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Im trying to do pages for my search result.My Search function is working fine. However, when I click on the page number. This error appears (below) :

Notice: Undefined index: search in C:\wamp\www\I-Document\new.php on line 8 ERROR: Select from dropdown

This message only should appear when there is no input in dropdown and no search input. Im not sure how to correct this. Please help! Thank u

<?php

//connecting to the database
include 'config.php';


$search = mysql_escape_string($_POST['search']);

$dropdown = mysql_escape_string($_POST['dropdown']); 

if (empty($search) && empty($dropdown)) {
die("Please choose your Search Criteria");
  } 

  //max displayed per page
  $per_page = 10;

  //get start variable  
  $start = $_GET['start'];

  //count records
  $record_count = mysql_query("SELECT COUNT(*) FROM document WHERE $dropdown LIKE     '%$search%'");


  //count max pages
  $max_pages = $record_count / $per_page; 

  if (!$start)
    $start = 0;

    //display data
    $query = mysql_query("SELECT * 
                            FROM document 
                           WHERE $dropdown LIKE '%$search%' 
                           LIMIT $start, $per_page");

    echo "<b><center>Search Result</center></b><br>";

    $num=mysql_num_rows($query);

    if ($num==0)
      echo "No results found";
    else {
      echo "$num results found!<p>"; 
    }

  echo "You searched for <b>$search</b><br /><br /><hr size='1'>";
  echo "<table border='1' width='600'>
          <th>File Reference No.</th>
          <th>File Name</th>
          <th>Owner</th>
          <th>Borrow</th>
       </tr>";

  while ($rows = mysql_fetch_assoc($query)) {
    echo "<tr>";
    echo "<td>". $rows['file_ref']  ."</td>";
    echo "<td>". $rows['file_name'] ."</td>";
    echo "<td>". $rows['owner'] ."</td>";
    echo "<td><a href=add_borrower.php?id=" . $rows['id'] . ">Borrow</a></td>";
    echo "</tr>";
  }

  echo "</table>"; 

 //setup prev and next variables
 $prev = $start - $per_page;
 $next = $start + $per_page;

 //show prev button
 if (!($start<=0)) 
   echo "<a href='new.php?start=$prev'>Prev</a> ";

 //show page numbers
 //set variable for first page
 $i=1;

 for ($x=0;$x<$record_count;$x=$x+$per_page) {
   if ($start!=$x)
     echo " <a href='new.php?start=$x'>$i</a> ";
   else
     echo " <a href='new.php?start=$x'><b>$i</b></a> ";

   $i++;
}
}

//show next button
if (!($start>=$record_count-$per_page))
  echo " <a href='new.php?start=$next'>Next</a>";

?>
share|improve this question
1  
$record_count = mysql_num_rows(mysql_query("SELECT * FROM document")); is the worst way to get a row cound you can use. It requires the database to return ALL rows from the table. Better SELECT COUNT(*) FROM document. Then you get one row with one column containing the row count. –  ThiefMaster Nov 15 '10 at 2:18
    
thank u..i have changed it. –  yash Nov 15 '10 at 2:55

4 Answers 4

up vote 0 down vote accepted

Looks to me like when you click on a link, you no longer have the POST data being sent (it becomes a simple GET request). You'll need to create a form, then have a submit button for each of the pages. Or have the search term in the Query String, like Google (google.com/search?q=your+search+term+here)

share|improve this answer
    
Thank u for the idea..will try doing it. –  yash Nov 15 '10 at 2:56

This is the offending line

$search = mysql_escape_string($_POST['search']);

Your logic goes

IF $_POST['submit'] IS NOT SET
THEN
    $search = mysql_escape_string($_POST['search']);

It's a pretty safe bet to say that if $_POST['submit'] is not set, then neither is $_POST['search']

Also, consider when you click one of your "page" links, that will issue a GET request and $_POST will be empty. You can either pass your POST parameters via GET along with the pagination data and look for them in either $_GET or $_POST (or $_REQUEST if you're feeling saucy), or create your pagination control as a "postable" form.

share|improve this answer

You already have all the code. You just need to rewrite your error condition.

  1. Get the input variables
  2. Encode them
  3. Test for presence of both or die() with error message

So from your description:

$search = mysql_escape_string($_POST['search']);

$dropdown = mysql_escape_string($_POST['dropdown']); 

if (empty($search) && empty($dropdown)) {
    die("ERROR: whatever");
}

In this case you can test with empty() even after the escaping, because it would be an empty string in any case.

share|improve this answer
    
thank u.. i have changed it. –  yash Nov 15 '10 at 2:56
if (isset($_POST["search"])){

$search = mysql_escape_string($_POST['search']);

}else{

$search = mysql_escape_string($_GET['search']);

}

do the same for $_POST['dropdown'] but when printing out each page link , you should add the &search= and &dropdown= in the href of the page number .

share|improve this answer
    
thank u.. im working on it. –  yash Nov 15 '10 at 10:09

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