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I'm trying to debug some code. I want to be able to show variables defined in try in catch. For example the variable $siteId.

<?php
try {
    $siteId = 3;
    if(1 !== 2) {
        throw new Exception('1 does not equal 2!');
    }
} catch(Exception $e) {
    $moreInfo = '';
    if(isset($siteId)) {
        $moreInfo .= ' SiteId»' . $siteId;
    }
    echo 'Error' . $moreInfo . ':' . $e->getMessage();
}
?>

The response I get is Error: 1 does not equal 2! instead of Error SiteId»3: 1 does not equal 2!. What am I doing wrong?

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3  
Works for me... –  Amadan Jul 26 '13 at 8:07
    
Jup, I don't have any problems getting the desired output (" Error SiteId»3:1 does not equal 2!") –  Benz Jul 26 '13 at 8:07
    
Oh. You guys are right! It does work: ideone.com/ctbe8q I guess it's something else in my code that's causing the issue. Thanks! –  iDev247 Jul 26 '13 at 8:10
    
Works as you expected with all PHP 5 releases - 3v4l.org/IKODl#tabs –  Mark Baker Jul 26 '13 at 8:10
1  
"too localized, probably some syntax error elsewhere" (reason for close vote) –  Elias Van Ootegem Jul 26 '13 at 8:12

3 Answers 3

Variables in PHP are scoped to the file, method or function, (see http://php.net/manual/en/language.variables.scope.php), so I'm not sure how this isn't working for you. A quick cut-n-paste into PhpStorm outputs the correct response for me.

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Declare $siteId outside the try/catch construct and use !empty($siteId) inside the catch.

$siteId = null;
try {

}catch(Exceptions $e) {
  if( ! empty($siteId) ) {

  }
}
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try to move out $siteId from try/catch:

<?php
$siteId = 3;
try {        
    if(1 !== 2) {
        throw new Exception('1 does not equal 2!');
    }
} catch(Exception $e) {
    $moreInfo = '';
    if(isset($siteId)) {
        $moreInfo .= ' SiteId»' . $siteId;
    }
    echo 'Error' . $moreInfo . ':' . $e->getMessage();
}
?>
share|improve this answer

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