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Im having issues with getting some jQuery to run when the DOM is ready.

I have two forms, each with a <select> which when my code runs should load in other form elements.

When the user first loads the page, I want these selects on ready() to grab certain attributes (form action, load() target etc) and then load that in. Works perfectly fine when using change() and I can get one <select> to work when but not both.

HTML

<form action="php/bagCreate/newBag_bag.php" method="post" id="form1">
  <select id="target" data-target="upForm" class="get" name="bagLevel">
    <option>1</option>   
    <option>2</option>  
    <option>3</option>   
  </select>        
</form>

<form action="php/bagCreate/storeItems_bag.php" method="post" id="form2">      
  <select id="target2" data-target="upFormType" class="get" name="itemName">
    <option>A</option>   
    <option>B</option>  
    <option>C</option>   
  </select>        
</form>

JS

This works for a single form, but the second wont load

$(document).ready(function(){
$('select.get').ready(function() {
    var action = $('select.get').parent().attr('action');
    var target = $('select.get').data('target');
    $('#'+target).load(action, $('select.get').parent().serializeArray());     
});

changing select.get to this inside the ready function causes neither of the forms to load.

Using change() works perfectly fine for both forms, although it is a bit of a repetition

$('select.get').change(function() {        
  var action = $(this).parent().attr('action');  
  var target = $(this).data('target');  
  $('#'+target).load(action, $(this).parent().serializeArray());      
});
share|improve this question
6  
You shouldn't call .ready() on anything other than the document, anything else doesn't make sense. –  Kevin B Feb 11 '13 at 20:55
    
That's right, the document is only ready ONCE. –  Diodeus Feb 11 '13 at 20:56
    
Did you check what this is inside you callback? Because the truth is, .ready completely ignores which elements are selected. –  Felix Kling Feb 11 '13 at 20:59
1  
From the Docs -> "The .ready() method can only be called on a jQuery object matching the current document" ... –  adeneo Feb 11 '13 at 21:00

4 Answers 4

up vote 4 down vote accepted

Just trigger the change event on pageload ?

$('select.get').change(function() {        
  var action = $(this).parent().attr('action');  
  var target = $(this).data('target');  
  $('#'+target).load(action, $(this).parent().serializeArray());      
}).change(); //trigger it on pageload as well ...
share|improve this answer
    
This worked perfectly fine, even removed the ready() one as well, a lot cleaner. Thanks –  KieranFJ Feb 11 '13 at 21:31

Use the each() method to apply your code to more than one select element in the jQuery object. Also, as the comments suggest, the ready() method should be reserved to the document object.

For example:

$(document).ready(function() {
    $('select.get').each(function(i) {
        var action = $(this).parent().attr('action');
        var target = $(this).data('target');
        $('#'+target).load(action, $(this).parent().serializeArray());
    });
});

Note how in each iteration of the each() callback function, $(this) refers to the ith element in the $('select.get') object.

share|improve this answer
    
This worked along with adeneo's solution, although I went with his due to it removing the code repetition. Also helped me with my misunderstanding of ready(). Thank You –  KieranFJ Feb 11 '13 at 21:33
    
@KieranFJ No problem. I prefer adeneo's solution as well, since in this case you're already binding a handler function to the elements so it makes sense to just trigger it. –  Boaz Feb 11 '13 at 21:36

Should your first code snippet read as follows:

$(document).ready(function(){
    $('select.get').each(function() {
        var action = $('select.get').parent().attr('action');
        var target = $('select.get').data('target');
        $('#'+target).load(action, $('select.get').parent().serializeArray());     
    }
);

Changing the ready method to the each method would run the defined function once for each element found with the selector.

share|improve this answer
$(document).ready(function(){
    $('select.get').each(function(){
        var $t = $(this);
        var $p = $t.parent();
        var action = $p.attr('action');
        var target = $t.data('target');
        $('#'+target).load(action, $p.serializeArray());
    });
});
share|improve this answer

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