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Problem: write a program in any language which, given a string of characters, generates a regex that matches any anagram of the input string. For all regexes greater than some length N, The regex must be shorter than the "brute force" solution listing all possible anagrams separated by "|", and the length of the regex should grow "slowly" as the input string grows (ideally linearly, but possibly n ln n).

Can you do it? I've tried, but my attempts are so far from succeeding, that I'm beginning to doubt it's possible. The only reason I ask is I thought I had seen a solution on another site, but much pointless googling failed to uncover it a second time.

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The length of the program won't change... don't you mean the length of the generated regular expression? –  Mark Byers Sep 17 '11 at 22:46
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Great question :) Python one-liner (because it otherwise won't fit in a comment; assuming that a is the input string): >>> regex = "^(?:" + "|".join("{}()".format(c) for c in a) + "){{{}}}".format(len(a)) + "".join("\\{}".format(i+1) for i in range(len(a))) + "$" :) Regex will grow linearly, but execution time (especially to find out a non-match) will grow exponentially. –  Tim Pietzcker Sep 18 '11 at 8:55
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@Tim - thanks for your very elegant answer (or comment, whatever)! Can you explain what the ()'s are doing after each of the letters? Also - will your solution work for repeated letters? Like loop <-> pool? –  Mike Sokolov Sep 18 '11 at 12:43
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@Mike: Yes it will. The () match the empty space (so they always succeed). Since they follow each letter, every single one has to be matched exactly once because at the end, we check that all backreferences have participated (\1\2\3...). Check this answer for a better explanation. Sorry there isn't more room here, too bad this question was closed... –  Tim Pietzcker Sep 18 '11 at 12:48
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Yeah - I think I understand now. I did try this though: /^(?:a()|a()|b()|c()){4}\1\2\3\4$/ and it matched bbac? I can't see why. This is w/ perl 5.8.8 –  Mike Sokolov Sep 18 '11 at 12:54

1 Answer 1

up vote 7 down vote accepted

I think this javascript code will work according to your specifications. The regex length will increase linearly with the length of the input. It generates a regex which uses positive lookahead to match the anagram of the input string. The lookahead part of regex makes sure all the characters are present in the test input string ignoring their order and the matching part ensures that the length of the test input string is same as the length of the input string (for which regex is constructed).

function anagramRegexGenerator(input) {
    var lookaheadPart = '';
    var matchingPart = '^';
    var positiveLookaheadPrefix='(?=';
    var positiveLookaheadSuffix=')';
    var inputCharacterFrequencyMap = {}
    for ( var i = 0; i< input.length; i++ )
    {
        if (!inputCharacterFrequencyMap[input[i]]) {
            inputCharacterFrequencyMap[input[i]] = 1
        } else {
            ++inputCharacterFrequencyMap[input[i]];
        }
    }
    for ( var j in inputCharacterFrequencyMap) {
        lookaheadPart += positiveLookaheadPrefix;
        for (var k = 0; k< inputCharacterFrequencyMap[j]; k++) {
            lookaheadPart += '.*';
            if (j == ' ') {
                lookaheadPart += '\\s';
            } else {
                lookaheadPart += j;
            }
            matchingPart += '.';
        }
        lookaheadPart += positiveLookaheadSuffix;
    }
    matchingPart += '$';
    return lookaheadPart + matchingPart;
}

Sample input and output is the following

anagramRegexGenerator('aaadaaccc')
//generates the following string.
"(?=.*a.*a.*a.*a.*a)(?=.*d)(?=.*c.*c.*c)^.........$"
anagramRegexGenerator('abcdef ghij'); 
//generates the following string.
"(?=.*a)(?=.*b)(?=.*c)(?=.*d)(?=.*e)(?=.*f)(?=.*\s)(?=.*g)(?=.*h)(?=.*i)(?
=.*j)^...........$" 
//test run returns true
/(?=.*a)(?=.*b)(?=.*c)(?=.*d)(?=.*e)(?=.*f)(?=.*\s)(?=.*g)(?=.*h)(?=.*i)(?
=.*j)^...........$/.test('acdbefghij ')
//or using the RegExp object
//this returns true
new RegExp(anagramRegexGenerator('abcdef ghij')).test('acdbefghij ') 
//this returns false
new RegExp(anagramRegexGenerator('abcdef ghij')).test('acdbefghijj') 
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If you want to be more strict and allow only word characters and spaces in the input, you can just replace . with [\\w\\s] in the code. –  Narendra Yadala Oct 1 '11 at 15:09
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This is interesting, but I don't think you've understood the requirements exactly. In the case where there are repeated letters, the counts in the anagram must match exactly. For example, I think your method will consider "ebb" and "bee" to be anagrams. But I think a small variation on what you've done will work. –  Mike Sokolov Oct 1 '11 at 19:42
    
Oops, I missed this particular test case where letters are repeated. Fixed it now. Thanks for pointing out! –  Narendra Yadala Oct 1 '11 at 21:17

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