• CF思维联系– CodeForces


    ACM思维题训练集合

    After passing a test, Vasya got himself a box of n candies. He decided to eat an equal amount of candies each morning until there are no more candies. However, Petya also noticed the box and decided to get some candies for himself.

    This means the process of eating candies is the following: in the beginning Vasya chooses a single integer k, same for all days. After that, in the morning he eats k candies from the box (if there are less than k candies in the box, he eats them all), then in the evening Petya eats 10% of the candies remaining in the box. If there are still candies left in the box, the process repeats — next day Vasya eats k candies again, and Petya — 10% of the candies left in a box, and so on.

    If the amount of candies in the box is not divisible by 10, Petya rounds the amount he takes from the box down. For example, if there were 97 candies in the box, Petya would eat only 9 of them. In particular, if there are less than 10 candies in a box, Petya won’t eat any at all.

    Your task is to find out the minimal amount of k that can be chosen by Vasya so that he would eat at least half of the n candies he initially got. Note that the number k must be integer.

    Input
    The first line contains a single integer n (1≤n≤1018) — the initial amount of candies in the box.

    Output
    Output a single integer — the minimal amount of k that would allow Vasya to eat at least half of candies he got.

    Example
    Input
    68
    Output
    3
    Note
    In the sample, the amount of candies, with k=3, would change in the following way (Vasya eats first):

    68→65→59→56→51→48→44→41→37→34→31→28→26→23→21→18→17→14→13→10→9→6→6→3→3→0.

    In total, Vasya would eat 39 candies, while Petya — 29.
    因为是求最小的,想枚举,或者倍增,但是枚举会超时,倍增需要单调,所以不如直接二分,验证单调性。
    之后可以使用二分,不过这个题看完数据就只能用log2n的复杂度过,除了优先队列,map,set,二分没有其他的算法合适,就它了。
    然后没读清楚题意,题目说的是不小于,大于等于,在二分的时候没有注意check的等号。

    #include <bits/stdc++.h>
    using namespace std;
    template <typename t>
    void read(t &x)
    {
        char ch = getchar();
        x = 0;
        t f = 1;
        while (ch < '0' || ch > '9')
            f = (ch == '-' ? -1 : f), ch = getchar();
        while (ch >= '0' && ch <= '9')
            x = x * 10 + ch - '0', ch = getchar();
        x *= f;
    }
    
    #define wi(n) printf("%d ", n)
    #define wl(n) printf("%lld ", n)
    #define rep(m, n, i) for (int i = m; i < n; ++i)
    #define rrep(m, n, i) for (int i = m; i > n; --i)
    #define P puts(" ")
    typedef long long ll;
    #define MOD 1000000007
    #define mp(a, b) make_pair(a, b)
    #define N 10005
    #define fil(a, n) rep(0, n, i) read(a[i])
    //---------------https://lunatic.blog.csdn.net/-------------------//
    bool check(long long k, long long sum)
    {
        ll a = 0, b = 0;
        while (sum)
        {
            //  cout<<a<<" "<<b<<endl;
            if (sum >= k)
            {
                sum -= k;
                a += k;
            }
            else
            {
                a += sum;
                sum = 0;
            }
            if (sum >= 10)
            {
                long long tem = sum / 10;
                b += tem;
                sum -= tem;
            }
        }
    
        return a >= b;  //这没等号会错//
    }
    int main()
    {
        long long sum;
        read(sum);
        ll l = 1, r = sum;
        while (l < r)
        {
            ll mid = (l + r) / 2;
            if (check(mid, sum))
                r = mid;
    
            else l=mid+1;
        }
        cout<<l<<endl;
    }
    
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  • 原文地址:https://www.cnblogs.com/lunatic-talent/p/12798392.html
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