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I keep getting this error:

Query1 failed: You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near ' "d41d8cd98f00b204e9800998ecf8427e" "d41d8cd98f00b204e9800998ecf8427e", "d41d8cd' at line 1

This is the code i am using:

 <?php

     $payment = $_GET['payment'];
     if($payment){
include("connection.php");
$CardHolder = md5($_POST["CardHolder"]);
$CardType = md5($_POST["CardType"]);
$CardNumber = md5($_POST["CardNumber"]);
$SecurityCode = md5($_POST["SecurityCode"]);
$ExpiryDate = md5($_POST["ExpiryDate"]);
$PurchaseID = $_SESSION['purchaseid'];
$Email = $_SESSION['user'];

$sql = "INSERT INTO Payment (CardHolder, CardType, CardNumber, SecurityCode, ExpiryDate, PurchaseID, Email) VALUES (\"$CardHolder\", \"$CardType\", , \"$CardNumber\" \"$SecurityCode\", \"$ExpiryDate\", \"$PurchaseID\", \"$Email\")";
$result = mysqli_query($con, $sql) or die('Query1 failed: ' . mysqli_error($con));;

if($result){
    echo "<p>Your Payment has been Accepted. You are now being redirected to the to the HomePage.</p>
      <meta http-equiv=\"refresh\" content=\"1;URL=index.php\" />";

     } else {
         echo "<p>Payment Failed, Please try again later.</p>";
     }
}

      ?>

I am not to sure what i am doing wrong. Thanks in advance for the support.

EDIT: After using the answeres provided i get this error now Query1 failed: Column count doesn't match value count at row 1. Just to let you guys know i have a PaymentID thats Auto INCREMENT.

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These sorts of errors would be much easier to detect if you were using parametrized queries. They would also prevent SQL injection, which your code is currently susceptible to. bobby-tables.com/php.html has examples of how to do parametrized queries in PHP. –  Andy Lester Dec 11 '12 at 22:25

4 Answers 4

up vote 2 down vote accepted

I believe you have your commas in the wrong place (2 are after CardType, 0 are after CardNumber).

\"$CardType\", , \"$CardNumber\" \"$SecurityCode\",

That being said, you are exposed to SQL injection attacks, and there are better ways of doing the insert using prepared statements and binding parameters. Use this as a starting point.

share|improve this answer
    
Nice Spot. That was the issue. –  Hii Dec 11 '12 at 22:13

It appears you have an extra column with no value:

$sql = "INSERT ... VALUES (\"$CardHolder\", \"$CardType\", , \"$CardNumber\"
                                                          ^

I would recommend you use single quotes instead.

$sql = "INSERT INTO Payment (CardHolder, CardType, CardNumber, SecurityCode, ExpiryDate, PurchaseID, Email) VALUES ('$CardHolder', '$CardType', '$CardNumber', '$SecurityCode', '$ExpiryDate', '$PurchaseID', '$Email')";
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u sure u didnt miss a comma ? –  echo_Me Dec 11 '12 at 22:11
    
@goodmood Good catch, thank you. –  Kermit Dec 11 '12 at 22:12
    
:) ,just saw voting up :) . –  echo_Me Dec 11 '12 at 22:13

You have two commas after CardType

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This does not provide an answer to the question. To critique or request clarification from an author, leave a comment below their post. –  Peter O. Dec 11 '12 at 22:27
    
You could at the very least show the line where that happens; there are multiple places the code refers to CardType. –  Martijn Pieters Dec 11 '12 at 22:29
    
Uhm..yes it does provide the answer. I told him exactly where it was –  Ronnie Dec 11 '12 at 22:29
    
Ok, I assumed he would know that it is in his query since he said his error was with his sql syntax. Not to mention I said two commas. The only place he used commas and the word CardType was in his sql query –  Ronnie Dec 11 '12 at 22:30
    
Thank you ronnie for your answer, it was correct however there was another syntax error where i forgot to add a comma which another user spotted. –  Hii Dec 11 '12 at 22:36

Replace by this:

$sql = "INSERT INTO Payment (CardHolder, CardType, CardNumber, SecurityCode, ExpiryDate, PurchaseID, Email) VALUES (\"$CardHolder\", \"$CardType\", \"$CardNumber\", \"$SecurityCode\", \"$ExpiryDate\", \"$PurchaseID\", \"$Email\")";
share|improve this answer
    
what's wrong with my answer? –  Luis Neves Dec 11 '12 at 22:15
    
Hi, Your answer is also correct. However, he answered it before you and i used his answer to fix my problem. Sorry Luis and thank you. –  Hii Dec 11 '12 at 22:37

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