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Can some one help me with this code with a error on scalar value as an array?

$getal = $_POST['getal'];

For($teller=1; $teller<=11; $teller=$teller+1)
{
    $uitkomst[$teller]=$teller*$getal;
}
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1  
What is $uitkomst variable ? –  OlivierH Nov 14 '13 at 8:46
    
And what is the exact error you are getting? –  qrazi Nov 14 '13 at 8:48
    
What does var_dump($uitkomst); output? It's probably a number. You need to use an array instead. –  Amal Murali Nov 14 '13 at 8:49
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1 Answer

$getal = $_POST['getal'];
$uitkomst = array();
For($teller=1; $teller<=11; $teller=$teller+1)
{
  $uitkomst[$teller]=$teller*$getal;
}
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Ohh lol it's easy I see now -.- Thankss :) –  user2991218 Nov 14 '13 at 8:49
    
Still curious about your error, since I could run your code (assuming $_POST['getal'] = 5) without error. PHP will deduce from this code that $uitkomst should be an array, although your code doesnt adhere to strict coding standards. –  qrazi Nov 14 '13 at 8:52
    
Maybe because I allready got a other $_post $getal code in my script?<?php if(!empty($_POST['submit'])) { $getal=$_POST['getal']; for($teller=1; $teller<11; $teller=$teller+1) { $uitkomst = $teller * $getal; echo "$teller X $getal = $uitkomst <br>"; } $getal = $_POST['getal']; $uitkomst = array(); For($teller=1; $teller<=11; $teller=$teller+1) { $uitkomst[$teller]=$teller*$getal; } –  user2991218 Nov 14 '13 at 9:43
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