hdu5442 Favorite Donut
Problem Description
Lulu has a sweet tooth. Her favorite food is ring donut. Everyday she buys a ring donut from the same bakery. A ring donut is consists of n parts.
Every part has its own sugariness that can be expressed by a letter from a to z (from
low to high), and a ring donut can be expressed by a string whose i-th character represents the sugariness of the i−th part
in clockwise order. Note that z is
the sweetest, and two parts are equally sweet if they have the same sugariness.
Once Lulu eats a part of the donut, she must continue to eat its uneaten adjacent part until all parts are eaten. Therefore, she has to eat either clockwise or counter-clockwise after her first bite, and there are 2n ways to eat the ring donut of n parts. For example, Lulu has 6 ways to eat a ring donut abc: abc,bca,cab,acb,bac,cba. Lulu likes eating the sweetest part first, so she actually prefer the way of the greatest lexicographic order. If there are two or more lexicographic maxima, then she will prefer the way whose starting part has the minimum index in clockwise order. If two ways start at the same part, then she will prefer eating the donut in clockwise order. Please compute the way to eat the donut she likes most.
Once Lulu eats a part of the donut, she must continue to eat its uneaten adjacent part until all parts are eaten. Therefore, she has to eat either clockwise or counter-clockwise after her first bite, and there are 2n ways to eat the ring donut of n parts. For example, Lulu has 6 ways to eat a ring donut abc: abc,bca,cab,acb,bac,cba. Lulu likes eating the sweetest part first, so she actually prefer the way of the greatest lexicographic order. If there are two or more lexicographic maxima, then she will prefer the way whose starting part has the minimum index in clockwise order. If two ways start at the same part, then she will prefer eating the donut in clockwise order. Please compute the way to eat the donut she likes most.
Input
First line contain one integer T,T≤20,
which means the number of test case.
For each test case, the first line contains one integer n,n≤20000, which represents how many parts the ring donut has. The next line contains a string consisted of n lowercase alphabets representing the ring donut.
For each test case, the first line contains one integer n,n≤20000, which represents how many parts the ring donut has. The next line contains a string consisted of n lowercase alphabets representing the ring donut.
Output
You should print one line for each test case, consisted of two integers, which represents the starting point (from 1 to n)
and the direction (0 for
clockwise and 1 for
counterclockwise).
Sample Input
2
4
abab
4
aaab
Sample Output
2 0
4 0
对于顺时针方向,可以直接直接用最小表示法算出最左边的位置,对于逆时针方向,要先把串倒过来,然后用二分查找出最右边的并且以该点为起点逆时针方向字典序最大的串,然后两者比较一下就行了。
#include<iostream>
#include<stdio.h>
#include<stdlib.h>
#include<string.h>
#include<math.h>
#include<vector>
#include<map>
#include<set>
#include<queue>
#include<stack>
#include<string>
#include<algorithm>
using namespace std;
#define ll long long
#define inf 0x7fffffff
char s[20060],s1[20060],s2[20060],str[20060];
int len;
int minidx(char *s, int l)
{
int i = 0, j = 1, k = 0, t;
while(i < l && j < l && k < l) {
t = s[(i + k) >= l ? i + k - l : i + k] - s[(j + k) >= l ? j + k - l : j + k];
if(!t) k++;
else{
if(t < 0) i = i + k + 1;
else j = j + k + 1;
if(i == j) ++ j;
k = 0;
}
}
return (i < j ? i : j);
}
int panduan(int x)
{
int i,j,weizhi;
for(i=0;i<len;i++){
str[i]=s[(x+i)%len];
}
weizhi=minidx(str,len);
if(weizhi>len-1-x)return 0;
return 1;
}
int main()
{
int n,m,i,j,T,fx,qidian,qidian1;
int l,r,mid;
scanf("%d",&T);
while(T--)
{
scanf("%d",&len);
scanf("%s",s);
qidian=minidx(s,len);
for(i=0;i<len;i++){
s1[i]=s[(qidian+i)%len];
}
reverse(s,s+len);
qidian1=minidx(s,len);
for(i=0;i<len;i++){
s2[i]=s[(qidian1+i)%len];
}
if(strcmp(s1,s2)>0){
printf("%d 0\n",qidian+1);continue;
}
l=qidian1;r=len-1;
while(l<=r){
mid=(l+r)/2;
if(panduan(mid)){
l=mid+1;
}
else r=mid-1;
}
qidian1=r;
for(i=0;i<len;i++){
s2[i]=s[(qidian1+i)%len];
}
if(strcmp(s1,s2)<0){
printf("%d 1\n",len-qidian1);continue;
}
else if(qidian<=len-qidian1){
printf("%d 0\n",qidian+1);
}
else printf("%d 1\n",len-qidian1);
}
return 0;
}