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简单 |
1195 |
第 327 场周赛 Q1 |
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给你一个按 非递减顺序 排列的数组 nums ,返回正整数数目和负整数数目中的最大值。
- 换句话讲,如果
nums中正整数的数目是pos,而负整数的数目是neg,返回pos和neg二者中的最大值。
注意:0 既不是正整数也不是负整数。
示例 1:
输入:nums = [-2,-1,-1,1,2,3] 输出:3 解释:共有 3 个正整数和 3 个负整数。计数得到的最大值是 3 。
示例 2:
输入:nums = [-3,-2,-1,0,0,1,2] 输出:3 解释:共有 2 个正整数和 3 个负整数。计数得到的最大值是 3 。
示例 3:
输入:nums = [5,20,66,1314] 输出:4 解释:共有 4 个正整数和 0 个负整数。计数得到的最大值是 4 。
提示:
1 <= nums.length <= 2000-2000 <= nums[i] <= 2000nums按 非递减顺序 排列。
进阶:你可以设计并实现时间复杂度为 O(log(n)) 的算法解决此问题吗?
我们可以直接遍历数组,统计正整数和负整数的个数
时间复杂度
class Solution:
def maximumCount(self, nums: List[int]) -> int:
a = sum(x > 0 for x in nums)
b = sum(x < 0 for x in nums)
return max(a, b)class Solution {
public int maximumCount(int[] nums) {
int a = 0, b = 0;
for (int x : nums) {
if (x > 0) {
++a;
} else if (x < 0) {
++b;
}
}
return Math.max(a, b);
}
}class Solution {
public:
int maximumCount(vector<int>& nums) {
int a = 0, b = 0;
for (int x : nums) {
if (x > 0) {
++a;
} else if (x < 0) {
++b;
}
}
return max(a, b);
}
};func maximumCount(nums []int) int {
var a, b int
for _, x := range nums {
if x > 0 {
a++
} else if x < 0 {
b++
}
}
return max(a, b)
}function maximumCount(nums: number[]): number {
let [a, b] = [0, 0];
for (const x of nums) {
if (x > 0) {
++a;
} else if (x < 0) {
++b;
}
}
return Math.max(a, b);
}impl Solution {
pub fn maximum_count(nums: Vec<i32>) -> i32 {
let mut a = 0;
let mut b = 0;
for x in nums {
if x > 0 {
a += 1;
} else if x < 0 {
b += 1;
}
}
std::cmp::max(a, b)
}
}#define max(a, b) (a > b ? a : b)
int maximumCount(int* nums, int numsSize) {
int a = 0, b = 0;
for (int i = 0; i < numsSize; ++i) {
if (nums[i] > 0) {
++a;
} else if (nums[i] < 0) {
++b;
}
}
return max(a, b);
}由于数组是按非递减顺序排列的,因此可以使用二分查找找到第一个大于等于
时间复杂度
class Solution:
def maximumCount(self, nums: List[int]) -> int:
a = len(nums) - bisect_left(nums, 1)
b = bisect_left(nums, 0)
return max(a, b)class Solution {
public int maximumCount(int[] nums) {
int a = nums.length - search(nums, 1);
int b = search(nums, 0);
return Math.max(a, b);
}
private int search(int[] nums, int x) {
int left = 0, right = nums.length;
while (left < right) {
int mid = (left + right) >> 1;
if (nums[mid] >= x) {
right = mid;
} else {
left = mid + 1;
}
}
return left;
}
}class Solution {
public:
int maximumCount(vector<int>& nums) {
int a = nums.end() - lower_bound(nums.begin(), nums.end(), 1);
int b = lower_bound(nums.begin(), nums.end(), 0) - nums.begin();
return max(a, b);
}
};func maximumCount(nums []int) int {
a := len(nums) - sort.SearchInts(nums, 1)
b := sort.SearchInts(nums, 0)
return max(a, b)
}function maximumCount(nums: number[]): number {
const search = (x: number): number => {
let [left, right] = [0, nums.length];
while (left < right) {
const mid = (left + right) >> 1;
if (nums[mid] >= x) {
right = mid;
} else {
left = mid + 1;
}
}
return left;
};
const i = search(1);
const j = search(0);
const [a, b] = [nums.length - i, j];
return Math.max(a, b);
}impl Solution {
fn search(nums: &Vec<i32>, x: i32) -> usize {
let mut left = 0;
let mut right = nums.len();
while left < right {
let mid = (left + right) >> 1;
if nums[mid] >= x {
right = mid;
} else {
left = mid + 1;
}
}
left
}
pub fn maximum_count(nums: Vec<i32>) -> i32 {
let n = nums.len();
let i = Self::search(&nums, 1);
let j = Self::search(&nums, 0);
(n - i).max(j) as i32
}
}#define max(a, b) (a > b ? a : b)
int search(int* nums, int numsSize, int x) {
int left = 0;
int right = numsSize;
while (left < right) {
int mid = (left + right) >> 1;
if (nums[mid] >= x) {
right = mid;
} else {
left = mid + 1;
}
}
return left;
}
int maximumCount(int* nums, int numsSize) {
int i = search(nums, numsSize, 1);
int j = search(nums, numsSize, 0);
return max(numsSize - i, j);
}