C. Memory and De-Evolution time limit per test2 seconds memory limit per test256 megabytes inputstandard input outputstandard output Memory is now interested in the de-evolution of objects, specifically triangles. He starts with an equilateral triangle of side length x, and he wishes to perform Operations to obtain an equilateral triangle of side length y.
In a single second, he can modify the length of a single side of the current triangle such that it remains a non-degenerate triangle (triangle of positive area). At any moment of time, the length of each side should be integer.
What is the minimum number of seconds required for Memory to obtain the equilateral triangle of side length y?
Input The first and only line contains two integers x and y (3 ≤ y < x ≤ 100 000) — the starting and ending equilateral triangle side lengths respectively.
Output PRint a single integer — the minimum number of seconds required for Memory to obtain the equilateral triangle of side length y if he starts with the equilateral triangle of side length x.
Examples input 6 3 output 4 input 8 5 output 3 input 22 4 output 6 Note In the first sample test, Memory starts with an equilateral triangle of side length 6 and wants one of side length 3. Denote a triangle with sides a, b, and c as (a, b, c). Then, Memory can do .
In the second sample test, Memory can do .
In the third sample test, Memory can do:
把y变为x,每次尽可能的把最小边变的尽可能的大,即 x1 = x2 + x3 -1,都大于等于x?
AC代码:
#include<cstdio>#include<algorithm>using namespace std;int a[3];int main(){ int x,y,num = 0,n = 0; scanf("%d %d",&x,&y); a[0] = a[1] = a[2] = y; while(a[0] < x || a[1] < x || a[2] < x) a[n % 3] = a[(n + 1) % 3] + a[(n + 2) % 3] - 1,n++; printf("%d/n",n); return 0;}.
新闻热点
疑难解答
