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  • 2019-2020 ICPC North-Western Russia Regional Contest

    最近事务繁多,很久没写文章。正好趁刚换新队友的第一场训练,记录一下。

    题目中规中矩。


    A:

    solver:lzh

    完全没看,好像是个傻逼题。

     1 #include<bits/stdc++.h>
     2 using namespace std;
     3 int main() {
     4     int a, b, n; scanf("%d%d%d", &a, &b, &n);
     5     int c = b, d = a, ans = 0, cur = 1;
     6     while (c != n || d != n) {
     7         if (!cur) {
     8             c += b - a;
     9             if (c > n)c = n;
    10         } else {
    11             d += b - a;
    12             if (d > n)d = n;
    13         }
    14         cur ^= 1;
    15         ans++;
    16     }
    17     printf("%d
    ", ans);
    18 }
    View Code

    E:

    solver:zyh、lzh

    给定一棵树,树上有若干个重要点。问是否存在一个点到所有重要点距离相等。

    树的直径瞎搞。

    #include<bits/stdc++.h>
    using namespace std;
    typedef long long ll;
    vector<int>v[200010];
    int mark[200010], ismark[200010];
    int st[200010], num = 0, ans = 0, ansn;
    int dep[200010];
    void dfs1(int x, int pre, int d) {
        st[++num] = x;
        if (ismark[x] && ans < d)ans = d, ansn = st[num + 1 >> 1];
        for (auto i : v[x])
            if (i != pre)
                dfs1(i, x, d + 1);
        num--;
    }
    void dfs2(int x, int pre, int d) {
        dep[x] = d;
        for (auto i : v[x])
            if (i != pre)
                dfs2(i, x, d + 1);
    }
    int main() {
        int n, m; scanf("%d%d", &n, &m);
        for (int i = 2; i <= n; i++) {
            int x, y; scanf("%d%d", &x, &y);
            v[x].push_back(y);
            v[y].push_back(x);
        }
        for (int i = 1; i <= m; i++)scanf("%d", &mark[i]), ismark[mark[i]]++;
        if (m == 1) {
            printf("YES
    1
    ");
            return 0;
        }
        dfs1(mark[1], -1, 0);
        if (ans & 1) {
            printf("NO
    "); return 0;
        }
        dfs2(ansn, -1, 1);
        for (int i = 2; i <= m; i++)
            if (dep[mark[i - 1]] != dep[mark[i]]) {
                printf("NO
    ");
                return 0;
            }
        printf("YES
    %d
    ", ansn);
    }
    View Code

    H:

    solver:czq

    给定n个数,要求把这n个数分成连续的尽量少的块,并且每块和<=t。

    由于有多个询问,故可以预处理出每个询问能装多少个数。然后每个询问直接模拟统计答案。

     1 /* basic header */
     2 #include <bits/stdc++.h>
     3 /* define */
     4 #define ll long long
     5 #define dou double
     6 #define pb emplace_back
     7 #define mp make_pair
     8 #define sot(a,b) sort(a+1,a+1+b)
     9 #define rep1(i,a,b) for(int i=a;i<=b;++i)
    10 #define rep0(i,a,b) for(int i=a;i<b;++i)
    11 #define eps 1e-8
    12 #define int_inf 0x3f3f3f3f
    13 #define ll_inf 0x7f7f7f7f7f7f7f7f
    14 #define lson (curpos<<1)
    15 #define rson (curpos<<1|1)
    16 /* namespace */
    17 using namespace std;
    18 /* header end */
    19 
    20 const int maxn = 1e6 + 10;
    21 int n, a[maxn], pos[maxn], cnt[maxn], preSum[maxn], maxx;
    22 
    23 int solve(int x) {
    24     if (x < maxx) return -int_inf;
    25     if (cnt[x]) return cnt[x];
    26     int res = 0, i = 0;
    27     while (i < n) {
    28         res += x;
    29         res = min(res, 1000000);
    30         i = pos[res];
    31         res = preSum[i];
    32         cnt[x]++;
    33     }
    34     return cnt[x];
    35 }
    36 
    37 int main() {
    38     scanf("%d", &n);
    39     for (int i = 1; i <= n; i++) {
    40         scanf("%d", &a[i]);
    41         maxx = max(maxx, a[i]);
    42         preSum[i] = preSum[i - 1] + a[i];
    43         for (int j = preSum[i - 1]; j < preSum[i]; j++) pos[j] = i - 1;
    44     }
    45     for (int i = preSum[n]; i <= 1000000; i++) pos[i] = n;
    46     int q; scanf("%d", &q);
    47     while (q--) {
    48         int x; scanf("%d", &x);
    49         int ret = solve(x);
    50         if (ret != -int_inf) printf("%d
    ", solve(x));
    51         else puts("Impossible");
    52     }
    53     return 0;
    54 }
    View Code

    I:

    solver:czq

    给定三维空间内的n个点,要求构造一个尽量小的四棱锥(底面两边与坐标轴平行,且锥面与底面夹角为45度),使得该四棱锥能包含n个点。

    因为锥面与底面夹角为45度,故可以拆开分别考察xOz和yOz两个平面,构造出两个等腰直角三角形之后再合并答案。

     1 /* basic header */
     2 #include <bits/stdc++.h>
     3 /* define */
     4 #define ll long long
     5 #define dou double
     6 #define pb emplace_back
     7 #define mp make_pair
     8 #define sot(p,b) sort(p+1,p+1+b)
     9 #define rep1(i,p,b) for(int i=p;i<=b;++i)
    10 #define rep0(i,p,b) for(int i=p;i<b;++i)
    11 #define eps 1e-8
    12 #define int_inf 0x3f3f3f3f
    13 #define ll_inf 0x7f7f7f7f7f7f7f7f
    14 #define lson (curpos<<1)
    15 #define rson (curpos<<1|1)
    16 /* namespace */
    17 using namespace std;
    18 /* header end */
    19 
    20 const int maxn = 1e3 + 10;
    21 struct Point {
    22     int x, y, z;
    23 } p[maxn];
    24 int n, l1 = INT_MAX, l2 = INT_MAX, r1 = -INT_MAX, r2 = -INT_MAX;
    25 
    26 int main() {
    27     scanf("%d", &n);
    28     for (int i = 1; i <= n; i++) scanf("%d%d%d", &p[i].x, &p[i].y, &p[i].z);
    29     for (int i = 1; i <= n; i++) {
    30         l1 = min(p[i].x - p[i].z, l1); l2 = min(p[i].y - p[i].z, l2);
    31         r1 = max(p[i].x + p[i].z, r1); r2 = max(p[i].y + p[i].z, r2);
    32     }
    33     int currx = l1 + r1 >> 1, curry = l2 + r2 >> 1;
    34     int h1 = max(currx - l1, curry - l2), h2 = max(r1 - currx, r2 - curry);
    35     printf("%d %d %d
    ", currx, curry, max(h1, h2));
    36     return 0;
    37 }
    View Code

    J:

    solver:czq

    显然倒着构造会好构造很多。对于点对(i,j),计算所有的k(i<k<j)对a[i][j]的贡献即可。如果不一样,说明点i与点j之间存在边。

     1 /* basic header */
     2 #include <bits/stdc++.h>
     3 /* define */
     4 #define ll long long
     5 #define dou double
     6 #define pb emplace_back
     7 #define mp make_pair
     8 #define sot(ans,b) sort(ans+1,ans+1+b)
     9 #define rep1(i,ans,b) for(int i=ans;i<=b;++i)
    10 #define rep0(i,ans,b) for(int i=ans;i<b;++i)
    11 #define eps 1e-8
    12 #define int_inf 0x3f3f3f3f
    13 #define ll_inf 0x7f7f7f7f7f7f7f7f
    14 #define lson (curpos<<1)
    15 #define rson (curpos<<1|1)
    16 /* namespace */
    17 using namespace std;
    18 /* header end */
    19 
    20 const int maxn = 510;
    21 int n, a[maxn][maxn], ans[maxn][maxn];
    22 
    23 int main() {
    24     scanf("%d", &n);
    25     for (int i = 1; i <= n; i++)
    26         for (int j = 1; j <= n; j++)
    27             scanf("%1d", &a[i][j]);
    28     for (int i = n - 1; i >= 1; i--)
    29         for (int j = i; j <= n; j++) {
    30             int contribute = 0;
    31             for (int k = i + 1; k < j; k++) contribute = (contribute + ans[i][k] * a[k][j]) % 10;
    32             if (contribute != a[i][j]) ans[i][j] = 1;
    33         }
    34     for (int i = 1; i <= n; i++) {
    35         for (int j = 1; j <= n; j++) printf("%d", ans[i][j]);
    36         puts("");
    37     }
    38     return 0;
    39 }
    View Code

    K:

    solver:lzh、czq

    细节贪心题,枚举A的最大可能上下边界,得出可行的左右边界,再分割剩下的区域。

     1 #include<bits/stdc++.h>
     2 using namespace std;
     3 typedef long long ll;
     4 typedef pair<int, char> pic;
     5 typedef pair<int, int> pii;
     6 char s[1010][1010], ans[1010][1010];
     7 pii p[30];
     8 vector<pic> v[1010];
     9 int pt[1010];
    10 void solve(pii l, pii r) {
    11     for (int i = 1; i <= 1000; i++)v[i].clear(), pt[i] = 0;
    12     for (int i = 2; i <= 26; i++)
    13         if (l.first <= p[i].first && p[i].first <= r.first &&
    14                 l.second <= p[i].second && p[i].second <= r.second)
    15             v[p[i].first].push_back(make_pair(p[i].second, i + 'a' - 1));
    16 
    17     for (int i = l.first; i <= r.first; i++)
    18         sort(v[i].begin(), v[i].end());
    19 
    20     for (int i = l.first; i <= r.first; i++)
    21         if (v[i].size() == 0 && pt[i - 1]) {
    22             for (int j = l.second; j <= r.second; j++)ans[i][j] = ans[i - 1][j];
    23             pt[i] = 1;
    24         } else if (v[i].size() == 1) {
    25             for (int j = l.second; j <= r.second; j++)ans[i][j] = v[i][0].second;
    26             pt[i] = 1;
    27         } else if (v[i].size() > 1) {
    28             pt[i] = 1;
    29             int pre = l.second;
    30             for (auto j : v[i]) {
    31                 for (; pre <= j.first; pre++)ans[i][pre] = j.second;
    32             }
    33 
    34             for (; pre <= r.second; pre++)ans[i][pre] = ans[i][pre - 1];
    35         }
    36 
    37     for (int i = r.first; i >= l.first; i--)
    38         if (!pt[i])
    39             for (int j = l.second; j <= r.second; j++)
    40                 ans[i][j] = ans[i + 1][j];
    41 }
    42 int main() {
    43     int n, m; scanf("%d%d", &n, &m);
    44     pii A;
    45     for (int i = 1; i <= n; i++) {
    46         scanf("%s", s[i] + 1);
    47         for (int j = 1; j <= m; j++)
    48             if (s[i][j] != '.') {
    49                 if (s[i][j] != 'A') {
    50                     p[s[i][j] - 'A' + 1] = make_pair(i, j);
    51                     v[i].push_back(make_pair(j, s[i][j] + 'a' - 'A'));
    52                 } else A = make_pair(i, j);
    53             }
    54     }
    55 
    56     int tmp = 0;
    57     pii L, R;
    58     for (int i = 1; i <= n; i++) {
    59         priority_queue<int>l;
    60         priority_queue<int, vector<int>, greater<int>>r;
    61         l.push(0);
    62         r.push(m + 1);
    63         for (int j = i; j <= n; j++) {
    64             int gg = 0;
    65             for (int k = 2; k <= 26; k++)
    66                 if (i <= p[k].first && p[k].first <= j) {
    67                     if (p[k].second == A.second) {
    68                         gg++; break;
    69                     } else if (p[k].second < A.second)l.push(p[k].second);
    70                     else r.push(p[k].second);
    71                 }
    72             if (gg)break;
    73             if (i <= A.first && A.first <= j && l.top() < A.second && A.second < r.top()
    74                     && (j - i + 1) * (r.top() - l.top() - 1) > tmp) {
    75                 tmp = (j - i + 1) * (r.top() - l.top() - 1);
    76                 L = make_pair(i, l.top() + 1);
    77                 R = make_pair(j, r.top() - 1);
    78             }
    79         }
    80     }
    81     if (L.first != 1)solve(make_pair(1, 1), make_pair(L.first - 1, m));
    82     if (R.first != n)solve(make_pair(R.first + 1, 1), make_pair(n, m));
    83     if (L.second != 1)solve(make_pair(L.first, 1), make_pair(R.first, L.second - 1));
    84     if (R.second != m)solve(make_pair(L.first, R.second + 1), make_pair(R.first, m));
    85 
    86     for (int i = 2; i <= 26; i++)ans[p[i].first][p[i].second] = 'A' + i - 1;
    87     for (int i = L.first; i <= R.first; i++)
    88         for (int j = L.second; j <= R.second; j++)
    89             ans[i][j] = 'a';
    90     ans[A.first][A.second] = 'A';
    91 
    92     for (int i = 1; i <= n; i++, printf("
    "))
    93         for (int j = 1; j <= m; j++)
    94             printf("%c", ans[i][j]);
    95 }
    View Code

    M:

    solver:zyh

    没看,签到。

     1 #include <iostream>
     2 #include <algorithm>
     3 #include <map>
     4 using namespace std;
     5 int a[10001];
     6 map<int, int> M;
     7 int main() {
     8     int T;
     9     long long ans = 0;
    10     scanf("%d", &T);
    11     while (T--) {
    12         int n;
    13         M.clear();
    14         ans = 0;
    15         scanf("%d", &n);
    16         for (int i = 0; i < n; ++i) {
    17             scanf("%d", &a[i]);
    18             M[a[i]]++;
    19         }
    20         for (int j = 0; j < n; ++j) {
    21             M[a[j]]--;
    22             if (M[a[j]] == 0) M.erase(a[j]);
    23             for (int i = 0; i < j; ++i) {
    24                 int k = 2 * a[j] - a[i];
    25 
    26                 if (M.find(k) != M.end()) ans += M[k];
    27             }
    28         }
    29         printf("%lld
    ", ans);
    30     }
    31 }
    View Code
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  • 原文地址:https://www.cnblogs.com/JHSeng/p/11877863.html
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