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If a language consists of set {a, b, c} only how can we construct a regular expression for the langage in which no two consecutive characters appear.

eg: abcbcabc will be valid and aabbcc will rejected by the regular expression.

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Homework going well? –  Benjol May 15 '09 at 11:25

4 Answers 4

This regular expression matches abcbcabc but not aabbcc

// (?:(\w)(?!\1))+
// 
// Match the regular expression below «(?:(\w)(?!\1))+»
//    Between one and unlimited times, as many times as possible, giving back as needed (greedy) «+»
//    Match the regular expression below and capture its match into backreference number 1 «(\w)»
//       Match a single character that is a “word character” (letters, digits, etc.) «\w»
//    Assert that it is impossible to match the regex below starting at this position (negative lookahead) «(?!\1)»
//       Match the same text as most recently matched by capturing group number 1 «\1»


Edit

as has been explained in the comments, string boundaries do matter. The regex then becomes

\m(?:(\w)(?!\1))+\M

Kudos to Gumbo.

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2  
Don’t forget the string boundaries. –  Gumbo May 15 '09 at 6:56
    
@Gumbo, +1 for reminding me but I doubt it would be necessary. What would get passed to the check is the set, never an entire block of text. –  Lieven Keersmaekers May 15 '09 at 7:45
1  
If you don’t mark the start an end of the string, abb would also be matched. –  Gumbo May 15 '09 at 8:00
    
@Gumbo, you are right. I edited the answer. –  Lieven Keersmaekers May 15 '09 at 8:15

Can't we just keep it simple? Just 'if not' this regex:

/(aa|bb|cc)/
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You must match the input against something like this (coded in whatever you want), and if you found a coincidence then it is the language you want:

[^{aa}|{bb}|{cc}]
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Assuming "()" is a grouping notation, and "a|b" stands for a logical-or b, then, in pseudocode

if regexp('/(aa)|(bb)|(cc)/', string) == MATCH_FOUND
  fail;
else
  succeed;

Probably doesn't need the grouping, as Gumbo said. I have them there just to be safe and clear.

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1  
You don’t need the grouping. –  Gumbo May 15 '09 at 8:01

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