HDU2041超级楼梯
超级楼梯
Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 65536/32768 K (Java/Others)
Total Submission(s): 11185 Accepted Submission(s): 5691
Problem Description
有一楼梯共M级,刚开始时你在第一级,若每次只能跨上一级或二级,要走上第M级,共有多少种走法?
Input
输入数据首先包含一个整数N,表示测试实例的个数,然后是N行数据,每行包含一个整数M(1<=M<=40),表示楼梯的级数。
Output
对于每个测试实例,请输出不同走法的数量
Sample Input
2
2
3
Sample Output
1
2
Author
lcy
#include <stdio.h>int ant[45];int f(int n){if(n == 1 || n == 2)return 1;else{if(ant[n - 1] == -1)ant[n - 1] = f(n - 1);if(ant[n - 2] == - 1)ant[n - 2] = f(n - 2);return ant[n - 1] + ant[n - 2];}}//算法思路:递推关系,要算出到第n层的走法,则可以先算出1~n-1层的走法加上1~n-2的走法,依次类推 f(n) = f(n - 1) + f(n - 2) f(1) = f(2) = 1int main(){int m, i, n;scanf("%d", &m);for(i = 1; i <= 45; i++)ant[i] = -1;while(m--){scanf("%d", &n);printf("%d\n", f(n));}return 0;}