• [九省联考2018]秘密袭击coat 伪·题解


    爆算碾标程实例

    不太会多项式……不太会线段树合并

    那就只能O(n^2*w^2)爆算+乱搞优化(见代码)

    (这里网上都说是O(n*w^2),我不太明白,也许是我算的不对,望有识之士教我)

    愣是卡进luogu最优解第3页

    自以为要卡常数,结果卡了好久以后发现是死循环……

    #include<iostream>
    #include<cstdio>
    #include<cstring>
    #include<algorithm>
    using namespace std;
    
    const int maxn=2005;
    const int modd=64123;
    
    unsigned short int n, k, w;
    unsigned short int dp[maxn][maxn], p[maxn];
    unsigned short int can[maxn], f[maxn];
    
    struct gra {
        unsigned short int tm, st[maxn*2], nx[maxn*2], to[maxn*2], tt[maxn*2];
        inline void adde(unsigned short int a, unsigned short int b) {
            tm++;
            nx[tm]=st[a];
            st[a]=tm;
            to[tm]=b;
        }
        void dfs(unsigned short int x, unsigned short int fa) {
            //cout<<x<<' '<<fa<<endl;
            if(fa == f[x]) return;
            else f[x]=fa;
            unsigned short int i, y, j, q, ttt;
            memset(dp[x], 0, sizeof(dp[x]));
            dp[x][p[x]]=1; can[x]=p[x];
            for(i=st[x]; i != 0; i=nx[i]) {
                y=to[i];
                if(y == fa) continue;
                dfs(y, x);
                ttt=can[x];
                for(j=0; j <= can[y]; ++j) {
                    for(q=0; q <= ttt; ++q) {
                        if(q+j > k) break;
                        tt[q+j]=((int)tt[q+j]+(int)dp[x][q]*(int)dp[y][j]%modd)%modd;
                        can[x]<q+j?can[x]=q+j:can[x];
                    }
                }
                for(j=0; j <= can[x]; ++j) {
                    dp[x][j]=((int)dp[x][j]+(int)tt[j])%modd;
                    tt[j]=0;
                }
            }
            /*
            cout<<x<<endl;
            for(i=0; i <= k; i++) {
                cout<<dp[x][i]<<' ';
            }cout<<endl;
            */
            return;
        }
    } G;
    
    struct dd {
        unsigned short int num;
        unsigned short int pl;
    }d[maxn];
    bool cmp(dd a, dd b) {
        return a.num > b.num;
    }
    
    int main() {
        //freopen("data5.in", "r", stdin);
        unsigned short int i, ta, j, tb, ans;
        scanf("%hu%hu%hu", &n, &k, &w);
        for(i=1; i <= n; ++i) {
            scanf("%hu", &d[i].num);
            d[i].pl=i;
        }
        sort(d+1, d+1+n, cmp);
        for(i=1; i <= n-1; ++i) {
            scanf("%hu%hu", &ta, &tb);
            G.adde(ta, tb);
            G.adde(tb, ta);
        }
        ans=0;
        for(i=1; i <= n; ++i) {
            p[d[i].pl]=1;
            //cout<<i<<endl;
            if(i < k) continue;
            G.dfs(d[i].pl, d[i].pl);
            ans=((int)ans+(int)d[i].num*(int)dp[d[i].pl][k]%modd)%modd;
            //cout<<i<<endl;
        }
        printf("%hu
    ", ans);
        return 0;
    }
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  • 原文地址:https://www.cnblogs.com/crraphael/p/11488402.html
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