Difference between revisions of "99 questions/Solutions/10"
< 99 questions | Solutions
Jump to navigation
Jump to search
m |
|||
| Line 32: | Line 32: | ||
encode xs = (enc . pack) xs |
encode xs = (enc . pack) xs |
||
where enc = foldr (\x acc -> (length x, head x) : acc) [] |
where enc = foldr (\x acc -> (length x, head x) : acc) [] |
||
| + | </haskell> |
||
| + | |||
| + | Or using takeWhile and dropWhile: |
||
| + | |||
| + | <haskell> |
||
| + | encode [] = [] |
||
| + | encode (x:xs) = (length $ x : takeWhile (==x) xs, x) : encode (dropWhile (==x) xs) |
||
</haskell> |
</haskell> |
||
Revision as of 14:56, 9 April 2011
(*) Run-length encoding of a list.
Use the result of problem P09 to implement the so-called run-length encoding data compression method. Consecutive duplicates of elements are encoded as lists (N E) where N is the number of duplicates of the element E.
encode xs = map (\x -> (length x,head x)) (group xs)
which can also be expressed as a list comprehension:
[(length x, head x) | x <- group xs]
Or writing it Pointfree (Note that the type signature is essential here to avoid hitting the Monomorphism Restriction):
encode :: Eq a => [a] -> [(Int, a)]
encode = map (\x -> (length x, head x)) . group
Or (ab)using the "&&&" arrow operator for tuples:
encode :: Eq a => [a] -> [(Int, a)]
encode xs = map (length &&& head) $ group xs
Or with the help of foldr (pack is the resulting function from P09):
encode xs = (enc . pack) xs
where enc = foldr (\x acc -> (length x, head x) : acc) []
Or using takeWhile and dropWhile:
encode [] = []
encode (x:xs) = (length $ x : takeWhile (==x) xs, x) : encode (dropWhile (==x) xs)