Merge Sorted Array
Source
- leetcode: Merge Sorted Array | LeetCode OJ
- lintcode: (6) Merge Sorted Array
Given two sorted integer arrays A and B, merge B into A as one sorted array.
Example
A = [1, 2, 3, empty, empty], B = [4, 5]
After merge, A will be filled as [1, 2, 3, 4, 5]
Note
You may assume that A has enough space (size that is greater or equal to m + n)
to hold additional elements from B.
The number of elements initialized in A and B are m and n respectively.
题解
因为本题有 in-place 的限制,故必须从数组末尾的两个元素开始比较;否则就会产生挪动,一旦挪动就会是 的。
自尾部向首部逐个比较两个数组内的元素,取较大的置于数组 A 中。由于 A 的容量较 B 大,故最后 m == 0
或者 n == 0
时仅需处理 B 中的元素,因为 A 中的元素已经在 A 中,无需处理。
Python
class Solution:
"""
@param A: sorted integer array A which has m elements,
but size of A is m+n
@param B: sorted integer array B which has n elements
@return: void
"""
def mergeSortedArray(self, A, m, B, n):
if B is None:
return A
index = m + n - 1
while m > 0 and n > 0:
if A[m - 1] > B[n - 1]:
A[index] = A[m - 1]
m -= 1
else:
A[index] = B[n - 1]
n -= 1
index -= 1
# B has elements left
while n > 0:
A[index] = B[n - 1]
n -= 1
index -= 1
C++
class Solution {
public:
/**
* @param A: sorted integer array A which has m elements,
* but size of A is m+n
* @param B: sorted integer array B which has n elements
* @return: void
*/
void mergeSortedArray(int A[], int m, int B[], int n) {
int index = m + n - 1;
while (m > 0 && n > 0) {
if (A[m - 1] > B[n - 1]) {
A[index] = A[m - 1];
--m;
} else {
A[index] = B[n - 1];
--n;
}
--index;
}
// B has elements left
while (n > 0) {
A[index] = B[n - 1];
--n;
--index;
}
}
};
Java
class Solution {
/**
* @param A: sorted integer array A which has m elements,
* but size of A is m+n
* @param B: sorted integer array B which has n elements
* @return: void
*/
public void mergeSortedArray(int[] A, int m, int[] B, int n) {
if (A == null || B == null) return;
int index = m + n - 1;
while (m > 0 && n > 0) {
if (A[m - 1] > B[n - 1]) {
A[index] = A[m - 1];
m--;
} else {
A[index] = B[n - 1];
n--;
}
index--;
}
// B has elements left
while (n > 0) {
A[index] = B[n - 1];
n--;
index--;
}
}
}
源码分析
第一个 while 只能用条件与。
复杂度分析
最坏情况下需要遍历两个数组中所有元素,时间复杂度为 . 空间复杂度 .