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Please see the image attached. I want the retangle (border) not to overlap the other images. For some weird reason only the last image added to the canvas is showing correctly.

enter image description here

Here is my code

<!DOCTYPE HTML>
<html>
<head>
<style>
  body {
    margin: 0px;
    padding: 0px;
  }
</style>
</head>
<body>
<canvas id="myCanvas" width="600" height="600"></canvas>
<script>


  function loadImages(sources, callback) {
    var images = {};
    var loadedImages = 0;
    var numImages = 0;
    // get num of sources
    for(var src in sources) {
      numImages++;
    }
    for(var src in sources) {
      images[src] = new Image();

      images[src].onload = function() {
        if(++loadedImages >= numImages) {
          callback(images);
        }
      };
      images[src].src = sources[src];
    }
  }
  var canvas = document.getElementById('myCanvas');
  var context = canvas.getContext('2d');

  var sources = {
  bg: 'bg2.jpg',
    a: 'a.jpg',
    b: 'b.jpg',
     c: 'c.jpg',
     d: 'd.jpg',
       e: 'e.jpg',
      f: 'f.jpg'

  };



    function drawImageRot(img,x,y,width,height,deg){

var c=document.getElementById("myCanvas");
var ctx=c.getContext("2d");
var rad = deg * Math.PI / 180;
ctx.translate(x + width / 2, y + height / 2);
ctx.rotate(rad);

ctx.rect(width / 2 * (-1), height / 2 * (-1), width, height);
ctx.stroke();
ctx.strokeStyle = 'white';
ctx.lineWidth = 2;
ctx.drawImage(img,width / 2 * (-1),height / 2 * (-1),width,height);
ctx.rotate(rad * ( -1 ) );
ctx.translate((x + width / 2) * (-1), (y + height / 2) * (-1));
}
  loadImages(sources, function(images) {
   drawImageRot(images.bg, 0, 0, 600, 600,0);


   drawImageRot(images.b, 380, 55,277, 184,-20);

 drawImageRot(images.a,-20,-20, 300, 224,-30);
         drawImageRot(images.e, 130, 150,350, 274,0);
    drawImageRot(images.d, 320, 430,277, 184,20);
     drawImageRot(images.f, 0, 380, 240,160,-10);




  });



</script>

share|improve this question

2 Answers 2

up vote 4 down vote accepted

My idea is drawing the rectangle border first and then draw the images. Another thing is the way that you are drawing the rectangles. If you wanna draw rectangles this is the code snippet:

    ctx.beginPath();
    ctx.rect(width / 2 * (-1), height / 2 * (-1), width, height);
    ctx.lineWidth = 5;
    ctx.strokeStyle = 'white';
    ctx.stroke();

Another thing too, is the way that you turn back to the original position. There's a more simple way with the use of ctx.save() and ctx.restore(). This is the way that canvas propose you to turn back when you are doing transformations.

So here is my solution I hope that you enjoy it. Thanks Sergio.

function loadImages(sources, callback) {
    var images = {};
    var loadedImages = 0;
    var numImages = 0;
    // get num of sources
    for(var src in sources) {
      numImages++;
    }
    for(var src in sources) {
      images[src] = new Image();

      images[src].onload = function() {
        if(++loadedImages >= numImages) {
          callback(images);
        }
      };
      images[src].src = sources[src];
    }
  }


  var canvas = document.getElementById('myCanvas');
  var context = canvas.getContext('2d');


  var sources = {
  bg: 'bg2.jpg',
    a: 'a.jpg',
    b: 'b.jpg',
     c: 'c.jpg',
     d: 'd.jpg',
       e: 'e.jpg',
      f: 'f.jpg'

  };


function drawRectanlesBorders(img,x,y,width,height,deg){

        var c=document.getElementById("myCanvas");
        var ctx=c.getContext("2d");
        var rad = deg * Math.PI / 180;

        ctx.save();
        ctx.translate(x + width / 2, y + height / 2);
        ctx.rotate(rad);
        ctx.beginPath();
        ctx.rect(width / 2 * (-1), height / 2 * (-1), width, height);
        ctx.lineWidth = 5;
        ctx.strokeStyle = 'white';
        ctx.stroke();
        ctx.restore();
    }


function drawImageRot(img,x,y,width,height,deg){

        var c=document.getElementById("myCanvas");
        var ctx=c.getContext("2d");
        var rad = deg * Math.PI / 180;

        ctx.save();
        ctx.translate(x + width / 2, y + height / 2);
        ctx.rotate(rad);
        ctx.drawImage(img,width / 2 * (-1),height / 2 * (-1),width,height);
        ctx.restore();
    }


loadImages(sources, function(images) {

            //draw background  image
        drawImageRot(images.bg, 0, 0, 600, 600,0);

           //draw borders
        drawRectanlesBorders(images.b, 380, 55,277, 184,-20);


        drawRectanlesBorders(images.a,-20,-20, 300, 224,-30);
                drawRectanlesBorders(images.e, 130, 150,350, 274,0);
        drawRectanlesBorders(images.d, 320, 430,277, 184,20);
        drawRectanlesBorders(images.f, 0, 380, 240,160,-10);

         //draw images
        drawImageRot(images.b, 380, 55,277, 184,-20);

        drawImageRot(images.a,-20,-20, 300, 224,-30);
                drawImageRot(images.e, 130, 150,350, 274,0);
        drawImageRot(images.d, 320, 430,277, 184,20);
        drawImageRot(images.f, 0, 380, 240,160,-10);

  });

You should decide the order to paint the images too see what you really wanna see.

share|improve this answer
1  
+1 Your solution looks pretty good! One improvement would be to create the canvas & context variables outside and before the functions--no need to recreate them with each function call. –  markE Oct 1 '13 at 16:06
    
Yes, you're right. I made this solution too fast, copying and pasting and I have forgot that detail. Thanks for your observation. –  sergio Oct 1 '13 at 17:05
    
If only I could accept your answer 20 times. Works perfectly! Thanks man. –  razeth01 Oct 2 '13 at 6:40

Rather than setting the z-index values as negative, try increasing the values (in positive number range) for each new image.

Edit: Found the similar problem (solved already). It guides through various optimum methods of drawing on canvas.

share|improve this answer
    
its not the z-index, its the rotation –  razeth01 Oct 1 '13 at 11:06
    
Then you should be using z-index to overlay images over each other. –  Vikram_Tiwari Oct 1 '13 at 11:10
    
HTML5 Canvas does not have a z-index property. –  razeth01 Oct 1 '13 at 11:23
    
This may help you better. –  Vikram_Tiwari Oct 1 '13 at 11:29

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