370

How do I get user's IP in Django?

I have a view like this:

# Create your views
from django.contrib.gis.utils import GeoIP
from django.template import  RequestContext
from django.shortcuts import render_to_response

def home(request):
  g = GeoIP()
  client_ip = request.META['REMOTE_ADDR']
  lat,long = g.lat_lon(client_ip)
  return render_to_response('home_page_tmp.html',locals())

But I get this error:

KeyError at /mypage/
    'REMOTE_ADDR'
    Request Method: GET
    Request URL:    http://mywebsite.example/mypage/
    Django Version: 1.2.4
    Exception Type: KeyError
    Exception Value:
    'REMOTE_ADDR'
    Exception Location: /mysite/homepage/views.py in home, line 9
    Python Executable:  /usr/bin/python
    Python Version: 2.6.6
    Python Path:    ['/mysite', '/usr/local/lib/python2.6/dist-packages/flup-1.0.2-py2.6.egg', '/usr/lib/python2.6', '/usr/lib/python2.6/plat-linux2', '/usr/lib/python2.6/lib-tk', '/usr/lib/python2.6/lib-old', '/usr/lib/python2.6/lib-dynload', '/usr/local/lib/python2.6/dist-packages', '/usr/lib/python2.6/dist-packages', '/usr/lib/pymodules/python2.6']
    Server time:    Sun, 2 Jan 2011 20:42:50 -0600
3
  • 2
    Try dumping request.META.keys() Jan 3, 2011 at 3:07
  • 3
    ['HTTP_COOKIE', 'SCRIPT_NAME', 'REQUEST_METHOD', 'PATH_INFO', 'SERVER_PROTOCOL', 'QUERY_STRING', 'CONTENT_LENGTH', 'HTTP_ACCEPT_CHARSET', 'HTTP_USER_AGENT', 'HTTP_CONNECTION', 'SERVER_NAME', 'wsgi.url_scheme', 'SERVER_PORT', 'wsgi.input', 'HTTP_HOST', 'wsgi.multithread', 'HTTP_CACHE_CONTROL', 'HTTP_ACCEPT', 'wsgi.version', 'wsgi.run_once', 'wsgi.errors', 'wsgi.multiprocess', 'HTTP_ACCEPT_LANGUAGE', 'CONTENT_TYPE', 'CSRF_COOKIE', 'HTTP_ACCEPT_ENCODING']
    – avatar
    Jan 3, 2011 at 14:55
  • 2
    Thank you for this great question. My fastcgi was not passing the REMOTE_ADDR meta key. I added the line below in the nginx.conf and fixed the problem: fastcgi_param REMOTE_ADDR $remote_addr;
    – avatar
    Jan 3, 2011 at 15:29

14 Answers 14

557
def get_client_ip(request):
    x_forwarded_for = request.META.get('HTTP_X_FORWARDED_FOR')
    if x_forwarded_for:
        ip = x_forwarded_for.split(',')[0]
    else:
        ip = request.META.get('REMOTE_ADDR')
    return ip

Make sure you have reverse proxy (if any) configured correctly (e.g. mod_rpaf installed for Apache).

Note: the above uses the first item in X-Forwarded-For, but you might want to use the last item (e.g., in the case of Heroku: Get client's real IP address on Heroku)

And then just pass the request as argument to it;

get_client_ip(request)

Django documentation for HttpRequest.META

22
261

You can use django-ipware which supports Python 2 & 3 and handles IPv4 & IPv6.

Install:

pip install django-ipware

Simple Usage:

# In a view or a middleware where the `request` object is available

from ipware import get_client_ip
ip, is_routable = get_client_ip(request)
if ip is None:
    # Unable to get the client's IP address
else:
    # We got the client's IP address
    if is_routable:
        # The client's IP address is publicly routable on the Internet
    else:
        # The client's IP address is private

# Order of precedence is (Public, Private, Loopback, None)

Advanced Usage:

  • Custom Header - Custom request header for ipware to look at:

    i, r = get_client_ip(request, request_header_order=['X_FORWARDED_FOR'])
    i, r = get_client_ip(request, request_header_order=['X_FORWARDED_FOR', 'REMOTE_ADDR'])
    
  • Proxy Count - Django server is behind a fixed number of proxies:

    i, r = get_client_ip(request, proxy_count=1)
    
  • Trusted Proxies - Django server is behind one or more known & trusted proxies:

    i, r = get_client_ip(request, proxy_trusted_ips=('177.2.2.2'))
    
    # For multiple proxies, simply add them to the list
    i, r = get_client_ip(request, proxy_trusted_ips=('177.2.2.2', '177.3.3.3'))
    
    # For proxies with fixed sub-domain and dynamic IP addresses, use partial pattern
    i, r = get_client_ip(request, proxy_trusted_ips=('177.2.', '177.3.'))
    

Note: read this notice.

10
  • 23
    Take a look at its source code. It handles all the complications identified by the other answers here. Jun 9, 2014 at 18:20
  • 5
    Thx @Heliodor -- Yep, I have made the module very simple for an average use-case and very flexible for a complex use-case. Minimally, you'd want to look at its github page before rolling your own.
    – Avid Coder
    Jul 26, 2014 at 15:59
  • 3
    NOTE that django-ipware's settings are not secure by default! Anyone can pass one of the other variables and your site will log that IP. Always set IPWARE_META_PRECEDENCE_LIST to the variable that you use, or use an alternative like pypi.python.org/pypi/WsgiUnproxy
    – vdboor
    Nov 30, 2015 at 11:28
  • @vdboor Could you elaborate a little? I can't find IPWARE_META_PRECEDENCE_LIST in the repo.
    – Monolith
    Apr 9, 2016 at 7:12
  • 3
    @ThaJay Please note that as of 2.0.0, you should use get_client_ip(). get_real_ip is deprecated and will be removed in 3.0.
    – Avid Coder
    Oct 16, 2019 at 17:26
92

Alexander's answer is great, but lacks the handling of proxies that sometimes return multiple IP's in the HTTP_X_FORWARDED_FOR header.

The real IP is usually at the end of the list, as explained here: http://en.wikipedia.org/wiki/X-Forwarded-For

The solution is a simple modification of Alexander's code:

def get_client_ip(request):
    x_forwarded_for = request.META.get('HTTP_X_FORWARDED_FOR')
    if x_forwarded_for:
        ip = x_forwarded_for.split(',')[-1].strip()
    else:
        ip = request.META.get('REMOTE_ADDR')
    return ip
7
  • 11
    Yup, the ip is at the beginning of the list. This here is wrong.
    – Pykler
    Nov 29, 2011 at 15:44
  • 4
    Actually, if the user is behind a proxy you would get the user's internal IP address, i.e. a RFC 1918 address. In most cases, that's not very desirable at all. This solution focuses on getting the external IP address of the client (the proxy address), which is the right-most address.
    – Sævar
    Jan 21, 2012 at 20:13
  • 2
    Thank you. Usually when I request keys from request.META I include a default value since headers are often mising: request.META.get('REMOTE_ADDR', None)
    – Carl G
    Jul 14, 2012 at 5:28
  • 3
    @CarlG your code is more transparent, but the get method is inherited from django.utils.datastructures.MultiValueDict and the default value is None. But it definitely makes sense to include a default value if you actually wanted it to be something other than None.
    – Sævar
    Oct 9, 2012 at 1:00
  • 2
    Unless you're scrubbing X-Forwarded-For when requests hit your first server, then the first value in that list is user supplied. A malicious user could easily spoof any IP address they want. The address you want is the first IP before any of your servers, not necessarily the first in the list.
    – Eli
    Jun 6, 2014 at 19:09
30

No More confusion In the recent versions of Django it is mentioned clearly that the Ip address of the client is available at

request.META.get("REMOTE_ADDR")

for more info check the Django Docs

1
  • 6
    This gives blank value when the application is running behind a reverse proxy server(like Nginx). You will need X_FORWARDED_FOR
    – Coderaemon
    Oct 12, 2020 at 11:07
19

I would like to suggest an improvement to yanchenko's answer.

Instead of taking the first ip in the X_FORWARDED_FOR list, I take the first one which in not a known internal ip, as some routers don't respect the protocol, and you can see internal ips as the first value of the list.

PRIVATE_IPS_PREFIX = ('10.', '172.', '192.', )

def get_client_ip(request):
    """get the client ip from the request
    """
    remote_address = request.META.get('REMOTE_ADDR')
    # set the default value of the ip to be the REMOTE_ADDR if available
    # else None
    ip = remote_address
    # try to get the first non-proxy ip (not a private ip) from the
    # HTTP_X_FORWARDED_FOR
    x_forwarded_for = request.META.get('HTTP_X_FORWARDED_FOR')
    if x_forwarded_for:
        proxies = x_forwarded_for.split(',')
        # remove the private ips from the beginning
        while (len(proxies) > 0 and
                proxies[0].startswith(PRIVATE_IPS_PREFIX)):
            proxies.pop(0)
        # take the first ip which is not a private one (of a proxy)
        if len(proxies) > 0:
            ip = proxies[0]

    return ip

I hope this helps fellow Googlers who have the same problem.

5
  • This code does not check that the ip from REMOTE_ADDR is private before checking the HTTP_X_FORWARDED_FOR field, as it probably should (also, '127.0.0.1' or '127.' should probably be in PRIVATE_IPS_PREFIX, together with IPv6 equivalents.
    – Rasmus Kaj
    Mar 15, 2015 at 12:54
  • 3
    Technically, those prefixes (172, 192) do not necessarily mean private addresses.
    – maniexx
    Jul 25, 2015 at 8:17
  • 2
    The address ranges assigned for private networks are: 172.16.0.0–172.31.255.255 (16 “class B” networks), 192.168.0.0–192.168.255.255 (1 “class B” network) and 10.0.0.0–10.255.255.255 (1 “class A” or 256 “class B” networks).
    – tzot
    Oct 19, 2017 at 9:27
  • is_valid_ip not defined
    – Prosenjit
    Jun 11, 2019 at 10:31
  • I like this approach, but I think the implementation is a bit dangerous. For instance, most IP addresses under the 10. prefix are public IPs. T-Mobile owns 172.32.0.0 as an example.
    – monokrome
    Aug 27, 2020 at 8:16
13

here is a short one liner to accomplish this:

request.META.get('HTTP_X_FORWARDED_FOR', request.META.get('REMOTE_ADDR', '')).split(',')[0].strip()
3
  • 9
    If both of them return None then you would get an error. Nov 27, 2018 at 11:01
  • It really works, it returns your current public ip address, thanks @masterbase, you made my day. Apr 27, 2022 at 7:14
  • @GouravChawla some pretty simple conditionally logic would prevent this from erroring remote_ip = request.META.get('HTTP_X_FORWARDED_FOR', request.META.get('REMOTE_ADDR', '')) if remote_ip = remote_ip.split(',')[0] if remote_ip else None
    – kt-0
    May 9, 2022 at 19:44
7

The simpliest solution (in case you are using fastcgi+nignx) is what itgorilla commented:

Thank you for this great question. My fastcgi was not passing the REMOTE_ADDR meta key. I added the line below in the nginx.conf and fixed the problem: fastcgi_param REMOTE_ADDR $remote_addr; – itgorilla

Ps: I added this answer just to make his solution more visible.

1
  • 3
    What's a comparable solution for nginx (reverse proxy) and gunicorn? proxy_set_header REMOTE_ADDR $remote_addr; doesn't alleviate the problem when added to nginx.conf. Dec 13, 2015 at 10:58
7

In my case none of above works, so I have to check uwsgi + django source code and pass static param in nginx and see why/how, and below is what I have found.

Env info:
python version: 2.7.5
Django version: (1, 6, 6, 'final', 0)
nginx version: nginx/1.6.0
uwsgi: 2.0.7

Env setting info:
nginx as reverse proxy listening at port 80 uwsgi as upstream unix socket, will response to the request eventually

Django config info:

USE_X_FORWARDED_HOST = True # with or without this line does not matter

nginx config:

uwsgi_param      X-Real-IP              $remote_addr;
// uwsgi_param   X-Forwarded-For        $proxy_add_x_forwarded_for;
// uwsgi_param   HTTP_X_FORWARDED_FOR   $proxy_add_x_forwarded_for;

// hardcode for testing
uwsgi_param      X-Forwarded-For        "10.10.10.10";
uwsgi_param      HTTP_X_FORWARDED_FOR   "20.20.20.20";

getting all the params in django app:

X-Forwarded-For :       10.10.10.10
HTTP_X_FORWARDED_FOR :  20.20.20.20

Conclusion:

So basically, you have to specify exactly the same field/param name in nginx, and use request.META[field/param] in django app.

And now you can decide whether to add a middleware (interceptor) or just parse HTTP_X_FORWARDED_FOR in certain views.

4

The reason the functionality was removed from Django originally was that the header cannot ultimately be trusted. The reason is that it is easy to spoof. For example the recommended way to configure an Nginx reverse proxy is to:

add_header X-Forwarded-For $proxy_add_x_forwarded_for;
add_header X-Real-Ip       $remote_addr;

When you do:

curl -H 'X-Forwarded-For: 8.8.8.8, 192.168.1.2' http://192.168.1.3/

Your Nginx in myhost.example will send onwards:

X-Forwarded-For: 8.8.8.8, 192.168.1.2, 192.168.1.3

The X-Real-IP will be the IP of the first previous proxy if you follow the instructions blindly.

In case trusting who your users are is an issue, you could try something like django-xff: https://pypi.python.org/pypi/django-xff/

3

I was also missing proxy in above answer. I used get_ip_address_from_request from django_easy_timezones.

from easy_timezones.utils import get_ip_address_from_request, is_valid_ip, is_local_ip
ip = get_ip_address_from_request(request)
try:
    if is_valid_ip(ip):
        geoip_record = IpRange.objects.by_ip(ip)
except IpRange.DoesNotExist:
    return None

And here is method get_ip_address_from_request, IPv4 and IPv6 ready:

def get_ip_address_from_request(request):
    """ Makes the best attempt to get the client's real IP or return the loopback """
    PRIVATE_IPS_PREFIX = ('10.', '172.', '192.', '127.')
    ip_address = ''
    x_forwarded_for = request.META.get('HTTP_X_FORWARDED_FOR', '')
    if x_forwarded_for and ',' not in x_forwarded_for:
        if not x_forwarded_for.startswith(PRIVATE_IPS_PREFIX) and is_valid_ip(x_forwarded_for):
            ip_address = x_forwarded_for.strip()
    else:
        ips = [ip.strip() for ip in x_forwarded_for.split(',')]
        for ip in ips:
            if ip.startswith(PRIVATE_IPS_PREFIX):
                continue
            elif not is_valid_ip(ip):
                continue
            else:
                ip_address = ip
                break
    if not ip_address:
        x_real_ip = request.META.get('HTTP_X_REAL_IP', '')
        if x_real_ip:
            if not x_real_ip.startswith(PRIVATE_IPS_PREFIX) and is_valid_ip(x_real_ip):
                ip_address = x_real_ip.strip()
    if not ip_address:
        remote_addr = request.META.get('REMOTE_ADDR', '')
        if remote_addr:
            if not remote_addr.startswith(PRIVATE_IPS_PREFIX) and is_valid_ip(remote_addr):
                ip_address = remote_addr.strip()
    if not ip_address:
        ip_address = '127.0.0.1'
    return ip_address
2

In django.VERSION (2, 1, 1, 'final', 0) request handler

sock=request._stream.stream.raw._sock
#<socket.socket fd=1236, family=AddressFamily.AF_INET, type=SocketKind.SOCK_STREAM, proto=0, laddr=('192.168.1.111', 8000), raddr=('192.168.1.111', 64725)>
client_ip,port=sock.getpeername()

if you call above code twice,you may got

AttributeError("'_io.BytesIO' object has no attribute 'stream'",)

AttributeError("'LimitedStream' object has no attribute 'raw'")

1

Simply add

{{ request.META.REMOTE_ADDR }}

In Django-Template where you want the user to see their IP address. That is if you are not interested in saving this to the DB.

0

After getting ip address you need to find location

# pip install geocoder

import geocoder

def get_client_ip(request):
    x_forwarded_for = request.META.get('HTTP_X_FORWARDED_FOR')
    if x_forwarded_for:
        ip = x_forwarded_for.split(',')[0]
        ip_location = geocoder.ip(f"{ip}")
        ip_location = geocoder.ip("me")
        print(ip_location.city)
        # you can get city such as "New York"
    else:
        ip = request.META.get('REMOTE_ADDR')
    return ip
0

Get the ip address with this function:

def get_ip_address(request):
    x_forwarded_for = request.META.get('HTTP_X_FORWARDED_FOR')
    if x_forwarded_for:
        ip = x_forwarded_for.split(',')[0]
    else:
        ip = request.META.get('REMOTE_ADDR')
    return ip

after that you can get the user location data and other info from that web app http://www.iplocinfo.com/:

import requests
def get_ip_data(request):
    ip_address = get_ip_address(request)
    api_key = "your api key"
    endPoint = f'https://www.iplocinfo.com/api/v1/{ip_address}?apiKey={api_key}'
    data = requests.get(endPoint)
    return data.json()
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