Table of contents
You are given two integer arrays nums1
and nums2
, sorted in non-decreasing order, and two integers m
and n
, representing the number of elements in nums1
and nums2
respectively.
Merge nums1
and nums2
into a single array sorted in non-decreasing order.
The final sorted array should not be returned by the function, but instead be stored inside the array nums1
. To accommodate this, nums1
has a length of m + n
, where the first m
elements denote the elements that should be merged, and the last n
elements are set to 0
and should be ignored. nums2
has a length of n
.
Example 1:
Input: nums1 = [1,2,3,0,0,0], m = 3, nums2 = [2,5,6], n = 3
Output: [1,2,2,3,5,6]
Explanation: The arrays we are merging are [1,2,3] and [2,5,6].
The result of the merge is [1,2,2,3,5,6] with the underlined elements coming from nums1.
Example 2:
Input: nums1 = [1], m = 1, nums2 = [], n = 0
Output: [1]
Explanation: The arrays we are merging are [1] and [].
The result of the merge is [1].
Example 3:
Input: nums1 = [0], m = 0, nums2 = [1], n = 1
Output: [1]
Explanation: The arrays we are merging are [] and [1].
The result of the merge is [1].
Note that because m = 0, there are no elements in nums1. The 0 is only there to ensure the merge result can fit in nums1.
Constraints:
nums1.length == m + n
nums2.length == n
0 <= m, n <= 200
1 <= m + n <= 200
-10<sup>9</sup> <= nums1[i], nums2[j] <= 10<sup>9</sup>
Approach: Two Pointers
Set two pointers in nums1, one at end and another at m - 1.
Start traversing the nums2 from end and check if nums2[k] < nums1[i]. because both arrays are sorted in ascending order then shift the ith element to the jth position and continue looking till you not reached the 0th index of nums1.
Or if the kth element >= the ith of the nums1 then put at jth position.
If you reached the 0ht index of nums1 check if there is any element remaining to put if yes then put them all in nums 1 from the jth location.
TC: O(N + M) SC: O(1)
void merge(vector<int>& nums1, int m, vector<int>& nums2, int n) {
int i = m - 1, j = (m + n - 1), k = n - 1;
while(k >= 0 && i >= 0){
if(nums2[k] >= nums1[i])
nums1[j--] = nums2[k--];
else
nums1[j--] = nums1[i--];
}
while(k >= 0)
nums1[j--] = nums2[k--];
}