Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Assuming I have the IP 10.23.233.34 I would like to simply swap the 233 for 234. The first, second, and last octet are unknown. The third octet is either 233 or 234. I want to do the substitution such that it matches the IP, subs, and keeps everything else while still switching the last octet. For example:

Input: 10.23.233.34

s/^(?:(?:25[0-5]|2[0-4][0-9]|[01]?[0-9][0-9]?)\.){}233\.(?:25[0-5]|2[0-4][0-9]|[01]?[0-9][0-9]?)/^(?:(?:25[0-5]|2[0-4][0-9]|[01]?[0-9][0-9]?)\.){}234\.(?:25[0-5]|2[0-4][0-9]|[01]?[0-9][0-9]?)/

Output: 10.23.234.34

share|improve this question
    
Duplicate, or rather subset, of the OP's complete question: stackoverflow.com/questions/13239270 –  pilcrow Nov 5 '12 at 20:05
1  
Aren't you switching the third octet? The last one is 34 and stays 34. –  simbabque Nov 5 '12 at 20:49
add comment

4 Answers

up vote 8 down vote accepted

This problem really isn't suited well for a regex solution. Instead, I would do something like the following:

$in = "10.23.233.34";
@a = split /\./, $in;
if ($a[2] == '233') {
    $a[2] = '234';
}
print join(".", @a);

The above code is far more readable than any regex you might come up with. Furthermore, the next person who has to maintain your code will be able to actually read it.

share|improve this answer
    
That's fine assuming you don't have to validate that the string actually contains an IP address before modifying it. Also, you have a typo - the condition on the if should have a ==, not =. –  Mark Reed Nov 5 '12 at 19:35
1  
The question states "Assuming I have the IP..." so I went with that assumption. Validating the input format is one more line if needed. (Thanks, fixed the ==.) –  Greg Hewgill Nov 5 '12 at 19:37
    
I do have to validate it being an IP. Lets say I have a line like "Hi My IP is 10.23.233.34. I live .233 miles from new york city in building 10.233 subsection .233.34. Ohh my friends IP is 10.33.233.55" I both instances 10.23.233.34 should change to 10.23.234.34 and 10.33.233.55 should change to 10.33.234.55. Everything else should stay. Ohh Greg what was wrong with posting about the upvotes? It encourages answers. –  user974896 Nov 5 '12 at 19:39
1  
Simple is always better. You can also use an embedded subroutine in your regex to increment your number (or apply whatever other logic you may need in the future) but this solution works and is more readable/miantainable. –  Bryan Allo Nov 5 '12 at 19:42
add comment

Sometimes regexes make things brittle and harder to understand. Nonetheless:

my $ip = '10.23.233.34';
...
for ($ip) {
    s!(?<=\.)233(?=\.\d+$)!234!;
}

Details: If given a well-formed dotted quad, the above looks for '233' in what must be the third octet: preceded by a dot and followed by a dot, then one or more digits, then end-of-string. The ?<= and ?= prevent anything other than the '233' from being captured, and then '234' is substituted. This approach does not validate that the IP address is well-formed.

share|improve this answer
add comment
$byte = qr/(?:\d{1,2}|1\d\d|2[0-4]\d|25[0-5])/;
s/($byte)\.($byte)\.(23[34])\.($byte)/join '.', $1, $2, 467-$3, $4/e;
share|improve this answer
add comment

Here's an option:

use strict;
use warnings;

my $ip = '10.23.233.34';

$ip =~ s/(\d+)(\.\d+)$/($1 == 233 ? $1+1 : $1) . $2/e;

print $ip;

Output:

10.23.234.34
share|improve this answer
add comment

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.