6

I am trying to change the image source in the Jquery

<a href="" class="wanted" id="'.$status_id[$num].'"><img src="/images/wanted.png">

through a JQuery selector:

$(".wanted "+ id).attr("src", '/images/wanted_.png');

Where id is defined in the javascript as the php variable $status_id[$num]. I first tried using $(this) to no avail. Any insight would be helpful.

1
  • Do you have multiple images inside the wanted wrapper? Or do you have multiple wanted wrappers with different ids? And are you trying to change all of them to a single image? Or just one of them to a single image? Or each of them to a different image? Commented Jul 20, 2012 at 3:51

5 Answers 5

9

When you access $(".wanted"+id) , you are actually trying to access an element with the class name = wanted+id. This is because of the '.' before 'wanted'. Also, you seem to be accessing the <a> tag directly and setting it's src attribute. You need to access the <img> tag. What you could try is this:

var x=document.getElementById(id);
$(x).find("img")[0].setAttribute("src","/images/wanted_.png");
1
  • Thank you. Elegant and simple.
    – michael
    Commented Jul 20, 2012 at 11:55
6

ID of the HTML elements should be unique across the page.

You can try

//I assume id variable is already assigned the id of the element e.g var id = "<?php echo $status_id[$num] ?>";

$("#"+ id).attr("src", '/images/wanted_.png');

If you really want to select an element that has the given id and also the class wanted then try this:

$("#"+ id + ".wanted ").attr("src", '/images/wanted_.png');
0

Either you have access to the ID when the JS is created, or you don't. If you don't then you'll have to find another way to target the item eg: $('.wanted')

If you do, then put it in: $('#<?php echo $status_id[$num]; ?>')

0

Give it another class like imgToChange, then use $(".imgToChange")

0

The easiest way to find input value for dynamically loaded elements.

$(document).find("#your_input_id").val();

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