• hdu 1250 Hat's Fibonacci


    Hat's Fibonacci

    Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 65536/32768 K (Java/Others)
    Total Submission(s): 9677 Accepted Submission(s): 3210


    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
    100
     
    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.
     
    Author
    戴帽子的
     
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    这题用到大数相加,用数组的元素表示大数的各个数位的数字,(例如123,可以a[0]=3,a[1]=2,a[2]=1;)有个技巧是在网上学到的,每个数组元素存储八位数可以提高效率。先预处理,再输入数据。
     
    题意:按题目的公式求数,不过数特别大,要使用数组装。(大数问题)
     
    附上代码:
     
     1 #include <iostream>
     2 #include <cstdio>
     3 using namespace std;
     4 int a[10000][260]= {0};   //每个元素可以存储8位数字,所以2005位可以用260个数组元素存储。  
     5 void init()
     6 {
     7     int i,j;
     8     a[1][0]=1;     //赋初值  
     9     a[2][0]=1;
    10     a[3][0]=1;
    11     a[4][0]=1;
    12     for(i=5; i<10000; i++)
    13     {
    14         for(j=0; j<260; j++)
    15             a[i][j]=a[i-1][j]+a[i-2][j]+a[i-3][j]+a[i-4][j];
    16         for(j=0; j<260; j++)     //每八位考虑进位  
    17             if(a[i][j]>100000000)       
    18             {
    19                 a[i][j+1]+=a[i][j]/100000000;
    20                 a[i][j]=a[i][j]%100000000;
    21             }
    22     }
    23 }
    24 int main()
    25 {
    26     int n,i,j;
    27     init();
    28     while(~scanf("%d",&n))
    29     {
    30         for(i=259; i>=0; i--)
    31             if(a[n][i]!=0)      //不输出高位的0
    32                 break;
    33         printf("%d",a[n][i]);
    34         for(j=i-1; j>=0; j--)
    35             printf("%08d",a[n][j]);    //每个元素存储了八位数字,所以控制输出位数为8,左边补0
    36         printf("
    ");
    37     }
    38     return 0;
    39 }
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  • 原文地址:https://www.cnblogs.com/pshw/p/5148787.html
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