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I have a button which appends a drop down menu to the site, and within the drop down value attribute are numbers. I'm using an ajax function to run a math equation using the values from the drop down.. this is my code:

var data1 = $('#data1').val();
var data2 = $('#data2').val();
var data3 = $('#data3').val();


$.ajax({
  type: 'GET',
  url: 'ajaxcalc.php',
  data: {
    data1: data1,
    data2: data2,
    data3: data3
   },
  dataType: 'json',
  cache: false,
  success: function(data) { alert('yay!'); })
   });
  },
 });

//show dropdowns code
$('#data1').click(function() {
var $d = $('<select name="data1" id="data1"><option selected="selected" value="null">Choose your data!</option><option value="5">Option 1</option><option value="1">Option 2</option><option value="14">Option 3</option></select><br/>').fadeIn().delay(1000);
$('.data1').append($d);
});

//html button code for append data1 drop down
<button id="data1">Add Dropdown</button>

My problem comes in when people append 2 of the same drop downs with the same id and I can't retrieve both variables... It only gets the first drop down value!

in my ajaxcalc.php file I have this to retrieve variables:

$data1 = $_GET['data1'];
$data2 = $_GET['data2'];

I'm trying to allow someone to append the data1 drop down twice and pick 2 different values but still pass those values to my ajaxcalc.php file through the .ajax() function! does anyone know how I can accomplish this?

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4  
So don't create elements with the same ids. It is just wrong –  zerkms Aug 3 '12 at 2:32
    
well I have an append function that spits out the same dropdown with the same id... –  tdun Aug 3 '12 at 2:34
    
so? Elements SHOULDN'T have the same id. This is what DOM requires –  zerkms Aug 3 '12 at 2:35
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1 Answer

up vote 1 down vote accepted

In your case you don't have an id of "data2" or "data3". You keep appending "data1". When appending the dropdown, you need to increment the number with the id.

//show dropdowns code
var dropdownCount = 1;
$('#data1').click(function() {
    var $d = $('<select name="data' + dropdownCount + '" id="' + dropdownCount + '"><option selected="selected"          value="null">Choose your data!</option><option value="5">Option 1</option><option value="1">Option 2</option><option value="14">Option 3</option></select><br/>').fadeIn().delay(1000);
    $('.data1').append($d);
});

Try using that code in place of your dropdown code.

EDIT

A better solution would be to use a class instead of ids. If each dropdown had a class you could select them all (no matter how many were added) and loop through them to get values.

var dropdowns = $(".dropdowns");
//Loop through them to get values and pass them to your ajax call

EDIT2

Here is a fiddle I through together showing how you can add multiple dropdowns and pass an array back to your PHP page rather than individual variables.

http://jsfiddle.net/JtUuN/

share|improve this answer
    
but i need someone to be able to select options anywhere from 1-99 drop downs, i was actually asking if there is a way to dynamically update jQuery variables and data within the .ajax() function –  tdun Aug 3 '12 at 2:42
1  
That's what my edit explains. Don't use ids on your dropdowns. Use a class instead. That way it doesn't matter how many dropdowns are created, you can select them all with a class selector. –  Tim Banks Aug 3 '12 at 2:44
    
i'll check it out, thank you very much! If it works out, i'll mark it as the answer! –  tdun Aug 3 '12 at 3:04
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