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Codeforces Round #689 (Div. 2, based on Zed Code Competition)

作者:互联网

A - String Generation

int main() {
    IOS;
    for (cin >> _; _; --_) {
        cin >> n >> m;
        rep (i, 1, n) cout << (char)(i < m ? 'a' : 'a' + (i - m) % 3); cout << '\n';
    }
    return 0;
}

B - Find the Spruce

dp, 根据下一层推就行, \(O(n^2)\)

int main() {
    IOS;
    for (cin >> _; _; --_) {
        cin >> n >> m; vector<VI> f(n + 2, VI(m + 2));
        ll ans = 0;
        rep (i, 1, n) cin >> s[i] + 1;
        per (i, n, 1) rep (j, 1, m) {
            if (s[i][j] == '.') continue;
            ans += f[i][j] = min(f[i + 1][j - 1], min(f[i + 1][j], f[i + 1][j + 1])) + 1;
        }
        cout << ans << '\n';
    }
    return 0;
}

C - Random Events

贪心

int main() {
    IOS;
    for (cin >> _; _; --_) {
        cin >> n >> m;
        rep (i ,1, n) cin >> a[i], b[i] = a[i];
        sort(b + 1, 1 + n + b);
        int c = n;
        while (c && a[c] == b[c]) --c;
        double ans = c ? 0 : 1;
        rep (i, 1, m) {
            int r; double p; cin >> r >> p;
            if (r >= c) ans += (1 - ans) * p;
        }
        cout << setiosflags(ios::fixed) << setprecision(6) << ans << '\n';
    }
    return 0;
}

D - Divide and Summarize

贪心先把能找到的都找出来, \(O(nlog^2n)\)

void solve(int l, int r) {
    st.insert(b[r] - b[l - 1]);
    int mid = a[l] + a[r] >> 1;
    int c = upper_bound(a + l, a + r + 1, mid) - a;
    if (c - 1 == r) return;
    solve(l, c - 1); solve(c, r);
}
 
int main() {
    IOS;
    for (cin >> _; _; --_) {
        cin >> n >> m; set<ll>().swap(st);
        rep (i, 1, n) cin >> a[i];
        sort(a + 1, a + 1 + n);
        rep (i, 1, n) b[i] = a[i] + b[i - 1];
        solve(1, n);
        rep (i, 1, m) cin >> k, cout << (st.count(k) ? "YES\n" : "NO\n");
    }
    return 0;
}

E - Water Level

分类讨论, 发现 x 的数据分为很小, 明显从 x 入手分类讨论, \(O(n)\)

int main() {
    IOS; ll k, l, r, t, x, y; cin >> k >> l >> r >> t >> x >> y;
    if (x > y) {
        if (k + y > r) k -= x, --t;
        if ((k - l) / (x - y) >= t) return cout << "Yes\n", 0;
        else return cout << "No\n", 0;
    } else {
        vector<bool> v(x);
        while (t > 0) {
            if (v[k % x]) return cout << "Yes\n", 0;
            v[k % x] = 1;
            ll mx = min(t, (k - l) / x);
            t -= mx, k -= mx * x;
            if (t == 0) return cout << "Yes\n", 0;
            --t, k += k + y > r ? -x : y - x;
            if (k < l) return cout << "No\n", 0;
        }
    }
    return cout << "Yes\n", 0;
}

标签:Code,based,cout,Zed,int,rep,IOS,cin,ans
来源: https://www.cnblogs.com/2aptx4869/p/14128043.html