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Let's say I have different parsers p1, ..., pk. I want to define a function pk :: Parser ([t1], ..., [tk]) where pi :: Parser ti.

That will parse a collection of strings (one after the other) that match any of p1...pk and separate them in the corresponding lists. Assume for simplicity that none of the strings matches two parsers.

I managed to do it, but I am really struggling to find an elegant way (preferably using many or any other builtin parsec parser).

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3 Answers

up vote 5 down vote accepted

The first step is to turn each of your parsers into parser of the big type:

p1 :: Parser t1
p2 :: Parser t2
p3 :: Parser t3
p1 = undefined
p2 = undefined
p3 = undefined

p1', p2', p3' :: Parser ([t1], [t2], [t3])
p1' = fmap (\x -> ([x], [], [])) p1
p2' = fmap (\x -> ([], [x], [])) p2
p3' = fmap (\x -> ([], [], [x])) p3

Now, we repeatedly choose from these last parsers, and concatenate the results at the end:

parser :: Parser ([t1], [t2], [t3])
parser = fmap mconcat . many . choice $ [p1', p2', p3']

There are Monoid instances for tuples up to size five; beyond that, you can either use nested tuples or a more appropriate data structure.

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+1; nice implementation if this really is necessary. –  ehird Jan 6 '12 at 15:01
    
I think that's the closest it got get to elegance, luckily, my tuple has 5 elements :-). Thanks! –  aelguindy Jan 6 '12 at 15:18
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Representing the parsers as a list makes this easy. Using:

choice :: [Parser a] -> Parser a
many :: Parser a -> Parser [a]

We can write:

combineParsers :: [Parser a] -> Parser [a]
combineParsers = many . choice

This isn't quite right, as it bundles them all into a single list. Let's associate each parser with a unique identifier:

combineParsers' :: [(k, Parser a)] -> Parser [(k, a)]
combineParsers' = many . choice . combine
  where combine = map (\(k,p) -> (,) k <$> p)

We can then convert this back to the list form:

combineParsers :: [Parser a] -> Parser [[a]]
combineParsers ps = map snd . sortBy fst <$> combineParsers' (zip [0..] ps)

You could perhaps make this more efficient by writing combineParsers' :: [(k, Parser a)] -> Parser (Map k [a]) instead, using e.g. combine = map $ \(k,p) -> fmap (\a -> Map.insertWith (++) k [a]) p.

This requires that all the parsers have the same result type, so you'll need to wrap each of their results in a data-type with Cons <$> p for each p. You can then unwrap the constructor from each list. Admittedly, this is fairly ugly, but to do it heterogeneously with tuples would require even uglier type-class hacks.

There might be a simpler solution for your specific use-case, but this is the easiest way to do it generically that I can think of.

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@Rotsor: Oops, fixed! Thanks. –  ehird Jan 6 '12 at 13:57
    
I am still thinking about an elegant solution that avoids wrapping in a new type. Actually, my current solution is similar to what you suggest (except that it is hardcoded or instantiated to my types.. you made it abstract). –  aelguindy Jan 6 '12 at 14:01
    
@aelguindy: Well, what's k? If it's more than, say, 3, you're probably doing something unidiomatic. Concrete details about your situation would help. Here's an example: parsing different kinds of definition in source code. It makes sense to have a single Defn type to represent all definitions, and to wrap up different kinds of definitions in constructors of those. –  ehird Jan 6 '12 at 14:03
    
Well.. To be honest I am not very satisfied either. I don't want to do some type refactoring at the moment :-). In any case, I am still curious about the solution, be it useful or not. –  aelguindy Jan 6 '12 at 15:19
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You can't do this completely generically without type-level trickery, unfortunately. However, an approach along the lines of Daniel Wagner's suggestion can be constructed in DIY style, using polymorphic combinators and some pre-existing recursive instances. I'll present a simple example to demonstrate.

First, a few simpleminded parsers to test with:

type Parser = Parsec String ()

parseNumber :: Parser Int
parseNumber = read <$> many1 digit

parseBool :: Parser Bool
parseBool = string "yes" *> return True
        <|> string "no" *> return False

parseName :: Parser String
parseName = many1 letter

Next we create a "base case" type to mark the end of the possibilities, and give it a parser that always succeeds on no input.

data Nil = Nil deriving (Eq, Ord, Read, Show, Enum, Bounded)
instance Monoid Nil where 
    mempty = Nil
    mappend _ _ = Nil

parseNil :: Parser Nil
parseNil = return Nil

This is equivalent to (), of course--I'm only creating a new type to disambiguate in case we actually want to parse (). Next, the combinator that chains parsers together:

infixr 3 ?|>
(?|>) :: (Monoid b) => Parser a -> Parser b -> Parser ([a], b)
p1 ?|> p2 = ((,) <$> ((:[]) <$> p1) <*> pure mempty)
        <|> ((,) <$> pure [] <*> p2)

What's going on here is that p1 ?|> p2 tries p1, and if it succeeds wraps that in a singleton list and fills in mempty for the second element of the tuple. If p1 fails, if fills in an empty list and uses p2 for the second element.

parseOne :: Parser ([Int], ([Bool], ([String], Nil)))
parseOne = parseNumber ?|> parseBool ?|> parseName ?|> parseNil

Combining parsers with the new combinator is simple, and the result type is pretty self-explanatory.

parseMulti :: Parser ([Int], ([Bool], ([String], Nil)))
parseMulti = mconcat <$> many1 (parseOne <* newline)

We're relying on the recursive Monoid instance for tuples and the usual instance for lists to combine multiple lines. Now, to show that it works, define a quick test:

runTest = parseTest parseMulti testInput

testInput = unlines [ "yes", "123", "acdf", "8", "no", "qq" ]

Which parses successfully as Right ([123,8],([True,False],(["acdf","qq"],Nil))).

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I think this is very elegant, although I still do not understand the definition of (?|>). I find it a bit overly complicated for the problem.. but still very elegant! –  aelguindy Jan 6 '12 at 15:24
    
Why not use () instead of Nil? It already has a Monoid instance. –  ehird Jan 6 '12 at 15:25
    
Actually, I think I understand it perfectly now! Great idea! –  aelguindy Jan 6 '12 at 15:26
    
@ehird: Disambiguation, mostly. I like to be clear when I'm using something only as a sentinel or placeholder value, rather than simply using generic types. In fact, I'd probably be tempted to replace (,) as well, to make it clear that this is not actually parsing anything that looks like tuples. –  C. A. McCann Jan 6 '12 at 15:30
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