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I have a script where ajax is being used to send password to a PHP file. The PHP file then checks if the password is correct and sends back a data of array with a link and succes code. When the data is received, I can clearly see the keys and values when I alert it, but how do I manipulate the key to get the value from it?

See below for an example how I use to communicate jQuery Ajax with PHP:

jQuery Ajax:

$.ajax({
    type: "POST",
    url: "test.php",
    data: { pass: $("#pass-field").val() }
    }).done(function(data) {

        if(data.link != ""){
            alert("Link: " + data.link);
        }           
    });

PHP:

    if(strtolower($retrieved_password) == $original_password){
        echo json_encode(array("link" => "personal/cv.doc", "success" => "true")); 
    }else{
        echo json_encode(array("link" => "", "success" => "false")); 
    }
?>

When I alert data.link I get to see the following code:

function link() {
    [native code]
}
share|improve this question
    
Try using console.log(data) to see how the object is structured. That may help with troubleshooting. –  JoeFletch Aug 20 '12 at 19:49
    
Can you use console.log and a web developer tool instead of alert()? –  David Aug 20 '12 at 19:49
    
I really don't know what you want to see. Instead of me saying anything, just go to my website to test it out please. In the home page, go look for a hyperlink where it says the following: Click here to download my resume. xarialon.com –  Tolga Demir Aug 20 '12 at 19:54
    
when you click on the word here, a box will pop out and ask for a password. When you enter anything, you will see the code as mentioned before. –  Tolga Demir Aug 20 '12 at 20:04

3 Answers 3

up vote 2 down vote accepted

Your problem is that the response has text/html type on it.

The data variable in your done callback is of type String

You should do eval on it to turn it into an object.

Something like this

$.ajax({
    type: "POST",
    url: "test.php",
    }).done(function(data) {
        var dataObj = {};
        eval ("dataObj = " + data); 
        console.log([dataObj]);         
    });

The best solution of course should be to return a response of type text/json.

This will make the data object of type object.

Anyway - you should make your callbacks support both types like so

$.ajax({
    type: "POST",
    url: "test.php",
    }).done(function(data) {
        var dataObj = null;

        switch ( typeof(data) ) {
            case "object" : { dataObj = data; break; }
            case "string" : { eval ("dataObj = " + data); break; }
            default : { throw "unsupported type [" + typeof(data) + "]"  }
        }

             //... more code here       
    });
share|improve this answer
    
Thank you for you help, this definitely did help me out! Instead of using eval, I used the following code to solve the problem: var obj2 = JSON.parse(data); This method is a must to parse a string to object. –  Tolga Demir Aug 21 '12 at 0:52

Here is how you might use it:

  • PHP
<?php

    ...

    if (strtolower($retrieved_password) === $original_password) {
        // Use 'print json_encode(array(...));' if your PHP version is less than 5.4.
        print json_encode([
            'link'       => 'personal/cv.doc',
            'success'    => 'true',
        ]);
    } else {
        // Use 'print json_encode(array(...));' if your PHP version is less than 5.4.
        print json_encode([
            'link'       => '',
            'success'    => 'false',
        ]);
    }

    ...

?>
  • jQuery
...

$.ajax({
    'data':       {
        'password': $('#password_input').val()
    },
    'success':    function (json_data) {
        if (json_data['success'] !== 'false') {
            alert(json_data['link']);
        }
    },
    'type':       'POST',
    'url':        '/path/to/php_script.php'
});

...

This should work properly if json_data is being returned properly in the AJAX call. If it doesn't work, try changing alert(json_data['link']); to console.log(json_data['link']); and check your console. You probably want to this in Chrome or Safari as the developer tools are better on them, in my opinion. You can even try taking a screenshot of the output and add it to your post, so we can see how the data is coming back to you. Hope this helps.

share|improve this answer
    
Thanks, I will try it soon and mark correct when it works. ;) –  Tolga Demir Aug 20 '12 at 20:18
    
To clarify, the big change here is from using a deferred.done() (which will not have the callback data you're looking for), to using .ajax()'s success setting –  ernie Aug 20 '12 at 20:36
    
Nope, it still has the same result here. Click the link to view the image => link –  Tolga Demir Aug 21 '12 at 0:21
    
Btw, I see parse error... –  Tolga Demir Aug 21 '12 at 0:37

Looking at your code it appears that the object return is in the following format.

{"link": "","success": "false"}

To access the object's property values use the following.

data.link and/or data.success (objectName.property)

By the way, the personal/cv.doc is not truly protected. I was able to download it without the password based on what you put here.

share|improve this answer
    
I already did that. –  Tolga Demir Aug 20 '12 at 20:17

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