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i am creatting a feedback page that allow user to write their comments or complaints and using php and mysqli to connect to the database and the jquery ajax for display a message without refreshing the hole page but the problem is : the system display the susccess message without having any inserted data to the database anyone can help me?? p.s after press the submit button the i get a duplicate form (textarea and button)

feedback.php

<?php

session_start();

 $login = ($_SESSION['login']);
   $userid = ($_SESSION['user_id']);
   $login_user = ($_SESSION['username']);
   $fname = ($_SESSION['first_name']);
   $lname = ($_SESSION['last_name']);
   $sessionaddres =($_SESSION['address']);


$conn = new mysqli('localhost', 'root', '', 'lam_el_chamel_db');

  echo"<pre>";
  print_r($_POST);
  echo"</pre>";

  if(isset($_POST['comments'])){

  $comments = $_POST['comments'];



  $query = "INSERT into feedback feedback_text VALUES(?)";

  $stmt = $conn->stmt_init();
  if($stmt->prepare($query)){

     $stmt->bind_param('s', $comments);
     $stmt->execute();

  }

  if($stmt){

  echo "thank you .we will be in touch soon <br />";

  }
  else{
   echo "there was an error. try again later.";
   }  

}

else
   echo"it is a big error";
?>



<!DOCTYPE html PUBLIC "-//W3C//DTD XHTML 1.0 Transitional//EN" "http://www.w3.org/TR/xhtml1/DTD/xhtml1-transitional.dtd">
<html xmlns="http://www.w3.org/1999/xhtml">
<head>
<meta http-equiv="Content-Type" content="text/html; charset=utf-8" />
<title>feedback page</title>
    <script type = "text/javascript" src = "http://ajax.googleapis.com/ajax/libs/jquery/1.9.1/jquery.min.js"></script>
    <link href="style/stylesheet.css"rel="stylesheet" type="text/css"/>

    <script type = "text/javascript">

    $(function(){

       $('#submit').click(function(){
         $('#container').append('<img src = "images/loading.gif" alt="Currently loading" id = "loading" />');


             var comments = $('#comments').val();


             $.ajax({

                url: 'feedback.php',
                type: 'POST',
                data: '&comments=' + comments,

                success: function(result){
                     $('#response').remove();
                     $('#container').append('<p id = "response">' + result + '</p>');
                     $('#loading').fadeOut(500, function(){
                         $(this).remove();
                     });

                }

             });         

            return false;

       });


    });

    </script>




    </head>
<!--<?php require_once('header.php'); ?>-->

<body>
<form action = "submit_to_db.php" method = "post">
  <div id = "container">
            <h2><?php echo $login_user ?></h2>



          <label for = "comments">Comments</label>
          <textarea rows = "5"cols = "35" name = "comments" id = "comments"></textarea>
          <br />
  </div>
   </form>
       <input type = "submit" name = "submit" id = "submit" value = "send feedBack" />




</body>
</html> 
share|improve this question
    
Your query should be "INSERT into feedback (feedback_text) VALUES(?)" and if you have an error in your query try to print $conn->error after you execute the query to see the error –  Adidi Mar 23 '13 at 11:27

4 Answers 4

change this

data: '&comments=' + comments,

to

data: {'comments' : comments},

http://api.jquery.com/jQuery.post/

share|improve this answer
    
this solution did not work anw thank you for your help –  user2172837 Mar 23 '13 at 6:09

it's cuz you are making an ajax request to the same page you are in! make a file called submit.php that will contain the php code

<?php

session_start();

 $login = ($_SESSION['login']);
   $userid = ($_SESSION['user_id']);
   $login_user = ($_SESSION['username']);
   $fname = ($_SESSION['first_name']);
   $lname = ($_SESSION['last_name']);
   $sessionaddres =($_SESSION['address']);


$conn = new mysqli('localhost', 'root', '', 'lam_el_chamel_db');

  echo"<pre>";
  print_r($_POST);
  echo"</pre>";

  if(isset($_POST['comments'])){

  $comments = $_POST['comments'];



  $query = "INSERT into feedback feedback_text VALUES(?)";

  $stmt = $conn->stmt_init();
  if($stmt->prepare($query)){

     $stmt->bind_param('s', $comments);
     $stmt->execute();

  }

  if($stmt){

  echo "thank you .we will be in touch soon <br />";

  }
  else{
   echo "there was an error. try again later.";
   }  

}

else
   echo"it is a big error";
?>

the then make another HTML file that will conatin

<!DOCTYPE html PUBLIC "-//W3C//DTD XHTML 1.0 Transitional//EN" "http://www.w3.org/TR/xhtml1/DTD/xhtml1-transitional.dtd">
<html xmlns="http://www.w3.org/1999/xhtml">
<head>
<meta http-equiv="Content-Type" content="text/html; charset=utf-8" />
<title>feedback page</title>
    <script type = "text/javascript" src = "http://ajax.googleapis.com/ajax/libs/jquery/1.9.1/jquery.min.js"></script>
    <link href="style/stylesheet.css"rel="stylesheet" type="text/css"/>

    <script type = "text/javascript">

    $(function(){

       $('#submit').click(function(){
         $('#container').append('<img src = "images/loading.gif" alt="Currently loading" id = "loading" />');


             var comments = $('#comments').val();


             $.ajax({

                url: 'submit.php',
                type: 'POST',
                data: {"comments": comments},

                success: function(result){
                     $('#response').remove();
                     $('#container').append('<p id = "response">' + result + '</p>');
                     $('#loading').fadeOut(500, function(){
                         $(this).remove();
                     });

                }

             });         

            return false;

       });


    });

    </script>




    </head>
<!--<?php require_once('header.php'); ?>-->

<body>
<form action = "submit_to_db.php" method = "post">
  <div id = "container">
            <h2><?php echo $login_user ?></h2>



          <label for = "comments">Comments</label>
          <textarea rows = "5"cols = "35" name = "comments" id = "comments"></textarea>
          <br />
  </div>
   </form>
       <input type = "submit" name = "submit" id = "submit" value = "send feedBack" />




</body>
</html> 
share|improve this answer
    
this solution did not work for me how can i solve it ?? –  user2172837 Mar 23 '13 at 6:15
    
@user2172837 try now, and check you sqli query –  Avi Nahum Mar 23 '13 at 6:16
    
@ Bamba sir it still display the success message without insert the data ....my table name: feedback fields are feedback_id,feedback_text maybe the error is in the query can you help me?? –  user2172837 Mar 23 '13 at 6:25

nothing of the provided answers was useful only the little comment written by Adidi i had to put the brackets that was the problem thanks anw for all your help

share|improve this answer

You can do it like this.

$('form').on('submit',function(e){

    e.preventDefault();
    $.ajax({
         type     : "POST",
         url      : $(this).attr('action'),
         data     : $(this).serialize(),
         success  : function(data){
                      alert(data); // You can do whatever you like
                    }
    });

});

share|improve this answer
    
And try with "INSERT into feedback (feedback_text) VALUES(?)" –  sriyan Mar 23 '13 at 6:46
    
also this did not work –  user2172837 Mar 23 '13 at 7:14
    
can you explain what you are experiencing? –  sriyan Mar 23 '13 at 7:37
    
after i write a comment and submited i get this Array ( [comments] => test ) thank you .we will be in touch soon without the data being inserted –  user2172837 Mar 23 '13 at 8:48
    
Ok. Don't do this if($stmt) instead try if($stmt->execute()) I think its an error in your query. Try this. –  sriyan Mar 23 '13 at 9:22

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