Copyright | (c) Roman Leshchinskiy 2008-2010 |
---|---|
License | BSD-style |
Maintainer | Roman Leshchinskiy <rl@cse.unsw.edu.au> |
Stability | experimental |
Portability | non-portable |
Safe Haskell | None |
Language | Haskell2010 |
Data.Vector.Primitive
Contents
Description
Unboxed vectors of primitive types. The use of this module is not recommended except in very special cases. Adaptive unboxed vectors defined in Data.Vector.Unboxed are significantly more flexible at no performance cost.
Synopsis
- data Vector a = Vector !Int !Int !ByteArray
- data MVector s a = MVector !Int !Int !(MutableByteArray s)
- class Prim a
- length :: Prim a => Vector a -> Int
- null :: Prim a => Vector a -> Bool
- (!) :: Prim a => Vector a -> Int -> a
- (!?) :: Prim a => Vector a -> Int -> Maybe a
- head :: Prim a => Vector a -> a
- last :: Prim a => Vector a -> a
- unsafeIndex :: Prim a => Vector a -> Int -> a
- unsafeHead :: Prim a => Vector a -> a
- unsafeLast :: Prim a => Vector a -> a
- indexM :: (Prim a, Monad m) => Vector a -> Int -> m a
- headM :: (Prim a, Monad m) => Vector a -> m a
- lastM :: (Prim a, Monad m) => Vector a -> m a
- unsafeIndexM :: (Prim a, Monad m) => Vector a -> Int -> m a
- unsafeHeadM :: (Prim a, Monad m) => Vector a -> m a
- unsafeLastM :: (Prim a, Monad m) => Vector a -> m a
- slice :: Prim a => Int -> Int -> Vector a -> Vector a
- init :: Prim a => Vector a -> Vector a
- tail :: Prim a => Vector a -> Vector a
- take :: Prim a => Int -> Vector a -> Vector a
- drop :: Prim a => Int -> Vector a -> Vector a
- splitAt :: Prim a => Int -> Vector a -> (Vector a, Vector a)
- unsafeSlice :: Prim a => Int -> Int -> Vector a -> Vector a
- unsafeInit :: Prim a => Vector a -> Vector a
- unsafeTail :: Prim a => Vector a -> Vector a
- unsafeTake :: Prim a => Int -> Vector a -> Vector a
- unsafeDrop :: Prim a => Int -> Vector a -> Vector a
- empty :: Prim a => Vector a
- singleton :: Prim a => a -> Vector a
- replicate :: Prim a => Int -> a -> Vector a
- generate :: Prim a => Int -> (Int -> a) -> Vector a
- iterateN :: Prim a => Int -> (a -> a) -> a -> Vector a
- replicateM :: (Monad m, Prim a) => Int -> m a -> m (Vector a)
- generateM :: (Monad m, Prim a) => Int -> (Int -> m a) -> m (Vector a)
- iterateNM :: (Monad m, Prim a) => Int -> (a -> m a) -> a -> m (Vector a)
- create :: Prim a => (forall s. ST s (MVector s a)) -> Vector a
- createT :: (Traversable f, Prim a) => (forall s. ST s (f (MVector s a))) -> f (Vector a)
- unfoldr :: Prim a => (b -> Maybe (a, b)) -> b -> Vector a
- unfoldrN :: Prim a => Int -> (b -> Maybe (a, b)) -> b -> Vector a
- unfoldrM :: (Monad m, Prim a) => (b -> m (Maybe (a, b))) -> b -> m (Vector a)
- unfoldrNM :: (Monad m, Prim a) => Int -> (b -> m (Maybe (a, b))) -> b -> m (Vector a)
- constructN :: Prim a => Int -> (Vector a -> a) -> Vector a
- constructrN :: Prim a => Int -> (Vector a -> a) -> Vector a
- enumFromN :: (Prim a, Num a) => a -> Int -> Vector a
- enumFromStepN :: (Prim a, Num a) => a -> a -> Int -> Vector a
- enumFromTo :: (Prim a, Enum a) => a -> a -> Vector a
- enumFromThenTo :: (Prim a, Enum a) => a -> a -> a -> Vector a
- cons :: Prim a => a -> Vector a -> Vector a
- snoc :: Prim a => Vector a -> a -> Vector a
- (++) :: Prim a => Vector a -> Vector a -> Vector a
- concat :: Prim a => [Vector a] -> Vector a
- force :: Prim a => Vector a -> Vector a
- (//) :: Prim a => Vector a -> [(Int, a)] -> Vector a
- update_ :: Prim a => Vector a -> Vector Int -> Vector a -> Vector a
- unsafeUpd :: Prim a => Vector a -> [(Int, a)] -> Vector a
- unsafeUpdate_ :: Prim a => Vector a -> Vector Int -> Vector a -> Vector a
- accum :: Prim a => (a -> b -> a) -> Vector a -> [(Int, b)] -> Vector a
- accumulate_ :: (Prim a, Prim b) => (a -> b -> a) -> Vector a -> Vector Int -> Vector b -> Vector a
- unsafeAccum :: Prim a => (a -> b -> a) -> Vector a -> [(Int, b)] -> Vector a
- unsafeAccumulate_ :: (Prim a, Prim b) => (a -> b -> a) -> Vector a -> Vector Int -> Vector b -> Vector a
- reverse :: Prim a => Vector a -> Vector a
- backpermute :: Prim a => Vector a -> Vector Int -> Vector a
- unsafeBackpermute :: Prim a => Vector a -> Vector Int -> Vector a
- modify :: Prim a => (forall s. MVector s a -> ST s ()) -> Vector a -> Vector a
- map :: (Prim a, Prim b) => (a -> b) -> Vector a -> Vector b
- imap :: (Prim a, Prim b) => (Int -> a -> b) -> Vector a -> Vector b
- concatMap :: (Prim a, Prim b) => (a -> Vector b) -> Vector a -> Vector b
- mapM :: (Monad m, Prim a, Prim b) => (a -> m b) -> Vector a -> m (Vector b)
- mapM_ :: (Monad m, Prim a) => (a -> m b) -> Vector a -> m ()
- forM :: (Monad m, Prim a, Prim b) => Vector a -> (a -> m b) -> m (Vector b)
- forM_ :: (Monad m, Prim a) => Vector a -> (a -> m b) -> m ()
- zipWith :: (Prim a, Prim b, Prim c) => (a -> b -> c) -> Vector a -> Vector b -> Vector c
- zipWith3 :: (Prim a, Prim b, Prim c, Prim d) => (a -> b -> c -> d) -> Vector a -> Vector b -> Vector c -> Vector d
- zipWith4 :: (Prim a, Prim b, Prim c, Prim d, Prim e) => (a -> b -> c -> d -> e) -> Vector a -> Vector b -> Vector c -> Vector d -> Vector e
- zipWith5 :: (Prim a, Prim b, Prim c, Prim d, Prim e, Prim f) => (a -> b -> c -> d -> e -> f) -> Vector a -> Vector b -> Vector c -> Vector d -> Vector e -> Vector f
- zipWith6 :: (Prim a, Prim b, Prim c, Prim d, Prim e, Prim f, Prim g) => (a -> b -> c -> d -> e -> f -> g) -> Vector a -> Vector b -> Vector c -> Vector d -> Vector e -> Vector f -> Vector g
- izipWith :: (Prim a, Prim b, Prim c) => (Int -> a -> b -> c) -> Vector a -> Vector b -> Vector c
- izipWith3 :: (Prim a, Prim b, Prim c, Prim d) => (Int -> a -> b -> c -> d) -> Vector a -> Vector b -> Vector c -> Vector d
- izipWith4 :: (Prim a, Prim b, Prim c, Prim d, Prim e) => (Int -> a -> b -> c -> d -> e) -> Vector a -> Vector b -> Vector c -> Vector d -> Vector e
- izipWith5 :: (Prim a, Prim b, Prim c, Prim d, Prim e, Prim f) => (Int -> a -> b -> c -> d -> e -> f) -> Vector a -> Vector b -> Vector c -> Vector d -> Vector e -> Vector f
- izipWith6 :: (Prim a, Prim b, Prim c, Prim d, Prim e, Prim f, Prim g) => (Int -> a -> b -> c -> d -> e -> f -> g) -> Vector a -> Vector b -> Vector c -> Vector d -> Vector e -> Vector f -> Vector g
- zipWithM :: (Monad m, Prim a, Prim b, Prim c) => (a -> b -> m c) -> Vector a -> Vector b -> m (Vector c)
- zipWithM_ :: (Monad m, Prim a, Prim b) => (a -> b -> m c) -> Vector a -> Vector b -> m ()
- filter :: Prim a => (a -> Bool) -> Vector a -> Vector a
- ifilter :: Prim a => (Int -> a -> Bool) -> Vector a -> Vector a
- uniq :: (Prim a, Eq a) => Vector a -> Vector a
- mapMaybe :: (Prim a, Prim b) => (a -> Maybe b) -> Vector a -> Vector b
- imapMaybe :: (Prim a, Prim b) => (Int -> a -> Maybe b) -> Vector a -> Vector b
- filterM :: (Monad m, Prim a) => (a -> m Bool) -> Vector a -> m (Vector a)
- takeWhile :: Prim a => (a -> Bool) -> Vector a -> Vector a
- dropWhile :: Prim a => (a -> Bool) -> Vector a -> Vector a
- partition :: Prim a => (a -> Bool) -> Vector a -> (Vector a, Vector a)
- unstablePartition :: Prim a => (a -> Bool) -> Vector a -> (Vector a, Vector a)
- partitionWith :: (Prim a, Prim b, Prim c) => (a -> Either b c) -> Vector a -> (Vector b, Vector c)
- span :: Prim a => (a -> Bool) -> Vector a -> (Vector a, Vector a)
- break :: Prim a => (a -> Bool) -> Vector a -> (Vector a, Vector a)
- elem :: (Prim a, Eq a) => a -> Vector a -> Bool
- notElem :: (Prim a, Eq a) => a -> Vector a -> Bool
- find :: Prim a => (a -> Bool) -> Vector a -> Maybe a
- findIndex :: Prim a => (a -> Bool) -> Vector a -> Maybe Int
- findIndices :: Prim a => (a -> Bool) -> Vector a -> Vector Int
- elemIndex :: (Prim a, Eq a) => a -> Vector a -> Maybe Int
- elemIndices :: (Prim a, Eq a) => a -> Vector a -> Vector Int
- foldl :: Prim b => (a -> b -> a) -> a -> Vector b -> a
- foldl1 :: Prim a => (a -> a -> a) -> Vector a -> a
- foldl' :: Prim b => (a -> b -> a) -> a -> Vector b -> a
- foldl1' :: Prim a => (a -> a -> a) -> Vector a -> a
- foldr :: Prim a => (a -> b -> b) -> b -> Vector a -> b
- foldr1 :: Prim a => (a -> a -> a) -> Vector a -> a
- foldr' :: Prim a => (a -> b -> b) -> b -> Vector a -> b
- foldr1' :: Prim a => (a -> a -> a) -> Vector a -> a
- ifoldl :: Prim b => (a -> Int -> b -> a) -> a -> Vector b -> a
- ifoldl' :: Prim b => (a -> Int -> b -> a) -> a -> Vector b -> a
- ifoldr :: Prim a => (Int -> a -> b -> b) -> b -> Vector a -> b
- ifoldr' :: Prim a => (Int -> a -> b -> b) -> b -> Vector a -> b
- all :: Prim a => (a -> Bool) -> Vector a -> Bool
- any :: Prim a => (a -> Bool) -> Vector a -> Bool
- sum :: (Prim a, Num a) => Vector a -> a
- product :: (Prim a, Num a) => Vector a -> a
- maximum :: (Prim a, Ord a) => Vector a -> a
- maximumBy :: Prim a => (a -> a -> Ordering) -> Vector a -> a
- minimum :: (Prim a, Ord a) => Vector a -> a
- minimumBy :: Prim a => (a -> a -> Ordering) -> Vector a -> a
- minIndex :: (Prim a, Ord a) => Vector a -> Int
- minIndexBy :: Prim a => (a -> a -> Ordering) -> Vector a -> Int
- maxIndex :: (Prim a, Ord a) => Vector a -> Int
- maxIndexBy :: Prim a => (a -> a -> Ordering) -> Vector a -> Int
- foldM :: (Monad m, Prim b) => (a -> b -> m a) -> a -> Vector b -> m a
- foldM' :: (Monad m, Prim b) => (a -> b -> m a) -> a -> Vector b -> m a
- fold1M :: (Monad m, Prim a) => (a -> a -> m a) -> Vector a -> m a
- fold1M' :: (Monad m, Prim a) => (a -> a -> m a) -> Vector a -> m a
- foldM_ :: (Monad m, Prim b) => (a -> b -> m a) -> a -> Vector b -> m ()
- foldM'_ :: (Monad m, Prim b) => (a -> b -> m a) -> a -> Vector b -> m ()
- fold1M_ :: (Monad m, Prim a) => (a -> a -> m a) -> Vector a -> m ()
- fold1M'_ :: (Monad m, Prim a) => (a -> a -> m a) -> Vector a -> m ()
- prescanl :: (Prim a, Prim b) => (a -> b -> a) -> a -> Vector b -> Vector a
- prescanl' :: (Prim a, Prim b) => (a -> b -> a) -> a -> Vector b -> Vector a
- postscanl :: (Prim a, Prim b) => (a -> b -> a) -> a -> Vector b -> Vector a
- postscanl' :: (Prim a, Prim b) => (a -> b -> a) -> a -> Vector b -> Vector a
- scanl :: (Prim a, Prim b) => (a -> b -> a) -> a -> Vector b -> Vector a
- scanl' :: (Prim a, Prim b) => (a -> b -> a) -> a -> Vector b -> Vector a
- scanl1 :: Prim a => (a -> a -> a) -> Vector a -> Vector a
- scanl1' :: Prim a => (a -> a -> a) -> Vector a -> Vector a
- prescanr :: (Prim a, Prim b) => (a -> b -> b) -> b -> Vector a -> Vector b
- prescanr' :: (Prim a, Prim b) => (a -> b -> b) -> b -> Vector a -> Vector b
- postscanr :: (Prim a, Prim b) => (a -> b -> b) -> b -> Vector a -> Vector b
- postscanr' :: (Prim a, Prim b) => (a -> b -> b) -> b -> Vector a -> Vector b
- scanr :: (Prim a, Prim b) => (a -> b -> b) -> b -> Vector a -> Vector b
- scanr' :: (Prim a, Prim b) => (a -> b -> b) -> b -> Vector a -> Vector b
- scanr1 :: Prim a => (a -> a -> a) -> Vector a -> Vector a
- scanr1' :: Prim a => (a -> a -> a) -> Vector a -> Vector a
- toList :: Prim a => Vector a -> [a]
- fromList :: Prim a => [a] -> Vector a
- fromListN :: Prim a => Int -> [a] -> Vector a
- convert :: (Vector v a, Vector w a) => v a -> w a
- freeze :: (Prim a, PrimMonad m) => MVector (PrimState m) a -> m (Vector a)
- thaw :: (Prim a, PrimMonad m) => Vector a -> m (MVector (PrimState m) a)
- copy :: (Prim a, PrimMonad m) => MVector (PrimState m) a -> Vector a -> m ()
- unsafeFreeze :: (Prim a, PrimMonad m) => MVector (PrimState m) a -> m (Vector a)
- unsafeThaw :: (Prim a, PrimMonad m) => Vector a -> m (MVector (PrimState m) a)
- unsafeCopy :: (Prim a, PrimMonad m) => MVector (PrimState m) a -> Vector a -> m ()
Primitive vectors
Unboxed vectors of primitive types
Constructors
Vector !Int !Int !ByteArray | offset, length, underlying byte array |
Instances
NFData1 Vector Source # | Since: 0.12.1.0 |
Defined in Data.Vector.Primitive | |
Prim a => Vector Vector a Source # | |
Defined in Data.Vector.Primitive Methods basicUnsafeFreeze :: PrimMonad m => Mutable Vector (PrimState m) a -> m (Vector a) Source # basicUnsafeThaw :: PrimMonad m => Vector a -> m (Mutable Vector (PrimState m) a) Source # basicLength :: Vector a -> Int Source # basicUnsafeSlice :: Int -> Int -> Vector a -> Vector a Source # basicUnsafeIndexM :: Monad m => Vector a -> Int -> m a Source # basicUnsafeCopy :: PrimMonad m => Mutable Vector (PrimState m) a -> Vector a -> m () Source # | |
Prim a => IsList (Vector a) Source # | |
(Prim a, Eq a) => Eq (Vector a) Source # | |
(Data a, Prim a) => Data (Vector a) Source # | |
Defined in Data.Vector.Primitive Methods gfoldl :: (forall d b. Data d => c (d -> b) -> d -> c b) -> (forall g. g -> c g) -> Vector a -> c (Vector a) gunfold :: (forall b r. Data b => c (b -> r) -> c r) -> (forall r. r -> c r) -> Constr -> c (Vector a) toConstr :: Vector a -> Constr dataTypeOf :: Vector a -> DataType dataCast1 :: Typeable t => (forall d. Data d => c (t d)) -> Maybe (c (Vector a)) dataCast2 :: Typeable t => (forall d e. (Data d, Data e) => c (t d e)) -> Maybe (c (Vector a)) gmapT :: (forall b. Data b => b -> b) -> Vector a -> Vector a gmapQl :: (r -> r' -> r) -> r -> (forall d. Data d => d -> r') -> Vector a -> r gmapQr :: (r' -> r -> r) -> r -> (forall d. Data d => d -> r') -> Vector a -> r gmapQ :: (forall d. Data d => d -> u) -> Vector a -> [u] gmapQi :: Int -> (forall d. Data d => d -> u) -> Vector a -> u gmapM :: Monad m => (forall d. Data d => d -> m d) -> Vector a -> m (Vector a) gmapMp :: MonadPlus m => (forall d. Data d => d -> m d) -> Vector a -> m (Vector a) gmapMo :: MonadPlus m => (forall d. Data d => d -> m d) -> Vector a -> m (Vector a) | |
(Prim a, Ord a) => Ord (Vector a) Source # | |
Defined in Data.Vector.Primitive | |
(Read a, Prim a) => Read (Vector a) Source # | |
Defined in Data.Vector.Primitive | |
(Show a, Prim a) => Show (Vector a) Source # | |
Prim a => Semigroup (Vector a) Source # | |
Prim a => Monoid (Vector a) Source # | |
NFData (Vector a) Source # | |
Defined in Data.Vector.Primitive | |
type Mutable Vector Source # | |
Defined in Data.Vector.Primitive | |
type Item (Vector a) Source # | |
Defined in Data.Vector.Primitive type Item (Vector a) = a |
Mutable vectors of primitive types.
Constructors
MVector !Int !Int !(MutableByteArray s) | offset, length, underlying mutable byte array |
Instances
Prim a => MVector MVector a Source # | |
Defined in Data.Vector.Primitive.Mutable Methods basicLength :: MVector s a -> Int Source # basicUnsafeSlice :: Int -> Int -> MVector s a -> MVector s a Source # basicOverlaps :: MVector s a -> MVector s a -> Bool Source # basicUnsafeNew :: PrimMonad m => Int -> m (MVector (PrimState m) a) Source # basicInitialize :: PrimMonad m => MVector (PrimState m) a -> m () Source # basicUnsafeReplicate :: PrimMonad m => Int -> a -> m (MVector (PrimState m) a) Source # basicUnsafeRead :: PrimMonad m => MVector (PrimState m) a -> Int -> m a Source # basicUnsafeWrite :: PrimMonad m => MVector (PrimState m) a -> Int -> a -> m () Source # basicClear :: PrimMonad m => MVector (PrimState m) a -> m () Source # basicSet :: PrimMonad m => MVector (PrimState m) a -> a -> m () Source # basicUnsafeCopy :: PrimMonad m => MVector (PrimState m) a -> MVector (PrimState m) a -> m () Source # basicUnsafeMove :: PrimMonad m => MVector (PrimState m) a -> MVector (PrimState m) a -> m () Source # basicUnsafeGrow :: PrimMonad m => MVector (PrimState m) a -> Int -> m (MVector (PrimState m) a) Source # | |
NFData1 (MVector s) Source # | |
Defined in Data.Vector.Primitive.Mutable | |
NFData (MVector s a) Source # | |
Defined in Data.Vector.Primitive.Mutable |
Minimal complete definition
sizeOf#, alignment#, indexByteArray#, readByteArray#, writeByteArray#, setByteArray#, indexOffAddr#, readOffAddr#, writeOffAddr#, setOffAddr#
Instances
Prim Char | |
Defined in Data.Primitive.Types Methods sizeOf# :: Char -> Int# alignment# :: Char -> Int# indexByteArray# :: ByteArray# -> Int# -> Char readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, Char#) writeByteArray# :: MutableByteArray# s -> Int# -> Char -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> Char -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> Char readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, Char#) writeOffAddr# :: Addr# -> Int# -> Char -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> Char -> State# s -> State# s | |
Prim Double | |
Defined in Data.Primitive.Types Methods sizeOf# :: Double -> Int# alignment# :: Double -> Int# indexByteArray# :: ByteArray# -> Int# -> Double readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, Double#) writeByteArray# :: MutableByteArray# s -> Int# -> Double -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> Double -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> Double readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, Double#) writeOffAddr# :: Addr# -> Int# -> Double -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> Double -> State# s -> State# s | |
Prim Float | |
Defined in Data.Primitive.Types Methods sizeOf# :: Float -> Int# alignment# :: Float -> Int# indexByteArray# :: ByteArray# -> Int# -> Float readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, Float#) writeByteArray# :: MutableByteArray# s -> Int# -> Float -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> Float -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> Float readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, Float#) writeOffAddr# :: Addr# -> Int# -> Float -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> Float -> State# s -> State# s | |
Prim Int | |
Defined in Data.Primitive.Types Methods sizeOf# :: Int -> Int# alignment# :: Int -> Int# indexByteArray# :: ByteArray# -> Int# -> Int readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, Int#) writeByteArray# :: MutableByteArray# s -> Int# -> Int -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> Int -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> Int readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, Int#) writeOffAddr# :: Addr# -> Int# -> Int -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> Int -> State# s -> State# s | |
Prim Int8 | |
Defined in Data.Primitive.Types Methods sizeOf# :: Int8 -> Int# alignment# :: Int8 -> Int# indexByteArray# :: ByteArray# -> Int# -> Int8 readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, Int8#) writeByteArray# :: MutableByteArray# s -> Int# -> Int8 -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> Int8 -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> Int8 readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, Int8#) writeOffAddr# :: Addr# -> Int# -> Int8 -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> Int8 -> State# s -> State# s | |
Prim Int16 | |
Defined in Data.Primitive.Types Methods sizeOf# :: Int16 -> Int# alignment# :: Int16 -> Int# indexByteArray# :: ByteArray# -> Int# -> Int16 readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, Int16#) writeByteArray# :: MutableByteArray# s -> Int# -> Int16 -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> Int16 -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> Int16 readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, Int16#) writeOffAddr# :: Addr# -> Int# -> Int16 -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> Int16 -> State# s -> State# s | |
Prim Int32 | |
Defined in Data.Primitive.Types Methods sizeOf# :: Int32 -> Int# alignment# :: Int32 -> Int# indexByteArray# :: ByteArray# -> Int# -> Int32 readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, Int32#) writeByteArray# :: MutableByteArray# s -> Int# -> Int32 -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> Int32 -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> Int32 readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, Int32#) writeOffAddr# :: Addr# -> Int# -> Int32 -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> Int32 -> State# s -> State# s | |
Prim Int64 | |
Defined in Data.Primitive.Types Methods sizeOf# :: Int64 -> Int# alignment# :: Int64 -> Int# indexByteArray# :: ByteArray# -> Int# -> Int64 readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, Int64#) writeByteArray# :: MutableByteArray# s -> Int# -> Int64 -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> Int64 -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> Int64 readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, Int64#) writeOffAddr# :: Addr# -> Int# -> Int64 -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> Int64 -> State# s -> State# s | |
Prim Word | |
Defined in Data.Primitive.Types Methods sizeOf# :: Word -> Int# alignment# :: Word -> Int# indexByteArray# :: ByteArray# -> Int# -> Word readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, Word#) writeByteArray# :: MutableByteArray# s -> Int# -> Word -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> Word -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> Word readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, Word#) writeOffAddr# :: Addr# -> Int# -> Word -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> Word -> State# s -> State# s | |
Prim Word8 | |
Defined in Data.Primitive.Types Methods sizeOf# :: Word8 -> Int# alignment# :: Word8 -> Int# indexByteArray# :: ByteArray# -> Int# -> Word8 readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, Word8#) writeByteArray# :: MutableByteArray# s -> Int# -> Word8 -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> Word8 -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> Word8 readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, Word8#) writeOffAddr# :: Addr# -> Int# -> Word8 -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> Word8 -> State# s -> State# s | |
Prim Word16 | |
Defined in Data.Primitive.Types Methods sizeOf# :: Word16 -> Int# alignment# :: Word16 -> Int# indexByteArray# :: ByteArray# -> Int# -> Word16 readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, Word16#) writeByteArray# :: MutableByteArray# s -> Int# -> Word16 -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> Word16 -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> Word16 readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, Word16#) writeOffAddr# :: Addr# -> Int# -> Word16 -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> Word16 -> State# s -> State# s | |
Prim Word32 | |
Defined in Data.Primitive.Types Methods sizeOf# :: Word32 -> Int# alignment# :: Word32 -> Int# indexByteArray# :: ByteArray# -> Int# -> Word32 readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, Word32#) writeByteArray# :: MutableByteArray# s -> Int# -> Word32 -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> Word32 -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> Word32 readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, Word32#) writeOffAddr# :: Addr# -> Int# -> Word32 -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> Word32 -> State# s -> State# s | |
Prim Word64 | |
Defined in Data.Primitive.Types Methods sizeOf# :: Word64 -> Int# alignment# :: Word64 -> Int# indexByteArray# :: ByteArray# -> Int# -> Word64 readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, Word64#) writeByteArray# :: MutableByteArray# s -> Int# -> Word64 -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> Word64 -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> Word64 readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, Word64#) writeOffAddr# :: Addr# -> Int# -> Word64 -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> Word64 -> State# s -> State# s | |
Prim CInt | |
Defined in Data.Primitive.Types Methods sizeOf# :: CInt -> Int# alignment# :: CInt -> Int# indexByteArray# :: ByteArray# -> Int# -> CInt readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CInt#) writeByteArray# :: MutableByteArray# s -> Int# -> CInt -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CInt -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CInt readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CInt#) writeOffAddr# :: Addr# -> Int# -> CInt -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CInt -> State# s -> State# s | |
Prim CBool | |
Defined in Data.Primitive.Types Methods sizeOf# :: CBool -> Int# alignment# :: CBool -> Int# indexByteArray# :: ByteArray# -> Int# -> CBool readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CBool#) writeByteArray# :: MutableByteArray# s -> Int# -> CBool -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CBool -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CBool readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CBool#) writeOffAddr# :: Addr# -> Int# -> CBool -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CBool -> State# s -> State# s | |
Prim CChar | |
Defined in Data.Primitive.Types Methods sizeOf# :: CChar -> Int# alignment# :: CChar -> Int# indexByteArray# :: ByteArray# -> Int# -> CChar readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CChar#) writeByteArray# :: MutableByteArray# s -> Int# -> CChar -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CChar -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CChar readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CChar#) writeOffAddr# :: Addr# -> Int# -> CChar -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CChar -> State# s -> State# s | |
Prim CClock | |
Defined in Data.Primitive.Types Methods sizeOf# :: CClock -> Int# alignment# :: CClock -> Int# indexByteArray# :: ByteArray# -> Int# -> CClock readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CClock#) writeByteArray# :: MutableByteArray# s -> Int# -> CClock -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CClock -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CClock readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CClock#) writeOffAddr# :: Addr# -> Int# -> CClock -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CClock -> State# s -> State# s | |
Prim CDouble | |
Defined in Data.Primitive.Types Methods sizeOf# :: CDouble -> Int# alignment# :: CDouble -> Int# indexByteArray# :: ByteArray# -> Int# -> CDouble readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CDouble#) writeByteArray# :: MutableByteArray# s -> Int# -> CDouble -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CDouble -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CDouble readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CDouble#) writeOffAddr# :: Addr# -> Int# -> CDouble -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CDouble -> State# s -> State# s | |
Prim CFloat | |
Defined in Data.Primitive.Types Methods sizeOf# :: CFloat -> Int# alignment# :: CFloat -> Int# indexByteArray# :: ByteArray# -> Int# -> CFloat readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CFloat#) writeByteArray# :: MutableByteArray# s -> Int# -> CFloat -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CFloat -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CFloat readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CFloat#) writeOffAddr# :: Addr# -> Int# -> CFloat -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CFloat -> State# s -> State# s | |
Prim CIntMax | |
Defined in Data.Primitive.Types Methods sizeOf# :: CIntMax -> Int# alignment# :: CIntMax -> Int# indexByteArray# :: ByteArray# -> Int# -> CIntMax readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CIntMax#) writeByteArray# :: MutableByteArray# s -> Int# -> CIntMax -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CIntMax -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CIntMax readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CIntMax#) writeOffAddr# :: Addr# -> Int# -> CIntMax -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CIntMax -> State# s -> State# s | |
Prim CIntPtr | |
Defined in Data.Primitive.Types Methods sizeOf# :: CIntPtr -> Int# alignment# :: CIntPtr -> Int# indexByteArray# :: ByteArray# -> Int# -> CIntPtr readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CIntPtr#) writeByteArray# :: MutableByteArray# s -> Int# -> CIntPtr -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CIntPtr -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CIntPtr readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CIntPtr#) writeOffAddr# :: Addr# -> Int# -> CIntPtr -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CIntPtr -> State# s -> State# s | |
Prim CLLong | |
Defined in Data.Primitive.Types Methods sizeOf# :: CLLong -> Int# alignment# :: CLLong -> Int# indexByteArray# :: ByteArray# -> Int# -> CLLong readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CLLong#) writeByteArray# :: MutableByteArray# s -> Int# -> CLLong -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CLLong -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CLLong readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CLLong#) writeOffAddr# :: Addr# -> Int# -> CLLong -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CLLong -> State# s -> State# s | |
Prim CLong | |
Defined in Data.Primitive.Types Methods sizeOf# :: CLong -> Int# alignment# :: CLong -> Int# indexByteArray# :: ByteArray# -> Int# -> CLong readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CLong#) writeByteArray# :: MutableByteArray# s -> Int# -> CLong -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CLong -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CLong readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CLong#) writeOffAddr# :: Addr# -> Int# -> CLong -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CLong -> State# s -> State# s | |
Prim CPtrdiff | |
Defined in Data.Primitive.Types Methods sizeOf# :: CPtrdiff -> Int# alignment# :: CPtrdiff -> Int# indexByteArray# :: ByteArray# -> Int# -> CPtrdiff readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CPtrdiff#) writeByteArray# :: MutableByteArray# s -> Int# -> CPtrdiff -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CPtrdiff -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CPtrdiff readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CPtrdiff#) writeOffAddr# :: Addr# -> Int# -> CPtrdiff -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CPtrdiff -> State# s -> State# s | |
Prim CSChar | |
Defined in Data.Primitive.Types Methods sizeOf# :: CSChar -> Int# alignment# :: CSChar -> Int# indexByteArray# :: ByteArray# -> Int# -> CSChar readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CSChar#) writeByteArray# :: MutableByteArray# s -> Int# -> CSChar -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CSChar -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CSChar readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CSChar#) writeOffAddr# :: Addr# -> Int# -> CSChar -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CSChar -> State# s -> State# s | |
Prim CSUSeconds | |
Defined in Data.Primitive.Types Methods sizeOf# :: CSUSeconds -> Int# alignment# :: CSUSeconds -> Int# indexByteArray# :: ByteArray# -> Int# -> CSUSeconds readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CSUSeconds#) writeByteArray# :: MutableByteArray# s -> Int# -> CSUSeconds -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CSUSeconds -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CSUSeconds readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CSUSeconds#) writeOffAddr# :: Addr# -> Int# -> CSUSeconds -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CSUSeconds -> State# s -> State# s | |
Prim CShort | |
Defined in Data.Primitive.Types Methods sizeOf# :: CShort -> Int# alignment# :: CShort -> Int# indexByteArray# :: ByteArray# -> Int# -> CShort readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CShort#) writeByteArray# :: MutableByteArray# s -> Int# -> CShort -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CShort -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CShort readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CShort#) writeOffAddr# :: Addr# -> Int# -> CShort -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CShort -> State# s -> State# s | |
Prim CSigAtomic | |
Defined in Data.Primitive.Types Methods sizeOf# :: CSigAtomic -> Int# alignment# :: CSigAtomic -> Int# indexByteArray# :: ByteArray# -> Int# -> CSigAtomic readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CSigAtomic#) writeByteArray# :: MutableByteArray# s -> Int# -> CSigAtomic -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CSigAtomic -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CSigAtomic readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CSigAtomic#) writeOffAddr# :: Addr# -> Int# -> CSigAtomic -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CSigAtomic -> State# s -> State# s | |
Prim CSize | |
Defined in Data.Primitive.Types Methods sizeOf# :: CSize -> Int# alignment# :: CSize -> Int# indexByteArray# :: ByteArray# -> Int# -> CSize readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CSize#) writeByteArray# :: MutableByteArray# s -> Int# -> CSize -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CSize -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CSize readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CSize#) writeOffAddr# :: Addr# -> Int# -> CSize -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CSize -> State# s -> State# s | |
Prim CTime | |
Defined in Data.Primitive.Types Methods sizeOf# :: CTime -> Int# alignment# :: CTime -> Int# indexByteArray# :: ByteArray# -> Int# -> CTime readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CTime#) writeByteArray# :: MutableByteArray# s -> Int# -> CTime -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CTime -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CTime readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CTime#) writeOffAddr# :: Addr# -> Int# -> CTime -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CTime -> State# s -> State# s | |
Prim CUChar | |
Defined in Data.Primitive.Types Methods sizeOf# :: CUChar -> Int# alignment# :: CUChar -> Int# indexByteArray# :: ByteArray# -> Int# -> CUChar readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CUChar#) writeByteArray# :: MutableByteArray# s -> Int# -> CUChar -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CUChar -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CUChar readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CUChar#) writeOffAddr# :: Addr# -> Int# -> CUChar -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CUChar -> State# s -> State# s | |
Prim CUInt | |
Defined in Data.Primitive.Types Methods sizeOf# :: CUInt -> Int# alignment# :: CUInt -> Int# indexByteArray# :: ByteArray# -> Int# -> CUInt readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CUInt#) writeByteArray# :: MutableByteArray# s -> Int# -> CUInt -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CUInt -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CUInt readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CUInt#) writeOffAddr# :: Addr# -> Int# -> CUInt -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CUInt -> State# s -> State# s | |
Prim CUIntMax | |
Defined in Data.Primitive.Types Methods sizeOf# :: CUIntMax -> Int# alignment# :: CUIntMax -> Int# indexByteArray# :: ByteArray# -> Int# -> CUIntMax readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CUIntMax#) writeByteArray# :: MutableByteArray# s -> Int# -> CUIntMax -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CUIntMax -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CUIntMax readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CUIntMax#) writeOffAddr# :: Addr# -> Int# -> CUIntMax -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CUIntMax -> State# s -> State# s | |
Prim CUIntPtr | |
Defined in Data.Primitive.Types Methods sizeOf# :: CUIntPtr -> Int# alignment# :: CUIntPtr -> Int# indexByteArray# :: ByteArray# -> Int# -> CUIntPtr readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CUIntPtr#) writeByteArray# :: MutableByteArray# s -> Int# -> CUIntPtr -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CUIntPtr -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CUIntPtr readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CUIntPtr#) writeOffAddr# :: Addr# -> Int# -> CUIntPtr -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CUIntPtr -> State# s -> State# s | |
Prim CULLong | |
Defined in Data.Primitive.Types Methods sizeOf# :: CULLong -> Int# alignment# :: CULLong -> Int# indexByteArray# :: ByteArray# -> Int# -> CULLong readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CULLong#) writeByteArray# :: MutableByteArray# s -> Int# -> CULLong -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CULLong -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CULLong readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CULLong#) writeOffAddr# :: Addr# -> Int# -> CULLong -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CULLong -> State# s -> State# s | |
Prim CULong | |
Defined in Data.Primitive.Types Methods sizeOf# :: CULong -> Int# alignment# :: CULong -> Int# indexByteArray# :: ByteArray# -> Int# -> CULong readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CULong#) writeByteArray# :: MutableByteArray# s -> Int# -> CULong -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CULong -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CULong readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CULong#) writeOffAddr# :: Addr# -> Int# -> CULong -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CULong -> State# s -> State# s | |
Prim CUSeconds | |
Defined in Data.Primitive.Types Methods sizeOf# :: CUSeconds -> Int# alignment# :: CUSeconds -> Int# indexByteArray# :: ByteArray# -> Int# -> CUSeconds readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CUSeconds#) writeByteArray# :: MutableByteArray# s -> Int# -> CUSeconds -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CUSeconds -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CUSeconds readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CUSeconds#) writeOffAddr# :: Addr# -> Int# -> CUSeconds -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CUSeconds -> State# s -> State# s | |
Prim CUShort | |
Defined in Data.Primitive.Types Methods sizeOf# :: CUShort -> Int# alignment# :: CUShort -> Int# indexByteArray# :: ByteArray# -> Int# -> CUShort readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CUShort#) writeByteArray# :: MutableByteArray# s -> Int# -> CUShort -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CUShort -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CUShort readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CUShort#) writeOffAddr# :: Addr# -> Int# -> CUShort -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CUShort -> State# s -> State# s | |
Prim CWchar | |
Defined in Data.Primitive.Types Methods sizeOf# :: CWchar -> Int# alignment# :: CWchar -> Int# indexByteArray# :: ByteArray# -> Int# -> CWchar readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CWchar#) writeByteArray# :: MutableByteArray# s -> Int# -> CWchar -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CWchar -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CWchar readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CWchar#) writeOffAddr# :: Addr# -> Int# -> CWchar -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CWchar -> State# s -> State# s | |
Prim Addr | |
Defined in Data.Primitive.Types Methods sizeOf# :: Addr -> Int# alignment# :: Addr -> Int# indexByteArray# :: ByteArray# -> Int# -> Addr readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, Addr#) writeByteArray# :: MutableByteArray# s -> Int# -> Addr -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> Addr -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> Addr readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, Addr#) writeOffAddr# :: Addr# -> Int# -> Addr -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> Addr -> State# s -> State# s | |
Prim CBlkCnt | |
Defined in Data.Primitive.Types Methods sizeOf# :: CBlkCnt -> Int# alignment# :: CBlkCnt -> Int# indexByteArray# :: ByteArray# -> Int# -> CBlkCnt readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CBlkCnt#) writeByteArray# :: MutableByteArray# s -> Int# -> CBlkCnt -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CBlkCnt -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CBlkCnt readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CBlkCnt#) writeOffAddr# :: Addr# -> Int# -> CBlkCnt -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CBlkCnt -> State# s -> State# s | |
Prim CBlkSize | |
Defined in Data.Primitive.Types Methods sizeOf# :: CBlkSize -> Int# alignment# :: CBlkSize -> Int# indexByteArray# :: ByteArray# -> Int# -> CBlkSize readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CBlkSize#) writeByteArray# :: MutableByteArray# s -> Int# -> CBlkSize -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CBlkSize -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CBlkSize readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CBlkSize#) writeOffAddr# :: Addr# -> Int# -> CBlkSize -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CBlkSize -> State# s -> State# s | |
Prim CCc | |
Defined in Data.Primitive.Types Methods sizeOf# :: CCc -> Int# alignment# :: CCc -> Int# indexByteArray# :: ByteArray# -> Int# -> CCc readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CCc#) writeByteArray# :: MutableByteArray# s -> Int# -> CCc -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CCc -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CCc readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CCc#) writeOffAddr# :: Addr# -> Int# -> CCc -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CCc -> State# s -> State# s | |
Prim CClockId | |
Defined in Data.Primitive.Types Methods sizeOf# :: CClockId -> Int# alignment# :: CClockId -> Int# indexByteArray# :: ByteArray# -> Int# -> CClockId readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CClockId#) writeByteArray# :: MutableByteArray# s -> Int# -> CClockId -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CClockId -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CClockId readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CClockId#) writeOffAddr# :: Addr# -> Int# -> CClockId -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CClockId -> State# s -> State# s | |
Prim CDev | |
Defined in Data.Primitive.Types Methods sizeOf# :: CDev -> Int# alignment# :: CDev -> Int# indexByteArray# :: ByteArray# -> Int# -> CDev readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CDev#) writeByteArray# :: MutableByteArray# s -> Int# -> CDev -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CDev -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CDev readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CDev#) writeOffAddr# :: Addr# -> Int# -> CDev -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CDev -> State# s -> State# s | |
Prim CFsBlkCnt | |
Defined in Data.Primitive.Types Methods sizeOf# :: CFsBlkCnt -> Int# alignment# :: CFsBlkCnt -> Int# indexByteArray# :: ByteArray# -> Int# -> CFsBlkCnt readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CFsBlkCnt#) writeByteArray# :: MutableByteArray# s -> Int# -> CFsBlkCnt -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CFsBlkCnt -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CFsBlkCnt readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CFsBlkCnt#) writeOffAddr# :: Addr# -> Int# -> CFsBlkCnt -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CFsBlkCnt -> State# s -> State# s | |
Prim CFsFilCnt | |
Defined in Data.Primitive.Types Methods sizeOf# :: CFsFilCnt -> Int# alignment# :: CFsFilCnt -> Int# indexByteArray# :: ByteArray# -> Int# -> CFsFilCnt readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CFsFilCnt#) writeByteArray# :: MutableByteArray# s -> Int# -> CFsFilCnt -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CFsFilCnt -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CFsFilCnt readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CFsFilCnt#) writeOffAddr# :: Addr# -> Int# -> CFsFilCnt -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CFsFilCnt -> State# s -> State# s | |
Prim CGid | |
Defined in Data.Primitive.Types Methods sizeOf# :: CGid -> Int# alignment# :: CGid -> Int# indexByteArray# :: ByteArray# -> Int# -> CGid readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CGid#) writeByteArray# :: MutableByteArray# s -> Int# -> CGid -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CGid -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CGid readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CGid#) writeOffAddr# :: Addr# -> Int# -> CGid -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CGid -> State# s -> State# s | |
Prim CId | |
Defined in Data.Primitive.Types Methods sizeOf# :: CId -> Int# alignment# :: CId -> Int# indexByteArray# :: ByteArray# -> Int# -> CId readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CId#) writeByteArray# :: MutableByteArray# s -> Int# -> CId -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CId -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CId readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CId#) writeOffAddr# :: Addr# -> Int# -> CId -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CId -> State# s -> State# s | |
Prim CIno | |
Defined in Data.Primitive.Types Methods sizeOf# :: CIno -> Int# alignment# :: CIno -> Int# indexByteArray# :: ByteArray# -> Int# -> CIno readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CIno#) writeByteArray# :: MutableByteArray# s -> Int# -> CIno -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CIno -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CIno readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CIno#) writeOffAddr# :: Addr# -> Int# -> CIno -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CIno -> State# s -> State# s | |
Prim CKey | |
Defined in Data.Primitive.Types Methods sizeOf# :: CKey -> Int# alignment# :: CKey -> Int# indexByteArray# :: ByteArray# -> Int# -> CKey readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CKey#) writeByteArray# :: MutableByteArray# s -> Int# -> CKey -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CKey -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CKey readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CKey#) writeOffAddr# :: Addr# -> Int# -> CKey -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CKey -> State# s -> State# s | |
Prim CMode | |
Defined in Data.Primitive.Types Methods sizeOf# :: CMode -> Int# alignment# :: CMode -> Int# indexByteArray# :: ByteArray# -> Int# -> CMode readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CMode#) writeByteArray# :: MutableByteArray# s -> Int# -> CMode -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CMode -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CMode readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CMode#) writeOffAddr# :: Addr# -> Int# -> CMode -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CMode -> State# s -> State# s | |
Prim CNlink | |
Defined in Data.Primitive.Types Methods sizeOf# :: CNlink -> Int# alignment# :: CNlink -> Int# indexByteArray# :: ByteArray# -> Int# -> CNlink readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CNlink#) writeByteArray# :: MutableByteArray# s -> Int# -> CNlink -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CNlink -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CNlink readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CNlink#) writeOffAddr# :: Addr# -> Int# -> CNlink -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CNlink -> State# s -> State# s | |
Prim COff | |
Defined in Data.Primitive.Types Methods sizeOf# :: COff -> Int# alignment# :: COff -> Int# indexByteArray# :: ByteArray# -> Int# -> COff readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, COff#) writeByteArray# :: MutableByteArray# s -> Int# -> COff -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> COff -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> COff readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, COff#) writeOffAddr# :: Addr# -> Int# -> COff -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> COff -> State# s -> State# s | |
Prim CPid | |
Defined in Data.Primitive.Types Methods sizeOf# :: CPid -> Int# alignment# :: CPid -> Int# indexByteArray# :: ByteArray# -> Int# -> CPid readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CPid#) writeByteArray# :: MutableByteArray# s -> Int# -> CPid -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CPid -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CPid readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CPid#) writeOffAddr# :: Addr# -> Int# -> CPid -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CPid -> State# s -> State# s | |
Prim CRLim | |
Defined in Data.Primitive.Types Methods sizeOf# :: CRLim -> Int# alignment# :: CRLim -> Int# indexByteArray# :: ByteArray# -> Int# -> CRLim readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CRLim#) writeByteArray# :: MutableByteArray# s -> Int# -> CRLim -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CRLim -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CRLim readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CRLim#) writeOffAddr# :: Addr# -> Int# -> CRLim -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CRLim -> State# s -> State# s | |
Prim CSpeed | |
Defined in Data.Primitive.Types Methods sizeOf# :: CSpeed -> Int# alignment# :: CSpeed -> Int# indexByteArray# :: ByteArray# -> Int# -> CSpeed readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CSpeed#) writeByteArray# :: MutableByteArray# s -> Int# -> CSpeed -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CSpeed -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CSpeed readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CSpeed#) writeOffAddr# :: Addr# -> Int# -> CSpeed -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CSpeed -> State# s -> State# s | |
Prim CSsize | |
Defined in Data.Primitive.Types Methods sizeOf# :: CSsize -> Int# alignment# :: CSsize -> Int# indexByteArray# :: ByteArray# -> Int# -> CSsize readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CSsize#) writeByteArray# :: MutableByteArray# s -> Int# -> CSsize -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CSsize -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CSsize readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CSsize#) writeOffAddr# :: Addr# -> Int# -> CSsize -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CSsize -> State# s -> State# s | |
Prim CTcflag | |
Defined in Data.Primitive.Types Methods sizeOf# :: CTcflag -> Int# alignment# :: CTcflag -> Int# indexByteArray# :: ByteArray# -> Int# -> CTcflag readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CTcflag#) writeByteArray# :: MutableByteArray# s -> Int# -> CTcflag -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CTcflag -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CTcflag readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CTcflag#) writeOffAddr# :: Addr# -> Int# -> CTcflag -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CTcflag -> State# s -> State# s | |
Prim CTimer | |
Defined in Data.Primitive.Types Methods sizeOf# :: CTimer -> Int# alignment# :: CTimer -> Int# indexByteArray# :: ByteArray# -> Int# -> CTimer readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CTimer#) writeByteArray# :: MutableByteArray# s -> Int# -> CTimer -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CTimer -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CTimer readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CTimer#) writeOffAddr# :: Addr# -> Int# -> CTimer -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CTimer -> State# s -> State# s | |
Prim CUid | |
Defined in Data.Primitive.Types Methods sizeOf# :: CUid -> Int# alignment# :: CUid -> Int# indexByteArray# :: ByteArray# -> Int# -> CUid readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, CUid#) writeByteArray# :: MutableByteArray# s -> Int# -> CUid -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> CUid -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> CUid readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, CUid#) writeOffAddr# :: Addr# -> Int# -> CUid -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> CUid -> State# s -> State# s | |
Prim Fd | |
Defined in Data.Primitive.Types Methods sizeOf# :: Fd -> Int# alignment# :: Fd -> Int# indexByteArray# :: ByteArray# -> Int# -> Fd readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, Fd#) writeByteArray# :: MutableByteArray# s -> Int# -> Fd -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> Fd -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> Fd readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, Fd#) writeOffAddr# :: Addr# -> Int# -> Fd -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> Fd -> State# s -> State# s | |
Prim (Ptr a) | |
Defined in Data.Primitive.Types Methods sizeOf# :: Ptr a -> Int# alignment# :: Ptr a -> Int# indexByteArray# :: ByteArray# -> Int# -> Ptr a readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, Ptr a#) writeByteArray# :: MutableByteArray# s -> Int# -> Ptr a -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> Ptr a -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> Ptr a readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, Ptr a#) writeOffAddr# :: Addr# -> Int# -> Ptr a -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> Ptr a -> State# s -> State# s | |
Prim (FunPtr a) | |
Defined in Data.Primitive.Types Methods sizeOf# :: FunPtr a -> Int# alignment# :: FunPtr a -> Int# indexByteArray# :: ByteArray# -> Int# -> FunPtr a readByteArray# :: MutableByteArray# s -> Int# -> State# s -> (#State# s, FunPtr a#) writeByteArray# :: MutableByteArray# s -> Int# -> FunPtr a -> State# s -> State# s setByteArray# :: MutableByteArray# s -> Int# -> Int# -> FunPtr a -> State# s -> State# s indexOffAddr# :: Addr# -> Int# -> FunPtr a readOffAddr# :: Addr# -> Int# -> State# s -> (#State# s, FunPtr a#) writeOffAddr# :: Addr# -> Int# -> FunPtr a -> State# s -> State# s setOffAddr# :: Addr# -> Int# -> Int# -> FunPtr a -> State# s -> State# s |
Accessors
Length information
Indexing
unsafeIndex :: Prim a => Vector a -> Int -> a Source #
O(1) Unsafe indexing without bounds checking
unsafeHead :: Prim a => Vector a -> a Source #
O(1) First element without checking if the vector is empty
unsafeLast :: Prim a => Vector a -> a Source #
O(1) Last element without checking if the vector is empty
Monadic indexing
indexM :: (Prim a, Monad m) => Vector a -> Int -> m a Source #
O(1) Indexing in a monad.
The monad allows operations to be strict in the vector when necessary. Suppose vector copying is implemented like this:
copy mv v = ... write mv i (v ! i) ...
For lazy vectors, v ! i
would not be evaluated which means that mv
would unnecessarily retain a reference to v
in each element written.
With indexM
, copying can be implemented like this instead:
copy mv v = ... do x <- indexM v i write mv i x
Here, no references to v
are retained because indexing (but not the
elements) is evaluated eagerly.
headM :: (Prim a, Monad m) => Vector a -> m a Source #
O(1) First element of a vector in a monad. See indexM
for an
explanation of why this is useful.
lastM :: (Prim a, Monad m) => Vector a -> m a Source #
O(1) Last element of a vector in a monad. See indexM
for an
explanation of why this is useful.
unsafeIndexM :: (Prim a, Monad m) => Vector a -> Int -> m a Source #
O(1) Indexing in a monad without bounds checks. See indexM
for an
explanation of why this is useful.
unsafeHeadM :: (Prim a, Monad m) => Vector a -> m a Source #
O(1) First element in a monad without checking for empty vectors.
See indexM
for an explanation of why this is useful.
unsafeLastM :: (Prim a, Monad m) => Vector a -> m a Source #
O(1) Last element in a monad without checking for empty vectors.
See indexM
for an explanation of why this is useful.
Extracting subvectors (slicing)
O(1) Yield a slice of the vector without copying it. The vector must
contain at least i+n
elements.
init :: Prim a => Vector a -> Vector a Source #
O(1) Yield all but the last element without copying. The vector may not be empty.
tail :: Prim a => Vector a -> Vector a Source #
O(1) Yield all but the first element without copying. The vector may not be empty.
take :: Prim a => Int -> Vector a -> Vector a Source #
O(1) Yield at the first n
elements without copying. The vector may
contain less than n
elements in which case it is returned unchanged.
drop :: Prim a => Int -> Vector a -> Vector a Source #
O(1) Yield all but the first n
elements without copying. The vector may
contain less than n
elements in which case an empty vector is returned.
O(1) Yield a slice of the vector without copying. The vector must
contain at least i+n
elements but this is not checked.
unsafeInit :: Prim a => Vector a -> Vector a Source #
O(1) Yield all but the last element without copying. The vector may not be empty but this is not checked.
unsafeTail :: Prim a => Vector a -> Vector a Source #
O(1) Yield all but the first element without copying. The vector may not be empty but this is not checked.
unsafeTake :: Prim a => Int -> Vector a -> Vector a Source #
O(1) Yield the first n
elements without copying. The vector must
contain at least n
elements but this is not checked.
unsafeDrop :: Prim a => Int -> Vector a -> Vector a Source #
O(1) Yield all but the first n
elements without copying. The vector
must contain at least n
elements but this is not checked.
Construction
Initialisation
replicate :: Prim a => Int -> a -> Vector a Source #
O(n) Vector of the given length with the same value in each position
generate :: Prim a => Int -> (Int -> a) -> Vector a Source #
O(n) Construct a vector of the given length by applying the function to each index
iterateN :: Prim a => Int -> (a -> a) -> a -> Vector a Source #
O(n) Apply function n times to value. Zeroth element is original value.
Monadic initialisation
replicateM :: (Monad m, Prim a) => Int -> m a -> m (Vector a) Source #
O(n) Execute the monadic action the given number of times and store the results in a vector.
generateM :: (Monad m, Prim a) => Int -> (Int -> m a) -> m (Vector a) Source #
O(n) Construct a vector of the given length by applying the monadic action to each index
iterateNM :: (Monad m, Prim a) => Int -> (a -> m a) -> a -> m (Vector a) Source #
O(n) Apply monadic function n times to value. Zeroth element is original value.
create :: Prim a => (forall s. ST s (MVector s a)) -> Vector a Source #
Execute the monadic action and freeze the resulting vector.
create (do { v <- new 2; write v 0 'a'; write v 1 'b'; return v }) = <a
,b
>
createT :: (Traversable f, Prim a) => (forall s. ST s (f (MVector s a))) -> f (Vector a) Source #
Execute the monadic action and freeze the resulting vectors.
Unfolding
unfoldr :: Prim a => (b -> Maybe (a, b)) -> b -> Vector a Source #
O(n) Construct a vector by repeatedly applying the generator function
to a seed. The generator function yields Just
the next element and the
new seed or Nothing
if there are no more elements.
unfoldr (\n -> if n == 0 then Nothing else Just (n,n-1)) 10 = <10,9,8,7,6,5,4,3,2,1>
unfoldrN :: Prim a => Int -> (b -> Maybe (a, b)) -> b -> Vector a Source #
O(n) Construct a vector with at most n
elements by repeatedly applying
the generator function to a seed. The generator function yields Just
the
next element and the new seed or Nothing
if there are no more elements.
unfoldrN 3 (\n -> Just (n,n-1)) 10 = <10,9,8>
unfoldrM :: (Monad m, Prim a) => (b -> m (Maybe (a, b))) -> b -> m (Vector a) Source #
O(n) Construct a vector by repeatedly applying the monadic
generator function to a seed. The generator function yields Just
the next element and the new seed or Nothing
if there are no more
elements.
unfoldrNM :: (Monad m, Prim a) => Int -> (b -> m (Maybe (a, b))) -> b -> m (Vector a) Source #
O(n) Construct a vector by repeatedly applying the monadic
generator function to a seed. The generator function yields Just
the next element and the new seed or Nothing
if there are no more
elements.
constructN :: Prim a => Int -> (Vector a -> a) -> Vector a Source #
O(n) Construct a vector with n
elements by repeatedly applying the
generator function to the already constructed part of the vector.
constructN 3 f = let a = f <> ; b = f <a> ; c = f <a,b> in <a,b,c>
constructrN :: Prim a => Int -> (Vector a -> a) -> Vector a Source #
O(n) Construct a vector with n
elements from right to left by
repeatedly applying the generator function to the already constructed part
of the vector.
constructrN 3 f = let a = f <> ; b = f<a> ; c = f <b,a> in <c,b,a>
Enumeration
enumFromN :: (Prim a, Num a) => a -> Int -> Vector a Source #
O(n) Yield a vector of the given length containing the values x
, x+1
etc. This operation is usually more efficient than enumFromTo
.
enumFromN 5 3 = <5,6,7>
enumFromStepN :: (Prim a, Num a) => a -> a -> Int -> Vector a Source #
O(n) Yield a vector of the given length containing the values x
, x+y
,
x+y+y
etc. This operations is usually more efficient than enumFromThenTo
.
enumFromStepN 1 0.1 5 = <1,1.1,1.2,1.3,1.4>
enumFromTo :: (Prim a, Enum a) => a -> a -> Vector a Source #
O(n) Enumerate values from x
to y
.
WARNING: This operation can be very inefficient. If at all possible, use
enumFromN
instead.
enumFromThenTo :: (Prim a, Enum a) => a -> a -> a -> Vector a Source #
O(n) Enumerate values from x
to y
with a specific step z
.
WARNING: This operation can be very inefficient. If at all possible, use
enumFromStepN
instead.
Concatenation
Restricting memory usage
force :: Prim a => Vector a -> Vector a Source #
O(n) Yield the argument but force it not to retain any extra memory, possibly by copying it.
This is especially useful when dealing with slices. For example:
force (slice 0 2 <huge vector>)
Here, the slice retains a reference to the huge vector. Forcing it creates a copy of just the elements that belong to the slice and allows the huge vector to be garbage collected.
Modifying vectors
Bulk updates
Arguments
:: Prim a | |
=> Vector a | initial vector (of length |
-> [(Int, a)] | list of index/value pairs (of length |
-> Vector a |
O(m+n) For each pair (i,a)
from the list, replace the vector
element at position i
by a
.
<5,9,2,7> // [(2,1),(0,3),(2,8)] = <3,9,8,7>
Arguments
:: Prim a | |
=> Vector a | initial vector (of length |
-> Vector Int | index vector (of length |
-> Vector a | value vector (of length |
-> Vector a |
O(m+min(n1,n2)) For each index i
from the index vector and the
corresponding value a
from the value vector, replace the element of the
initial vector at position i
by a
.
update_ <5,9,2,7> <2,0,2> <1,3,8> = <3,9,8,7>
unsafeUpd :: Prim a => Vector a -> [(Int, a)] -> Vector a Source #
Same as (//
) but without bounds checking.
unsafeUpdate_ :: Prim a => Vector a -> Vector Int -> Vector a -> Vector a Source #
Same as update_
but without bounds checking.
Accumulations
Arguments
:: Prim a | |
=> (a -> b -> a) | accumulating function |
-> Vector a | initial vector (of length |
-> [(Int, b)] | list of index/value pairs (of length |
-> Vector a |
O(m+n) For each pair (i,b)
from the list, replace the vector element
a
at position i
by f a b
.
accum (+) <5,9,2> [(2,4),(1,6),(0,3),(1,7)] = <5+3, 9+6+7, 2+4>
Arguments
:: (Prim a, Prim b) | |
=> (a -> b -> a) | accumulating function |
-> Vector a | initial vector (of length |
-> Vector Int | index vector (of length |
-> Vector b | value vector (of length |
-> Vector a |
O(m+min(n1,n2)) For each index i
from the index vector and the
corresponding value b
from the the value vector,
replace the element of the initial vector at
position i
by f a b
.
accumulate_ (+) <5,9,2> <2,1,0,1> <4,6,3,7> = <5+3, 9+6+7, 2+4>
unsafeAccum :: Prim a => (a -> b -> a) -> Vector a -> [(Int, b)] -> Vector a Source #
Same as accum
but without bounds checking.
unsafeAccumulate_ :: (Prim a, Prim b) => (a -> b -> a) -> Vector a -> Vector Int -> Vector b -> Vector a Source #
Same as accumulate_
but without bounds checking.
Permutations
unsafeBackpermute :: Prim a => Vector a -> Vector Int -> Vector a Source #
Same as backpermute
but without bounds checking.
Safe destructive updates
modify :: Prim a => (forall s. MVector s a -> ST s ()) -> Vector a -> Vector a Source #
Apply a destructive operation to a vector. The operation will be performed in place if it is safe to do so and will modify a copy of the vector otherwise.
modify (\v -> write v 0 'x') (replicate
3 'a') = <'x','a','a'>
Elementwise operations
Mapping
map :: (Prim a, Prim b) => (a -> b) -> Vector a -> Vector b Source #
O(n) Map a function over a vector
imap :: (Prim a, Prim b) => (Int -> a -> b) -> Vector a -> Vector b Source #
O(n) Apply a function to every element of a vector and its index
concatMap :: (Prim a, Prim b) => (a -> Vector b) -> Vector a -> Vector b Source #
Map a function over a vector and concatenate the results.
Monadic mapping
mapM :: (Monad m, Prim a, Prim b) => (a -> m b) -> Vector a -> m (Vector b) Source #
O(n) Apply the monadic action to all elements of the vector, yielding a vector of results
mapM_ :: (Monad m, Prim a) => (a -> m b) -> Vector a -> m () Source #
O(n) Apply the monadic action to all elements of a vector and ignore the results
forM :: (Monad m, Prim a, Prim b) => Vector a -> (a -> m b) -> m (Vector b) Source #
O(n) Apply the monadic action to all elements of the vector, yielding a
vector of results. Equivalent to flip
.mapM
forM_ :: (Monad m, Prim a) => Vector a -> (a -> m b) -> m () Source #
O(n) Apply the monadic action to all elements of a vector and ignore the
results. Equivalent to flip
.mapM_
Zipping
zipWith :: (Prim a, Prim b, Prim c) => (a -> b -> c) -> Vector a -> Vector b -> Vector c Source #
O(min(m,n)) Zip two vectors with the given function.
zipWith3 :: (Prim a, Prim b, Prim c, Prim d) => (a -> b -> c -> d) -> Vector a -> Vector b -> Vector c -> Vector d Source #
Zip three vectors with the given function.
zipWith4 :: (Prim a, Prim b, Prim c, Prim d, Prim e) => (a -> b -> c -> d -> e) -> Vector a -> Vector b -> Vector c -> Vector d -> Vector e Source #
zipWith5 :: (Prim a, Prim b, Prim c, Prim d, Prim e, Prim f) => (a -> b -> c -> d -> e -> f) -> Vector a -> Vector b -> Vector c -> Vector d -> Vector e -> Vector f Source #
zipWith6 :: (Prim a, Prim b, Prim c, Prim d, Prim e, Prim f, Prim g) => (a -> b -> c -> d -> e -> f -> g) -> Vector a -> Vector b -> Vector c -> Vector d -> Vector e -> Vector f -> Vector g Source #
izipWith :: (Prim a, Prim b, Prim c) => (Int -> a -> b -> c) -> Vector a -> Vector b -> Vector c Source #
O(min(m,n)) Zip two vectors with a function that also takes the elements' indices.
izipWith3 :: (Prim a, Prim b, Prim c, Prim d) => (Int -> a -> b -> c -> d) -> Vector a -> Vector b -> Vector c -> Vector d Source #
Zip three vectors and their indices with the given function.
izipWith4 :: (Prim a, Prim b, Prim c, Prim d, Prim e) => (Int -> a -> b -> c -> d -> e) -> Vector a -> Vector b -> Vector c -> Vector d -> Vector e Source #
izipWith5 :: (Prim a, Prim b, Prim c, Prim d, Prim e, Prim f) => (Int -> a -> b -> c -> d -> e -> f) -> Vector a -> Vector b -> Vector c -> Vector d -> Vector e -> Vector f Source #
izipWith6 :: (Prim a, Prim b, Prim c, Prim d, Prim e, Prim f, Prim g) => (Int -> a -> b -> c -> d -> e -> f -> g) -> Vector a -> Vector b -> Vector c -> Vector d -> Vector e -> Vector f -> Vector g Source #
Monadic zipping
zipWithM :: (Monad m, Prim a, Prim b, Prim c) => (a -> b -> m c) -> Vector a -> Vector b -> m (Vector c) Source #
O(min(m,n)) Zip the two vectors with the monadic action and yield a vector of results
zipWithM_ :: (Monad m, Prim a, Prim b) => (a -> b -> m c) -> Vector a -> Vector b -> m () Source #
O(min(m,n)) Zip the two vectors with the monadic action and ignore the results
Working with predicates
Filtering
filter :: Prim a => (a -> Bool) -> Vector a -> Vector a Source #
O(n) Drop elements that do not satisfy the predicate
ifilter :: Prim a => (Int -> a -> Bool) -> Vector a -> Vector a Source #
O(n) Drop elements that do not satisfy the predicate which is applied to values and their indices
mapMaybe :: (Prim a, Prim b) => (a -> Maybe b) -> Vector a -> Vector b Source #
O(n) Drop elements when predicate returns Nothing
imapMaybe :: (Prim a, Prim b) => (Int -> a -> Maybe b) -> Vector a -> Vector b Source #
O(n) Drop elements when predicate, applied to index and value, returns Nothing
filterM :: (Monad m, Prim a) => (a -> m Bool) -> Vector a -> m (Vector a) Source #
O(n) Drop elements that do not satisfy the monadic predicate
takeWhile :: Prim a => (a -> Bool) -> Vector a -> Vector a Source #
O(n) Yield the longest prefix of elements satisfying the predicate without copying.
dropWhile :: Prim a => (a -> Bool) -> Vector a -> Vector a Source #
O(n) Drop the longest prefix of elements that satisfy the predicate without copying.
Partitioning
partition :: Prim a => (a -> Bool) -> Vector a -> (Vector a, Vector a) Source #
O(n) Split the vector in two parts, the first one containing those
elements that satisfy the predicate and the second one those that don't. The
relative order of the elements is preserved at the cost of a sometimes
reduced performance compared to unstablePartition
.
unstablePartition :: Prim a => (a -> Bool) -> Vector a -> (Vector a, Vector a) Source #
O(n) Split the vector in two parts, the first one containing those
elements that satisfy the predicate and the second one those that don't.
The order of the elements is not preserved but the operation is often
faster than partition
.
partitionWith :: (Prim a, Prim b, Prim c) => (a -> Either b c) -> Vector a -> (Vector b, Vector c) Source #
O(n) Split the vector in two parts, the first one containing the
Right
elements and the second containing the Left
elements.
The relative order of the elements is preserved.
Since: 0.12.1.0
span :: Prim a => (a -> Bool) -> Vector a -> (Vector a, Vector a) Source #
O(n) Split the vector into the longest prefix of elements that satisfy the predicate and the rest without copying.
break :: Prim a => (a -> Bool) -> Vector a -> (Vector a, Vector a) Source #
O(n) Split the vector into the longest prefix of elements that do not satisfy the predicate and the rest without copying.
Searching
elem :: (Prim a, Eq a) => a -> Vector a -> Bool infix 4 Source #
O(n) Check if the vector contains an element
notElem :: (Prim a, Eq a) => a -> Vector a -> Bool infix 4 Source #
O(n) Check if the vector does not contain an element (inverse of elem
)
find :: Prim a => (a -> Bool) -> Vector a -> Maybe a Source #
O(n) Yield Just
the first element matching the predicate or Nothing
if no such element exists.
findIndex :: Prim a => (a -> Bool) -> Vector a -> Maybe Int Source #
O(n) Yield Just
the index of the first element matching the predicate
or Nothing
if no such element exists.
findIndices :: Prim a => (a -> Bool) -> Vector a -> Vector Int Source #
O(n) Yield the indices of elements satisfying the predicate in ascending order.
elemIndex :: (Prim a, Eq a) => a -> Vector a -> Maybe Int Source #
O(n) Yield Just
the index of the first occurence of the given element or
Nothing
if the vector does not contain the element. This is a specialised
version of findIndex
.
elemIndices :: (Prim a, Eq a) => a -> Vector a -> Vector Int Source #
O(n) Yield the indices of all occurences of the given element in
ascending order. This is a specialised version of findIndices
.
Folding
foldl' :: Prim b => (a -> b -> a) -> a -> Vector b -> a Source #
O(n) Left fold with strict accumulator
foldl1' :: Prim a => (a -> a -> a) -> Vector a -> a Source #
O(n) Left fold on non-empty vectors with strict accumulator
foldr' :: Prim a => (a -> b -> b) -> b -> Vector a -> b Source #
O(n) Right fold with a strict accumulator
foldr1' :: Prim a => (a -> a -> a) -> Vector a -> a Source #
O(n) Right fold on non-empty vectors with strict accumulator
ifoldl :: Prim b => (a -> Int -> b -> a) -> a -> Vector b -> a Source #
O(n) Left fold (function applied to each element and its index)
ifoldl' :: Prim b => (a -> Int -> b -> a) -> a -> Vector b -> a Source #
O(n) Left fold with strict accumulator (function applied to each element and its index)
ifoldr :: Prim a => (Int -> a -> b -> b) -> b -> Vector a -> b Source #
O(n) Right fold (function applied to each element and its index)
ifoldr' :: Prim a => (Int -> a -> b -> b) -> b -> Vector a -> b Source #
O(n) Right fold with strict accumulator (function applied to each element and its index)
Specialised folds
all :: Prim a => (a -> Bool) -> Vector a -> Bool Source #
O(n) Check if all elements satisfy the predicate.
any :: Prim a => (a -> Bool) -> Vector a -> Bool Source #
O(n) Check if any element satisfies the predicate.
maximum :: (Prim a, Ord a) => Vector a -> a Source #
O(n) Yield the maximum element of the vector. The vector may not be empty.
maximumBy :: Prim a => (a -> a -> Ordering) -> Vector a -> a Source #
O(n) Yield the maximum element of the vector according to the given comparison function. The vector may not be empty.
minimum :: (Prim a, Ord a) => Vector a -> a Source #
O(n) Yield the minimum element of the vector. The vector may not be empty.
minimumBy :: Prim a => (a -> a -> Ordering) -> Vector a -> a Source #
O(n) Yield the minimum element of the vector according to the given comparison function. The vector may not be empty.
minIndex :: (Prim a, Ord a) => Vector a -> Int Source #
O(n) Yield the index of the minimum element of the vector. The vector may not be empty.
minIndexBy :: Prim a => (a -> a -> Ordering) -> Vector a -> Int Source #
O(n) Yield the index of the minimum element of the vector according to the given comparison function. The vector may not be empty.
maxIndex :: (Prim a, Ord a) => Vector a -> Int Source #
O(n) Yield the index of the maximum element of the vector. The vector may not be empty.
maxIndexBy :: Prim a => (a -> a -> Ordering) -> Vector a -> Int Source #
O(n) Yield the index of the maximum element of the vector according to the given comparison function. The vector may not be empty.
Monadic folds
foldM' :: (Monad m, Prim b) => (a -> b -> m a) -> a -> Vector b -> m a Source #
O(n) Monadic fold with strict accumulator
fold1M :: (Monad m, Prim a) => (a -> a -> m a) -> Vector a -> m a Source #
O(n) Monadic fold over non-empty vectors
fold1M' :: (Monad m, Prim a) => (a -> a -> m a) -> Vector a -> m a Source #
O(n) Monadic fold over non-empty vectors with strict accumulator
foldM_ :: (Monad m, Prim b) => (a -> b -> m a) -> a -> Vector b -> m () Source #
O(n) Monadic fold that discards the result
foldM'_ :: (Monad m, Prim b) => (a -> b -> m a) -> a -> Vector b -> m () Source #
O(n) Monadic fold with strict accumulator that discards the result
fold1M_ :: (Monad m, Prim a) => (a -> a -> m a) -> Vector a -> m () Source #
O(n) Monadic fold over non-empty vectors that discards the result
fold1M'_ :: (Monad m, Prim a) => (a -> a -> m a) -> Vector a -> m () Source #
O(n) Monadic fold over non-empty vectors with strict accumulator that discards the result
Prefix sums (scans)
prescanl' :: (Prim a, Prim b) => (a -> b -> a) -> a -> Vector b -> Vector a Source #
O(n) Prescan with strict accumulator
postscanl' :: (Prim a, Prim b) => (a -> b -> a) -> a -> Vector b -> Vector a Source #
O(n) Scan with strict accumulator
scanl :: (Prim a, Prim b) => (a -> b -> a) -> a -> Vector b -> Vector a Source #
O(n) Haskell-style scan
scanl f z <x1,...,xn> = <y1,...,y(n+1)> where y1 = z yi = f y(i-1) x(i-1)
Example: scanl (+) 0 <1,2,3,4> = <0,1,3,6,10>
scanl' :: (Prim a, Prim b) => (a -> b -> a) -> a -> Vector b -> Vector a Source #
O(n) Haskell-style scan with strict accumulator
scanl1 :: Prim a => (a -> a -> a) -> Vector a -> Vector a Source #
O(n) Scan over a non-empty vector
scanl f <x1,...,xn> = <y1,...,yn> where y1 = x1 yi = f y(i-1) xi
scanl1' :: Prim a => (a -> a -> a) -> Vector a -> Vector a Source #
O(n) Scan over a non-empty vector with a strict accumulator
prescanr' :: (Prim a, Prim b) => (a -> b -> b) -> b -> Vector a -> Vector b Source #
O(n) Right-to-left prescan with strict accumulator
postscanr :: (Prim a, Prim b) => (a -> b -> b) -> b -> Vector a -> Vector b Source #
O(n) Right-to-left scan
postscanr' :: (Prim a, Prim b) => (a -> b -> b) -> b -> Vector a -> Vector b Source #
O(n) Right-to-left scan with strict accumulator
scanr :: (Prim a, Prim b) => (a -> b -> b) -> b -> Vector a -> Vector b Source #
O(n) Right-to-left Haskell-style scan
scanr' :: (Prim a, Prim b) => (a -> b -> b) -> b -> Vector a -> Vector b Source #
O(n) Right-to-left Haskell-style scan with strict accumulator
scanr1 :: Prim a => (a -> a -> a) -> Vector a -> Vector a Source #
O(n) Right-to-left scan over a non-empty vector
scanr1' :: Prim a => (a -> a -> a) -> Vector a -> Vector a Source #
O(n) Right-to-left scan over a non-empty vector with a strict accumulator
Conversions
Lists
Other vector types
Mutable vectors
freeze :: (Prim a, PrimMonad m) => MVector (PrimState m) a -> m (Vector a) Source #
O(n) Yield an immutable copy of the mutable vector.
thaw :: (Prim a, PrimMonad m) => Vector a -> m (MVector (PrimState m) a) Source #
O(n) Yield a mutable copy of the immutable vector.
copy :: (Prim a, PrimMonad m) => MVector (PrimState m) a -> Vector a -> m () Source #
O(n) Copy an immutable vector into a mutable one. The two vectors must have the same length.
unsafeFreeze :: (Prim a, PrimMonad m) => MVector (PrimState m) a -> m (Vector a) Source #
O(1) Unsafe convert a mutable vector to an immutable one without copying. The mutable vector may not be used after this operation.