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I would like to hide the last two sections from an IP address using regular expression the problem is that the asterix (*) must match the length of those sections.

Eg: 10.101.12.100 should be re-formated into 10.101.**.***

This is the code I'm working with :

echo preg_replace('!(\d+).(\d+).\d+.\d+!s', '${1}.${2}.***.***', "10.101.12.100");
// Return: 10.101.***.***

Is that possible using regex ?

PS: I know I could break it using explode('.', ...) along with str_repeat('*', strlen(...)) but I find preg_replace a cleaner solution. I'm looking for a "oneliner" solution.

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Only with a custom callback. And then I guess the exlode version is easier.... Why does it always have to be one line? You should put this in a function anyway and then you have a "oneliner". –  Felix Kling Mar 7 '11 at 19:24
    
@Felix, custom callback could be a solution. Ok it's not one liner but it's probably cleaner then a explode solution. –  Cybrix Mar 7 '11 at 19:27
    
@Cybrix: in jest I will say that you must have an odd sense of "clean" :) –  Andrew White Mar 7 '11 at 19:29
    
@Andrew, using explode it's atleast (when keeping readable code) a 4-5 lines of codes. when a preg_replace could use one line (if I find a solution...) –  Cybrix Mar 7 '11 at 19:34
1  
To be fair, anything can be done on one line if you try hard enough. For example, you can use the explode solution as a "one liner" too: echo $explode('.', $IP)[0].'.'.$explode('.', $IP)[1].'.***.***'; I know this is a little redundant because you are running explode on the same variable twice, but I just wanted to show that it doesn't have to be 4-5 lines. –  Infotekka Mar 7 '11 at 19:42

2 Answers 2

up vote 4 down vote accepted

Use a negative look-ahead (Basically, have regex disqualify the first two octets, then do a normal digit replace from thereafter.) e.g.

(?!\d{1,3}\.\d{1,3}\.)\d

Demo

Example output:

237.134.85.92 -> 237.134.**.**
173.14.176.182 -> 173.14.***.***
167.209.41.203 -> 167.209.**.***
137.133.204.130 -> 137.133.***.***
93.108.72.157 -> 93.108.**.***
share|improve this answer
    
+1 very nice :) –  Felix Kling Mar 7 '11 at 19:38
    
Thank you. You have provided a one liner solution. echo preg_replace('/(?!\d{1,3}\.\d{1,3}\.)\d/', '*', "10.101.12.100"); // Return: 10.101.**.*** –  Cybrix Mar 7 '11 at 19:42
    
@FelixKling: Thanks, every so often I can pull one over on people. ;-) -- @Cybrix: No problem. If that didn't work, I was fully prepared for a create_function/eval solution...[not really]. –  Brad Christie Mar 7 '11 at 19:44

That might be a bit of an abuse of a regex. The following is probably faster, safer, and easier to understand...

  1. Explode string on "."
  2. Replace all chars in array index 2, 3 with "*"
  3. Join with "."
  4. profit.
share|improve this answer
    
Thanks for your answer. That was the solutions I was using already but I was just wondering if a regex solution could have been possible. –  Cybrix Mar 7 '11 at 19:31

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