Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I would like to convert an inet formatted IPv4 address into the integer components.

For example, turn '101.255.30.40' into oct1=101, oct2=255, oct3=30, and oct4=40.

There are regex expressions that should do this if I cast the inet as a varchar, but that seems inelegant. Is there a 1-line function for returning the nth octet of an inet?

select inet_to_octet('101.255.30.40', 4) as temp;  -- returns temp=40?
share|improve this question
    
There is no standard function for this, and remember that inet and cidr fields can also contain IPv6 addresses and prefixes. – Sander Steffann Apr 1 '13 at 21:11
    
For my particular application, all of my addresses are IPv4 – Glenn Strycker Apr 1 '13 at 21:19
    
Looks like I need a postgres version of inet_aton and inet_ntoa, so I can follow this: hiregion.com/2010/07/converting-ip-address-to-integer-and.html – Glenn Strycker Apr 1 '13 at 21:22

Unless you want to try to contribute the function to the inet datatype, you'll need to rely on a string based version. Maybe put something like this (but with some error checking) into an SQL function for easy access?:

CREATE OR REPLACE FUNCTION extract_octet(inet, integer) RETURNS integer AS $$
    SELECT ((regexp_split_to_array(host($1), E'\\.'))[$2])::int;
$$ LANGUAGE SQL;



select extract_octet(inet '192.26.22.2', 2)

Output: 26
share|improve this answer

Here are a couple of one-liners for the separate octets of an IPv4 address:

SELECT substring(host('1.2.3.4'::inet) FROM '^([0-9]+)\.[0-9]+\.[0-9]+\.[0-9]+$');

will return 1

SELECT substring(host('1.2.3.4'::inet) FROM '^[0-9]+\.([0-9]+)\.[0-9]+\.[0-9]+$');

will return 2

SELECT substring(host('1.2.3.4'::inet) FROM '^[0-9]+\.[0-9]+\.([0-9]+)\.[0-9]+$');

will return 3

SELECT substring(host('1.2.3.4'::inet) FROM '^[0-9]+\.[0-9]+\.[0-9]+\.([0-9]+)$');

will return 4

share|improve this answer
    
That works -- thank you!! – Glenn Strycker Apr 2 '13 at 17:12
up vote 1 down vote accepted

I finally got an excellent answer from a co-worker...

For some flavors of sql, use "split_part" along with host(inet) to get the text field.

select split_part(host('101.255.30.40'::inet), '.', 1);
select split_part(host('101.255.30.40'::inet), '.', 2);
select split_part(host('101.255.30.40'::inet), '.', 3);
select split_part(host('101.255.30.40'::inet), '.', 4);

results in

101
255
30
40

If you want to get trickier and handle IPv6, use a mask to speed up the operation along with case statements to get the IP version:

select
   (case
      when family('101.255.30.40'::inet) = 4 then split_part(host(broadcast(set_masklen('101.255.30.40'::inet, 32))), '.', 4)::varchar
      when family('101.255.30.40'::inet) = 6 then split_part(host(broadcast(set_masklen('101.255.30.40'::inet, 64))), ':', 4)::varchar
      else null end)::varchar as octet4;

select
   (case
      when family('2604:8f00:4:80b0:3925:c69c:458:3f7b'::inet) = 4 then split_part(host(broadcast(set_masklen('2604:8f00:4:80b0:3925:c69c:458:3f7b'::inet, 32))), '.', 4)::varchar
      when family('2604:8f00:4:80b0:3925:c69c:458:3f7b'::inet) = 6 then split_part(host(broadcast(set_masklen('2604:8f00:4:80b0:3925:c69c:458:3f7b'::inet, 64))), ':', 4)::varchar
      else null end)::varchar as octet4;

results in

40
80b0

you can then add in a hex-to-int conversion into the case statement if you want to cast the IPv6 as a number instead.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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