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Is it possible to use jQuery to find all the background images on a page? My original plan was to loop through every element using:

jQuery("*").each(function() { ... });

and then check whether each element had a property set for .css("background-image")

However this doesn't seem to work. jQuery("*") doesn't seem very performant.

Is there a better way?

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1  
You can use :visible selector to work only with visible parts of the page. –  dzejkej Dec 12 '11 at 21:33
    
I hadn't thought of using a filter! Thanks for the tip. –  Tom R Dec 13 '11 at 0:01
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3 Answers

up vote 3 down vote accepted

This works for me:

   <div style="background-image:url('image1.jpg')">
        <div style="background-image:url('image2.jpg')">
        </div>
   </div>

and the jquery:

   $('*').each(function(i, item) {
       console.log($(item).css('background-image'));
   });

The console log outputs image1.jpg and image2.jpg, respectively.

And no, using the * selector is very, very slow. It literally checks everything (even inline elements that are very, very unlikely to have background images. You would be better off selecting individual tag types (like divs) or searching by class or id. Those will be much more efficient than the * selector.

Good luck.

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You could try the attribute contains word selector:

$('*[style~="background-image"]')

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AFAIK That works only if the elements have the background-image defined in the style attributes. It is not checking CSS. –  dzejkej Dec 12 '11 at 21:31
    
@dzejkej, so is the accepted answer. –  David Thomas Dec 13 '11 at 0:32
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While I realise that this question has already been answered, and has an accepted answer, it seems worth pointing out that the currently-accepted solution will only reliably inform you of background-images set using the in-line style attribute.

to access those background-images of elements that are assigned via external style sheets the following is more reliable:

var elems = document.getElementsByTagName('*'),
    backgrounds = [];

for (var i=0, len=elems.length; i<len; i++){
    if (window.getComputedStyle(elems[i],null).getPropertyValue('background-image') != 'none'){
        backgrounds.push(window.getComputedStyle(elems[i],null).getPropertyValue('background-image'));
    }
}

console.log(backgrounds);

JS Fiddle demo.

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