模拟 --- hdu 12878 : Fun With Fractions-优快云博客

本文介绍了一个涉及分数和整数加法的问题，要求编程实现输入一系列分数和整数并计算其总和的功能。文章提供了问题的具体描述、输入输出样例及示例代码。

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Fun With Fractions

Time Limit: 1000ms, Special Time Limit:2500ms, Memory Limit:65536KB

Total submit users: 152, Accepted users: 32

Problem 12878 : No special judgement

Problem description

A rational number can be represented as the ratio of two integers, referred to as the numerator (n) and the denominator (d) and written n/d. A rational number's representation is not unique. For example the rational numbers 1/2 and 2/4 are equivalent. A rational number representation is described as "in lowest terms" if the numerator and denominator have no common factors. Thus 1/2 is in lowest terms but 2/4 is not. A rational number can be reduced to lowest terms by dividing by the greatest common divisor of n and d.
Addition of rational numbers is defined as follows. Note that the right hand side of this equality will not necessarily be in lowest terms.

A rational number for which the numerator is greater than or equal to the denominator can be displayed in mixed format, which includes a whole number part and a fractional part.
For example, 51/3 is a mixed format representation of the rational number 16/3. Your task is to write a program that reads a sequence of rational numbers and displays their sum.

Input

Input will consist of specifications for a series of tests. Information for each test begins with a line containing a single integer 1 <= n < 1000 indicating how many values follow. A count of zero terminates the input.
The n following lines each contain a single string with no embedded whitespace . Each string represents a rational number, which could be in any of the following forms and will not necessarily be in lowest terms (w, n, and d are integers: 0 <= w,n < 1000, 1 <= d < 1000).
• w,n/d: a mixed number equivalent to the rational number (w*d + n) / d.
• n/d: a rational number with a zero whole number part
• w: a whole number with a zero fractional part

Output

Output should consist of one line for each test comprising the test number (formatted as shown) followed by a single space and the sum of the input number sequence. The sum should be displayed in lowest terms using mixed number format. If either the whole number part or the fractional part is zero, that part should be omitted. As a special case, if both parts are zero, the value should be displayed as a single 0.

Sample Input

2
1/2
1/3
3
1/3
2/6
3/9
3
1
2/3
4,5/6
0

Sample Output

Test 1: 5/6
Test 2: 1
Test 3: 6,1/2

Problem Source

HNU Contest

Mean:

给你n个数，其中包含分数、整数，对这n个数求和。

analyse:

按照题目意思模拟即可，主要考察coding能力.

Time complexity：O(n)

Source code：

//Memory   Time
//  K      MS
#include<algorithm>
#include<cstdio>
#include<cstring>
#include<cstdlib>
#include<iostream>
#include<vector>
#include<queue>
#include<stack>
#include<iomanip>
#include<string>
#include<climits>
#include<cmath>
#define MAX 1005
#define LL long long
using namespace std;
int n,kase=1;
int flag[MAX];
char str[MAX][20];
void read()
{
    memset(flag,0,sizeof(flag));
    for(int i=1;i<=n;i++)
    {
        scanf("%s",str[i]);
        int len=strlen(str[i]);
        for(int j=0;j<len;j++)
        {
            if(str[i][j]==',')
            {
                flag[i]=1;
                break;
            }
            else if(str[i][j]=='/')
            {
                flag[i]=2;
                break;
            }
        }
    }
}

int gcd(int a,int b)
{
    if(b==0)
        return a;
    else return gcd(b,a%b);
}

int lcm(int a,int b)
{
    int x=gcd(a,b);
    return a*b/x;
}

void solve()
{
    int num;
    int zi=1,mu=1;
   for(int i=1;i<=n;i++)
   {
        int a,b;
       if(flag[i]==0)   //  6
       {
           sscanf(str[i],"%d",&num);
           zi+=mu*num;
           continue;
       }
       else if(flag[i]==1)    //  6,5/3
       {
           sscanf(str[i],"%d,%d/%d",&num,&a,&b);
           zi+=mu*num;
       }
       else     // 5/3
       {
           sscanf(str[i],"%d/%d",&a,&b);
       }
       int newmu=lcm(mu,b);
       int newa=(newmu/b)*a;
       int newzi=(newmu/mu)*zi;
       zi=newzi+newa;
       mu=newmu;
       if(zi%mu==0)
       {
           zi=zi/mu;
           mu=1;
           continue;
       }
   }
   zi-=mu;
   if(gcd(zi,mu)!=1)
   {
       int tmp=gcd(zi,mu);
       zi/=tmp;
       mu/=tmp;
   }
   if(zi==0||mu==0)
   {
       puts("0");
       return ;
   }
   if(zi>=mu)
   {
       if(zi%mu==0)
       {
           printf("%d\n",zi/mu);
           return ;
       }
       else
       {
           int integer=0;
           while(zi>mu)
           {
               zi-=mu,integer++;
           }
           printf("%d,%d/%d\n",integer,zi,mu);
           return ;
       }
   }
   else
    printf("%d/%d\n",zi,mu);
}

int main()
{
//    freopen("cin.txt","r",stdin);
//    freopen("cout.txt","w",stdout);
    while(~scanf("%d",&n),n)
    {
        read();
        printf("Test %d: ",kase++);
        solve();
    }

    return 0;
}