Copyright | (c) Roman Leshchinskiy 2008-2010 Alexey Kuleshevich 2020-2022 Aleksey Khudyakov 2020-2022 Andrew Lelechenko 2020-2022 |
---|---|
License | BSD-style |
Maintainer | Haskell Libraries Team <libraries@haskell.org> |
Stability | experimental |
Portability | non-portable |
Safe Haskell | None |
Language | Haskell2010 |
Data.Stream.Monadic
Description
Monadic stream combinators.
Synopsis
- data Box a = Box {
- unBox :: a
- liftBox :: Monad m => Box a -> m a
- data Stream (m :: Type -> Type) a = Stream (s -> m (Step s a)) s
- data Step s a where
- data SPEC
- length :: Monad m => Stream m a -> m Int
- null :: Monad m => Stream m a -> m Bool
- empty :: forall (m :: Type -> Type) a. Monad m => Stream m a
- singleton :: forall (m :: Type -> Type) a. Monad m => a -> Stream m a
- cons :: forall (m :: Type -> Type) a. Monad m => a -> Stream m a -> Stream m a
- snoc :: forall (m :: Type -> Type) a. Monad m => Stream m a -> a -> Stream m a
- replicate :: forall (m :: Type -> Type) a. Monad m => Int -> a -> Stream m a
- replicateM :: Monad m => Int -> m a -> Stream m a
- generate :: forall (m :: Type -> Type) a. Monad m => Int -> (Int -> a) -> Stream m a
- generateM :: Monad m => Int -> (Int -> m a) -> Stream m a
- (++) :: forall (m :: Type -> Type) a. Monad m => Stream m a -> Stream m a -> Stream m a
- head :: (HasCallStack, Monad m) => Stream m a -> m a
- last :: (HasCallStack, Monad m) => Stream m a -> m a
- (!!) :: (HasCallStack, Monad m) => Stream m a -> Int -> m a
- (!?) :: Monad m => Stream m a -> Int -> m (Maybe a)
- slice :: forall (m :: Type -> Type) a. Monad m => Int -> Int -> Stream m a -> Stream m a
- init :: forall (m :: Type -> Type) a. (HasCallStack, Monad m) => Stream m a -> Stream m a
- tail :: forall (m :: Type -> Type) a. (HasCallStack, Monad m) => Stream m a -> Stream m a
- take :: forall (m :: Type -> Type) a. Monad m => Int -> Stream m a -> Stream m a
- drop :: forall (m :: Type -> Type) a. Monad m => Int -> Stream m a -> Stream m a
- map :: forall (m :: Type -> Type) a b. Monad m => (a -> b) -> Stream m a -> Stream m b
- mapM :: Monad m => (a -> m b) -> Stream m a -> Stream m b
- mapM_ :: Monad m => (a -> m b) -> Stream m a -> m ()
- trans :: (Monad m, Monad m') => (forall z. m z -> m' z) -> Stream m a -> Stream m' a
- unbox :: forall (m :: Type -> Type) a. Monad m => Stream m (Box a) -> Stream m a
- concatMap :: forall (m :: Type -> Type) a b. Monad m => (a -> Stream m b) -> Stream m a -> Stream m b
- flatten :: Monad m => (a -> m s) -> (s -> m (Step s b)) -> Stream m a -> Stream m b
- indexed :: forall (m :: Type -> Type) a. Monad m => Stream m a -> Stream m (Int, a)
- indexedR :: forall (m :: Type -> Type) a. Monad m => Int -> Stream m a -> Stream m (Int, a)
- zipWithM_ :: Monad m => (a -> b -> m c) -> Stream m a -> Stream m b -> m ()
- zipWithM :: Monad m => (a -> b -> m c) -> Stream m a -> Stream m b -> Stream m c
- zipWith3M :: Monad m => (a -> b -> c -> m d) -> Stream m a -> Stream m b -> Stream m c -> Stream m d
- zipWith4M :: Monad m => (a -> b -> c -> d -> m e) -> Stream m a -> Stream m b -> Stream m c -> Stream m d -> Stream m e
- zipWith5M :: Monad m => (a -> b -> c -> d -> e -> m f) -> Stream m a -> Stream m b -> Stream m c -> Stream m d -> Stream m e -> Stream m f
- zipWith6M :: Monad m => (a -> b -> c -> d -> e -> f -> m g) -> Stream m a -> Stream m b -> Stream m c -> Stream m d -> Stream m e -> Stream m f -> Stream m g
- zipWith :: forall (m :: Type -> Type) a b c. Monad m => (a -> b -> c) -> Stream m a -> Stream m b -> Stream m c
- zipWith3 :: forall (m :: Type -> Type) a b c d. Monad m => (a -> b -> c -> d) -> Stream m a -> Stream m b -> Stream m c -> Stream m d
- zipWith4 :: forall (m :: Type -> Type) a b c d e. Monad m => (a -> b -> c -> d -> e) -> Stream m a -> Stream m b -> Stream m c -> Stream m d -> Stream m e
- zipWith5 :: forall (m :: Type -> Type) a b c d e f. Monad m => (a -> b -> c -> d -> e -> f) -> Stream m a -> Stream m b -> Stream m c -> Stream m d -> Stream m e -> Stream m f
- zipWith6 :: forall (m :: Type -> Type) a b c d e f g. Monad m => (a -> b -> c -> d -> e -> f -> g) -> Stream m a -> Stream m b -> Stream m c -> Stream m d -> Stream m e -> Stream m f -> Stream m g
- zip :: forall (m :: Type -> Type) a b. Monad m => Stream m a -> Stream m b -> Stream m (a, b)
- zip3 :: forall (m :: Type -> Type) a b c. Monad m => Stream m a -> Stream m b -> Stream m c -> Stream m (a, b, c)
- zip4 :: forall (m :: Type -> Type) a b c d. Monad m => Stream m a -> Stream m b -> Stream m c -> Stream m d -> Stream m (a, b, c, d)
- zip5 :: forall (m :: Type -> Type) a b c d e. Monad m => Stream m a -> Stream m b -> Stream m c -> Stream m d -> Stream m e -> Stream m (a, b, c, d, e)
- zip6 :: forall (m :: Type -> Type) a b c d e f. Monad m => Stream m a -> Stream m b -> Stream m c -> Stream m d -> Stream m e -> Stream m f -> Stream m (a, b, c, d, e, f)
- eqBy :: Monad m => (a -> b -> Bool) -> Stream m a -> Stream m b -> m Bool
- cmpBy :: Monad m => (a -> b -> Ordering) -> Stream m a -> Stream m b -> m Ordering
- filter :: forall (m :: Type -> Type) a. Monad m => (a -> Bool) -> Stream m a -> Stream m a
- filterM :: Monad m => (a -> m Bool) -> Stream m a -> Stream m a
- uniq :: forall a (m :: Type -> Type). (Eq a, Monad m) => Stream m a -> Stream m a
- mapMaybe :: forall (m :: Type -> Type) a b. Monad m => (a -> Maybe b) -> Stream m a -> Stream m b
- mapMaybeM :: Monad m => (a -> m (Maybe b)) -> Stream m a -> Stream m b
- catMaybes :: forall (m :: Type -> Type) a. Monad m => Stream m (Maybe a) -> Stream m a
- takeWhile :: forall (m :: Type -> Type) a. Monad m => (a -> Bool) -> Stream m a -> Stream m a
- takeWhileM :: Monad m => (a -> m Bool) -> Stream m a -> Stream m a
- dropWhile :: forall (m :: Type -> Type) a. Monad m => (a -> Bool) -> Stream m a -> Stream m a
- dropWhileM :: Monad m => (a -> m Bool) -> Stream m a -> Stream m a
- elem :: (Monad m, Eq a) => a -> Stream m a -> m Bool
- notElem :: (Monad m, Eq a) => a -> Stream m a -> m Bool
- find :: Monad m => (a -> Bool) -> Stream m a -> m (Maybe a)
- findM :: Monad m => (a -> m Bool) -> Stream m a -> m (Maybe a)
- findIndex :: Monad m => (a -> Bool) -> Stream m a -> m (Maybe Int)
- findIndexM :: Monad m => (a -> m Bool) -> Stream m a -> m (Maybe Int)
- foldl :: Monad m => (a -> b -> a) -> a -> Stream m b -> m a
- foldlM :: Monad m => (a -> b -> m a) -> a -> Stream m b -> m a
- foldl1 :: Monad m => (a -> a -> a) -> Stream m a -> m a
- foldl1M :: (HasCallStack, Monad m) => (a -> a -> m a) -> Stream m a -> m a
- foldM :: Monad m => (a -> b -> m a) -> a -> Stream m b -> m a
- fold1M :: Monad m => (a -> a -> m a) -> Stream m a -> m a
- foldl' :: Monad m => (a -> b -> a) -> a -> Stream m b -> m a
- foldlM' :: Monad m => (a -> b -> m a) -> a -> Stream m b -> m a
- foldl1' :: Monad m => (a -> a -> a) -> Stream m a -> m a
- foldl1M' :: (HasCallStack, Monad m) => (a -> a -> m a) -> Stream m a -> m a
- foldM' :: Monad m => (a -> b -> m a) -> a -> Stream m b -> m a
- fold1M' :: Monad m => (a -> a -> m a) -> Stream m a -> m a
- foldr :: Monad m => (a -> b -> b) -> b -> Stream m a -> m b
- foldrM :: Monad m => (a -> b -> m b) -> b -> Stream m a -> m b
- foldr1 :: Monad m => (a -> a -> a) -> Stream m a -> m a
- foldr1M :: (HasCallStack, Monad m) => (a -> a -> m a) -> Stream m a -> m a
- and :: Monad m => Stream m Bool -> m Bool
- or :: Monad m => Stream m Bool -> m Bool
- concatMapM :: Monad m => (a -> m (Stream m b)) -> Stream m a -> Stream m b
- unfoldr :: forall (m :: Type -> Type) s a. Monad m => (s -> Maybe (a, s)) -> s -> Stream m a
- unfoldrM :: Monad m => (s -> m (Maybe (a, s))) -> s -> Stream m a
- unfoldrN :: forall (m :: Type -> Type) s a. Monad m => Int -> (s -> Maybe (a, s)) -> s -> Stream m a
- unfoldrNM :: Monad m => Int -> (s -> m (Maybe (a, s))) -> s -> Stream m a
- unfoldrExactN :: forall (m :: Type -> Type) s a. Monad m => Int -> (s -> (a, s)) -> s -> Stream m a
- unfoldrExactNM :: Monad m => Int -> (s -> m (a, s)) -> s -> Stream m a
- iterateN :: forall (m :: Type -> Type) a. Monad m => Int -> (a -> a) -> a -> Stream m a
- iterateNM :: Monad m => Int -> (a -> m a) -> a -> Stream m a
- prescanl :: forall (m :: Type -> Type) a b. Monad m => (a -> b -> a) -> a -> Stream m b -> Stream m a
- prescanlM :: Monad m => (a -> b -> m a) -> a -> Stream m b -> Stream m a
- prescanl' :: forall (m :: Type -> Type) a b. Monad m => (a -> b -> a) -> a -> Stream m b -> Stream m a
- prescanlM' :: Monad m => (a -> b -> m a) -> a -> Stream m b -> Stream m a
- postscanl :: forall (m :: Type -> Type) a b. Monad m => (a -> b -> a) -> a -> Stream m b -> Stream m a
- postscanlM :: Monad m => (a -> b -> m a) -> a -> Stream m b -> Stream m a
- postscanl' :: forall (m :: Type -> Type) a b. Monad m => (a -> b -> a) -> a -> Stream m b -> Stream m a
- postscanlM' :: Monad m => (a -> b -> m a) -> a -> Stream m b -> Stream m a
- scanl :: forall (m :: Type -> Type) a b. Monad m => (a -> b -> a) -> a -> Stream m b -> Stream m a
- scanlM :: Monad m => (a -> b -> m a) -> a -> Stream m b -> Stream m a
- scanl' :: forall (m :: Type -> Type) a b. Monad m => (a -> b -> a) -> a -> Stream m b -> Stream m a
- scanlM' :: Monad m => (a -> b -> m a) -> a -> Stream m b -> Stream m a
- scanl1 :: forall (m :: Type -> Type) a. Monad m => (a -> a -> a) -> Stream m a -> Stream m a
- scanl1M :: Monad m => (a -> a -> m a) -> Stream m a -> Stream m a
- scanl1' :: forall (m :: Type -> Type) a. Monad m => (a -> a -> a) -> Stream m a -> Stream m a
- scanl1M' :: Monad m => (a -> a -> m a) -> Stream m a -> Stream m a
- enumFromStepN :: forall a (m :: Type -> Type). (Num a, Monad m) => a -> a -> Int -> Stream m a
- enumFromTo :: forall a (m :: Type -> Type). (Enum a, Monad m) => a -> a -> Stream m a
- enumFromThenTo :: forall a (m :: Type -> Type). (Enum a, Monad m) => a -> a -> a -> Stream m a
- toList :: Monad m => Stream m a -> m [a]
- fromList :: forall (m :: Type -> Type) a. Monad m => [a] -> Stream m a
- fromListN :: forall (m :: Type -> Type) a. Monad m => Int -> [a] -> Stream m a
Box monad
Stream
Result of taking a single step in a stream
Length
Construction
cons :: forall (m :: Type -> Type) a. Monad m => a -> Stream m a -> Stream m a Source #
Prepend an element
snoc :: forall (m :: Type -> Type) a. Monad m => Stream m a -> a -> Stream m a Source #
Append an element
replicate :: forall (m :: Type -> Type) a. Monad m => Int -> a -> Stream m a Source #
Replicate a value to a given length
replicateM :: Monad m => Int -> m a -> Stream m a Source #
Yield a Stream
of values obtained by performing the monadic action the
given number of times
generateM :: Monad m => Int -> (Int -> m a) -> Stream m a Source #
Generate a stream from its indices
(++) :: forall (m :: Type -> Type) a. Monad m => Stream m a -> Stream m a -> Stream m a infixr 5 Source #
Concatenate two Stream
s
Accessing elements
head :: (HasCallStack, Monad m) => Stream m a -> m a Source #
First element of the Stream
or error if empty
last :: (HasCallStack, Monad m) => Stream m a -> m a Source #
Last element of the Stream
or error if empty
(!!) :: (HasCallStack, Monad m) => Stream m a -> Int -> m a infixl 9 Source #
Element at the given position
(!?) :: Monad m => Stream m a -> Int -> m (Maybe a) infixl 9 Source #
Element at the given position or Nothing
if out of bounds
Substreams
Arguments
:: forall (m :: Type -> Type) a. Monad m | |
=> Int | starting index |
-> Int | length |
-> Stream m a | |
-> Stream m a |
Extract a substream of the given length starting at the given position.
init :: forall (m :: Type -> Type) a. (HasCallStack, Monad m) => Stream m a -> Stream m a Source #
All but the last element
tail :: forall (m :: Type -> Type) a. (HasCallStack, Monad m) => Stream m a -> Stream m a Source #
All but the first element
take :: forall (m :: Type -> Type) a. Monad m => Int -> Stream m a -> Stream m a Source #
The first n
elements
drop :: forall (m :: Type -> Type) a. Monad m => Int -> Stream m a -> Stream m a Source #
All but the first n
elements
Mapping
map :: forall (m :: Type -> Type) a b. Monad m => (a -> b) -> Stream m a -> Stream m b Source #
Map a function over a Stream
mapM :: Monad m => (a -> m b) -> Stream m a -> Stream m b Source #
Map a monadic function over a Stream
mapM_ :: Monad m => (a -> m b) -> Stream m a -> m () Source #
Execute a monadic action for each element of the Stream
trans :: (Monad m, Monad m') => (forall z. m z -> m' z) -> Stream m a -> Stream m' a Source #
Transform a Stream
to use a different monad
concatMap :: forall (m :: Type -> Type) a b. Monad m => (a -> Stream m b) -> Stream m a -> Stream m b Source #
Zipping
indexed :: forall (m :: Type -> Type) a. Monad m => Stream m a -> Stream m (Int, a) Source #
Pair each element in a Stream
with its index
indexedR :: forall (m :: Type -> Type) a. Monad m => Int -> Stream m a -> Stream m (Int, a) Source #
Pair each element in a Stream
with its index, starting from the right
and counting down
zipWithM :: Monad m => (a -> b -> m c) -> Stream m a -> Stream m b -> Stream m c Source #
Zip two Stream
s with the given monadic function
zipWith3M :: Monad m => (a -> b -> c -> m d) -> Stream m a -> Stream m b -> Stream m c -> Stream m d Source #
zipWith4M :: Monad m => (a -> b -> c -> d -> m e) -> Stream m a -> Stream m b -> Stream m c -> Stream m d -> Stream m e Source #
zipWith5M :: Monad m => (a -> b -> c -> d -> e -> m f) -> Stream m a -> Stream m b -> Stream m c -> Stream m d -> Stream m e -> Stream m f Source #
zipWith6M :: Monad m => (a -> b -> c -> d -> e -> f -> m g) -> Stream m a -> Stream m b -> Stream m c -> Stream m d -> Stream m e -> Stream m f -> Stream m g Source #
zipWith :: forall (m :: Type -> Type) a b c. Monad m => (a -> b -> c) -> Stream m a -> Stream m b -> Stream m c Source #
zipWith3 :: forall (m :: Type -> Type) a b c d. Monad m => (a -> b -> c -> d) -> Stream m a -> Stream m b -> Stream m c -> Stream m d Source #
zipWith4 :: forall (m :: Type -> Type) a b c d e. Monad m => (a -> b -> c -> d -> e) -> Stream m a -> Stream m b -> Stream m c -> Stream m d -> Stream m e Source #
zipWith5 :: forall (m :: Type -> Type) a b c d e f. Monad m => (a -> b -> c -> d -> e -> f) -> Stream m a -> Stream m b -> Stream m c -> Stream m d -> Stream m e -> Stream m f Source #
zipWith6 :: forall (m :: Type -> Type) a b c d e f g. Monad m => (a -> b -> c -> d -> e -> f -> g) -> Stream m a -> Stream m b -> Stream m c -> Stream m d -> Stream m e -> Stream m f -> Stream m g Source #
zip :: forall (m :: Type -> Type) a b. Monad m => Stream m a -> Stream m b -> Stream m (a, b) Source #
zip3 :: forall (m :: Type -> Type) a b c. Monad m => Stream m a -> Stream m b -> Stream m c -> Stream m (a, b, c) Source #
zip4 :: forall (m :: Type -> Type) a b c d. Monad m => Stream m a -> Stream m b -> Stream m c -> Stream m d -> Stream m (a, b, c, d) Source #
zip5 :: forall (m :: Type -> Type) a b c d e. Monad m => Stream m a -> Stream m b -> Stream m c -> Stream m d -> Stream m e -> Stream m (a, b, c, d, e) Source #
zip6 :: forall (m :: Type -> Type) a b c d e f. Monad m => Stream m a -> Stream m b -> Stream m c -> Stream m d -> Stream m e -> Stream m f -> Stream m (a, b, c, d, e, f) Source #
Comparisons
eqBy :: Monad m => (a -> b -> Bool) -> Stream m a -> Stream m b -> m Bool Source #
Check if two Stream
s are equal
cmpBy :: Monad m => (a -> b -> Ordering) -> Stream m a -> Stream m b -> m Ordering Source #
Lexicographically compare two Stream
s
Filtering
filter :: forall (m :: Type -> Type) a. Monad m => (a -> Bool) -> Stream m a -> Stream m a Source #
Drop elements which do not satisfy the predicate
filterM :: Monad m => (a -> m Bool) -> Stream m a -> Stream m a Source #
Drop elements which do not satisfy the monadic predicate
uniq :: forall a (m :: Type -> Type). (Eq a, Monad m) => Stream m a -> Stream m a Source #
Drop repeated adjacent elements.
mapMaybe :: forall (m :: Type -> Type) a b. Monad m => (a -> Maybe b) -> Stream m a -> Stream m b Source #
mapMaybeM :: Monad m => (a -> m (Maybe b)) -> Stream m a -> Stream m b Source #
Apply monadic function to each element and drop all Nothings
Since: 0.12.2.0
takeWhile :: forall (m :: Type -> Type) a. Monad m => (a -> Bool) -> Stream m a -> Stream m a Source #
Longest prefix of elements that satisfy the predicate
takeWhileM :: Monad m => (a -> m Bool) -> Stream m a -> Stream m a Source #
Longest prefix of elements that satisfy the monadic predicate
dropWhile :: forall (m :: Type -> Type) a. Monad m => (a -> Bool) -> Stream m a -> Stream m a Source #
Drop the longest prefix of elements that satisfy the predicate
dropWhileM :: Monad m => (a -> m Bool) -> Stream m a -> Stream m a Source #
Drop the longest prefix of elements that satisfy the monadic predicate
Searching
elem :: (Monad m, Eq a) => a -> Stream m a -> m Bool infix 4 Source #
Check whether the Stream
contains an element
find :: Monad m => (a -> Bool) -> Stream m a -> m (Maybe a) Source #
Yield Just
the first element that satisfies the predicate or Nothing
if no such element exists.
findM :: Monad m => (a -> m Bool) -> Stream m a -> m (Maybe a) Source #
Yield Just
the first element that satisfies the monadic predicate or
Nothing
if no such element exists.
findIndex :: Monad m => (a -> Bool) -> Stream m a -> m (Maybe Int) Source #
Yield Just
the index of the first element that satisfies the predicate
or Nothing
if no such element exists.
findIndexM :: Monad m => (a -> m Bool) -> Stream m a -> m (Maybe Int) Source #
Yield Just
the index of the first element that satisfies the monadic
predicate or Nothing
if no such element exists.
Folding
foldlM :: Monad m => (a -> b -> m a) -> a -> Stream m b -> m a Source #
Left fold with a monadic operator
foldl1M :: (HasCallStack, Monad m) => (a -> a -> m a) -> Stream m a -> m a Source #
Left fold over a non-empty Stream
with a monadic operator
foldl' :: Monad m => (a -> b -> a) -> a -> Stream m b -> m a Source #
Left fold with a strict accumulator
foldlM' :: Monad m => (a -> b -> m a) -> a -> Stream m b -> m a Source #
Left fold with a strict accumulator and a monadic operator
foldl1' :: Monad m => (a -> a -> a) -> Stream m a -> m a Source #
Left fold over a non-empty Stream
with a strict accumulator
foldl1M' :: (HasCallStack, Monad m) => (a -> a -> m a) -> Stream m a -> m a Source #
Left fold over a non-empty Stream
with a strict accumulator and a
monadic operator
foldrM :: Monad m => (a -> b -> m b) -> b -> Stream m a -> m b Source #
Right fold with a monadic operator
foldr1M :: (HasCallStack, Monad m) => (a -> a -> m a) -> Stream m a -> m a Source #
Right fold over a non-empty stream with a monadic operator
Specialised folds
Unfolding
unfoldr :: forall (m :: Type -> Type) s a. Monad m => (s -> Maybe (a, s)) -> s -> Stream m a Source #
Unfold
unfoldrM :: Monad m => (s -> m (Maybe (a, s))) -> s -> Stream m a Source #
Unfold with a monadic function
unfoldrN :: forall (m :: Type -> Type) s a. Monad m => Int -> (s -> Maybe (a, s)) -> s -> Stream m a Source #
unfoldrNM :: Monad m => Int -> (s -> m (Maybe (a, s))) -> s -> Stream m a Source #
Unfold at most n
elements with a monadic function.
unfoldrExactN :: forall (m :: Type -> Type) s a. Monad m => Int -> (s -> (a, s)) -> s -> Stream m a Source #
Unfold exactly n
elements
Since: 0.12.2.0
unfoldrExactNM :: Monad m => Int -> (s -> m (a, s)) -> s -> Stream m a Source #
Unfold exactly n
elements with a monadic function.
Since: 0.12.2.0
iterateN :: forall (m :: Type -> Type) a. Monad m => Int -> (a -> a) -> a -> Stream m a Source #
O(n) Apply function \(\max(n - 1, 0)\) times to an initial value, producing a stream of \(\max(n, 0)\) values.
iterateNM :: Monad m => Int -> (a -> m a) -> a -> Stream m a Source #
O(n) Apply monadic function \(\max(n - 1, 0)\) times to an initial value, producing a stream of \(\max(n, 0)\) values.
Scans
prescanl :: forall (m :: Type -> Type) a b. Monad m => (a -> b -> a) -> a -> Stream m b -> Stream m a Source #
Prefix scan
prescanlM :: Monad m => (a -> b -> m a) -> a -> Stream m b -> Stream m a Source #
Prefix scan with a monadic operator
prescanl' :: forall (m :: Type -> Type) a b. Monad m => (a -> b -> a) -> a -> Stream m b -> Stream m a Source #
Prefix scan with strict accumulator
prescanlM' :: Monad m => (a -> b -> m a) -> a -> Stream m b -> Stream m a Source #
Prefix scan with strict accumulator and a monadic operator
postscanl :: forall (m :: Type -> Type) a b. Monad m => (a -> b -> a) -> a -> Stream m b -> Stream m a Source #
Suffix scan
postscanlM :: Monad m => (a -> b -> m a) -> a -> Stream m b -> Stream m a Source #
Suffix scan with a monadic operator
postscanl' :: forall (m :: Type -> Type) a b. Monad m => (a -> b -> a) -> a -> Stream m b -> Stream m a Source #
Suffix scan with strict accumulator
postscanlM' :: Monad m => (a -> b -> m a) -> a -> Stream m b -> Stream m a Source #
Suffix scan with strict acccumulator and a monadic operator
scanl :: forall (m :: Type -> Type) a b. Monad m => (a -> b -> a) -> a -> Stream m b -> Stream m a Source #
Haskell-style scan
scanlM :: Monad m => (a -> b -> m a) -> a -> Stream m b -> Stream m a Source #
Haskell-style scan with a monadic operator
scanl' :: forall (m :: Type -> Type) a b. Monad m => (a -> b -> a) -> a -> Stream m b -> Stream m a Source #
Haskell-style scan with strict accumulator
scanlM' :: Monad m => (a -> b -> m a) -> a -> Stream m b -> Stream m a Source #
Haskell-style scan with strict accumulator and a monadic operator
scanl1 :: forall (m :: Type -> Type) a. Monad m => (a -> a -> a) -> Stream m a -> Stream m a Source #
Initial-value free scan over a Stream
scanl1M :: Monad m => (a -> a -> m a) -> Stream m a -> Stream m a Source #
Initial-value free scan over a Stream
with a monadic operator
scanl1' :: forall (m :: Type -> Type) a. Monad m => (a -> a -> a) -> Stream m a -> Stream m a Source #
Initial-value free scan over a Stream
with a strict accumulator
scanl1M' :: Monad m => (a -> a -> m a) -> Stream m a -> Stream m a Source #
Initial-value free scan over a Stream
with a strict accumulator
and a monadic operator
Enumerations
enumFromStepN :: forall a (m :: Type -> Type). (Num a, Monad m) => a -> a -> Int -> Stream m a Source #
Yield a Stream
of the given length containing the values x
, x+y
,
x+y+y
etc.
enumFromTo :: forall a (m :: Type -> Type). (Enum a, Monad m) => a -> a -> Stream m a Source #
Enumerate values
WARNING: This operation can be very inefficient. If at all possible, use
enumFromStepN
instead.
enumFromThenTo :: forall a (m :: Type -> Type). (Enum a, Monad m) => a -> a -> a -> Stream m a Source #
Enumerate values with a given step.
WARNING: This operation is very inefficient. If at all possible, use
enumFromStepN
instead.