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I keep on getting this error:

Notice: Undefined variable: var1 in C:\xampp\htdocs\Series\DieOrExit.php on line 7

even though my syntax is correct, $var1 is a global variable, and I'm calling $var1 within my function. I tried to turn off notices by going to php.ini and setting my error_reporting = E_ALL & ~E_NOTICE and restarting Apache but nothing happens. Does anyone have any advice on how to fix this problem? Thanks!

Here is my script:

<?php

$var1 = "hello";

function x()
{
    echo $var1;
}

x();
?>
share|improve this question

1 Answer 1

That happends, because variable inside your x() function has only local scope.

See Variable scope at php.net.

There is an almost identical example:

<?php 

$a = 1; /* global scope */ 

function test() 
{ 
    echo $a; /* reference to local scope variable */  
} 

test(); 
?>

With description:

This script will not produce any output because the echo statement refers to a local version of the $a variable, and it has not been assigned a value within this scope. You may notice that this is a little bit different from the C language in that global variables in C are automatically available to functions unless specifically overridden by a local definition. This can cause some problems in that people may inadvertently change a global variable. In PHP global variables must be declared global inside a function if they are going to be used in that function.


To workaround this, you have to pass your variable to function, like this:

<?php

$var1 = "hello";

function x($var2)
{
    echo $var2;
}

x($var1);

?>
share|improve this answer
    
oh, thanks so much Kamil! –  user1923 Jun 30 '13 at 23:27

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