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I'm passing a JSON-encoded string to json_decode() and am expecting its output to be an object type, but am getting a string type instead. How can I return an object?

In the docs, the following returns an object:

$json = '{"a":1,"b":2,"c":3,"d":4,"e":5}';
var_dump(json_decode($json));

However, if I json_encode() the string first and then call json_decode(), the output is a string and not an object:

$json = json_encode('{"a":1,"b":2,"c":3,"d":4,"e":5}');
var_dump(json_decode($json));

This is just a simplified example. In practice what I'm doing is pushing a JSON-encoded string to PHP via AJAX. However it does illustrate the problem of converting this encoded JSON string to an object I can read in PHP, e.g., "$json->a".

How can I return an object type?

thanks for the replies ! The actual context for this question was am using a JSON Response from a API. But when I do the json_decode to this response and try to access the values like - $json=json_decode(json response from API); echo $json->a it gives me a error: Object of class stdClass could not be converted to string

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Why do you want to encode an already encoded JSON ? EX : $json = json_encode('{"a":1,"b":2,"c":3,"d":4,"e":5}'); ? –  Cosmin Aug 31 '12 at 6:42
4  
You're encoding a string, not an object so obviously you'll get a string when you decode it. –  Musa Aug 31 '12 at 6:51
    
absolutely right musa.! if you are passing an string than how could you expect for object? –  Harshal Mahajan Aug 31 '12 at 6:59
    
thanks, understood the problem specific to the examples given by me. –  Shakul Saini Sep 1 '12 at 13:04
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3 Answers

The function json_encode is used to encode a native PHP object or array in JSON format.

For example, $json = json_encode($arr) where $arr is

$arr = array(
  'a' => 1,
  'b' => 2,
  'c' => 3,
  'd' => 4,
  'e' => 5,
);

would return the string $json = '{"a": 1, "b": 2, "c": 3, "d": 4, "e": 5}'. At this point, you do not need to encode it again with json_encode!

To obtain your array back, simply do json_decode($json, true).

If you omit the true from the call to json_decode you'll obtain an instance of stdClass instead, with the various properties specified in the JSON string.

For more references, see:

http://www.php.net/manual/en/function.json-encode.php

http://www.php.net/manual/en/function.json-decode.php

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thanks for the replies ! The actual context for this question was am using a JSON Response from a API. But when I do the json_decode to this response and try to access the values like - $json=json_decode(json response from API); echo $json->a it gives me a error: Object of class stdClass could not be converted to string –  Shakul Saini Aug 31 '12 at 8:18
    
I see.. could you show us the actual json response you're working with? –  Matteo Tassinari Aug 31 '12 at 9:20
    
got d problem ! it was getting double json_decoded so var_dump was giving string instead of object. –  Shakul Saini Sep 1 '12 at 13:06
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var_dump(json_decode($json, true));

http://hk.php.net/manual/en/function.json-decode.php

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checked through var_dump function and debugged. thanks for reminding this function :) –  Shakul Saini Sep 1 '12 at 13:07
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Instead of writing on the JSON array, try putting it into a PHP array first.

<?php
$array = array(
'a' => 1,
'b' => 2,
'c' => 3,
'd' => 4,
'e' => 5
);
//Then json_encode()
$json = json_encode($array);
echo $json;
die;
?>

In you case, you are using ajax. So when you get a success, you can do this:

$.ajax({
    url: 'example.com',
    data: {

    },
    success: function(data) {
        console.log(data);
    }
});

Where after data inside console.log() can add the json var like data.a, data.b...

Also, with the string you providedm you do not need to json_encode since it is alrady in json format

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