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I have a function

(function () {jQuery.fn.field = function (inputName, value) {

    if (typeof inputName !== "string") return false;
    var $inputElement = jQuery(this).find("input[name*=" + inputName + "]");




    if (typeof value === "undefined" && $inputElement.length >= 1) {
        switch ($inputElement.attr("type")) {
            case "checkbox":
                return $inputElement.is(":checked");

            case "radio":
                var result;
                $inputElement.each(function (i, val) {
                    if (jQuery(this).is(":checked")) result = $(this).val();
                });
                return result;

            default:
                return $inputElement.val();
        }
    } else {
        switch ($inputElement.attr("type")) {
            case "checkbox":
                $inputElement.attr({
                    checked: value
                });
                break;
            case "radio":
                $inputElement.each(function (i) {
                    if (jQuery(this).val() == value) $(this).attr({
                        checked: true
                    });
                });
                break;
            case undefined:                   
            break;
            default:
                $inputElement.val(value);
                break;
        }
        return $inputElement;
    }
};'

and try to run this in foreach php code :

<script>




                                    jQuery("#1133156434").field('field1', 'kdweb');
                                    </script>

I get message :

TypeError: jQuery(...). field is not a function error source line:

jQuery("#1133156434").field('field1', 'kdweb');

So where should i paste definition of the function or maybe i should run it in document ready {}. Now i have this function in the begining of html file

share|improve this question
    
wrap the php output in a jQuery.ready(function(){}) – Rob Schmuecker Sep 11 '13 at 14:48
    
Really .. jQuery("#1133156434").field('fie... REALLY?? – PabloWeb18 Sep 11 '13 at 14:59
    
WhatYou are getting this exception because you are using the function incorrectly. but ... What are you trying to do? – PabloWeb18 Sep 11 '13 at 15:05

You are getting this exception because you are using the function incorrectly.

I dont understand a lot of what you want to do ... but use the function like this:

field('field1', 'kdweb');
share|improve this answer
    
jsfiddle.net/2StQw/2 – kasper Sep 12 '13 at 16:00
    
in fiddle it works. I have to use it like ('nameoftheform').field('nameoffield','value') – kasper Sep 12 '13 at 16:01
    
i think it is a problem of scope i put the same what in fiddle in the head of the page and the code in php somewhere below in page Should i wrap the function or the code where i use the function this actually i did it and no result still type error – kasper Sep 12 '13 at 16:03
    
So... Now I have no idea what is your issue... Edit Your question or create a new one! I answered that question maybe the next too :) – PabloWeb18 Sep 12 '13 at 17:11

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