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I have a config.php file which has some constants and methods.
I have a test.php file which calls one of the methods in config.php.
The relevant code is:

$Questions = array(
    1 => "Is he/she nice?1",
    2 => "Is he/she sweet?2",
    3 => "Is he/she nice?3",
    4 => "Is he/she sweet?4",
    5 => "Is he/she nice?5",
    6 => "Is he/she sweet?6",
    7 => "Is he/she nice?7",
    8 => "Is he/she sweet?8",
    9 => "Is he/she nice?9",
    10 => "Is he/she sweet?10"
);


function PrintAnswersOnMe($uid)
{
    $uid = antiSQLi($uid);
    $query = "SELECT * FROM AnsAns WHERE fid='".$uid."'";
    $result = mysql_query($query);
    while($row = mysql_fetch_array($result))
    {
        $rrr = $row[2];
        echo $Questions[1];
        echo $rrr . ' ' . $Questions[$rrr];
        echo "You'r friend <img src='http://graph.facebook.com/".$row['uid']."/picture/' /> answered " . (($row['answer'] == 1) ? "yes" : "no") . " about wether you're ". $rrr.": " . $Questions[$rrr];
        echo "<br /> " . $Questions['2'] . "<br/>";
    }
}


The test file only calls PrintAnswersOnMe. (it includes it)
Everything works file, excpet that no $Question[...] evaluates to actual HTML output!
To check that, I've added $Questions[2] - and also $Questions['2'] - and none of them produce HTML output. The loop does execute because everything else is getting to the HTML.
The funny thing is that inside test.php it does works - echo $Questions[...] is actually products to HTML output. Does anyone have any idea about this mysterious behavior?

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Where are you defining $Questions? In the file you include, or the calling script? If it's defined in the include, I believe it's out of the scope of when you call PrintAnswersOnMe() –  ernie Jul 31 '12 at 23:32
    
The variable is outside the scope of the function. php.net/manual/en/language.variables.scope.php for further reading –  pbond Jul 31 '12 at 23:36
    
Dude, get some basic PHP knowledge, please. php.net/manual/en/language.variables.scope.php –  CBroe Aug 1 '12 at 9:04

2 Answers 2

up vote 1 down vote accepted

You need to add global $Questions; to the beginning of your function, before $uid = antiSQLi($uid);.

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2  
noooooooooo :-) global bad; just parse it as an argument to the function –  Dagon Jul 31 '12 at 23:33
    
Why is a global bad? It's already a global, so there's no harm in fixing it to make it work properly. It doesn't seem like it's going to change on each invocation, so it doesn't really need to be an argument –  dririan Jul 31 '12 at 23:36
    
I believe this is the best solution. Thanks! –  Quantic Programming Aug 1 '12 at 11:17
function PrintAnswersOnMe($uid, $questions) {
//Code goes here
}

Then you'll have access

share|improve this answer
    
This requires calls to PrintAnswersOnMe to add it as a parameter, as well. –  dririan Jul 31 '12 at 23:38

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