YY's new problem
Time Limit: 12000/4000 MS (Java/Others) Memory Limit: 65536/65536 K (Java/Others)
Total Submission(s): 5422 Accepted Submission(s):
1522
Problem Description
Given a permutation P of 1 to N, YY wants to know
whether there exists such three elements P[i1], P[i2],
P[i3] that
P[i1]-P[i2]=P[i2]-P[i3],
1<=i1<i2<i3<=N.
whether there exists such three elements P[i1], P[i2],
P[i3] that
P[i1]-P[i2]=P[i2]-P[i3],
1<=i1<i2<i3<=N.
Input
The first line is T(T<=60), representing the total
test cases.
Each test case comes two lines, the former one is N,
3<=N<=10000, the latter is a permutation of 1 to N.
test cases.
Each test case comes two lines, the former one is N,
3<=N<=10000, the latter is a permutation of 1 to N.
Output
For each test case, just output 'Y' if such
i1, i2, i3 can be found, else 'N'.
i1, i2, i3 can be found, else 'N'.
Sample Input
2
3
1 3 2
4
3 2 4 1
3
1 3 2
4
3 2 4 1
Sample Output
N
Y
Y
Source
Recommend
xubiao
题意:就是找出数列中是否有满足p[i1]-p[i2]=p[i2]-p[i3], 1<=i1<i2<i3<=N.的存在
题解:先将公式转化一下,转化为(p[i1]+p[i3])/2=p[i2]。即找到两个数中间存在一个数为他们的一半。
用数组嵌套记录下数的位置和值,a数组代表输入的值,b数组代表输入的值的位置。二重i,j循环
遍历数组,如果a[i]和a[j]的和s是奇数那么肯定不存在一个数c的二倍等于他们的和,因为c的二倍
是偶数。所以continue。如果是偶数那么数c的值肯定是一定的,一定是(a[i]+a[j])/2,现在找数
c是不是在a[i]和a[j]中间,如果在就存在这种情况了。这个时候就要用到b数组了,因为b数组是记
录元素下标的。用b数组判断是不是在中间就行了,如果找到了就用flag标记一下break输出就行了。
#include <iostream>
#include <stdio.h>
using namespace std;
int main()
{
int i,j,n,t,a[],b[],flag,s;
scanf("%d",&t);
while(t--)
{
scanf("%d",&n);
flag=;
for(i=;i<n;i++)
{
scanf("%d",&a[i]);
b[a[i]]=i;
}
for(i=;i<n;i++)
for(j=i+;j<n;j++)
{
s=a[i]+a[j];
if(s%)
continue;
if(b[s/]>i&&b[s/]<j)
{
flag=;
break;
}
if(flag)
break;
}
if(flag)
printf("Y\n");
else
printf("N\n");
}
return ;
}