Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm trying to make a website with movies in it, everything is fine but i have just 1 little problem,when ever i make a website, i do all work in my local computer test it then I upload the web, the code below is for paging with query it works fine in WAMP (locally). But when I upload the paging code to my web server it says NOT EXIST. it shows the else part,whats the problem?

<?php

$per_page = 35; 
 $page = 1;
 if (isset($_GET['page'])) 
 {
  $page = intval($_GET['page']); 
  if($page < 1) $page = 1;
}

 $start_from = ($page - 1) * $per_page; 

$con= mysql_connect("localhost","sarya_asad","Thisisfor123");
 mysql_select_db('saryaal_com_movies',$con);

 $current_items = mysql_query( "SELECT * FROM `english` LIMIT $start_from, $per_page");
 if( mysql_num_rows($current_items) > 0)
 {
  while($item = mysql_fetch_assoc($current_items))
  {

  ?>
    <tr>
        <td> <strong><a href="english/english-preview.php?id=<?php echo$item['id']?>" ><?php echo $item['title'] ;?></a>    </strong></td>
        <td> <strong> <?php echo $item['year'] ;?>  </strong></td>
        <td> <strong> <?php echo $item['quality'] ;?>   </strong> </td>
    </tr>
    <tr><td>
    <?php
    }
 }
 else
 {
  echo 'this page does not exists'; 
 }

 $total_rows = mysql_query("SELECT COUNT(*) FROM `english`");
 $total_rows = mysql_fetch_row($total_rows);
 $total_rows = $total_rows[0];

 $total_pages = $total_rows / $per_page;
 $total_pages = ceil($total_pages); # 19/5 = 3.8 ~=~ 4

 for($i = 1; $i  <= $total_pages; ++$i)
 {
  echo "<a href='temp2.php?page=$i' class='pagNumActive'>$i</a> &nbsp;&nbsp;";
 }
 ?>
share|improve this question
1  
What does it say does "NOT EXIST?" You may have to change your database credentials to match that of your web server as you are no longer running on localhost. –  user1477388 Jan 16 '13 at 21:46
1  
Have your database connection details been updated since uploading your website to the web server? –  Ian Brindley Jan 16 '13 at 21:46
1  
Put error_reporting(E_ALL) at the top and see what errors it gives. My bet is failing to connect to MySQL –  Mr. Llama Jan 16 '13 at 21:47
    
Make sure that your web host has the same db/tables/user/pass –  Class Jan 16 '13 at 22:09
    
my whole web is working and this code is also working until i change it to "...WHERE genre like '%$genre%' LIMIT $start_from, $per_page" –  Asad Rehman Jan 17 '13 at 2:08

5 Answers 5

0) { while($arr=mysql_fetch_array($current_items)) {?> // result u want to display "; echo "Page : "; for($i = 1; $i <= $total_pages; $i++) { echo "[$i ]"; } echo ""; ?>

share|improve this answer

Try this logic for pagination:

Your goal is to offset by the number of images you want to display on each page.

So let's say you want to display 6 movie thumbnails on a page... You'd have:

$videos_per_page = 6
$pageNumber = (isset($_GET['page']) ? ($_GET['page']) : 1);

And your offset would be:

$offset = $videos_per_page * $pageNumber 

(6 videos * page 0... so you're offsetting 0 videos. That's good because you want to display the first 6 videos in your data structure on page 0).


So now that you have your offset value... You need to set your array pointer to the correct spot... Loop through your database rows storing your movies and move your pointer by your offset value... Store that in $videos_to_offset...

while ($videos_per_page < $offset && ($row = $Query_Result->fetch_assoc())) {
    $videos_to_offset++;
}

Now you can loop through your database rows, outputting your videos from wherever your offset array pointer left off:

    $video_counter = 0;
    while ($video_counter < $videos_per_page && ($row = $Query_Result->fetch_assoc())) {

        echo   $row['videopath'];
        $video_counter++;
}

Something like that.

share|improve this answer

you might want to use something like:

$per_page = 35;
$start_from = $page * $per_page - $per_page;
share|improve this answer

change this

 $start_from = ($page - 1) * $per_page;

to

 $start_from = ($page) * $per_page;
share|improve this answer
    
for the first page you you'll get LIMIT 35,35 and not LIMIT 0,35 –  Class Jan 16 '13 at 21:56
    
try without LIMIT $start_from, $per_page and see if it works –  echo_Me Jan 16 '13 at 22:06
    
my query is working properly until i change my query SELECT id,title,year,quality,genre FROM english WHERE genre like '%$genre%' LIMIT $start_from, $per_page –  Asad Rehman Jan 17 '13 at 1:59
    
your code looks good , try change to this your query SELECT * FROM english` LIMIT '$start_from', '$per_page'` –  echo_Me Jan 17 '13 at 11:22

This is your problem:

$con= mysql_connect("localhost","sarya_asad","Thisisfor123");
    mysql_select_db('saryaal_com_movies',$con);

You need to change the host details. localhost is the local server on your machine.

share|improve this answer
    
This might be the correct answer, but depending on the server it may allow localhost as the host. –  Class Jan 16 '13 at 22:01
    
my info is fine. –  Asad Rehman Jan 17 '13 at 1:58

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.