結果
問題 | No.2337 Equidistant |
ユーザー | FromBooska |
提出日時 | 2023-10-11 14:38:01 |
言語 | PyPy3 (7.3.15) |
結果 |
WA
|
実行時間 | - |
コード長 | 3,396 bytes |
コンパイル時間 | 382 ms |
コンパイル使用メモリ | 82,280 KB |
実行使用メモリ | 172,228 KB |
最終ジャッジ日時 | 2024-09-13 13:19:07 |
合計ジャッジ時間 | 26,757 ms |
ジャッジサーバーID (参考情報) |
judge5 / judge4 |
(要ログイン)
テストケース
テストケース表示入力 | 結果 | 実行時間 実行使用メモリ |
---|---|---|
testcase_00 | AC | 43 ms
54,316 KB |
testcase_01 | WA | - |
testcase_02 | WA | - |
testcase_03 | WA | - |
testcase_04 | WA | - |
testcase_05 | WA | - |
testcase_06 | WA | - |
testcase_07 | WA | - |
testcase_08 | WA | - |
testcase_09 | WA | - |
testcase_10 | WA | - |
testcase_11 | WA | - |
testcase_12 | WA | - |
testcase_13 | WA | - |
testcase_14 | WA | - |
testcase_15 | WA | - |
testcase_16 | WA | - |
testcase_17 | WA | - |
testcase_18 | WA | - |
testcase_19 | WA | - |
testcase_20 | WA | - |
testcase_21 | AC | 992 ms
149,888 KB |
testcase_22 | WA | - |
testcase_23 | WA | - |
testcase_24 | AC | 1,210 ms
150,144 KB |
testcase_25 | WA | - |
testcase_26 | AC | 1,211 ms
150,144 KB |
testcase_27 | WA | - |
testcase_28 | WA | - |
ソースコード
# ルート決めてLCA # 2頂点のdepthが同じなら、LCAおよびその親、その先すべて # 2頂点のdepthが異なり、そのdepth diffが奇数なら0 # 偶数なら1でいいか ## library of LCA by class ## index start from 0 import sys sys.setrecursionlimit(10**7) from collections import deque class LCA: def __init__(self,n): self.size = n self.bitlen = n.bit_length() self.ancestor = [[0]*self.size for i in range(self.bitlen)] self.depth = [-1]*self.size self.dis = [-1]*self.size ## using [log_n][n] [n][log_n] ## [log_n][n] is tend to faster than [n][log_n] ## get parent by bfs is probably faster than dfs def make(self,root): self.depth[root] = 0 self.dis[root] = 0 q = deque([root]) while q: now = q.popleft() for nex in edges[now]: if self.depth[nex]>= 0: continue self.depth[nex] = self.depth[now]+1 self.dis[nex] = self.dis[now]+1 self.ancestor[0][nex] = now q.append(nex) for i in range(1,self.bitlen): for j in range(self.size): if self.ancestor[i-1][j] > 0: self.ancestor[i][j] = self.ancestor[i-1][self.ancestor[i-1][j]] def lca(self,x,y): dx = self.depth[x] dy = self.depth[y] if dx < dy: x,y = y,x dx,dy = dy,dx dif = dx-dy while dif: s = dif & (-dif) x = self.ancestor[s.bit_length()-1][x] dif -= s while x != y: j = 0 while self.ancestor[j][x] != self.ancestor[j][y]: j += 1 if j == 0: return self.ancestor[0][x] x = self.ancestor[j-1][x] y = self.ancestor[j-1][y] return x def par(self,x,dep): #親parent now = x for i in range(self.bitlen)[::-1]: if 1 << i <= dep: now = self.ancestor[i][now] dep -= 1<<i return now N, Q = map(int, input().split()) edges = [[] for i in range(N+1)] for i in range(N-1): a, b = map(int, input().split()) edges[a].append(b) edges[b].append(a) lca = LCA(N+1) # 頂点数 lca.make(1) # ルート # 部分木、子の数を数える # dfsだとMLE, python3だとTLE # なのでこの方のque方法にする root = 1 child = [0]*(N+1) visited = [0]*(N+1) que = [root] visited[root] = 1 topological = [] parent = [-1]*(N+1) while que: current = que.pop() topological.append(current) for nxt in edges[current]: if visited[nxt] == 0: parent[nxt] = current visited[nxt] = 1 que.append(nxt) for current in topological[::-1]: count = 1 for nxt in edges[current]: if nxt != parent[current]: count += child[nxt] child[current] = count #print(child) for q in range(Q): s, t = map(int, input().split()) s_depth = lca.depth[s] t_depth = lca.depth[t] #print('s_depth', s_depth, 't_depth', t_depth) if s_depth == t_depth: lowest_common_ancestor = lca.lca(s, t) ans = N - child[lowest_common_ancestor] + 1 elif (s_depth-t_depth)%2 == 0: ans = 1 elif (s_depth-t_depth)%2 == 1: ans = 0 print(ans)