121

I am trying to create an JSON object out of a PHP array. The array looks like this:

$post_data = array('item_type_id' => $item_type,
    'string_key' => $string_key,
    'string_value' => $string_value,
    'string_extra' => $string_extra,
    'is_public' => $public,
    'is_public_for_contacts' => $public_contacts);

The code to encode the JSON look like this:

$post_data = json_encode($post_data);

The JSON file is supposed to look like this in the end:

{
    "item": {
        "is_public_for_contacts": false,
        "string_extra": "100000583627394",
        "string_value": "value",
        "string_key": "key",
        "is_public": true,
        "item_type_id": 4,
        "numeric_extra": 0
    }
}

How can I encapsulate the created JSON code in the "item": { JSON CODE HERE }.

173

Usually, you would do something like this:

$post_data = json_encode(array('item' => $post_data));

But, as it seems you want the output to be with "{}", you better make sure to force json_encode() to encode as object, by passing the JSON_FORCE_OBJECT constant.

$post_data = json_encode(array('item' => $post_data), JSON_FORCE_OBJECT);

"{}" brackets specify an object and "[]" are used for arrays according to JSON specification.

6
  • i would add the JSON_FORCE_OBJECT in json_encode($arr, JSON_FORCE_OBJECT) – Adam Lukaszczyk Jul 19 '10 at 13:23
  • Is this correct? $post_data = json_encode(array('item' => $post_data), JSON_FORCE_OBJECT); – Mark Denn Jul 19 '10 at 13:28
  • 1
    maybe this will be helpful for someone - jsonwrapper boutell.com/scripts/jsonwrapper.html json_(en|de)code for earlier versions of PHP – robertbasic Jul 19 '10 at 17:50
  • what if I have an array somewhere nested inside $post_data. This would make them objects as well, correct? – ProblemsOfSumit Jan 22 '15 at 12:53
  • echo json_encode(array('item' =>$post_data)); will create the JSON structure of: Object, Array, Object. or: { [ { Which is exactly what I was looking for, importing MySQL JSON response into an iOS app :-) THANKS Cristian!!! – Jacob Topping Aug 12 '15 at 3:38
74

Although the other answers posted here work, I find the following approach more natural:

$obj = (object) [
    'aString' => 'some string',
    'anArray' => [ 1, 2, 3 ]
];

echo json_encode($obj);
2
  • 1
    This response is so good. Also when you don't control exactly when an object is going to be encoded or if you want to encode an array of objects: then the JSON_FORCE_OBJECT response does not work. On the other side is much more readable. Thanks! – Natxet Nov 15 '19 at 12:19
  • If you are looking for an encode that begins as an object and proceeds to contain arrays, this is your answer. – suchislife Feb 28 '20 at 3:05
35

You just need another layer in your php array:

$post_data = array(
  'item' => array(
    'item_type_id' => $item_type,
    'string_key' => $string_key,
    'string_value' => $string_value,
    'string_extra' => $string_extra,
    'is_public' => $public,
   'is_public_for_contacts' => $public_contacts
  )
);

echo json_encode($post_data);
0
3

You could json encode a generic object.

$post_data = new stdClass();
$post_data->item = new stdClass();
$post_data->item->item_type_id = $item_type;
$post_data->item->string_key = $string_key;
$post_data->item->string_value = $string_value;
$post_data->item->string_extra = $string_extra;
$post_data->item->is_public = $public;
$post_data->item->is_public_for_contacts = $public_contacts;
echo json_encode($post_data);
0
$post_data = [
  "item" => [
    'item_type_id' => $item_type,
    'string_key' => $string_key,
    'string_value' => $string_value,
    'string_extra' => $string_extra,
    'is_public' => $public,
    'is_public_for_contacts' => $public_contacts
  ]
];

$post_data = json_encode(post_data);
$post_data = json_decode(post_data);
return $post_data;
0

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