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Here's what I think I want to do but I can't wrap my head around the right way to do it.

So I load a bunch of images into variables (think digital clock)...

var digit0 = "images/d0.png";
var digit1 = "images/d1.png";
var digit2 = "images/d2.png";
var digit3 = "images/d3.png";
var digit4 = "images/d4.png";
var digit5 = "images/d5.png";
var digit6 = "images/d6.png";
var digit7 = "images/d7.png";
var digit8 = "images/d8.png";
var digit9 = "images/d9.png";

Then in a loop I try to load those images into a div...

//SKIP A BUNCH OF TIMER CODE THAT WORKS AND GIVES ME "seconds".

var secondDigit = "digit"+(seconds.toString()).substr(1,1);
//Trying to make a string that refers to the matching variable above.

$("#d1").html('<img src="'+digit0+'" />');        //-- THIS ONE WORKS 
$("#d2").html('<img src="'+secondDigit+'" />');   //-- THIS ONE DOESN'T

Edit: So using this method, does it hit the server every time? If so, that's not what I want. I want to save the images once so I can use them over and over without hitting the server every time.

Thanks!

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1 Answer 1

Your images will be cached by the browser, so no worries there.


Use an actual array instead of an array (:P) of variables:

var digits [
    "images/d0.png",
    "images/d1.png",
    "images/d2.png",
    "images/d3.png",
    "images/d4.png",
    "images/d5.png",
    "images/d6.png",
    "images/d7.png",
    "images/d8.png",
    "images/d9.png"
];

var secondDigit = seconds.toString().substr(1,1);

$("#d2").html('<img src="' + digits[secondDigit] + '" />');
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That makes sense! But that will hit the server every time, correct? Is there a way to get the images one time and use them over and over? –  Layne Jan 31 '13 at 20:00
    
@Layne - Nope. The images will be cached by the browser. For better performance, you shouldn't be replacing those images, but updating their src. –  Joseph Silber Jan 31 '13 at 20:01
    
"updating their src" That's what I'd be doing with "$("#d2").html('<img src="' + digits[secondDigit] + '" />');" correct? –  Layne Jan 31 '13 at 20:08
    
@Layne - Nope. You're replacing those images. Here's a [non-functioning] fiddle with some sample code: jsfiddle.net/5KFW3 –  Joseph Silber Jan 31 '13 at 20:22
    
Is this comparable? $("#d2 img").attr("src", digits[firstDigit]); or does that also replace instead of update? –  Layne Jan 31 '13 at 20:56

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