Haskell Monad 状态示例
Haskell Monad State Example
我正在试验 Haskell 的 Control.Monad.State,尝试遍历字符串或整数列表,对它们进行计数,然后用整数 0 替换字符串条目.我设法完成了计数部分,但未能创建替换列表。这是我的代码
正确地将 [3,6] 打印到屏幕上。我怎样才能让它创建所需的列表 [6,0,3,8,0,2,9,1,0]?
module Main( main ) where
import Control.Monad.State
l = [
Right 6,
Left "AAA",
Right 3,
Right 8,
Left "CCC",
Right 2,
Right 9,
Right 1,
Left "D"]
scanList :: [ Either String Int ] -> State (Int,Int) [ Int ]
scanList [ ] = do
(ns,ni) <- get
return (ns:[ni])
scanList (x:xs) = do
(ns,ni) <- get
case x of
Left _ -> put (ns+1,ni)
Right _ -> put (ns,ni+1)
case x of
Left _ -> scanList xs -- [0] ++ scanList xs not working ...
Right i -> scanList xs -- [i] ++ scanList xs not working ...
startState = (0,0)
main = do
print $ evalState (scanList l) startState
[0] ++ scanList xs 不起作用,因为 scanList xs 不是列表,而是 State (Int,Int) [Int]。要解决此问题,您需要使用 fmap/<$>.
您还需要更改基本情况,使状态值不成为 return 值。
scanList :: [Either String Int] -> State (Int, Int) [Int]
scanList [] = return []
scanList (x:xs) = do
(ns,ni) <- get
case x of
Left _ -> put (ns+1, ni)
Right _ -> put (ns, ni+1)
case x of
Left _ -> (0 :) <$> scanList xs
Right i -> (i :) <$> scanList xs
然而,为了进一步简化代码,最好使用 mapM/traverse 和 state 来删除递归的大部分样板文件和 get/put 语法。
scanList :: [Either String Int] -> State (Int, Int) [Int]
scanList = mapM $ \x -> state $ \(ns, ni) -> case x of
Left _ -> (0, (ns+1, ni))
Right i -> (i, (ns, ni+1))
我正在试验 Haskell 的 Control.Monad.State,尝试遍历字符串或整数列表,对它们进行计数,然后用整数 0 替换字符串条目.我设法完成了计数部分,但未能创建替换列表。这是我的代码
正确地将 [3,6] 打印到屏幕上。我怎样才能让它创建所需的列表 [6,0,3,8,0,2,9,1,0]?
module Main( main ) where
import Control.Monad.State
l = [
Right 6,
Left "AAA",
Right 3,
Right 8,
Left "CCC",
Right 2,
Right 9,
Right 1,
Left "D"]
scanList :: [ Either String Int ] -> State (Int,Int) [ Int ]
scanList [ ] = do
(ns,ni) <- get
return (ns:[ni])
scanList (x:xs) = do
(ns,ni) <- get
case x of
Left _ -> put (ns+1,ni)
Right _ -> put (ns,ni+1)
case x of
Left _ -> scanList xs -- [0] ++ scanList xs not working ...
Right i -> scanList xs -- [i] ++ scanList xs not working ...
startState = (0,0)
main = do
print $ evalState (scanList l) startState
[0] ++ scanList xs 不起作用,因为 scanList xs 不是列表,而是 State (Int,Int) [Int]。要解决此问题,您需要使用 fmap/<$>.
您还需要更改基本情况,使状态值不成为 return 值。
scanList :: [Either String Int] -> State (Int, Int) [Int]
scanList [] = return []
scanList (x:xs) = do
(ns,ni) <- get
case x of
Left _ -> put (ns+1, ni)
Right _ -> put (ns, ni+1)
case x of
Left _ -> (0 :) <$> scanList xs
Right i -> (i :) <$> scanList xs
然而,为了进一步简化代码,最好使用 mapM/traverse 和 state 来删除递归的大部分样板文件和 get/put 语法。
scanList :: [Either String Int] -> State (Int, Int) [Int]
scanList = mapM $ \x -> state $ \(ns, ni) -> case x of
Left _ -> (0, (ns+1, ni))
Right i -> (i, (ns, ni+1))