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I have a button when click it will insert the statement to the database however even without clicking the button the insert statement is already run .why?

<?php
header('P3P: CP="NOI ADM DEV PSAi COM NAV OUR OTRo STP IND DEM"');
include_once 'mysqli.connect.php';
include_once 'fbmain.php';

if($me){
    $fbid= $facebook->api('/me');
    $fbme = $fbid['id'];
    $fbName = $fbid['name'] ;  
    $fbEmail = $fbid['email'];
}
    if (isset($_POST)){
        mysqli_query($mysqli, "INSERT INTO members (fbId, name, email) values ('$fbme', '$fbName', '$fbEmail')") or die(mysql_error());
    }
?>
<html>
<form action="" method="post">
    <input type="image" src="../images/buy.png" name="submit" width="60"height="30" />
</form>
</html>
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This is more suited for ajax than a form submit. –  mowwwalker Feb 2 '12 at 6:27

3 Answers 3

check if $_POST is not empty() like this

if (!empty($_POST)){
        mysqli_query($mysqli, "INSERT INTO members (fbId, name, email) values ('$fbme', '$fbName', '$fbEmail')") or die(mysql_error());
    }
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the problem still occurs everytime the page refreshes it enters to database. –  user1175105 Feb 2 '12 at 6:31
    
print the $_POST variable inside if statement and check the values –  maxjackie Feb 2 '12 at 6:40

Change the code to

if (isset($_POST['submit'])){
    mysqli_query($mysqli, "INSERT INTO members (fbId, name, email) 
values ('$fbme', '$fbName', '$fbEmail')") or die(mysql_error());
}
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You need to be more specific about which key you check for the existence of, as your Facebook app is always fetched via the POST method, as this is how Facebook injects signed requests.

Odd I know, but that's Facebook for you.

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