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i am getting following errors:

Undefined index: txt_age in C:\wamp\www\Site\form1.php on line 12 ,Undefined index: txt_event in C:\wamp\www\Site\form1.php on line 16 &Undefined index: txt_amalthea in C:\wamp\www\Site\form1.php on line 21

I have even checked corresponding id's in my form tags they are same

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


 mysql_select_db("amalthea", $con);

  $name=$_POST['txt_name'];
  $age=$_POST['txt_age'];

  $cell=$_POST['cell'];

  $event=$_POST['txt_event'];

    $college=$_POST['txt_college'];
   $qual=$_POST['qual'];

  $about=$_POST['txt_amalthea'];

    $members=$_POST['txt_members'];
   $email=$_POST['txt_email'];

  $sql="insert into at              values('$name','$age','$cell','$event','$college','$qual','$about','$members','$email')";


 if($sent)
 {
   echo "done";
  }
  else
 {
  echo "Dasf";
   }

    mysql_close($con);
  ?>

my form code is

       <html>
     <head>

<style>
.me
   {
  border-style:solid;
  border-color:black;
   }
   </style>
   </head>
   <h1> Registration<h1>  
  <br/>
  <body  bgcolor=" #F0F8FF">

  <form name = "form1" id="form1" method="post" enctype="multipart/form-data"    action="form1.php" onsubmit="return validateform()" >
 <table>


<tr><td>Name <td>:</td></td> <td><input type = "text" name = "txt_name" id = "txt_name"/></td></tr>
 <!--Branch : <input type = "text" name = "txt_branch" id = "txt_branch" />-->

<tr>
<td>Age <td>:</td> </td><td><input type="int" name="txt_age" id="txt_age"/></td>
</tr>

<tr>
<td>Contact no.<td>:</td></td><td><input id="cell" type="text" name="cell"/></td>
 </tr>

<tr><td>College<td>:</td></td> <td><input type = "text" name = "txt_college" id =      "txt_college"/></td></tr>
 <tr><td>Qualifications</td><td>:</td> <td><textarea  id="qual" name="qual"  rows = "5"  cols = "17" scroll = "scroll" ></textarea>
</td>
</tr>

 <tr><td>How you came to know about</td><td>:</td><td><textarea id="txt_amalthea" rows="5" cols="17" type="text">  </textarea></td></tr> 

   <tr><td>Events you want to participate</td><td>:</td><td><textarea rows="5" cols="17" type="text" id="txt_event"></textarea></td></tr>  

   </tr>
   <tr><td>Number of team members (if applicable)<td>:</td></td><td><input type="text" name="txt_members" id="txt_members"/>
   </td>
  </tr>
  <tr><td>Email Id<td>:</td></td><td><input type="text" name="txt_email" id="txt_email"/>
   </td>
  </tr>
   <tr><td ><input class="me" type = "submit" value="Submit" ></td>
  <td> <input class="me"  type = "reset" name = "btn_reset" id = "btn_reset"  value="reset" />
</td></tr>
 </table>

</head>
 </html>
share|improve this question

closed as unclear what you're asking by RiaD, Saul, Patrick Hofman, Andro Selva, Roman C Apr 2 '14 at 10:47

Please clarify your specific problem or add additional details to highlight exactly what you need. As it's currently written, it’s hard to tell exactly what you're asking. See the How to Ask page for help clarifying this question.If this question can be reworded to fit the rules in the help center, please edit the question.

    
Can you add your form ? –  Awea Aug 19 '11 at 10:37
    
try var_dump($_POST); are you sure in txt_ prefix? –  RiaD Aug 19 '11 at 10:38
    
It should be name of the input, not id. E.g. <input type='text' **name='txt_name'**> –  J0HN Aug 19 '11 at 10:38
    
Watch out for sql injection! en.wikipedia.org/wiki/SQL_injection –  piddl0r Aug 19 '11 at 10:51

3 Answers 3

I guess you need to check for the data to be actually posted...like isset($_POST['txt_name']) and than use the post values. Now your page is looking for the values, but you did not post the data yet.

share|improve this answer
if (isset($_POST['txt_age'])){
   $age = $_POST['txt_age'];
}

is correct one

or you could suppress your notices.

error_reporting(E_ALL ^ E_NOTICE);
share|improve this answer
    
no helps without any else because we will get ndefined variable $age instead –  RiaD Aug 19 '11 at 10:41
    
so predefine them, or as I said, turn of notice reporting –  genesis Aug 19 '11 at 10:43

You get these errors because the $_POST keys are not set. Also: In a HTML form you have to call the "name" of the input fields txt_* - not the ids. At last: Your code is vulnerable to sql injection - dont't forget to check this, too ;)

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