HDU 1250 Hat's Fibonacci 大数加法进位10000000

发布时间：2020-12-14 03:31:38 所属栏目：大数据来源：网络整理

导读：Hat's Fibonacci Time Limit: 2000/1000 MS (Java/Others)????Memory Limit: 65536/32768 K (Java/Others) Total Submission(s): 6880????Accepted Submission(s): 2270 Problem Description A Fibonacci sequence is calculated by adding the previous two

Hat's Fibonacci

Time Limit: 2000/1000 MS (Java/Others)????Memory Limit: 65536/32768 K (Java/Others)
Total Submission(s): 6880????Accepted Submission(s): 2270

Problem Description

A Fibonacci sequence is calculated by adding the previous two members the sequence,with the first two members being both 1.
F(1) = 1,F(2) = 1,F(3) = 1,F(4) = 1,F(n>4) = F(n - 1) + F(n-2) + F(n-3) + F(n-4)
Your task is to take a number as input,and print that Fibonacci number

Input

Each line will contain an integers. Process to end of file.

Output

For each case,output the result in a line.

Sample Input

Sample Output

  
  
   
   4203968145672990846840663646
Note:
No generated Fibonacci number in excess of 2005 digits will be in the test data,ie. F(20) = 66526 has 5 digits.

/*
1250 Hat's Fibonacci
大数运算 少于2005位 

以下的方法 内存超过了 
int a[7036][2050]={0},b[7036];
int main(){
    int i,j,n,k,z; 

        a[1][0]=1;
        a[2][0]=1;
        a[3][0]=1;
        a[4][0]=1;
        b[1]=1;
        b[2]=1;
        b[3]=1;
        b[4]=1;        
        k=1;//长度 
        for(i=5;i<7036;i++)
        {
            for(j=0;j<k;j++)
                a[i][j]=a[i-1][j]+a[i-2][j]+a[i-3][j]+a[i-4][j];
            z=0;//进位 
            for(j=0;j<k;j++)
            {
                a[i][j]+=z;
                z=a[i][j]/10;
                a[i][j]%=10;
            } 
            while(z)//仍有进位 
            {
                a[i][k++]=z%10;
                z/=10;
            }
            b[i]=k;
        }
    
    重新构思方法 每个里面放8位 本来是10进位 改为10^8    
*/
#include<iostream>
#include<cmath>
using namespace std;
int a[7036][251]={0},b[7036];

int main(){
    int i,z; 

        a[1][0]=1;
        a[2][0]=1;
        a[3][0]=1;
        a[4][0]=1;
        b[1]=1;
        b[2]=1;
        b[3]=1;
        b[4]=1;        
        k=1;//长度 
        for(i=5;i<7036;i++)
        {
            for(j=0;j<k;j++)
                a[i][j]=a[i-1][j]+a[i-2][j]+a[i-3][j]+a[i-4][j];
            z=0;//进位 
            for(j=0;j<k;j++)
            {
                a[i][j]+=z;
                z=a[i][j]/100000000;
                a[i][j]%=100000000;
            } 
            while(z)//仍有进位 
            {
                a[i][k++]=z%100000000;
                z/=100000000;
            }
            b[i]=k;
        }
        
        while(scanf("%d",&n)!=EOF)
        {
            printf("%d",a[n][b[n]-1]);//第一位不输出前面的0 
            for(j=b[n]-2;j>=0;j--)
                printf("%08d",a[n][j]);
            printf("n");
        } 
    return 0;
}

（编辑：李大同）

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HDU 1250 Hat&#39;s Fibonacci 大数加法 进位10000000

Hat's Fibonacci

HDU 1250 Hat's Fibonacci 大数加法进位10000000