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This is an exercise from the standard ML tutorial seen here: http://homepages.inf.ed.ac.uk/stg/NOTES/node42.html

I am not taking a class so there is no cheating going on here. But I can't figure out how to do this. Can someone help?

The function fn x => fn y => x has type 'a -> ('b -> 'a). Without giving an explicit type constraint, define a function with type 'a -> ('a -> 'a)

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1 Answer 1

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Hint 1: You have to find an expression that has 2 or more subexpressions but requires them to have the same type.

Hint 2: Lists or conditionals are good contenders.

Hint 3: Of course, the subexpressions you put in there are the two arguments.

Hint 4: You don't need to use the result of this expression.

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Got it while driving to home. I really enjoy this tutorial! > val idt = fn x => fn y => hd(x :: y :: nil); val idt = fn : 'a -> 'a -> 'a –  dividebyzero May 10 '12 at 0:20
    
And thank you Andreas for not answering my question:) I would be hitting my head against wall when I see the answer. –  dividebyzero May 10 '12 at 0:26

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