Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am trying to implement a bookmarking feature in my page. Imagine a list of items, each with a flag. You can click on the flag to highlight your selection and click on it again to deselect.

Here, flags is the class of the div which holds the icon for the bookmark/flag. I am using the data-flag attribute to keep track of the current state of the bookmark/flag. I am able to change the data-flag attribute to 1 whenever I click the flag, but upon clicking it again, instead of resetting the data-flag attribute to 0, it stays as 1 and appends another image in addition to the existing one.

$(".flags").each(function(){
    var $this = $(this);
    $this.click(function() {
        var flagtest = $this.data("flag");
            if(flagtest == 0){
                $this.attr("data-flag","1");
                $this.append("<img class='image' src='icon_dark.png'height=8px/>");
            } else if(flagtest == 1){
                $this.attr("data-flag","0");
                $this.append("<img class='image' src='icon_light.png'height=8px/>");
            }
        });
});

Can anyone see the problem here?

share|improve this question

3 Answers 3

up vote 4 down vote accepted

It would be easier to just use true/false in your data attribute, also you're just appending image after image, you'll have to remove them as well:

$(".flags").each(function(idx,elm){
    $(elm).data('flag', false).on('click', function() {
        var flag = $(this).data("flag");
        if (flag) {
            $(this).html("<img class='image' src='icon_dark.png'height=8px/>");
        } else {
            $(this).html("<img class='image' src='icon_light.png'height=8px/>");
        }
        $(this).data("flag", !flag); //toggle state
    });
});​

A more neat way is to check if the image exists, and then just change the source if it does:

$(".flags").each(function(idx,elm){
    $(elm).data('flag', false).on('click', function() {
        var flag = $(this).data("flag"),
            hasImg = $(this).find('.image').length,
            imgSrc = flag ? 'icon_dark.png' : 'icon_light.png';

        if (hasImg) {
            $('.image', this).attr('src', imgSrc);
        }else{
            var element = $('<img />', {src: imgSrc, 'class':'image', height:'8px'});
            $(this).append(element);
        }

        $(this).data("flag", !flag); //toggle state
    });
});​
share|improve this answer
    
I was using integer value since you can sort by the label and the integer values will just group all the selected items together. Thanks! –  rk. Oct 29 '12 at 16:46

Yep. You are referring to $this again in your click handler. You are also appending to the div rather than changing it.

This is what you want:

$(".flags").each(function(){
    var $this = $(this);
    $this.click(function() {
        $this = $(this); // added
        var flagtest = $this.data("flag"); 
            if(flagtest == 0){
                $this.attr("data-flag","1");
                $this.html("<img class='image' src='icon_dark.png'height=8px/>");
            } else if(flagtest == 1){
                $this.attr("data-flag","0");
                $this.html("<img class='image' src='icon_light.png'height=8px/>");
            }
        });
});
share|improve this answer

Your code will always append an image tag. You should instead use a class to toggle the style of the image or directly change the src property of the img tag.

e.g. assuming you are clicking the image itself:

<img class='flag' src='icon_dark.png' />

$(".flag").click(function() {
  var img = $(this);

  var flagtest = img.data("flag");
  if (flagtest==0) {
    img.attr('src', 'icon_dark.png');
  } else {        
    img.attr('src', 'icon_light.png');
  }

  img.data("flag", !flagtest);
});
share|improve this answer

Your Answer

 
discard

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.