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<?php
  $conn=mysql_connect("localhost","root","")
  or die("cannot connect");
    $db=mysql_select_db("ticket",$conn)
    or die("no db");
    if (isset($_POST['submit']))
    {
    $name1=$_POST['name'];
    $phone1=$_POST['phone'];
    $email1=$_POST['email'];
    $pass1=$_POST['password'];
    }
  $query="insert into register(name,phone,email,pass) values ('$name1','$phone1','$email1','$pass1')";
  $result=mysql_query($query)
  or die("Error in pushing".mysql_error());
  mysql_close($conn);
  ?>

error am getting

Notice: Undefined variable: name1 in C:\xampp\htdocs\selva\jqsty.php on line 13
Notice: Undefined variable: phone1 in C:\xampp\htdocs\selva\jqsty.php on line 13
Notice: Undefined variable: email1 in C:\xampp\htdocs\selva\jqsty.php on line 13
Notice: Undefined variable: pass1 in C:\xampp\htdocs\selva\jqsty.php on line 13

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thank u so much for all ur answer –  selva1990 Nov 10 '13 at 6:53

4 Answers 4

up vote 0 down vote accepted

You're checking for the presence of $_POST['submit'], and setting some variables if it's found. You're then executing your mysql query outside the conditional block, so if the $_POST variables aren't found you'll get undefined variable errors.

Try

<?php
  $conn=mysql_connect("localhost","root","")
  or die("cannot connect");
    $db=mysql_select_db("ticket",$conn)
    or die("no db");
    if (isset($_POST['submit']))
    {
    $name1=$_POST['name'];
    $phone1=$_POST['phone'];
    $email1=$_POST['email'];
    $pass1=$_POST['password'];
    // This code now inside if block
    $query="insert into register(name,phone,email,pass) values ('$name1','$phone1','$email1','$pass1')";
    $result=mysql_query($query)
      or die("Error in pushing".mysql_error());
    mysql_close($conn);
  }
  ?>
share|improve this answer
    
thank u so much its working –  selva1990 Nov 10 '13 at 6:53

Unless the form is posted, the variables in this will never have a value:

  $query="insert into register(name,phone,email,pass) values ('$name1','$phone1','$email1','$pass1')";

If you need to wait for a POST to execute your query, put that code inside your if:

$conn = mysql_connect("localhost","root","");

if(!$conn)
    die("cannot connect");

$db = mysql_select_db("ticket",$conn);

if(!$db)
    die("no db");

if(isset($_POST['submit']))
{
    $name1 = $_POST['name'];
    $phone1 = $_POST['phone'];
    $email1 = $_POST['email'];
    $pass1 = $_POST['password'];

    $query = "insert into register(name,phone,email,pass) values ('$name1','$phone1','$email1','$pass1')";
    $result = mysql_query($query);

    if(!$result)
        die("Error in pushing".mysql_error());
}

mysql_close($conn);
share|improve this answer
    
thank u so much –  selva1990 Nov 10 '13 at 6:54

I think the problem is you didn't entered the if loop,since You do not have your submit button named: Try this instead

<input type="submit" class="submit1" value="Submit" name="submit"/>
share|improve this answer

Put the mysql query in the if statement curly braces just like this:

if(isset($_POST['submit'])) {
$name1=$_POST['name'];
$phone1=$_POST['phone'];
$email1=$_POST['email'];
$pass1=$_POST['password'];
$query="INSERT INTO `register`(`name`,`phone`,`email`,`pass`) VALUES('$name1','$phone1','$email1','$pass1')";
$result=mysql_query($query) or die("Error in pushing".mysql_error());
mysql_close($conn);
}
?>

When the form isn't submited, your variables are not defined and you are querying the db with them. So you put everything in the if statement, so that only when the form is submitted that the query will execute. Also you are vulnerable to mysql injection, use the mysql_real_escape_string function or use mysqli prepared statement.

share|improve this answer
    
thank you so much –  selva1990 Nov 10 '13 at 6:54

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