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I have a problem with an undefined variable, if I define the variable the script does not work correctly, I know it's a simple answer I just can't find it.

Here is my code: ( I use this in a for each loop )

$weight= ($item['weight']*$item['quantity']);  
$totalweight = ($totalweight + $weight) 

echo $totalweight;

The script works perfect and gives me the correct answerexcept I get an undefined variable error on line 2 $totalweight

I have tried to set the variable it then breaks the calculation.

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closed as too localized by cryptic ツ, Tchoupi, Lusitanian, Ja͢ck, Jasper Mar 7 '13 at 17:17

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That code makes no sense. If you know $totalweight doesn't exist why do you have ($totalweight + $weight) ??? –  John Conde Mar 7 '13 at 2:15
What's the point of the second line if the variable is unassigned? –  Tchoupi Mar 7 '13 at 2:16
how are you suppose to do $totalweight = ($totalweight + $weight), if $totalweight isn't defined? –  kennypu Mar 7 '13 at 2:19

2 Answers 2

up vote 1 down vote accepted

You need to initialize the variable outside of the loop so it's not overwritten on every iteration:

$totalweight = 0;
foreach ($items as $item) {
    $weight= ($item['weight']*$item['quantity']);  
    $totalweight = ($totalweight + $weight) 

echo $totalweight;
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You hit the nail on the head, I was trying to definfe the variable inside the loop –  HarryH Mar 7 '13 at 2:26

How are you setting the variable? PHP is producing this notice because you are asking it to add $totalWeight and $weight and it doesn't know what $totalWeight is.

To remove this notice you could do:

$totalWeight = 0;
$weight= ($item['weight']*$item['quantity']);  
$totalweight = ($totalweight + $weight);

echo $totalweight;

Although it's probably just best to change the line to be:

$totalweight = $weight;

(Unless of course this code runs in a loop or the like).

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