Difference between revisions of "99 questions/Solutions/25"
< 99 questions | Solutions
Jump to navigation
Jump to search
(delete unneeded codes) |
|||
| Line 43: | Line 43: | ||
WARNING: this may choke long lists |
WARNING: this may choke long lists |
||
| + | |||
| + | |||
| + | [[Category:Programming exercise spoilers]] |
||
Revision as of 19:39, 18 January 2014
Generate a random permutation of the elements of a list.
rnd_permu xs = diff_select' (length xs) xs
Uses the solution for the previous problem. Choosing N distinct elements from a list of length N will yield a permutation.
Or we can generate the permutation recursively:
import System.Random (randomRIO)
rnd_permu :: [a] -> IO [a]
rnd_permu [] = return []
rnd_permu (x:xs) = do
rand <- randomRIO (0, (length xs))
rest <- rnd_permu xs
return $ let (ys,zs) = splitAt rand rest
in ys++(x:zs)
rnd_permu' [] = return []
rnd_permu' xs = do
rand <- randomRIO (0, (length xs)-1)
rest <- let (ys,(_:zs)) = splitAt rand xs
in rnd_permu' $ ys ++ zs
return $ (xs!!rand):rest
Or we can use the permutations function from Data.List:
import System.Random (getStdGen, randomRIO)
import Data.List (permutations)
rndElem :: [a] -> IO a
rndElem xs = do
index <- randomRIO (0, length xs - 1)
return $ xs !! index
rndPermutation :: [a] -> IO [a]
rndPermutation xs = rndElem . permutations $ xs
WARNING: this may choke long lists