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Why is there no list-style infinite type error when I define something like this in Haskell (GHC)?

data Broken = Broken { title :: String,
                       loop  :: Broken }

It compiles without a type error, but clearly it's an unusable type: I'd have to define

foo = Broken "one" (Broken "two" (Broken "three" ...

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2 Answers 2

up vote 13 down vote accepted

There's nothing broken about it. It's perfectly possible to define a value of that type:

foo = Broken "one" foo

Basically it's the same thing as defining a list type that has no nil value (which is also perfectly legal). It's perfectly possible to define values of that type, but all such values will have to be infinite.

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Ooh good point - of course. –  amindfv Apr 7 '12 at 2:32

If you define

type Foo = (String, Foo)

Then you should get this error: Cycle in type synonym declarations.

But if you define

data Foo = Foo String Foo

you get no such error.

Exercise: explain the difference between these two situations.

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The difference is only the type, not the data, right? In an untyped language that'd work, because if you had a lazily-evaluated infinite tuple, you could evaluate fst of some depth. –  amindfv Apr 7 '12 at 19:03

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