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I have this query to submit data into the datbase:

$sql = "UPDATE table SET user='$user', name='$name' where id ='$id'";

the id will be obtained via url EX localhost/index.php?id=123


The query will not work correctly; the data will not update. If i write :

$sql = "UPDATE table SET user='$user', name='$name' where id ='123'";

It works fine.

If I echo the ID it will show the correct result, 123.

Where is the problem?

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echo the whole sql query pls so we can see the real problem –  LostMohican Nov 29 '11 at 15:21
This code screams SQL INJECTION!!! You should probably read up on what they are and how to prevent them. –  Gazler Nov 29 '11 at 15:22
Have a read of this question/answer - it explains the methods for avoiding SQL injection :… –  ManseUK Nov 29 '11 at 15:24
I'm quite sure your tablename and some columnnames are keywords, put them in inverted single qoutes: UPDATE `table` SET `user`='$user', `name`='$name' WHERE `id` = $id –  Lex Nov 29 '11 at 15:24

5 Answers 5

I'm guessing your problem is mal-formed SQL due to unescaped data interpolation - an SQL injection hole.

What does your actual generated query look like? Not the code that creates the sql (which you've got above), but the actual SQL after the variables are inserted?

I'm guessing it'll look something like this:

UPDATE table SET user='fred', name='O'Brien' where id='123';
                                     ^--unescaped quote

causing a syntax error.

If you're running the query like this:

$result = mysql_query($sql);

then change it to be

$result = mysql_query($sql) or die(mysql_error());

so you'll immediately get feedback if the query fails for any reason.

And then read up about SQL injection holes

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It does not explain why the second query is working –  ajreal Nov 29 '11 at 15:25
My comment on the original question does. –  Lex Nov 29 '11 at 15:26
@Lex not a chance ... –  ajreal Nov 29 '11 at 15:29
lol you're right.. I wasn't as awake as I thought... :) –  Lex Nov 29 '11 at 15:31
the result show this: UPDATE table SET user='robert', name='bob' where id=" –  Geme Nov 29 '11 at 16:19

run ALL your queries the way you can get the error message along with erroneous query.
so, at least this way

$sql = "UPDATE table SET user='$user', name='$name' where id ='$id'";
$res = mysql_query($sql) or trigger_error(mysql_error()." in ".$sql);

and it will tell you where is the problem.

It is WAY more convenient, precise and faster than asking questions here.

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This is the answer –  humphrey Apr 27 '13 at 21:34

TableName should be there have not used table name in your query..Echo the $sql and then try executing in phpmyadmin.

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I think the OP means the table name where table is written ... –  ManseUK Nov 29 '11 at 15:25

First of all, you're wide open to SQL Injection attacks if you do it like this. Anyone can just alter the part after id= to anything they like and modify your database with that.

Secondly, I see you pass an id to the script, but where does it determine the $user and $name values? Seems like your code posted is incomplete.

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Without getting into the issue of how bad it is to pull data right from the GET array, I'd start by suggesting you properly escape your variables. I assume ID is an integer, so there's no need for singlequotes around it.

$sql = "UPDATE table SET user='".$user."', name='".$name."' where id=".$id;

See if that works.

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This will change absolutely NOTHING. $x = "x $a x" is treated exactly the same as $x = 'x ' . $a . ' x'; by PHP. All you've done is rearrange the deck chairs on a sinking ship. –  Marc B Nov 29 '11 at 15:24

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