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I am trying to create a successful update, using the following HTML:

<form id="form2" name="form2" method="post" 
  onsubmit="return validateForm();" action="">

    Id <input type="text" class="txt" name="id" />
    <br />
    Name <input type="text" class="txt" name="name" />
    <br />
    Website <input type="text" class="txt" name="website" />
    <br />
    Description <input type="text" class="txt" name="description" />
    <br />
    <input type="submit" id="submit" value="Submit"/>
</form>

I then use the following PHP to read the value and update my database:

<?php
  global $wpdb;
  if (isset($_GET['id']) && !empty($_GET['id']) &&
    isset($_POST['name']) && !empty($_POST['name']) &&
    isset($_POST['website']) && !empty($_POST['website']) &&
    isset($_POST['description']) && !empty($_POST['description']))
  {
      $wpdb->query("update where id = $_GET['id'] ".PRO_TABLE_PREFIX
            ."tutorial (name, website, description) "
            ."values('{$_POST['name']}', '{$_POST['website']}', '{$_POST['description']}')");
  }
?>

What am I doing wrong?

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instead of this update where id= $_GET['id'] try this update where id= $_POST['id'] don't mixed it up –  darshan.dodiya Jan 1 '13 at 6:16
1  
@RabNawaz: You can have both GET and POST parameters in the same request (e.g. by POSTing a form to an URL including URL parameters). Uncommon, but possible. –  Jan Schejbal Jan 1 '13 at 6:20
    
Are youre "updating" (changing what explains $_GET) or "inserting" your data for a first time? –  Xfile Jan 1 '13 at 6:23
    
your update query have syntax error please use below code –  Manish Nagar Jan 1 '13 at 6:24
3  
WARNING! Your code contains an SQL injection vulnerability -- you are passing raw, unfiltered, unvalidated user input directly into an SQL string. SQL injection is very easy to fix. It looks like you're using Wordpress, so you should use the features of WPDB, which include emulation of prepared statements with parameterized queries. –  Charles Jan 1 '13 at 7:35
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6 Answers

<form id="form2" name="form2" **method="post"** onsubmit="return validateForm();" action="">

Please note that your form method is post

and you are trying to fetch data using get method

isset ( $_GET['id'] ) && ! empty ( $_GET['id'] )

replace these with $_POST['key_name]; to get proper results.

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You are having more serious issues than code not working. You are inserting raw GET/POST data into SQL queries, without any escaping or filtering. Please read this documentation before you proceed. Otherwise, your application will be vulnerable to SQL injections, i.e. the servers that use your plugin will get hacked.

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3  
posting this as a comment is much better than an answer –  Sudhir Jan 1 '13 at 6:17
    
and mysql query is bad.. its update but actually its an insert :P –  Xfile Jan 1 '13 at 6:19
    
@Xfile if you don't do a query, how you will retreive, insert, delete, update the database then? –  itachi Jan 1 '13 at 6:24
    
@Jan Schejbal - INSERT & UPDATE are different (query) things in PHP. Thats what I'm saying. So, we can INSERT or UPDATE. We cannot do both things at the same time ;P –  Xfile Jan 1 '13 at 6:30
    
@Sudhir: ok, thanks for the info, will do in the future (Should I delete this one despite the comments?) –  Jan Schejbal Jan 1 '13 at 6:34
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use this your update query is not correct syntax

$wpdb->query("update ".PRO_TABLE_PREFIX."tutorial set  name='{$_POST['name']}', website='{$_POST['website']}', description= '{$_POST['description']}' where id= $_GET['id'] ) ");
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1  
Your suggestion also includes the SQL injection vulnerability that is in the original code. Please at least add a note so other people don't use the code as an example. –  Jan Schejbal Jan 1 '13 at 6:55
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If you want the ID to be in $_GET['id'], then form action should be like this

action = "<page-url>?id=<somevalue>"

Also, you have to create a textbox to input id and the for the form should be changed according to the input there, using jQuery or Javascript.

Finally, if this is too complicated, change $_GET['id'] to $_POS['id'] as the others suggested.

Also, the SQL query is incorrect. Others have already pointed it out.

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Try with POST id

<?php
     global $wpdb;
if ( isset ( $_POST['id'] ) && ! empty ( $_POST['id'] ) &&
 isset ( $_POST['name'] ) && ! empty ( $_POST['name'] ) &&
 isset ( $_POST['website'] ) && ! empty ( $_POST['website'] ) &&
 isset ( $_POST['description'] ) && ! empty ( $_POST['description'] ))
{
$wpdb->query("INSERT ".PRO_TABLE_PREFIX."tutorial ( name, website, description )
values('{$_POST['name']}','{$_POST['website']}','{$_POST['description']}') ");
}
?>
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It just adding a new entry not updating the old one :( –  user1890857 Jan 1 '13 at 6:27
    
Use Insert query ... –  Codesen Jan 1 '13 at 6:31
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2 Things.

1) Since your form method is POST, you would have to use $_POST['id'].

2) Inside your query string, your mysql UPDATE syntax as wrong as well as to use an array with key inside a string, you have to wrap it in { and } tags. This should work:

$wpdb->query("UPDATE " . PRO_TABLE_PREFIX . "tutorial SET name='{$_POST['name']}', website='{$_POST['website']}', description='{$_POST['description']}' WHERE id={$_POST['id']}");
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working but adding a duplicate entry –  user1890857 Jan 1 '13 at 6:31
    
Are any of your table columns unique or primary? If they are, you can't have 2 rows with the same values. –  Supericy Jan 1 '13 at 6:34
    
its also update the id :( –  user1890857 Jan 1 '13 at 7:43
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