1081 Rational Sum （20 分）

Given N rational numbers in the form numerator/denominator, you are supposed to calculate their sum.

Input Specification:

Each input file contains one test case. Each case starts with a positive integer N (≤100), followed in the next line N rational numbers a1/b1 a2/b2 ... where all the numerators and denominators are in the range of long int. If there is a negative number, then the sign must appear in front of the numerator.

Output Specification:

For each test case, output the sum in the simplest form integer numerator/denominator where integer is the integer part of the sum, numerator < denominator, and the numerator and the denominator have no common factor. You must output only the fractional part if the integer part is 0.

Sample Input 1:

52/5 4/15 1/30 -2/60 8/3

Sample Output 1:

3 1/3

Sample Input 2:

24/3 2/3

Sample Output 2:

2

Sample Input 3:

31/3 -1/6 1/8

Sample Output 3:

7/24

（20 分）

Given N rational numbers in the form numerator/denominator, you are supposed to calculate their sum.

Input Specification:

Each input file contains one test case. Each case starts with a positive integer N (≤100), followed in the next line N rational numbers a1/b1 a2/b2 ... where all the numerators and denominators are in the range of long int. If there is a negative number, then the sign must appear in front of the numerator.

Output Specification:

For each test case, output the sum in the simplest form integer numerator/denominator where integer is the integer part of the sum, numerator < denominator, and the numerator and the denominator have no common factor. You must output only the fractional part if the integer part is 0.

Sample Input 1:

52/5 4/15 1/30 -2/60 8/3

Sample Output 1:

3 1/3

Sample Input 2:

24/3 2/3

Sample Output 2:

2

Sample Input 3:

31/3 -1/6 1/8

Sample Output 3:

7/24

 题目大意：给出几个分数求和。

//又是分数求和的题目，细节会很多啊。

#include 
      
       #include 
       
      

 

代码转自：https://www.liuchuo.net/archives/2108

#include 
     
      #include 
      
       using namespace std;long long gcd(long long a, long long b) {
   return b == 0 ? abs(a) : gcd(b, a % b);}int main() {    long long n, a, b, suma = 0, sumb = 1, gcdvalue;//注意数据类型的定义。    scanf("%lld", &n);    for(int i = 0; i < n; i++) {        scanf("%lld/%lld", &a, &b);        gcdvalue = gcd(a, b);//找到最大公约数进行约分。        a = a / gcdvalue;        b = b / gcdvalue;        suma = a * sumb + suma * b;//分子        sumb = b * sumb;//计算分母        gcdvalue = gcd(suma, sumb);        sumb = sumb / gcdvalue;//再约分。        suma = suma / gcdvalue;    }    long long integer = suma / sumb;    suma = suma - (sumb * integer);//计算余下的分子。    if(integer != 0) {        printf("%lld", integer);        if(suma != 0) printf(" ");//如果余下的分子不为0.    }    if(suma != 0)        printf("%lld/%lld", suma, sumb);    if(integer == 0 && suma == 0)        printf("0");    return 0;}
      
     

 

//学习了，需要经常复习吧，要不还是不会。