题目链接:http://acm.zju.edu.cn/onlinejudge/showProblem.do?problemId=3221
Gordon is recently reading about an interesting game. At the beginning of the game, there are three positive numbers written on a blackboard. In each round, you are asked to delete one of these three numbers. And you should write the sum of the remaining two numbers minus one back to the blackboard. For example, there are three numbers, 2, 3 and 10 on the blackboard. If you decide to change the number 3 in this round, you will delete the number 3 first and put the number 11=2+10-1 back to the blackboard. So it would be 2, 10 and 11 on the blackboard then. The target of this game is to reach a given number in the minimal steps.
One day, when Gordon was playing the game, his best friend Mike came in. Mike saw that the numbers on the blackboard were 17, 1967 and 1983, and asked Gordon if he had played this game from the beginning numbers 3, 3 and 3. Since Gordon didn‘t leave a trace on the game, he asked you, a young brilliant programmer, to help them check out if Mike made the right guess.
Input
The first line of the input contains an integer T (T < 200), indicating the number of cases. Each test case consists of a line with six positive integers. The first three are the numbers currently on Gordon‘s blackboard and the last three are the numbers that Mike guessed. It is guaranteed that every number in a game is positive and is less than 1,000,000.
Output
For each test case, you should write a single word in a line. If it is possible to get Gordon‘s numbers from Mike‘s guess, you would give the word "Yes". Otherwise you need to output the word "No".
Sample Input
2 6 10 15 7 13 26 17 1967 1983 3 3 3
Sample Output
No Yes
题意:
求后面三个数能否通过一个规则 变换为前面的三个数字!
规则:
最后三个数中每次可以选择一个数字删掉,添加一个数字为:剩下的两个数字的和减去一!
PS:
我们可以从前面三个数字,逆推回去,只要逆推回去等于 后面三个数字删掉其中一个数字后的情况即可!
代码如下:
#include <stdio.h>
#include <string.h>
#include <iostream>
#include <algorithm>
using namespace std;
int a[4],b[4];
long long num[100000];
int dp[5][3];
int main()
{
int n,t;
cin>>t;
while(t--)
{
for(int i=0; i<3; i++)
cin>>a[i];
for(int i=0; i<3; i++)
cin>>b[i];//b- a
int flag=1;
sort(b,b+3);
dp[0][0]=b[0];
dp[0][1]=b[1];
dp[0][2]=b[2];
//qu0
dp[1][0]=b[1]+b[2]-1;
dp[1][1]=b[1];
dp[1][2]=b[2];
//qu1
dp[2][0]=b[0];
dp[2][1]=b[0]+b[2]-1;
dp[2][2]=b[2];
//qu0
dp[3][0]=b[0];
dp[3][1]=b[1];
dp[3][2]=b[0]+b[1]-1;
for(int i=0; i<4; i++)
sort(dp[i],dp[i]+3);
while(1)
{
sort(a,a+3);
for(int j=0; j<4; j++)
{
flag=1;
for(int k=0; k<3; k++)
{
if(dp[j][k]!=a[k])
flag=0;
}
if(flag)
break;
}
if(flag==1)//PIPEI
{
puts("Yes");
break;
}
if(a[1]+1-a[0]==a[2])//死循环
{
puts("No");
break;
}
a[2]=a[1]+1-a[0];
flag=1;
for(int j=0; j<3; j++)//负数
{
if(a[j]<=0)
flag=0;
}
if(flag==0)
{
puts("No");
break;
}
}
}
return 0;
}
原文地址:http://blog.csdn.net/u012860063/article/details/44889621
