http://codevs.cn/problem/3160/

看了好久的后缀自动机_(:з」∠)_

对A串建立SAM，用B串去匹配A串SAM，如果在当前节点走不下去，就跳到当前节点的parent(类似AC自动机的失配指针），找到当前节点代表的状态中长度最长的后缀，并看能不能继续走下去。

如果跳到了能继续走下去的节点，就更新L为这个节点的max+1，同时在这个节点往下走一步(更新L和继续走不能颠倒，因为往下走一步之后的节点的max值并不能确定)。

照搬clj课件里的模板

#include<cstdio>

#include<cstring>

#include<algorithm>

using namespace std;

struct State {

	State *par, *go[26];

	int val;

	State(int _val) : par(0), val(_val)

		{memset(go, 0, sizeof(go));}

} *root, *last;

void extend(int w) {

	State *p = last;

	State *np = new State(p->val + 1);

	while (p && p->go[w] == 0)

		p->go[w] = np, p = p->par;

	if (p == 0) np->par = root;

	else {

		State *q = p->go[w];

		if (p->val + 1 == q->val) np->par = q;

		else {

			State *nq = new State(p->val + 1);

			memcpy(nq->go, q->go, sizeof(q->go));

			nq->par = q->par;

			q->par = np->par = nq;

			while (p && p->go[w] == q)

				p->go[w] = nq, p = p->par;

		}

	}

	last = np;

}

int la, lb;

char A[100003], B[100003];

void work() {

	State *tmp = root;

	int ans = 0, x, L = 0;

	for(int i = 1; i <= lb; ++i) {

		x = B[i] - 'a';

		if (tmp->go[x]) {

			tmp = tmp->go[x];

			++L;

		} else {

			while (tmp && tmp->go[x] == 0)

				tmp = tmp->par;

			if (tmp == 0) tmp = root, L = 0;

			else L = tmp->val + 1, tmp = tmp->go[x];

		}

		ans = max(ans, L);

	}

	printf("%d\n", ans);

}

int main() {

	root = last = new State(0);

	scanf("%s%s", A + 1, B + 1);

	la = strlen(A + 1); lb = strlen(B + 1);

	for(int i = 1; i <= la; ++i)

		extend(A[i] - 'a');

	work();

	return 0;

}