-2

I am trying to decode json string that looks like the one below with json_decode php function:

"{id:"1",fields:[{id:"1",value:"asdasd"},{id: "2",value:"asdasd"},{id:"3",value:"asdasd"}]}"

I have tried various options from this question. Like:

$foo = utf8_encode($json_string);
$data = json_decode($foo, true);

Or:

json_decode(str_replace ('\"','"', $json_string), true);

Even with:

json_decode( preg_replace('/[\x00-\x1F\x80-\xFF]/', '', $json_string), true );

But, everything I try I always get null. Why is that?

  • what happens if you just json_decode it? – xs0 Dec 13 '17 at 12:05
  • same thing, I also get null – Leff Dec 13 '17 at 12:05
  • Its not valid json, don't try build json yourself use json_encode() – Lawrence Cherone Dec 13 '17 at 12:07
  • 4
    "json_decode returns null" Right, that's what it does with invalid JSON such as your example. In valid JSON, property names are in ". Voting to close as typo/non-repro/not-useful-to-others-in-future. – T.J. Crowder Dec 13 '17 at 12:08
  • 1
    You should have json like {"id":"1" not {id:"1" – freelancer Dec 13 '17 at 12:09
2
<?php
$data='{
    "id": "1",
    "fields": [{
        "id": "1",
        "value": "asdasd"
    }, {
        "id": "2",
        "value": "asdasd"
    }, {
        "id": "3",
        "value": "asdasd"
    }]
}';

$dataNew=json_decode($data,true);
echo '<pre>';
    print_r($dataNew);

Your json was not valid. The json-keys need to be inside double-quotes. After that json_decode will work fine.

Output is:

Array
(
    [id] => 1
    [fields] => Array
        (
            [0] => Array
                (
                    [id] => 1
                    [value] => asdasd
                )

            [1] => Array
                (
                    [id] => 2
                    [value] => asdasd
                )

            [2] => Array
                (
                    [id] => 3
                    [value] => asdasd
                )

        )

)
4

First of all, your JSON is invalid. You should always first validate your JSON before asking with any JSON lint tool, which would tell you exactly where and what the error is.

Also, you should always check for errors when handling JSON in PHP. You can check out the json_last_error function's official documentation on how to properly perform the validation.

$json = 'your_json_string';
$array = json_decode($json, true);

if (json_last_error()) {
    die('Invalid JSON provided!');
}

printf('<pre>Valid JSON output: %s</pre>', print_r($array, true));

Worth mentioning: since PHP 7.3 a JSON_THROW_ON_ERROR option was added so the code can be wrapped around with a try-catch block:

try {
    $array = json_decode($json, true, 512, JSON_THROW_ON_ERROR);
    printf('Valid JSON output: %s', print_r($array, true));
} catch (\JsonException $exception) {
    printf('Invalid JSON input: %s', print_r($exception, true));
}

Working example.

  • 1
    I suggest you use json_decode($json,true) to get an array and not std class object. – pr1nc3 Dec 13 '17 at 12:13
0

Your JSON returns Null because in JSON, the keys should be string.Your JSON format is incorrect and hence returns Null. Try rewriting it as:

 {
  "id":"1",
  "fields":[
    {
      "id":"1",
      "value":"asdasd"

    },
    {
      "id": "2",
      "value":"asdasd"

    },{
      "id":"3",
      "value":"asdasd"
      }
    ]
}

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