C++两水杯量出所需水量的小算法
有2个杯子,分别为5升和9升,在一个水池里有无限的水源,怎么才能在水池里拿到6升水呢
#include<iostream>
using namespace std;
void print1(int,int,int);
void print2(int,int,int);
int main(){
int a, b, need;
cout<<"输入两个杯子的容量及需要量出的水量:\n";
cin>>a>>b>>need;
print1(a,b,need);
print2(a,b,need);
system("pause");
return 0;
}
void print1(int a, int b, int need){
int tmp,min,max,curMin,curMax;
cout<<"\n\n逆容差算法:小杯子没水就装满水,大杯子水满了就倒掉,小杯子有水就往大杯子倒。然后判断大杯子水是否满足条件,不满足就继续\n\n";
if(a > b){
tmp = a;
a = b;
b = tmp;
}
min = a;//小杯子的容量
max = b;//大杯子的容量
curMin = 0;//当前小杯子里面有多少水
curMax = 0;//当前大杯子里面有多少水
//循环判断大杯子的水是否满足条件
cout<<"当前小杯子有"<<curMin<<"升水,当前大杯子有"<<curMax<<"升水\n";
while(curMax != need){
if(curMin == 0){
cout<<"小杯子没水了,装满水\n";
curMin = min;
}
else if (curMax == max){
cout<<"大杯子水满了,全倒掉\n";
curMax = 0;
}
else{
//将小杯子的水倒给大杯子,判断能倒多少水过去
tmp = max - curMax;
tmp = tmp > curMin ? curMin : tmp;
cout<<"将小杯子的水倒"<<tmp<<"升给大杯子\n";
curMax += tmp;
curMin -= tmp;
}
cout<<"当前小杯子有"<<curMin<<"升水,当前大杯子有"<<curMax<<"升水\n";
}
cout<<"当前大杯子的水满足条件,程序退出\n\n";
}
void print2(int a, int b, int need){
int tmp,min,max,curMin,curMax;
cout<<"\n\n顺容差算法:大杯子没水就装满水,小杯子水满了就倒掉,大杯子有水就往小杯子倒。然后判断大杯子水是否满足条件,不满足就继续\n\n";
if(a > b){
tmp = a;
a = b;
b = tmp;
}
min = a;//小杯子的容量
max = b;//大杯子的容量
curMin = 0;//当前小杯子里面有多少水
curMax = 0;//当前大杯子里面有多少水
//循环判断大杯子的水是否满足条件
cout<<"当前小杯子有"<<curMin<<"升水,当前大杯子有"<<curMax<<"升水\n";
while(curMax != need){
if(curMax == 0){
cout<<"大杯子没水了,装满水\n";
curMax = max;
}
else if (curMin== min){
cout<<"小杯子水满了,全倒掉\n";
curMin = 0;
}
else{
//将大杯子的水倒给小杯子,判断能倒多少水过去
tmp = min- curMin;
tmp = tmp > curMax ? curMax : tmp;
cout<<"将大杯子的水倒"<<tmp<<"升给小杯子\n";
curMax -= tmp;
curMin += tmp;
}
cout<<"当前小杯子有"<<curMin<<"升水,当前大杯子有"<<curMax<<"升水\n";
}
cout<<"当前大杯子的水满足条件,程序退出\n\n";
}
