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  • 【33.33%】【codeforces 608C】Chain Reaction

    time limit per test2 seconds
    memory limit per test256 megabytes
    inputstandard input
    outputstandard output
    There are n beacons located at distinct positions on a number line. The i-th beacon has position ai and power level bi. When the i-th beacon is activated, it destroys all beacons to its left (direction of decreasing coordinates) within distance bi inclusive. The beacon itself is not destroyed however. Saitama will activate the beacons one at a time from right to left. If a beacon is destroyed, it cannot be activated.

    Saitama wants Genos to add a beacon strictly to the right of all the existing beacons, with any position and any power level, such that the least possible number of beacons are destroyed. Note that Genos’s placement of the beacon means it will be the first beacon activated. Help Genos by finding the minimum number of beacons that could be destroyed.

    Input
    The first line of input contains a single integer n (1 ≤ n ≤ 100 000) — the initial number of beacons.

    The i-th of next n lines contains two integers ai and bi (0 ≤ ai ≤ 1 000 000, 1 ≤ bi ≤ 1 000 000) — the position and power level of the i-th beacon respectively. No two beacons will have the same position, so ai ≠ aj if i ≠ j.

    Output
    Print a single integer — the minimum number of beacons that could be destroyed if exactly one beacon is added.

    Examples
    input
    4
    1 9
    3 1
    6 1
    7 4
    output
    1
    input
    7
    1 1
    2 1
    3 1
    4 1
    5 1
    6 1
    7 1
    output
    3
    Note
    For the first sample case, the minimum number of beacons destroyed is 1. One way to achieve this is to place a beacon at position 9 with power level 2.

    For the second sample case, the minimum number of beacons destroyed is 3. One way to achieve this is to place a beacon at position 1337 with power level 42.

    【题目链接】:http://codeforces.com/contest/608/problem/C

    【题解】

    动态规划;
    新加的那个塔肯定是毁掉最后面的某个连续的包括最后一个塔的塔的序列;
    f[i][0]表示前i个点不被新加的塔攻击到需要毁掉的最少炮塔数目
    f[i][1]表示i以及i后面的点都被新加的那个塔毁掉最少需要毁掉的炮塔的数目
    f[i][0] = f[j][0]+(i-j-1);
    其中aj小于ai-bi且j是最大的;
    f[i][1] = f[i-1][1]+n-i+1;
    (新加的塔会把后面的n-i+1个塔毁掉)
    最后在f[n][0]和f[1..n][1]之间取最小值;前者表示新加的那个塔什么塔都不炸到;后者则相当于枚举它炸到哪个塔;

    【完整代码】

    #include <cstdio>
    #include <cstdlib>
    #include <cmath>
    #include <set>
    #include <map>
    #include <iostream>
    #include <algorithm>
    #include <cstring>
    #include <queue>
    #include <vector>
    #include <stack>
    #include <string>
    #define lson l,m,rt<<1
    #define rson m+1,r,rt<<1|1
    #define LL long long
    
    using namespace std;
    
    const int MAXN = 1e5+100;
    const int dx[5] = {0,1,-1,0,0};
    const int dy[5] = {0,0,0,-1,1};
    const double pi = acos(-1.0);
    
    struct abc
    {
        int a,b;
    };
    
    abc c[MAXN];
    int n,f[MAXN][2],mi;
    
    void rel(LL &r)
    {
        r = 0;
        char t = getchar();
        while (!isdigit(t) && t!='-') t = getchar();
        LL sign = 1;
        if (t == '-')sign = -1;
        while (!isdigit(t)) t = getchar();
        while (isdigit(t)) r = r * 10 + t - '0', t = getchar();
        r = r*sign;
    }
    
    void rei(int &r)
    {
        r = 0;
        char t = getchar();
        while (!isdigit(t)&&t!='-') t = getchar();
        int sign = 1;
        if (t == '-')sign = -1;
        while (!isdigit(t)) t = getchar();
        while (isdigit(t)) r = r * 10 + t - '0', t = getchar();
        r = r*sign;
    }
    
    bool cmp(abc a,abc b)
    {
        return a.a < b.a;
    }
    
    int main()
    {
        //freopen("F:\rush.txt","r",stdin);
        rei(n);
        for (int i = 1;i <= n;i++)
            rei(c[i].a),rei(c[i].b);
        sort(c+1,c+1+n,cmp);
        f[1][0] = 0;
        f[1][1] = n;
        for (int i = 2;i <= n;i++)
        {
            int l = 1,r = i-1,j = 0,judge = c[i].a-c[i].b;
            while (l <= r)
            {
                int m = (l+r)>>1;
                if (c[m].a<judge)
                    j = m,l = m+1;
                else
                    r = m-1;
            }
            f[i][0] = f[j][0]+(i-j-1);
            f[i][1] = f[i-1][0]+n-i+1;
        }
        mi = f[n][0];
        for (int i = 1;i <= n;i++)
            mi = min(mi,f[i][1]);
        printf("%d
    ",mi);
        return 0;
    }
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  • 原文地址:https://www.cnblogs.com/AWCXV/p/7632079.html
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