Given a positive integer n and the odd integer o and the nonnegative integer p such that n = o2^p.
Example
For n = 24, o = 3 and p = 3.
Task
Write a program which for each data set:
reads a positive integer n,
computes the odd integer o and the nonnegative integer p such that n = o2^p,
writes the result.
Input
The first line of the input contains exactly one positive integer d equal to the number of data sets, 1 <= d <= 10. The data sets follow.
Each data set consists of exactly one line containing exactly one integer n, 1 <= n <= 10^6.
Output
The output should consists of exactly d lines, one line for each data set.
Line i, 1 <= i <= d, corresponds to the i-th input and should contain two integers o and p separated by a single space such that n = o2^p.
Sample Input
1
24
Sample Output
3 3
题意:
输入的第一行正好包含一个正整数d,它等于数据集的数量,1 <= d <= 10。为每个数据写一个程序:读取一个正整数n,计算奇数o和非负整数p使得n = o*2^p。
注意:
此题有限制,若用遍历的方法时间复杂度可能超出限制。
算法思想:
输入的n不断除以二,p用来计算除的次数,直到n为奇数为止,最后剩下的n和p就是题目要求的o和p。
上代码:
#include <stdio.h>
int main()
{
int d;int n, o, p;
scanf("%d", &d);
while(d--)
{
if(d<1&&d>10) //题目中有规定d的范围,所以这点需要注意
break;
scanf("%d", &n);
p=0;
while(n%2==0) //此为此题的精髓,需要多多理解
{
p++; //n除以一次2,指数p就自增一次
n/=2;
}
printf("%d %d\n", n, p); //两个输出之间有一个空格
}
return 0;
}
心得:
不是任何这种类似的问题都要用“遍历”,要学会变通。
