Description
N couples sit in 2N seats arranged in a row and want to hold hands. We want to know the minimum number of swaps so that every couple is sitting side by side. A swap consists of choosing any two people, then they stand up and switch seats.
The people and seats are represented by an integer from 0 to 2N-1, the couples are numbered in order, the first couple being (0, 1), the second couple being (2, 3), and so on with the last couple being (2N-2, 2N-1).
The couples' initial seating is given by row[i] being the value of the person who is initially sitting in the i-th seat.
Example 1:
Input: row = [0, 2, 1, 3]
Output: 1
Explanation: We only need to swap the second (row[1]) and third (row[2]) person.
Example 2:
Input: row = [3, 2, 0, 1]
Output: 0
Explanation: All couples are already seated side by side.
Note:
-
len(row)is even and in the range of[4, 60]. -
rowis guaranteed to be a permutation of0...len(row)-1.
Solution
Greedy, O(N ^ 2), S(1)
class Solution {
public int minSwapsCouples(int[] row) {
int n = row.length;
int count = 0;
for (int i = 0; i < n; i += 2) {
if (isCouple(row[i], row[i + 1])) {
continue;
}
int target = search(row, i + 2, getCouple(row[i]));
swap(row, i + 1, target);
++count;
}
return count;
}
private boolean isCouple(int x, int y) {
return y == getCouple(x);
}
private int getCouple(int x) {
// return x % 2 > 0 ? x - 1 : x + 1;
return x ^ 1; // interesting
}
private int search(int[] arr, int start, int target) {
while (start < arr.length && arr[start] != target) {
++start;
}
return start;
}
private void swap(int[] arr, int i, int j) {
if (i == j) {
return;
}
arr[i] ^= arr[j];
arr[j] ^= arr[i];
arr[i] ^= arr[j];
}
}
