As usual Babul is again back with his problem and now with numbers. He thought of an array of numbers in which he does two types of operation that is rotation and deletion. His process of doing these 2 operations are that he first rotates the array in a clockwise direction then delete the last element. In short he rotates the array nth times and then deletes the nth last element. If the nth last element does not exists then he deletes the first element present in the array. So your task is to find out which is the last element that he deletes from the array so that the array becomes empty after removing it.
For example
A = {1,2,3,4,5,6}.
He rotates the array clockwise i.e. after rotation the array A = {6,1,2,3,4,5} and delete the last element that is {5} so A = {6,1,2,3,4}. Again he rotates the array for the second time and deletes the second last element that is {2} so A = {4,6,1,3}, doing these steps when he reaches 4th time, 4th last element does not exists so he deletes 1st element ie {1} so A={3,6}. So continuing this procedure the last element in A is {3}, so o/p will be 3.
Input:
The first line of input contains an integer T denoting the no of test cases. Then T test cases follow. Each test case contains two lines. The first line of each test case contains an integer N. Then in the next line are N space separated values of the array A.
Output:
For each test case in a new line print the required result.
Constraints:
1<=T<=200
1<=N<=100
1<=A[i]<=10^7
Example:
Input
2
4
1 2 3 4
6
1 2 3 4 5 6
Output:
2
3
C++(gcc5.4)代码:
#include <iostream>
using namespace std;
int main() {
//code
// define the number of test cases
int T;
cin>>T;
for(int t=0; t<T; t++)
{
//get the two line input
int N;
cin>>N;
int a[N];
int i = 0;
for(i=0;i<N;i++)
cin>>a[i];
//Rotate and delete
int index_delete = 1;
int array_length = N;
int tmp;
while(array_length>1)
{
//Rotate
tmp = a[array_length - 1];
for(int j=array_length-1; j>0; j--)
{
a[j] = a[j-1];
}
a[0] = tmp;
//delete
for(int k=array_length<index_delete?0:array_length-index_delete; k<array_length-1; k++)
{
a[k]=a[k+1];
}
index_delete += 1;
array_length -= 1;
}
cout<<a[0]<<endl;
}
return 0;
}
注:更加严谨的将一行数字(允许负数)存入数组的代码如下,但是在测试时包含这部分代码的程序会提示超出时间限制!
#include<iostream>
using namespace std;
int main()
{
int a[50];
int i = 0;
char c;
while((c=getchar())!='\n')
{
if(c!=' ')//把这句判断条件改动
{
ungetc(c,stdin);
cin>>a[i++];
}
}
for(int j=0;j<i;j++)
{
cout<<"a["<<j<<"]:"<<a[j]<<endl;
}
}
or
#include<iostream>
using namespace std;
int main()
{
int a[20];
int i = 0;
char c;
cin>>a[i++];
while((c=getchar())!='\n')
{
cin>>a[i++];
}
for(int j=0;j<i;j++)
{
cout<<"a["<<j<<"]:"<<a[j]<<endl;
}
}
python代码
#code
def rotate(arr):
n = len(arr)
tmp = arr[-1]
arr[1:n+1] = arr[0:-1]
arr[0] = tmp;
return -1
# Input number of test cases
t = int(input())
# One by one run for all input test cases
for i in range(0,t):
# Input the size of the array
n = int(input())
# Input the array
arr = [int(i) for i in input().split()]
# Rotate and delete
index_delete = 1;
array_length = n;
while array_length>1:
# Rotate
rotate(arr)
# delete
if array_length<index_delete:
delete_index = 0
else:
delete_index = array_length-index_delete
arr.pop(delete_index)
index_delete += 1;
array_length -= 1;
print(arr[0])