1001 A+B Format (20 分)
Calculate a+b and output the sum in standard format -- that is, the digits must be separated into groups of three by commas (unless there are less than four digits).
Input Specification:
Each input file contains one test case. Each case contains a pair of integers a and b where −106≤a,b≤106. The numbers are separated by a space.
Output Specification:
For each test case, you should output the sum of a and b in one line. The sum must be written in the standard format.
Sample Input:
-1000000 9
Sample Output:
-999,991
这道题刚开始脑袋木了一下没有理解题意,其实题目还是很简单的。
提供两种思路
1.(通用方法)直接将数字转化为字符串进行操作
#include<iostream>
#include<sstream>
#include<string>
using namespace std;
int main(){
long long int a,b;
string c;
cin>>a>>b;
a += b;
stringstream s1;
s1<<a;
s1>>c;
int num = c.length();
for( int i = 0; i < num; i++){
cout<<c[i];
if(c[i] == '-')
continue;
else if((num-i-1)%3 == 0&& (num-i-1) != 0)
cout<<",";
}
return 0;
}
2.第二种方法是在网上无意中看到的,感觉也非常好,分享一下。
鉴于题目的数据范围已经给定,其实最多只有7位数,那么就分以下几种情况:
1.结果小于1000,无需,
2.结果大于 1000 小于 1,000,000,需要一个逗号,
3.结果大于 1,000,000,需要两个逗号。
1 #include<iostream> 2 #include<math.h> 3 #include<string> 4 using namespace std; 5 6 int main(){ 7 long long int a,b; 8 cin>>a>>b; 9 a+=b; 10 if( a < 0 ){ 11 cout<<"-"; 12 a = fabs(a); 13 } 14 if( a < 1000) 15 cout<<a; 16 else if( a < 1000000) 17 printf("%d,%03d",a/1000,a%1000); 18 else 19 printf("%d,%03d,%03d",a/1000000,a%1000000/1000,a%1000); 20 return 0; 21 }
注意:输出时因为两个逗号之间经过处理后的数可能为0,所以要用%03d输出,保证数位正确。
