Given an undirected tree, return its diameter: the number of edges in a longest path in that tree.
The tree is given as an array of edges where edges[i] = [u, v] is a bidirectional edge between nodes u and v. Each node has labels in the set {0, 1, ..., edges.length}.
Example 1:
Input: edges = [[0,1],[0,2]] Output: 2 Explanation: A longest path of the tree is the path 1 - 0 - 2.
Example 2:
Input: edges = [[0,1],[1,2],[2,3],[1,4],[4,5]] Output: 4 Explanation: A longest path of the tree is the path 3 - 2 - 1 - 4 - 5.
Constraints:
0 <= edges.length < 10^4edges[i][0] != edges[i][1]0 <= edges[i][j] <= edges.length- The given edges form an undirected tree.
Companies:
Microsoft
Related Topics:
Tree, Depth-First Search, Breadth-First Search
Similar Questions:
// OJ: https://leetcode.com/problems/tree-diameter/
// Author: github.com/lzl124631x
// Time: O(N)
// Space: O(N)
class Solution {
public:
int treeDiameter(vector<vector<int>>& E) {
int N = E.size() + 1, step = 0;
vector<vector<int>> G(N);
vector<int> indegree(N);
for (auto &e : E) {
G[e[0]].push_back(e[1]);
G[e[1]].push_back(e[0]);
indegree[e[0]]++;
indegree[e[1]]++;
}
queue<int> q;
for (int i = 0; i < N; ++i) {
if (indegree[i] == 1) q.push(i);
}
while (q.size() > 1) {
int cnt = q.size();
while (cnt--) {
int u = q.front();
q.pop();
--indegree[u];
for (int v : G[u]) {
if (indegree[v] == 0) continue;
if (--indegree[v] == 1) {
q.push(v);
}
}
}
++step;
}
return step * 2 + q.size() - 1;
}
};The BFS Version:
// OJ: https://leetcode.com/problems/tree-diameter/
// Author: github.com/lzl124631x
// Time: O(N)
// Space: O(N)
class Solution {
vector<vector<int>> G;
vector<int> dist;
int N;
int furthest(int start) {
queue<int> q{{start}};
dist.assign(N + 1, INT_MAX);
dist[start] = 0;
int ans = 0, step = 0;
while (q.size()) {
int cnt = q.size();
while (cnt--) {
int u = q.front();
q.pop();
ans = u;
for (int v : G[u]) {
if (dist[v] != INT_MAX) continue;
dist[v] = step + 1;
q.push(v);
}
}
++step;
}
return ans;
}
public:
int treeDiameter(vector<vector<int>>& E) {
N = E.size() + 1;
G.assign(N, {});
for (auto &e : E) {
G[e[0]].push_back(e[1]);
G[e[1]].push_back(e[0]);
}
return dist[furthest(furthest(0))];
}
};The DFS Version:
// OJ: https://leetcode.com/problems/tree-diameter/
// Author: github.com/lzl124631x
// Time: O(N)
// Space: O(N)
class Solution {
vector<vector<int>> G;
vector<int> dist;
int N;
int dfs(int u, int level = 0) {
if (dist[u] != INT_MAX) return u;
dist[u] = level;
int ans = u;
for (int v : G[u]) {
int f = dfs(v, level + 1);
if (dist[f] > dist[ans]) ans = f;
}
return ans;
}
int furthest(int start, int level = 0) {
dist.assign(N, INT_MAX);
return dfs(start);
}
public:
int treeDiameter(vector<vector<int>>& E) {
N = E.size() + 1;
G.assign(N, {});
for (auto &e : E) {
G[e[0]].push_back(e[1]);
G[e[1]].push_back(e[0]);
}
return dist[furthest(furthest(0))];
}
};// OJ: https://leetcode.com/problems/tree-diameter/
// Author: github.com/lzl124631x
// Time: O(N)
// Space: O(N)
// Ref: https://leetcode.com/problems/tree-diameter/solution/
class Solution {
vector<vector<int>> G;
int N, ans = 0;
vector<bool> seen;
int dfs(int u) {
seen[u] = true;
int first = 0, second = 0;
for (int v : G[u]) {
if (seen[v]) continue;
int d = 1 + dfs(v);
if (d > first) {
second = first;
first = d;
} else if (d > second) second = d;
}
ans = max(ans, first + second);
return first;
}
public:
int treeDiameter(vector<vector<int>>& E) {
N = E.size() + 1;
G.assign(N, {});
seen.assign(N, false);
for (auto &e : E) {
G[e[0]].push_back(e[1]);
G[e[1]].push_back(e[0]);
}
dfs(0);
return ans;
}
};