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Ok, I've search and read many of the "undefined" variable issues and can't find a solution to my issue. I'm new to PHP so I hope what I'm trying to convey here is clear . . .

I have a form with a selection drop down list. Based on what the user has chosen my php script retrieves records from a mySql database using PDO and assigns the FetchAll output to a Session variable, then it returns back to the initial form.

In the form I set a variable $scores to the session variable. And within in the form, I use a foreach loop to loop through the results and echo out the HTML. It works great, but when I view the source from the browser I get this notice (it doesn't display on the page however):

Notice: Undefined variable: scores in C:\inetpub\wwwroot\content\viewScores.php on line 187

This isn't really affecting my page, as I said it works - but I'm just curious as to why I am getting the message.

Here is a snippet of my code . . .

<?php $scores = $_SESSION['scores'];?>
<html>
  .
  .
  .
    <?php
        foreach ($scores as $row) {
            echo '<td>' . $row['date'] . '</td>';
               .
               .
               .
        }
    ?>
</html>

The foreach loop is where the message originates from. The variable is set to the contents of the PDO fetchAll output array and the loop works, so why the message? If I put a vardump before the loop - it dumps the $scores array just fine.

I've tired using foreach ((array)$scores as $row) as I had to do that in the initial select drop down to avoid this error message "Invalid argument supplied for foreach()", that one baffled me as well until I found the (array) solution on this board (Thanks!). I still don't understand why I have to do that since foreach expects an array as the first argument anyway? Maybe because it is an array of an array (or whatever you call that). Anyway using (array) didn't solve the Undefined variable error.

Any ideas?

Edit: Thanks for the quick responses so far. Sorry, I see from the answers maybe my question isn't entirely clear. The code snippet I included does not include all of my PHP code where $scores gets set - I do use if (isset($_SESSION['scores'])) to verify that $_SESSION['scores'] is set.

I just noticed something really strange. This is NOT happening when in IE 8, it is only happening in Google Chrome. But I thought PHP was SERVER side scripting so why would I only get this message in Google Chrome?

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3  
If you cast an undefined variable to array, you will get an empty array. If you don't do that, you still have NULL, the value of every undefined variable in PHP. foreach does not work with NULL, but it works with an empty array. –  hakre Sep 26 '12 at 17:15
    
@hakra that notice would not be generated if the variable were defined as null –  Explosion Pills Sep 26 '12 at 17:23
    
It's not NULL or EMPTY - how would the loop work and write my code out if it were NULL or EMPTY? I did state that I did a var_dump before the foreach loop and it contains the data. –  azrickster Sep 26 '12 at 18:04
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closed as too localized by hakre, tereško, jeroen, PeeHaa, Graviton Sep 27 '12 at 4:10

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1 Answer

You should check to make sure the session variable exists before setting it to your $scores variable, and if it does not exist set $scores to an empty array (along the lines of what @hakra said). That will stop the notice.

<?php $scores = isset($_SESSION['scores']) ? $_SESSION['scores']:array(); ?>
<html>
  .
  .
  .
    <?php
        foreach ($scores as $row) {
            echo '<td>' . $row['date'] . '</td>';
               .
               .
               .
        }
    ?>
</html>
share|improve this answer
    
I do, I just don't show that in my code snippet here. –  azrickster Sep 26 '12 at 18:04
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