Codeforces 868D Huge Strings - 位运算 - 暴力

时间:2022-04-06 08:51:07

You are given n strings s1, s2, ..., sn consisting of characters 0 and 1. m operations are performed, on each of them you concatenate two existing strings into a new one. On the i-th operation the concatenation saisbi is saved into a new string sn + i (the operations are numbered starting from 1). After each operation you need to find the maximum positive integer k such that all possible strings consisting of 0 and 1 of length k (there are 2k such strings) are substrings of the new string. If there is no such k, print 0.

Input

The first line contains single integer n (1 ≤ n ≤ 100) — the number of strings. The next n lines contain strings s1, s2, ..., sn (1 ≤ |si| ≤ 100), one per line. The total length of strings is not greater than 100.

The next line contains single integer m (1 ≤ m ≤ 100) — the number of operations. m lines follow, each of them contains two integers aiabd bi (1 ≤ ai, bi ≤ n + i - 1) — the number of strings that are concatenated to form sn + i.

Output

Print m lines, each should contain one integer — the answer to the question after the corresponding operation.

Example
input
5
01
10
101
11111
0
3
1 2
6 5
4 4
output
1
2
0
Note

On the first operation, a new string "0110" is created. For k = 1 the two possible binary strings of length k are "0" and "1", they are substrings of the new string. For k = 2 and greater there exist strings of length k that do not appear in this string (for k = 2 such string is "00"). So the answer is 1.

On the second operation the string "01100" is created. Now all strings of length k = 2 are present.

On the third operation the string "1111111111" is created. There is no zero, so the answer is 0.


  题目大意 有n个01字符串,第i个操作是生成第n + i个字符串,方式是将两个已经存在的字符串拼接到一起,然后询问最大的k使得所有长度为k的01串都在这个串中出现过。

  范围很吓人,意味着最大可能你需要判断2100个串是否存在(和同学组队开黑的时候被吓坏了。。懵逼了好久。),然而事实上。。答案都非常小。至少我没有找到一个超过10的。

  另外注意到是拼接,所以串内部的情况不变,唯一增加新出现的子串的地方是拼接处,因为已经知道答案很小,就直接暴力就好了。

  另外注意一个细节,就是用位运算弄得时候记得在开头加一个1,不然它会认为01和001是同一个串,但是101中并不存在串001。

  (个人认为这道题的难点就在于估计答案范围,猜到很小就乱搞就好了,方法很多,什么记忆化搜索+二分也可以)

  下面是答案会比较小的证明:(感谢我的学长idy002)

  考虑长度为k的01串,在两个串进行合并的时候,两个串内部包含的本质不同的串是不变的,所以不会增加。因此新增加的子串一定是跨过交界处。

  所以最多有(k - 1)个新增的本质不同的01串。再加上原本的包含为k的本质不同的01串的个数,可以列得不等式:

Codeforces 868D Huge Strings - 位运算 - 暴力

  解不等式得到k不会超过11。

Code

 /**
* Codeforces
* Problem#868D
* Accepted
* Time: 30ms
* Memory: 1700k
*/
#include <bits/stdc++.h>
using namespace std;
typedef bool boolean; #define limlen 15 typedef class String {
public:
string pre, suf;
boolean overflow;
int rt;
bitset<> mark; String():overflow(false) { }
}String; String operator + (String& a, String& b) {
String rt;
rt.overflow = a.overflow || b.overflow;
rt.mark = a.mark | b.mark;
if(!a.overflow) {
rt.pre = a.pre + b.pre;
if(rt.pre.length() > limlen)
rt.overflow = true, rt.pre.resize(limlen);
} else rt.pre = a.pre;
if(!b.overflow) {
rt.suf = a.suf + b.suf;
if(rt.suf.length() > limlen)
rt.overflow = true, rt.suf = rt.suf.substr(rt.suf.size() - limlen, rt.suf.size());
} else rt.suf = b.suf; string s = a.suf + b.pre;
for(int i = ; i < s.length(); i++)
for(int j = , t = ; j < limlen && i + j < s.length(); j++) {
t = (t << ) | (s[i + j] & );
rt.mark[t | ( << (j + ))] = ;
} int i;
for(rt.rt = ; ; rt.rt++) {
for(i = ; i < ( << rt.rt + ) && rt.mark[i | ( << rt.rt + )]; i++);
if(!rt.mark[i | ( << rt.rt + )])
break;
}
return rt;
} int n, m;
String strs[]; inline void init() {
cin >> n;
for(int i = ; i <= n; i++) {
cin >> strs[i].pre;
strs[i].suf = strs[i].pre;
strs[i].mark[] = ;
for(int j = ; j < strs[i].pre.length(); j++)
for(int k = , t = ; k < limlen && j + k < strs[i].pre.length(); k++) {
t = (t << ) | (strs[i].pre[j + k] & );
strs[i].mark[t | ( << (k + ))] = ;
}
}
} inline void solve() {
cin >> m;
for(int i = , a, b; i <= m; i++) {
cin >> a >> b;
strs[n + i] = strs[a] + strs[b];
cout << strs[n + i].rt << endl;
}
} int main() {
ios::sync_with_stdio(false), cin.tie(), cout.tie();
init();
solve();
return ;
}