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 want to create a simple menu function which can call it example get_menu()

Here is my current code.

<?php 
$select = 'SELECT * FROM pages';
$query  = $db->rq($select);
while ($page = $db->fetch($query)) { 
$id = $page['id'];
$title = $page['title'];
?>
<a href="page.php?id=<?php echo $id; ?>" title="<?php echo $title; ?>"><?php echo $title; ?></a>
<?php } ?>

How to do that in?

function get_menu() {
}

Let me know.

share|improve this question
    
What isn't not working? –  soulmerge Apr 14 '10 at 13:17

8 Answers 8

up vote 3 down vote accepted

Here is the function for that:

function get_menu(&$db)
{
    $select = 'SELECT * FROM pages';
    $query  = $db->rq($select);
    $menu = '';

    while ($page = $db->fetch($query)) { 
    $id = $page['id'];
    $title = $page['title'];

    $menu .= '<a href="page.php?id=' . $id . '" &title="' . $title .'></a>'
    }

    return $menu;
}

.

Some Quick Corrections In Your Script:

  • You were missing = after id
  • You were missing & after title

Suggestion:

You can give your menu links a class and style as per your menu needs :)

share|improve this answer
    
if you reset $menu in the while-loop, this won't work as expected. you have to reset it before... and because of this is a function and there is nothing before it, you don't need to reset it... –  oezi Apr 14 '10 at 13:20
    
hehe, good point. but an array for the future template use would be better. –  Your Common Sense Apr 14 '10 at 13:21
    
@oezi: fixed even before reading your comment, thanks anyways :) –  Sarfraz Apr 14 '10 at 13:21
    
@oezi not reset but define –  Your Common Sense Apr 14 '10 at 13:22
    
thanks sarfraz. Fatal error: Call to a member function rq() on a non-object in D:\Web\xampp\htdocs\mini\index.php on line 74 how to fix the rq() ? –  wow Apr 14 '10 at 13:32

get_menu() has to get reference to $db somehow. Probably the best and easiest way is to pass that reference as parameter:

function get_menu(MyDatabaseHandler $db) {
  // code proposed by Sarfraz here
}
share|improve this answer
    
+1 for passing in the $db –  thetaiko Apr 14 '10 at 13:35
    
Or you could call global $db –  Psytronic Apr 14 '10 at 13:42
    
@Psytronic: global is a pure evil and everyone who uses it should be... - global is the worst solution anyway... ;) –  Crozin Apr 14 '10 at 13:46
    
still a solution though :p but yes, it has it's many flaws –  Psytronic Apr 14 '10 at 14:31

now here you already have a mistake:

<a href="page.php?id=<?php echo $id; ?>" title="<?php echo $title; ?>"><?php echo $title; ?></a>

notice the = after id

you can't be too careful

share|improve this answer

First, separate the part where you're doing something, and the one used to display things.

Second, the alternative syntax looks better for the display part.

<?php
function get_menu(){
  $items = array();
  $select = 'SELECT * FROM pages';
  $query  = $db->rq($select);
  while ($page = $db->fetch($query)) { 
    $items[] = $page['id'];
  }
  return $items;
}

$menuItems = get_menu();
?>
<ul>
<?php foreach($menuItems as $item): ?>
  <li><a href="page.php?id=<?php echo $item['id']; ?>" title="<?php echo $item['title']; ?>"><?php echo $item['title']; ?></a></li>
<?php endforeach;?>
</ul>
share|improve this answer

The code Sarfraz posted is going to create invalid anchor tags (i.e. links). They'll also be missing names. Here is the shorter/faster version:

function get_menu($db)
{
    $result = $db->rq('SELECT id,title FROM pages');
    $menu = '';

    while ($page = $db->fetch($result))
    { 
        $id = $page['id'];
        $title = $page['title'];

        $menu .= "<a href='page.php?id={$id}&title={$title}'>{$title}</a>\n";
    }

    return $menu;
}

To use that do this:

echo get_menu($db);

The error you were getting was probably resulting from not passing the database connection to the function.

NOTE: It's generally not a good idea to show database ID numbers to the user in the interest of security; slugs are much better for identifying pages and are SEO friendly. Also, there shouldn't be any need to pass the page title to page.php because if you've got the ID you can get that when you need it from the database. Here's the code with this in mind:

function get_menu($db)
{
    $result = $db->rq('SELECT id,title FROM pages');
    $menu = '';

    while ($page = $db->fetch($result))
    { 
        $menu .= "<a href='page.php?id={$page['id']}'>{$page['title']}</a>\n";
    }

    return $menu;
}
share|improve this answer

just put function get_menu() { above your code and } below

share|improve this answer

or like this??

function get_menu( $title, $id ) {
    $menu = '';

    $menu .= '<a href="page.php?id' . $id . '" title="' . $title .'></a>'

    echo $menu;
}
------------------------
   $select = 'SELECT * FROM pages';
    $query  = $db->rq($select);
    while ($page = $db->fetch($query)) { 
        $id = $page['id'];
        $title = $page['title'];

        get_menu($title, $id );
    }
share|improve this answer
function getMenu()
{
    $select = 'SELECT FROM pages';
    $query  = $db->rq($select);
    $menu = new Array;

    while ($page = $db->fetch($query)) { 
       $menu[] = '<a href="page.php?id=' . $page['id'] . '&title=' . $page['title'] .'"></a>';
    }

    return $menu;
}
share|improve this answer

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.