy = c2;
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  yz = (c1 * s2);
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  zx = (s1 * c2);
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  zy = -s2;
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  zz = (c1 * c2);
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}
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/***********************************************************************************************************************************/
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// processes x1,y1,z1 and returns rx1,ry1 transformed by the variables set in SetVars()
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// fairly heavy on floating point here.
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// uses a bunch of global vars. Could be rewritten with a struct but not worth the effort.
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void ProcessLine(struct Line2d *ret, struct Line3d vec)
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{
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  float zvt1;
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  int xv1, yv1, zv1;
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  float zvt2;
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  int xv2, yv2, zv2;
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  int rx1, ry1;
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  int rx2, ry2;
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  int x1;
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  int y1;
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  int z1;
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  int x2;
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  int y2;
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  int z2;
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  int Ok;
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  x1 = vec.p0.x;
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  y1 = vec.p0.y;
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  z1 = vec.p0.z;
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  x2 = vec.p1.x;
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  y2 = vec.p1.y;
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  z2 = vec.p1.z;
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  Ok = 0; // defaults to not OK
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  xv1 = (x1 * xx) + (y1 * xy) + (z1 * xz);
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  yv1 = (x1 * yx) + (y1 * yy) + (z1 * yz);
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  zv1 = (x1 * zx) + (y1 * zy) + (z1 * zz);
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  zvt1 = zv1 - Zoff;
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  if ( zvt1 < -5) {
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    rx1 = 256 * (xv1 / zvt1) + Xoff;
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    ry1 = 256 * (yv1 / zvt1) + Yoff;
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    Ok = 1; // ok we are alright for point 1.
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  }
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  xv2 = (x2 * xx) + (y2 * xy) + (z2 * xz);
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  yv2 = (x2 * yx) + (y2 * yy) + (z2 * yz);
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  zv2 = (x2 * zx) + (y2 * zy) + (z2 * zz);
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  zvt2 = zv2 - Zoff;
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  if ( zvt2 < -5) {
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    rx2 = 256 * (xv2 / zvt2) + Xoff;
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    ry2 = 256 * (yv2 / zvt2) + Yoff;
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  } else
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  {
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    Ok = 0;
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  }
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  if (Ok == 1) {
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    ret->p0.x = rx1;
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    ret->p0.y = ry1;
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    ret->p1.x = rx2;
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    ret->p1.y = ry2;
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  }
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  // The ifs here are checks for out of bounds. needs a bit more code here to "safe" lines that will be way out of whack, so they dont get drawn and cause screen garbage.
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}
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/***********************************************************************************************************************************/
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// line segments to draw a cube. basically p0 to p1. p1 to p2. p2 to p3 so on.
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void cube(void)
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{
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  // Front Face.
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  Lines[0].p0.x = -50;
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  Lines[0].p0.y = -50;
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  Lines[0].p0.z = 50;
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  Lines[0].p1.x = 50;
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  Lines[0].p1.y = -50;
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  Lines[0].p1.z = 50;
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  Lines[1].p0.x = 50;
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  Lines[1].p0.y = -50;
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  Lines[1].p0.z = 50;
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  Lines[1].p1.x = 50;
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  Lines[1].p1.y = 50;
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  Lines[1].p1.z = 50;
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  Lines[2].p0.x = 50;
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  Lines[2].p0.y = 50;
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  Lines[2].p0.z = 50;
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  Lines[2].p1.x = -50;
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  Lines[2].p1.y = 50;
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  Lines[2].p1.z = 50;
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  Lines[3].p0.x = -50;
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  Lines[3].p0.y = 50;
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  Lines[3].p0.z = 50;
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  Lines[3].p1.x = -50;
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  Lines[3].p1.y = -50;
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  Lines[3].p1.z = 50;
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  //back face.
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  Lines[4].p0.x = -50;
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  Lines[4].p0.y = -50;
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  Lines[4].p0.z = -50;
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  Lines[4].p1.x = 50;
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  Lines[4].p1.y = -50;
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  Lines[4].p1.z = -50;
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  Lines[5].p0.x = 50;
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  Lines[5].p0.y = -50;
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  Lines[5].p0.z = -50;
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  Lines[5].p1.x = 50;
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  Lines[5].p1.y = 50;
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  Lines[5].p1.z = -50;
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  Lines[6].p0.x = 50;
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  Lines[6].p0.y = 50;
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  Lines[6].p0.z = -50;
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  Lines[6].p1.x = -50;
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  Lines[6].p1.y = 50;
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  Lines[6].p1.z = -50;
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  Lines[7].p0.x = -50;
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  Lines[7].p0.y = 50;
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  Lines[7].p0.z = -50;
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  Lines[7].p1.x = -50;
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  Lines[7].p1.y = -50;
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  Lines[7].p1.z = -50;
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  // now the 4 edge lines.
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  Lines[8].p0.x = -50;
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  Lines[8].p0.y = -50;
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  Lines[8].p0.z = 50;
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  Lines[8].p1.x = -50;
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  Lines[8].p1.y = -50;
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  Lines[8].p1.z = -50;
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  Lines[9].p0.x = 50;
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  Lines[9].p0.y = -50;
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  Lines[9].p0.z = 50;
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  Lines[9].p1.x = 50;
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  Lines[9].p1.y = -50;
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  Lines[9].p1.z = -50;
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  Lines[10].p0.x = -50;
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  Lines[10].p0.y = 50;
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  Lines[10].p0.z = 50;
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  Lines[10].p1.x = -50;
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  Lines[10].p1.y = 50;
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  Lines[10].p1.z = -50;
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  Lines[11].p0.x = 50;
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  Lines[11].p0.y = 50;
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  Lines[11].p0.z = 50;
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  Lines[11].p1.x = 50;
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  Lines[11].p1.y = 50;
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  Lines[11].p1.z = -50;
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  LinestoRender = 12;
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  OldLinestoRender = LinestoRender;
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}
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