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I have a script in my facebook application which will provide the user with the list of his Facebook friends in a dropdown list. With the code below, I am able to grab the user's friends, but I am only getting the User ID.

$api_key = 'xxx';
$secret  = 'xxx';
include_once 'facebook.php';
$facebook = new Facebook($api_key, $secret);

$friends = $facebook->api_client->friends_get();
foreach ($friends as $friend)
{ 
  echo $friend;// returns only the friend's ID and not name but i want to show the name
  $url="https://graph.facebook.com/".$friend."/";
  $res=file_get_contents($url);
}

With this link I want to grab the user's name and display it on a dropdown list. How can I grab it and echo only the name from $url?

{
   "id": "4",
   "name": "Mark Zuckerberg",
   "first_name": "Mark",
   "last_name": "Zuckerberg",
   "link": "http://www.facebook.com/zuck",
   "gender": "male",
   "locale": "en_US"
}
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3 Answers 3

up vote 2 down vote accepted

From the PHP manual:

$var = json_decode ( $result );

and echo what you want, like: echo $var ['link'];

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erroneous answer. json_decode should be used instead of json_encode. –  Gajus Kuizinas Jan 31 '11 at 17:42
    
You mean decode I think ;) –  singles Jan 31 '11 at 17:43
    
yes - my typo - fixed –  bensiu Jan 31 '11 at 17:44

Take a look at JSON_decode http://www.php.net/manual/en/function.json-decode.php

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$data = json_decode($str);
echo $data['name'];

simple as that

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