Problem Description
Farey序列是一个这样的序列:其第一级序列定义为(0/1,1/1),这一序列扩展到第二级形成序列(0/1,1/2,1/1),扩展到第三极形成序列(0/1,1/3,1/2,2/3,1/1),扩展到第四级则形成序列(0/1,1/4,1/3,1/2,2/3,3/4,1/1)。以后在每一级n,如果上一级的任何两个相邻分数a/c与b/d满足(c+d)<=n,就将一个新的分数(a+b)/(c+d)插入在两个分数之间。对于给定的n值,依次输出其第n级序列所包含的每一个分数。
Input
输入一个整数n(0<n<=100)
Output
依次输出第n级序列所包含的每一个分数,每行输出10个分数,同一行的两个相邻分数间隔一个制表符的距离。
Sample Input
6
Sample Output
0/1 1/6 1/5 1/4 1/3 2/5 1/2 3/5 2/3 3/4 4/5 5/6 1/1
Hint
Source
#include<stdio.h>
#include<string.h>
#include<stdlib.h>
typedef struct node
{
int a,b;
struct node *next;
}node;
void creat(node *head,int n)
{
node *p,*q,*tail;
tail = head->next;
while(tail->next != NULL)
{
p = tail->next;
if(p->b + tail->b <= n)
{
q = (node *)malloc(sizeof(node));
q->a = p->a + tail->a;
q->b = p->b + tail->b;
tail->next = q;
q->next = p;
}
tail = tail->next;
}
}
void pri(node *head)
{
node *p;
p = head->next;
int t = 0;
while(p)
{
t++;
if(t%10 == 0)
printf("%d/%d\n",p->a,p->b);
else
printf("%d/%d\t",p->a,p->b);
p = p->next;
}
}
int main()
{
int n,i;
node *head,*p,*q;
scanf("%d",&n);
head = (node *)malloc(sizeof(node));
head->next = NULL;
p = (node *)malloc(sizeof(node));
q = (node *)malloc(sizeof(node));
p->a = 0;
p->b = 1;
q->a = 1;
q->b = 1;
head->next = p;
p->next = q;
q->next = NULL;
for(i = 2;i <= n;i++)
{
creat(head,i);
}
pri(head);
return 0;
}