There are N network nodes, labelled 1 to N.
Given times, a list of travel times as directed edges times[i] = (u, v, w), where u is the source node, v is the target node, and w is the time it takes for a signal to travel from source to target.
Now, we send a signal from a certain node K. How long will it take for all nodes to receive the signal? If it is impossible, return -1.
Example 1:
Input: times = [[2,1,1],[2,3,1],[3,4,1]], N = 4, K = 2 Output: 2
Note:
Nwill be in the range[1, 100].Kwill be in the range[1, N].- The length of
timeswill be in the range[1, 6000]. - All edges
times[i] = (u, v, w)will have1 <= u, v <= Nand0 <= w <= 100.
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这题写完才发现自己写的是Dijstrala的BFS版本,比用邻接表表示要快很多:
from collections import defaultdict
class Solution:
def networkDelayTime(self, times, N: int, K: int) -> int:
nxt_lst,max_dis = defaultdict(list),6000*100
for time in times:
u,v,w = time[0],time[1],time[2]
nxt_lst[u].append((v,w))
vis = defaultdict(lambda:max_dis)
layers = [[K],[]]
vis[K],c,n = 0,0,1
while (layers[c]):
for cur in layers[c]:
cur_dis = vis[cur]
for v,w in nxt_lst[cur]:
if (cur_dis+w<vis[v]):
vis[v] = cur_dis+w
layers[n].append(v)
layers[c].clear()
c,n = n,c
res = max(vis[i] for i in range(1,N+1))
return -1 if (res == max_dis) else res
评论区还有Dijstrala的DFS版本,用个优先队列来实现:
class Solution(object):
def networkDelayTime(self, times, N, K):
graph = collections.defaultdict(list)
for u, v, w in times:
graph[u].append((v, w))
pq = [(0, K)]
dist = {}
while pq:
d, node = heapq.heappop(pq)
if node in dist: continue
dist[node] = d
for nei, d2 in graph[node]:
if nei not in dist:
heapq.heappush(pq, (d+d2, nei))
return max(dist.values()) if len(dist) == N else -1
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