http://codeforces.com/contest/1106/problem/D

Lunar New Year is approaching, and Bob decides to take a wander in a nearby park.

The park can be represented as a connected graph with nn nodes and mm bidirectional edges. Initially Bob is at the node 11 and he records 11 on his notebook. He can wander from one node to another through those bidirectional edges. Whenever he visits a node not recorded on his notebook, he records it. After he visits all nodes at least once, he stops wandering, thus finally a permutation of nodes a1,a2,…,ana1,a2,…,an is recorded.

Wandering is a boring thing, but solving problems is fascinating. Bob wants to know the lexicographically smallest sequence of nodes he can record while wandering. Bob thinks this problem is trivial, and he wants you to solve it.

A sequence xx is lexicographically smaller than a sequence yy if and only if one of the following holds:

  • xx is a prefix of yy , but x≠yx≠y (this is impossible in this problem as all considered sequences have the same length);
  • in the first position where xx and yy differ, the sequence xx has a smaller element than the corresponding element in yy .

Input

The first line contains two positive integers nn and mm (1≤n,m≤1051≤n,m≤105 ), denoting the number of nodes and edges, respectively.

The following mm lines describe the bidirectional edges in the graph. The ii -th of these lines contains two integers uiui and vivi (1≤ui,vi≤n1≤ui,vi≤n ), representing the nodes the ii -th edge connects.

Note that the graph can have multiple edges connecting the same two nodes and self-loops. It is guaranteed that the graph is connected.

Output

Output a line containing the lexicographically smallest sequence a1,a2,…,ana1,a2,…,an Bob can record.

Examples

Input

Copy

3 2
1 2
1 3

Output

Copy

1 2 3

Input

Copy

5 5
1 4
3 4
5 4
3 2
1 5

Output

Copy

1 4 3 2 5

Input

Copy

10 10
1 4
6 8
2 5
3 7
9 4
5 6
3 4
8 10
8 9
1 10

Output

Copy

1 4 3 7 9 8 6 5 2 10

Note

In the first sample, Bob's optimal wandering path could be 1→2→1→31→2→1→3 . Therefore, Bob will obtain the sequence {1,2,3}{1,2,3} , which is the lexicographically smallest one.

In the second sample, Bob's optimal wandering path could be 1→4→3→2→3→4→1→51→4→3→2→3→4→1→5 . Therefore, Bob will obtain the sequence {1,4,3,2,5}{1,4,3,2,5} , which is the lexicographically smallest one.

 

 

直接dfs是不行的,遇到1--2,1--3,2--4,3--4这样的图正确的方法是1--2--1--3--4。第一步一定走1,想象成在一颗以1为根的树上走,每次新走的一步是当前已走的所有位置下一个可以扩展到的位置中字典序最小的那一个,用堆来搞。实际上就是把bfs的queue换成priority_queue就行了。

#include<bits/stdc++.h>
using namespace std;

int n,m;
vector<int> G[100000+1000];
bool inque[100000+1000];

void solve()
{
	priority_queue<int,vector<int>,greater<int> > Q;
	Q.push(1);
	inque[1]=1;
	while(!Q.empty())
	{
		int u=Q.top();Q.pop();
		printf("%d ",u);
		for(int i=0;i<G[u].size();i++)if(!inque[G[u][i]])
		{
			inque[G[u][i]]=1;
			Q.push(G[u][i]);
		}
	}
}

int main()
{
//	freopen("input.in","r",stdin);
	int a,b;
	scanf("%d%d",&n,&m);
	while(m--)
	{
		scanf("%d%d",&a,&b);
		G[a].push_back(b);
		G[b].push_back(a);
	}
	solve();
	puts("");
	return 0;
}