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I have a members site which requires login where members create web pages with specific user-defined variables to enter data which will be shown for public access to these web pages, each of which displays information on a certain product.

There are 7 common web page templates which all members choose from to display custom variables related to them, their company, and a specific product (one of seven). They enter their custom information in to a form, which then places these values in the proper places on the web page templates to be viewed by prospects later

<input name='first_name' value='first_name'>
<input name='last_name' value='last_name'>
<input name='company_name' value='company_name'>
<input name='phone_number' value='phone_number'>
<input name='product_id' value='product_id'>
<input name='product_size' value='product_size'>
<input name='product_color' value='product_color'>
<input name='product_price' value='product_price'>

I need to be able to access the values of these variables pertaining to the specific user and specific product offered by user when a webpage is accessed with the user_id in the URL, ie something like http://domain.com/page_template_1/user_id/product_id.

Right now, only the user has access to these values when he is logged in. I need these values to be accessible to anyone accessing a specific url where user's custom values his show product information.

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You should be able to write a query for the user_id that retrieves the seven custom fields for display in the page. Are these values stored together in a table along with user_id? –  Surreal Dreams Jun 8 '12 at 20:14
    
Yes, all values are in the same table, same row as the user_id. Could you give me an example of the query I would include in the file I access using the user_id as a unique identifier in the url? –  user1322707 Jun 8 '12 at 20:16

2 Answers 2

A query might look like this:

<?php
$db_connection = new mysqli('localhost', 'root', 'root', 'test');
if ($db_connection->connect_errno) {
   echo "Failed to connect to MySQL: (" . $mysqli->connect_errno . ") " . $mysqli->connect_error;
}


$user_id = $_GET['user_id']; // from url
$product_id = $_GET['product_id']; // from url
// Make sure $db_connection matched your database connect script! Other wise it will come up with "Fatal error: Call to a member function prepare() on a non-object" error.
if($stmt = $db_connection->prepare("SELECT first_name, last_name, company_name, phone_number, product_id, product_size, product_color, product_price FROM table_name WHERE user_id = ? AND product_id = ?")) {
        $stmt->bind_param("ii", $user_id, $product_id);
        $stmt->execute();
        $stmt->bind_result($first_name, $last_name, $company_name, $phone_number, $product_id, $product_size, $product_color, $product_price);
        $stmt->fetch();
        echo $first_name;
        $stmt->close();
}
?>

You might also want to rewrite your urls using the .htaccess file. if you want your urls to be pretty.

Hope this helps.

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I'm getting Fatal error: Call to a member function prepare() on a non-object in /localhost/domain/file.php –  user1322707 Jun 8 '12 at 21:21
    
You need to replace table_name with your table name?? I am using this code on a page now and is works i have just tested it. –  Frank_Hemsworth Jun 8 '12 at 22:05
    
Did that! Can't figure out any other reason for the error. –  user1322707 Jun 8 '12 at 22:07
    
I have just edited the code, that is the exact code i am using which works. check that your field names match up to those in the query. –  Frank_Hemsworth Jun 8 '12 at 22:07
1  
Hello it is not recommended to use the mysql_ functions you should use the mysqli_ functions. Also it's a good idea to use prepared statements like in my answer. Also your answer can be exploited using SQL injection so you SHOULD NOT USE THIS ON A PUBLIC WEBSITE. It is a security flaw that is why i suggested using prepared statements. –  Frank_Hemsworth Jun 10 '12 at 21:57
up vote 0 down vote accepted

For some reason, I couldn't get anything to work for me except the following. It could have been the way the rest of the code on my page is constructed. I don't know. But here is what I did which works. Kind of a pain to have to use $row->variable_name instead of $variable_name. But it works.

$db_connection = new mysqli("", "", "");
if ($db_connection->connect_errno) {
   echo "Failed to connect to MySQL: (" . $mysqli->connect_errno . ") " .       $mysqli->connect_error;
}

$id = $_GET['user_id'];
$query = mysql_query("SELECT * FROM table_name WHERE id = '$id' LIMIT 1") or die(mysql_error()); 
$row = mysql_fetch_object($query);

echo " // HTML GOES HERE

  $row->first_name
  $row->last_name
  $row->company_name

 ";
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