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Is it possible to catch all grous of same digits in string with regex on Ruby? I'm not familiar with regex.

I mean: regex on "1112234444" will produce ["111", "22", "3", "4444"]

I know, I can use (\d)(\1*), but it only gives me 2 groups in each match. ["1", "11"], ["2", "2"], ["3", -], ["4", "444"]

How can I get 1 group in each match? Thanks.

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Must you use regex? –  Dave Newton Oct 19 '12 at 11:50
    
Dave, yes, in this case it is important . I know how to solve it without regex, but I need regex, if it is possible. –  Airat Shigapov Oct 19 '12 at 11:53

3 Answers 3

up vote 8 down vote accepted

Here, give this a shot:

((\d)\2*)
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You are awesome! Thanks! –  Airat Shigapov Oct 19 '12 at 11:57
    
Wow, good to know. How should it be called on "1112234444"? "1112234444"[/((\d)\2*)/] gives only "111". Thanks. –  Prakash Murthy Oct 19 '12 at 12:05
1  
You can use "1112234444".scan(/((\d)\2*)/) –  Airat Shigapov Oct 19 '12 at 12:14

You can use this regex

((\d)\2*)

group 1 catches your required value

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It's actually group 1 that catches the value wanted... –  Andrew Cheong Oct 19 '12 at 14:05
    
@acheong87 hmm..thxx for ur info..will edit.. –  Anirudha Oct 19 '12 at 14:46

My first quick answer was rightfully criticized for having no explanation for the code. So here's another one, better in all respects ;-)

We exploit the fact that the elements whose runs we want are digits and they are easy to enumerate by hand. So we construct a readable regex which means "a run of zeros, or a run of ones, ... or a run of nines". And we use the right method for the job, String#scan:

irb> "1112234444".scan(/0+|1+|2+|3+|4+|5+|6+|7+|8+|9+/)
=> ["111", "22", "3", "4444"]

For the record, here's my original answer:

irb> s = "1112234444"
=> "1112234444"
irb> rx = /(0+|1+|2+|3+|4+|5+|6+|7+|8+|9+)/
=> /(0+|1+|2+|3+|4+|5+|6+|7+|8+|9+)/
irb> s.split(rx).reject(&:empty?)
=> ["111", "22", "3", "4444"]
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2  
You should explain your post and what you do! –  Stony Oct 19 '12 at 12:04

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