POJ 1062 昂贵的聘礼

POJ 1062 昂贵的聘礼

[★★★☆☆]图论 最短路

  • 题目大意:

    中文题。。不过题目介绍好捉急啊

  • 样例

    输入:
    1 4
    10000 3 2
    2 8000
    3 5000
    1000 2 1
    4 200
    3000 2 1
    4 200
    50 2 0

    输出:
    5250

  • 解题思路:

    难度在如何处理等级的问题上。。题目介绍真的醉人。
    我用的Bellman算法,不过由于没有负圈,用Dijkstra算法时间复杂度低一点。

  • 代码

#include <iostream>
#include <algorithm>

using namespace std;

const int INF = 1e9 + 7;

struct edge{
    int from, to, cost;
};

edge E[10007];
int cte;
int M, N;

int d[105];
int dc[105];
int L[105];

void cpd() {
    for (int i = 1; i <= N; i++) {
        d[i] = dc[i];
    }
}

void add_edge(int f, int t, int c) {
    edge et = {f, t, c};
    E[cte++] = et;
}


int main() {
    int ans = INF;
    cte = 0;
    cin >> M >> N;
    int p, l, n, f, c;
    int now_l = 0;

    cin >> p >> l >> n;
    dc[1] = p;
    L[1] = l;
    for (int j = 0; j < n; j++) {
        cin >> f >> c;
        add_edge(f, 1, c);
    }

    for (int i = 2; i <= N; i++) {
        cin >> p >> l >> n;
        L[i] = l;
        dc[i] = p;
        for (int j = 0; j < n; j++) {
            cin >> f >> c;
            add_edge(f, i, c);
        }
    }

    for (int i = 1; i <= N; i++) {
        if (L[i] >= L[1] && L[i] <= L[1] + M) {
            now_l = L[i];
        }
        else continue;

        cpd();
        while (1) {
            bool flag = 1;
            for (int j = 0; j < cte; j++) {
                edge e = E[j];
                if ((L[e.from] >= now_l - M && L[e.from] <= now_l) && d[e.to] > d[e.from] + e.cost) {
                    d[e.to] = d[e.from] + e.cost;
                    flag = 0;
                }
            }
            if (flag) break;
        }
        if (ans > d[1]) ans = d[1];
    }
    cout << ans << endl;


    return 0;
}

/* 0 4 10000 3 2 2 8000 3 5000 1000 2 1 4 200 3000 2 1 4 200 50 2 0 */

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