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i got the task to use the leftmost outermost reduction on following expression:

f inc expo 9 (f (*2) expo 3 1)

inc is defined as:

 inc :: Int -> Int
 inc x = x+1

expo is defined as:

expo :: Int -> Int
expo x = expo (x*2)

and f as:

f :: (Int->Int) -> (Int-> Int) -> Int -> Int -> Int
f g h a b = g(a-b)

I have absolutely no clue where to start the reduction with more functions. I read the hint that the redex is not contained in any other redexes, but i dont get it ;(.

I would appreciate every tip/help.

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from your definition of expo it will never terminate –  DiegoNolan Jan 31 '14 at 17:22
1  
Actually, it will, since expo (h in f's definition) is never used (i.e. never applied to anything). –  fjh Jan 31 '14 at 17:24
    
That means i start the reduction with the f function? Means inc is the "g", expo the "h", 9 the "a" and the rest "b"? –  user3258192 Jan 31 '14 at 17:41
1  
look at the equation f g h a b = g(a-b) and see what g h a b are in f inc expo 9 (f (*2) expo 3 1). This will produce some expression using inc, expo, 9 and (f (*2) expo 3 1). The next step is to perform the reduction (substitution, if you will) without which you cannot compute g (a-b). So on, until you get a value of type Int (or a function, but in this case you will get a Int) –  Sassa NF Jan 31 '14 at 17:42
    
@fjh english is an annoying language. what I meant is 'from your definition of expo expo will never terminate' –  DiegoNolan Jan 31 '14 at 18:37

1 Answer 1

The first (leftmost, outermost) reduction for

f inc expo 9 (f (*2) expo 3 1)

is to apply the definition of f, once, where f g h a b = g(a-b) so we use g as inc, a as 9 and b as (f (*2) expo 3 1), giving

inc(9 - (f (*2) expo 3 1))

Now we're actually done with the question we were asked. That's the leftmost, outermost reduction made. Notice that we didn't need to use any facts about the other functions, which is probably what the hint was getting at.

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