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875. 爱吃香蕉的珂珂

English Version

题目描述

珂珂喜欢吃香蕉。这里有 n 堆香蕉,第 i 堆中有 piles[i] 根香蕉。警卫已经离开了,将在 h 小时后回来。

珂珂可以决定她吃香蕉的速度 k (单位:根/小时)。每个小时,她将会选择一堆香蕉,从中吃掉 k 根。如果这堆香蕉少于 k 根,她将吃掉这堆的所有香蕉,然后这一小时内不会再吃更多的香蕉。  

珂珂喜欢慢慢吃,但仍然想在警卫回来前吃掉所有的香蕉。

返回她可以在 h 小时内吃掉所有香蕉的最小速度 kk 为整数)。

 

示例 1:

输入:piles = [3,6,7,11], h = 8
输出:4

示例 2:

输入:piles = [30,11,23,4,20], h = 5
输出:30

示例 3:

输入:piles = [30,11,23,4,20], h = 6
输出:23

 

提示:

  • 1 <= piles.length <= 104
  • piles.length <= h <= 109
  • 1 <= piles[i] <= 109

解法

方法一:二分查找

二分枚举速度值,找到能在 $h$ 小时内吃完所有香蕉的最小速度值。

时间复杂度 $O(n\log m)$,空间复杂度 $O(1)$。其中 $n$piles 的长度,而 $m$piles 中的最大值。

class Solution:
    def minEatingSpeed(self, piles: List[int], h: int) -> int:
        left, right = 1, int(1e9)
        while left < right:
            mid = (left + right) >> 1
            s = sum((x + mid - 1) // mid for x in piles)
            if s <= h:
                right = mid
            else:
                left = mid + 1
        return left
class Solution {
    public int minEatingSpeed(int[] piles, int h) {
        int left = 1, right = (int) 1e9;
        while (left < right) {
            int mid = (left + right) >>> 1;
            int s = 0;
            for (int x : piles) {
                s += (x + mid - 1) / mid;
            }
            if (s <= h) {
                right = mid;
            } else {
                left = mid + 1;
            }
        }
        return left;
    }
}
class Solution {
public:
    int minEatingSpeed(vector<int>& piles, int h) {
        int left = 1, right = 1e9;
        while (left < right) {
            int mid = (left + right) >> 1;
            int s = 0;
            for (int& x : piles) s += (x + mid - 1) / mid;
            if (s <= h)
                right = mid;
            else
                left = mid + 1;
        }
        return left;
    }
};
func minEatingSpeed(piles []int, h int) int {
	return sort.Search(1e9, func(i int) bool {
		if i == 0 {
			return false
		}
		s := 0
		for _, x := range piles {
			s += (x + i - 1) / i
		}
		return s <= h
	})
}
function minEatingSpeed(piles: number[], h: number): number {
    let left = 1;
    let right = Math.max(...piles);
    while (left < right) {
        const mid = (left + right) >> 1;
        let s = 0;
        for (const x of piles) {
            s += Math.ceil(x / mid);
        }
        if (s <= h) {
            right = mid;
        } else {
            left = mid + 1;
        }
    }
    return left;
}
public class Solution {
    public int MinEatingSpeed(int[] piles, int h) {
        int left = 1, right = piles.Max();
        while (left < right)
        {
            int mid = (left + right) >> 1;
            int s = 0;
            foreach (int pile in piles)
            {
                s += (pile + mid - 1) / mid;
            }
            if (s <= h)
            {
                right = mid;
            }
            else
            {
                left = mid + 1;
            }
        }
        return left;
    }
}