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I'm developing a simple social networking system. This is my code and it displays a list of all the friends of the logged in user with a Unfriend button infront of each ones name. I need a page that will only display 5 friends at a time. With next and previous links at the bottom of the page. First page that load sholudn't have the "previous" link and the last page shouldnt have the "next" link. Any help would be appreciated.

<?php
require_once("settings.php");   
$conn = @mysqli_connect($host,$user,$pswd) or die('Failed to connect to server');//connecting to the database
@mysqli_select_db($conn,$dbnm) or die('Database not available');//unless error
//if ((isset($_POST ["$log "]) && (!empty ($log)))){
//getting profile names and ids of the friends of the logged in user 
$query = "SELECT friends.profile_name,friends.friend_id FROM friends INNER JOIN myfriends ON friends.friend_id=myfriends.friend_id1
            WHERE myfriends.friend_id2='$friendID'";

//unless error
$results = @mysqli_query($conn, $query) or die("<p>Unable to execute the query 011.</p>". "<p>Error code " . mysqli_errno($conn). ": " . mysqli_error($conn)) . "</p>";;
$count=mysqli_num_rows($results);//row count
$row = mysqli_fetch_row($results);//fetching a row from db and soring it inside a variable

if(isset($_GET ["unfriend"]))//if unfriend variable is set
{

    $unfriend=$_GET["unfriend"];
    //echo $friend_id = $row[1];
    //$query ="DELETE FROM myfriends WHERE (friend_id1=".$unfriend." and friend_id2=".$friendID.") OR (friend_id1=".$friendID." and friend_id2=".$unfriend.")";
    //deleting the mutual friendship 
    $query ="DELETE FROM myfriends WHERE (friend_id1=$unfriend and friend_id2=$friendID) OR (friend_id1=$friendID and friend_id2=$unfriend)";
    $results = @mysqli_query($conn, $query) or die("<p>Unable to execute the query 011.</p>". "<p>Error code " . mysqli_errno($conn). ": " . mysqli_error($conn)) . "</p>";;

    //getting num of friends of the deleted friend 
    $query = "SELECT num_of_friends FROM friends WHERE friend_id='$unfriend'";

    $results = @mysqli_query($conn, $query) or die("<p>Unable to execute the query 013.</p>". "<p>Error code " . mysqli_errno($conn). ": " . mysqli_error($conn)) . "</p>";;

    $row = mysqli_fetch_row($results);
    $friendcount=$row[0];
     $friendcount--;
     //updating the number of friends of the deleted friend
    $query2 ="UPDATE friends  
            SET num_of_friends='$friendcount'
            WHERE friend_id='$unfriend'";
    $results2= @mysqli_query($conn, $query2) or die("<p>Unable to execute the query 01234.</p>". "<p>Error code " . mysqli_errno($conn). ": " . mysqli_error($conn)) . "</p>";;

    //getting profile names and ids of the friends of the logged in user 
    $query = "SELECT friends.profile_name,friends.friend_id,friends.num_of_friends FROM friends INNER JOIN myfriends ON friends.friend_id=myfriends.friend_id1
            WHERE myfriends.friend_id2='$friendID'";

    $results = @mysqli_query($conn, $query) or die("<p>Unable to execute the query 013.</p>". "<p>Error code " . mysqli_errno($conn). ": " . mysqli_error($conn)) . "</p>";;
    $count=mysqli_num_rows($results);

    //updating the number of friends of the logged in user.
    $query1 ="UPDATE friends   
            SET num_of_friends='$count'
            WHERE friend_id='$friendID'";
    $results1= @mysqli_query($conn, $query1) or die("<p>Unable to execute the query 012.</p>". "<p>Error code " . mysqli_errno($conn). ": " . mysqli_error($conn)) . "</p>";;       
    //updating the session variable
    $numoffriends=$count;
    $_SESSION["numoffriends"]=$numoffriends;    

    $row = mysqli_fetch_row($results);


}


    echo "<p>Total Number of friends is $count</p>";

echo "<table width='50%' border='1'>";
while ($row) {
    echo "<tr><td>{$row[0]}</td>";
    ?>
    <td><button onclick = "window.location.href='friendlist.php?unfriend=<?php echo $row[1];?>'">Unfriend</button></td></tr>
    <?php

    $row = mysqli_fetch_row($results);
}
echo "</table>";



echo"<p><a href =\"friendadd.php\">Add Friends</a><a href =\"logout.php\">Log Out</a></p>"; 



mysqli_free_result($results);


mysqli_close($conn);
?>
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please format your code –  Satish Gadhave May 18 '13 at 9:40

1 Answer 1

You can do it by limit statement. You need set some variables like:

  • $records_per_page - which is variable responsible for showing records
  • $current_page - variable holding current page

your query needs to be based on LIMIT x, y

x - how many records are to be skipped y - how many records are displayed

so if someone puts 1 as current page it will be something like

LIMIT $current_page * $records_per_page, $records_per_page;

Moreover, you should count how many records are in query without limits and in that way you can use for loop to create pages links.

Other good option is to use proper already written classes for this. The best class I used is Zend_Paginator

http://framework.zend.com/manual/1.12/en/zend.paginator.html

If you don't want to use this class check this tutorial: http://www.phpjabbers.com/php--mysql-select-data-and-split-on-pages-php25.html

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