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to all i have a weird problem when i am trying to update a table of my database with checkboxes it takes only one value and all the rest just ingnores them here is my php code so far

foreach ($_POST['choice'] as $id){

    $result1=mysql_query("UPDATE store SET storeid='".$id."',availability='".$availability."', price='".$price."'  WHERE productid='".$par1."'");

Yes you are right and i am deeply sorry for the lack of information.Here is my html code as well

echo "<td><input type='text' id='availability[".$row->id ."]' name='availability[".$row->id ."]'  value='".$row->diathesimotita ."' size='20'/></td>";
echo "<td><input type='text' id='price[".$row->id ."]' name='price[".$row->id ."]'  value='".$row->price ."'  size='10'/></td>";
echo "<td><input type='checkbox' id='choice[".$row->id ."]' name='choice[".$row->id ."]'  value='".$row->id ."'   /></td>";

So i am trying to take the textbox values which are in the same row with the check box but it gets only the first checked ckeckbox

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what is your html, no way of finding issues without the complete code.. – Luceos Aug 31 '13 at 20:04
$par1 does not change in the loop. – juergen d Aug 31 '13 at 20:07
Try typing <pre><?php echo print_r($_POST); ?></pre>. This will print out the $_POST fields so you can then work out how to get the data. I think the $_POST will have multiple variables called availability etc – ajtrichards Aug 31 '13 at 20:07
Watch out for SQL injection. When writing new code, you should consider using PDO or mysqli. >Please, don't use mysql_* functions in new code. They are no longer maintained and are officially deprecated. See the red box? Learn about prepared statements instead, and use PDO or MySQLi - this article will help you decide which. If you choose PDO, here is a good tutorial. – Marty McVry Aug 31 '13 at 20:07
If you have an array of price[] values, then you probably want to use foreach ($_POST['choice'] as $key=>$id), so you can pass the array $key to the other arrays. Although without more information on what you're trying to accomplish, this is hard to answer. – Marty McVry Aug 31 '13 at 20:11

2 Answers 2

Checkboxes only post a value when they are checked. You should validate them or set a value first before trying to use them in a query (for security if nothing else!). For example do this at the top of your processing code:

$checkbox_val = (!empty($_POST['choice']) ? 'Yes' : 'No');  //example only assuming non-array for 'choice'

This will set the value to 'No' if the POST value is empty or not set, guaranteeing that you always have a value. You can change the values to 0/1, true/false, etc.

Also, without seeing what is in your 3 $_POST arrays, it is impossible for us to tell you if you are getting the correct values for $price etc.

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The PHP code looks fine; we need to see the HTML code, but anyway try this in SQL:

UPDATE store SET storeid='".$id."' , availability='".$availability."' , price='".$price."'     WHERE productid='".$par1."'" );

Spaces really matter in SQL. If this does not work please show us the HTML code.

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