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I am trying to get the value of the backgound-image url. The url is set inline directly in the element tag with the style attribute like so

<a style="background-image: url(https:// ....)"></a>

I tried doing

var url = $(this).css('background-image')

with various regexes but it does not seem to work. I am trying to store this URL into MongoDB but I get this error

var styles = parse(el.attribs.style); TypeError: Cannot read property 'attribs' of undefined

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  • Can you paste in a larger snippet of your javascript? It's unclear what this is in your jQuery snippet, and the error you are showing seems to indicate that you are not successfully selecting the element.
    – dave
    Mar 8, 2017 at 23:22
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    el.attribs.style should be el.attributes.style or el.getAttribute("style"), but using $(el).css('background-image') would be the best way. What's not working about it?
    – imtheman
    Mar 8, 2017 at 23:25
  • I think what he needs is a regex so he can extract 'theurl.com' instead of saving the whole value 'url("theurl.com")'.
    – James
    Mar 8, 2017 at 23:40
  • I tried doing this from another thread about this topic url = url.replace(/^url\(["']?/, '').replace(/["']?\)$/, ''); but it does not work
    – henhen
    Mar 9, 2017 at 2:24
  • Does this answer your question? Get URL from background-image Property
    – Jason C
    Sep 8, 2020 at 16:21

2 Answers 2

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Get the style value, then strip the URL from it

var bi = $('a').css("background-image");
alert(bi.split(/"/)[1]);

The call to jQuery .css("background-image") always returns the URL within double quotes, regardless how it was set originally.

Sample fiddle: https://jsfiddle.net/6qk3ufcb/

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In vanilla JS, having full DOM access, it can be done like so:

document.querySelector('a').style.backgroundImage.split('"')[1]

Or, if for whatever reason you don't have DOM access (for example dealing in node, and operating on some simplified HTML parser) it can also be done with regexp:

const htmlString = `<div class="bg-div" style="background-image: url('https://loremipsum.com/imageIpsum.jpg');">`

const reg = /url.'([\w\W]+?)'/;
const searched = reg.exec(htmlString)
console.log(searched[1]) //=> https://loremipsum.com/imageIpsum.jpg

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