Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.
f :: Integer -> Integer -> [Integer]
f i n = n : f (i+2) (n+i)

can someone explain to me what it does. i know it returns [0,1,4,9,16..] but i dont understand how and what n : f means

share|improve this question
1  
You have syntax errors in your example... –  sth Jan 4 '11 at 1:38
5  
+1 THIS is how to ask a homework question. –  luqui Jan 4 '11 at 3:49
add comment

2 Answers 2

up vote 10 down vote accepted

: is the "cons" operator and constructs a new list whose head is the value to the left of the operator and whose tail is the value to the right of the operator. Thus 0 : [1, 2, 3] is the list [0, 1, 2, 3].

Check the behaviour of this function, by evaluating f 1 0 as follows:

f 1 0 = 0 : f 3 1

i.e. f 1 0 is the result of creating a new list consisting of 0 at the head and the list returned by f 3 1 as its tail. Similarly, f 3 1 is as follows:

f 3 1 = 1 : f 5 4

i.e. f 3 1 is the result of creating a new list consisting of 1 at the head and the list returned by f 5 4 as its tail.

Thus, the function recursively builds up a list. Furthermore, it is infinitely tail-recursive (since it has no terminating condition) and will thus result in an infinitely long list.

As for the initial line, f :: Integer -> Integer -> [Integer], this indicates that f is a function that takes two integers (Integer -> Integer) and returns a list of integers ([Integer]). Strictly speaking, f takes an integer (Integer) and returns another function that takes an integer and returns a list of integers (Integer -> [Integer]) as a resulting of function currying. This is a concept you will become familiar with as you get into Haskell and other functional programming languages in greater depth.

share|improve this answer
add comment

The code in your question does nothing because it contains a type error and a syntax error.

f :: Integer -> Integer --> [Integer]

As you can see from the highlighting the last bit is a comment because -- starts a comment in Haskell. As a consequence, the declared type of f is Integer -> Integer, which is wrong. To fix this change --> to ->.

f i n = n : f (i+2) (n+i]

Here you have an opening ( and then a closing ]. Obviously that's wrong. To fix this change (n+i] to (n+i).

Now that that that's done, here's what the fixed code does:

: is a constructor for the list type. x : xs is the list which has x as its head and xs as its tail. n : f (i+2) (n+i) gets parsed as n : (f (i+2) (n+i)) (not (n : f) (i+2) (n+1) as you seem to believe). So it creates a list whose head is n and its tail is the result of f (i+2) (n+1).

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.