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I'm working on a Joomla site, and I need the front page to look slightly different from the rest of the pages, but not enough to warrant the use of two themes (it's a pain to have to update two stylesheets and two sets of images every time I want to make a small change).

My thoughts are to throw in a little test in the index.php of the template: if we're at the homepage, serve X, otherwise, serve Y. However, I'm not entirely sure how to test this. I can't just use the URL because url.com/ and url.com/index.php and url.com/index.php? etc etc are all valid.

Does anyone know of a way to do what I'm trying to do? Like a $_JOOMLA['page'] variable or something convenient like that?

Thanks! --Mala

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7 Answers 7

up vote 8 down vote accepted
if(JRequest::getVar('view') == "frontpage" ) {
    //You are in!
}
else {
    //You are out!
}
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Thank you! This is exactly what I was looking for. –  Mala Nov 18 '09 at 20:35
2  
This might break if you install another component that has a view named "frontpage". To make sure you're looking at the content component, I would write the 'if' statement this way: if(JRequest::getVar('view') == 'frontpage' && JRequest::getVar('option') == 'com_content') –  jlleblanc Nov 18 '09 at 21:52
1  
It works if you're using the com_content frontpage view on the front page, and not another component. –  manduino Nov 19 '09 at 7:31
    
@Soufiane-Hassou Perhaps I'm missing something. This returns false for me. Is there some prerequisite for this to work? BTW, this is for my own template that I've built by hand. Thanks –  itsols Apr 13 '13 at 4:16
    
Your template has nothing to do with what page is considered the "home" page. The home page in Joomla is determined by the menu item that is flagged as the default page. The answer below by happyproff is what you want to use as it determines the home page by checking if the page you are on matches the menu item flagged as the default page. –  Brent Friar Jun 3 '13 at 13:44

To be shure that client is on homepage, you should test "is current page (Itemid) choosen as default menu item" like this code do (for Joomla 1.6, 1.7 and 2.5):

<?php
$menu = JFactory::getApplication()->getMenu();
if ($menu->getActive() == $menu->getDefault()) {
    echo 'This is the front page';
}
?>

To find code for Joomla 1.5, look to http://docs.joomla.org/How_to_determine_if_the_user_is_viewing_the_front_page

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for 3.0 this did not work –  themis Jul 15 at 11:09

for Joomla 1.6 and 1.7 it would be as follows:

if(JRequest::getVar('view') == "featured" ) {
    //You are in!
}
else {
    //You are out!
}
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This works for me, i had trouble using any other way

$app = JFactory::getApplication();
if ($app->getMenu()->getActive()->home) {
    $homepage=true;
}
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I'm stumped. I've built my own little template. Nothing much. But to check for the home page, only your method worked (not the one by Soufiane Hassou. Would you know why? Thanks! –  itsols Apr 13 '13 at 4:20
    
I believe that Soufiane Hassou's way works for joomla 1.5, mine is tested on 2.5.. my way prob wont work in joomla 1.5. i'd have to test it to see. The way I provided also works with multiple languages. Joomla 1.5 isnt made in the same way for multiples languages. –  StiGMaT Apr 30 '13 at 14:07
    
for joomla 3 this worked in a plugin –  themis Jul 15 at 11:09

For Joomla .6, nothing else than the this worked for me:

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also you could define every page:

<?php 
$active = JFactory::getApplication()->getMenu()->getActive();
?>
 <body class="<?php echo $active->alias; ?> ">
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use this one

<?php
$app = JFactory::getApplication();
$menu = $app->getMenu();
$lang = JFactory::getLanguage();
if ($menu->getActive() == $menu->getDefault($lang->getTag())) {
        echo 'This is the front page';
}
else {
        echo 'Accueil';
}
?>
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