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Jun
6
awarded  Good Answer
Feb
4
comment In a data type definition, how can I 'name' similar references?
data Tree a = TrLeaf a | TrBranch (Branch a) ; data Branch a = Branch { leftBranch :: Tree a, rightBranch :: Tree a }
Jan
17
awarded  Guru
Jan
12
comment Declaring and working with Kinds in Haskell
@AthanClark I think you're asking if there's a way to declare new open world kinds in GHC in addition to k1 -> ... kN -> * and k1 -> ... -> kM -> Constraint. As far as I know, the answer is "no". All the other kinds in GHC arise as promotions of (closed) datatypes.
Jan
11
awarded  Yearling
Jan
8
revised Why does ParsecT type have 'u' argument?
use more words
Jan
8
answered Why does ParsecT type have 'u' argument?
Jan
8
comment Why does ParsecT type have 'u' argument?
You may want to look at stackoverflow.com/a/24981676/570682 - the user state is reset when trying alternatives (as with (<|>)) but an underlying MonadState m would not be.
Nov
19
awarded  Enlightened
Nov
19
awarded  Nice Answer
Nov
19
revised Type inference interferes with referential transparency
edited tags
Sep
19
revised Understanding the casts involved in patterns matching a datatype that is indexed over a user defined kind
formatting and more detailed explanation
Sep
19
answered Understanding the casts involved in patterns matching a datatype that is indexed over a user defined kind
Sep
10
comment A Stricter Control.Monad.Trans.Writer.Strict
Well "why not" was mostly anticipating responses like "it's not in a library because you broke the monad laws when you made it too strict" or some similar technical reason. Not something like "because [opinion]".
Sep
9
accepted A Stricter Control.Monad.Trans.Writer.Strict
Sep
9
asked A Stricter Control.Monad.Trans.Writer.Strict
Sep
8
comment Function application in Haskell
possible duplicate of Partial Application with Infix Functions
Sep
4
comment Can't get point free notation to compile in Haskell
unique = (== 1) .: length .: filter is also possible. On other hand (== 1) . length .: filter :: (Num ([a] -> Int), Eq ([a] -> Int)) => (a -> Bool) -> Bool may typecheck but isn't useful.
Sep
4
revised Can't get point free notation to compile in Haskell
((== 1) . length) :: [a] -> Bool is what we want to compose with filter.
Aug
25
answered Timeouts with ghc 7.8.3