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i am creating a feed back page that allow users to give their feedback and store this feedback in the database using php and mysqli without refreshing the page using jquery and ajax but the problem is that i do not get any inserted data although i get the success message if anyone can help me i will appreciate that

feedback_form.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']);

?>
<!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_process.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 = "feedback_form.php" method = "post">
<br />
<br />

  <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" />



<?php require_once('footer.php'); ?>

</body>
</html> 

feedback_process.php

<?php

session_start();
if($_SESSION['login'] != 'true'){
        header("location:index.php");
    }


   $login = ($_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', '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, user_name,) VALUES(?,?)";

  $stmt = $conn->stmt_init();
  var_dump($stmt);

  if($stmt->prepare($query))
  {

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

  }
  $query2 = "UPDATE feedback SET feedback_text = ?, user_name = ? WHERE user_name = ? ";

  $stmt = $conn->stmt_init();
  if($stmt->prepare($query2))
  {
     $stmt->bind_param('sss', $comments, $login_user, $login_user);
     $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";
?>

table fields are : feedback_id feedback_text, user_name

share|improve this question
    
you are saving data and returning a string, e.g. "thank you..". What are you meaning by "I do not get inserted data"? Do do not return anything like this, do you? –  jamie0726 Mar 27 '13 at 7:53
    
What is the value of echo $stmt->error; after your $query2 –  Hanky 웃 Panky Mar 27 '13 at 7:53
    
And: remove the var_dump, it might break the process :-D –  jamie0726 Mar 27 '13 at 7:54
    
@ jamie0726 the var dump is for track what is being send and visualize..... second i do not get inserted data mean in the database no data are inserted –  user2214618 Mar 27 '13 at 7:58
1  
@user2214618 remove the , after "user_name" in your query. :-D –  jamie0726 Mar 27 '13 at 8:01
show 8 more comments

2 Answers 2

up vote 0 down vote accepted

You have an extra , in your query.

//old
$query = "INSERT into feedback (feedback_text, user_name,) VALUES(?,?)";

//new
$query = "INSERT into feedback (feedback_text, user_name) VALUES(?,?)";
share|improve this answer
    
guys i have a question a notice that if the same user enter another feedback in the database it will insert a new row but what i need is to just update the field of the feedback text without adding any new row for the same user –  user2214618 Mar 27 '13 at 8:14
    
check out the replace command in MySQL dev.mysql.com/doc/refman/5.1/en/replace.html –  jamie0726 Mar 27 '13 at 8:28
    
@ jamie0726 in the comments section people say that if we use replace statement and we have the foreign key of this desired table this table will be replaced and work well but the referenced table will be empty –  user2214618 Mar 27 '13 at 8:42
    
@user2214618 you don't have a referenced table in your use case, don't you? –  jamie0726 Mar 27 '13 at 9:38
    
@user2214618 doing it like pouki06 recommended is also fine, though you have an additional query. –  jamie0726 Mar 27 '13 at 9:40
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You need to check if a row exists with the same username :

//Check a row with same username exists 
$queryChecking = "Select COUNT(*) FROM feedback WHERE user_name = ?"; 

if the result is equal to one, you need to update row and not insert a new one ;)

share|improve this answer
    
@ pouki06 i am using the update statement but it seems that i am using in wrong way .. so you mean that before the insert statement i need to check if username exist and then i insert or i update ?? –  user2214618 Mar 27 '13 at 8:45
    
yes. First check if an entry for the given user_name already exists. If not do an insert, otherwise do an update. –  jamie0726 Mar 27 '13 at 9:42
    
Yes exactly, like jamie said, if the row exist, reuse the same id returned by your check query, in this case update check query : $queryChecking = "Select id FROM feedback WHERE user_name = ?" if 1 row is returned, feedback already exists and you have to do update statement instead of an insert, else do the insert as you do now ;) –  Pouki Mar 27 '13 at 10:36
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