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I want to implement the strict folding functions myself, from within Haskell: Is this possible? I've read that Lisp macros can be used to redefine the language to a massive extent, giving you the power to effectively break out of the functional paradigm whenever you need to and mould it into a personalised paradigm that gets the job done in the neatest way possible. I don't actually know lisp so that may be incorrect.

When you also take into account that in the untyped lambda calculus data types are encoded as functions, I begin to suspect that anything can be encoded as anything else (The brilliant book GEB discusses this in some detail). In that case, representing strict evaluation sounds like it should be easy.

So, how would you go about implementing the following from within haskell?

foldl'  = -- ???
foldl1' = -- ???

I suspect it has something to do with Monads and/or Continuation Passing.

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LISP is fundamentally different from Haskell. Anyway, a LISP macro, while it has the ability to add many new forms, can hardly make a LISP inherently lazy (although HoFs/CPS can be used in many cases) or add continuation support -- excepting as the dialect already has the fundamental properties to do so. And I daresay there are no amount of macros that can make a standard LISP dialect like Haskell ;-) LISP is still LISP, the ability to make DSLs easily aside. –  user166390 Dec 28 '11 at 2:46
You could always just click the "source" links in the documentation to see how they are implemented in the standard library. –  hammar Dec 28 '11 at 2:47
Note that a strict foldr would run against the spirit of that function, the ability to (begin to) produce results without evaluating the recursive call is a very important point. –  Daniel Fischer Dec 28 '11 at 2:54

1 Answer 1

up vote 3 down vote accepted

How can you implement foldl'? Like this

Haskell provides the seq primitive for adding strictness, and "bang patterns" as well for convenience.

See also: Haskell 2010 > Predefined Types and Classes # Strict Evaluation

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