算法学习【16】—— 1119. Factstone Benchmark
题目来源:http://soj.me/1119
1119. Factstone Benchmark
Constraints
Time Limit: 1 secs, Memory Limit: 32 MB
Description
Amtel has announced that it will release a 128-bit computer chip by 2010, a 256-bit computer by 2020, and so on, continuing its strategy of doubling the word-size every ten years. (Amtel released a 64-bit computer in 2000, a 32-bit computer in 1990, a 16-bit computer in 1980, an 8-bit computer in 1970, and a 4-bit computer, its first, in 1960.)
Amtel will use a new benchmark - the Factstone - to advertise the vastly improved capacity of its new chips. The Factstone rating is defined to be the largest integer n such that n! can be represented as an unsigned integer in a computer word.
Input
Given a year 1960 ≤ y ≤ 2160, what will be the Factstone rating of Amtel's most recently released chip?
Output
There are several test cases. For each test case, there is one line of input containing y. A line containing 0 follows the last test case. For each test case, output a line giving the Factstone rating.
Sample Input
1960 1981 0
Sample Output
3 8
思路:继续水题,这里题目抽象为求最大的n,能符合n! <= 2^bits,其中bits = 2 ^ ((year - 1996) / 10 + 2)。直接阶乘会溢出,用log中转下。因为有log(n*m) = log(n) + log(m)。然后就变成累加log(n) / log(2),使之大于bits了。(敲代码的时候犯了个小错误,没有考虑到log(n) / log(2)是个小数,囧。)
代码:
/*
Link:
Author: BetaBin http://soj.me/1119
Date: 2012/07/26
*/
/*
#include <stdio.h>
int main()
{
int year;
int answer[21] = {3,5,8,12,20,34,57,98,170,300,536,966,1754,3210,5910,10944,20366,38064,71421,134480,254016};
while(scanf("%d", &year) && year)
{
printf("%d\n", answer[(year - 1960) / 10]);
}
return 0;
}
*/
#include <stdio.h>
#include <math.h>
//原来的错误,忽略了在相等情况下,小数的影响,取1960分析可得错误
//需要用double,而不应该是int
int main()
{
int year;
int endflag;
int n;
double sum;
while(scanf("%d", &year) && year)
{
endflag = pow(2, (year - 1960) / 10 + 2);
n = 2;
sum = 0;
while(sum <= endflag)
{
sum += log(n) / log(2);
++n;
}
printf("%d\n", n - 2);
}
return 0;
}