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In Haskell, lambdas are considered to be in WHNF, while unapplied user-defined functions are not. What was the motivation behind this distinction?

marked as duplicate by finnw, Brad Werth, Ganesh Sittampalam haskell Sep 3 '14 at 21:39

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    Note that as was somewhat discussed in that linked possible duplicate, the distinction between what is considered WHNF and what is considered something that will certainly, in a short time and without side effects evaluate into WHNF is a somewhat arbitrary decision. – Ørjan Johansen Aug 31 '14 at 22:31
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It's often useful to attach information to a function that needs to be calculated before you can ever evaluate the function, but that can afterwards be shared across invocations.

cleverFunction = \x -> simpleCombine x expensiveConstant
 where expensiveConstant = ...
       simpleCombine x c = ...

Note that though cleverFunction is defined as a lambda, it is not in WHNF because of the where block (sugar for (\l x -> ...) locBindings).

A lambda without any enclosing scope has no variables that could be calculated before invocation (variables in the lambda are only valid for a single call, and garbage-collected afterwards), i.e. it is already in normal form (actually NF, not just WHNF).

  • Even \x -> (1 + 1 :: Integer)? – immibis Nov 3 '16 at 3:54
  • @immibis ... - ? – leftaroundabout Nov 3 '16 at 11:08
  • It seems like (1 + 1 :: Integer) could be reduced to 2 :: Integer before the lambda is called – immibis Nov 3 '16 at 21:09
  • Well, yes, but that would be a matter of optimisation. Most definitely, \x -> 1 + undefined does not try to evaluate the result unless you call the function. I.e. semantically, a lambda is always already in NF. – leftaroundabout Nov 3 '16 at 21:16

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