本题要求实现一个计算非负整数阶乘的简单函数,并利用该函数求 1!+2!+3!+...+n! 的值。
函数接口定义:
double fact( int n ); double factsum( int n );
函数fact应返回n的阶乘,建议用递归实现。函数factsum应返回 1!+2!+...+n! 的值。题目保证输入输出在双精度范围内。
裁判测试程序样例:
#include <stdio.h>
double fact( int n );
double factsum( int n );
int main()
{
int n;
scanf("%d",&n);
printf("fact(%d) = %.0f\n", n, fact(n));
printf("sum = %.0f\n", factsum(n));
return 0;
}
/* 你的代码将被嵌在这里 */
输入样例1:
10
输出样例1:
fact(10) = 3628800 sum = 4037913
输入样例2:
0
输出样例2:
fact(0) = 1 sum = 0
1 #include <stdio.h>
2 double fact(int n);
3 double factsum(int n);
4
5 int main() {
6 int n;
7
8 scanf("%d", &n);
9 printf("fact(%d) = %.0f\n", n, fact(n));
10 printf("sum = %.0f\n", factsum(n));
11
12 return 0;
13 }
14 double fact(int n) {
15 double res, sum;
16 if (n == 1 || n == 0) {
17 res = 1;
18 } else {
19 res = n * fact(n - 1);
20 }
21 return res;
22 }
23 double factsum(int n) {
24 double sum = 0;
25 if (n == 1)
26 sum = 1;
27 else if (n == 0)
28 sum = 2;
29 else {
30 sum = fact(n) + factsum(n - 1);
31 }
32
33 return sum;
34 }