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I am using the following Code to apply pagination in my page..

The Code is

$db_selected = mysql_select_db('maiarn', $link);
if (!$db_selected) {
    die ('Can\'t use test : ' . mysql_error());
}

$sql_statement = 'SELECT * FROM Email';
$num_Array = mysql_query($sql_statement);
$total_records = mysql_num_rows($num_Array);

$page = (isset($_GET['page'])) ? (int)$_GET['page'] : 1;

$offset = 10;

if ($page){
    $from   = ($page * $offset) - $offset;
}else{  $from = 0;  }

$sql_statement = 'SELECT * FROM email LIMIT ' . $from . ',' . $offset;

$resultArray = mysql_query($sql_statement);

    ?>

And the while Loop for displaying results is:

      <tr>
      <?php echo  mysql_query($sql_statement); ?>
       </tr>

  <?PHP
  //row number
  $row_number = $from + 1;
  //Finally, Lets print all the rows, we've got from sql


  while($rowArray = mysql_fetch_array($resultArray) )
  {
  ?>        
  <tr>
           <td><?PHP echo $rowArray['FullName']; ?></td>
           <td><?PHP echo $rowArray['EmailAddr']; ?></td>
           <td><?PHP echo $rowArray['Message']; ?></td>
  </tr>
  <?PHP
   }
  ?>   
<tr>
    <td align="center" colspan="4" class="white">
    <?PHP
//Lets add the paging here
doPages($offset, 'paging_php_mysql.php', '', $total_records); 
?>    
     </td>
</tr>

</table>

I get error on this below line: that" Warning: mysql_fetch_array() expects parameter 1 to be resource, boolean given in"

     while($rowArray = mysql_fetch_array($resultArray) )

Also no data is being retrived from database.. Please any help

share|improve this question
    
Which means mysql_query returned false because of an invalid query. –  Evan Mulawski Mar 19 '12 at 12:00
1  
your query did not execute properly. mysql_query returns FALSE on a select query error. Could you echo the $sql_statement string and run it in phpmyadmin? –  redDevil Mar 19 '12 at 12:00
1  
The query fails. Use mysql_error() to get the message. Most likely $offset or $from is not set correctly. –  pritaeas Mar 19 '12 at 12:01
    
search and download ezSQL. It is very good for pagination! –  hjpotter92 Mar 19 '12 at 12:05
1  
@HanyaIdrees: For debugging purposes, change your mysql_query line to $resultArray = mysql_query($sql_statement) or die(mysql_error());. This is for debugging and should be removed before moving your code to production. –  Travesty3 Mar 19 '12 at 13:33

1 Answer 1

Try this code

$count=3;
$query= 'select * from  news order by id desc ' ;
$limit_str=" limit 0,$count";

if(isset($_POST['page']))
{
    $lim=$_POST['page'];
    $offset=$lim[0]*$count; 
    $lim_str=" limit $offset, $count";
    $query.=$lim_str;
}

//Form

<form method='post' >
< input type='submit' name='page[]' value='1' />
< input type='submit' name='page[]' value='2' />
< input type='submit' name='page[]' value='3' />
</form>


<?php
// Display logic
?>
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