• 【刷题】SPOJ 1811 LCS


    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 is simple, for two given strings, find the length of the longest common substring of them.

    Here common substring means a substring of two or more strings.

    Input

    The input contains exactly two lines, each line consists of no more than 250000 lowercase letters, representing a string.

    Output

    The length of the longest common substring. If such string doesn't exist, print "0" instead.

    Example

    Input:

    alsdfkjfjkdsal

    fdjskalajfkdsla

    Output:

    3

    Solution

    做字符串题根SPOJ打交道很多啊

    SAM模板,并get新技能,一个串的SAM与另一个串的匹配

    将一个串的SAM建好之后,枚举另一个串的字符,如果可以直接匹配就直接匹配,如果直接匹配不了,那么将SAM的指针不停地往上跳,使得代表字符串的长度越来越小,以便能够匹配

    #include<bits/stdc++.h>
    #define ui unsigned int
    #define ll long long
    #define db double
    #define ld long double
    #define ull unsigned long long
    const int MAXN=250000+10;
    int n1,n2,tot=1,las=1,ch[MAXN<<1][30],len[MAXN<<1],fa[MAXN<<1],size[MAXN<<1],ans;
    char s1[MAXN],s2[MAXN];
    template<typename T> inline void read(T &x)
    {
    	T data=0,w=1;
    	char ch=0;
    	while(ch!='-'&&(ch<'0'||ch>'9'))ch=getchar();
    	if(ch=='-')w=-1,ch=getchar();
    	while(ch>='0'&&ch<='9')data=((T)data<<3)+((T)data<<1)+(ch^'0'),ch=getchar();
    	x=data*w;
    }
    template<typename T> inline void write(T x,char ch='')
    {
    	if(x<0)putchar('-'),x=-x;
    	if(x>9)write(x/10);
    	putchar(x%10+'0');
    	if(ch!='')putchar(ch);
    }
    template<typename T> inline void chkmin(T &x,T y){x=(y<x?y:x);}
    template<typename T> inline void chkmax(T &x,T y){x=(y>x?y:x);}
    template<typename T> inline T min(T x,T y){return x<y?x:y;}
    template<typename T> inline T max(T x,T y){return x>y?x:y;}
    inline void extend(int c)
    {
    	int p=las,np=++tot;
    	las=np;
    	len[np]=len[p]+1;
    	while(p&&!ch[p][c])ch[p][c]=np,p=fa[p];
    	if(!p)fa[np]=1;
    	else
    	{
    		int q=ch[p][c];
    		if(len[q]==len[p]+1)fa[np]=q;
    		else
    		{
    			int nq=++tot;
    			fa[nq]=fa[q];
    			memcpy(ch[nq],ch[q],sizeof(ch[nq]));
    			len[nq]=len[p]+1;
    			fa[np]=fa[q]=nq;
    			while(p&&ch[p][c]==q)ch[p][c]=nq,p=fa[p];
    		}
    	}
    	size[np]=1;
    }
    int main()
    {
    	scanf("%s%s",s1+1,s2+1);
    	n1=strlen(s1+1),n2=strlen(s2+1);
    	for(register int i=1;i<=n1;++i)extend(s1[i]-'a'+1);
    	for(register int i=1,j=1,res=0,c;i<=n2;++i)
    	{
    		c=s2[i]-'a'+1;
    		if(ch[j][c])res++,j=ch[j][c];
    		else
    		{
    			while(j&&!ch[j][c])j=fa[j];
    			if(!j)res=0,j=1;
    			else res=len[j]+1,j=ch[j][c];
    		}
    		chkmax(ans,res);
    	}
    	write(ans,'
    ');
    	return 0;
    }
    
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  • 原文地址:https://www.cnblogs.com/hongyj/p/9101058.html
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