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I'm a new member of StackOverflow, and although I've been using the website for a long time, it's my first time posting a question, in a hope that someone will be able to help me. I'll start by saying that my knowledge of PHP and MySQL is basic, but what I'm trying to do isn't too complex in my opinion, so hopefully I won't be asking for much. I've done a lot of prior research, but I just couldn't find the right answer.

In short, this is what I'm trying to do:

I've got an html form, which upon submission writes data to a database, and then publishes a table on a separate html page. With each successful submission a new table gets generated and published, while the old one gets pushed underneath. This all works fine, and I've also implemented pagination so that only 5 tables are visible per page.

What I'd like to be able to do is allow people to ONLY view/display results (tables) based on a specific criteria, in this case "rating", by selecting a rating from a drop-down on the page where tables are published. Rating is one of the fields in my form which gets submitted to a database and then published in one of the rows in a table.

Below is the code which publishes tables. Thanks in advance for your help!

<?php
include('dbconnect.php'); 

mysql_select_db("vtracker", $con);
$result  = mysql_query("SELECT * FROM userdata");
$age = "Age:";
$rating = "Rating:";
$country = "From:";
$name = "Name:";

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

                        echo "<table id='mft_table' cellspacing='0'>";
                        echo "<tbody>";
                        echo "<tr>";
                        echo "<td class='row1'>" .$name . " " . $row['personsname'] . "</td>";
                        echo "<td rowspan='4'>";
                        echo "<div class='mft_column'>" . $row['mft'] . "</div>";
                        echo "</td>";
                        echo "</tr>";
                        echo "<tr>";
                        echo "<td class='row2'>" . $country . " " . $row['nationality'] . "</td>";
                        echo "</tr>";
                        echo "<tr>";
                        echo "<td class='row3'>" . $age . " " . $row['personsage'] . "</td>";
                        echo "</tr>";
                        echo "<tr>";
                        echo "<td class='row4'>" . $rating . " " . $row['rating'] . "</td>";
                        echo "</tr>";
                        echo "</tbody>";
                        echo "<br>";
                        echo "</table>"; 

        }
    ?>
share|improve this question

3 Answers 3

up vote 1 down vote accepted

for both true and false use can add thid in your code:

if($_POST['rating_dropdown']!='')
{
    $temp_rating = $_POST['rating_dropdown'];
    $query=mysql_query("SELECT * FROM userdata WHERE rating = '$temp_rating'");
}
else
{
    $query=mysql_query("SELECT * FROM userdata");
}
share|improve this answer
1  
thanks, all working fine, I've incorporated given advice. Thanks all for pitching in. –  Zeus Mar 26 '13 at 16:15

Dunno if this works, it's just a hinch. haha. It will see if the rating is true(not null), if it's true it will echo the results.

while($row = mysql_fetch_array($result))
{
if ($rating)
                echo "<table id='mft_table' cellspacing='0'>";
                echo "<tbody>";
                echo "<tr>";
                echo "<td class='row1'>" .$name . " " . $row['personsname'] . "</td>";
                echo "<td rowspan='4'>";
                echo "<div class='mft_column'>" . $row['mft'] . "</div>";
                echo "</td>";
                echo "</tr>";
                echo "<tr>";
                echo "<td class='row2'>" . $country . " " . $row['nationality'] . "</td>";
                echo "</tr>";
                echo "<tr>";
                echo "<td class='row3'>" . $age . " " . $row['personsage'] . "</td>";
                echo "</tr>";
                echo "<tr>";
                echo "<td class='row4'>" . $rating . " " . $row['rating'] . "</td>";
                echo "</tr>";
                echo "</tbody>";
                echo "<br>";
                echo "</table>"; 
}

}
share|improve this answer

Once the dropdown gets selected and posted to your display page, use this code:

$temp_rating = $_POST['rating_dropdown'];
mysql_query("SELECT * FROM userdata WHERE rating = '$temp_rating'");

Keep in mind, however, that you should be using PDO or mysqli extension, not the mysql extension. According to PHP's website:

This extension is deprecated as of PHP 5.5.0, and will be removed in the future. Instead, the MySQLi or PDO_MySQL extension should be used. See also MySQL: choosing an API guide and related FAQ for more information.

share|improve this answer
    
Thanks for replying. The dropdown with rating options is always on the display page, which I've linked to a 'filter.php' file that's being called when a users click on the "Submit" button. The logic of my code in the filter.php file is actually the same as what you suggested, but it doesn't work, i.e. the results (tables) don't get filtered based on user selection. Here's the code in filter.php file: –  Zeus Mar 10 '13 at 18:13
    
just realized that I don't have enough space to post everything... –  Zeus Mar 10 '13 at 18:19
    
In the filter.php file I have: $filtered = mysql_real_escape_string($_POST["filtered"]); $result = mysql_query("SELECT * FROM userdata WHERE rating = '$filtered'"); and then a while loop which prints the tables, like in my original code. –  Zeus Mar 10 '13 at 18:23
    
Based on what you've written, it looks like it should work. Start debugging by echoing the $filtered variable to see if it indeed contains the content you expect. –  Wes Cossick Mar 10 '13 at 18:49

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