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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?

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1
  • did any answer below help with your issue ?
    – N69S
    Feb 20, 2020 at 8:53

30 Answers 30

Reset to default
421

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

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9
  • 2
    <li{{ (Request::is('admin/dashboard') ? ' class="active"' : '') }}> i tried this, failed :x
    – TransformBinary
    Jan 5, 2014 at 7:58
  • 5
    In my case I was using a starting / for the URL, removing it would solve the issue
    – Joaquín L. Robles
    Jan 5, 2015 at 18:17
  • 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, 2016 at 20:55
  • 3
    url() now returns a builder instance. must use url()->current()
    – Jeff Puckett
    Mar 14, 2017 at 18:45
  • 1
    Although I upvoted this a long time ago, today I was having trouble with it on Laravel 5.7 and eventually got this to work instead: @if (Request::path() != 'login'). Notice the lack of slash before "login", too.
    – Ryan
    Feb 19, 2019 at 20:58
112

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
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6
  • 49
    FYI, Route::is('testing') is the same as Route::current()->getName() == 'testing'.
    – Hkan
    May 21, 2015 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, 2016 at 10:01
  • 1
    @Naveen nope, Route::is() checks for the route name, not the path.
    – Hkan
    Apr 9, 2016 at 10:35
  • 1
    also shorthand Route::currentRouteName()
    – Jeff Puckett
    Mar 14, 2017 at 18:43
  • @Hkan Yeah, but that wouldn't work when working with parameters in your URL, for example, tokens ...
    – Pathros
    Aug 20, 2018 at 17:52
76

Maybe you should try this:

<li class="{{ Request::is('admin/dashboard') ? 'active' : '' }}">Dashboard</li>
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0
67

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
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4
  • 4
    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, 2017 at 16:23
  • ``` @if(url()->current() == '/admin/search-result' ``` I used this code but it doesn't work?
    – Mahdi Safari
    Aug 15, 2020 at 12:49
  • @MahdiSafari in that case just write @if(Request::is('admin/search-result'))
    – Sagar Naliyapara
    Aug 19, 2020 at 3:29
  • This worked very nicely. Thanks
    – Ken
    Dec 7, 2021 at 16:38
53

I'd do it this way:

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

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

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5
  • How to tell if the current dir is home? I mean, public/. Ahh, i got it, i just type =='public'
    – Pathros
    Feb 5, 2015 at 18:52
  • 1
    If home dir is '/' in route.php, you just write == '/')
    – Jucaman
    Feb 17, 2015 at 5:22
  • How would you make it work with the parameters as well? Not only the route name.
    – Pathros
    Feb 17, 2017 at 2:01
  • You can concatenate parameters in many ways after route name, depending on how you configured your routes.
    – Jucaman
    Mar 22, 2017 at 21:37
  • I do it like this: Request::url() - than you get the complete URL
    – Derk Jan Speelman
    Jan 15, 2018 at 18:41
27

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>
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3
  • 1
    Thank you, I knew the code but Google got me here in 5 seconds haha.
    – user4051844
    Apr 12, 2017 at 22:24
  • Also this same working with laravel 4.2 and it's working good. Thank you
    – Vipertecpro
    Feb 19, 2018 at 6:49
  • Also working on Laravel 5.6, thanks... this just saved me from making navs for each view :D
    – NaturalDevCR
    Jun 3, 2018 at 7:25
20

A little old but this works in L5:

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

This captures both /mycategory and /mycategory/slug

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1
  • 1
    I'm using {{ Request::is('clientes/*') ? 'active' : ''}}
    – Alex Angelico
    May 31, 2020 at 21:16
18

Laravel 5.4

Global functions

@if (request()->is('/'))
    <p>Is homepage</p>
@endif
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2
  • 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, 2017 at 8:18
  • I used request()->routeIs('...')
    – Lachezar Todorov
    Jan 27, 2020 at 14:56
17

You can use this code to get current URL:

echo url()->current();

echo url()->full();

I get this from Laravel documents.

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15

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.

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15

You will get the url by using the below code.

For Example your URL like https//www.example.com/testurl?test

echo url()->current();
Result : https//www.example.com/testurl

echo url()->full();
Result: https//www.example.com/testurl?test
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14

For me this works best:

class="{{url()->current() == route('dashboard') ? 'bg-gray-900 text-white' : 'text-gray-300'}}"
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12

A simple navbar with bootstrap can be done as:

    <li class="{{ Request::is('user/profile')? 'active': '' }}">
        <a href="{{ url('user/profile') }}">Profile </a>
    </li>
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10

The simplest way is 

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

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

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9

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

But here is a complex way:

URL::to('/').'/'.Route::getCurrentRoute()->getPath();
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9

There are two ways to do that:

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

or

<li @if(Request::is('your_url'))class="active"@endif>
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9

You should try this:

<b class="{{ Request::is('admin/login') ? 'active' : '' }}">Login Account Details</b>
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8

For named routes, I use:

@if(url()->current() == route('routeName')) class="current" @endif
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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>
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6

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.

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6 
class="nav-link {{ \Route::current()->getName() == 'panel' ? 'active' : ''}}"
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0
6

In Blade file

@if (Request::is('companies'))
   Companies name 
@endif
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4

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

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3

1. Check if URL = X

Simply - you need to check if URL is exactly like X and then you show something. In Controller:

if (request()->is('companies')) {
  // show companies menu or something
}

In Blade file - almost identical:

@if (request()->is('companies'))
  Companies menu
@endif

2. Check if URL contains X

A little more complicated example - method Request::is() allows a pattern parameter, like this:

if (request()->is('companies/*')) {
  // will match URL /companies/999 or /companies/create
}

3. Check route by its name

As you probably know, every route can be assigned to a name, in routes/web.php file it looks something like this:

Route::get('/companies', function () {
  return view('companies');
})->name('comp');

So how can you check if current route is 'comp'? Relatively easy:

if (\Route::current()->getName() == 'comp') {
  // We are on a correct route!
}

4. Check by routes names

If you are using routes by names, you can check if request matches routes name.

if (request()->routeIs('companies.*')) {
  // will match routes which name starts with companies.
}

Or

request()->route()->named('profile')

Will match route named profile. So these are four ways to check current URL or route.

source

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1
  • The question is about Laravel 4, and this is based on a tutorial for Laravel 9. Request::is('companies') is how it's done in Laravel 4.
    – Joundill
    Dec 14, 2022 at 2:37
2

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
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1
  • Thank you for this code snippet, which might provide some limited, immediate help. A proper explanation would greatly improve its long-term value by showing why this is a good solution to the problem, and would make it more useful to future readers with other, similar questions. Please edit your answer to add some explanation, including the assumptions you've made.
    – jhpratt
    Sep 28, 2018 at 17:30
2

For Laravel 5.5 +

<a class="{{ Request::segment(1) == 'activities'  ? 'is-active' : ''}}" href="#">
                              <span class="icon">
                                <i class="fas fa-list-ol"></i>
                              </span>
                            Activities
                        </a>
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1 
@if(request()->path()=='/path/another_path/*')
@endif
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1
  • 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, 2018 at 9:29
1

Try This:

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

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1

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

 Request::url()
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0

Try this way : 

<a href="{{ URL::to('/registration') }}">registration </a>
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1
  • Add some explanation to your answer
    – Pankaj Makwana
    Apr 12, 2018 at 14:10

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