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I´m having this issue, I did the mysql query inside a class and then wanted to extract the sequence in a JSON format (up to this everything ok), then tried to decode the JSON to put inside different variables the fields needed, but it keeps showing me just the array secuence, example:

public function Users() {
    $array = array();
    //$connection to db;
    $sql = mysql_query("SELECT * FROM users WHERE id='".$variable."'");
    $data = mysql_fetch_array($sql);
    $users = array(
        'id'=>$data['id'],
        'username'=>$data['username'],
        'name'=>$data['name'],
        'lastname'=>$data['lastname']
    );  
    $user = json_encode($users);
    echo $user;
}

Then in a another page I tried to deode the secuence like this:

include"class.php";
$user = new Query();
$usr = json_decode($user->User());
echo $usr->id;

but my result is:

{"id":"1","username":"someone","name":"Name","lastname":"Last"}

why, is the class causing the conflict?, how can I use a simpleclass to use it whenever I want to later on the run?

Thanks,

share|improve this question
3  
As a note, you should probably get into better naming practices. You user $user, $users, Users() and $usr and they are all different things. –  Andrew Jackman Dec 4 '11 at 15:20
    
Was just trying to post it in a descriptive way. Anyway, thanks for your suggestion and appreciate your call –  ttyinf0 Dec 4 '11 at 15:39
    
Besides, you should raise your accepting rate to motivate people to answer your questions. –  JMax Dec 5 '11 at 10:11
    
Thanks JMax, Good advice, how can this be possible? I´m new at stackoverflow –  ttyinf0 Dec 5 '11 at 14:55
    
@JMR Why did you change the selected answer from mine to his, when they both have the same answer? –  Andrew Jackman Dec 5 '11 at 16:23

2 Answers 2

up vote 0 down vote accepted

You are echoing $user in your Users() function. You need to return it instead.

return $user;

share|improve this answer

Don't echo $user, you need to return $user. echo doesn't return a value, it outputs it to the buffer.

public function Users() {
    $array = array();
    //$connection to db;
    $sql = mysql_query("SELECT * FROM users WHERE id='".$variable."'");
    $data = mysql_fetch_array($sql);
    $users = array('id'=>$data['id'], 'username'=>$data['username'], 'name'=>$data['name'], 'lastname'=>$data['lastname']); 
    $user = json_encode($users);
    return $user; // this is what I changed
}

User Users() instead of User:

include"class.php";
$user = new Query();
$usr = json_decode($user->Users()); //I also changed this because you only had "User"
echo $usr->id;
share|improve this answer
    
Nice!!! yup maybe that was the issue, the echo instead of the return, it´s working. Thankyou very much –  ttyinf0 Dec 4 '11 at 15:34

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