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  • xtu read problem training 3 B

    Gears

    Time Limit: 2000ms
    Memory Limit: 65536KB
    This problem will be judged on ZJU. Original ID: 3789
    64-bit integer IO format: %lld      Java class name: Main
     

    Bob has N (1 ≤ N ≤ 2*105) gears (numbered from 1 to N). Each gear can rotate clockwise or counterclockwise. Bob thinks that assembling gears is much more exciting than just playing with a single one. Bob wants to put some gears into some groups. In each gear group, each gear has a specific rotation respectively, clockwise or counterclockwise, and as we all know, two gears can link together if and only if their rotations are different. At the beginning, each gear itself is a gear group.

    Bob has M (1 ≤ N ≤ 4*105) operations to his gears group:

      • "L u v". Link gear u and gear v. If two gears link together, the gear groups which the two gears come from will also link together, and it makes a new gear group. The two gears will have different rotations. BTW, Bob won't link two gears with the same rotations together, such as linking (a, b), (b, c), and (a, c). Because it would shutdown the rotation of his gears group, he won't do that.

      • "D u". Disconnect the gear u. Bob may feel something wrong about the gear. He will put the gear away, and the gear would become a new gear group itself and may be used again later. And the rest of gears in this group won't be separated apart.

      • "Q u v". Query the rotations between two gears u and v. It could be "Different", the "Same" or "Unknown".

    • "S u". Query the size of the gears, Bob wants to know how many gears there are in the gear group containing the gear u.

    Since there are so many gears, Bob needs your help.

    Input

    Input will consist of multiple test cases. In each case, the first line consists of two integers N and M. Following M lines, each line consists of one of the operations which are described above. Please process to the end of input.

    Output

    For each query operation, you should output a line consist of the result.

    Sample Input

    3 7
    L 1 2
    L 2 3
    Q 1 3
    Q 2 3
    D 2
    Q 1 3
    Q 2 3
    5 10
    L 1 2
    L 2 3
    L 4 5
    Q 1 2
    Q 1 3
    Q 1 4
    S 1
    D 2
    Q 2 3
    S 1
    
    

    Sample Output

    Same
    Different
    Same
    Unknown
    Different
    Same
    Unknown
    3
    Unknown
    2
    
    

    Hint

    Link (1, 2), (2, 3), (4, 5), gear 1 and gear 2 have different rotations, and gear 2 and gear 3 have different rotations, so we can know gear 1 and gear 3 have the same rotation, and we didn't link group (1, 2, 3) and group (4, 5), we don't know the situation about gear 1 and gear 4. Gear 1 is in the group (1, 2, 3), which has 3 gears. After putting gear 2 away, it may have a new rotation, and the group becomes (1, 3).

     

    Source

    Author

    FENG, Jingyi
     
    解题:并查集
     
     1 #include <iostream>
     2 #include <cstdio>
     3 #include <cstring>
     4 #include <cmath>
     5 #include <algorithm>
     6 #include <climits>
     7 #include <vector>
     8 #include <queue>
     9 #include <cstdlib>
    10 #include <string>
    11 #include <set>
    12 #define LL long long
    13 #define INF 0x3f3f3f3f
    14 using namespace std;
    15 const int maxn = 1010000;
    16 int fa[maxn],dis[maxn],sum[maxn],mp[maxn],t,n, m;
    17 void init() {
    18     for(int i = 0; i <= n+m; i++) {
    19         fa[i] = i;
    20         mp[i] = i;
    21         dis[i] = 0;
    22         sum[i] = 1;
    23     }
    24     t = n+1;
    25 }
    26 int Find(int x) {
    27     if(fa[x] != x) {
    28         int root = Find(fa[x]);
    29         dis[x] += dis[fa[x]];
    30         fa[x] = root;
    31     }
    32     return fa[x];
    33 }
    34 int main() {
    35     char st[10];
    36     while(~scanf("%d %d",&n, &m)) {
    37         init();
    38         int x, y;
    39         for(int i = 0; i < m; i++) {
    40             scanf("%s",st);
    41             if(st[0] == 'L') {
    42                 scanf("%d %d",&x, &y);
    43                 x = mp[x];
    44                 y = mp[y];
    45                 int tx = Find(x);
    46                 int ty = Find(y);
    47                 if(tx != ty) {
    48                     sum[tx] += sum[ty];
    49                     fa[ty] = tx;
    50                     dis[ty] = dis[x]+dis[y]+1;
    51                 }
    52             } else if(st[0] == 'Q') {
    53                 scanf("%d %d",&x, &y);
    54                 x = mp[x];
    55                 y = mp[y];
    56                 if(Find(x) != Find(y)) puts("Unknown");
    57                 else {
    58                     if(abs(dis[x]-dis[y])&1) puts("Different");
    59                     else puts("Same");
    60                 }
    61             } else if(st[0] == 'D') {
    62                 scanf("%d",&x);
    63                 int tx = mp[x];
    64                 tx = Find(tx);
    65                 sum[tx] -= 1;
    66                 mp[x] = ++t;
    67             } else if(st[0] == 'S') {
    68                 scanf("%d",&x);
    69                 x = mp[x];
    70                 int tx = Find(x);
    71                 printf("%d
    ",sum[tx]);
    72             }
    73         }
    74     }
    75     return 0;
    76 }
    View Code
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  • 原文地址:https://www.cnblogs.com/crackpotisback/p/3891866.html
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