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I am designing a website, which allows users to register and login - Upon logging in, the user is presented with additional links (only visible to registered users). One of these links includes, "My Bookmarks" - The "My Bookmarks" (index.php) code is as follows:

My Bookmarks (index.php) Code:

<?php
  session_start();
    //check session first
  if (!isset($_SESSION['email'])){
    echo "You are not logged in!";
      exit();
  }
  else{
    //include the header
  include ("../includes/header.php");
     require_once ('../../mysql_connect.php');
    echo ("<center>"); 
    echo ("<h3>Bookmark</h3><p>");
    echo ("<a href=add.php>Add a record</a><p>"); 
    echo ("<a href=searchform.php>Search records</a><p>"); 
    //Set the number of records to display per page
    $display = 5;
    //Check if the number of required pages has been determined
  if(isset($_GET['p'])&&is_numeric($_GET['p'])){//Already been determined
    $pages = $_GET['p'];
  }
  else{//Need to determine
    //Count the number of records;
    $query = "SELECT COUNT(id) FROM bookmark";
    $result = @mysql_query($query); 
    $row = @mysql_fetch_array($result, MYSQL_NUM);
    $records = $row[0]; //get the number of records
    //Calculate the number of pages ...
    if($records > $display){//More than 1 page is needed
        $pages = ceil($records/$display);
    }else{
        $pages = 1;
    }
}// End of p IF.

//Determine where in the database to start returning results ...
if(isset($_GET['s'])&&is_numeric($_GET['s'])){
    $start = $_GET['s'];
}else{
    $start = 0;
}

//Make the paginated query;
$query = "SELECT * FROM bookmark LIMIT $start, $display"; 
$result = @mysql_query ($query);

//Table header:
echo "<table cellpadding=5 cellspacing=5 border=1><tr>
<th>Title</th><th>Comment</th><th>URL</th><th>*</th><th>*</th></tr>"; 

//Fetch and print all the records...
while ($row = mysql_fetch_array($result, MYSQL_ASSOC)) {
    echo "<tr><td>".$row['title']."</td>"; 
    echo "<td>".$row['comment']."</td>"; 
    echo "<td><a href=".$row['url']." target=_blank>".$row['url']."</a></td>"; 
    echo "<td><a href=deleteconfirm.php?id=".$row['id'].">Delete</a></td>"; 
    echo "<td><a href=updateform.php?id=".$row['id'].">Update</a></td></tr>"; 
} // End of While statement
echo "</table>"; 
mysql_free_result ($result); // Free up the resources.         
mysql_close(); // Close the database connection.

//Make the links to other pages if necessary.
if($pages>1){
    echo '<br/><table><tr>';
    //Determine what page the script is on:
    $current_page = ($start/$display) + 1;
    //If it is not the first page, make a Previous button:
    if($current_page != 1){
        echo '<td><a href="index.php?s='. ($start - $display) . '&p=' . $pages. '"> Previous </a></td>';
    }
    //Make all the numbered pages:
    for($i = 1; $i <= $pages; $i++){
        if($i != $current_page){ // if not the current pages, generates links to that page
            echo '<td><a href="index.php?s='. (($display*($i-1))). '&p=' . $pages .'"> ' . $i . ' </a></td>';
        }else{ // if current page, print the page number
            echo '<td>'. $i. '</td>';
        }
    } //End of FOR loop
    //If it is not the last page, make a Next button:
    if($current_page != $pages){
        echo '<td><a href="index.php?s=' .($start + $display). '&p='. $pages. '"> Next </a></td>';
    }

    echo '</tr></table>';  //Close the table.
}//End of pages links
//include the footer
include ("../includes/footer.php");
}
?>

Sorry for the formatting issues, I still haven't completely figured out how to copy and paste code effectively.

Anyways, my question is derived from the two errors I receive, which are:

Error One:

Warning: mysql_fetch_array() expects parameter 1 to be resource, boolean given in /home/kethcart/public_html/440/finalproject/htdocs/bookmark/index.php on line 50

Error Two:

Warning: mysql_free_result() expects parameter 1 to be resource, boolean given in /home/kethcart/public_html/440/finalproject/htdocs/bookmark/index.php on line 58

I understand there are more than enough posted questions on this topic, but I can't seem to apply them to my situation. If someone could provide a suggestion on how to fix this or even a link to another question or solution, that would be great!

I appreciate everyone's help and patience - I don't know what I'd do without this community.

Thanks,

Rockmandew

share|improve this question

marked as duplicate by johannes, tereško, Salvador Dali, Bobby, Mark Loeser Nov 22 '13 at 15:58

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
Lol, so in trying to suppress error you get errors. Can I ask, have you tried just simply mysql_fetch_array(mysql_query($query), ...)? in other words, without the @ –  SpYk3HH Nov 21 '13 at 19:36
    
Johannes - I saw this exact post, however, I proceeded to ask my question because I was unsure of how to apply the solution to my code. Not that I'm looking for someone to do the code for me or state the explicit correction, I'm just looking for some guidance as to how to apply the correction. Thanks. –  rockmandew Nov 21 '13 at 19:37
    
SpYk3HH - I have not tried that method, I will test/apply your suggestion momentarily and get back to you with the results. –  rockmandew Nov 21 '13 at 19:38
    
Also, you do realize that mysql_fetch_array only gets one row, right? Shouldn't you want something like: While ($row = mysql_fetch_array –  SpYk3HH Nov 21 '13 at 19:38
    
Stop with mysql_*() functions now and move to PDO or mysqli_*(). –  AbraCadaver Nov 21 '13 at 19:38

1 Answer 1

up vote 1 down vote accepted

Quick answer. You're getting the errors because something is wrong with your query. When using mysql_query, it's important to note, that if the query fails, you get a BOOLEAN return of FALSE. Thus why you're being told ...expects parameter 1 to be resource, boolean given...

To avoid such issue's, try using a die statement to get "feedback" of what might be wrong. Something like:

$query = "SELECT COUNT(id) FROM bookmark";
$result = mysql_query($query) or die ("Error in query: $query. <br />".mysql_error());

See also:

share|improve this answer
    
I think this answer will solve your problem @rockmandew . try this and update us... –  CyberBoy Nov 21 '13 at 19:57
    
@MohdSuleman I think the answer check means it worked ... lol –  SpYk3HH Nov 21 '13 at 21:11
    
@Spy3HH , answer was not checked, when i wrote this comment. :P i was curious that is why i wrote this comment, i knew it would work , that is why i Up voted it... –  CyberBoy Nov 21 '13 at 21:13
    
@MohdSuleman Oh i'm sure it wasn't when you commented, that's why i commented, to let you know and poke fun. lol! Have a great weekend! –  SpYk3HH Nov 21 '13 at 21:58
    
:) oh that was fun... i had added you in my circles on google plus... –  CyberBoy Nov 21 '13 at 22:01

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