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How does the following function work:

mapEithers :: (a -> Either b c) -> [a] -> Either b [c]
mapEithers f (x:xs) = case mapEithers f xs of
                        Left err -> Left err
                        Right ys -> case f x of
                                      Left err -> Left err
                                      Right y -> Right (y:ys)
mapEithers _ _ = Right []

In the first case expression (case mapEithers f xs), how does it pattern match with Left and Right values when the function f has not be applied to the elements of the list yet.

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It's matching against the result of the recursive call to mapEithers which is an Either b [c]. –  Lee Nov 10 '13 at 14:48

2 Answers 2

up vote 1 down vote accepted

This is classic recursion, we apply mapEithers to a sublist yielding something of the type Either b [c], if it's Left b, the we just propagate that through.

If it's Right cs. Then we apply f to the head of the list. If this yields an error, we drop everything and propagate that up, if it's Right c, then the result is Right (c : cs).

And because we need a recusive base case, an empty list is Right [].

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But when you apply mapEithers to a sub list, then mapEithers again gets called due to recursion. This continues till the list becomes empty, in which case it should return Right []. But this doesn't happen. What am I inferring wrong ? –  Sibi Nov 10 '13 at 14:54
    
@Sibi To the contrary, this is exactly what happens ideone.com/gWIHlG. What do you see instead? –  jozefg Nov 10 '13 at 14:59
    
Are you missing the second part where after it becomes Right [] everthing is built back up? See the second little paragraph –  jozefg Nov 10 '13 at 15:06
    
Thanks, Understood now. :-) –  Sibi Nov 10 '13 at 15:25

For the record, this can be written more idiomatically with a fold. In real Haskell code, you rarely see explicit recursion. Rather, we have a bunch of functions (among other fold, replicateM, map, filter) which do the "heavy lifting" for us, and we only need to provide some parameters that customize them a little when we use them.

In your case, you have two Either values – the result from the rest of the list and the result from the current value. If both are Right you want them together in a list, and if they are Left you want to only keep the error message.

What I described can in Haskell be written as

(:) <$> f elem <*> rest

This will return the Left value if either f elem is a Left or if rest is a Left. If both are Right, it will extract the list from rest and the value from f elem and create a new list of both.

Put into a fold call, this means that mapEithers would in the real world be more likely to be written as

mapEithers f = foldr (\elem rest -> (:) <$> f elem <*> rest) (Right [])

Edit: I just realised it can be even simpler with a few additioal transformations. (My Haskell-fu isn't strong enough to be able to read this fluently though...)

mapEithers f = foldr (liftA2 (:) . f) (Right [])
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mapEither is also almost the same as a use of mapM, except that the latter chooses to shortcut on the first Left result instead of the last one as mapEither does. –  Ørjan Johansen Nov 11 '13 at 6:24

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