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I'm trying to insert a form in php statement like this

    while($row = mysql_fetch_array($result))
  {
  echo "<form id='send' action='up.php' method='POST'>
  <tr>
  <td>" .  $row['s_no'] ."</td>
  <td> <label for='student_name'><textarea name='student_name' >".$row['student_name']."</textarea></label></td>
   <td> <textarea name='roll_no'>".$row['roll_no'].     "</textarea></td>
   <td> <textarea name='company'>".$row['company'].     "</textarea></td>
   <td> <textarea name='contact_no' >".$row['contact_no'].  "</textarea></td>
   <td> <textarea name='email'>" .$row['email'].       "</textarea></td>
   </tr>
   <input type='text' name='batch_name' disabled='disabled' size='7' value=" .$_POST['batch_name']. "> 
   <p align='center'><button id='submit' type='submit'>Update</button></p>
  </form>";
  }

I'have taken the datas from the database and put as default into the texareas and thus it cab de edited. So i planned to USE UDPDATE query to make the alternations like this:

    <html>
<title>Alumini Update</title>
<head>

<?php
$con = mysql_connect("localhost","root","momsgift");
if (!$con)
  {
  die('Could not connect: ' . mysql_error());
  }

mysql_select_db("alumini", $con);

mysql_query("UPDATE $_POST[batch_name] SET contact_no = $_POST[contact_no] WHERE roll_no = '2321'");

mysql_close($con);
?>

But while sending a query the data in the textarea doesnt loaded to the database ( BUt it redirects to the up.php page) WHat may be the reason??

share|improve this question
    
Danger: You are using an obsolete database API and should use a modern replacement. You are also vulnerable to SQL injection attacks that a modern API would make it easier to defend yourself from. –  Quentin Jan 8 '14 at 17:08

5 Answers 5

You are generating invalid HTML.

You cannot wrap a form around a table row without wrapping it around the entire table.

Your browser is error recovering by moving the form element. This is the most likely cause of the unexpected results.

Use a validator on your generated HTML.

share|improve this answer

your sql query may not be correct

if the datatype if roll_no is int then write

          mysql_query("UPDATE $_POST
          [batch_name] SET contact_no =
          $_POST[contact_no] WHERE roll_no
             = '2321'") or die(mysql_error());

chek for sql error.

share|improve this answer

In your MySQL update query you are only updating contact_no no other fields.

Also you have left your query open for SQL injections

$batch_number = mysql_real_escape_string($_POST['batch_name']);
$contact_no = mysql_real_escape_string($_POST['contact_no']);
$student_name = mysql_real_escape_string($_POST['student_name']);
$roll_no = mysql_real_escape_string($_POST['roll_no']);
$company = mysql_real_escape_string($_POST['company']);
$email = mysql_real_escape_string($_POST['email']);

mysql_query("UPDATE ('" . $batch_no.  "')
SET contact_no = ('" . $contact_no .  "'),
student_name = ('" . $student_name.  "'),
company = ('" . $company .  "'),
email = ('" . $email .  "'),
WHERE roll_no = ('" . $roll_no .  "')");

This (mysql_real_escape_string) won't solve every problem, and using PDO is a better method, but it's a very good stepping stone.

share|improve this answer

first write this and see the result,if it show's text of textarea it show's that text is sending in right way.and the problem is in ur sql code. echo $_POST['contact_no']; then you can echo the query and copy and run it in phpmyadmin and view error of sql.

share|improve this answer
    //EXAMPLE 1

       if (isset($_POST['update']))
        {           
        $result = pg_query($db_con, "UPDATE mydbtable SET mydbrecord = '$_POST[my_var1]' WHERE mydbrecord_id = '$_POST[myfilterbyid_var]'");  

        if (!$result)  
        {  
          echo "Update failed!!";  
        }
        else  
           {  
             echo "Update successfull!";  
           }  
        }


    //EXAMPLE 2

<form name="display" action="" method="post">  
<select name="mydropdown" action="test.php" method="post">
  <?php
     while($row = pg_fetch_assoc)
    {
     echo "<option id=\"{$row['result_var']}\">{$row['result_var']}</option>";
    }
?>
</select>
share|improve this answer
    
EXAMPLE 1 - Basically here i update a db record (mydbrecord) with my_var1 (an user input var) on my database table (mydbtable) also by filtering with another variable, in this example an id field (myfilterbyid_var), which could be passed through a previous select for example. EXAMPLE2 - A standard php entry into html with variable from a select result hope this helps. Best regards, –  p3t3rintheb0x Jan 8 '14 at 17:41
    
PS- on EXAMPLE2 you've got a select with a while to generate options while there is content –  p3t3rintheb0x Jan 8 '14 at 17:53

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