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why am I getting an undefined variable error? I am defining it inside the IF statement and the condition is always, since there are ni performance issue, any suggestions on how to fix this?

    if(in_array($row['billing'],$list)){
    $bills = array_search($row['billing'], $list);
    }

    echo $bills; // <-- undefined variable $bills on this line
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4  
What if in_array($row['billing'],$list) is false? –  Gumbo Dec 20 '12 at 22:52

5 Answers 5

It really seems like that value ($row['billing']) is not in the array ($list), so in_array() returns false. So $bills is never defined, because the code inside the if never runs.

To be sure, define it beforehands with a default value of your choice (null, '', etc.):

$bills = 'no billing information';
if(in_array($row['billing'],$list)){
    $bills = array_search($row['billing'], $list);
}

On the other hand, you don't really need that check. If the value is not in the array, array_search() will return false anyways:

Returns the key for needle if it is found in the array, FALSE otherwise.

So you can simplify things:

$bills = array_search($row['billing'], $list);
echo $bills === false ? 'no billing information' : $bills;

You have to use === false because the function might return 0 as well (if the element is at the first index).

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echo $billsis outside the if statement –  cheesemacfly Dec 20 '12 at 22:53
    
@cheesemacfly, what does that have to do with this solution? $bills is getting set before the if block, so it will always have a value, regardless of the if statement. –  Benjam Dec 20 '12 at 22:58
    
I would +1 again for the cleaned up code if I could. –  Benjam Dec 20 '12 at 22:59
    
@Benjam the answer has been modified since but anyway I was wrong... –  cheesemacfly Dec 20 '12 at 22:59
if(isset($bills))
 echo $bills
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The if statement if(in_array($row['billing'],$list)) is not holding true. Hence, the $bills variable is not being set/defined. You either need to define it before the if statement or make sure the if statement passes, before the echo.

Alternatively, you can also check if its set before echo with,

if(isset($bills))
  echo $bills;
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if(isset($bills)){echo $bills;}
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The $bills variable exists only in the scope of the if statement, i.e. between the open and closing braces.

If you want to use the value outside the if statement, define $bills earlier. For example:

   $bills = '';
   if(in_array($row['billing'],$list))
   {
        $bills = array_search($row['billing'], $list);
   }

    echo $bills;

Or, you could just echo out the value in the if statement scope.

EDIT: I had it wrong, PHP does not have block scope. Use the following:

 if(in_array($row['billing'],$list))
    {
        $bills = array_search($row['billing'], $list);
        echo $bills;
   }
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3  
PHP does not have block scope. –  Gumbo Dec 20 '12 at 22:54
    
Although your code will work, your reasoning is incorrect. –  Benjam Dec 20 '12 at 22:55

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