题意 给定一个字符串,求它的所有不重复子串的个数 思路 一个字符串的子串都必然是它的某个后缀的前缀.对于每一个sa[i]后缀,它的起始位置sa[i],那么它最多能得到该后缀长度个子串(n-sa[i]个),而其中有height[i]个是与前一个后缀相同的,所以它能产生的实际后缀个数便是n-sa[i]-height[i].遍历一次所有的后缀,将它产生的后缀数加起来便是答案. 代码 [cpp] #include <iostream> #include <cstdio> #include…

题目大意:RT   分析:练手题目....后缀数组确实很强大.....多理解height数组, 切勿使用模版,后缀数组本身就有很多细节,多犯错更有利理解这个算法.   代码如下: =====================================================================================================================   #include<stdio.h> #include<string.h&…

Spoj-DISUBSTR - Distinct Substrings New Distinct Substrings SPOJ - SUBST1 我是根据kuangbin的后缀数组专题来的 这两题题意一样求解字符串中不同字串的个数: 这个属于后缀数组最基本的应用 给定一个字符串,求不相同的子串的个数. 算法分析: 每个子串一定是某个后缀的前缀,那么原问题等价于求所有后缀之间的不相同的前缀的个数. 如果所有的后缀按照 suffix(sa[1]), suffix(sa[2]), suffix(sa…

SETI Time Limit: 4000/2000MS (Java/Others) Memory Limit: 128000/64000KB (Java/Others) Submit Statistic Next Problem Problem Description Amateur astronomers Tom and Bob try to find radio broadcasts of extraterrestrial civilizations in the air. Recentl…

Given a string, we need to find the total number of its distinct substrings. Input T- number of test cases. T<=20; Each test case consists of one string, whose length is <= 50000 Output For each test case output one number saying the number of disti…

705. New Distinct Substrings Problem code: SUBST1 Given a string, we need to find the total number of its distinct substrings. Input T- number of test cases. T<=20; Each test case consists of one string, whose length is <= 50000 Output For each test…

Given a string, we need to find the total number of its distinct substrings. Input T- number of test cases. T<=20; Each test case consists of one string, whose length is <= 1000 Output For each test case output one number saying the number of distin…

求不重复的子串个数 用所有的减去height就好了 推出来的... #include <iostream> #include <cstdio> #include <sstream> #include <cstring> #include <map> #include <cctype> #include <set> #include <vector> #include <stack> #include…

题目链接:http://www.spoj.com/problems/DISUBSTR/ 思路: 每个子串一定是某个后缀的前缀,那么原问题等价于求所有后缀之间的不相同的前缀的个数.如果所有的后缀按照suffix(sa[1]),suffix(sa[2]),suffix(sa[3]),……suffix(sa[n])的顺序计算,不难发现,对于每一次新加进来的后缀suffix(sa[k]),它将产生n-sa[k]+1个新的前缀.但是其中有height[k]个是和前面的字符串的前缀是相同的.所以suffix…

题面 Vjudge Vjudge Sol 求一个串不同子串的个数 每个子串一定是某个后缀的前缀,也就是求所有后缀不同前缀的个数 每来一个后缀\(suf(i)\)就会有,\(len-sa[i]+1\)的新的前缀,又由于有\(height\)个重复的,那么就是\(len-sa[i]+1-height\)的贡献 两个就只有数组大小的区别 # include <bits/stdc++.h> # define IL inline # define RG register # define Fill(a,…

694. Distinct Substrings Problem code: DISUBSTR   Given a string, we need to find the total number of its distinct substrings. Input T- number of test cases. T<=20;Each test case consists of one string, whose length is <= 1000 Output For each test c…

DISUBSTR - Distinct Substrings no tags  Given a string, we need to find the total number of its distinct substrings. Input T- number of test cases. T<=20; Each test case consists of one string, whose length is <= 1000 Output For each test case outpu…

题目链接:https://vjudge.net/problem/SPOJ-SUBST1 SUBST1 - New Distinct Substrings #suffix-array-8 Given a string, we need to find the total number of its distinct substrings. Input T- number of test cases. T<=20; Each test case consists of one string, who…

SUBST1 - New Distinct Substrings no tags  Given a string, we need to find the total number of its distinct substrings. Input T- number of test cases. T<=20; Each test case consists of one string, whose length is <= 50000 Output For each test case ou…

SPOJ Problem Set (classical) 694. Distinct Substrings Problem code: DISUBSTR Given a string, we need to find the total number of its distinct substrings. Input T- number of test cases. T<=20; Each test case consists of one string, whose length is <=…

Distinct Substrings Time Limit: 1000ms Memory Limit: 262144KB This problem will be judged on SPOJ. Original ID: DISUBSTR64-bit integer IO format: %lld      Java class name: Main   Given a string, we need to find the total number of its distinct subst…

http://www.spoj.com/problems/SUBST1/ SUBST1 - New Distinct Substrings #suffix-array-8 Given a string, we need to find the total number of its distinct substrings. Input T- number of test cases. T<=20; Each test case consists of one string, whose leng…

DISUBSTR - Distinct Substrings 题意:给你一个长度最多1000的字符串,求不相同的字串的个数. 思路:一个长度为n的字符串最多有(n+1)*n/2个,而height数组已经将所有的重复的都计算出来了,直接减去就行.需要注意的是在字符串的最后面加个0,不参与Rank排名,这样得到的height数组直接从1到n. char s[N]; int sa[N],Rank[N],height[N],c[N],t[N],t1[N],n,m; void build(int n) {…

DISUBSTR - Distinct Substrings 链接 题意: 询问有多少不同的子串. 思路: 后缀数组或者SAM. 首先求出后缀数组,然后从对于一个后缀,它有n-sa[i]-1个前缀,其中有height[rnk[i]]个被rnk[i]-1的后缀算了.所以再减去height[rnk[i]]即可. 代码: 换了板子. #include<cstdio> #include<algorithm> #include<cstring> #include<iostr…

[链接]h在这里写链接 [题意]     给你一个长度最多为1000的字符串     让你求出一个数x,这个x=这个字符串的不同子串个数; [题解]     后缀数组题.     把原串复制一份,加在原串后面(中间用分隔符分开),这样每个子串都能重复出现一次了,枚举Height的时候就都能枚举到了.     求出来它的后缀数组以及Height值.     然后枚举子串的长度为2..1000->x;     对于连续的一块Height>=x的,答案++.     长度为1的特判一下就好.   …

思路 求本质不同的子串个数,总共重叠的子串个数就是height数组的和 总子串个数-height数组的和即可 代码 #include <cstdio> #include <algorithm> #include <cstring> #define int long long const int MAXN = 100000; using namespace std; int height[MAXN],sa[MAXN],ranks[MAXN],barrel[MAXN],n;…

[SPOJ]Distinct Substrings/New Distinct Substrings(后缀数组) 题面 Vjudge1 Vjudge2 题解 要求的是串的不同的子串个数 两道一模一样的题目 其实很容易: 总方案-不合法方案数 对于串进行后缀排序后 不合法方案数=相邻两个串的不合法方案数的和 也就是\(height\)的和 所以\[ans=\frac{n(n+1)}{2}-\sum_{i=1}^{len}height[i]\] #include<iostream> #include…

Given a string, we need to find the total number of its distinct substrings. Input T- number of test cases. T<=20;Each test case consists of one string, whose length is <= 1000 Output For each test case output one number saying the number of distinc…

[SPOJ]Distinct Substrings(后缀自动机) 题面 Vjudge 题意:求一个串的不同子串的数量 题解 对于这个串构建后缀自动机之后 我们知道每个串出现的次数就是\(right/endpos\)集合的大小 但是实际上我们没有任何必要减去不合法的数量 我们只需要累加每个节点表示的合法子串的数量即可 这个值等于\(longest-shortest+1=longest-parent.longest\) #include<iostream> #include<cstdio&g…

D - New Distinct Substrings 题目大意:求一个字符串中不同子串的个数. 裸的后缀数组 #include<bits/stdc++.h> #define LL long long #define fi first #define se second #define mk make_pair #define pii pair<int, int> #define y1 skldjfskldjg #define y2 skldfjsklejg using names…

Given a string, we need to find the total number of its distinct substrings. Input T- number of test cases. T<=20; Each test case consists of one string, whose length is <= 50000 Output For each test case output one number saying the number of disti…

[SPOJ]Distinct Substrings 求不同子串数量 统计每个点有效的字符串数量(第一次出现的) \(\sum\limits_{now=1}^{nod}now.longest-parents.longest\) My complete code #include<bits/stdc++.h> using namespace std; typedef long long LL; const LL maxn=3000; LL nod,last,n,T; LL len[maxn],fa…

Given a string, we need to find the total number of its distinct substrings. Input T- number of test cases. T<=20;Each test case consists of one string, whose length is <= 1000 Output For each test case output one number saying the number of distinc…

New Distinct Substrings 题意 给出T个字符串,问每个字符串有多少个不同的子串. 思路 字符串所有子串,可以看做由所有后缀的前缀组成. 按照后缀排序,遍历后缀,每次新增的前缀就是除了 与上一个后缀的所有公共前缀 之外的前缀. 答案就是用总数-重复的 即\(\frac{n(n+1)}{2}-\sum_{i=1}^{n}height[i]\) 代码 // #include <bits/stdc++.h> #include <stdio.h> #include &l…

Given a string, we need to find the total number of its distinct substrings. Input T- number of test cases. T<=20; Each test case consists of one string, whose length is <= 50000 Output For each test case output one number saying the number of disti…