给定一系列正整数,请按要求对数字进行分类,并输出以下5个数字:A1 = 能被5整除的数字中所有偶数的和;A2 = 将被5除后余1的数字按给出顺序进行交错求和,即计算n1-n2+n3-n4...;A3 = 被5除后余2的数字的个数;A4 = 被5除后余3的数字的平均数,精确到小数点后1位;A5 = 被5除后余4的数字中最大数字。输入描述:
每个输入包含1个测试用例。每个测试用例先给出一个不超过1000的正整数N,随后给出N个不超过1000的待分类的正整数。数字间以空格分隔。输出描述:
对给定的N个正整数,按题目要求计算A1~A5并在一行中顺序输出。数字间以空格分隔,但行末不得有多余空格。若其中某一类数字不存在,则在相应位置输出“N”。输入例子:
13 1 2 3 4 5 6 7 8 9 10 20 16 18输出例子:
30 11 2 9.7 9
代码:
#include"stdio.h"int main(){int num, curr;scanf("%d", &num);int a1 = 0, a2 = 0, a3 = 0, a4 = 0, a5 = 0;int f1 = 0, f2 = 0, f3 = 0, f4 = 0, f5 = 0;int mul = 1;int num3 = 0;int add_result = 0;int max = 0, max_flag = 0;for (int i = 0; i < num; i++){scanf("%d", &curr);if (curr % 10 == 0){a1 += curr;f1 = 1;continue;}if (curr % 5 == 1){a2 += mul*curr;mul = 0 - mul;f2 = 1;continue;}if (curr % 5 == 2){a3++;f3 = 1;continue;}if (curr % 5 == 3){add_result += curr;a4++;f4 = 1;continue;}if (curr % 5 == 4){f5 = 1;if (max_flag == 0){max_flag = 1;max = curr;}if (curr > max)max = curr;}}if (f1)PRintf("%d ", a1); else printf("N ");if (f2)printf("%d ", a2); else printf("N ");if (f3)printf("%d ", a3); else printf("N ");if (f4)printf("%.1f ", 1.0*add_result / a4); else printf("N ");if (f5)printf("%d", max); else printf("N");}
重点:
f4输出时需要用1.0*add_result,否则无法格式化浮点数输出,或者将add_result定义为浮点数。
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