Pandigital Fibonacci ends The Fibonacci sequence is defined by the recurrence relation: F[n] = F[n-1] + F[n-2], where F[1] = 1 and F[2] = 1. It turns out that F541, which contains 113 digits, is the first Fibonacci number for which the last nine digi…

HDU 3117 Fibonacci Numbers(斐波那契前后四位,打表+取对+矩阵高速幂) ACM 题目地址:HDU 3117 Fibonacci Numbers 题意:  求第n个斐波那契数的前四位和后四位.  不足8位直接输出. 分析:  前四位有另外一题HDU 1568,用取对的方法来做的.  后四位能够用矩阵高速幂,MOD设成10000即可了. 代码: /* * Author: illuz <iilluzen[at]gmail.com> * Blog: http://blog.c…

The Fibonacci numbers, commonly denoted F(n) form a sequence, called the Fibonacci sequence, such that each number is the sum of the two preceding ones, starting from 0and 1. That is, F(0) = 0,   F(1) = 1 F(N) = F(N - 1) + F(N - 2), for N > 1. Given …

本题来自 Project Euler 第2题:https://projecteuler.net/problem=2 # Each new term in the Fibonacci sequence is generated # by adding the previous two terms. # By starting with 1 and 2, the first 10 terms will be: # 1, 2, 3, 5, 8, 13, 21, 34, 55, 89, ... # By…

Fibonacci Time Limit: 1000/1000 MS (Java/Others)    Memory Limit: 32768/32768 K (Java/Others) Problem Description 2007年到来了.经过2006年一年的修炼,数学神童zouyu终于把0到100000000的Fibonacci数列 (f[0]=0,f[1]=1;f[i] = f[i-1]+f[i-2](i>=2))的值全部给背了下来. 接下来,CodeStar决定要考考他,于是每问他一…

评测地址:http://acm.hust.edu.cn/vjudge/problem/41990 The i'th Fibonacci number f (i) is recursively de ned in the following way: f () = and f () = f (i + ) = f (i + ) + f (i) Your task is to compute some values of this sequence. Input Input begins with a…

大致题意:输入两个非负整数a,b和正整数n.计算f(a^b)%n.其中f[0]=f[1]=1, f[i+2]=f[i+1]+f[i]. 即计算大斐波那契数再取模. 一开始看到大斐波那契数,就想到了矩阵快速幂,输出等了几秒钟才输出完,肯定会超时.因为所有计算都是要取模的,设F[i]=f[i] mod n.F[0]=F[1]=1.只要出现F[i]=F[i+1]=1,那么整个序列就会重复.例如n=3,则序列为1,1,2,0,2,2,1,0,1,1……第九项和第十项都等于1,所以之后的序列都会重复. 至…

［抄题］: Given a string S of digits, such as S = "123456579", we can split it into a Fibonacci-like sequence [123, 456, 579]. Formally, a Fibonacci-like sequence is a list F of non-negative integers such that: 0 <= F[i] <= 2^31 - 1, (that is,…

题意:输入两个非负整数a.b和正整数n(0<=a,b<264,1<=n<=1000),你的任务是计算f(ab)除以n的余数,f(0) = 0, f(1) = 1,且对于所有非负整数i,f(i + 2) = f(i + 1) + f(i). 分析: 1.对于某个n取余的斐波那契序列总是有周期的,求出每个取值的n下的斐波那契序列和周期. 2.ab对T[n]取余,即可确定对n取余的斐波那契序列中f(ab)的位置. #pragma comment(linker, "/STACK:…

根据CC150的解决方式和Introduction to Java programming总结: 使用了两种方式,递归和迭代 CC150提供的代码比较简洁,不过某些细节需要分析. 现在直接运行代码,输入n(其中用number代替,以免和方法中的n混淆)的值,可以得出斐波那契数. 代码如下: /* CC150 8.1 Write a method to generate the nth Fibonacci number Author : Mengyang Rao note : Use two me…