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 would like to paginate my multi termed sql query in paginated results, page 1 works fine but page 2..previous or next do not pass the variable:

<?php


include "db.inc.php";

if (isset($_GET["page"])) { $page  = $_GET["page"]; } else { $page=1; }; 
$start_from = ($page-1) * 15;

$term1 = $_REQUEST['term1'];
$term2 = $_REQUEST['term2'];
$term3 = $_REQUEST['term3'];
$term4 = $_REQUEST['term4'];
$sql ="SELECT * FROM cdrequests WHERE pname  LIKE '%$term1%' AND date LIKE '%$term2%' AND date LIKE '%$term3%' AND dept LIKE '%$term4%' LIMIT $start_from, 15";


$rs_result = mysql_query ($sql);
$num_rows = mysql_num_rows($rs_result);
$query = mysql_query("SELECT * FROM cdrequests WHERE pname  LIKE '%$term1%' AND date LIKE '%$term2%' AND date LIKE '%$term3%' AND dept LIKE '%$term4%'"); 
$number=mysql_num_rows($query); 
print "<font size=\"5\" color=white><b>CD Requests</b></font> </P>";


print "<table class=\"table1\"    STYLE=\"word-wrap:break-word;\"   width=1100 border=\"1\"  bordercolor=\"#000000\" bgcolor=\"E6E6E6\" style=\"border-collapse: collapse\"   cellpadding=\"2\" cellspacing=\"1\"> .............
?>

<?php 

$term1 = $_REQUEST['term1'];
$term2 = $_REQUEST['term2'];
$term3 = $_REQUEST['term3'];
$term4 = $_REQUEST['term4'];


$sql = "SELECT COUNT(id) FROM cdrequests WHERE pname  LIKE '%$term1%' AND date LIKE '%$term2%' AND date LIKE '%$term3%' AND dept LIKE '%$term4%'";  
$rs_result = mysql_query($sql); 
$row = mysql_fetch_row($rs_result); 
$total_records = $row[0];
$total_pages = ceil($total_records / 15);


/******  build the pagination links ******/
// range of num links to show
$range = 3;



// if not on page 1, don't show back links
if ($page > 1) {
   // show << link to go back to page 1
   echo " <a href='search2.php?page=1'><b>First</b></a> ";
   // get previous page num
   $prev = $page - 1;
   // show < link to go back to 1 page
   echo " <a href='search2.php?page=$prev'><b>&laquo;</b></a> ";
} // end if 



// loop to show links to range of pages around current page
for ($x = ($page - $range); $x < (($page + $range) + 1); $x++) {
   // if it's a valid page number...
   if (($x > 0) && ($x <= $total_pages)) {
      // if we're on current page...
      if ($x == $page) {
         // 'highlight' it but don't make a link
         echo " <font  size='5' color=yellow><b> $x </b></font> ";
      // if not current page...
      } else {
         // make it a link
         echo " <a href='search2.php?page=$x'>$x</a> ";
      } // end else
   } // end if 
} // end for


// if not on last page, show forward and last page links        
if ($page != $total_pages) {
   // get next page
   $next = $page + 1;
    // echo forward link for next page 
   echo " <a href='search2.php?page=$next'><b>&raquo;</b></a> ";
   // echo forward link for lastpage
   echo " <a href='search2.php?page=$total_pages'><b>Last</b></a> ";
} // end if
/****** end build pagination links ******/
echo "&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;<font size='4' color=white>Total Records</font> <font size='5' color=yellow><b>$number</b></font>";

echo '</table>';

?>

not sure what I need to put in the echo " <a href='search2.php?page=$next'><b>&raquo;</b></a> "; in order to call the terms

thanks

share|improve this question
3  
Please, don't use mysql_* functions to write new code. They are no longer maintained and the community has begun deprecation process. See the red box? Instead you should learn about prepared statements and use either PDO or MySQLi. If you can't decide which, this article will help you. If you pick PDO, here is good tutorial. –  orourkek Jun 12 '12 at 16:29
    
+1 on PDO. Without it, your code is highly injectable. –  bpeterson76 Jun 12 '12 at 16:31
add comment

2 Answers 2

up vote 0 down vote accepted

Does this not work?

...
$start_from=$page*15

$query = mysql_query("SELECT * FROM cdrequests WHERE ...");  
$all_rows = mysql_num_rows($query); 
$totalPages = ceil($all_rows/15)-1; #How many pages?
$sql = $query . " LIMIT $start_from,15"; 
print "<font size=\"5\" color=white><b>CD Requests</b></font> </P>";

print "<table class=\"table1\..."
$terms= '&term1='.$term1 . '&term2='.$term2 . '&term3='.$term3 . '&term4='.$term4;
if($totalPages>1){ 
#Paging Starts Now
?>
<div align="center">
<? if ($page > 1) { ?>
<a href="search2.php?page=<? echo ($page-1); echo $terms; ?>">Previous</a>
<a href="search2.php?page=1<? echo $terms; ?>">First</a>
<? } ?>
Page <? echo $page; ?> of <? echo $totalPages+1; ?>

<? if ($page < $totalPages) { ?>
<a href="search2.php?page<? echo ($page+1); echo $terms; ?>">Next</a>
<a href="search2.php?page<? echo ($totalPages+1); echo $terms; ?>">Last</a>
</div>
<? } }?>
share|improve this answer
    
no didn't work. I appreciate the help. –  user1356282 Jun 12 '12 at 17:09
    
Notice: Undefined index: term1 term2 term3 term4 I'ts not keeping/passing variable for term1-4 –  user1356282 Jun 12 '12 at 17:20
    
@user1356282, can you try this now- it should work. It may be also useful to have if(isset($_REQUEST['term1'])){ //Do stuff here } as this would stop you having the error again. –  Bonzo Jun 12 '12 at 17:35
    
Works great, thanks so much, greatly appreciated –  user1356282 Jun 12 '12 at 18:54
add comment

Make it much easier on yourself. Build the table once.

Apply jQuery Datatables to it

$('#table_id).datatables();

Paging done. It's really that easy! All it requires is jQuery and the DataTables plugin, plus a few lines of CSS. As a bonus, it will filter, sort, limit, and more with just additional line of code per feature required. Plus, it can be styled with Themeroller, making a better looking table than most developers can pull off.

share|improve this answer
add comment

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.