Link to the object in the letter - django

I have url:path('<int:id>',views.article_detail,name="detail")
It works on the site.
<p>{{article.title}} </p>
But if I try to give a link in the email, for example
<p>article </p>
In link I heve only
http://articles/36
Link like
<p>artickle! </p>
not work.


You have two ways to accomplish what you need.
If it’s just one time work then I suggest something quick:
On your view import the settings and send to the template the ‘settings.BASE_URL’ value
from django.conf import settings
base_url = settings.BASE_URL
you can pass the value in your context to create the url as you already tried to do.
Another option is to create a tag to get the base url from the setting and generate the complete url base on the given parameter
from django import template
from django.conf import settings
base_url = settings.BASE_URL
register = template.Library()
#register.simple_tag
def add_domain(partial_url):
return base_url + partial_url
In your template just use
{% add_domain url_generated %}
This is just an example, you could define a more complex tag to generate the url included the domain with a flag parameter.

Related

Render template tags when passing as variable in django

I want to pass some html as a string in a variable to a template, which also includes a link: <a href= {%url: 'app:page'%}> If I pass the variable though, the template tags are not invoked. If I use {{variable | safe}} to escape the restrictions, still it is not being called. I think I have a major error in my thinking, or is it just not possible to do this? The idea is to ultimately load those strings from the database to show users customized webpage elements.
view.py:
def custom(request, slug):
link = """<li>Link</li>"""
return render(request, 'basics/custom.html', {'link': link})
and in the webpage custom.html:
{{link | safe }}

You should use format_html to build a HTML fragment for use in your templates, and reverse for resolving a url
from django.urls import reverse
from django.utils.html import format_html
def custom(request, slug):
link = format_html(
'<li>Link</li>',
reverse('app:page'),
)
return render(request, 'basics/custom.html', {'link': link})

How do I print a url path in an `a` tag using the url's name attribute?

In my urls.py I have url("^login-register/$", views.login_register, name="login_register"),.
In a template, I can do {% url "login_register" %}. How do I print that value in views.py?

In your views.py file, you can use the reverse method.
If you need to use something similar to the url template tag in your code, Django provides the following function:
reverse(viewname, urlconf=None, args=None, kwargs=None, current_app=None)
viewname can be a URL pattern name or the callable view object.
You can use this in any python module, including views.py:
from django.urls import reverse
def print_login_register_url():
url = reverse('login_register')
print(url)

Django: Using named urls in #login_required decorator

Most of views in my django app use #login_required decorator. Also, I have three different login urls. Views have corresponding login urls hardcoded into their #login_required decorators.
#login_required('myapp/logintype1'):
def usertype1_home(request):
# Further dode
# ...
#login_required('myapp/logintype2'):
def usertype2_home(request):
# Further code
# ...
Since the number of such views is quite large, whenever I change login url in urls.py I have to change login-url in all the decorators. I want to use something like {% urls 'urlpatter1' %} and {% urls 'urlpatter2' %}. Can I use reverse?
How I can use named url patterns instead of hard coding url patterns in #login_required decorator?

Somewhere in the top of views.py after import ... statements add something like this
login_type1 = reverse_lazy('urlpatter1') # or LOGIN_TYPE1
login_type2 = reverse_lazy('urlpatter2') # or LOGIN_TYPE2
And use these variables later
#login_required(login_url=login_type1)
...
UPDATE: reverse was replaced with reverse_lazy as #Alasdair suggested. See docs (2nd point).

extending urlize in django

the urlize function from django.utils.html converts urls to clickable links. My problem is that I want to append a target="_blank" into the "< href..>", so that I open this link in a new tab. Is there any way that I can extend the urlize function to receive an extra argument? or should I make a custom filter using regexes to do this stuff? Is this efficient?

You can add a custom filter, as described here:
I used this one:
# <app name>/templatetags/url_target_blank.py
from django import template
register = template.Library()
def url_target_blank(text):
return text.replace('<a ', '<a target="_blank" ')
url_target_blank = register.filter(url_target_blank, is_safe = True)
Example of usage:
{% load url_target_blank %}
...
{{ post_body|urlize|url_target_blank }}
Works fine for me :)

Shortest version, that I use in my projects. Create a new filter, that extends the default filter of Django:
from django import template
from django.template.defaultfilters import stringfilter
from django.utils.safestring import mark_safe
from django.utils.html import urlize as urlize_impl
register = template.Library()
#register.filter(is_safe=True, needs_autoescape=True)
#stringfilter
def urlize_target_blank(value, limit, autoescape=None):
return mark_safe(urlize_impl(value, trim_url_limit=int(limit), nofollow=True, autoescape=autoescape).replace('<a', '<a target="_blank"'))

There is no capability in the built-in urlize() to do this. Due to Django's license you can copy the code of django.utils.html.urlize and django.template.defaultfilters.urlize into your project or into a separate app and use the new definitions instead.

You shouldn't add target="_blank" to your links, it's deprecated. Users should decide themselves if where they want to open a link.
You can still open the link with unobtrusive JavaScript like so (using jQuery):
$('.container a').click(function(e){e.preventDefault();window.open(this.href);});
That said, you could write your own filter, but you'd have to copy a lot of code from django.utils.html.urlize, not really DRY.

How can I get the full/absolute URL (with domain) in Django?

How can I get the full/absolute URL (e.g. https://example.com/some/path) in Django without the Sites module? That's just silly... I shouldn't need to query my DB to snag the URL!
I want to use it with reverse().

Use handy request.build_absolute_uri() method on request, pass it the relative url and it'll give you full one.
By default, the absolute URL for request.get_full_path() is returned, but you can pass it a relative URL as the first argument to convert it to an absolute URL.
>>> request.build_absolute_uri()
'https://example.com/music/bands/the_beatles/?print=true'
>>> request.build_absolute_uri('/bands/?print=true')
'https://example.com/bands/?print=true'

If you want to use it with reverse() you can do this : request.build_absolute_uri(reverse('view_name', args=(obj.pk, )))

If you can't get access to request then you can't use get_current_site(request) as recommended in some solutions here. You can use a combination of the native Sites framework and get_absolute_url instead. Set up at least one Site in the admin, make sure your model has a get_absolute_url() method, then:
>>> from django.contrib.sites.models import Site
>>> domain = Site.objects.get_current().domain
>>> obj = MyModel.objects.get(id=3)
>>> path = obj.get_absolute_url()
>>> url = 'http://{domain}{path}'.format(domain=domain, path=path)
>>> print(url)
'http://example.com/mymodel/objects/3/'
https://docs.djangoproject.com/en/dev/ref/contrib/sites/#getting-the-current-domain-for-full-urls

You can also use get_current_site as part of the sites app (from django.contrib.sites.models import get_current_site). It takes a request object, and defaults to the site object you have configured with SITE_ID in settings.py if request is None. Read more in documentation for using the sites framework
e.g.
from django.contrib.sites.shortcuts import get_current_site
request = None
full_url = ''.join(['http://', get_current_site(request).domain, obj.get_absolute_url()])
It isn't as compact/neat as request.build_absolute_url(), but it is usable when request objects are unavailable, and you have a default site url.

If you don't want to hit the database, you could do it with a setting. Then, use a context processor to add it to every template:
# settings.py (Django < 1.9)
...
BASE_URL = 'http://example.com'
TEMPLATE_CONTEXT_PROCESSORS = (
...
'myapp.context_processors.extra_context',
)
# settings.py (Django >= 1.9)
TEMPLATES = [
{
'BACKEND': 'django.template.backends.django.DjangoTemplates',
'DIRS': [],
'APP_DIRS': True,
'OPTIONS': {
'context_processors': [
'django.template.context_processors.debug',
'django.template.context_processors.request',
'django.contrib.auth.context_processors.auth',
'django.contrib.messages.context_processors.messages',
# Additional
'myapp.context_processors.extra_context',
],
},
},
]
# myapp/context_processors.py
from django.conf import settings
def extra_context(request):
return {'base_url': settings.BASE_URL}
# my_template.html
<p>Base url is {{ base_url }}.</p>

In your view, just do this:
base_url = "{0}://{1}{2}".format(request.scheme, request.get_host(), request.path)

This worked for me in my template:
{{ request.scheme }}://{{ request.META.HTTP_HOST }}{% url 'equipos:marca_filter' %}
I needed the full url to pass it to a js fetch function.
I hope this help you.

django-fullurl
If you're trying to do this in a Django template, I've released a tiny PyPI package django-fullurl to let you replace url and static template tags with fullurl and fullstatic, like this:
{% load fullurl %}
Absolute URL is: {% fullurl "foo:bar" %}
Another absolute URL is: {% fullstatic "kitten.jpg" %}
These badges should hopefully stay up-to-date automatically:
In a view, you can of course use request.build_absolute_uri instead.

Yet another way. You could use build_absolute_uri() in your view.py and pass it to the template.
view.py
def index(request):
baseurl = request.build_absolute_uri()
return render_to_response('your-template.html', { 'baseurl': baseurl })
your-template.html
{{ baseurl }}

Examine Request.META dictionary that comes in. I think it has server name and server port.

To create a complete link to another page from a template, you can use this:
{{ request.META.HTTP_HOST }}{% url 'views.my_view' my_arg %}
request.META.HTTP_HOST gives the host name, and url gives the relative name. The template engine then concatenates them into a complete url.

Try the following code:
{{ request.scheme }}://{{ request.META.HTTP_HOST }}

If you're using django REST framework, you can use the reverse function from rest_framework.reverse. This has the same behavior as django.core.urlresolvers.reverse, except that it uses a request parameter to build a full URL.
from rest_framework.reverse import reverse
# returns the full url
url = reverse('view_name', args=(obj.pk,), request=request)
# returns only the relative url
url = reverse('view_name', args=(obj.pk,))
Edited to mention availability only in REST framework

I know this is an old question. But I think people still run into this a lot.
There are a couple of libraries out there that supplement the default Django functionality. I have tried a few. I like the following library when reverse referencing absolute urls:
https://github.com/fusionbox/django-absoluteuri
Another one I like because you can easily put together a domain, protocol and path is:
https://github.com/RRMoelker/django-full-url
This library allows you to simply write what you want in your template, e.g.:
{{url_parts.domain}}

If anyone is interested in fetching the absolute reverse url with parameters in a template , the cleanest way is to create your own absolute version of the {% url %} template tag by extending and using existing default code.
Here is my code:
from django import template
from django.template.defaulttags import URLNode, url
register = template.Library()
class AbsURLNode(URLNode):
def __init__(self, view_name, args, kwargs, asvar):
super().__init__(view_name, args, kwargs, asvar)
def render(self, context):
url = super().render(context)
request = context['request']
return request.build_absolute_uri(url)
#register.tag
def abs_url(parser, token):
urlNode = url(parser, token)
return AbsURLNode( urlNode.view_name, urlNode.args, urlNode.kwargs, urlNode.asvar )
Usage in templates:
{% load wherever_your_stored_this_tag_file %}
{% abs_url 'view_name' parameter %}
will render(example):
http://example.com/view_name/parameter/
instead of
/view_name/parameter/

I got it:
wsgiref.util.request_uri(request.META)
Get the full uri with schema, host, port path and query.

You can either pass request reverse('view-name', request=request) or enclose reverse() with build_absolute_uri request.build_absolute_uri(reverse('view-name'))

Not for absolute url but I was looking just to get host. If you want to get host in your view.py you can do
def my_view(request):
host = f"{ request.scheme }://{ request.META.get('HTTP_HOST') }"

As mentioned in other answers, request.build_absolute_uri() is perfect if you have access to request, and sites framework is great as long as different URLs point to different databases.
However, my use case was slightly different. My staging server and the production server access the same database, but get_current_site both returned the first site in the database. To resolve this, you have to use some kind of environment variable. You can either use 1) an environment variable (something like os.environ.get('SITE_URL', 'localhost:8000')) or 2) different SITE_IDs for different servers AND different settings.py.
Hopefully someone will find this useful!

While working on a project I came to know to get the full/absolute URL in Django.
If your URL looks like this in the address bar:
https://stackoverflow.com/questions/2345708
And if you want to show the above URL to your template.
{{ request.path }} #Without GET parameters.
{{ request.get_full_path }} #with GET parameters
For the above two codes, this will print in your template will be
questions/2345708
and another way to get a full URL is:
{{request.build_absolute_uri}}
this will print in your template will be:
https://stackoverflow.com/questions/2345708

There is also ABSOLUTE_URL_OVERRIDES available as a setting
https://docs.djangoproject.com/en/2.1/ref/settings/#absolute-url-overrides
But that overrides get_absolute_url(), which may not be desirable.
Instead of installing sites framework just for this or doing some of the other stuff mentioned here that relies on request object, I think the better solution is to place this in models.py
Define BASE_URL in settings.py, then import it into models.py and make an abstract class (or add it to one you're already using) that defines get_truly_absolute_url(). It could be as simple as:
def get_truly_absolute_url(self):
return BASE_URL + self.get_absolute_url()
Subclass it and now you can use it everywhere.

I came across this thread because I was looking to build an absolute URI for a success page. request.build_absolute_uri() gave me a URI for my current view but to get the URI for my success view I used the following....
request.build_absolute_uri(reverse('success_view_name'))

<div class='col-12 col-md-6'>
<p class='lead'>Login</p>
{% include 'accounts/snippets/form.html' with form=login_form next_url=request.build_absolute_uri %}
</div>
Here for example am saying load the form and tell the form that the next URL is the current URL which this code rendred from

I use this code :
request.build_absolute_uri('/')[:-1]
response :
https://yourdomain.com

request.get_host() will give you the domain.

request.get_host()
Use this for request object for APIView in django

class WalletViewSet(mixins.ListModelMixin, GenericViewSet):
serializer_class = WalletSerializers
pagination_class = CustomPaginationInvestment
def get_queryset(self):
######################################################
print(self.request.build_absolute_uri())
#####################################################
wallet, created = Wallet.objects.get_or_create(owner=self.request.user)
return Wallet.objects.filter(id=wallet.id)
You get output like this
http://localhost:8000/v1/wallet
HTTP GET /v1/wallet 200 [0.03, 127.0.0.1:41608]

You can also use:
import socket
socket.gethostname()
This is working fine for me,
I'm not entirely sure how it works. I believe this is a bit more low level and will return your server hostname, which might be different than the hostname used by your user to get to your page.

You can try "request.get_full_path()"