题目描述
如果一个数的素因子只包含2,3,5或7,那么我们把这种数叫做丑数。序列1,2,3,4,5,6,7,8,9,10,12,14,15,16,18,20,21,24,25,27...展示了前20个丑数。
请你编程寻找这个序列中的第n个元素。
请你编程寻找这个序列中的第n个元素。
输入
输入包含多组测试数据。每组输入为一个整数n(1<=n<=5842),当n=0时,输入结束。
输出
对于每组输入,输出一行“The nth humble number is number.”。里面的n由输入中的n值替换,“st”,“nd”,“rd”和“th”这些序数结尾的用法参照输出样例。
样例输入 Copy
1
2
3
4
11
12
13
21
22
23
100
1000
5842
0
样例输出 Copy
The 1st humble number is 1.
The 2nd humble number is 2.
The 3rd humble number is 3.
The 4th humble number is 4.
The 11th humble number is 12.
The 12th humble number is 14.
The 13th humble number is 15.
The 21st humble number is 28.
The 22nd humble number is 30.
The 23rd humble number is 32.
The 100th humble number is 450.
The 1000th humble number is 385875.
The 5842nd humble number is 2000000000.
思路:它不是丑数,我是丑人
第n个数是由前面n-1个数中的某一个数乘2或3或5或7后得到的最小值
参考:https://blog.csdn.net/hanyue0102/article/details/81327211
#include <stdio.h>
#include <iostream>
#include <cstring>
#include <algorithm>
#include <cmath>
#include<cstdio>
using namespace std;
int min(int a,int b,int c,int d)
{
if(a>b)a=b;
if(a>c)a=c;
if(a>d)a=d;
return a;
}
int main()
{
int n;
int chou[5850];
int t1=1,t2=1,t3=1,t4=1;
chou[1]=1;
for(int i=2;i<5850;i++)
{
chou[i] = min(chou[t1]*2,chou[t2]*3,chou[t3]*5,chou[t4]*7);
if(chou[i]==chou[t1]*2)
{
t1++;
}
if(chou[i]==chou[t2]*3)
{
t2++;
}
if(chou[i]==chou[t3]*5)
{
t3++;
}
if(chou[i]==chou[t4]*7)
{
t4++;
}
}
while(scanf("%d",&n)!=EOF)
{
if(n==0)
{
break;
}
if(n%10==1&&n%100!=11)
{//输出格式的选取
printf("The %dst humble number is %d.
",n,chou[n]);
}
else if(n%10==2&&n%100!=12)
{
printf("The %dnd humble number is %d.
",n,chou[n]);
}
else if(n%10==3&&n%100!=13)
{
printf("The %drd humble number is %d.
",n,chou[n]);
}
else
{
printf("The %dth humble number is %d.
",n,chou[n]);
}
}
return 0;
}