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Problem Description
Hotaru Ichijou recently is addicated to math problems. Now she is playing with N-sequence.
Let's define N-sequence, which is composed with three parts and satisfied with the following condition:
1. the first part is the same as the thrid part,
2. the first part and the second part are symmetrical.
for example, the sequence 2,3,4,4,3,2,2,3,4 is a N-sequence, which the first part 2,3,4 is the same as the thrid part 2,3,4, the first part 2,3,4 and the second part 4,3,2 are symmetrical.
Give you n positive intergers, your task is to find the largest continuous sub-sequence, which is N-sequence.
Let's define N-sequence, which is composed with three parts and satisfied with the following condition:
1. the first part is the same as the thrid part,
2. the first part and the second part are symmetrical.
for example, the sequence 2,3,4,4,3,2,2,3,4 is a N-sequence, which the first part 2,3,4 is the same as the thrid part 2,3,4, the first part 2,3,4 and the second part 4,3,2 are symmetrical.
Give you n positive intergers, your task is to find the largest continuous sub-sequence, which is N-sequence.
Input
There are multiple test cases. The first line of input contains an integer T(T<=20), indicating the number of test cases.
For each test case:
the first line of input contains a positive integer N(1<=N<=100000), the length of a given sequence
the second line includes N non-negative integers ,each interger is no larger than 109 , descripting a sequence.
For each test case:
the first line of input contains a positive integer N(1<=N<=100000), the length of a given sequence
the second line includes N non-negative integers ,each interger is no larger than 109 , descripting a sequence.
Output
Each case contains only one line. Each line should start with “Case #i: ”,with i implying the case number, followed by a integer, the largest length of N-sequence.
We guarantee that the sum of all answers is less than 800000.
We guarantee that the sum of all answers is less than 800000.
Sample Input
1
10
2 3 4 4 3 2 2 3 4 4
Sample Output
Case #1: 9
正解:manacher
解题报告:
求形如ABA(B与A对称0)的串的最大长度。
先用manacher预处理出以每个点为中心的最长回文子串长度,枚举第二个部分即B的起点,再枚举串的长度,发现可行则更新答案(代码中非常清楚了)。可以用已经得到的ans剪枝。
辣鸡HDU评测速度飘忽不定,刷了几次才跑过。
//It is made by ljh2000 #include <iostream> #include <cstdlib> #include <cstring> #include <cstdio> #include <cmath> #include <algorithm> using namespace std; typedef long long LL; const int MAXN = 200011; int n,len,a[MAXN],p[MAXN],ans; inline int getint(){ int w=0,q=0; char c=getchar(); while((c<'0'||c>'9') && c!='-') c=getchar(); if(c=='-') q=1,c=getchar(); while (c>='0'&&c<='9') w=w*10+c-'0',c=getchar(); return q?-w:w; } inline void manacher(){ //memset(p,0,sizeof(p)); for(int i=1;i<=n;i++) p[i]=0; int maxR=0,id=0; for(int i=1;i<=n;i++) { if(i<maxR) p[i]=min(p[2*id-i],maxR-i); else p[i]=1; for(;i+p[i]<=n && a[i-p[i]]==a[i+p[i]];p[i]++) ; if(i+p[i]>maxR) { maxR=i+p[i]; id=i; } } } inline void work(){ int T=getint(); int Case=0; while(T--) { len=getint(); a[0]=-2; a[1]=-1; n=1; for(int i=1;i<=len;i++) { a[++n]=getint(); a[++n]=-1; } manacher(); ans=1; //+2的原因是对称中心只能取在区分符号上 for(int i=3;i<n/*!!!*/;i+=2) //枚举the second part for(int j=ans;j<=p[i];j+=2) //枚举一个部分的长度,利用ans剪枝 if(p[i+j-1]>=j) //如果the third part的回文长度大于等于j,即j可以作为答案(part2和part3对称) ans=j; Case++; ans/=2; ans*=3;//只算了两个part的长度 printf("Case #%d: %d ",Case,ans); } } int main() { work(); return 0; }