$n leq 500000$的01串,1跟0配,问最长回文子串。
$0=1$,$1 eq 1$,$0 eq 0$,然后二分哈希或manacher或回文树。
1 //#include<iostream> 2 #include<cstring> 3 #include<cstdio> 4 //#include<time.h> 5 //#include<complex> 6 //#include<set> 7 //#include<queue> 8 #include<algorithm> 9 #include<stdlib.h> 10 using namespace std; 11 12 #define LL long long 13 int qread() 14 { 15 char c; int s=0,f=1; while ((c=getchar())<'0' || c>'9') (c=='-') && (f=-1); 16 do s=s*10+c-'0'; while ((c=getchar())>='0' && c<='9'); return s*f; 17 } 18 19 //Pay attention to '-' , LL and double of qread!!!! 20 21 int n; 22 #define maxn 500011 23 char s[maxn]; 24 struct PT 25 { 26 struct Node{int ch[2],pre,len,cnt;}a[maxn]; 27 int last,size; 28 PT() {last=size=1; a[1].pre=0; a[1].len=0;} 29 void insert(int c,int p) 30 { 31 // cout<<p<<' '<<last<<"!!!!! "; 32 int y=last,len; 33 while (y) 34 { 35 // cout<<y<<' '<<a[y].len<<' '<<a[y].pre<<endl; 36 len=a[y].len; 37 if (p-len-1>=1 && s[p-len-1]!=s[p]) break; 38 y=a[y].pre; 39 } 40 if (!y) {last=1; return;} 41 // cout<<y<<' '<<a[y].len<<' '<<a[y].pre<<endl; 42 if (a[y].ch[c]) {last=a[y].ch[c]; a[last].cnt++; return;} 43 int x=last=++size; 44 a[x].len=a[y].len+2; a[y].ch[c]=x; a[x].cnt=1; 45 while (y) 46 { 47 y=a[y].pre; len=a[y].len; 48 if (p-len-1>=1 && s[p-len-1]!=s[p]) 49 { 50 a[x].pre=a[y].ch[c]; 51 break; 52 } 53 } 54 if (!a[x].pre) a[x].pre=1; 55 } 56 // void test() 57 // { 58 // for (int i=1;i<=size;i++) cout<<a[i].len<<' '<<a[i].pre<<' '<<a[i].cnt<<endl; 59 // } 60 void hei() 61 { 62 for (int i=size;i;i--) a[a[i].pre].cnt+=a[i].cnt; 63 } 64 }pt; 65 66 int main() 67 { 68 scanf("%d",&n); scanf("%s",s+1); 69 for (int i=1;i<=n;i++) pt.insert(s[i]-'0',i); 70 // pt.test(); 71 pt.hei(); 72 int ans=0; for (int i=2;i<=pt.size;i++) ans+=pt.a[i].cnt; 73 printf("%d ",ans); 74 return 0; 75 }