2

At first, I thought it's easy to find the regex which only matches public IPv4 address on the Internet. However, after tons of googling,I got nothing,so I try to write the regex,as follows(Perl flavor),

[0-9]\.(?:[0-9]{1,3}\.){2}[0-9]{1,3}|
1[1-9]\.(?:[0-9]{1,3}\.){2}[0-9]{1,3}|
[2-9][0-9]\.(?:[0-9]{1,3}\.){2}[0-9]{1,3}|
1[0-6][0-9]\.(?:[0-9]{1,3}\.){2}[0-9]{1,3}|
17[0-1]\.(?:[0-9]{1,3}\.){2}[0-9]{1,3}|
172\.0\.(?:[0-9]{1,3}\.)[0-9]{1,3}|
172\.1[0-5]\.(?:[0-9]{1,3}\.)[0-9]{1,3}|
(172\.3[2-9]\.)(?:[0-9]{1,3}\.)[0-9]{1,3}|
(172\.[4-9][0-9]\.)(?:[0-9]{1,3}\.)[0-9]{1,3}|
...

The regex seems inaccurate and inefficient , does someone have a better way to write the regex?

  • metacpan.org/pod/Regexp::Common::net#RE-net-IPv4 would match an IPv4 address. I wouldn't put the "public" check into the regex. – melpomene Oct 31 '15 at 15:12
  • what are you trying to do ? 127\.\d{1,3}\.\d{1,3}\.\d{1,3} isnt public !! – Abr001am Oct 31 '15 at 16:01
  • I've broken the string by .s then checked each value in the past if (($sections[0] == 192 && $sections[1] == 168) || ($sections[0] == 172 && ($sections[1] >= 16 && $sections[1] <= 32)) || ($sections[0] == 10)) {. What language are you running this in? (also that conditional is checking the inverse of your request; if that matches it is private). – chris85 Oct 31 '15 at 16:09
  • @chris85 You just check private IP address , not public IP address. – Matt Elson Oct 31 '15 at 16:13
  • Yea, it's the inverse, the language you are working with doesn't support else? – chris85 Oct 31 '15 at 16:15
4

I would much rather capture each octet and check if the subnet is private in code rather than with regex. However, I'm intrigued by your question.

According to Wikipedia, there are 3 ranges of private IP address.

10.0.0.0    - 10.255.255.255
172.16.0.0  - 172.31.255.255
192.168.0.0 - 192.168.255.255

Now assuming that you don't have crazy IP-like strings, like 55.300.666.1, you can use negative lookbehind to do what you want:

(\d+)(?<!10)\.(\d+)(?<!192\.168)(?<!172\.(1[6-9]|2\d|3[0-1]))\.(\d+)\.(\d+)

Let's see that again, with some line breaks added for clarity:

(\d+)(?<!10)
\.(\d+)(?<!192\.168)(?<!172\.(1[6-9]|2\d|3[0-1]))
\.(\d+)\.(\d+)

The first line checks that the first octet is not 10. The second line checks that the first 2 octerts are not 192.168 or between 172.16 and 172.31. The third line has nothing special. Regex101

PS: I do know that 127.0.0.1 is localhost but I have no idea if it's private (I'm not a network engineer). You may have to improvise as needed.

  • I used your regex statement in Solarwinds to find devices with public IP addresses. It worked perfectly. Thanks. – vlmercado May 8 '18 at 16:44
  • The entire IP range of 127.0.0.1 through 127.255.255.255 is not considered a 'public IP address', and should not be matched for public IP ranges. – Thomas Ward Jun 1 '18 at 14:37
4

Try this one:

^([0-9]|[1-9][0-9]|1[0-9]{2}|2[0-4][0-9]|25[0-5])(?<!172\.(16|17|18|19|20|21|22|23|24|25|26|27|28|29|30|31))(?<!127)(?<!^10)(?<!^0)\.([0-9]|[1-9][0-9]|1[0-9]{2}|2[0-4][0-9]|25[0-5])(?<!192\.168)(?<!172\.(16|17|18|19|20|21|22|23|24|25|26|27|28|29|30|31))\.([0-9]|[1-9][0-9]|1[0-9]{2}|2[0-4][0-9]|25[0-5])\.([0-9]|[1-9][0-9]|1[0-9]{2}|2[0-4][0-9]|25[0-5])(?<!\.255$)$

It correctly doesn't match this invalid ips:

999.999.999.999.
108.0.0.01
0.1.2.3
00.0000.00.00
192.168.l.1
912.456.123.123
.3.3.3.0
192.168.o.0

It doesn't match local IPs:

172.16.0.9
172.16.4.1
172.17.1.1
127.0.0.2
10.0.1.5
10.0.0.1
10.155.155.155
10.255.255.254
172.16.0.4
172.16.0.1
172.17.1.1
172.31.254.254
192.168.1.2
192.168.254.0

And finally it doesn't match broadcast IPs:

60.123.247.255
196.168.255.255
10.255.255.255
192.168.255.255

And matches pretty much every IP i've tested. Can't say I really done a lot of testing, so i'm welcome for suggestions

0

If you are looking to validate purely public IPv4 addresses, we can eliminate all of the Reserved IPv4 addresses as follows:

  • 0.0.0.0/8: Current network
  • 10.0.0.0/8: Private network
  • 100.64.0.0/10: Shared Address Space
  • 127.0.0.0/8: Loopback
  • 169.254.0.0/16: Link-local
  • 172.16.0.0/12: Private network
  • 192.0.0.0/24: IETF Protocol Assignments
  • 192.0.2.0/24: TEST-NET-1, documentation and examples
  • 192.88.99.0/24: IPv6 to IPv4 relay (includes 2002::/16)
  • 192.168.0.0/16: Private network
  • 198.18.0.0/15: Network benchmark tests
  • 198.51.100.0/24: TEST-NET-2, documentation and examples
  • 203.0.113.0/24: TEST-NET-3, documentation and examples
  • 224.0.0.0/4: IP multicast (former Class D network)
  • 240.0.0.0/4: Reserved (former Class E network)
  • 255.255.255.255: Broadcast

(list taken from Wikipedia)


This can be put into a straightforward regex that doesn't use lookbehinds (and hence, the regex can be used in JavaScript):

(^0\.)|(^10\.)|(^100\.6[4-9]\.)|(^100\.[7-9]\d\.)|(^100\.1[0-1]\d\.)|(^100\.12[0-7]\.)|(^127\.)|(^169\.254\.)|(^172\.1[6-9]\.)|(^172\.2[0-9]\.)|(^172\.3[0-1]\.)|(^192\.0\.0\.)|(^192\.0\.2\.)|(^192\.88\.99\.)|(^192\.168\.)|(^198\.1[8-9]\.)|(^198\.51\.100\.)|(^203.0\.113\.)|(^22[4-9]\.)|(^23[0-9]\.)|(^24[0-9]\.)|(^25[0-5]\.)

Likewise, this assumes that you have already validated beforehand that it actually is a valid IPv4 address.

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