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152. 乘积最大子数组

English Version

题目描述

给你一个整数数组 nums ,请你找出数组中乘积最大的连续子数组(该子数组中至少包含一个数字),并返回该子数组所对应的乘积。

 

示例 1:

输入: [2,3,-2,4]
输出: 6
解释: 子数组 [2,3] 有最大乘积 6。

示例 2:

输入: [-2,0,-1]
输出: 0
解释: 结果不能为 2, 因为 [-2,-1] 不是子数组。

解法

考虑当前位置 i:

  • 如果是一个负数的话,那么我们希望以它前一个位置结尾的某个段的积也是个负数,这样可以负负得正,并且我们希望这个积尽可能「负得更多」,即尽可能小。
  • 如果是一个正数的话,我们更希望以它前一个位置结尾的某个段的积也是个正数,并且希望它尽可能地大。

因此,分别维护 fmax 和 fmin。

  • fmax(i) = max(nums[i], fmax(i - 1) * nums[i], fmin(i - 1) * nums[i])
  • fmin(i) = min(nums[i], fmax(i - 1) * nums[i], fmin(i - 1) * nums[i])
  • res = max(fmax(i)), i∈[0, n)

Python3

class Solution:
    def maxProduct(self, nums: List[int]) -> int:
        maxf = minf = res = nums[0]
        for num in nums[1:]:
            m, n = maxf, minf
            maxf = max(num, m * num, n * num)
            minf = min(num, m * num, n * num)
            res = max(res, maxf)
        return res

Java

class Solution {
    public int maxProduct(int[] nums) {
        int maxf = nums[0], minf = nums[0], res = nums[0];
        for (int i = 1; i < nums.length; ++i) {
            int m = maxf, n = minf;
            maxf = Math.max(nums[i], Math.max(m * nums[i], n * nums[i]));
            minf = Math.min(nums[i], Math.min(m * nums[i], n * nums[i]));
            res = Math.max(res, maxf);
        }
        return res;
    }
}

TypeScript

function maxProduct(nums: number[]): number {
    let n = nums.length;
    let preMax = nums[0],
        preMin = nums[0],
        ans = nums[0];
    for (let i = 1; i < n; ++i) {
        let cur = nums[i];
        let x = preMax,
            y = preMin;
        preMax = Math.max(x * cur, y * cur, cur);
        preMin = Math.min(x * cur, y * cur, cur);
        ans = Math.max(preMax, ans);
    }
    return ans;
}

C#

public class Solution {
    public int MaxProduct(int[] nums) {
        int maxf = nums[0], minf = nums[0], res = nums[0];
        for (int i = 1; i < nums.Length; ++i)
        {
            int m = maxf, n = minf;
            maxf = Math.Max(nums[i], Math.Max(nums[i] * m, nums[i] * n));
            minf = Math.Min(nums[i], Math.Min(nums[i] * m, nums[i] * n));
            res = Math.Max(res, maxf);
        }
        return res;
    }
}

C++

class Solution {
public:
    int maxProduct(vector<int>& nums) {
        int maxf = nums[0], minf = nums[0], res = nums[0];
        for (int i = 1; i < nums.size(); ++i) {
            int m = maxf, n = minf;
            maxf = max(nums[i], max(nums[i] * m, nums[i] * n));
            minf = min(nums[i], min(nums[i] * m, nums[i] * n));
            res = max(res, maxf);
        }
        return res;
    }
};

Go

func maxProduct(nums []int) int {
	maxf, minf, res := nums[0], nums[0], nums[0]
	for i := 1; i < len(nums); i++ {
		m, n := maxf, minf
		maxf = max(nums[i], max(nums[i]*m, nums[i]*n))
		minf = min(nums[i], min(nums[i]*m, nums[i]*n))
		res = max(res, maxf)
	}
	return res
}

func max(a, b int) int {
	if a > b {
		return a
	}
	return b
}

func min(a, b int) int {
	if a < b {
		return a
	}
	return b
}

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