You are given a string s, consisting of lowercase English letters, and the integer m.

One should choose some symbols from the given string so that any contiguous subsegment of length m has at least one selected symbol. Note that here we choose positions of symbols, not the symbols themselves.

Then one uses the chosen symbols to form a new string. All symbols from the chosen position should be used, but we are allowed to rearrange them in any order.

Formally, we choose a subsequence of indices 1 ≤ i1 < i2 < ... < it ≤ |s|. The selected sequence must meet the following condition: for every j such that 1 ≤ j ≤ |s| - m + 1, there must be at least one selected index that belongs to the segment [j,  j + m - 1], i.e. there should exist a k from 1 to t, such that j ≤ ik ≤ j + m - 1.

Then we take any permutation p of the selected indices and form a new string sip1sip2... sipt.

Find the lexicographically smallest string, that can be obtained using this procedure.

The first line of the input contains a single integer m (1 ≤ m ≤ 100 000).

The second line contains the string s consisting of lowercase English letters. It is guaranteed that this string is non-empty and its length doesn't exceed 100 000. It is also guaranteed that the number m doesn't exceed the length of the string s.

Print the single line containing the lexicographically smallest string, that can be obtained using the procedure described above.

In the first sample, one can choose the subsequence {3} and form a string "a".

In the second sample, one can choose the subsequence {1, 2, 4} (symbols on this positions are 'a', 'b' and 'a') and rearrange the chosen symbols to form a string "aab".

题意：至少每m个选一个字符使得选择的字符字典序最小的排列的字典序最小

和那个经典问题很想，就是多了选择的字符可以任意排列

要深入理解字典序

考虑只选a，可行就只选a，否则就要选b，此时a一定全选(字典序最小)，b尽量少的选

枚举选到哪个字符就行了

PS：貌似可以二分，然而才26个字符并不需要

#include <iostream>

#include <cstdio>

#include <algorithm>

#include <cstring>

using namespace std;

const int N=1e5+,INF=1e9+;

int n,m,a[];

char s[N];

bool sol(char c){

    int last=,cnt=,lc=;

    for(int i=;i<=n;i++){

        if(s[i]==c) lc=i;

        if(s[i]<c) last=i;

        if(i-last>=m){

            if(i-lc<m) last=lc,cnt++;

            else return false;

        }

    }

    for(int i=;i<=n;i++) a[s[i]]++;

    for(char now='a';now<c;now++){

        while(a[now]--) putchar(now);

    }

    while(cnt--) putchar(c);

    return true;

}

int main(){

    scanf("%d%s",&m,s+);

    n=strlen(s+);

    for(char c='a';c<='z';c++)

        if(sol(c)) break;

}