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I am creating a comment form that will ask the user for his name, email and post a comment using php and mysqli for connecting to the database and the jquery for no refreshing but the problem is: I can not make the data insert into the database but when I "echo" the variable that hold the data entered from the user it work fine without entered to the database and I do not know what is the error.

Can anyone help me?

ps: I am not asking to write for me the code but I need to know how to solve it.

submit_to_db.php

<?php
  $conn = new mysqli('localhost', 'root', 'root', 'my_db');
  if(isset($_POST['submit'])){
  $name =isset ($_POST['name']);
  $email = $_POST['email'];
  $comments = $_POST['comments'];

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

  $query = "INSERT into comments('email', 'comments') VALUES(?, ?)";
  echo $query;
  $stmt = $conn->stmt_init();
  if($stmt->prepare($query)){

     $stmt->bind_param('ss', $email, $comments);
     $stmt->execute();
     //var_dump($stmt);

  }

  if($stmt){

  echo "thank you .we will be in touch soon <br />";
 // echo $_POST['name'];
  //echo $_POST['email'];
  //echo $_POST['comments'];
  var_dump($stmt);
  }
  else{
   echo "there was an error. try again later.";
   }  

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

index.php

<!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 rel ="stylesheet" href = "css/default.css" />

<script type = "text/javascript">

$(function(){

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

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


         $.ajax({

            url: 'submit_to_db.php',
            type: 'POST',
            data: 'name =' + name + '&email=' + email + '&comments=' + comments,

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

            }

         });         

        return false;

   });


});

</script>




</head>

<body>
   <form action = "submit_to_db.php" method = "post">
   <div id = "container">
      <label for = "name">Name</label>
      <input type = "text" name = "name" id = "name" />

      <label for = "email">Email address</label>
      <input type = "text" name = "email" id = "email" />

      <label for = "comments">Comments</label>
      <textarea rows = "5"cols = "35" name = "comments" id = "comments"></textarea>
      <br />

      <input type = "submit" name = "submit" id = "submit" value = "send feedBack" />
    </div>
   </form>




</body>
</html>
share|improve this question
    
and whats the output from var_dump you have put in the code ? –  Meabed Mar 14 '13 at 13:38
    
i get the error from the first if that mean from if (isset($_POST['submit'])){...} but if i remove the first if statment i get this thank you .we will be in touch soon object(mysqli_stmt)[2] public 'affected_rows' => null public 'insert_id' => null public 'num_rows' => null public 'param_count' => null public 'field_count' => null public 'errno' => null public 'error' => null public 'error_list' => null public 'sqlstate' => null public 'id' => null –  user1748102 Mar 14 '13 at 13:45
    
This code is similar/identical to the OP's post in another question. I installed the scripts on my server and they do work. –  Marc Audet Mar 14 '13 at 14:21
    
See related post: stackoverflow.com/questions/15389888/php-mysql-insert-error –  Marc Audet Mar 14 '13 at 14:23

2 Answers 2

up vote 0 down vote accepted

Bug Alert!

If you do this:

$query = "INSERT into comments(email, comments) VALUES($email, $comments)";

and then do this:

 $stmt->bind_param('sss', $email, $comments);

you will probably get an error message. You need to have bind place holders in the query string, which should look like:

$query = "INSERT into comments(email, comments) VALUES(?,?)";

and since you are only using two fields, your bind statement should read:

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

Debugging Strategy

 // Print out your post variable and look at it carefully...
 echo "<pre>";
 print_r($_POST);
 echo "</pre>";

 if(isset($_POST['submit'])){
     //$name =isset ($_POST['name']);
     $email = $_POST['email'];
     $comments = $_POST['comments'];

Look care fully at the name field, I found an extra/invisible character yesterday that was causing a problem.

Also, as a test to make sure the inserts work:

 if(isset($_POST['submit'])){
     $name = "Stack Overflow";
     $email = "stack@overflow.com";
     $comments = "Lorem ipsum and so on...";

You need to find out if the problem is on the client side (the form and POST variables) or on the sever side (the MySQL stuff).

My Version of Your Code
Here is what I have working on my server. Please review the comments. Be careful if you are cutting and pasting so that you don't introduce any extraneous characters.

<?php 
    // Echo your POST variable so you can see what the
    // data looks like from your submission form
    echo "<pre>";
    print_r($_POST);
    echo "</pre>";

  $conn = new mysqli('localhost', 'username', 'password', 'database');
  $query = "INSERT into comments(name, email, comments) VALUES(?, ?, ?)";

  // Initially, do a simple insert using static values to make sure 
  // the MySQL statements are working
  // When this works, you can comment these out and uncomment 
  // the statements using the POST array
  $name = "Some Name";
  $email = "some@name.com";
  $comments = "some commentary text...";

  // At this point, you will validate your input, but do this later...
  // After you tested the MySQL, try the form data
  //$name = $_POST['name'];
  //$email = $_POST['email'];
  //$comments = $_POST['comments'];

  $stmt = $conn->stmt_init();
  if($stmt->prepare($query)){
     $stmt->bind_param('sss',$name, $email, $comments);
     $stmt->execute();
  }

  // This tells you if the insert worked...
  printf("%d Row inserted.<br>", $stmt->affected_rows);

  if($stmt->affected_rows){
  echo "thank you .we will be in touch soon";
  }
  else {
   echo "there was an error. try again later.";
  }  
?>
share|improve this answer
    
no that did not work still give me the same error –  user1748102 Mar 14 '13 at 14:38
    
i updated my question look at the submit_to_db.php file the system print out to me the message a big error that mean that the submit was never post ....how is that can be ?? –  user1748102 Mar 14 '13 at 14:48
    
Oh, good one. Move the print_r to before your if statement, see my updated code above. –  Marc Audet Mar 14 '13 at 14:58
    
i did as you said and i got this echo Array ( [name_] => test name [email] => test email [comments] => test comments ) it is a big error –  user1748102 Mar 14 '13 at 15:02
    
You still have a bug in our script related to if($stmt) - I discussed this earlier in one of your other questions that I responded to. PLEASE review my previous comments. –  Marc Audet Mar 14 '13 at 15:02

Please change your query as bellow :

$query = "INSERT into comments(`email`, `comments`) VALUES('$email', '$comments')";

Hope this will be helpful to you

share|improve this answer
    
no it did not help but thank you for your answer –  user1748102 Mar 14 '13 at 14:06
    
try this : echo query in PHP script and alert the result in success function and let me know is it your query is correct or not –  Hardik Mar 14 '13 at 14:10
    
this is several line from the alert result thank you .we will be in touch soon <br /><pre class='xdebug-var-dump' dir='ltr'> <b>object</b>(<i>mysqli_stmt</i>)[<i>2</i>] <i>public</i> 'affected_rows' <font color='#888a85'>=&gt;</font> <font color='#3465a4'>null</font> <i>public</i> 'insert_id' <font color='#888a85'>=&gt;</font> <font color='#3465a4'>null</font> <i>public</i> 'param_count' <font color='#888a85'>=&gt;</font> <font color='#3465a4'>null</font> <i>public</i> 'num_rows' <font color='#888a85'>=&gt;</font> <font color='#3465a4'>null</font> –  user1748102 Mar 14 '13 at 14:21

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