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Cheapest Flights Within K Stops

Problem Statement

There are n cities connected by some number of flights. You are given an array flights where flights[i] = [fromi, toi, pricei] indicates that there is a flight from city fromi to city toi with cost pricei.

You are also given three integers src, dst, and k, return the cheapest price from src to dst with at most k stops. If there is no such route, return -1.

LeetCode link

Example 1:

Input: n = 4, flights = [[0,1,100],[1,2,100],[2,0,100],[1,3,600],[2,3,200]], src = 0, dst = 3, k = 1

Output: 700
Explanation:

graph1

The graph is shown above.

The optimal path with at most 1 stop from city 0 to 3 is marked in red and has cost 100 + 600 = 700. Note that the path through cities [0,1,2,3] is cheaper but is invalid because it uses 2 stops.

Example 2:

Input: n = 3, flights = [[0,1,100],[1,2,100],[0,2,500]], src = 0, dst = 2, k = 1

Output: 200
Explanation:

graph2

The graph is shown above. The optimal path with at most 1 stop from city 0 to 2 is marked in red and has cost 100 + 100 = 200.

Example 3:

Input: n = 3, flights = [[0,1,100],[1,2,100],[0,2,500]], src = 0, dst = 2, k = 0

Output: 500
Explanation:

graph3

The graph is shown above. The optimal path with no stops from city 0 to 2 is marked in red and has cost 500.

Constraints:

  • 1 <= n <= 100
  • 0 <= flights.length <= (n \* (n - 1) / 2)
  • flights[i].length == 3
  • 0 <= fromi, toi < n
  • fromi != toi
  • 1 <= pricei <= 104
  • There will not be any multiple flights between two cities.
  • 0 <= src, k < n
  • src != dst

Code

Python Code

class Solution(object):
def findCheapestPrice(self, n, flights, src, dst, K):
remain, ret, stop = [], float('inf'), 0
weights = [sys.maxint for i in range(n)]
graph = [{} for i in range(n)]
for s,d,w in flights:
graph[s][d]=w

heapq.heappush(remain, (0, src))
weights[src] = 0
while remain and stop <= K:
tmp, remain = remain, []
while tmp:
weight, node = heapq.heappop(tmp)
for tonode, toweight in graph[node].items():
if weights[tonode] > weight + toweight:
weights[tonode] = weight + toweight
heapq.heappush(remain, (weights[tonode], tonode))
# this two lines are important
if tonode == dst and weights[tonode]<ret:
ret = weights[tonode]
stop+=1
return ret if ret < float('inf') else -1