248

I am using Laravel 4. I would like to access the current URL inside an @if condition in a view using the Laravel's Blade templating engine but I don't know how to do it.

I know that it can be done using something like <?php echo URL::current(); ?> but It's not possible inside an @if blade statement.

Any suggestions?

  • did any answer below help with your issue ? – N69S yesterday

26 Answers 26

337

You can use: Request::url() to obtain the current URL, here is an example:

@if(Request::url() === 'your url here')
    // code
@endif

Laravel offers a method to find out, whether the URL matches a pattern or not

if (Request::is('admin/*'))
{
    // code
}

Check the related documentation to obtain different request information: http://laravel.com/docs/requests#request-information

  • 2
    <li{{ (Request::is('admin/dashboard') ? ' class="active"' : '') }}> i tried this, failed :x – TransformBinary Jan 5 '14 at 7:58
  • 4
    In my case I was using a starting / for the URL, removing it would solve the issue – Joaquín L. Robles Jan 5 '15 at 18:17
  • @Andreyco what if I need to put a banner on all the pages except the home page try this not working @if(Request::url()!=='/') <div class="bannerImage">{{ HTML::image('images/fullimage3.jpg') }}</div> @endif – Yousef Altaf Jun 11 '16 at 16:04
  • 4
    I use the next format for it: <li{!! (Request::url() == url('/')) ? ' class="active"' : '' !!}> , because the format with {{ some_code }} use string encoding. – Viktor Oct 8 '16 at 20:55
  • 3
    url() now returns a builder instance. must use url()->current() – Jeff Puckett Mar 14 '17 at 18:45
85

You can also use Route::current()->getName() to check your route name.

Example: routes.php

Route::get('test', ['as'=>'testing', function() {
    return View::make('test');
}]);

View:

@if(Route::current()->getName() == 'testing')
    Hello This is testing
@endif
  • 33
    FYI, Route::is('testing') is the same as Route::current()->getName() == 'testing'. – Hkan May 21 '15 at 17:31
  • @Hkan No both are different, Route::is('testing') ->> testing it will not work Route::is('test') ->> test it will work Route::current()->getName() == 'testing' alias and url are differents – Naveen Singh raghuvanshi Apr 9 '16 at 10:01
  • 1
    @Naveen nope, Route::is() checks for the route name, not the path. – Hkan Apr 9 '16 at 10:35
  • also shorthand Route::currentRouteName() – Jeff Puckett Mar 14 '17 at 18:43
  • @Hkan Yeah, but that wouldn't work when working with parameters in your URL, for example, tokens ... – Pathros Aug 20 '18 at 17:52
64

Maybe you should try this:

<li class="{{ Request::is('admin/dashboard') ? 'active' : '' }}">Dashboard</li>
47

I'd do it this way:

@if (Request::path() == '/view')
    // code
@endif

where '/view' is view name in routes.php.

  • How to tell if the current dir is home? I mean, public/. Ahh, i got it, i just type =='public' – Pathros Feb 5 '15 at 18:52
  • 1
    If home dir is '/' in route.php, you just write == '/') – Jucaman Feb 17 '15 at 5:22
  • How would you make it work with the parameters as well? Not only the route name. – Pathros Feb 17 '17 at 2:01
  • You can concatenate parameters in many ways after route name, depending on how you configured your routes. – Jucaman Mar 22 '17 at 21:37
  • I do it like this: Request::url() - than you get the complete URL – Derk Jan Speelman Jan 15 '18 at 18:41
31

To get current url in blade view you can use following,

<a href="{{url()->current()}}">Current Url</a>

So as you can compare using following code,

@if (url()->current() == 'you url')
    //stuff you want to perform
@endif
  • 2
    If you need to get the query string in the blade as well then you can use request()->getQueryString() which is very helpful in conjunction with url()->current() as that leaves off the query string. – Spencer O'Reilly May 12 '17 at 16:23
22

This is helped to me for bootstrap active nav class in Laravel 5.2:

<li class="{{ Request::path() == '/' ? 'active' : '' }}"><a href="/">Home</a></li>
<li class="{{ Request::path() == 'about' ? 'active' : '' }}"><a href="/about">About</a></li>
  • 1
    Thank you, I knew the code but Google got me here in 5 seconds haha. – user4051844 Apr 12 '17 at 22:24
  • Also this same working with laravel 4.2 and it's working good. Thank you – Vipertecpro Feb 19 '18 at 6:49
  • Also working on Laravel 5.6, thanks... this just saved me from making navs for each view :D – LaravDev Jun 3 '18 at 7:25
17

A little old but this works in L5:

<li class="{{ Request::is('mycategory/', '*') ? 'active' : ''}}">

This captures both /mycategory and /mycategory/slug

14

Laravel 5.4

Global functions

@if (request()->is('/'))
    <p>Is homepage</p>
@endif
  • This does not always work if you're dealing with query string like so domain.com/?page_id=1, domain.com/?page_id=2, as those URLs also equal as "/" – Ryan S Jul 16 '17 at 8:18
  • I used request()->routeIs('...') – Lachezar Todorov Jan 27 at 14:56
13

I personally wouldn't try grabbing it inside of the view. I'm not amazing at Laravel, but I would imagine you'd need to send your route to a controller, and then within the controller, pass the variable (via an array) into your view, using something like $url = Request::url();.

One way of doing it anyway.

EDIT: Actually look at the method above, probably a better way.

10

A simple navbar with bootstrap can be done as:

    <li class="{{ Request::is('user/profile')? 'active': '' }}">
        <a href="{{ url('user/profile') }}">Profile </a>
    </li>
8

The simplest way is to use: Request::url();

But here is a complex way:

URL::to('/').'/'.Route::getCurrentRoute()->getPath();
8

There are two ways to do that:

<li{!!(Request::is('your_url')) ? ' class="active"' : '' !!}>

or

<li @if(Request::is('your_url'))class="active"@endif>
7

Set this code to applied automatically for each <li> + you need to using HTMLBuilder library in your Laravel project

<script type="text/javascript">
    $(document).ready(function(){
        $('.list-group a[href="/{{Request::path()}}"]').addClass('active');
    });
</script>
7

You should try this:

<b class="{{ Request::is('admin/login') ? 'active' : '' }}">Login Account Details</b>
6

You can use this code to get current URL:

echo url()->current();

echo url()->full();

I get this from Laravel documents.

5

Another way to write if and else in Laravel using path

 <p class="@if(Request::is('path/anotherPath/*')) className @else anotherClassName @endif" >
 </p>

Hope it helps

4

instead of using the URL::path() to check your current path location, you may want to consider the Route::currentRouteName() so just in case you update your path, you don't need to explore all your pages to update the path name again.

2
@if(request()->path()=='/path/another_path/*')
@endif
  • While this code may answer the question, providing additional context regarding why and/or how this code answers the question improves its long-term value. – rollstuhlfahrer Feb 22 '18 at 9:29
2

For named routes, I use:

@if(url()->current() == route('routeName')) class="current" @endif
1
class="nav-link {{ \Route::current()->getName() == 'panel' ? 'active' : ''}}"
1

Try this:

@if(collect(explode('/',\Illuminate\Http\Request::capture()->url()))->last() === 'yourURL')
    <li class="pull-right"><a class="intermitente"><i class="glyphicon glyphicon-alert"></i></a></li>
@endif
0

Try This:

<li class="{{ Request::is('Dashboard') ? 'active' : '' }}">
    <a href="{{ url('/Dashboard') }}">
	<i class="fa fa-dashboard"></i> <span>Dashboard</span>
    </a>
</li>

0

There are many way to achieve, one from them I use always

 Request::url()
0

The simplest way is

<li class="{{ Request::is('contacts/*') ? 'active' : '' }}">Dashboard</li>

This colud capture the contacts/, contacts/create, contacts/edit...

0

In Blade file

@if (Request::is('companies'))
   Companies name 
@endif
-1

Try this way :

<a href="{{ URL::to('/registration') }}">registration </a>
  • Add some explanation to your answer – Pankaj Makwana Apr 12 '18 at 14:10

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