leetcode Reconstruct Itinerary

最新推荐文章于 2021-10-06 14:25:58 发布

转载最新推荐文章于 2021-10-06 14:25:58 发布 · 3.1k 阅读

leetcode 专栏收录该内容

14 篇文章

订阅专栏

本文介绍了一个LeetCode上的经典算法题目“行程重构”。该问题要求根据给出的机票信息，从JFK机场出发，重建行程路径。文章提供了一种通过深度优先搜索解决此问题的方法，并给出了具体的C++代码实现。

摘要生成于 C知道，由 DeepSeek-R1 满血版支持，前往体验 >

leetcode Reconstruct Itinerary

Given a list of airline tickets represented by pairs of departure and arrival airports [from, to], reconstruct the itinerary in order. All of the tickets belong to a man who departs from JFK. Thus, the itinerary must begin with JFK.

Note:

If there are multiple valid itineraries, you should return the itinerary that has the smallest lexical order when read as a single string. For example, the itinerary ["JFK", "LGA"] has a smaller lexical order than ["JFK", "LGB"].
All airports are represented by three capital letters (IATA code).
You may assume all tickets may form at least one valid itinerary.

Example 1:
tickets = [["MUC", "LHR"], ["JFK", "MUC"], ["SFO", "SJC"], ["LHR", "SFO"]]
Return ["JFK", "MUC", "LHR", "SFO", "SJC"].

Example 2:
tickets = [["JFK","SFO"],["JFK","ATL"],["SFO","ATL"],["ATL","JFK"],["ATL","SFO"]]
Return ["JFK","ATL","JFK","SFO","ATL","SFO"].

Another possible reconstruction is ["JFK","SFO","ATL","JFK","ATL","SFO"]. But it is larger in lexical order.

原文地址：https://www.hrwhisper.me/leetcode-reconstruct-itinerary/

更多题解可以查看：https://www.hrwhisper.me/leetcode-algorithm-solution/

class Solution {
public:
	vector<string> findItinerary(vector<pair<string, string>> tickets) {
		unordered_map<string, map<string,int>> m;
		for (const auto &p : tickets) {
			m[p.first][p.second]++;
		}
		string start = "JFK";
		vector<string> ans;
		ans.push_back(start);
		dfs(start, ans, tickets.size()+ 1, m);
		return ans;
	}
	
	bool dfs(const string & cur,vector<string> &ans,const int &n,unordered_map<string, map<string, int>> &m) {
		if (ans.size() == n) return true;
		for (auto ticket = m[cur].begin(); ticket != m[cur].end(); ticket++) { //map<string, int>::iterator
			if (ticket->second != 0) {
				ticket->second--;
				ans.push_back(ticket->first);
				if (dfs(ticket->first, ans, n, m)) return true;
				ans.pop_back();
				ticket->second++;
			}
		}
		return false;
	}
};