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Exercise 1.16
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@ -248,7 +248,31 @@ layout: org
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procedure when `(sine a)' is evaluated?
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* 1.2.4: Exponentiation
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#+BEGIN_SRC scheme :tangle yes
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;; ===================================================================
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;; 1.2.4: Exponentiation
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;; ===================================================================
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(define (square x) (* x x))
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(define (expt b n)
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(expt-iter b n 1))
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(define (expt-iter b counter product)
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(if (= counter 0)
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product
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(expt-iter b
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(- counter 1)
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(* b product))))
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(define (fast-expt b n)
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(cond ((= n 0) 1)
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((even? n) (square (fast-expt b (/ n 2))))
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(else (* b (fast-expt b (- n 1))))))
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(define (even? n)
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(= (remainder n 2) 0))
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#+END_SRC
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** Exercise 1.16
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Design a procedure that evolves an iterative
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exponentiation process that uses successive squaring and uses a
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@ -262,7 +286,22 @@ layout: org
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defining an "invariant quantity" that remains unchanged from state
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to state is a powerful way to think about the design of iterative
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algorithms.)
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----------------------------------------------------------------------
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#+BEGIN_SRC scheme :tangle yes
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;; -------------------------------------------------------------------
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;; Exercise 1.16
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;; -------------------------------------------------------------------
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(define (1-16 b n)
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(define (expt-iter b n a)
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(cond ((= n 0) a)
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((even? n) (expt-iter (square b) (/ n 2) a))
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(else (expt-iter b (- n 1) (* a b)))))
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(expt-iter b n 1.0))
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#+END_SRC
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** Exercise 1.17
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The exponentiation algorithms in this section are
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based on performing exponentiation by means of repeated
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