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Here is my code:

<?php
  $query1 = 'SELECT * From Drink';
  $GetName= mysql_query($query1);?>

<?php foreach ($GetName as $GetNames) : ?>
        <?php echo $GetNames['Name']; ?>
        <?php endforeach; ?>

The error I'm getting is this:

Warning: Invalid argument supplied for foreach() in (removed for privacy) on line 16

I've looked at other questions similar to this one, and they don't quite answer the question. I'm not interested (currently) in finding a different way to go about doing this. I already have an alternate way, but I was taught this way and I'd like to know why it is failing.

It isn't a problem with the database or the query, because this:

<?php
  if ($GetName) {
            while($row = mysql_fetch_array($GetName)) {
                $name = $row["Name"];
                echo "$name<br>";
            }
        }

Works just fine.

Can anyone help me?

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closed as too localized by jeroen, hjpotter92, X.L.Ant, ben75, Graviton Mar 25 '13 at 3:56

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center. If this question can be reworded to fit the rules in the help center, please edit the question.

    
if (is_array($GetName)) { –  el Dude Mar 24 '13 at 1:45
1  
Is $GetName a mysql_ resource, or an array? –  Joe Frambach Mar 24 '13 at 1:47
1  
mysql_* is depricated, any way checkout the answer –  7-isnotbad Mar 24 '13 at 1:47
    
You have a solution that works just fine, using mysql_fetch_array in a while loop. Use that. –  Joe Frambach Mar 24 '13 at 1:51
    
check if the var is an array first with is_array(), but it looks like in this case its a resource. FYI, use PDO or ADO library or odbc_connect() instead of mysql_... like IOIO MAD said its deprecated –  zgr024 Mar 24 '13 at 1:52

3 Answers 3

Reason is what returns from a MySQL query is a resource. And that does not implement the iterator interface, which allow foreach to work on.

U need to loop and in each time, to see the new result set, u need to call mysql_fetch_array($GetName) until it returns false. That's when u stop to loop.

There is ABSOLUTELY no other simple way

In other words, u need to use the while. If u use an extension like PDO, u can use stuff like fetchALL

Read the PDO and MySQLi manuals for more options.

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Well that's progress at least. I added: $test = mysql_fetch_array($GetName) then changed it to: <?php foreach ($test as $GetNames) : ?> Now I'm not getting the error, but what is returning doesn't match what's in the database. –  Marcel Marino Mar 24 '13 at 1:52
    
$test is only ONE record. U need to loop on the reordS and on each record. Use the while that is the correct way. –  Itay Moav -Malimovka Mar 24 '13 at 12:42

Ty this

foreach ($GetNames as $GetName => $row)
{

     //echo as you like
    echo ... $row['Name'] ;
}
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1  
As I said, I know there are other ways to do it. I would like to know why this way isn't working, when it has in the past. –  Marcel Marino Mar 24 '13 at 1:50
up vote 0 down vote accepted

So, I got it working. The problem was the way I connected to the database. Once I switch to PDO, as IOIO MAD implied, it worked just fine. Also Kudos to Itay Moav -Malimovka, because his suggestion did get rid of the error. Thanks for all of your help everyone, I'm glad I got this resolved.

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