• 【洛谷 P1073】 最优贸易 (Tarjan缩点+拓扑排序)


    题目链接
    (Tarjan)缩点,记录每个环内的最大值和最小值。
    然后跑拓扑排序,(Min[u])表示到(u)的最小值,(ans[u])表示到(u)的答案,(Min)(ans)都在拓扑排序中更新和传递。
    最终答案就是(ans[n])

    (100)多行敲着心累

    #include <cstdio>
    #include <cstring>
    #define Open(s) freopen(s".in","r",stdin);freopen(s".out","w",stdout);
    #define Close fclose(stdin);fclose(stdout);
    namespace IO{
        int xjc; char ch;
        inline int read(){
            xjc = 0; ch = getchar();
            while(ch < '0' || ch > '9') ch = getchar();
            while(ch >= '0' && ch <= '9'){ xjc = xjc * 10 + ch - '0'; ch = getchar(); }
            return xjc;
        }
    }using namespace IO;
    inline int max(int a, int b){
        return a > b ? a : b;
    }
    inline int min(int a, int b){
        return a > b ? b : a;
    }
    const int MAXN = 100010;
    const int MAXM = 500010;
    struct Queue{
        int s[MAXN];
        int head, tail;
        inline void push(int x){
            s[++tail] = x;
        }
        inline int pop(){
            return s[++head];
        }
        inline int size(){
            return tail - head;
        }
    }q;
    struct Edge{
        int from, next, to;
    };
    struct Graph{
       int head[MAXN], num;
       Edge e[MAXM << 1];
       inline void Add(int from, int to){
        e[++num].to = to; e[num].from = from; e[num].next = head[from]; head[from] = num;
       }
    }G, T, P;
    int dfn[MAXN], low[MAXN], id, vis[MAXN], stack[MAXN], w[MAXN], top, cnt, belong[MAXN], v[MAXN];
    int minw[MAXN], maxw[MAXN], now, in[MAXN], Min[MAXN], ans[MAXN];
    void Tarjan(int u){
        dfn[u] = low[u] = ++id; vis[u] = 1; stack[++top] = u;
        for(int i = G.head[u]; i; i = G.e[i].next)
           if(!dfn[G.e[i].to]){
             Tarjan(G.e[i].to);
             low[u] = min(low[u], low[G.e[i].to]);
           }
           else if(vis[G.e[i].to])
             low[u] = min(low[u], dfn[G.e[i].to]);
        if(dfn[u] == low[u]){
          ++cnt;
          do{
            now = stack[top--];
            vis[now] = 0;
            belong[now] = cnt;
            minw[cnt] = min(minw[cnt], w[now]);
            maxw[cnt] = max(maxw[cnt], w[now]);
            P.Add(cnt, now);
          }while(now != u);
        }
    }
    int n, m, a, b, c;
    int main(){
        Open("trade");
        memset(minw, 127, sizeof minw);
        memset(Min, 127, sizeof Min);
        n = read(); m = read();
        for(int i = 1; i <= n; ++i)
           w[i] = read();
        for(int i = 1; i <= m; ++i){
           a = read(); b = read(); c = read();
           G.Add(a, b);
           if(c == 2) G.Add(b, a);
        }
        for(int i = 1; i <= n; ++i)
           if(!dfn[i])
             Tarjan(i);
        for(int i = 1; i <= cnt; ++i){
           for(int j = P.head[i]; j; j = P.e[j].next){
              int u = P.e[j].to;
              for(int k = G.head[u]; k; k = G.e[k].next)
                 if(belong[G.e[k].to] != i && !v[belong[G.e[k].to]]){
                   v[belong[G.e[k].to]] = 1;
                   T.Add(i, belong[G.e[k].to]);
                   ++in[belong[G.e[k].to]];
                 }
           }
           for(int j = P.head[i]; j; j = P.e[j].next){
              int u = P.e[j].to;
              for(int k = G.head[u]; k; k = G.e[k].next)
                 v[belong[G.e[k].to]] = 0;
           }
        }
        q.push(belong[1]);
        while(q.size()){
          now = q.pop();
          Min[now] = min(Min[now], minw[now]);
          ans[now] = max(ans[now], maxw[now] - Min[now]);
          for(int i = T.head[now]; i; i = T.e[i].next){
             int v = T.e[i].to;
             if(!(--in[v])) q.push(v);
             Min[v] = min(Min[v], Min[now]);
             ans[v] = max(ans[v], ans[now]);
          }
        }
        printf("%d
    ", ans[belong[n]]);
        return 0;
    }
    
    
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  • 原文地址:https://www.cnblogs.com/Qihoo360/p/9814366.html
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