Sort Array by Parity II
Problem Description​
Given an array of integers nums
, half of the integers in nums
are odd, and the other half are even.
Sort the array so that whenever nums[i]
is odd, i
is odd, and whenever nums[i]
is even, i
is even.
Return any answer array that satisfies this condition.
Examples​
Example 1:
Input: nums = [4,2,5,7]
Output: [4,5,2,7]
Explanation: [4,7,2,5], [2,5,4,7], [2,7,4,5] would also have been accepted.
Example 2:
Input: nums = [2,3]
Output: [2,3]
Constraints​
2 <= nums.length <= 2 * 10^4
nums.length is even.
Half of the integers in nums are even.
0 <= nums[i] <= 1000
Solution​
Python​
class Solution:
def sortArrayByParityII(self, nums: List[int]) -> List[int]:
even_index, odd_index = 0, 1
while even_index < len(nums) and odd_index < len(nums):
if nums[even_index] % 2 == 0:
even_index += 2
elif nums[odd_index] % 2 == 1:
odd_index += 2
else:
nums[even_index], nums[odd_index] = nums[odd_index], nums[even_index]
even_index += 2
odd_index += 2
return nums
# Example usage:
solution = Solution()
print(solution.sortArrayByParityII([4,2,5,7])) # Output: [4,5,2,7]
C++​
#include <vector>
using namespace std;
class Solution {
public:
vector<int> sortArrayByParityII(vector<int>& nums) {
int even_index = 0, odd_index = 1;
while (even_index < nums.size() && odd_index < nums.size()) {
if (nums[even_index] % 2 == 0) {
even_index += 2;
} else if (nums[odd_index] % 2 == 1) {
odd_index += 2;
} else {
swap(nums[even_index], nums[odd_index]);
even_index += 2;
odd_index += 2;
}
}
return nums;
}
};
// Example usage:
int main() {
Solution solution;
vector<int> nums = {4, 2, 5, 7};
vector<int> result = solution.sortArrayByParityII(nums); // Output: [4, 5, 2, 7]
for (int num : result) {
cout << num << " ";
}
return 0;
}
Java​
class Solution {
public int[] sortArrayByParityII(int[] nums) {
int evenIndex = 0, oddIndex = 1;
while (evenIndex < nums.length && oddIndex < nums.length) {
if (nums[evenIndex] % 2 == 0) {
evenIndex += 2;
} else if (nums[oddIndex] % 2 == 1) {
oddIndex += 2;
} else {
int temp = nums[evenIndex];
nums[evenIndex] = nums[oddIndex];
nums[oddIndex] = temp;
evenIndex += 2;
oddIndex += 2;
}
}
return nums;
}
public static void main(String[] args) {
Solution solution = new Solution();
int[] nums = {4, 2, 5, 7};
int[] result = solution.sortArrayByParityII(nums); // Output: [4, 5, 2, 7]
for (int num : result) {
System.out.print(num + " ");
}
}
}
JavaScript​
var sortArrayByParityII = function (nums) {
let evenIndex = 0,
oddIndex = 1;
while (evenIndex < nums.length && oddIndex < nums.length) {
if (nums[evenIndex] % 2 === 0) {
evenIndex += 2;
} else if (nums[oddIndex] % 2 === 1) {
oddIndex += 2;
} else {
[nums[evenIndex], nums[oddIndex]] = [nums[oddIndex], nums[evenIndex]];
evenIndex += 2;
oddIndex += 2;
}
}
return nums;
};
// Example usage:
console.log(sortArrayByParityII([4, 2, 5, 7])); // Output: [4, 5, 2, 7]