大家应该都会玩“锤子剪刀布”的游戏:两人同时给出手势,胜负规则如图所示:
现给出两人的交锋记录,请统计双方的胜、平、负次数,并且给出双方分别出什么手势的胜算最大。
输入格式:
输入第1行给出正整数N(<=105),即双方交锋的次数。随后N行,每行给出一次交锋的信息,即甲、乙双方同时给出的的手势。C代表“锤子”、J代表“剪刀”、B代表“布”,第1个字母代表甲方,第2个代表乙方,中间有1个空格。
输出格式:
输出第1、2行分别给出甲、乙的胜、平、负次数,数字间以1个空格分隔。第3行给出两个字母,分别代表甲、乙获胜次数最多的手势,中间有1个空格。如果解不唯一,则输出按字母序最小的解。
输入样例:10 C J J B C B B B B C C C C B J B B C J J输出样例:
5 3 2 2 3 5 B B
#include "iostream"
#include <string>
#include <vector>
#include <math.h>
using namespace std;
int main()
{
vector<char> inputJ, inputY;
int N = 0;
char tmpJ = ' ', tmpY = ' ';
int totalJ[3] = { 0 }; // 甲胜、平、输的次数
int totalY[3] = { 0 }; // 已胜、平、输的次数
int countJ[3] = { 0 }; // B C J
int countY[3] = { 0 };
char winJ[3] = { 'B', 'C', 'J' }; // 用于判断石头剪刀布哪个赢得次数最多
char winY[3] = { 'B', 'C', 'J' };
cin >> N;
int length = N;
while (N--)
{
cin >> tmpJ >> tmpY;
inputJ.push_back(tmpJ);
inputY.push_back(tmpY);
}
for (int i = 0; i < length; i++)
{
if (inputJ[i] == 'C')
{
if (inputY[i] == 'B')
{
countY[0]++;
totalJ[2]++;
totalY[0]++;
}
else if (inputY[i] == 'J')
{
countJ[1]++;
totalJ[0]++;
totalY[2]++;
}
else
{
totalJ[1]++;
totalY[1]++;
}
}
else if (inputJ[i] == 'J')
{
if (inputY[i] == 'C')
{
countY[1]++;
totalJ[2]++;
totalY[0]++;
}
else if (inputY[i] == 'B')
{
countJ[2]++;
totalJ[0]++;
totalY[2]++;
}
else
{
totalJ[1]++;
totalY[1]++;
}
}
else
{
if (inputY[i] == 'J')
{
countY[2]++;
totalJ[2]++;
totalY[0]++;
}
else if (inputY[i] == 'C')
{
countJ[0]++;
totalJ[0]++;
totalY[2]++;
}
else
{
totalJ[1]++;
totalY[1]++;
}
}
}
int indexJ = 0;
int indexY = 0;
int maxJ = 0;
int maxY = 0;
for (int i = 0; i < 3; i++)
{
if (maxJ < countJ[i])
{
maxJ = countJ[i];
indexJ = i;
}
if (maxY < countY[i])
{
maxY = countY[i];
indexY = i;
}
}
cout << totalJ[0] << " " << totalJ[1] << " " << totalJ[2] << endl;
cout << totalY[0] << " " << totalY[1] << " " << totalY[2] << endl;
cout << winJ[indexJ] << " " << winY[indexY] << endl;
system("pause");
return 0;
}
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