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Ok the following php code is working fine

<?php
$json = file_get_contents('http://tiny.cc/example22');

$obj = json_decode($json);
$example = $obj->{'screen_name'};
?>

User: <?php echo $example; ?>

It shows the screen name 'muffinlosers' just like i wanted

But if i change 'screen_name' to 'total_coins', why it doesn't show the total coins?

I need help with this, i want just to show the total coins

Thanks

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3 Answers 3

up vote 1 down vote accepted

Use

$obj->experience->total_coins;

Also, this

$example = $obj->{'screen_name'};

Should simply be

$example = $obj->screen_name;
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Thank you! its working now –  Martin Aug 30 '11 at 4:06
    
@Alexis You don't need to type the same comment for every answer. Just pick the first one that answers your question and mark it "accepted" –  Phil Aug 30 '11 at 4:09

It's so because your request returns json object that has no field called total_coins, but it has field called experience, which type is object also. And that (experience) object has field called total_coins.

So you should:
1. Get object, stored as experience field's value.
2. Get total_coins field's value of received object.

To achieve this, use code, suggested by Phil & user900898 ($example = $obj->experience->total_coins).

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1  
Thank you! its working now –  Martin Aug 30 '11 at 4:06

This is what you want $example = $obj->experience->total_coins;

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Thank you! its working now –  Martin Aug 30 '11 at 4:04

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