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For the procedure:

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

When calling:

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

Is this correct:

(double (lambda (x) (double (double x) 1+) 0))
        ((lambda (x) (double^4 x) 1+) 0)
                ((double^4 1+) 0)
                 (16+ 0)
                    16   

And similarly, when calling:

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

Is this correct:

(((double double (double double) double) 1+) 0)
  (double (double (lambda (x) (double (double x) 1+) 0)))
    (double (lambda (x) (double^4 1+) 0))
            ((lambda (x) (double^16 x) 1+) 0)
                         ((double^16 1+) 0)
                              (256+ 0)
                                256
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3  
What is 1+, 16+, 256+, double^4 and double^16? –  leppie Feb 8 '13 at 20:02
    
possible duplicate of doubling function –  dyoo Feb 9 '13 at 2:20

1 Answer 1

I'll recommend the stepper in DrRacket. It allows you to show one step at a time. It even allows you to go back.

enter image description here

First I chose the language "HTDP: Advanced with lambda". Then I entered this program:

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

(((double (double double)) add1) 0)

Finally I clicked the stepper button.

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