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It's ok to write something like that:

head $ foldr (:) [] [1..]
-- 1

But when I try to deal with tuples it goes to infinity loop:

head . fst $ foldr (\ x (ls, _) -> (x : ls, 0)) ([], 0) [1..]

The reason I need this is because I want to pass count of produced elements in inner function. Like that:

foldr go ([], 0) [1..]
go num (ls, cnt) = -- use cnt to get l and produce new pair (l : ls, cnt + 1)
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1 Answer 1

up vote 10 down vote accepted

Pattern matches are by default strict. That is,

(\(x,y) -> (1:x,y)) _|_ = _|_

You can use a lazy pattern match using the ~ pattern, though:

(\ ~(x,y) -> (1:x,y)) _|_ = (1:_|_, _|_)
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It helped, thanks! –  uv.nikita May 23 at 18:36

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