A series with same common difference is known as arithmetic series. The first term of series is ‘a’ and common difference is d. The series looks like a, a + d, a + 2d, a + 3d, . . . Find the sum of series.具有相同共同差异的系列被称为算术系列。系列的第一个术语是“ a ”,共同的区别是d。该系列看起来像a + d,a + 2d,a + 3d…找到系列的总和。
Input : a = 1 d = 2 n = 4 Output : 16 + 3 + 5 + 7 = 16 Input : a = 2.5 d = 1.5 n = 20 Output : 335
Input:
The first line consists of an integer T i.e number of test cases. The first line and only line of each test case consists of three integers a,d,n.
输入:
第一行由整数T即测试用例数组成。每个测试用例的第一行和第一行由三个整数a,d,n组成。
Output:
Print the sum of the series. With two decimal places.
输出:
打印系列的总和。有两位小数。
Constraints:
1<=T<=100
1<=a,d,n<=1000
约束:
1 <= T <= 100
1 <= a,d,n <= 1000
Example:
Input: 1 2 4 2.5 1.5 20 Output: 16.00 335.00
其实,就是一个等差数列的求和问题,不过需要注意的是输出是两位小数。
下面是我的代码实现:
#include #include int main() { int n,i,j; scanf("%d",&n); for(i=0;i<n;i++) { float a,d,n; scanf("%f %f %f",&a,&d,&n); printf("%.2f/n",n*a+n*(n-1)*d/2); } return 0; }
然后竟然出现了错误?一起来看一下:
我试了几次的double类型,也都是这个错误。不是很理解怎么做?这个题目的考察点在哪里哦?
原创文章,作者:ItWorker,如若转载,请注明出处:https://blog.ytso.com/115719.html