Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am new to PHP.

My requirement is once the form value save into mysql database, it need to show the entered value into popup window.

I did this part .Problem is always open new tab & show detail. It didn't open opoup window.

    <?php

error_reporting(E_ALL);
ini_set('display_errors', 'On');
//echo '<pre>';
//echo print_r($_POST);
//echo '</pre>';

$message = "";
$firstname ="";
$lastname = "";
$email = "";
$mobile = "";
$nic = "";
$msg ="";
$genrateID = "";

if ( isset ( $_POST['Submit'] ) ){
    $firstname = $_POST['firstname'];
    $lastname = $_POST['lastname'];
    $email = $_POST['email'];
    $mobile = $_POST['mobile'];
    $nic = $_POST['nic'];

    if($firstname ==''){
        $message .= "Enter firstname";
    }else if($lastname ==''){
        $message .= "Enter lastname";
    }else if($email==''){
        $message = "Enter email address";
    }else if(!is_valid_email($email)){
        $message .= "Enter valid email address";
    }else if($mobile==''){
        $message = "Enter email address";
    }else if(!is_valid_phone($email)){
        $message .= "Enter valid email address";
    }else if($nic==''){
        $message = "Enter nic number";
    }else if(!is_valid_nic($nic)){
        $message .= "Enter valid nic address";

    }else{
        if(empty($message)){
             $con = mysql_connect("192.168.1.5","root","root");
             if (!$con){
                die('Could not connect: ' . mysql_error());
                exit;
             }
             mysql_select_db("customerinfo", $con);
             $genrateID =uniqid (rand(), true);
             // mysql_query("INSERT INTO customerinfo (firstname ,lastname,email,mobile,nic) VALUES ('$firstname', '$lastname','$email','$mobile','$nic')" ) or die(mysql_error());
             $status = mysql_query("INSERT INTO customer (firstname ,lastname,email,mobile,nic,customerID)
             VALUES ('$firstname', '$lastname','$email','$mobile','$nic','$genrateID')");
            if($status =='1'){
                $msg ="Data has been saved successfully";


 $link = "<script>window.open('http://localhost/UserCRM/result.php?firstname=$firstname&lastname=$lastname&mobile=$mobile&email=$email&id=$genrateID','menubar=no,width=430,height=360,toolbar=no')</script>";
                echo $link;
                $message = "";
                $firstname ="";
                $lastname = "";
                $email = "";
                $mobile = "";
                $nic = "";
                $genrateID ="";
               // $msg ="";

            }else{
                $msg = "Data has been saved unsuccessfully!!";
            }
            mysql_close($con);
        }

    }
}


?> 

My form is :

  <form id="form" method="post" action="index.php" style="width:700px;" >..... </form>

Please indicate me what is wrong in my code.

Thanks in advance.

share|improve this question
    
Don't use mysql_* functions. They are deprecated! –  Anirudh Ramanathan Nov 8 '12 at 8:59
    
This line stands out: $link = "<script>window.open('http://localhost/UserCRM/result.php?firstname=$firstname&l‌​astname=$lastname&mobile=$mobile&email=$email&id=$genrateID','menubar=no,width=43‌​0,height=360,toolbar=no')</script>"; –  irrelephant Nov 8 '12 at 8:59
    
VALUES ('$firstname', '$lastname','$email','$mobile','$nic','$genrateID')"); You are inserting the string and not the variables values. Lose the single quotes. –  iMoses Nov 8 '12 at 9:00
    
@iMoses The whole thing is within "" so variables inside it will get extrapolated –  Anirudh Ramanathan Nov 8 '12 at 9:01
    
@Piraba It opens in a new window for me. Which browser are you using? –  Anirudh Ramanathan Nov 8 '12 at 9:03

1 Answer 1

The problem is that Firefox opens a URL in a new tab by default rather than a new window. See this question for more info. Providing a window name does the trick for me (firefox 16.0.2 linux).

window.open('http://stackoverflow.com', 'new window', 'menubar=no, width=430, height=360, toolbar=no');
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.