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I have two variables: img1 and img2. I have a random number generator that generates either 1 or 2. I need to make a variable based off of that, so it'll be img1 or img2.

Here's the code I have so far:

var $img1 = "<img src=\"slides/leo.jpg\" /><footer>King Leo of TWiT TV</footer>";
var $img2 = "<img src=\"slides/leo-inverted.jpg\" /><footer>VT TiWT fo oeL gniK</footer>";
var $rand = Math.floor(Math.random()*2) + parseFloat(1);
var $slide = $slide.add($rand);
$("#slideshow").html($slide);

It works if I put either $img1 or $img2 as the .html() on the last line, but I can't figure out how to make it pick randomly.

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1 Answer 1

up vote 6 down vote accepted

You should probably avoid naming variables with a $ in front unless they are jQuery objects. That may confuse other scripters. Using an array will solve your problem too:

var imgs = [
    "<img src=\"slides/leo.jpg\" /><footer>King Leo of TWiT TV</footer>",
    "<img src=\"slides/leo-inverted.jpg\" /><footer>VT TiWT fo oeL gniK</footer>"
];
$("#slideshow").html(imgs[Math.floor(Math.random()*imgs.length)]);
share|improve this answer
    
Thanks for the tip. For some reason this doesn't work. –  Rev Aug 16 '11 at 1:48
    
@Rev It works: jsfiddle.net/yWcXe. What is in $slide before hand though, what are you using it for? –  Paulpro Aug 16 '11 at 1:50
    
Ah I think I just forgot to clear a line from my old code. It does work, thank you very much :) I'm using it in place of a slideshow, as a static image that changes randomly. –  Rev Aug 16 '11 at 1:52
    
@Rev Glad to know you got it working :) –  Paulpro Aug 16 '11 at 1:53

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