当前位置: 首页 > 工具软件 > Popcorn Time > 使用案例 >

A - MaratonIME stacks popcorn buckets

支才
2023-12-01

Statements

On a Friday afternoon, some members of MaratonIME decided to watch a movie at CinIME.

There were n members who received popcorn buckets numbered from 1 to n.

At a certain moment, bucket 1 had one popcorn, bucket 2 had two popcorns and so on until bucket n, which had n popcorns. As good competitive programmers, they always prefer to simplify things, and decided to gather all the popcorn in just one bucket.

They proceeded on the following way: In bucket 2, they gather the popcorn from buckets 1 and 2. Then, in bucket 3, those of bucket 2 and 3 and so on until the last bucket. Formally, they perform n - 1 movements, on the i-th movement they join the popcorn from buckets i and i + 1 on bucket i + 1. However, they are known to be clumsy and at each moment they join two buckets, they let a single popcorn fall to the ground, which they promptly throw in the trash.

Jiang, the Sharp, realized that maybe the last bucket would be too small to hold all of the popcorn. Therefore, he asked for your help to determine how much popcorn should remain in the last bucket.

Given n, the number of members who decided to watch the movie, print the amount of popcorn that would remain in bucket n. Keep in mind that exactly one popcorn is lost at each step.

Input

The first line contains the integer n (2 ≤ n ≤ 3 * 109) – the number of members from MaratonIME who decided to watch the movie.

Output

An integer: The amount of popcorn the last bucket should have.

Examples

Input

2

Output

2

Input

3

Output

4

Input

1000000

Output

499999500001
#include <iostream>
#include<stdio.h>
using namespace std;
int main()
{
    long long int n;
    scanf("%lld",&n);
    long long int sum=0;
    sum=(n*(n+1))/2-(n-1);
    printf("%lld\n",sum);
    return 0;
}

 

 类似资料: