Hands that shed innocent blood!

There are n guilty people in a line, the i-th of them holds a claw with length Li. The bell rings and every person kills some of people in front of him. All people kill others at the same time. Namely, the i-th person kills the j-th person if and only if j < i and j ≥ i - Li.

You are given lengths of the claws. You need to find the total number of alive people after the bell rings.

The first line contains one integer n (1 ≤ n ≤ 106) — the number of guilty people.

Second line contains n space-separated integers L1, L2, ..., Ln (0 ≤ Li ≤ 109), where Li is the length of the i-th person's claw.

Print one integer — the total number of alive people after the bell rings.

In first sample the last person kills everyone in front of him.

题目大意：n个人排队，第i个人会杀死第j个人当且仅当j < i并且j ≥i-li,问最后有多少个人能幸存下来.

分析：从后往前扫，这样就避免了j<i的干扰，记录一下i-li的最小值，就能判断第j个人是否会被杀死.

时间复杂度O(n).

#include <cstdio>

#include <cmath>

#include <queue>

#include <cstring>

#include <iostream>

#include <algorithm>

using namespace std;

const int inf = 0x7fffffff;

int n, l[], maxx = inf, ans;

int main()

{

    scanf("%d", &n);

    for (int i = ; i <= n; i++)

        scanf("%d", &l[i]);

    for (int i = n; i >= ; i--)

    {

        if (i >= maxx)

            ans++;

        maxx = min(maxx, i - l[i]);

    }

    printf("%d\n", n - ans);

    return ;

}