Sign up ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

Let's say I have a function which can calculate power of four of a number defined by

let power4 x = x*x*x*x

And I try to pass x = (3 + 8)*2

let result = power4 ((3 + 8)*2) 

Since in Haskell, the values are evaluated until they are needed, does it mean that x will evaluate four times? If so, is there any way to improve the Haskell compiler?


share|improve this question
AFAIK the haskell-compiler is smart enough to use caching in such cases –  Carsten Oct 11 '11 at 4:51

2 Answers 2

up vote 9 down vote accepted

If you aren't sure, you could use trace to check (ref:

import Debug.Trace

power4 x = x*x*x*x

main = print $ power4 (trace "called" ((3+8)*2))



so the expression is only evaluated once.

share|improve this answer
I took the liberty of editing your answer to use the original (3+8)*2 instead of 4 (I found it confusing with 4); hope you don't mind. Feel free to revert. –  ShreevatsaR Oct 11 '11 at 5:07
@ShreevatsaR: Thanks. The expression should be wrapped in ( ... ) though, otherwise it will be (trace "called" (3+8)) * 2. –  kennytm Oct 11 '11 at 8:04
I also tend to check implementation behaviour with that trick. For instance, power4 x = (trace "called" x)*(trace "called" x)*(trace "called" x)*(trace "called" x) will output "called" once if compiled with optimization and four times otherwise. In this case, I think this correctly illustrates what really happens (I thought it was CSE kicking-in but GHC does not perform CSE for that kind of construct, must be something else). Still, I wonder if it's always a correct general inspection procedure given that trace is using unsafePerformIO. –  gawi Oct 11 '11 at 17:02

No, it will only be evaluated once. In call by name it would be evaluated four times, but all Haskell implementations are call by need (although the standard does not require this), which means each expression will be evaluated at most once.

This only applies when the expression is fully concrete. E.g. there is no guarantee that in:

foo x = x + (1+2)

bar = foo 3 + foo 4

That when computing bar, (1+2) will be evaluated only once. In fact, it will probably be evaluated twice (if compiled without optimizations).

share|improve this answer
Could you explain "fully concrete"? –  ShreevatsaR Oct 11 '11 at 5:21
Can the compiler not completely remove 1+2 from the runtime? At least if foo :: Int -> Int. — Regardless, what you say is at any rate true for foo x y = x + (1+y) bar = foo 3 2 + foo 4 2: here (1+y) (=1+2) will certainly be evaluated twice. –  leftaroundabout Oct 11 '11 at 8:47

Your Answer


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.