Question
Given two sorted integer arrays nums1 and nums2, merge nums2 into nums1 as one sorted array.
Note:
You may assume that nums1 has enough space (size that is greater or equal to m + n) to hold additional elements from nums2. The number of elements initialized in nums1and nums2 are m and n respectively.
Solution 1 Naive Way
Time complexity O(n), space cost O(n)
public class Solution {
public void merge(int[] nums1, int m, int[] nums2, int n) {
int[] originNums1 = Arrays.copyOf(nums1, m);
int pointer1 = 0, pointer2 = 0, i = 0;
while (pointer1 < m && pointer2 < n) {
if (originNums1[pointer1] <= nums2[pointer2]) {
nums1[i] = originNums1[pointer1];
pointer1++;
} else {
nums1[i] = nums2[pointer2];
pointer2++;
}
i++;
}
while (pointer1 < m) {
nums1[i] = originNums1[pointer1];
pointer1++;
i++;
}
while (pointer2 < n) {
nums1[i] = nums2[pointer2];
pointer2++;
i++;
}
}
}
Solution 2
The key to solve this problem is moving element of A and B backwards. If B has some elements left after A is done, also need to handle that case.
Time complexity O(n), space cost O(1)
public class Solution {
public void merge(int[] nums1, int m, int[] nums2, int n) {
while (m > 0 && n > 0) {
if (nums1[m - 1] >= nums2[n - 1]) {
nums1[m + n - 1] = nums1[m - 1];
m--;
} else {
nums1[m + n - 1] = nums2[n - 1];
n--;
}
}
while (n > 0) {
nums1[m + n - 1] = nums2[n - 1];
n--;
}
}
}