每天刷个算法题20160524:阿克曼函数的递归转非递归解法
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http://blog.csdn.net/xiaofei_it/article/details/51524754
为了防止思维僵化,每天刷个算法题。已经刷了几天了,现在发点代码。
我已经建了一个开源项目,每天的题目都在里面:
https://github.com/Xiaofei-it/Algorithms
绝大部分算法都是我自己写的,没有参考网上通用代码。读者可能会觉得有的代码晦涩难懂,因为那是我自己的理解。
最近几天都是在写一些原来的东西,大多数是非递归。以后准备刷点DP、贪心之类的题。
下面是阿克曼函数的递归转非递归解法。
/**
*
* Copyright 2016 Xiaofei
*
* Licensed under the Apache License, Version 2.0 (the "License");
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
*
*/
package xiaofei.algorithm;
import java.util.Stack;
/**
* Created by Xiaofei on 16/5/23.
*
* 今天把明天的代码写了吧。
*/
public class AckermannFunction
public static long calculateRecursively(long m, long n)
if (m == 0)
return n + 1;
else if (m > 0 && n == 0)
return calculateRecursively(m - 1, 1);
else if (m > 0 && n > 0)
return calculateRecursively(m - 1, calculateRecursively(m, n - 1));
else
throw new IllegalArgumentException();
public static long calculateCorecursively(long m, long n)
class Element
long m;
long n;
long r;
Element(long m, long n)
this.m = m;
this.n = n;
this.r = -1;
Stack<Element> stack = new Stack<>();
stack.push(new Element(m, n));
long tmp = -1;
while (!stack.isEmpty())
Element element = stack.peek();
if (element.m == 0)
tmp = element.n + 1;
stack.pop();
else if (element.m > 0 && element.n == 0)
if (tmp >= 0)
stack.pop();
else
stack.push(new Element(element.m - 1, 1));
else
if (element.r < 0)
if (tmp >= 0)
element.r = tmp;
tmp = -1;
stack.push(new Element(element.m - 1, element.r));
else
stack.push(new Element(element.m, element.n - 1));
else
if (tmp >= 0)
stack.pop();
else
throw new IllegalStateException();
return tmp;
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