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I want to return an array from a php function to my ajax call. After that I want to use the array values from the page the ajax call is made.

So this is my ajax call:

        $(function() {
        $("#find").click(function() {

            var url = $("#form_url").val();
            var dataString = 'url=' + url;

                type: "POST",
                url: "/ajax/add_url.php",
                data: dataString,
                }).done(function( result ) {

            return false;

 function myresult(result) {
var result_lines = result.split("<splitter>");    
if (result_lines[0] == '1') { 
} else if (result_lines[0] == '2') { 
    $('#content_success').html('Succesfully get images').fadeIn(250);
return true;   


and this is my php script:

 if($_POST['url']) {

    $url = $Db->escape($_POST['url']);

        $html = file_get_html($url);
        $count = 0;
        $goodfiles = array();

        foreach($html->find('img') as $element) {

            $pic = url_to_absolute($url, $element->src);


                $pics = parse_url($pic);
                list($width, $height, $type, $attr) = getimagesize($pic);

                if($pics["scheme"]=="http" && $width >= 300 && $height >= 250) {

                    $_SESSION['pictures'] = $goodfiles;


        if($count == 0){ 

            $_SESSION['count'] = 'empty'; 
            echo "1<splitter>"; 
            echo "No items found with the correct size"; 


            $_SESSION['count'] = $count;
            echo "2<splitter>";
            echo json_encode($_SESSION['pictures']); 


            $_SESSION['url'] = $url;
            $empty = 1;


when the ajax call is successful I use json_encode on the array to use it on my php page. But I don't know how I get this array to a javascript on the page the ajax call was made of.

right now I'm receiving the following content:


And I want to put this in a javascript array...

share|improve this question
You should only have one echo in your PHP function –  Samson Aug 18 '12 at 23:02
Firebug shows you the request and the response when an ajax call is made. You might find that very useful. –  Samson Aug 18 '12 at 23:05

2 Answers 2

up vote 0 down vote accepted

The error is this with this line:

var result_lines = result.split("<splitter>");

result (the AJAX response) is an object or array (depending on the nature of your JSON) but you are trying to call a string method (split()) on it.

This would cause an error in your JS console - always check the console.

Finally, eval() is evil and almost never required except in exceptional circumstances. Try to avoid it.

share|improve this answer
The splitter is to determine an error (splitter 1) or a successful call (splitter 2). You can call the results by using the function result lines. So calling the json_encode echo can be done by using $('#id').html(result_lines[1]).... But is html the right way?! And how do I place the array in a javascript then?! –  Stefan Aug 19 '12 at 10:42
Not sure I follow. The fact remains result is an object or array, neither of which has a method split(). Are you saying result is NOT an object or array, but is coming back as a string? jQuery normally identifies JSON responses and parses it as such. You can enforce this by adding a param to your AJAX request: dataType: 'json' –  Utkanos Aug 19 '12 at 11:49
the result object is an array and I want to use it in a javascript.. –  Stefan Aug 19 '12 at 12:11
If it's an array then my answer stands - arrays have no method split(). If it's already an array then you don't need to do anything - it's already usable, e.g. result[0] will get the first key of the array. (If you're sure it's an array and not an object). –  Utkanos Aug 19 '12 at 12:15
I want to put the output of json_encode($test) in a javascript var, so I can use it in a javascript. So for example: Var images = ["image.jpg", "image.jpg"] Right now json_encode($test) gives me ["image.jpg", "image.jpg"], so that's oke. Now I need to know how to put this output in the var images. A var doesn't have an id or class, so I don't know how to put it there.... –  Stefan Aug 19 '12 at 12:32

I don't know how to work with $.ajax but here is an alternative.

Replace this

                type: "POST",
                url: "/ajax/add_url.php",
                data: dataString,
                }).done(function( result ) {


           alert(data['you array index']);

I repeat ,this is my alternative so don't take it hard!

share|improve this answer
Why would that change anything? –  Waleed Khan Aug 19 '12 at 0:39

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