There is a list of sorted integers from 1 to n. Starting from left to right, remove the first number and every other number afterward until you reach the end of the list.
Repeat the previous step again, but this time from right to left, remove the right most number and every other number from the remaining numbers.
We keep repeating the steps again, alternating left to right and right to left, until a single number remains.
Find the last number that remains starting with a list of length n.
Example:
Input:
n = 9,
1 2 3 4 5 6 7 8 9
2 4 6 8
2 6
6
Output:
6
重点在于比较每次开始的头的下标在删除前和删除后的变化,update这个head的变化即可,通过n-1的head推n的head(通过n的head推n-1的head)。每次删除的时候,看head怎么变,head就是一定会留下的第一个人的编号,最后返回head编号即可。
class Solution {
public int lastRemaining(int n) {
int res = 1;
int step = 1;
boolean left = true;
while (n > 1) {
if (n % 2 == 1 || left) {
res = res + step;
}
step *= 2;
n /= 2;
left = !left;
}
return res;
}
}