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Im a newbie in PHP and I want to create a simple webpage app for my website, I was able to produce this page base on a tutorial here.

<?php
  $con = mysql_connect("localhost","*****","*****");
  if (!$con)
  {
   die('Could not connect: ' . mysql_error());
  }

mysql_select_db("*****", $con);

$result = mysql_query("SELECT * FROM products");

echo "<table border='1'>
<tr>
<th>Name</th>
<th>classification</th>
</tr>";

while($row = mysql_fetch_array($result))
  {


  echo "<tr>";
  echo "<td>" . $row['name'] . "</td>";
  echo "<td>" . $row['classification'] . "</td>";
  echo "<td><input type='checkbox' name='{number[]}' value='{$row['prodID']}' /></td>";

  echo "</tr>";
  }
echo "</table>";

mysql_close($con);


?>

<?php



?>

<html>
<head>

</head>
<form name="form1" method="post" action="result_page.php"> 

<input type="submit"  name="Submit"      value="Submit"> 
</p> 
</form> 

<body>

</body>
</html>

but my problem is how to create a result_page.php to show the selected entries or data base on the selected checkbox so i can create a comparison page. I have this as being my result_page.php but nothing is showing up. I know Im doing something wrong but I cant find out.

<?php
error_reporting(E_ALL);

$host = 'localhost';                
$user = '******';       
$pass = '******';       
$dbname = '******';         
$connection = mysql_connect($host,$user,$pass) or die (mysql_errno().":  ".mysql_error()."<BR>"); 
mysql_select_db($dbname);

$sql = "SELECT * FROM products WHERE prodID IN ("; 

foreach ($_POST['number'] as $product) $sql .= "'" . $product . "',";



$sql = substr($sql,0,-1) . ")"; 



$result = mysql_query($sql); 

while ($myrow = mysql_fetch_array($result))


{ 
echo "<table border=1>\n";

echo "<tr><td>Name</td><td>Position</td></tr>\n";

do {

printf("<tr><td>%s %s</td><td>%s</tr>\n", $myrow["1"], $myrow["2"], $myrow["3"]);

} while ($myrow = mysql_fetch_array($result));

 echo "</table>\n";

} 

?>
share|improve this question
    
Whatever tutorial you're using is teaching you some very bad habits and you should stop using it immediately. SQL injection bugs are extremely dangerous. This is why writing SQL queries by hand is usually not a good idea. Have you thought about using CakePHP or CodeIgnighter as a foundation for your application? What you're doing is a lot easier with tools like that and dramatically reduces the chance of making a serious mistake. –  tadman Aug 28 '12 at 22:59

1 Answer 1

A quick glance, the section that generates the output is not correct. You have looped two times for no apperant reason.

while ($myrow = mysql_fetch_array($result)) //<========remove this line

{ //<========remove this line
echo "<table border=1>\n";

echo "<tr><td>Name</td><td>Position</td></tr>\n";

do {

printf("<tr><td>%s %s</td><td>%s</tr>\n", $myrow["1"], $myrow["2"], $myrow["3"]);

} while ($myrow = mysql_fetch_array($result));

echo "</table>\n";

}  //<========remove this line

This is done by human parse, but should serves as a starting point.

And to recap tadman, no this is not a good tutorial. And normally you won't need to do printf for the output.

share|improve this answer
    
I tried removing the lines while ($myrow = mysql_fetch_array($result)) //<========remove this line { //<========remove this line and also the last bracket you tell me to remove. but the only thing it did is its just echoing or showing Name | Positions on a table. Its not fetching or showing the data in my database. –  user1631557 Aug 29 '12 at 0:17
    
Have you checked your mysql output? And, try use mysql_fetch_assoc to use key name to access the mysql result. It is generally more readable and maintainable. –  Moe Tsao Aug 29 '12 at 15:13

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