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I have the string "111221" and want to match all sets of consecutive equal integers: ["111", "22", "1"].

I know that there is a special regex thingy to do that but I can't remember and I'm terrible at Googling.

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What should happen when the input has non-digit characters, e.g. "111aaa222" and "111aaa111"? –  Phrogz Dec 14 '11 at 13:44
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3 Answers 3

up vote 7 down vote accepted

Using regex in Ruby 1.8.7+:

p s.scan(/((\d)\2*)/).map(&:first)
#=> ["111", "22", "1"]

This works because (\d) captures any digit, and then \2* captures zero-or-more of whatever that group (the second opening parenthesis) matched. The outer (…) is needed to capture the entire match as a result in scan. Finally, scan alone returns:

[["111", "1"], ["22", "2"], ["1", "1"]]

…so we need to run through and keep just the first item in each array. In Ruby 1.8.6+ (which doesn't have Symbol#to_proc for convenience):

p s.scan(/((\d)\2*)/).map{ |x| x.first }
#=> ["111", "22", "1"]

With no Regex, here's a fun one (matching any char) that works in Ruby 1.9.2:

p s.chars.chunk{|c|c}.map{ |n,a| a.join }
#=> ["111", "22", "1"]

Here's another version that should work even in Ruby 1.8.6:

p s.scan(/./).inject([]){|a,c| (a.last && a.last[0]==c[0] ? a.last : a)<<c; a }
# => ["111", "22", "1"]
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your "fun one" would match "00aa00" as ["000000"] - works on the sample input, but not on any non-trivial examples. –  klochner Dec 14 '11 at 7:14
    
That's so weird! I tried it just before you answered and I got the same exact regex! Validated for the extra information and usage of map –  itdoesntwork Dec 14 '11 at 13:09
    
@klochner Ack! Right you are. Fixed, thanks. –  Phrogz Dec 14 '11 at 13:43
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why get cute with back-references when there are only 10 integers?

 str = "11112222333322229999"
(0..9).map{|i| str.scan(/([#{i}]+)/)}.flatten
=> ["1111", "2222", "2222", "3333", "9999"] 
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Downvoted because this produces the wrong results with the sample input and output given in the question. –  Phrogz Dec 14 '11 at 3:33
    
"want to match all sets of consecutive equal integers" - presuming the order didn't matter, should he have enumerated all permutations of the set in his "sample output"? –  klochner Dec 14 '11 at 6:54
    
All permutations? No. However, the one sample he did show indicated that order does matter. –  Phrogz Dec 14 '11 at 13:42
    
I'm just wondering how he would have indicated that order didn't matter, other than explicitly saying "any order", which he would have been unlikely to do in either case. –  klochner Dec 14 '11 at 16:14
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you can try is

string str ="111221";
string pattern =@"(\d)(\1)+";

Hope can help you

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Downvoted because a) this doesn't work (you need * instead of +) and b) this isn't Ruby syntax, and doesn't work in Ruby even directly. –  Phrogz Dec 14 '11 at 3:33
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