How can I get the public IP using python2.7? Not private IP.

up vote 95 down vote accepted

Currently there are several options:

  • ip.42.pl
  • jsonip.com
  • httpbin.org
  • ipify.org

Below are exact ways you can utilize each of the above.

ip.42.pl

from urllib2 import urlopen
my_ip = urlopen('http://ip.42.pl/raw').read()

This is the first option I have found. It is very convenient for scripts, you don't need JSON parsing here.

jsonip.com

from json import load
from urllib2 import urlopen

my_ip = load(urlopen('http://jsonip.com'))['ip']

Seemingly the sole purpose of this domain is to return IP address in JSON.

httpbin.org

from json import load
from urllib2 import urlopen

my_ip = load(urlopen('http://httpbin.org/ip'))['origin']

httpbin.org is service I often recommend to junior developers to use for testing their scripts / applications.

ipify.org

from json import load
from urllib2 import urlopen

my_ip = load(urlopen('https://api.ipify.org/?format=json'))['ip']

Power of this service results from lack of limits (there is no rate limiting), infrastructure (placed on Heroku, with high availability in mind) and flexibility (works for both IPv4 and IPv6).

EDIT: Added httpbin.org to the list of available options.

EDIT: Added ipify.org thanks to kert's note.

  • 1
    Should be accepted answer, works great. – Nick Dec 14 '13 at 20:27
  • 4
    ipify.org seems to be up to date and reliable place as well. – kert May 9 '15 at 22:14
  • @kert: Thanks for this! – Tadeck May 10 '15 at 12:03
  • 1
    I like icanhazip.com, it's a whole website with just your raw IP; no need to add arrays, formats, etc. – anonymous Aug 9 '17 at 1:01

I like the requests package with http://ip.42.pl/raw

import requests
requests.get('http://ip.42.pl/raw').text

Try this:

import ipgetter
import requests

IP = ipgetter.myip()
url = 'http://freegeoip.net/json/'+IP
r = requests.get(url)
js = r.json()
print 'IP Adress: '         +   js['ip']
print 'Country Code: '      +   js['country_code']
print 'Country Name: '      +   js['country_name']
print 'Region Code: '       +   js['region_code']
print 'Region Name: '       +   js['region_name']
print 'City Name: '         +   js['city']
print 'Zip code: '          +   js['zip_code']
print 'Time Zone: '         +   js['time_zone']
print 'Latitude: '          +   str(js['latitude'])
print 'Longitude: '         +   str(js['longitude'])
  • 1
    import ipgetter; IP = ipgetter.myip() is enough for the job. – np8 Feb 28 '17 at 21:18
  • ipgetter does not (yet) support IPv6, although IPv6 is already celebrating its twentieth birthday. :( – qräbnö Jun 6 at 20:19

You can just do this:

import requests
print requests.get("http://ipecho.net/plain?").text

Produces:

XX.XX.XXX.XXX

Getip is a small module which returns public IP address from a random server.

Install:

~$ pip install getip2

Use:

>> import getip
>> ip = getip.get()
>>
>> ip
'66.249.76.109'
  • 1
    Adding some words to explain what you're doing would make this a higher quality answer, if only to repeat the question as a statement. – jpaugh Jul 6 '17 at 18:53
  • This solution has a dependency. You have to install requests (pip install requests). The code in the "getip2" module has a list of web sites which can return your public IP address and it just goes randomly to one of them... it maybe encapsulates nicely, but I think this can be done faster and cleaner as other answers suggested. – Filip Savic Apr 2 at 22:32
  • Dependency removed. – NOP da CALL Apr 5 at 3:36

This is a way not to have to make a call to the internet:

Please let me know if this doesn't work, then I can update the answer (it works for ~10 servers of mine)

from subprocess import check_output
out = check_output("/sbin/ifconfig | awk '/inet / { print $2 }' | sed 's/addr://'", shell=True)
[x for x in out.decode().split() if not x == "127.0.0.1" and 
                                    not (x.startswith("172") and x.endswith("0.1"))]
["x.x.x.x.x"]

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