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ruby

i have the following

p = 0
[s1.size,s2.size].max.times { |c| if s1[c] == s2[c]; p = c; else break; end }; 
matched_part = s1[0..p]

but i dont know how i can this for multiple strings (more than 2) at the same time.

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1  
Could you give us an example input and the desired output? –  Allyn Sep 30 '09 at 2:12
    
I second Allyn's question. –  khelll Sep 30 '09 at 3:18
    
marry had a little lamb marry had a bug dog marry had a cat marry had a bird OUT: mary had a –  asdfasdfa Sep 30 '09 at 4:16

3 Answers 3

Alright, how's this?

class String
  def self.overlap(s1,s2,*strings)
    strings += [s2]
    strings.min { |s| s.size }.size.times do |n|
      return s1[0,n] unless strings.all? { |string| s1[n]==string[n] }
    end
    s1
  end
end
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+1 for conciseness –  khelll Sep 30 '09 at 19:25
class String
  def self.overlap(first,second,*others)
    s1 = first
    others = [second] + others
    others.each do |s2|
      p = 0
      s1.length.times { |c| if s1[c] == s2[c] then p = c else break end }
      s1 = s1[0..p]
    end
    s1
  end
end

puts String.overlap "marry had a little lamb", "marry had a bug dog", "marry had a cat", "marry had a bird OUT:", "marry had something" #=> marry had
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In one line:

strings[0].slice(0,(0...strings[0].size).find {|i| strings.map {|s| s[i..i]}.uniq.size > 1})
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Nice. Tested with 2 strings and doesn't work when the first string is fully contained in the second one. Not a universal fix I guess, but what worked for my use case with 2 strings: strings[0].slice(0,(0...strings[0].size).find {|i| strings.map {|s| s[i..i]}.uniq.size > 1} || strings[0].length) –  Nico Dec 1 '11 at 11:07

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