• 洛谷 1514 引水入城


    作为一道提高T2难度的题目,它成功的让我自闭了。。。

    读完题第一感觉:flood_fill,第二感觉:第二问不可做。。。

    于是思考许久,还是翻开了题解,然后看到一句:“每个蓄水厂覆盖的区间必然连续,否则输出0”。

    题目有变的可做起来,于是瞎搞了一波flood_fill + 区间DP。

    结果只有80分。。。一个点TLE,一个点WA。。。

    TLE好办,对第一行来波记忆化就完了,WA就难办了,下了个数据点发现,还要特判n==1的情况。

    终于AC辣!!!!

    AC 代码:

    #include <algorithm>
    #include <iostream>
    #include <cstring>
    #include <cstdio>
    #include <queue>
    
    inline int min(const int a, const int b) { return a > b ? b : a; }
    inline int max(const int a, const int b) { return a < b ? b : a; }
    
    inline void read(int & x)
    {
        x = 0;
        int k = 1;
        char c = getchar();
        while (!isdigit(c))
            if (c == '-') c = getchar(), k = -1;
            else c = getchar();
        while (isdigit(c))
            x = (x << 1) + (x << 3) + (c ^ 48),
            c = getchar();
        x *= k;
    }
    
    struct node
    {
        int x, y;
    }fir, cur;
    
    int n, m, nx, ny, out;
    int h[505][505];
    int v[505][505];
    int dk[505];
    int dp[505][505];
    int mem[505][505];
    int l[505], r[505], ans[505];
    int brd[505];
    int dx[] = {0, 0, 1, -1};
    int dy[] = {1, -1, 0, 0};
    
    void bfs(int x, int now)
    {
        if (dk[now]) 
        {
            l[now] = l[dk[now]],
            r[now] = r[dk[now]],
            ans[now] = ans[dk[now]];
            return;
        }
        std::queue <node> Q;
        fir.x = x, fir.y = now;
        Q.push(fir);
        v[x][now] = 1;
        while (!Q.empty())
        {
            cur = Q.front(); Q.pop();
            for (int i = 0; i < 4; ++i)
            {
                nx = cur.x + dx[i],    ny = cur.y + dy[i];
                if (v[nx][ny] || nx < 1 || nx > n || ny > m || ny < 1 || h[nx][ny] >= h[cur.x][cur.y]) continue;
                fir.x = nx, fir.y = ny;
                if (nx == 1) dk[ny] = now;
                v[nx][ny] = 1; Q.push(fir);
                if (nx == n) l[now] = min(l[now], ny), r[now] = max(r[now], ny), ++ans[now], mem[n][ny] = 1;
            }
        }
    }
    
    void flood_fill(int now)
    {
        memset(v, false, sizeof(v));
        bfs(1, now); 
        for (int i = l[now]; i <= r[now]; ++i) brd[i] = 1;
        if (l[now] <= r[now])
            for (int i = l[now]; i <= r[now]; ++i)
                for (int j = i; j <= r[now]; ++j)
                    dp[i][j] = 1;
    }
    
    inline void dp_it()
    {
        for (int len = 1; len <= m; ++len) 
            for (int i = 1, j = i + len - 1; j <= m; ++i, j = i + len - 1)
                for (int k = i; k < j; ++k)
                    dp[i][j] = min(dp[i][j], dp[i][k] + dp[k + 1][j]);
    }
    
    int main()
    {
        memset(l, 0x3f, sizeof(l));
        memset(dp, 0x3f, sizeof(dp));
        read(n), read(m); bool flag = true;
        for (int i = 1; i <= n; ++i)
            for (int j = 1; j <= m; ++j)
                read(h[i][j]);
        for (int i = 1; i <= m; ++i)
            flood_fill(i);
        for (int i = 1; i <= m; ++i) if (!mem[n][i]) ++out; 
        if (out != 0) { if (n == 1) printf("1
    %d", out); else printf("0
    %d", out); return 0; }
        dp_it();
        printf("1
    %d", dp[1][m]);
        return 0;
    }
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  • 原文地址:https://www.cnblogs.com/yanyiming10243247/p/9829478.html
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