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I am receiving a 500 internal server error when making an ajax call.

Here is the javascript/jquery that makes the call:

$.ajax({url: 'ServicesAjaxHandler.php',
        data: {action: 'add'},
        type: 'post',
        success: function(output) {
            alert(output);
        },
        error: function (xhr, ajaxOptions, thrownError) {
           alert(xhr.status);
           alert(xhr.responseText);
           alert(thrownError);
        }
    });

And here is the php file being called:

<?php

if(isset($_POST['action']) && !empty($_POST['action'])) {
    $action = $_POST['action'];
    switch($action) {
        case 'add' : add($_POST);break;
    }
}

public function add($data) {
    return 'test';
}
?>

xhr.responseText returns nothing.

Is there an issue with my PHP code that is causing this error?

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4  
You've got public function on line 10. You don't need the public part. –  andrewsi Aug 12 '13 at 14:19
    
@andrewsi Great, looks like that was the issue. Have been doing a lot of object oriented programming lately got confused. Thanks. –  Fogest Aug 12 '13 at 14:25
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2 Answers

up vote 3 down vote accepted

Define your functions before using them, EG:

function add($data) {
    return 'test';
}

if(isset($_POST['action']) && !empty($_POST['action'])) {
    $action = $_POST['action'];
    switch($action) {
        case 'add' : add($_POST);break;
    }
}

Using the keyword public is for Object oriented applications, if you have a setup like this:

class Test_Class { 

    public function add($data) {
        return 'test';
    }

}

using the keyword public will be acceptable, but since you are not using objects for your function interaction, take away the keyword for a working set

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case 'add' : add($_POST);break; will not work. You need to change this also class/object concept. –  Abani Meher Aug 12 '13 at 14:22
    
Switch and cases work out of object scope –  Daryl Gill Aug 12 '13 at 14:46
    
I was not clear in my last comment. function add will not work as it is inside class. Need to create object of that class and access the method or have to make that method static. –  Abani Meher Aug 12 '13 at 15:21
    
Of you would prefer me to update my answer to show how you would reach the function, then I can.. I merely posted the class example to show the use of the public keyword. –  Daryl Gill Aug 12 '13 at 23:13
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Try changing public function to just function.

function add($data) {
    return 'test';
}
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