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  • 2020牛客暑期多校训练营(第三场)

    A-Clam and Fish

    https://ac.nowcoder.com/acm/contest/5668/A

    题意

    给出一个字符串,每一位代表一个状态,0代表没有鱼也没有无法获得鱼饵,1代表没有鱼但可以获得鱼饵,2代表有鱼无法获得鱼饵,3代表既有鱼又可以获得鱼饵,如果有鱼可以直接钓鱼,有鱼饵可以获得一个鱼饵,可以消耗一个鱼饵钓鱼,每个状态只可以进行一次操作,问最多能钓上多少鱼

    题解

    能直接钓鱼就直接钓鱼,对于鱼饵,先在那些无法获得鱼饵的池子消耗鱼饵钓鱼,再加上剩下的鱼饵除以2向下取整即为答案

    代码

    #include <bits/stdc++.h>
    using namespace std;
    typedef long long ll;
    struct READ {
        inline char read() {
        #ifdef _WIN32
            return getchar();
        #endif
            static const int IN_LEN = 1 << 18 | 1;
            static char buf[IN_LEN], *s, *t;
            return (s == t) && (t = (s = buf) + fread(buf, 1, IN_LEN, stdin)), s == t ? -1 : *s++;
        }
        template <typename _Tp> inline READ & operator >> (_Tp&x) {
            static char c11, boo;
            for(c11 = read(),boo = 0; !isdigit(c11); c11 = read()) {
                if(c11 == -1) return *this;
                boo |= c11 == '-';
            }
            for(x = 0; isdigit(c11); c11 = read()) x = x * 10 + (c11 ^ '0');
            boo && (x = -x);
            return *this;
        }
    } in;
    
    const int N = 2e6 + 50;
    char s[N];
    int main() {
        int t; scanf("%d", &t);
        while (t--) {
            int n; scanf("%d", &n);
            scanf("%s", s + 1);
            int now = 0, ans = 0;
            for (int i = 1; i <= n; i++) {
                if (s[i] == '0') if (now > 0) now--, ans++;
                if (s[i] == '1') now++;
                if (s[i] == '2') ans++;
                if (s[i] == '3') ans++;
            }
            ans += now / 2;
            printf("%d
    ", ans);
        }
        return 0;
    }
    

    B-Classical String

    https://ac.nowcoder.com/acm/contest/5668/B

    题意

    给出一个字符串,2种操作

    M x,如果x大于0,把前缀长度为x的字符串移到最后,否则把前缀长度为(|x|)的后缀移到最前面

    A x,询问x位置的字符是什么

    题解

    维护修改操作的前缀和,可以发现前缀和的值等价于修改的总和,从当前前缀和的位置向后找即可,直接取模

    代码

    #include <bits/stdc++.h>
    using namespace std;
    typedef long long ll;
    typedef double db;
    struct READ {
        inline char read() {
        #ifdef Artoriax
            return getchar();
        #endif
            const int LEN = 1 << 18 | 1;
            static char buf[LEN], *s, *t;
            return (s == t) && (t = (s = buf) + fread(buf, 1, LEN, stdin)), s == t ? -1 : *s++;
        }
        inline READ & operator >> (char *s) {
            char ch;
            while (isspace(ch = read()) && ~ch);
            while (!isspace(ch) && ~ch) *s++ = ch, ch = read(); *s = '';
            return *this;
        }
        inline READ & operator >> (string &s) {
            s = ""; char ch;
            while (isspace(ch = read()) && ~ch);
            while (!isspace(ch) && ~ch) s += ch, ch = read();
            return *this;
        }
        template <typename _Tp> inline READ & operator >> (_Tp&x) {
            char ch, flag;
            for(ch = read(),flag = 0; !isdigit(ch) && ~ch; ch = read()) flag |= ch == '-';
            for(x = 0; isdigit(ch); ch = read()) x = x * 10 + (ch ^ '0');
            flag && (x = -x);
            return *this;
        }
    } in;
    
    const int N = 2e6 + 50;
    char s[N];
    int main() {
        in >> s;
        int len = strlen(s);
        int m; in >> m;
        int now = 0;
        while (m--) {
            char ch[2]; in >> ch;
            int x; in >> x;
            if (ch[0] == 'M') now = (now + x) % len;
            else {
                int pos = (now + x - 1 + len) % len;
                printf("%c
    ", s[pos]);
            }
        }
        return 0;
    }
    

    C-Operation Love

    https://ac.nowcoder.com/acm/contest/5668/C

    题意

    给出一个手的多边形的20个点,判断这个多边形是左手还是右手,可能有旋转和平移

    题解

    发现长度为9和8的线段是唯一的,把点改为逆时针顺序,直接判断是否有连续的9和8即可

    判断给出的多边形是顺时针还是逆时针:

    直接计算多边形面积,如果值为负,则为顺时针,否则为逆时针

    计算多边形面积,按给出的点的顺序做叉积相加除以2,即为多边形面积。

    #include <bits/stdc++.h>
    using namespace std;
    typedef long long ll;
    typedef double db;
    const int N = 2e5 + 50;
    const db eps = 1e-5;
    int sgn(db x) {
        if (fabs(x) < eps) return 0;
        if (x < 0) return -1;
        else return 1;
    }
    struct point {
        db x, y;
        void read() { scanf("%lf%lf", &x, &y); }
        db operator ^ (const point &b) const {
            return x * b.y - y * b.x;
        }
        db dis(point b) {
            return hypot(x - b.x, y - b.y);
        }
    } p[25];
    int main() {
        int t; scanf("%d", &t);
        while (t--) {
            for (int i = 0; i < 20; i++) p[i].read();
            p[20] = p[0];
            db s = 0;
            for (int i = 0; i < 20; i++) s += p[i] ^ p[i + 1];
            if (s < 0) reverse(p, p + 20);
            p[20] = p[0], p[21] = p[1];
            for (int i = 0; i < 20; i++) {
                if (sgn(p[i].dis(p[i+1]) - 9) == 0) {
                    if (sgn(p[i+1].dis(p[i+2]) - 8) == 0) puts("right");
                    else puts("left");
                } 
            }
        }
        return 0;
    }
    

    D-Point Construction Problem

    https://www.cnblogs.com/artoriax/p/13589527.html

    E-Two Matchings

    https://www.cnblogs.com/artoriax/p/13589731.html

    F-Fraction Construction-Problem

    https://www.cnblogs.com/artoriax/p/13589878.html

    G-Operating on a Graph

    题意

    题解

    代码

    #include <bits/stdc++.h>
    using namespace std;
    typedef long long ll;
    struct READ {
        inline char read() {
        #ifdef _WIN32
            return getchar();
        #endif
            static const int IN_LEN = 1 << 18 | 1;
            static char buf[IN_LEN], *s, *t;
            return (s == t) && (t = (s = buf) + fread(buf, 1, IN_LEN, stdin)), s == t ? -1 : *s++;
        }
        template <typename _Tp> inline READ & operator >> (_Tp&x) {
            static char c11, boo;
            for(c11 = read(),boo = 0; !isdigit(c11); c11 = read()) {
                if(c11 == -1) return *this;
                boo |= c11 == '-';
            }
            for(x = 0; isdigit(c11); c11 = read()) x = x * 10 + (c11 ^ '0');
            boo && (x = -x);
            return *this;
        }
    } in;
    
    const int N = 8e5 + 50;
    vector<int> G[N];
    int f[N];
    int find(int x) {
        return x == f[x] ? x : f[x] = find(f[x]);
    }
    void merge(vector<int> &x, vector<int> &y) {
        if (x.size() < y.size()) swap(x, y);
        for (auto e : y) x.push_back(e);
        y.clear();
    }
    int main() {
        int t; in >> t;
        while (t--) {
            int n, m; in >> n >> m;
            for (int i = 1; i <= n; i++) G[i].clear(), f[i] = i;
            for (int i = 1; i <= m; i++) {
                int x, y; in >> x >> y; x++; y++;
                G[x].push_back(y);
                G[y].push_back(x);
            }
            int q; in >> q;
            while (q--) {
                int o; in >> o; o++;
                if (find(o) != o) continue;
                vector<int> tmp = G[o];
                G[o].clear();
                for (auto nx : tmp) {
                    int y = find(nx);
                    if (y == o) continue;
                    f[y] = o;
                    merge(G[o], G[y]);
                }
            }
            for (int i = 1; i <= n; i++) {
                printf("%d ", find(i) - 1);
            }
            puts("");
        }
        return 0;
    }
    
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  • 原文地址:https://www.cnblogs.com/artoriax/p/13589931.html
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