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Using

(define (double fn) (lambda (x) (fn (fn x))))

can you explain how

((((double double) double) 1+) 0)

equals 16?? How does it work using substitution?

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2 Answers 2

The double function accepts another function (let's call that function fn) as it's argument, then returns a function accepting one arbitrary argument. It passes that argument to fn, then passes the result of that to fn, and that is the result.

For example:

> ((double add1) 1)
3

It calls add1 on 1, which returns 2, then it calls add1 on 2 which gives us the result, 3.

In your example, we pass double to itself, so now we have a procedure which, when given your 1+, will add 4 to anything we give it (since we have two double's, and each double calls two 1+'s). But then we pass our new procedure another double, so that we have eight double's (two will be called by all four of the double's we have already created). Each of these eight calls 1+ twice.

So this new procedure will call 1+ twice, eight times, to whatever argument you give it, thus adding 16 to any argument you pass to it.

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How does it work using substitution?

If you are using Racket, you can use DrRacket's Stepper Tool in the "Intermediate Student with lambda" language to see the exact substitution steps.

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