2

I noticed that the first and last IPv6 addresses of a given network are omitted:

$ python3
Python 3.3.2 (default, Sep  6 2013, 09:30:10) 
[GCC 4.8.1 20130725 (prerelease)] on linux
Type "help", "copyright", "credits" or "license" for more information.
>>> import ipaddress
>>> print("\n".join([str(x) for x in ipaddress.ip_network("2001:0db8::/120").hosts()]))
2001:db8::1
2001:db8::2
...
2001:db8::fe
>>> 
>>> hex(int(ipaddress.ip_address('2001:db8::fe')))
'0x20010db80000000000000000000000fe'

I believe that for IPv4 this is correct, as those represent the network and broadcast addresses, but I don't believe those exist in IPv6 - at least section-2.5.4 of RFC4291 doesn't seem to mention it. I checked the errata and I don't think the updating RFCs are relevant. The section on interface identifiers also doesn't appear to reserve the first/last addresses.

Does anyone know why these addresses are omitted? Is this a bug in the standard library?

EDIT: Ok, looks like the first address is a Subnet-Router anycast address, so that explains why the first address is omitted.

The last address could be a reserved anycast address, though so is for example 2001:db8::fe/120 (which you can find in the output above), so this is certainly handled inconsistently. Does anybody know why?

  • 1
    That is a bug in ipaddress. The code still mentions network and broadcast addresses, but they don't exist anymore in IPv6. – Sander Steffann Oct 3 '13 at 13:08
  • 2
    Also /120 is very non-standard and you should avoid subnetting any smaller than /64. – Michael Hampton Oct 3 '13 at 21:02
  • Good point - in this particular case I just wanted to get to the end of the output within a reasonable amount of time :) – m01 Oct 3 '13 at 21:25
3

This is a bug in the ipaddress module, as unlike IPv4, both the first and last addresses in an IPv6 subnet are valid and usable, though they may have special uses as you've noted.

A quick survey of Python's bug tracker doesn't turn up this bug, so your next step should be to file a bug report on it.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.