|
? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ?
Computer Transformation
? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ??
Time Limit: 2000/1000 MS (Java/Others) ??
?Memory Limit: 65536/32768 K (Java/Others)
http://acm.hdu.edu.cn/showproblem.php?pid=1041
Problem Description
A sequence consisting of one digit,the number 1 is initially written into a computer. At each successive time step,the computer simultaneously tranforms each digit 0 into the sequence 1 0 and each digit 1 into the sequence 0 1. So,after the first time step,the sequence 0 1 is obtained; after the second,the sequence 1 0 0 1,after the third,the sequence 0 1 1 0 1 0 0 1 and so on.?
How many pairs of consequitive zeroes will appear in the sequence after n steps??
?
Input
Every input line contains one natural number n (0 < n ≤1000).
?
Output
For each input n print the number of consecutive zeroes pairs that will appear in the sequence after n steps.
Sample Input
2
3
?
Sample Output
1
1
?
Source
Southeastern Europe 2005
? ? 似曾相识的一题,连递推数列都是一模一样的,好醉。。
? ? 其实举几组样例多举几组就可以发现规律了,每次出现1001这种时都是上一个序列中有01这种子串,所以看上一串有多少个01字串就知道下一个有多少个1001,所以不难发现递推公式a[i]=a[i-1]+2*a[i-2](i>=3);这个和那个填骨牌的题一模一样,但注意数据范围,就算2的1000次方也是很大的,所以用二维数组存储大数,开到400就够了;
#include<cstdio>
#include<cmath>
#include<cstring>
#include<iostream>
#include<algorithm>
using namespace std;
//const int INF=0x3f3f3f3f;
const int N=1000+10;
int a[N][400];
int main()
{
memset(a,sizeof(a));
int n,i,j;
a[1][0]=0,a[2][0]=1;
int c=0;
for(i=3;i<=1000;i++)
{
c=0;
for(j=0;j<=400;j++)//核心--大数;
{
a[i][j]=a[i-1][j]+2*a[i-2][j]+c;
c=a[i][j]/10;
a[i][j]%=10;
}
}
while(~scanf("%d",&n))
{
if(n==1)
printf("0n");
else
{
for(j=399;j>=0;j--)
if(a[n][j])
break;
for(i=j;i>=0;i--)
printf("%d",a[n][i]);
printf("n");
}
}
return 0;
}
? 其实静下心来想想思路到A出这道题不过10多分钟,这如果在比赛中就会有绝对的优势。
(编辑:青岛站长网)
【声明】本站内容均来自网络,其相关言论仅代表作者个人观点,不代表本站立场。若无意侵犯到您的权利,请及时与联系站长删除相关内容!
|
