“Any function on finite lists that is defined by pairing the desired result with the argument list can always be redefined in terms of fold”

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谎友^
谎友^ 2021-02-19 18:42

I was reading through the paper A tutorial on the universality and expressiveness of fold, and am stuck on the section about generating tuples. After showing of how the normal d

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  • 2021-02-19 19:07

    Given the remark that you can / may need to use the original function inside, the claim as stated in your question seems trivial to me:

    rewriteAsFold :: ([a] -> (b, [a])) -> [a] -> (b, [a])
    rewriteAsFold g = foldr f v where
        f x ~(ys,xs) = (fst (g (x:xs)), x:xs)
        v            = (fst (g []), [])
    

    EDIT: Added the ~, after which it seems to work for infinite lists as well.

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