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Lee CSCE 314 TAMU 1 CSCE 314 Programming Languages Haskell: Higher-order Functions Dr. Hyunyoung Lee.

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Presentation on theme: "Lee CSCE 314 TAMU 1 CSCE 314 Programming Languages Haskell: Higher-order Functions Dr. Hyunyoung Lee."— Presentation transcript:

1 Lee CSCE 314 TAMU 1 CSCE 314 Programming Languages Haskell: Higher-order Functions Dr. Hyunyoung Lee

2 Lee CSCE 314 TAMU 2 Higher-order Functions A function is called higher-order if it takes a function as an argument or returns a function as a result. twice :: (a  a)  a  a twice f x = f (f x) twice is higher-order because it takes a function as its first argument. Note: Higher-order functions are very common in Haskell (and in functional programming). Writing higher-order functions is crucial practice for effective programming in Haskell, and for understanding others’ code.

3 Lee CSCE 314 TAMU 3 Why Are They Useful?  Common programming idioms can be encoded as functions within the language itself.  Domain specific languages can be defined as collections of higher-order functions. For example, higher-order functions for processing lists.  Algebraic properties of higher-order functions can be used to reason about programs.

4 Lee CSCE 314 TAMU 4 The Map Function The higher-order library function called map applies a function to every element of a list. map :: (a  b)  [a]  [b] For example: > map (+1) [1,3,5,7] [2,4,6,8] The map function can be defined in a particularly simple manner using a list comprehension: map f xs = [f x | x  xs] map f [] = [] map f (x:xs) = f x : map f xs Alternatively, it can also be defined using recursion:

5 Lee CSCE 314 TAMU 5 The Filter Function The higher-order library function filter selects every element from a list that satisfies a predicate. filter :: (a  Bool)  [a]  [a] For example: > filter even [1..10] [2,4,6,8,10] Alternatively, it can be defined using recursion: Filter can be defined using a list comprehension: filter p xs = [x | x  xs, p x] filter p [] = [] filter p (x:xs) | p x = x : filter p xs | otherwise = filter p xs

6 Lee CSCE 314 TAMU 6 The foldr Function A number of functions on lists can be defined using the following simple pattern of recursion: f [] = v f (x:xs) = x  f xs f maps the empty list to some value v, and any non-empty list to some function  applied to its head and f of its tail.

7 Lee CSCE 314 TAMU 7 For example: sum [] = 0 sum (x:xs) = x + sum xs and [] = True and (x:xs) = x && and xs product [] = 1 product (x:xs) = x * product xs v = 0  = + v = 1  = * v = True  = &&

8 Lee CSCE 314 TAMU 8 The higher-order library function foldr (fold right) encapsulates this simple pattern of recursion, with the function  and the value v as arguments. For example: sum = foldr (+) 0 product = foldr (*) 1 or = foldr (||) False and = foldr (&&) True

9 Lee CSCE 314 TAMU 9 foldr itself can be defined using recursion: foldr :: (a  b  b)  b  [a]  b foldr f v [] = v foldr f v (x:xs) = f x (foldr f v xs) However, it is best to think of foldr non-recursively, as simultaneously replacing each (:) in a list by a given function, and [] by a given value.

10 Lee CSCE 314 TAMU 10 sum [1,2,3] foldr (+) 0 [1,2,3] = foldr (+) 0 (1:(2:(3:[]))) = 1+(2+(3+0)) = 6 = For example: Replace each (:) by (+) and [] by 0.

11 Lee CSCE 314 TAMU 11 product [1,2,3] foldr (*) 1 [1,2,3] = foldr (*) 1 (1:(2:(3:[]))) = 1*(2*(3*1)) = 6 = For example: Replace each (:) by (*) and [] by 1.

12 Lee CSCE 314 TAMU 12 Other foldr Examples Even though foldr encapsulates a simple pattern of recursion, it can be used to define many more functions than might first be expected. Recall the length function: length :: [a]  Int length [] = 0 length (_:xs) = 1 + length xs

13 Lee CSCE 314 TAMU 13 length [1,2,3] length (1:(2:(3:[]))) = 1+(1+(1+0)) = 3 = Hence, we have: length = foldr (\_ n -> 1+n) 0 Replace each (:) by _ n  1+n and [] by 0 For example:

14 Lee CSCE 314 TAMU 14 Now the reverse function: reverse [] = [] reverse (x:xs) = reverse xs ++ [x] reverse [1,2,3] reverse (1:(2:(3:[]))) = (([] ++ [3]) ++ [2]) ++ [1] = [3,2,1] = For example: Replace each (:) by x xs  xs ++ [x] and [] by [] Hence, we have: reverse = foldr (\x xs -> xs ++ [x]) [] Here, the append function ( ++ ) has a particularly compact definition using foldr: (++ ys) = foldr (:) ys Replace each (:) by (:) and [] by ys.

15 Lee CSCE 314 TAMU 15 Why Is foldr Useful?  Some recursive functions on lists, such as sum, are simpler to define using foldr.  Properties of functions defined using foldr can be proved using algebraic properties of foldr.  Advanced program optimizations can be simpler if foldr is used in place of explicit recursion.

16 Lee CSCE 314 TAMU 16 foldr and foldl  foldr 1 : 2 : 3 : [] => (1 + (2 + (3 + 0)))  foldl 1 : 2 : 3 : [] => (((0 + 1) + 2) + 3) foldr :: (a  b  b)  b  [a]  b foldr f v [] = v foldr f v (x:xs) = f x (foldr f v xs) foldl :: (a  b  a)  a  [b]  a foldl f v [] = v foldl f v (x:xs) = foldl f (f v x) xs

17 Lee CSCE 314 TAMU 17 Other Library Functions The library function (.) returns the composition of two functions as a single function. (.) :: (b -> c) -> (a -> b) -> (a -> c) f. g = \x -> f (g x) For example: odd :: Int  Bool odd = not. even Exercise: Define filterOut p xs that retains elements that do not satisfy p. filterOut p xs = filter (not. p) xs > filterOut odd [1..10] [2,4,6,8,10]

18 Lee CSCE 314 TAMU 18 The library function all decides if every element of a list satisfies a given predicate. all :: (a  Bool)  [a]  Bool all p xs = and [p x | x  xs] For example: > all even [2,4,6,8,10] True

19 Lee CSCE 314 TAMU 19 Dually, the library function any decides if at least one element of a list satisfies a predicate. any :: (a  Bool)  [a]  Bool any p xs = or [p x | x  xs] For example: > any isSpace "abc def" True

20 Lee CSCE 314 TAMU 20 The library function takeWhile selects elements from a list while a predicate holds of all the elements. takeWhile :: (a  Bool)  [a]  [a] takeWhile p [] = [] takeWhile p (x:xs) | p x = x : takeWhile p xs | otherwise = [] For example: > takeWhile isAlpha "abc def" "abc"

21 Lee CSCE 314 TAMU 21 Dually, the function dropWhile removes elements while a predicate holds of all the elements. dropWhile :: (a  Bool)  [a]  [a] dropWhile p [] = [] dropWhile p (x:xs) | p x = dropWhile p xs | otherwise = x:xs For example: > dropWhile isSpace " abc" "abc"

22 Lee CSCE 314 TAMU 22 filter, map and foldr Typical use is to select certain elements, and then perform a mapping, for example, sumSquaresOfPos ls = foldr (+) 0 (map (^2) (filter (>= 0) ls)) > sumSquaresOfPos [-4,1,3,-8,10] 110 In pieces: keepPos = filter (>= 0) mapSquare = map (^2) sum = foldr (+) 0 sumSquaresOfPos ls = sum (mapSquare (keepPos ls)) sumSquaresOfPos = sum. mapSquare. keepPos Alternative definition:

23 Lee CSCE 314 TAMU 23 Exercises (3) Redefine map f and filter p using foldr. (2) Express the comprehension [f x | x  xs, p x] using the functions map and filter. (1) What are higher-order functions that return functions as results better known as?

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