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How do I make a shell command that finds IPv6 addresses in its stdin?

One option is to use

grep -Po '(?<![[:alnum:]]|[[:alnum:]]:)(?:(?:[a-f0-9]{1,4}:){7}[a-f0-9]{1,4}|(?:[a-f0-9]{1,4}:){1,6}:(?:[a-f0-9]{1,4}:){0,5}[a-f0-9]{1,4})(?![[:alnum:]]:?)'

(this RE is based on ideas from Regular expression that matches valid IPv6 addresses) But this is not quite accurate. I could use an even uglier regular expression, but is there a better way? (some command that I don't know about)

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1 Answer 1

Since I couldn't find an easy way using shell script commands, I created my own in python:

#!/usr/bin/env python

# print all occurences of well formed IPv6 addresses in stdin to stdout. The IPv6 addresses should not overlap or be adjacent to eachother. 

import sys
import re

# lookbehinds/aheads to prevent matching e.g. 2a00:cd8:d47b:bcdf:f180:132b:8c49:a382:bcdf:f180
regex = re.compile(r'''
            (?<![a-z0-9])(?<![a-z0-9]:)
            ([a-f0-9]{0,4}::?)([a-f0-9]{1,4}(::?[a-f0-9]{1,4}){0,6})?
            (?!:?[a-z0-9])''', 
        re.I | re.X)

for l in sys.stdin:
    for match in regex.finditer(l):
        match = match.group(0)
        colons = match.count(':')
        dcolons = match.count('::')
        if dcolons == 0 and colons == 7:
            print match
        elif dcolons == 1 and colons <= 7:
            print match

edit: there were still bugs in the regex

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