帮助替换 model [Sicp],使用 Clojure
[英]help with substitution model [Sicp], using Clojure
问题描述
I am studying the sicp book, and I have a doubt with the substitution model of a procedure:
我正在研究 sicp 书,我对一个程序的替换 model 有疑问:
(defn A
[x,y]
(cond (= y 0) 0
(= x 0) (* 2 y)
(= y 1) 2
:else (A (- x 1) (A x (- y 1)))))
This procedure is part of the exercise 1.10.这个过程是练习 1.10 的一部分。 If I run the function in REPL with the following parameters (A 1 10), the result is 1024. I decided to verify the result using the Substitution Model, but the result was 2048.如果我使用以下参数(A 1 10)在 REPL 中运行 function,结果为 1024。我决定使用 Substitution Model 验证结果,但结果为 2048。
This is the substitution model that I wrote.这是我写的替换 model。 There is something wrong, but I don't know what.有问题,但我不知道是什么。
(A 1 10)
(A (- 1 1) (A 1 (- 10 1))))
(A 0 (A 1 9)))
(A 0 (A (- 1 1) (A 1 (- 9 1)))))
(A 0 (A 0 (A 1 8))))
(A 0 (A 0 (A (- 1 1) (A 1 (- 8 1))))))
(A 0 (A 0 (A 0 (A 1 7)))))
(A 0 (A 0 (A 0 (A (- 1 1) (A 1 (- 7 1)))))))
(A 0 (A 0 (A 0 (A 0 (A 1 6))))))
(A 0 (A 0 (A 0 (A 0 (A (-1 1) (A 1 (- 6 1))))))))
(A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 1 5))))))))
(A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A (-1 1) (A 1 (- 5 1))))))))))
(A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 1 4)))))))))
(A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A (-1 1) (A 1 (- 4 1)))))))))))
(A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 1 3))))))))))
(A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A (-1 1) (A 1 (-3 1))))))))))
(A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 1 2)))))))))
(A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A (-1 1) (A 1 (- 2 1))))))))))
(A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 1 1))))))))))
(A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (* 2 1))))))))))
(A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 2)))))))))
(A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (* 2 2)))))))))
(A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 4))))))))
(A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (* 2 4))))))))
(A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 8)))))))
(A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (* 2 8)))))))
(A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 0 16))))))
(A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (* 2 16)))))))
(A 0 (A 0 (A 0 (A 0 (A 0 (A 0 32))))))
(A 0 (A 0 (A 0 (A 0 (A 0 (* 2 32))))))
(A 0 (A 0 (A 0 (A 0 (A 0 64)))))
(A 0 (A 0 (A 0 (A 0 (* 2 64)))))
(A 0 (A 0 (A 0 (A 0 128))))
(A 0 (A 0 (A 0 (* 2 128))))
(A 0 (A 0 (A 0 256)))
(A 0 (A 0 (* 2 256)))
(A 0 (A 0 512))
(A 0 (* 2 512))
(A 0 1024)
2048 ????
Can anyone indicate what I did wrong?谁能指出我做错了什么? I am sorry for the length of the question.我很抱歉这个问题的长度。
1 个解决方案
解决方案1
5 已采纳 2011-07-13 03:39:07
Consider these lines:考虑以下几行:
(A 0 (A 0 (A 0 (A 1 7)))))
(A 0 (A 0 (A 0 (A (- 1 1) (A 1 (- 7 1)))))))
(A 0 (A 0 (A 0 (A 0 (A 1 6))))))
(A 0 (A 0 (A 0 (A 0 (A (-1 1) (A 1 (- 6 1))))))))
(A 0 (A 0 (A 0 (A 0 (A 0 (A 0 (A 1 5))))))))
Strip off the redundant outer layers:剥去多余的外层:
(A 1 7))
(A (- 1 1) (A 1 (- 7 1))))
(A 0 (A 1 6)))
(A 0 (A (-1 1) (A 1 (- 6 1)))))
(A 0 (A 0 (A 0 (A 1 5)))))
Somewhere in here you've ended up with mismatched parentheses, but that's not important.在这里的某个地方,您最终得到了不匹配的括号,但这并不重要。 Note that in going from A 1 7 to A 1 6 , a single outer layer of A 0 _ is created, as expected.请注意,在从A 1 7到A 1 6的过程中,按预期创建了A 0 _的外层。 In going from A 1 6 to A 1 5 , you've got two new layers of A 0 _ .从A 1 6到A 1 5 ,你有两个新的A 0 _层。 Each of these ends up doubling the result, so that's why your answer is off by a factor of 2.这些中的每一个最终都会使结果翻倍,这就是为什么您的答案会相差 2 倍。
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