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I have this simple code where I am trying to have 3 fields, first name, last name, and email, tag to mysql database from a website form. When I test the form and hit "register" the error comes up that "An Error Has Occured. The item was not added." How can I debug this, as I'm not sure what point the error is coming in?

<html>
<head>
<title> Nomad - New User Registration Results</title>
</head>

<body>
   <h1>Nomad - New User Registration Results</h1>
 <?php
 // create short variable names
 $First_Name=$_POST['First_Name'];
 $Last_Name=$_POST['Last_Name'];
 $Email=$_POST['Email'];
 if(!$First_Name || !$Last_Name || !$Email) {
 echo "You have not entered all the required details.<br />"
 ."Please go back and try again.";
 exit;
 }
 @ $db=new mysqli('localhost','nomad_steve','steven','nomad_prod');
 if (mysqli_connect_errno()) {
 echo "Error: Could not connect to database. Get it together Steve!";
 exit;
 }
 $query = "insert into nomad_prod values
      (' " .$First_Name.",' " .$Last_Name."',' ".$Email."')";
  $result=$db->query($query);
 if ($result) {
 echo $db->affected_rows." book inserted into database.";
  } else {
 echo "An Error Has Occured. The item was not added.";
  }
 $db->close();
 ?>
 </body>
   </html>
share|improve this question
2  
echo mysql_error() in else condition. – Tinku Rana Dec 4 '12 at 6:59
    
@TinkuRana I'm not sure what you mean here :/ – Americo Dec 4 '12 at 7:07
    
mysql_error() will give you exact error in your query. – Tinku Rana Dec 4 '12 at 7:08
    
Try to echo this in else condition echo "Table creation failed: (" . $mysqli->errno . ") " . $mysqli->error; – Toretto Dec 4 '12 at 7:09
    
In your case use printf("Errormessage: %s\n", $db->error); – Tinku Rana Dec 4 '12 at 7:11
up vote 1 down vote accepted

Try this may solve your problem

$query = "insert into Player(first_name,last_name,email) values('" .$First_Name."','".$Last_Name."','".$Email."')";
$result=$db->query($query);

I have checked and got it you have to specify your column name where you have to enter your data.

share|improve this answer
    
That didn't seem to work. I still get the same error message 15 – Americo Dec 4 '12 at 7:44
    
Try to check your connection object ,It's seems like your are not connect to your database – Toretto Dec 4 '12 at 7:47
    
But isnt the if(mysqli_connect_errno) checking to see if i can connect to the database? Since I pass that step in the code, isn't it an issue separate from my connection? – Americo Dec 4 '12 at 7:48
    
@Stuave I have update my answer it should work. – Toretto Dec 4 '12 at 8:07
1  
Awesome, thanks so much! You were a huge help. – Americo Dec 4 '12 at 8:16
(' " .$First_Name.",' " .$Last_Name."',' ".$Email."')";

You have missed the ' after First_name in above query, it should be

(' " .$First_Name."',' " .$Last_Name."',' ".$Email."')";
share|improve this answer
    
That is true thank you for noticing that, but i fixed that and it still comes up with the same error. – Americo Dec 4 '12 at 7:06
1  
Have you tried mysql_error()? – iLaYa ツ Dec 4 '12 at 7:10
    
Error Message 15 comes up but a google search for that gives me no relevant results – Americo Dec 4 '12 at 7:14

Use prepared statements instead of building your query yourself.

You are duplicating $_POST['First_Name'] as $Email, that doesn't look right to me

Try making the changes above and see what comes up.

share|improve this answer
    
Unfortunately I have to admit that the above link does not make any sense to me :/..I am very new to this and am trying to learn quickly. I fixed that issue above about $Email that you mentioned though, but it still didnt fix the code. – Americo Dec 4 '12 at 8:04
    
prepared statements are used to prevent SQL injection and are supported by every client language I know of and are not used as widely as they ought to be. – hd1 Dec 4 '12 at 8:11

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