BestCoder Round #1 1001 && 1002 hdu 4857 4858

hdu 4857 逃生

第一题是拓扑排序,不是按照字典序最小输出,而是要使较小的数排在最前面。。赛后弄了好久,才比较明白,我一直以为 反向建图,i从1到n,开始深搜dfs( i ),对i点的边,由小到大继续搜一下,同时标记搜过的数,搜过之后就不再搜,搜到底之后ans[cnt++] = u;这样顺序输出就是答案,后来经过超哥指点,才明白深搜贪心是错的。只有 反向建图,用优先队列把较大的数尽量排在前面,然后反序输出才是正解。。

  1 #include<iostream>
  2 #include<cstring>
  3 #include<algorithm>
  4 #include<cstdio>
  5 #include<string>
  6 #include<queue>
  7 #include<cmath>
  8 #include<vector>
  9 
 10 using namespace std;
 11 
 12 #define mnx 104000
 13 #define ll long long
 14 #define inf 0x3f3f3f3f
 15 #define lson l, m, rt << 1
 16 #define rson m+1, r, rt << 1 | 1
 17 
 18 vector<int> vet[mnx];
 19 int cnt, ans[mnx], vis[mnx];
 20 int main(){
 21     int cas;
 22     scanf( "%d", &cas );
 23     while( cas-- ){
 24         for( int i = 0; i < mnx; i++ ){
 25             vet[i].clear();
 26         }
 27         memset( vis, 0, sizeof(vis) );
 28         cnt = 0;
 29         int n, m;
 30         scanf( "%d%d", &n, &m );
 31         for( int i = 0; i < m; i++ ){
 32             int u, v;
 33             scanf( "%d%d", &u, &v );
 34             vis[u]++;
 35             vet[v].push_back( u );
 36         }
 37         priority_queue<int> que;
 38         for( int i = 1; i <= n; i++ ){
 39             if( !vis[i] ) que.push( i );
 40         }
 41         while( !que.empty() ){
 42             int u = que.top(); que.pop();
 43             for( int i = 0; i < vet[u].size(); i++ ){
 44                 vis[vet[u][i]]--;
 45                 if( vis[vet[u][i]] == 0 ){
 46                     que.push( vet[u][i] );
 47                 }
 48             }
 49             ans[cnt++] = u;
 50         }
 51         for( int i = cnt-1; i >= 0; i-- ){
 52             if( i == 0 ){
 53                 cout<<ans[i]<<endl;
 54             }
 55             else cout<<ans[i]<<" ";
 56         }
 57     }
 58     return 0;
 59 }
 60 /*给出几组数据大家试一下 
 61 10
 62 3 1
 63 3 1
 64 answer : 3 1 2
 65 3 1
 66 1 3
 67 answer : 1 2 3
 68 4 3
 69 3 1
 70 4 1
 71 2 4
 72 answer : 2 3 4 1
 73 9 12
 74 1 2
 75 2 8
 76 2 9
 77 2 4
 78 4 3
 79 4 5
 80 4 7
 81 9 3
 82 9 6
 83 9 5
 84 8 5
 85 8 7
 86 answer : 1 2 4 9 3 8 5 6 7
 87 按照字典序最小输出 
 88 int vv[mnx], first[mnx], nxt[mnx], e, d[mnx], ans[mnx], n;
 89 void add( int u, int v ){
 90     vv[e] = v, nxt[e] = first[u], first[u] = e++;
 91 }
 92 int main(){
 93     n = 8;
 94     memset( d, 0, sizeof(d) );
 95     memset( first, -1, sizeof(first) );
 96     for( int i = 0; i < 6; i++ ){
 97         int u, v;
 98         scanf( "%d%d", &u, &v );
 99         add( u, v );
100         d[v]++;
101     }
102     int cnt = 0;
103     priority_queue< int, vector<int>, greater<int> > q;
104     for( int i = 1; i <= n; i++ ){
105         if( d[i] == 0 ) q.push( i );
106     }
107     while( !q.empty() ){
108         int u = q.top(); q.pop();
109         ans[cnt++] = u;
110         for( int i = first[u]; i != -1; i = nxt[i] ){
111             int v = vv[i];
112             d[v]--;
113             if( d[v] == 0 ) q.push( v );
114         }
115         for( int i = 0; i < n; i++ ){
116             cout<<ans[i]<<" ";
117         }
118         cout<<endl;
119     }
120     return 0;
121 }
122 
123 */
View Code

 

hdu 4858 项目管理

第二题数据比较水,暴力可以就过了。。赛后问了超哥正解,好像是图的分块:按点的度数和sqrtn分块,度数大于sqrtn的点最多有sqrtn个,把大点和大点建图,更新首先直接更新自己的值,然后更新小点的时候,一并更新小点连接的所有大点的答案,更新大点的时候,把相邻的大点也更新答案,询问的话,小点直接for循环累加val值,大点直接返回答案。。

 1 #include<iostream>
 2 #include<cstring>
 3 #include<algorithm>
 4 #include<cstdio>
 5 #include<string>
 6 #include<queue>
 7 #include<cmath>
 8 #include<vector>
 9 
10 using namespace std;
11 
12 #define mnx 104000
13 #define ll long long
14 #define inf 0x3f3f3f3f
15 #define lson l, m, rt << 1
16 #define rson m+1, r, rt << 1 | 1
17 
18 vector<int> g1[mnx], g2[mnx];
19 int d[mnx], val[mnx], ans[mnx], n, m;;
20 void init(){
21     for( int i = 1; i <= n; i++ ){
22         if( d[i] > 333 )
23             for( int j = 0; j < g1[i].size(); j++ )
24                 if( d[g1[i][j]] > 333 ) 
25                     g2[i].push_back( g1[i][j] );
26     }
27 }
28 void upd(){
29     int u, v;
30     scanf( "%d%d", &u, &v );
31     val[u] += v;
32     if( ans[u] <= 333 ){
33         for( int i = 0; i < g1[u].size(); i++ ){
34             int V = g1[u][i];
35             if( d[V] > 333 ) ans[V] += v;
36         }
37     }
38     else for( int i = 0; i < g2[u].size(); i++ ){
39         ans[ g2[u][i] ] += v;
40     }
41 }
42 void cal(){
43     int u;
44     scanf( "%d", &u );
45     if( d[u] > 333 ) printf( "%d\n", ans[u] );
46     else{
47         int sol = 0;
48         for( int i = 0; i < g1[u].size(); i++ ){
49             sol += val[ g1[u][i] ];
50         }
51         printf( "%d\n", sol );
52     }
53 }
54 int main(){
55     int cas;
56     scanf( "%d", &cas );
57     while( cas-- ){
58         for( int i = 0; i < mnx; i++ ){
59             g1[i].clear(), g2[i].clear();
60         }
61         memset( ans, 0, sizeof(ans) );
62         memset( d, 0, sizeof(d) );
63         memset( val, 0, sizeof(val) );
64         scanf( "%d%d", &n, &m );
65         for( int i = 0; i < m; i++ ){
66             int u, v;
67             scanf( "%d%d", &u, &v );
68             g1[u].push_back( v ), g1[v].push_back( u );
69             d[u]++, d[v]++;
70         }
71         init();
72         int q;
73         scanf( "%d", &q );
74         while( q-- ){
75             int cmd;
76             scanf( "%d", &cmd );
77             if( cmd == 0 ){
78                 upd();
79             }
80             else cal();
81         }
82     }
83     return 0;
84 }
View Code
posted @ 2014-07-22 02:33  L__J  阅读(261)  评论(2编辑  收藏  举报