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$per_page = 1;
$page = (isset($_GET['page'])) ? (int)$_GET['page'] : 1;
$start = ($page - 1) * $per_page;
$totalcount = mysql_query("SELECT COUNT(DISTINCT user_id) FROM images");
$totalcountplus = ceil(mysql_result($totalcount, 0) / $per_page);
$totalcountone = mysql_query("SELECT DISTINCT `user_id` FROM `images` LIMIT $start, $per_page");
while($totalcountplusone = mysql_fetch_array($totalcountone))  {
$usercountone  =$totalcountplusone['0'];


Hello. I suspect this is an easy fix but im struggling to get my head around what exactly to do. For the record, this script worked perfectly on localhost, but ive since migrated to a live server.

The script is simple - it sets a number of items per page, and then causes a page break at the correct point with the LIMIT sql function. As before, this worked nicely on localhost, but since migrating it doesnt. It creates the correct number of pages, but it doesnt push the correct number of items onto each page.

I suspect its this line that is the problem:

$totalcountone = mysql_query("SELECT DISTINCT `user_id` FROM `images` LIMIT $start, $per_page");

This is evidenced by the fact that on my server notepad every other variable in the script is a dark green hue whilst $start and $per_page are both bright blue. I have tried encasing both variables within double quotes and single quotes and im not unsure as to how to fix this problem. Very frustrating.

Addition: I have just subbed the $start and $per_page for 1, 1 as integers. This still doesnt work, so im at a complete loss now, particularly as it worked on localhost. Im not sure if its the above line thats the issue now.

All suggestions welcome.

share|improve this question
Is there data in your images table? if you echo( $totalcount ) how many total records are there? I'm wondering if your script is not properly communicating with MySQL server. – Set Sail Media Nov 6 '13 at 20:41
@SetSailMedia yeah, the data shows fine it just doesnt paginate. as i said, i suspect this is a problem to do with the limit, which is meant to dictate that it should show $per_page, ie 1 image starting at $start of the sample, ie the first image. – Grimbonie Nov 6 '13 at 20:45
@Grimbonie - you need to check the return value from your query. Is it working? Is there anything in mysql_error()? Have you checked that the database is set up on the live server? – andrewsi Nov 6 '13 at 20:58
@SetSailMedia ok so ive echoed out all the variables. $totalcountplus gives an answer of 3, which is correct for the number of datasets i have. interestingly when i echo out $totalcountplusone (after removing it from the while loop) it gives a literally answer of "Array". that is it...ive never seen that before. the database is absolutely fine, yes. – Grimbonie Nov 6 '13 at 20:59
$totalcountplusone is the array result from mysql_fetch_array(). That's normal. – Set Sail Media Nov 6 '13 at 21:00

1 Answer 1

In line

$totalcountplus = ceil(mysql_result($totalcount, 0) / $per_page);

used $per_page before it initialized

share|improve this answer
that was an edited version to try and appease the person who thought it was messy - its back as it is in my code now. – Grimbonie Nov 6 '13 at 20:57

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