1217. Minimum Cost to Move Chips to The Same Position

Description

We have n chips, where the position of the i^th chip is position[i].

We need to move all the chips to the same position. In one step, we can change the position of the i^th chip from position[i] to:

position[i] + 2 or position[i] - 2 with cost = 0.
position[i] + 1 or position[i] - 1 with cost = 1.

Return the minimum cost needed to move all the chips to the same position.

Example 1:

Input: position = [1,2,3]
Output: 1
Explanation: First step: Move the chip at position 3 to position 1 with cost = 0.
Second step: Move the chip at position 2 to position 1 with cost = 1.
Total cost is 1.

Example 2:

Input: position = [2,2,2,3,3]
Output: 2
Explanation: We can move the two chips at position  3 to position 2. Each move has cost = 1. The total cost = 2.

Example 3:

Input: position = [1,1000000000]
Output: 1

Constraints:

1 <= position.length <= 100
1 <= position[i] <= 10^9

Solution

minimum-cost-to-move-chips-to-the-same-position.py

class Solution:
    def minCostToMoveChips(self, position: List[int]) -> int:
        odd = even = 0

        for x in position:
            if x % 2 == 0:
                even += 1
            else:
                odd += 1

        return min(even, odd)