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I'm constructing a webpage to submit camera bookings to a MYSQL database. This webpage has a html frontend that forwards it to the following PHP page, which then submits that information to the MYSQL Currently the client wishes for there to be no way of making duplicate bookings of the Cameras. To fulfill this, I have constructed the following PHP page, which checks if the chosen camera in the html frontend ($_POST[camera]) is the same as anything in the $result_array array. The code is as follows:

<?php
$con = mysql_connect("****","*****","*******");

if (!$con) {
  die('Could not connect: ' . mysql_error());
}

mysql_select_db("****", $con);
$query = "SELECT Camera FROM T_Bookings";
$result = mysql_query($query) or die ("no query");
$result_array = array();

while($row = mysql_fetch_array($result)) {
  $result_array[] = $row;
}

$fixed_array = array_keys($result_array);

if (in_array($_POST[camera],$result_array)){
  $x = 1;
  $y = 2;
}

if($x + $y == 3){
  echo "Camera already booked!";
}
else {
  mysql_query("INSERT INTO T_Bookings (F_Name, L_Name, Camera, Bag, Cable, Tripod, MemoryCard, Date, Authorised) 
VALUES ('$_POST[firstname]','$_POST[lastname]','$_POST[camera]','$_POST[bag]','$_POST[cable]','$_POST[tripod]','$_POST[memory]','$_POST[date]',)");

  echo "1 record added";

  if (!mysql_query($sql,$con)) {
    die('Error: ' . mysql_error());
  }
}

mysql_close($con);
?> 

However, it is consistently placing a booking even if these conditions aren't met. Why is this the case? Thanks, Dayne.

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Seems like a convoluted way to go about what you wish to actually achieve... Which, is what exactly?? Also, might wish to change your in_array for the POST check to have quotes around the element - (in_array($_POST['camera'],$result_array) –  PenguinCoder Oct 11 '12 at 23:53
    
How have you verified the values of $x and $y? You should be sanitizing your queries, too... –  Matthew Blancarte Oct 11 '12 at 23:54
    
In the in_array condition can you printr the sales of POST[camera] and result_array .and share the results. –  Gavin Oct 12 '12 at 0:02
    
Your script seems to be vulnerable to SQL injections. –  Gumbo Oct 12 '12 at 0:07
    
I've added a revision to the code so it isn't as convoluted, and added further explanation to the goal of the project. After changing the code to reflect Lecca's answer, it is now detecting duplicate bookings, however it is now displaying the following error: "1 record added Error: Query was empty" and I can't see anything wrong with how the query is formatted currently. Any suggestions? –  Samuel Johnson Oct 12 '12 at 0:23
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2 Answers

up vote 0 down vote accepted

mysql_fetch_array($result) returns an array like

array('Camera' => 'Whatever')

So change the line below to read

$result_array[] = $row['Camera'];
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There's a fundamental flaw in your logic. You have a requirement for a unique value and the current implementation does not provide any such guarantee (learn about ACID on Wikipedia: http://en.m.wikipedia.org/wiki/ACID).

You're in luck though. MySQL happens to provide just what you need with little effort. Create a unique index on the Camera column (http://dev.mysql.com/doc/refman/5.5/en/create-index.html). Then don't check for a previous entry with the same name. Simply try to do an insert. MySQL will return an error which is easily handled and your code just became simpler, easier to read and manage.

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