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I have visited the following Link

Now i have 2 Sample files Contents of test2.php

<!DOCTYPE html>
<html>
    <head>
        <title> Form </title>
    </head>
    <body>
        <?php include_once("test.php"); ?>
    </body>
</html>

Content of test.php

<?php
    if (isset($_POST['submit'])) {
        $arr=array();
        foreach ($_POST as $key => $value) {
            $arr[$key]=$value;
        }
        print_r($arr);
    }
?>
<!DOCTYPE html>
<html>
    <head>
        <title> Form </title>
        <script src="http://ajax.googleapis.com/ajax/libs/jquery/1.10.2/jquery.min.js">
        </script>
        <link rel="stylesheet" href="css/main.css" />
    </head>
    <body>
        <div id="content" id="login_form">
            <form method="post" id="f1" name="f1"  action="test.php">
                <table>
                    <tr>
                        <td>Name :</td><td><input type="text" name="name"/></td>
                    </tr>
                    <tr>
                        <td>Register Number :</td><td><input type="text" name="regno"/></td>
                    </tr>
                    <tr>
                        <td>Date of Birth :</td><td><input type="text" name="dob"/></td> 
                    </tr>
                    <tr>
                        <td><input type="submit" id="b1" name="submit" value="Submit" style="font-size:16px;"/></td>
                    </tr>
                </table>
            </form>
        </div>
        <script>
            $('#f1').submit(function() {
                $.ajax({ 
                data: $(this).serialize(), 
                type: $(this).attr('post'),
                url: $(this).attr('test.php'), 
                success: function(response) { 
                $('#content').html(response); 
        }
    });
    return false; 
});
        </script>
    </body>
</html>

test2.php displays the form.I want to display the values entered in the form and the form after I click submit but I keep seeing the form only. is it because $_POST is empty or because I have made mistakes in the structure of the page itself?

Edit : I want the result of the form submit loaded in test2.php page.

share|improve this question
    
FYI, your foreach loop is equivalent to $arr = $_FORM. –  Barmar Dec 31 '13 at 12:19
    
hi I`m a newbie in php can you explain $_FORM? –  AAB Dec 31 '13 at 12:22
    
Sorry ,meant $_POST. –  Barmar Dec 31 '13 at 12:22
    
There is no mistake in the form itself, What you want to submit form values with AJAX or PHP ? –  Noor Dec 31 '13 at 12:23
1  
You have invalid HTML like this.. you can't have 2 doctypes etc. –  putvande Dec 31 '13 at 12:26

3 Answers 3

up vote 1 down vote accepted

Make two changes

  1. remove action attribute value, i.e. change action="test.php" to action="" or you can remove it, its not needed.
  2. change return false; to return true; in js, $('#f1').submit(function()

(explanation of when to use return true/false, currently you requested an submit action, which was called from a jquery function, if from a javascript/jquery you are returning false it means that the current request i.e. submit will not occur. in case of true, the submit will occur. we use false if cases when we are validating something and the user has not added correct output so we don't want to submit the page until he corrects the data. also action is not required in this case as you are submitting via jquery so you can remove the action="" attribute from the form)

also you already have html tags in test.php, including it inside test2.php will create issues.

suggestion call test.php directly, you don't need test2.php.

Here's the full code for test.php,

<?php
    if (isset($_POST['submit'])) {
        $arr=array();
        foreach ($_POST as $key => $value) {
            $arr[$key]=$value;
        }
        print_r($arr);
    }
?>
<!DOCTYPE html>
<html>
    <head>
        <title> Form </title>
        <script src="http://ajax.googleapis.com/ajax/libs/jquery/1.10.2/jquery.min.js">
        </script>
        <link rel="stylesheet" href="css/main.css" />
    </head>
    <body>
        <div id="content" id="login_form">
            <form method="post" id="f1" name="f1" action="">
                <table>
                    <tr>
                        <td>Name :</td><td><input type="text" name="name"/></td>
                    </tr>
                    <tr>
                        <td>Register Number :</td><td><input type="text" name="regno"/></td>
                    </tr>
                    <tr>
                        <td>Date of Birth :</td><td><input type="text" name="dob"/></td>
                    </tr>
                    <tr>
                        <td><input type="submit" id="b1" name="submit" value="Submit" style="font-size:16px;"/></td>
                    </tr>
                </table>
            </form>
        </div>
        <script>
            $('#f1').submit(function() {
                $.ajax({
                data: $(this).serialize(),
                type: $(this).attr('post'),
                url: $(this).attr('test.php'),
                success: function(response) {
                $('#content').html(response);
                }
            });
            return true;
            });
        </script>
    </body>
</html>
share|improve this answer

May be you find your solution..............

<?php
    if(isset($_POST['submit'])){
        $arr=array();
        foreach( $_POST as $key => $value ){
            $arr[$key]=$value;
        }
        print_r($arr);
    }
?>
<!DOCTYPE html>
<html>
    <head>
        <title> Form </title>
        <link rel="stylesheet" href="css/main.css" />
    </head>
    <body>
        <div id="content" id="login_form">
            <form method="post" id="f1" name="f1"  action="test.php">
                <table>
                    <tr>
                        <td>Name :</td><td><input type="text" name="name"/></td>
                    </tr>
                    <tr>
                        <td>Register Number :</td><td><input type="text" name="regno"/></td>
                    </tr>
                    <tr>
                        <td>Date of Birth :</td><td><input type="text" name="dob"/></td> 
                    </tr>
                    <tr>
                        <td><input type="submit" id="b1" name="submit" value="Submit" style="font-size:16px;"/></td>
                    </tr>
                </table>
            </form>
        </div>
    </body>
</html>
share|improve this answer
    
I dont understand what do you mean? Im aware that running this page only gets the desired result but I want the result in test.php only don`t want a new page loaded :) –  AAB Dec 31 '13 at 12:18

This must fix your issue. replace the line

<form method="post" id="f1" name="f1"  action="test.php">

with

<form method="post" name="f1"  action="">

you cannot use "id" in "form"

share|improve this answer

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