点击打开hdu 2276思路: 矩阵快速幂分析:1 题目给定一个01字符串然后进行m次的变换
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2013-08-26 20:36:00
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HDU_2276
这个题让我联想到了最近刚学的数电的时序逻辑电路……
当前这个灯的状态取决于上一时刻左边的灯的状态以及自己的状态,枚举情况之后就会得到00->?0,01->?1,10->?1,11->?0,如果我们设f[i][j]表示i时刻第j个灯的状态,1表示亮,那么根据上面4种情况就可以得到f[i][j]=(f[i-1][j-1]+f[i-1][j])%
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2012-04-25 23:37:00
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Kiki & Little Kiki 1Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 32768/32768 K (Java/Others)Total Submission(s): 873 Accepted Submission(s): 283Problem DescriptionKiki is con
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2023-04-24 09:05:12
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kiki's game Problem Description Recently kiki has nothing to do. While she is bored, an idea appears in his mind, she just playes the checkerboard gam
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2017-02-06 22:31:00
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欢迎参加——BestCoder周年纪念赛(高质量题目+多重奖励)kiki's gameTime Limit: 5000/1000 MS (Java/Others)Memory Limit: 40000/10000 K (Java/Others)Total Submission(s): 8013Acc...
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2015-07-25 14:53:00
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Problem Description There are n lights in a circle numbered from 1 to n. The left of lighht k-1.At time of 0, some of them turn on, and oth
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2023-04-23 15:44:15
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DescriptionThere are n lights in a circle numbered from 1 to n. The left of light 1 is light n, and the left of light k (1= 0), if the left of light i...
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2015-01-18 20:15:00
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题意:m表示m秒下面一行表示n个灯(灯是排成环的,也就是说头尾相接)灯亮暗由 1 0表示对于任意一盏灯,当左边灯亮时,下一秒该灯将变换状态问:输出m秒后灯的状态 因为每盏灯都由前一秒的该灯和该灯左边那盏灯的状态决定,所以可以写出一个矩阵当有5盏灯时:1 0 0 0 11 1 0 0 0 0 1 1 0 00 0 1 1 00 0 0 1 1原来的
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2021-08-13 13:40:21
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题目大意:给出一个由0,1组成的字符串,每一秒的时候,如果该位字符左边是1的
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2023-04-07 11:00:42
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题目地址:HDU 2276这题的矩阵构造方式不太好想。看的题解才会的。原来是用fn=(fn-1+fn)%2的方法。于是就构造出了一个矩阵:1,0,0,11,1,0,00,1,1,00,0,1,1然后矩阵快速幂来求。但是取余运算是很费时间的,每次都%2会超时,于是这时就可以转化为位运算。代码如下:#include #include #include #i
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2023-04-14 00:20:42
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这题真心很棒,展现了矩阵递推的优雅。http://acm.hdu.edu.cn/showproblem.php?pid=2276分
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2022-08-09 18:07:36
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题意: 给一个有n*m 个格子的棋盘,将一个硬币放在右上角一格,每次可以往左/下/左下移动一格,碰到不能移动的局面者输。思路: 找P/N状态。先将(n,1)归为P状态,那么能一步到达此位置的有3个位置,分别是其上/右/右上的格子。根据这个规律来找,在整个棋盘的格子上标上P和N。可以发现,棋盘上是...
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2015-05-14 14:39:00
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Problem Description
There are n lights in a circle numbered from 1 to n. The left of light 1 is light n, and the left of light k (1< k<= n) is the light k-1.At time of 0, some of them
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2016-02-24 16:42:00
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Hello KikiTime Limit: 2000/1000 MS (Java/Others) Memory Limit: 32768/32768 K (Java/Others) T
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2022-03-18 15:00:36
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题解:不互质的中国剩余定理#include #include #define ll long long#define maxn 10using namespace std;ll c[maxn],m[maxn],n,am,ac,y0,z0,d;bool ans;void exgcd(ll a,ll b,ll& d,ll& x,ll& y){ if (b==0) { d=a,x=1,y=0; } else exgcd(b,a%b,d,y,x),y-=x*(a/b); }int main(){ ll i,t,cas=0; scanf("%I64d",&am
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2014-04-13 13:32:00
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http://acm.hdu.edu.cn/showproblem.php?pid=3579 注意下最后的答案等于0是不行的,因
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2022-10-20 11:13:27
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Kiki & Little Kiki 2 Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 32768/32768 K (Java/Others) Total Submission(s): 2032 Accepted Submission(s)
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2023-02-20 01:46:25
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纳什博弈....归纳与还是在于态 吧!,N态,p态。....画一张图出来NP图,就可以发现只要(奇数,奇数),这个位置的人,必定最后LOse的.....
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2022-03-18 14:59:09
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kiki's game Time Limit: 5000/1000 MS (Java/Others) Memory Limit: 40000/10000 K (Java/Others) Total Submission(s): 8482 Accepted Submission(s): 5055
Problem Description
Recently kiki has nothin
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2023-04-20 11:35:51
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KiKi's K-Number Problem Description For the k-th number, we all should be very familiar with it. Of course,to kiki it is also simple. Now Kiki meets a
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2016-11-28 15:42:00
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