10

Example of broken code:

data Foo = Foo {
    bar :: (Int -> Int)
  }

baz = Foo { bar i = i*3 }

Why isn't this possible?

15

It's just a syntactic limitation - I suspect that if this feature has been considered, it would have been rejected because there are straightforward alternatives. Also, if it was supported, the next question would be why not pattern-matching with multiple clauses, and overall it would just make the language bigger for not all that much gain.

You can use baz = Foo { bar = \x -> x*3 } instead for the specific case you've given, or define an auxiliary function.

  • If it was a simple design decision, is it documented somewhere? – Vektorweg Jun 14 '14 at 0:02
  • 2
    Sorry if my answer is slightly misleading, it's my educated guesswork rather than certain historical knowledge. – GS - Apologise to Monica Jun 14 '14 at 0:04
  • 3
    Ganesh is right, it has been considered and rejected in the name of simplicity. The design of Haskell doesn't really have any record, except some old mailing lists. – augustss Jun 14 '14 at 10:13
3

This should work:

baz = Foo { bar = (\x -> x*3) }

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