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I'm a PHP newbie, so I have a minor problem functions. I have this line of code:

<?php
$ime=$_POST["ime"];
$prezime=$_POST["prezime"];
$pera="string";
if (empty($ime)||empty($prezime)){
    echo "Ne radi, vrati se nazad i unesi nesto!";
}
function provera($prom){
    if (preg_match("/[0-9\,\.\?\>\.<\"\'\:\;\[\]\}\{\/\!\\\@\#\$\%\^\&\*\(\)\-\_\=\+\`[:space:]]/",$prom)){
        echo "Nepravilan unos imena ili prezimina!";
        echo $pera;
        }
}
provera($ime);
provera($prezime);
?>

Anyway, when I try this code I always get an error message saying that there's a error on on line 11 (the bold part of the code) and no variable is echoed. I'm guessing that it gives me that error because my variable isn't defined inside of that function, but I need to define it outside of the function so is there a way to do this?

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can you past whole function "provera" –  Senad Meškin May 19 '11 at 12:46
    
Use formatting functions so we can actually see your code without problems, it makes it easier to help. –  Michael J.V. May 19 '11 at 12:46
2  
Incidentally, you'd probably benefit from working through the PHP manual's tutorial section, as it covers a lot of these sort of issues. –  middaparka May 19 '11 at 13:09

4 Answers 4

up vote 4 down vote accepted

This is because you're using the $pera variable (which exists only in the global scope) inside a function.

See the PHP manual page on variable scope for more information.

You could fix this by adding global $pera; within your function, although this isn't a particularly elegant approach, as global variables are shunned for reasons too detailed to go into here. As such, it would be better to accept $pera as an argument to your function as follows:

function provera($prom, $pera){
    if (preg_match("/[0-9\,\.\?\>\.<\"\'\:\;\[\]\}\{\/\!\\\@\#\$\%\^\&\*\(\)\-\_\=\+\`[:space:]]/",$prom)){
        echo "Nepravilan unos imena ili prezimina!";
        echo $pera;
        }
}
share|improve this answer
    
I tried using $pera as a function argument, but now I'm getting errors that my second argument for provera() is missing and that $pera is unidentified. –  Mentalhead May 19 '11 at 13:03
    
@Mentalhead - My apologies - when you call the function you need to supply the variable as a parameter. i.e.: provera($ime, $pera); and provera($prezime, $pera);. Hope this helps. –  middaparka May 19 '11 at 13:08
    
Thank you very much for clarifying this. –  Mentalhead May 19 '11 at 17:08

It sounds like you have nothing set in your $pera variable. If you have to define a variable outside a function, try passing its value as argument to your function.

function echoMyVar( $myVar )
{
   echo $myVar;
}


$p = "toto";
echoMyVar($p);
share|improve this answer

You can't use $pera inside the method like that because it's not defined inside the method scope.

If you want to use the method, pass it as a parameter.

function provera($prom, $pera){ //passed as a param
    if (preg_match("/[0-9\,\.\?\>\.<\"\'\:\;\[\]\}\{\/\!\\\@\#\$\%\^\&\*\(\)\-    \_\=\+\`[:space:]]/",$prom)){
        echo "Nepravilan unos imena ili prezimina!";
    echo $pera;
}
share|improve this answer
    
Tried it before, and I'm three errors now 2x Missing argument 2 for provera() on line 14 and Undefined variable: pera on line 11 –  Mentalhead May 19 '11 at 12:52
1  
@Mentalhead - As middaparka already pointed out, you should call the function with 2 parameters provera($ime, $pera) –  martinstoeckli May 19 '11 at 14:13

In your function function provera($prom) add a line that says

global $pera;

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