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I want to get some values from inside of my function, and use them outside for my calculation? Is it possible? I am new to PHP.

Suppose I have code:

function snltc($ema)
{ 
    $uemail = $ema;

    $snlc = mysql_query("SELECT * FROM usertree WHERE slot1='$uemail' || slot2='$uemail' || slot3='$uemail' || slot4='$uemail' || slot5='$uemail'");
    $dsnl = mysql_fetch_array($snlc);

    echo $dsnl['supemail'];
    echo "</br>";
    echo $dsnl['snlt'];
    $sup1 = $dsnl['supemail'];
    $snltu = $dsnl['snlt'] + 1;
    echo "</br>";
    echo $snltu;
    mysql_query("UPDATE usertree SET snlt='$snltu' WHERE supemail='$sup1'");
    $newsnl = mysql_fetch_array($snlc);
    echo "</br>";
    $snlval = $newsnl['snlt'];
    echo "</br>";
    return $snlval;
}

echo "</br>";
echo snltc('gami@gmail.com');

Now, what I want from this code is to use $snlval outside of the function and $sup1 outside of the function. How can I achieve this?

share|improve this question
    
I am beginner please proceed with some detail explanation thanks alot ! –  user1663780 Sep 18 '12 at 10:58
    
You can use return $variable; –  HappyApe Sep 18 '12 at 10:59
    
He is already returning... :) –  Praveen Kumar Sep 18 '12 at 11:00

4 Answers 4

You can return that as array:

function snltc($ema){ 
    $uemail = $ema;
    $snlc = mysql_query("SELECT * FROM usertree WHERE slot1='$uemail' || slot2='$uemail' || slot3='$uemail' || slot4='$uemail' || slot5='$uemail'");
    $dsnl = mysql_fetch_array($snlc);
    $sup1 = $dsnl['supemail'];
    $snltu = $dsnl['snlt'] + 1;
    mysql_query("UPDATE usertree SET snlt='$snltu' WHERE supemail='$sup1'");
    $return = array();
    $return['snlval'] = $snltu;
    $return['sup1'] = $sup1;
    return $return;
}

then you can use

$return = snltc('gami@gmail.com');
echo $return['snlval'];
echo $return['sup1'];
share|improve this answer
    
your answer is 100% correct and assuming your answer means there is no other simpler way to fetch variable inside of the function ! thanks alot ! –  user1663780 Sep 18 '12 at 11:03
    
Glad you understood. It's no other simple way than to return an array containing your variables. –  Mihai Iorga Sep 18 '12 at 11:09
    
snlval is not showing value –  user1663780 Sep 18 '12 at 11:28
    
that is because you are making "UPDATE usertree", I have modified the function. Check now –  Mihai Iorga Sep 18 '12 at 11:35

In your function:

return array($snival, $sup1);

Calling the function:

$values = snltc($x);
echo $values[0] . $values[1];
share|improve this answer

Return both of the values in an array:

function snltc($ema)
{
  // ...
  return array($sup1, $snlval);
}

list($sup1, $snlval) = snltc('gami@gmail.com');
share|improve this answer
    
snlval is not showing value –  user1663780 Sep 18 '12 at 11:28

now what I want from this code is to use $snlval out sideof the function and $sup1 out side of the function how can I achieve this ?

assuming you want to return 2 variables .. you would put them in an array and return the array so your return statement becomes

return array('snlval' => $snlval, 'sup1' => $sup1 );

so when you make a call to this function ...

$result = snltc('gami@gmail.com');
$snlval = $result['snlval'];
$sup1 = $result['sup1'];
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