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There are two strict versions of zipWith function:

1) Really strict, elements of lists l1 and l2 get evaluated so their thunks do not eat all stack space (Don Stewart code)

zipWith' f l1 l2 = [ f e1 e2 | (e1, e2) <- zipWith k l1 l2 ]
            where
                k x y = x `seq` y `seq` (x,y)

2) Not really strict, attempt to force evaluation by other way.

zipWith'' f l1 l2 = [ f e1 e2 | (e1, e2) <- zip (map (\x -> x `seq` x) l1) (map (\x -> x `seq` x) l2) ]

The question is: why the equivalent code from the 2nd example using map does not make the function also strict?

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1  
The zipWith' function will force any element thunks in l1 and l2 as it processes the elements, but the f e1 e2 thunk is not forced. –  augustss Jun 28 '11 at 11:18

2 Answers 2

up vote 15 down vote accepted

It's a common mistake to use

x `seq` x

Which is exactly equivalent to

x

An excellent explanation is available in Neil Mitchell's post on Bad Strictness.

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Interesting but it does not correspond why the following versions are not equivalent: zipWith''' f l1 l2 = [ f e1 e2 | (e1, e2) <- zip (sLst l1) (sLst l2) ] where sLst [] = [] sLst (x:xs) = x seq x : sLst xs and zipWith''' f l1 l2 = [ f e1 e2 | (e1, e2) <- zip (sLst l1) (sLst l2) ] where sLst [] = [] sLst (x:xs) = x : sLst xs –  David Unric Jun 28 '11 at 10:16
    
Recursive construction of list with x seq x : sLst xs makes it strict whereas "equivalent" x : sLst xs does not ... –  David Unric Jun 28 '11 at 10:19
    
Those are not equivalent. The first version you wrote is seq x (x : sLst xs). Mind the associativity. –  jaspervdj Jun 28 '11 at 10:37
    
Forget it, my mistake due to functions precedence. The former expression without parens did meant x seq (x : sLst xs). –  David Unric Jun 28 '11 at 10:40

Instead of tautological map, one can use this function to force the list:

evl []     = []
evl (x:xs) = x `seq` (x:evl xs)
-- Cannot figure out how to do this with fold.

Then the strict zipWith is

zipWith''' f xs ys = zipWith f (evl xs) (evl ys)
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This will not work for infinite lists, while Don's version will. –  jaspervdj Jun 28 '11 at 10:36
    
Some explanation for beginners like me why n.m.'s solution won't work for infinite lists ? –  David Unric Jun 28 '11 at 10:53
2  
@jaspervdj: It seems to work with infinite lists too (it forces the elements, not the spine). –  n.m. Jun 28 '11 at 11:01
    
Ok, my mistake. –  jaspervdj Jun 28 '11 at 11:31

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