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Is there an easy way to shift canvas contents to the left, dropping the leftmost pixels and moving all others to the left?

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3 Answers 3

up vote 6 down vote accepted

Using getImageData and putImageData you could easily implement a pixel-by-pixel shift. For instance:

// shift everything to the left:
var imageData = context.getImageData(1, 0, context.canvas.width-1, context.canvas.height);
context.putImageData(imageData, 0, 0);
// now clear the right-most pixels:
context.clearRect(context.canvas.width-1, 0, 1, context.canvas.height);
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No, I mean dropping them (as in "they're over the left border now, drop them"). But yes, this looks good. –  thejh Dec 6 '11 at 15:26
    
Oh I see, I was thinking about the rightmost pixels. I'll remove that sentence from the answer. –  James Clark Dec 6 '11 at 15:31

Check out this jsFiddle example which uses ctx.translate and ctx.get/putImageData.

source code here

How it was done:

If redrawing what you want to shift is not too slow, the canvas transform methods are worth using.

get/putImageData will also work if you just want to shift the current contents of the canvas without redrawing. This is not without disadvantages; it must make a copy of the pixel region being moved and it cannot be used if you draw any images from an external domain on your canvas:

Whenever the getImageData() method of the 2D context of a canvas element whose origin-clean flag is set to false is called with otherwise correct arguments, the method must throw a SecurityError exception.

In case jsFiddle should ever fail, here's the code:

HTML:

<a href="javascript:doIt()">shift 25 pixels to the left using `translate`</a><br>
<a href="javascript:shiftImage()">shift 25 pixels to the left using `getImageData/putImageData`</a><br>
<canvas id="canvas" width="600" height="200"></canvas>

JS:

var canvas = document.getElementById( "canvas" ),
    ctx = canvas.getContext( "2d" );

var xOff = 0;
var redraw = function() {
        ctx.clearRect(0, 0, 600, 200);
        ctx.save();
        ctx.translate(xOff, 0);

        ctx.font = "100px Arial";
        ctx.fillText( "Google", 20, 130 );

        ctx.restore();
};

window.doIt = function() {
    xOff -= 25;
    redraw();
}

redraw();

var shiftContext = function(ctx, w, h, dx, dy) {
  var clamp = function(high, value) { return Math.max(0, Math.min(high, value)); };
  var imageData = ctx.getImageData(clamp(w, -dx), clamp(h, -dy), clamp(w, w-dx), clamp(h, h-dy));
  ctx.clearRect(0, 0, w, h);
  ctx.putImageData(imageData, 0, 0);
}

window.shiftImage = function() {
  shiftContext(ctx, 600, 200, -25, 0);   
}


var shiftContext = function(ctx, w, h, dx, dy) {
  var clamp = function(high, value) { return Math.max(0, Math.min(high, value)); };
  var imageData = ctx.getImageData(clamp(w, -dx), clamp(h, -dy), clamp(w, w-dx), clamp(h, h-dy));
  ctx.clearRect(0, 0, w, h);
  ctx.putImageData(imageData, 0, 0);
};

window.shiftImage = function() {
  shiftContext(ctx, 600, 200, -25, 0);   
};
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"If you can redraw what you want to shift, you should use the canvas transform methods." - why? I guess that, depending on my code, this might be really slow. –  thejh Dec 6 '11 at 15:27
    
"This is not as desirable because it cannot be used if you draw any images from an external domain on your canvas" - valid concern, but this isn't what I'm doing. Also, I guess you could just transfer the image via JSONP for solving this. –  thejh Dec 6 '11 at 15:29
1  
Your point about speed is valid; I guess it should say "if redrawing what you want to shift is not too slow." At the same time, getImage actually makes a copy of all the pixels in the specified image region; whether one is faster than the other will depend on the complexity of the image being drawn and the size of the region shifted. –  ellisbben Dec 6 '11 at 16:55

Perfect guys and thanks. Here's a simplified version of ellisbben's code, works a treat for some scrolling graphs I've building:

function shift_canvas(ctx, w, h, dx, dy) {
  var imageData = ctx.getImageData(0, 0, w, h);
  ctx.clearRect(0, 0, w, h);
  ctx.putImageData(imageData, dx, dy);
}
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