正解:$manacher$
解题报告:
考虑这个操作的实质是啥$QwQ$?其实就,变成以最后一个节点为回文中心的回文子串嘛$QwQ$.显然就先跑个马拉车再说呗$QwQ$.
然后接着考虑,最容易考虑到的是操作一次后长度大于等于$|S|$的,就只需这个位置的回文半径已经顶着右边界了.
然后对于要操作多次的,仔细思考下发现,只需要回文半径顶着左边界且操作一次之后的位置可行就行
然后就做完了$QwQ$
#include<bits/stdc++.h> using namespace std; #define il inline #define gc getchar() #define ri register int #define rc register char #define rb register bool #define rp(i,x,y) for(ri i=x;i<=y;++i) #define my(i,x,y) for(ri i=x;i>=y;--i) const int N=1e6+10; int p[N<<1],len; bool f[N<<1]; char str[N<<1]; il int read() { rc ch=gc;ri x=0;rb y=1; while(ch!='-' && (ch>'9' || ch<'0'))ch=gc; if(ch=='-')ch=gc,y=0; while(ch>='0' && ch<='9')x=(x<<1)+(x<<3)+(ch^'0'),ch=gc; return y?x:-x; } il void manacher() { str[0]='*';str[len=1]='|';rc ch=gc;while(ch<'a' || ch>'z')ch=gc; while(ch<='z' && ch>='a')str[++len]=ch,str[++len]='|',ch=gc;;str[++len]='#'; for(ri i=1,mx=0,mid=0;i<=len;++i) { if(mx>=i)p[i]=min(mx-i+1,p[(mid<<1)-i]); while(str[i-p[i]]==str[i+p[i]])++p[i];;if(i+p[i]-1>mx)mx=i+p[i]-1,mid=i; } } int main() { freopen("5446.in","r",stdin);freopen("5446.out","w",stdout); ri T=read(); while(T--) { memset(f,0,sizeof(f));memset(p,0,sizeof(p));manacher(); //rp(i,1,len-1)printf("%c",str[i]);;printf(" "); //rp(i,1,len-1)if(!(i&1))printf(" %d",p[i]);;printf(" "); //rp(i,1,len-1)if(!(i&1))printf(" %d",i>>1);;printf(" "); my(i,len,2){if(i+p[i]==len || (i-p[i]+1==1 && f[i+p[i]-2]))f[i]=1;} for(ri i=2;i<len;i+=2)if(f[i])printf("%d ",i>>1);;printf(" "); } return 0; }