题目
https://icpcarchive.ecs.baylor.edu/index.php?option=com_onlinejudge&Itemid=8&page=show_problem&problem=966
题意
n个大写字母串(n <= 24),问最多取多少个,使得所有字符出现的次数都是偶数。
思路
如刘书
1. 由于最多出现26个字母,而且字母在字符串中出现的次数本身不重要,只要记录奇偶性,所以可以将这些字符串转化为01串便于存储。
2. 问题转化为最多取多少个01串,使得其异或结果为0
3. 这样就可以用2^24来枚举,但这样状态还是太多了
4. 问题可以转化为前n/2个字符串子集组成的异或结果与后n/2个字符串子集组成的异或结果相同的情况下,最多取多少个字符串。
感想
1. 一开始忘了字符串本身可能存在重复的字符串
2. 之后忘了程序会修改pos
代码
#include <algorithm>
#include <cassert>
#include <cmath>
#include <cstdio>
#include <cstring>
#include <iostream>
#include <map>
#include <queue>
#include <set>
#include <string>
#include <tuple>
#define LOCAL_DEBUG
using namespace std;
const int MAXN = ;
int n;
int a[MAXN];
int staStack[ << MAXN];
int posStack[ << MAXN]; int bone2sta(char * str) {
int sta = ;
for (char * p = str; *p != ; p++) {
sta ^= << (*p - 'A');
}
return sta;
} int getDigitCnt(int x) {
int ans = ;
while (x > ) {
x -= (x & -x);
ans++;
}
return ans;
} int main() {
#ifdef LOCAL_DEBUG
freopen("C:\\Users\\Iris\\source\\repos\\ACM\\ACM\\input.txt", "r", stdin);
freopen("C:\\Users\\Iris\\source\\repos\\ACM\\ACM\\output.txt", "w", stdout);
#endif // LOCAL_DEBUG
//int T;
// scanf("%d", &T); for (int ti = ;scanf("%d", &n) == && n; ti++) {
for (int i = ; i < n; i++) {
char buff[];
scanf("%s", buff);
a[i] = bone2sta(buff);
}
int half_n = n / ;
map<int, int> sta2pos;
sta2pos[] = ;
int staCnt = ;
staStack[staCnt++] = ;
for (int i = ; i < half_n; i++) {
for (int j = staCnt - ; j >= ; j--) {
posStack[j] = sta2pos[staStack[j]];
}
for (int j = staCnt - ; j >= ; j--) {
int sta = staStack[j];
int pos = posStack[j];
int newSta = sta ^ a[i];
int newPos = pos | ( << i);
if (sta2pos.count(newSta) == ) {
sta2pos[newSta] = newPos;
staStack[staCnt++] = newSta; }
else {
int oldDigitCnt = getDigitCnt(sta2pos[newSta]);
int newDigitCnt = getDigitCnt(pos) + ;
if(newDigitCnt > oldDigitCnt)sta2pos[newSta] = newPos;
}
}
}
map<int, int> othersta2pos;
othersta2pos[] = ;
staCnt = ;
staStack[staCnt++] = ;
for (int i = half_n; i < n; i++) {
for (int j = staCnt - ; j >= ; j--) {
posStack[j] = othersta2pos[staStack[j]];
}
for (int j = staCnt - ; j >= ; j--) {
int sta = staStack[j];
int pos = posStack[j];
int newSta = sta ^ a[i];
int newPos = pos | ( << i);
if (othersta2pos.count(newSta) == ) {
othersta2pos[newSta] = newPos;
staStack[staCnt++] = newSta; }
else {
int oldDigitCnt = getDigitCnt(othersta2pos[newSta]);
int newDigitCnt = getDigitCnt(pos) + ;
if (newDigitCnt > oldDigitCnt)othersta2pos[newSta] = newPos;
}
}
}
int ans = , ansPos = ;
for (int j = ; j < staCnt; j++) {
int sta = staStack[j];
if (sta2pos.count(sta) != ) {
int digitCnt = getDigitCnt(sta2pos[sta]) + getDigitCnt(othersta2pos[sta]);
if (digitCnt > ans) {
ans = digitCnt;
ansPos = sta2pos[sta] | othersta2pos[sta];
}
}
}
printf("%d\n", ans);
for (int i = ; i < n; i++) {
if (ansPos & ( << i)) {
printf("%d ", i + );
}
}
puts("");
} return ;
}