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I have the following php code that is supposed to connect to the database and update some info. However it is not updating. It doesnt give any errors, it connects just fine... the sql statement just doesnt seem to be working but everything looks ok to me.

 if ($send != "no") {            
                $db_name = "auctionfinal";
                $table_name = "auctions";
                $connection = @mysql_connect("auctionfinal.db.6084638.hostedresource.com", "xxxx", "xxxx") or die(mysql_error());
                $db = @mysql_select_db($db_name, $connection) or die(mysql_error());

                $sql = "UPDATE $table_name SET curbid = '$_POST[price]', nbids = '$totalnbid' WHERE aucname = '$auc' ";

                $result = @mysql_query($sql, $connection) or die(mysql_error());

                if ($result) {
                    echo "Thank you! You have bid on the auction for $auc, the current bid is $curbid, there have been $nbids bids on this auction so far.";
                }
            } else if ($send == "no") {
                echo "$user_err";
            } 
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closed as too localized by Jeff Atwood Jun 22 '11 at 9:48

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.

4  
For starters, remove '@' from all those function calls so you can see any errors. –  bob-the-destroyer Jun 22 '11 at 1:05
4  
Bobby tables sends regards. –  The Scrum Meister Jun 22 '11 at 1:06
    
even without the @'s I get no errors –  Expecto Jun 22 '11 at 1:08
1  
After the $sql assignment, can you var_dump($sql) and share the output with us? –  dossy Jun 22 '11 at 1:15
1  
@Josepth Vodary: if you really do get nothing from var_dump($sql);, this means you've made a loose typing error on the variable $send. Can you explain? Can you add in there a closing else statement to catch the unexpected? –  bob-the-destroyer Jun 22 '11 at 2:10

3 Answers 3

It doesn't give any errors because you've told PHP to ignore errors. Remove the "@" from in front of all the mysql function calls, you'll get the errors.

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The "@" symbol in front of php mysql function suppresses any errors. Remove it and then you'll see if there are any errors.

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This is one of the risks you take using variable expansion inside strings.

This statement:

$sql = "UPDATE $table_name SET curbid = '$_POST[price]', nbids = '$totalnbid' WHERE aucname = '$auc' ";

... would be better written as:

$sql = "UPDATE ".$table_name." SET curbid = '".mysql_real_escape_string($_POST['price'])."', nbids = '".mysql_real_escape_string($totalnbid)."' WHERE aucname = '".mysql_real_escape_string($auc)."' ";
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changing that does nothing, and still no errors –  Expecto Jun 22 '11 at 1:10
2  
Then you need to start putting debugging prints in so you can see what it thinks it's doing. –  staticsan Jun 22 '11 at 1:12
    
While it's true that mysql_real_escape_string() needs to be used on these variables before handing them to mysql_query(), double-quoted string interpolation is not risky. It is a valuable feature of PHP that if used & understood properly offers superior readability and is far less error prone than dozens of concatenations & the quoting needed to make them happen. –  Michael Berkowski Jun 22 '11 at 1:21
    
@Michael, we will just have to differ on the value and readability of variable expansion in PHP. –  staticsan Jun 22 '11 at 1:30

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