0
<?php  
  $jsonData = array(
    "comments" => "Fresh food",
    "container" => false,
    "cookedTime" => 2,
    "description" => "biryani",
    "refridgeration" => true,
    "serves" => 2,
    "veg" => true
);

json_encode($jsonData);
header("Location:Post.php?json=$jsonData");
?>

This is my php page which contains json object. I am passing this json object into another page Post.php.

<?php
$jsonData = $_GET['json'];
json_decode($jsonData, TRUE);
echo var_dump($jsonData);
?>

when I did a dump the result is C:\wamp\www\Hack\Post.php:16:string 'Array' (length=5). It is printing "Array" instead of the json object. What do I do?

  • 2
    The URI length is limited. You should pass JSON data through POST – Ruslan Osmanov Oct 22 '16 at 13:48
  • Remove True from json decode function – iam batman Oct 22 '16 at 13:55
  • @RuslanOsmanov IMO the lenght estriction is about 2000 chars – Itay Moav -Malimovka Oct 22 '16 at 14:04
2

When you do json_encode you must have a variable to store the result:

$jsonData = json_encode($jsonData)

Without this, your data is still just a php object

| improve this answer | |
  • 1
    Partially correct. Will fail on many things without urlencode(). – AbraCadaver Oct 22 '16 at 15:58
5

As 1slock says you hace to encode the json but also add urlencode.

header("Location: Post.php?json=" . urlencode( json_encode($jsonData)) );

| improve this answer | |
  • 1
    I would do base 64 encoding to have this work all over the place. – Itay Moav -Malimovka Oct 22 '16 at 14:02
  • 1
    urlencode should be enought and should work for any type of data. THe proble is if the json is too big because the server and the browser can crop it depending on its configuration. – David Rojo Oct 22 '16 at 14:06
0

In your first code sample, you're not passing along the json_encoded value, but the array itself. Replace your last line with this, and skip the penultimate line:

header("Location: Post.php?json=" . json_encode($jsonData));
| improve this answer | |

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