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

So I'm creating a cost calculator in jQuery and PHP. I use the following snippet to toggle a button, so user will see what is checked.

        $("[data-button='5'] .status").attr("src" , "hintalaskurikuvat/greenstatus.png");


But however, it won't toggle the image, I know that. Is there a simple way to toggle between hintalaskurikuvat/greenstatus.png and hintalaskurikuvat/redstatus.png as the src for [data-button='5']?

share|improve this question

5 Answers 5

up vote 1 down vote accepted

Maybe this could work for you

var image;
if ($("[data-button='5']").hasClass("selected"))
    image = "hintalaskurikuvat/greenstatus.png";   
    image = "hintalaskurikuvat/redstatus.png";

$("[data-button='5'] .status").attr("src" , image);
share|improve this answer
Love it! This works perfectly. – user1537415 Sep 21 '12 at 18:24

Here is what I did to have it available as an extension of JQuery (just add this to your *.js file):

(function($) {

$.fn.toggleAttr = function(attribute, value) {
/// <summary>
///     Toggles on/off provided attribute for any tag/element 
/// </summary>
/// <param name="attribute" type="object">
///    Name of attribute to add or remove, eg: checked=""
/// </param> 
/// <param name="value" type="object">
///    Value of the attribute to add or remove, eg: ="checked"
/// </param> 

and simple way of using it:

$('.someclass').toggleAttr('checked', 'checked');
share|improve this answer

You could do something like this:

var sel = $("[data-button='5']");
sel.find('.status').attr("src", sel.hasClass('selected') ? "greenstatus.png" : "redstatus.png");
share|improve this answer

Try adding this in your click function:

$("[data-button='5']").attr("src", ($("[data-button='5']").attr("src")=="hintalaskurikuvat/greenstatus.png") ? "hintalaskurikuvat/redstatus.png":"hintalaskurikuvat/greenstatus.png" );
share|improve this answer
It has some error, not working in current form. – user1537415 Sep 21 '12 at 18:25
Hmmm, works fine when I test it. Perhaps you didn't implement the code as it needs to be. – j08691 Sep 21 '12 at 18:27
I just added it after the click event? – user1537415 Sep 21 '12 at 18:43
Within, not after. – j08691 Sep 21 '12 at 18:48 – user1537415 Sep 21 '12 at 18:50
    var $img = $(".status", this);
    var cur = $img.attr("src");
    var fst = 'hintalaskurikuvat/greenstatus.png';
    var scd = 'hintalaskurikuvat/redstatus.png';
    $img.attr('src', cur == fst ? scd : fst);
share|improve this answer
Works, but I like the way with less lines ;) – user1537415 Sep 21 '12 at 18:25

Your Answer


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