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I am trying to decode a JSON string into an array but i get the following error.

Fatal error: Cannot use object of type stdClass as array in C:\wamp\www\temp\asklaila.php on line 6

Here is the code:

<?php
$json_string = 'http://www.domain.com/jsondata.json';

$jsondata = file_get_contents($json_string);
$obj = json_decode($jsondata);
print_r($obj['Result']);
?>
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up vote 391 down vote accepted

As per the documentation, you need to specify if you want an associative array instead of an object from json_decode, this would be the code:

json_decode($jsondata, true);
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It begs the question, what are the advantages of having it return as an array and not an object? – Foxinni Aug 16 '12 at 13:31
11  
It raises the question. To "beg a question" means to assume something that remains to be proved (ref). In either case, the advantage might be that the OP is more comfortable traversing arrays than objects, or that some other, already implemented, code requires an array. – jamesnotjim Mar 6 '13 at 15:31
2  
@jamesnotjim The default implementation that returns an object could beg the question that objects are better return values than arrays, could it not? – David Mann Nov 13 '13 at 2:43
2  
Indeed it could @DavidMann. Touché! – jamesnotjim Nov 13 '13 at 18:53
1  
I would add the comment (albeit years later) that there is no possibility of JSON containing anything but data making this a confounding "default" choice. – Barry 2 days ago

try this

$json_string = 'http://www.domain.com/jsondata.json';
$jsondata = file_get_contents($json_string);
$obj = json_decode($jsondata,true);
echo "<pre>";
print_r($obj);
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Just in case you are working on php less then 5.2 you can use this resourse.

http://techblog.willshouse.com/2009/06/12/using-json_encode-and-json_decode-in-php4/

http://mike.teczno.com/JSON/JSON.phps

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This is a late contribution, but there is a valid case for casting json_decode with (array).
Consider the following:

$jsondata = '';
$arr = json_decode($jsondata, true);
foreach ($arr as $k=>$v){
    echo $v; // etc.
}

If $jsondata is ever returned as an empty string (as in my experience it often is), json_decode will return NULL, resulting in the error Warning: Invalid argument supplied for foreach() on line 3. You could add a line of if/then code or a ternary operator, but IMO it's cleaner to simply change line 2 to ...

$arr = (array) json_decode($jsondata,true);

... unless you are json_decodeing millions of large arrays at once, in which case as @TCB13 points out, performance could be negatively effected.

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This will also change it into an array:

<?php
    print_r((array) json_decode($object));
?>
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4  
This a waste of CPU/Memory, as suggested json_decode($object, true); the true does exactly the same, internally much faster. – TCB13 Dec 12 '13 at 0:13
1  
@TCB13 except if you need both and don't want to run decode again – Jimmy Kane Jan 21 '15 at 10:26
3  
Concur with @JimmyKane . I tried and run both versions in a cycle; if you need both object and array (albeit this ought to happen rarely?), json_decode + casting is 45% faster than running both flavours of json_decode. On the other hand, both are so fast that unless you need literally thousands of decodings, the difference is negligible. – lserni May 29 '15 at 10:35
1  
@lserni correct – Jimmy Kane May 29 '15 at 11:06
1  
If you have a deep JSON structure, this won't work. – penyaskito Jul 31 '15 at 12:16

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