4

I am trying to use javascript to call a php script which then will return multiple variables back to my javascript so I can manipulate them.

This is my JS.

                $.ajax({ 
                    url: 'test.php',
                    data: { id : lastFileId },
                    success: function(output) {
                        alert(output);
                    }
                });

my PHP

<?php
    $fileId = ($_GET['id']);
    $num1 = 1;
    $num2 = 2;

?>

From here, how can I return variables $num1 and $num2 so i can use them in my javascript. Is it possible?

also this is a very basic idea of what I have planned to do if I can achieve this.

1
  • 4
    return json (use json_encode in PHP) and add the parameter datatype: json to your ajax request.
    – Pakspul
    Apr 2, 2014 at 19:27

5 Answers 5

22

You can return as many variables as you want with json_encode().

Try in your PHP:

<?php
echo json_encode(array($num1, $num2));
?>

You can add to that array , $num3, $num4, ... and so on.

In your JS, you can access each number as follows.

First, you will need this line of code to parse the encoded JSON string, in your success function.

var result = $.parseJSON(output);

That sets result as a JSON object. Now you can access all fields within result:

  • result[0] -- $num1 in PHP
  • result[1] -- $num2 in PHP
3
  • When i do console.log(output[0]), it gives me ' [ '
    – Joe
    Apr 2, 2014 at 19:36
  • It splits up each char as an element, this is not correct
    – Joe
    Apr 2, 2014 at 20:12
  • My mistake, I forgot a line of code. You'll need var result = $.parseJSON(output);. See corrected post.
    – geoff
    Apr 2, 2014 at 20:14
5

You can go for Json in PHP and javascript if you want array in response for a ajax request

PHP Code

<?php
    $fileId = isset($_GET['id'])?$_GET['id']:0;
    echo json_encode(array("field"=>$fileId,"num1"=>1,"num2"=>2));
?>

Js Code

jQuery.ajax({
    type: "GET",
    url: 'test.php',
    dataType: "json",
    success: function(response) {
        console.log(response);
        alert(response.num1);
    }
});
2
  • When I do resp.num1 i get "undefined" in my console
    – Joe
    Apr 2, 2014 at 20:07
  • I'm getting the same "undefined" Oct 12, 2014 at 7:33
1

convert json to object

jQuery.ajax({
    type: "GET",
    url: 'test.php',
    dataType: "json",
    success: function(response) {
       item=JSON.parse(response);
        console.log(item);
        alert(item.num1);
    }
});
0

Use a simply string and explode(split) it further in ajax response. Here is PHP code

<?php
   $fileId = ($_GET['id']);
   echo $num1."|".$num2;
?>

Now split(explode) the response with JavaScript

$.ajax({ 
        url: 'test.php',
        data: { id : lastFileId },
        success: function(output) {
             var my_arr = output.split("|");
             console.log(my_arr[0] + "" + my_arr[1]);
        }
});
0

you can simply return it like that return ['num1'=>$num1,'num2' => $num2];

and also, you can access it as followed, respone.num1

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