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I have the following code within a file named facebook.php:

$user = json_decode(@file_get_contents(
'https://graph.facebook.com/me?access_token=' .
$cookie['access_token']));

on another page i have

require 'facebook.php';
<p>Welcome <?= $user->name ?></p>

This works fine and it displays the name of the user from facebook. (clearly i have a facebook app to allow users to login to my website)

within facebook.php i also have:

    $id = $user->id;
    $name = $user->name;
    $email = $user->email;

    mysql_query("INSERT INTO facebook (id, name, email)
    VALUES ('$id' , '$name' , '$email')");

This insert does not work (nothing is inserted). However if i change the code to be:

    $id ='123';
    $name = 'testname';
    $email = 'blhalvlvlv';

    mysql_query("INSERT INTO facebook (id, name, email)
    VALUES ('$id' , '$name' , '$email')");

Then this works and it inserts the data into the table within the database. Why does this not work using the $user->id $user->name and $user->email ?

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have you validated that $user is properly populated? –  dispake Aug 30 '12 at 0:31
    
I assumed that the fact that it worked on the other page that it was being populated correctly. I am not sure how to conclusively test this though. –  andrew anderson Aug 30 '12 at 0:36
1  
Easy way would be to echo var_dump($user); and see what you get –  dispake Aug 30 '12 at 0:39
    
You were right. It wasnt getting populated properly. I have sorted it out. DO you want to right a short answer so i can accept it :) thanks for your help. –  andrew anderson Aug 30 '12 at 0:42
    
Had you set your error_reporting level (and display_errors) to sensible values, PHP would have told you about that itself. So please, set this options while developing! –  CBroe Aug 30 '12 at 10:02
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1 Answer 1

up vote 0 down vote accepted

Check to make sure that $user values are being correctly set.

Easy way would be to echo var_dump($user); and see what you get

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