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I have a Regex for IP Address validation, but I need a Regex for Prefix validation, the expected form is “IP Address/Prefix”.

The prefix condition is :

  1. The prefix value should not be greater than 128

  2. The prefix value should be divisible by 4.

Could anyone please help me to create a Regex for Prefix validation?

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You mean suffix? –  Shef Aug 10 '11 at 15:03
    
Could you please post an example ipaddress and what the prefix value looks like? –  Drupad Panchal Aug 10 '11 at 15:03
    
All numbers are divisible by 4. Do you mean "evenly divisible"? –  Marc B Aug 10 '11 at 15:04
    
Marc B: From number theory, the term "divisible" always means "evenly divisible". –  Nayuki Minase Aug 10 '11 at 15:12
    
regexp is the wrong tool for this job. Do you really need a regexp solution, or are you just guessing that you do? –  Bryan Oakley Aug 10 '11 at 16:10

3 Answers 3

up vote 1 down vote accepted

AFAIK you can't do calculations using regex (e.g. number % 4 == 0 ?). Thus you'd have to use a pattern that gets all possible string combinations.

Try that one: \b[048]\b|\b[13579][26]\b|\b[2468][048]\b|\b1[02][048]\b|\b11[26]\b

  • \b[048]\b matches 0, 4 and 8
  • \b[13579][26]\b matches 12, 16, 32, 26 etc.
  • \b[2468][048]\b matches 20, 24, 28, 40, 44, 48 etc.
  • \b1[02][048]\b matches 100, 104, 108, 120, 124, 128
  • \b11[26]\b matches 112 and 116

Note the \b which defines the whole word (in your case the prefix/suffix) must match the pattern. Without it, 136 might match [13579][26], for example.

Edit: to allow leading zeros change the pattern to: \b0{0,2}[048]\b|\b0?[13579][26]\b|\b0?[2468][048]\b|\b1[02][048]\b|\b11[26]\b (note that 0{0,2} could also be written as 0?0?).

Edit 2: you might get rid of the \b if you split the ip address and only have a string containing the prefix/suffix. If you then call matches(...) you should be fine without the \b.

Pattern for matches(...) calls (no \b, allows leading zeros):
0{0,2}[048]|0?[13579][26]|0?[2468][048]|1[02][048]|11[26]

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No, 136 won't match [13579][26]. –  aioobe Aug 10 '11 at 15:28
    
@aioobe That depends on how it is called. 136 wont match as a whole but the 36 part in it might match. –  Thomas Aug 10 '11 at 15:32
    
Right, as long as you stick to String.maches or Matcher.matches and avoid Matcher.find etc, you should be fine though. Alternativly you could replace all \b with ^...$ I suppose. –  aioobe Aug 10 '11 at 15:36
    
The edits and comments to this answer are exactly why you don't want to use regular expressions for this problem. It's hard to get right and hard to understand whether it's right or not. –  Bryan Oakley Aug 10 '11 at 16:12

Instead of using regex, you can also do:

int prefix = Integer.parseInt(ipAddress.split(".")[0]);
if ( (prefix <= 128) && (prefix % 4 == 0)) {
    //success
}
else {
    //failure
}
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1  
this is much better than some incomprehensible regular expression. –  Bryan Oakley Aug 10 '11 at 16:10

If you want to validate the IP address subnet prefix number, you can build a regex by brute force by including the multiples of 4 up to 128: /0|4|8|12|16|20|24|28|32|...|120|124|128/

You can simplify this slightly by noting that if multiples of 4 end in the two digits even+{0,4,8} or odd+{2,6}.

Other than this brute force method, there is no way to implement what you want cleanly and compactly - regexes work on individual characters, not on the semantic interpretation of the number (so no comparisons, no arithmetic).

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1  
This is soooo much better than a solution that tries to make a fancy pattern (ie: Thomas's solution). It may be long, but it will execute fast and it's instantly obvious what matches. –  Bryan Oakley Aug 10 '11 at 16:08
    
I effectively did mention Thomas' solution when I talked about "end[ing] in the two digits", heh. –  Nayuki Minase Aug 10 '11 at 16:11

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