题意:给你n个字符串,让你构造一个终串,使得这n个字符串都是终串的最小频繁子串,如果不存在输出NO。 最频繁子串:出现次数最多的子串
tags: 直接暴力怼??
#include<bits/stdc++.h> using namespace std; #pragma comment(linker, "/STACK:102400000,102400000") #define rep(i,a,b) for (int i=a; i<=b; ++i) #define per(i,b,a) for (int i=b; i>=a; --i) #define mes(a,b) memset(a,b,sizeof(a)) #define INF 0x3f3f3f3f #define MP make_pair #define PB push_back #define fi first #define se second typedef long long ll; const int N = 200005; int n, in[28]; char s[N]; bool vis[28], used[28]; vector< int > G[N]; void print(int x) { putchar('a'+x); vis[x] = true; if(G[x].size()==1) print(G[x][0]); } bool check(int x) { if(vis[x]) return false; vis[x]=true; if(G[x].size()==1) return check(G[x][0]); return true; } int main() { scanf("%d", &n); rep(i,1,n) { scanf("%*c%s", s+1); mes(vis, false); for(int j=1; s[j]; ++j) { int id = s[j]-'a'; if(vis[id]) return 0*printf("NO "); vis[id]=true, used[id]=true; if(j>1) { if(G[s[j-1]-'a'].size()==1 && G[s[j-1]-'a'][0]==s[j]-'a') continue; G[s[j-1]-'a'].PB(s[j]-'a'); ++in[s[j]-'a']; } if(G[s[j-1]-'a'].size()>1 || in[s[j]-'a']>1) return 0*printf("NO "); } } mes(vis, false); rep(i,0,25) if(used[i]) { mes(vis, false); if(!check(i)) return 0*printf("NO "); } mes(vis, false); rep(i,0,25) if(used[i] && !vis[i] && in[i]==0) print(i); puts(""); return 0; }