• Match & Catch CodeForces


    题意:

    给出两个字符串a,b,求一个字符串,这个字符串是a和b的子串,

    且只在a,b中出现一次,要求输出这个字符串的最小长度。

    题解:

    将a串放入后缀自动机中,然后记录一下每个节点对应的子串出现的次数

    然后把b串取自动机中匹配

    然后判断一下

      1 #include <set>
      2 #include <map>
      3 #include <stack>
      4 #include <queue>
      5 #include <cmath>
      6 #include <ctime>
      7 #include <cstdio>
      8 #include <string>
      9 #include <vector>
     10 #include <cstring>
     11 #include <iostream>
     12 #include <algorithm>
     13 #include <unordered_map>
     14 
     15 #define  pi    acos(-1.0)
     16 #define  eps   1e-9
     17 #define  fi    first
     18 #define  se    second
     19 #define  rtl   rt<<1
     20 #define  rtr   rt<<1|1
     21 #define  bug                printf("******
    ")
     22 #define  mem(a, b)          memset(a,b,sizeof(a))
     23 #define  name2str(x)        #x
     24 #define  fuck(x)            cout<<#x" = "<<x<<endl
     25 #define  sfi(a)             scanf("%d", &a)
     26 #define  sffi(a, b)         scanf("%d %d", &a, &b)
     27 #define  sfffi(a, b, c)     scanf("%d %d %d", &a, &b, &c)
     28 #define  sffffi(a, b, c, d) scanf("%d %d %d %d", &a, &b, &c, &d)
     29 #define  sfL(a)             scanf("%lld", &a)
     30 #define  sffL(a, b)         scanf("%lld %lld", &a, &b)
     31 #define  sfffL(a, b, c)     scanf("%lld %lld %lld", &a, &b, &c)
     32 #define  sffffL(a, b, c, d) scanf("%lld %lld %lld %lld", &a, &b, &c, &d)
     33 #define  sfs(a)             scanf("%s", a)
     34 #define  sffs(a, b)         scanf("%s %s", a, b)
     35 #define  sfffs(a, b, c)     scanf("%s %s %s", a, b, c)
     36 #define  sffffs(a, b, c, d) scanf("%s %s %s %s", a, b,c, d)
     37 #define  FIN                freopen("../in.txt","r",stdin)
     38 #define  gcd(a, b)          __gcd(a,b)
     39 #define  lowbit(x)          x&-x
     40 #define  IO                 iOS::sync_with_stdio(false)
     41 
     42 
     43 using namespace std;
     44 typedef long long LL;
     45 typedef unsigned long long ULL;
     46 const ULL seed = 13331;
     47 const LL INFLL = 0x3f3f3f3f3f3f3f3fLL;
     48 const int maxm = 8e6 + 10;
     49 const int INF = 0x3f3f3f3f;
     50 const int mod = 1e9 + 7;
     51 const int maxn = 250007;
     52 char s[maxn];
     53 int Q;
     54 
     55 struct Suffix_Automaton {
     56     int last, tot, nxt[maxn << 1][26], fail[maxn << 1];//last是未加入此字符前最长的前缀(整个串)所属的节点的编号
     57     int len[maxn << 1];// 最长子串的长度 (该节点子串数量 = len[x] - len[fa[x]])
     58     int sa[maxn << 1], c[maxn << 1];
     59     int sz[maxn << 1];// 被后缀链接的个数,方便求节点字符串的个数
     60     LL num[maxn << 1];// 该状态子串的数量
     61     LL maxx[maxn << 1];// 长度为x的子串出现次数最多的子串的数目
     62     LL sum[maxn << 1];// 该节点后面所形成的自字符串的总数
     63     LL subnum, sublen;// subnum表示不同字符串数目,sublen表示不同字符串总长度
     64     int X[maxn << 1], Y[maxn << 1]; // Y表示排名为x的节点,X表示该长度前面还有多少个
     65     int minn[maxn << 1], mx[maxn << 1];//minn[i]表示多个串在后缀自动机i节点最长公共子串,mx[i]表示单个串的最长公共子串
     66     void init() {
     67         tot = last = 1;
     68         fail[1] = len[1] = 0;
     69         for (int i = 0; i < 26; i++) nxt[1][i] = 0;
     70     }
     71 
     72     void extend(int c) {
     73         int u = ++tot, v = last;
     74         len[u] = len[v] + 1;
     75         num[u] = 1;
     76         for (; v && !nxt[v][c]; v = fail[v]) nxt[v][c] = u;
     77         if (!v) fail[u] = 1, sz[1]++;
     78         else if (len[nxt[v][c]] == len[v] + 1) fail[u] = nxt[v][c], sz[nxt[v][c]]++;
     79         else {
     80             int now = ++tot, cur = nxt[v][c];
     81             len[now] = len[v] + 1;
     82             memcpy(nxt[now], nxt[cur], sizeof(nxt[cur]));
     83             fail[now] = fail[cur];
     84             fail[cur] = fail[u] = now;
     85             for (; v && nxt[v][c] == cur; v = fail[v]) nxt[v][c] = now;
     86             sz[now] += 2;
     87         }
     88         last = u;
     89         //return len[last] - len[fail[last]];//多添加一个子串所产生不同子串的个数
     90     }
     91 
     92     void get_num() {// 每个节点子串出现的次数
     93         for (int i = 1; i <= tot; i++) X[len[i]]++;
     94         for (int i = 1; i <= tot; i++) X[i] += X[i - 1];
     95         for (int i = 1; i <= tot; i++) Y[X[len[i]]--] = i;
     96         for (int i = tot; i >= 1; i--) num[fail[Y[i]]] += num[Y[i]];
     97     }
     98 
     99     void get_maxx(int n) {// 长度为x的子串出现次数最多的子串的数目
    100         get_num();
    101         for (int i = 1; i <= tot; i++) maxx[len[i]] = max(maxx[len[i]], num[i]);
    102     }
    103 
    104     void get_sum() {// 该节点后面所形成的自字符串的总数
    105         get_num();
    106         for (int i = tot; i >= 1; i--) {
    107             sum[Y[i]] = 1;
    108             for (int j = 0; j <= 25; j++)
    109                 sum[Y[i]] += sum[nxt[Y[i]][j]];
    110         }
    111     }
    112 
    113     void get_subnum() {//本质不同的子串的个数
    114         subnum = 0;
    115         for (int i = 1; i <= tot; i++) subnum += len[i] - len[fail[i]];
    116     }
    117 
    118     void get_sublen() {//本质不同的子串的总长度
    119         sublen = 0;
    120         for (int i = 1; i <= tot; i++) sublen += 1LL * (len[i] + len[fail[i]] + 1) * (len[i] - len[fail[i]]) / 2;
    121     }
    122 
    123     void get_sa() { //获取sa数组
    124         for (int i = 1; i <= tot; i++) c[len[i]]++;
    125         for (int i = 1; i <= tot; i++) c[i] += c[i - 1];
    126         for (int i = tot; i >= 1; i--) sa[c[len[i]]--] = i;
    127     }
    128 
    129     int cntnum[maxn << 1];
    130 
    131     void match() {//多个串的最长公共子串
    132         mem(cntnum, 0);
    133         int n = strlen(s), p = 1, ans = INF;
    134         for (int i = 0; i < n; i++) {
    135             int c = s[i] - 'a';
    136             if (nxt[p][c]) p = nxt[p][c];
    137             else {
    138                 for (; p && !nxt[p][c]; p = fail[p]);
    139                 if (!p) p = 1;
    140                 else p = nxt[p][c];
    141             }
    142             cntnum[p]++;
    143         }
    144         for (int i = tot; i; i--) cntnum[fail[Y[i]]] += cntnum[Y[i]];
    145         for (int i = 2; i <= tot; i++)
    146             if (num[i] == 1 && cntnum[i] == 1) ans = min(ans, len[fail[i]] + 1);
    147         if (ans == INF) printf("-1
    ");
    148         else printf("%d
    ", ans);
    149     }
    150 
    151     void get_kth(int k) {//求出字典序第K的子串
    152         int pos = 1, cnt;
    153         string s = "";
    154         while (k) {
    155             for (int i = 0; i <= 25; i++) {
    156                 if (nxt[pos][i] && k) {
    157                     cnt = nxt[pos][i];
    158                     if (sum[cnt] < k) k -= sum[cnt];
    159                     else {
    160                         k--;
    161                         pos = cnt;
    162                         s += (char) (i + 'a');
    163                         break;
    164                     }
    165                 }
    166             }
    167         }
    168         cout << s << endl;
    169     }
    170 
    171 } sam;
    172 
    173 int main() {
    174 #ifndef ONLINE_JUDGE
    175     FIN;
    176 #endif
    177     sam.init();
    178     sfs(s + 1);
    179     int n = strlen(s + 1);
    180     for (int i = 1; i <= n; i++) sam.extend((s[i] - 'a'));
    181     sfs(s);
    182     sam.get_num();
    183     sam.match();
    184 #ifndef ONLINE_JUDGE
    185     cout << "Totle Time : " << (double) clock() / CLOCKS_PER_SEC << "s" << endl;
    186 #endif
    187     return 0;
    188 }
    View Code
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  • 原文地址:https://www.cnblogs.com/qldabiaoge/p/11566941.html
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