Codeforces 785C

C. Anton and Fairy Tale
time limit per test1 second
memory limit per test256 megabytes
inputstandard input
outputstandard output
Anton likes to listen to fairy tales, especially when Danik, Anton's best friend, tells them. Right now Danik tells Anton a fairy tale:
"Once upon a time, there lived an emperor. He was very rich and had much grain. One day he ordered to build a huge barn to put there all his grain. Best builders were building that barn for three days and three nights. But they overlooked and there remained a little hole in the barn, from which every day sparrows came through. Here flew a sparrow, took a grain and flew away..."
More formally, the following takes place in the fairy tale. At the beginning of the first day the barn with the capacity of n grains was full. Then, every day (starting with the first day) the following happens:
m grains are brought to the barn. If m grains doesn't fit to the barn, the barn becomes full and the grains that doesn't fit are brought back (in this problem we can assume that the grains that doesn't fit to the barn are not taken into account).
Sparrows come and eat grain. In the i-th day i sparrows come, that is on the first day one sparrow come, on the second day two sparrows come and so on. Every sparrow eats one grain. If the barn is empty, a sparrow eats nothing.
Anton is tired of listening how Danik describes every sparrow that eats grain from the barn. Anton doesn't know when the fairy tale ends, so he asked you to determine, by the end of which day the barn will become empty for the first time. Help Anton and write a program that will determine the number of that day!
Input
The only line of the input contains two integers n and m (1 ≤ n, m ≤ 1018) — the capacity of the barn and the number of grains that are brought every day.
Output
Output one integer — the number of the day when the barn will become empty for the first time. Days are numbered starting with one.
Examples
Input
5 2
Output
4
Input
8 1
Output
5
Note
In the first sample the capacity of the barn is five grains and two grains are brought every day. The following happens:
At the beginning of the first day grain is brought to the barn. It's full, so nothing happens.
At the end of the first day one sparrow comes and eats one grain, so 5 - 1 = 4 grains remain.
At the beginning of the second day two grains are brought. The barn becomes full and one grain doesn't fit to it.
At the end of the second day two sparrows come. 5 - 2 = 3 grains remain.
At the beginning of the third day two grains are brought. The barn becomes full again.
At the end of the third day three sparrows come and eat grain. 5 - 3 = 2 grains remain.
At the beginning of the fourth day grain is brought again. 2 + 2 = 4 grains remain.
At the end of the fourth day four sparrows come and eat grain. 4 - 4 = 0 grains remain. The barn is empty.

So the answer is 4, because by the end of the fourth day the barn becomes empty.

题意很好理解,应该都会想到用判循环的方法，但是到了test6,7的时候就超时了；然后这题对时间优化用到了二分的方法，代码很短....

#include <bits/stdc++.h>using namespace std;typedef long long ll;int main(){ll n, m;cin >> n >> m;ll l = 0, r = 1e10;ll ans = 1e10;if ( n <= m ){cout << n << endl;return 0;}//从仓库数量开始小于n的时侯二分while ( l < r ){ll mm = (l+r) >> 1;ll sum = (mm+1)*mm/2;//如果sum+m >= n 说明,当前天的鸟还不足以 吃完所有粮食。if ( sum + m >= n ){ans = min(ans, mm);r = mm;}else{l = mm + 1;}}//最后要加上那开始那几天 每天仍加满是n的天数。cout << ans + m << endl;return 0;}