Or you can use the Monad return instead. But the type is not what you expect.The problem is that in p you are using do notation for bind, which uses the Monad instance for bind (>>=) for ((->) String), because Parser is a type alias for (String -> [(a, String)]. But then you are using your own return which is not of the same type as Monad's return would be. The way you have it now your return considers the loose `a` as the Monad parameter, but do notation considers it [(a, String)] instead.You can either a) write your own bind that conforms to your type.
bind :: Parser a -> (a -> Parser b) -> Parser b
bind = undefined
p' :: Parser (Char, Char)
p' = item `bind` \x -> item `bind` \_ -> item `bind` \y -> Foo.return (x, y)
p :: String -> ([(Char, String)], [(Char, String)])
p = do x <- item
item
y <- item
Prelude.return (x,y)On Mon, Nov 6, 2017 at 3:15 AM, Marcus Manning <iconsize@gmail.com> wrote:type Parser a = String → [(a,String)]item :: Parser Charitem = λinp → case inp of[] → [](x:xs) → [(x,xs)]failure :: Parser afailure = λinp → []return :: a → Parser areturn v = λinp → [(v,inp)](+++) :: Parser a → Parser a → Parser ap +++ q = λinp → case p inp of[] → q inp[(v,out)] → [(v,out)]parse :: Parser a → String → [(a,String)]parse p inp = p inpp :: Parser (Char,Char)p = do x ← itemitemy ← itemreturn (x,y)It is described in pages 189-216 in [1].I assume the bind operator (==>) was overwritten by(>>=) :: Parser a → (a → Parser b) → Parser b p>>= f = λinp → case parse p inp of[ ] → [ ][ (v, out) ] → parse (f v) outin order to manipulate the do expr to make the p function work, right?2017-11-05 21:56 GMT+01:00 Tobias Brandt <to_br@uni-bremen.de>:______________________________Hey,
can you show us your Parser definition?
Cheers,
Tobias
----- Nachricht von Marcus Manning <iconsize@gmail.com> ---------
Datum: Sun, 5 Nov 2017 18:51:57 +0100
Von: Marcus Manning <iconsize@gmail.com>
Antwort an: The Haskell-Beginners Mailing List - Discussion of primarily beginner-level topics related to Haskell <beginners@haskell.org>
Betreff: [Haskell-beginners] Could not get parser ready
An: beginners@haskell.org______________________________Hello,
I follow the instructions of script [1] in order to set up a parser functionality. But I' get into problems at page 202 with the code:
p :: Parser (Char,Char)
p = do
x ← item
item
y ← item
return (x,y)
ghci and ghc throw errors:
Prelude> let p:: Parser (Char,Char); p = do {x <- item; item; y <- item; return (x,y)}
<interactive>:10:65: error:
• Couldn't match type ‘[(Char, String)]’ with ‘Char’
Expected type: String -> [((Char, Char), String)]
Actual type: Parser ([(Char, String)], [(Char, String)])
• In a stmt of a 'do' block: return (x, y)
In the expression:
do x <- item
item
y <- item
return (x, y)
In an equation for ‘p’:
p = do x <- item
item
y <- item
....
Did the semantics of do expr changed?
[1] https://userpages.uni-koblenz.de/~laemmel/paradigms1011/reso urces/pdf/haskell.pdf
Cheers,
iconfly._________________
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