题目描述
An infinite full binary tree labeled by positive rational numbers is defi ned by:
• The label of the root is 1/1.
• The left child of label p/q is p/(p+q).
• The right child ofl abel p/q is (p+q)/q.
The top of the tree is shown in the following figure:
• The label of the root is 1/1.
• The left child of label p/q is p/(p+q).
• The right child ofl abel p/q is (p+q)/q.
The top of the tree is shown in the following figure:
A rational sequence is defined by doing a level order (breadth first) traversal of the tree (indicated by the light dashed line). So that:
F(1) = 1/1, F(2) = 1/2, F(3) = 2/1, F(4) = 1/3, F(5) = 3/2, F(6) = 2/3, . . .
Write a program which takes as input a rational number, p/q, in lowest terms and fi nds the next rational number in the sequence. That is, if F(n) = p/q, then the result is F(n + 1).
输入
The first line of input contains a single integer P, (1 ≤ P ≤ 1000), which is the number of data sets that follow. Each data set should be processed identically and independently.
Each data set consists of a single line of input. It contains the data set number, K, which is then followed by a space, then the numerator of the fraction, p, followed immediately by a fonward slash (/),followed immediately by the denominator of the fraction, q. Both p and q will be relatively prime and 0 ≤ p, q ≤ 2147483647.
Each data set consists of a single line of input. It contains the data set number, K, which is then followed by a space, then the numerator of the fraction, p, followed immediately by a fonward slash (/),followed immediately by the denominator of the fraction, q. Both p and q will be relatively prime and 0 ≤ p, q ≤ 2147483647.
输出
For each data set there is a single line of output. It contains the data set number, K, followed by a single space which is then followed by the numerator of the fraction, followed immediately by a forward slash (‘/’) followed immediately by the denominator of the fraction. Inputs will be chosen such that neither the numerator nor the denominator will overfl ow a 32-bit integer.
样例输入
5
1 1/1
2 1/3
3 5/2
4 2178309/1346269
5 1/10000000
样例输出
1 1/2
2 3/2
3 2/5
4 1346269/1860498
5 10000000/9999999
【题解】
题意就是让大家根据这颗树构造来跑到下一个点。大家通过观察可以看到,除了最右侧的那个节点外,其他情况都是往上爬树,然后又往下爬。
面对像图 3/2 -> 2/3 这种情况来讲:
1、其实是往上爬,也就是 分子在减少,分母不变。后来发现,一直减去分母直到无法减为止,其实也就是相当于取余运算。
2、然后往右翻一下。分子变成原来的分母,分母变成原来的分母减分子。
3、然后在第一步取余后不是获取了层数吗?然后直接利用层数对分子进行加上分母×层数。
【代码】
异常简单,如果发现规律的话。
#include<bits/stdc++.h>
using namespace std;
typedef long long ll;
int main()
{
int T,kase;
ll p,q;
scanf("%d",&T);
while(T--){
scanf("%d",&kase);
scanf("%lld/%lld",&p,&q);
if( q == ){
printf("%d %d/%lld\n",kase,,p+);
}else if( p < q ){
ll tmp = q;
q = tmp - p;
p = tmp ;
printf("%d %lld/%lld\n",kase,p,q);
}else{
ll dep = ;
dep = p/q; p = p%q;
//printf("Dep : %d\n",dep);
ll tmp = q;
q = tmp - p;
p = tmp ; //printf("%d %d + %d\n",p,q,dep*p); q = q + dep*p;
printf("%d %lld/%lld\n",kase,p,q);
}
}
return ;
}