地址:http://www.spoj.com/problems/LCS/ 题面: LCS - Longest Common Substring no tags  A string is finite sequence of characters over a non-empty finite set Σ. In this problem, Σ is the set of lowercase letters. Substring, also called factor, is a consecut…

A string is finite sequence of characters over a non-empty finite set Σ. In this problem, Σ is the set of lowercase letters. Substring, also called factor, is a consecutive sequence of characters occurrences at least once in a string. Now your task i…

LCS - Longest Common Substring no tags  A string is finite sequence of characters over a non-empty finite set Σ. In this problem, Σ is the set of lowercase letters. Substring, also called factor, is a consecutive sequence of characters occurrences at…

[SP1811]LCS - Longest Common Substring 题面 洛谷 题解 建好后缀自动机后从初始状态沿着现在的边匹配, 如果失配则跳它的后缀链接,因为你跳后缀链接到达的\(Endpos\)集合中的串肯定是当前\(Endpos\)中的后缀,所以这么做是对的. 你感性理解一下,这样显然是最大的是吧... 具体实现看代码: 代码 #include <iostream> #include <cstdio> #include <cstdlib> #inclu…

spoj 1811 LCS - Longest Common Substring 题意: 给出两个串S, T, 求最长公共子串. 限制: |S|, |T| <= 1e5 思路: dp O(n^2) 铁定超时 后缀数组 O(nlog(n)) 在spoj上没试过,感觉也会被卡掉 后缀自己主动机 O(n) 我们考虑用SAM读入字符串B; 令当前状态为s,同一时候最大匹配长度为len; 我们读入字符x.假设s有标号为x的边,那么s=trans(s,x),len = len+1; 否则我们找到s的第一个祖…

A string is finite sequence of characters over a non-empty finite set \(\sum\). In this problem, \(\sum\) is the set of lowercase letters. Substring, also called factor, is a consecutive sequence of characters occurrences at least once in a string. N…

思路 和SPOJ 1812 LCS2 - Longest Common Substring II一个思路,改成两个串就有双倍经验了 代码 #include <cstdio> #include <algorithm> #include <cstring> using namespace std; int maxlen[502000],suflink[502000],barrel[502000],trans[502000][26],Nodecnt,ranks[502000]…

A string is finite sequence of characters over a non-empty finite set Σ. In this problem, Σ is the set of lowercase letters. Substring, also called factor, is a consecutive sequence of characters occurrences at least once in a string. Now your task i…

Longest Common Substring 给两个串A和B,求这两个串的最长公共子串. no more than 250000 分析 参照OI wiki. 给定两个字符串 S 和 T ,求出最长公共子串,公共子串定义为在 S 和 T 中 都作为子串出现过的字符串 X . 我们为字符串 S 构造后缀自动机. 我们现在处理字符串 T ,对于每一个前缀都在 S 中寻找这个前缀的最长后缀.换句话 说,对于每个字符串 T 中的位置,我们想要找到这个位置结束的 S 和 T 的最长公 共子串的长度. 为…

原文链接http://www.cnblogs.com/zhouzhendong/p/8982392.html 题目传送门 - SPOJ LCS 题意 求两个字符串的最长公共连续子串长度. 字符串长$\leq 250000$ 题解 首先对于第一个字符串建一个$SAM$. 然后拿第二个串在$SAM$上面走一遍就好了. 具体地: 将第二个串的字符一个一个地按照顺序加入. 设当前状态为$now$,要加入字符$c$,当前匹配的字符串长度为$len$(答案自然是各种情况下$len$的最大值). 如果在$SA…