观察发现,这道题目其实就相当于一个最小区间覆盖问题
这里的区间是指以每个点为中心的最长回文串
很久没写manacher,有点感动
不得不说manacher是一个非常好的算法
var s:array[..] of char;
c,l,r,f,p:array[..] of longint;
i,j,t,n,m,ans,k,right:longint;
ch:char; procedure swap(var a,b:longint);
var c:longint;
begin
c:=a;
a:=b;
b:=c;
end; function min(a,b:longint):longint;
begin
if a>b then exit(b) else exit(a);
end; function lowbit(x:longint):longint;
begin
exit(x and (-x));
end; procedure sort(ll,rr: longint);
var i,j,x,y: longint;
begin
i:=ll;
j:=rr;
x:=r[(ll+rr) shr ];
y:=l[(ll+rr) shr ];
repeat
while (r[i]<x) or (r[i]=x) and (l[i]<y) do inc(i);
while (x<r[j]) or (r[j]=x) and (y<l[j]) do dec(j);
if not(i>j) then
begin
swap(r[i],r[j]);
swap(l[i],l[j]);
inc(i);
j:=j-;
end;
until i>j;
if ll<j then sort(ll,j);
if i<rr then sort(i,rr);
end; function ask(x:longint):longint;
begin
if x= then exit();
ask:=n+;
while x<=n do //因为求的是后缀最小值,事实上只要将查询和修改的范围换一下即可
begin
ask:=min(ask,c[x]);
x:=x+lowbit(x);
end;
end; procedure add(i:longint);
var x:longint;
begin
x:=r[i];
while x> do
begin
c[x]:=min(c[x],f[i]);
x:=x-lowbit(x);
end;
end; begin
while true do
begin
read(ch);
if not((ch>='a') and (ch<='z')) then break;
s[]:='$';
s[]:='#';
m:=;
n:=;
while (ch>='a') and (ch<='z') do
begin
inc(n);
inc(m);
s[m]:=ch;
inc(m);
s[m]:='#'; //将回文串的奇偶转化为一种情况
read(ch);
end;
s[m+]:=' ';
readln;
k:=;
right:=;
t:=;
fillchar(p,sizeof(p),);
for i:= to m do
begin
if right>i then //manacher的核心
p[i]:=min(p[*k-i],right-i)
else p[i]:=;
while s[i+p[i]]=s[i-p[i]] do inc(p[i]);
if p[i]+i>right then
begin
right:=p[i]+i;
k:=i;
end;
if (s[i]='#') and (p[i]=) then continue
else begin
inc(t);
l[t]:=(i-p[i]+) div ;
r[t]:=(i+p[i]-) div ;
end;
end;
sort(,t); //解决区间覆盖问题,右端点排序
ans:=n;
for i:= to n do
c[i]:=n+;
for i:= to t do
begin
f[i]:=ask(l[i]-)+; //以前这个问题我都是用单调队列的,这里写了树状数组,更简明
if r[i]=n then ans:=min(ans,f[i]);
add(i);
end;
writeln(ans-);
end;
end.