Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

As part of a question I asked earlier today, my goal is to validate all the moves a rook can make in chess notation.

This consists of:

  • The letter R
  • An optional disambiguation, the source of the problem (discussed in detail later)
  • An optional x to indicate a capture was made
  • The square to which the rook moved (the columns ["files" in chess] are lettered a-h and the rows ["ranks"] are numbered 1-8)

Disregarding disambiguation, we have the simple

/Rx?[a-h][1-8]/

Disambiguation

It often happens that two rooks can move to a square, and one does. When this happens, a disambiguating letter or number is used. So, if two rooks are on d3 and h5, and the one on h5 moves to d5, it is written Rhd5. Similarly, a rook on d8 moving to d3 when another rook is on d1 is written R8d3.

Files take precedence over ranks. In the first example, if the rook on d3 moved to d5, it could be disambiguated as R3d5 or Rdd5. Only the latter is correct.

The limits on rook disambiguation are:

  • Any letter may be used for file disambiguation, and
  • Any number may be used for rank disambiguation, but the number of the square moved to must not be 1 or 8 (R3d1 is not valid because of files' precedence over ranks and should be Rdd1), and it must not be the same number as the number of the square (R3d3 is also invalid)

With the above in mind, I constructed this:

/R([a-h]?x?[a-h][1-8]|([1-8])x?[a-h][2-7&&[^\1]])/

The problem lies in the last characters, [2-7&&[^\1]]. Ruby interprets [^\1] literally, that is as all characters other than \ or 1. If I try putting the \1 outside the brackets ([2-7&&[^]\1]), Ruby complains about the character class with no elements. And if I use an arbitrary placeholder that will never occur, say "z" ([2-7&&[^z]\1]), it doesn't work (I can't explain why)

So how can I use grouping to NOT match what I matched before?

share|improve this question

1 Answer 1

up vote 2 down vote accepted

Your question is long and dense, so I will address the core question and let you implement the technique:

How can I use grouping to NOT match what I matched before?

We'll proceed step by step. The following is not an exact chess example, but an illustration of how to accomplish what you want.

  1. Let's say I want a string that matches letters a through h. My regex is ^[a-h]$
  2. Next I want to match a digit and a dash. My regex becomes ^[a-h][0-9]-$
  3. Next I want to match a letter, but not the one we matched before. My regex becomes ^([a-h])[0-9]-(?!\1)[a-h]$, where the ([a-h]) captures the first letter to Group 1, and the negative lookahead (?!\1) asserts that what follows is not the content of what was matched by Group 1 (i.e., it is not that letter).
  4. Let's add a final digit just for balance: ^([a-h])[0-9]-(?!\1)[a-h][0-9]$. This will match a1-b2 but not a1-a2.

Let me know if you have any questions.

Reference

share|improve this answer
    
While ([1-8])x?[a-h](?!\1)[2-7] works by itself, the full regex /R([a-h]?x?[a-h][1-8]|([1-8])x?[a-h](?!\1)[2-7])/ incorrectly matches R5d5. Is there a way to make this work with |? –  EMBLEM Jun 22 '14 at 1:49
    
In that regex of yours, for R5d5, Group1 is 5d5 and Group 2 is 5. Not sure what you're trying to do, but either of these three methods will fix it: (1) change the \1 to \2 OR (2) remove the outer parentheses (you're not using them) OR (3) make them non-capturing with (?:..... Might get off the computer for while but let me know how you go –  zx81 Jun 22 '14 at 2:48

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.