hdu 4513 吉哥系列故事——完美队形II (回文串,manacher)
题目链接:hdu4513
题意:给出一个n的数的序列,求出一个最长的回文字串,并且满足从[l,mid]单调增(非严格单调,可以相等),[mid,r]单调减(同样是可以相等)
思路:manacher…int型的也是可以搞的。。要求单调的话。。。while扩展的时候判一下就好了。。。
1/* ***********************************************
2Author :111qqz
3Created Time :2016年04月18日 星期一 20时32分45秒
4File Name :code/hdu/4513.cpp
5************************************************ */
6
7#include <cstdio>
8#include <cstring>
9#include <iostream>
10#include <algorithm>
11#include <vector>
12#include <queue>
13#include <set>
14#include <map>
15#include <string>
16#include <cmath>
17#include <cstdlib>
18#include <ctime>
19#define fst first
20#define sec second
21#define lson l,m,rt<<1
22#define rson m+1,r,rt<<1|1
23#define ms(a,x) memset(a,x,sizeof(a))
24typedef long long LL;
25#define pi pair < int ,int >
26#define MP make_pair
27
28using namespace std;
29const double eps = 1E-8;
30const int dx4[4]={1,0,0,-1};
31const int dy4[4]={0,-1,1,0};
32const int inf = 0x3f3f3f3f;
33const int N=2E5+7;
34int n;
35int p[N];
36int a[N];
37
38int manacher( int *s)
39{
40 for ( int i = n ; i >= 0 ; i--)
41 {
42 s[i+i+2] = s[i];
43 s[i+i+1] = 300;
44 }
45 s[0] = 400;s[2*n+3] =405;
46
47 // for ( int i = 1 ; i < 2*n+1 ; i++) cout<<"s[i]:"<<s[i]<<endl;
48 int id = 0 ;
49 int maxlen = 0 ;
50
51 for ( int i = 2 ; i < 2*n +1 ; i++)
52 {
53 if (p[id]+id>i) p[i] = min(p[2*id-i],p[id]+id-i);
54 else p[i] = 1;
55
56 while (s[i-p[i]]==s[i+p[i]])
57 {
58 if (s[i-p[i]]==300)
59 {
60 p[i]++;
61 }
62 else if (s[i-p[i]]<300)
63 {
64 if (s[i-p[i]]>s[i-p[i]+2]) break;
65 p[i]++;
66 }
67
68// cout<<"aaaaaaaaaooooooo"<<endl;
69 }
70// cout<<"p[i]:"<<p[i]<<endl;
71 if (id+p[id]<i+p[i]) id = i ;
72
73 if (maxlen<p[i]) maxlen = p[i];
74 }
75
76 return maxlen-1;
77}
78int main()
79{
80 #ifndef ONLINE_JUDGE
81 freopen("code/in.txt","r",stdin);
82 #endif
83 int T;
84 scanf("%d",&T);
85 while (T--)
86 {
87 scanf("%d",&n);
88 for ( int i = 0 ; i < n ; i++) scanf("%d",&a[i]);
89
90 int ans =manacher(a);
91 printf("%d\n",ans);
92 }
93
94 #ifndef ONLINE_JUDGE
95 fclose(stdin);
96 #endif
97 return 0;
98}