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What is wrong with this query? It appears to be correct to me:

mysql_query("UPDATE culture SET cult_desc=$culture WHERE cult_id is $UID");

Modified it, NetBeans is still giving me an error. Here's my total code for the page:

$culture = $_POST["culture"];
if (isset($_POST["id"]))
    $UID = $_POST["id"];
    mysql_query("UPDATE culture SET cult_desc='$culture' WHERE cult_id=$UID");
else
     mysql_query("INSERT INTO culture
             VALUES(cult_desc='$culture')");
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Why do you think there is something wrong? –  str Nov 21 '11 at 18:44
    
because there obviously was something wrong –  matthiasmullie Nov 21 '11 at 19:09

8 Answers 8

up vote 1 down vote accepted

Seeing the newly edited code, your update-statement is now correct, but your insert statement now is wrong.

Try:

mysql_query("INSERT INTO culture (culture_desc)
             VALUES ('$culture')");
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what's the value of $culture? If it's a string, you'll need to encapsulate it with quotes.

Same thing for $UID.

Also, The 'is' in the where-condition should be '='

Also: watch our with this code. Make sure that $culture and $UID can not contain any malicious values (e.g. malicious input from users)

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This is an internal admin system, so there won't be malicious values. –  Jake Smith Nov 21 '11 at 19:21

cult_desc probably string so need to wrap with ' '

mysql_query("UPDATE culture SET cult_desc='$culture' WHERE cult_id = $UID");
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if SET cult_desc is a string then

mysql_query("UPDATE culture SET cult_desc='$culture' WHERE cult_id = $UID");

or

mysql_query("UPDATE culture SET cult_desc=$culture WHERE cult_id = $UID")
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your problem in the { and } of if else statement

$culture = $_POST["culture"];
if (isset($_POST["id"])){
    $UID = $_POST["id"];
    mysql_query("UPDATE culture SET cult_desc='$culture' WHERE cult_id=$UID");
}else{
     mysql_query("INSERT INTO culture
             VALUES(cult_desc='$culture')");
}
share|improve this answer
$sql = "UPDATE 'culture' SET `cult_desc` = '$culture' WHERE `cult_id` = '$UID'";

Basically, you're using is instead of =

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Depending on the data type of $culture and $UID you might be missing quotes. Cult_desc sounds like a string and thus $culture should be enclosed in quotes.

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You should always check the output of mysql_error.http://php.net/manual/en/function.mysql-error.

I also usually use = instead of 'is' and also wrap all of my input data in quotation marks. eg

$sql = "UPDATE 'culture' SET cult_desc = '".$culture."' WHERE cult_id = '".$UID."'";

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