Sign up ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I want to dynamically change the CSS for a specific element. The following hard coded jQuery statement works:

$('.people div[data-face="1"] i').css('background-image', 'url(http://localhost:58888/_pictures/picture_000.jpg)');

However, I need "1" to be a variable ("dataNum") and the actual url needs to be a variable called "URL".

I've been trying various escape characters, but can't get it to work without errors. Here's my latest:

 $("\'.people div[data-face=\" " + dataNum + '\"] i\').css(\'background-image\', \'url(' + URL + ')\' ');

What am I missing? Thanks.

share|improve this question

6 Answers 6

up vote 1 down vote accepted

You can do it with string concatenation like:

$('.people div[data-face="' + dataNum + '"] i').css('background-image', 'url('+URL+')');
share|improve this answer

jQuery selectors are not magic; they're just ordinary strings.
You don't need to escape anything.

Instead, you just need ordinary string concatenation.

share|improve this answer


$('.people div[data-face="'+dataNum+'"] i').css('background-image', 'url(\''+URL+'\')');
share|improve this answer

It's just string math (concatenation) for dataNum and a straight substitution for the url variable:

$('.people div[data-face="' + dataNum + '"] i').css('background-image', url);

or if you want to see the string math broken down in more detail:

var selector = '.people div[data-face="';
selector += dataNum;
selector += '"] i';
$(selector).css('background-image', url);
share|improve this answer
$('.people div[data-face="' + dataNum + "'"] i').css('background-image', 'url(' + URL + ')');
share|improve this answer

You do not really need escaping, following code should work:

$('.people div[data-face="'+dataNum+'"] i').css('background-image', 'url('+URL+')');
share|improve this answer

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.