結果
| 問題 |
No.1928 Make a Binary Tree
|
| コンテスト | |
| ユーザー |
 lam6er
|
| 提出日時 | 2025-04-15 22:28:51 |
| 言語 | PyPy3 (7.3.15) |
| 結果 |
WA
|
| 実行時間 | - |
| コード長 | 1,568 bytes |
| コンパイル時間 | 1,142 ms |
| コンパイル使用メモリ | 81,820 KB |
| 実行使用メモリ | 126,408 KB |
| 最終ジャッジ日時 | 2025-04-15 22:31:24 |
| 合計ジャッジ時間 | 10,457 ms |
|
ジャッジサーバーID (参考情報) |
judge4 / judge3 |
(要ログイン)
| ファイルパターン | 結果 |
|---|---|
| sample | AC * 3 |
| other | AC * 5 WA * 28 TLE * 1 -- * 23 |
ソースコード
import sys
from collections import deque
def main():
n = int(sys.stdin.readline())
adj = [[] for _ in range(n + 1)]
for _ in range(n - 1):
x, y = map(int, sys.stdin.readline().split())
adj[x].append(y)
adj[y].append(x)
parent = [0] * (n + 1)
children = [[] for _ in range(n + 1)]
visited = [False] * (n + 1)
q = deque([1])
visited[1] = True
parent[1] = -1 # Mark root's parent as -1 to avoid None
bfs_order = []
while q:
u = q.popleft()
for v in adj[u]:
if not visited[v] and v != parent[u]:
visited[v] = True
parent[v] = u
children[u].append(v)
q.append(v)
bfs_order.append(v)
child_count = [0] * (n + 1)
alive = [True] * (n + 1)
total = 1 # root is always present
for node in bfs_order:
if not alive[node]:
continue
current = parent[node]
while current != -1 and child_count[current] >= 2:
current = parent[current]
if current != -1:
child_count[current] += 1
total += 1
else:
# Mark the subtree rooted at 'node' as dead
dq = deque([node])
while dq:
u = dq.popleft()
if not alive[u]:
continue
alive[u] = False
for v in children[u]:
dq.append(v)
print(total)
if __name__ == "__main__":
main()