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2295. Replace Elements in an Array

Difficulty Topics

Description

You are given a 0-indexed array nums that consists of n distinct positive integers. Apply m operations to this array, where in the ith operation you replace the number operations[i][0] with operations[i][1].

It is guaranteed that in the ith operation:

  • operations[i][0] exists in nums.
  • operations[i][1] does not exist in nums.

Return the array obtained after applying all the operations.

 

Example 1:

Input: nums = [1,2,4,6], operations = [[1,3],[4,7],[6,1]]
Output: [3,2,7,1]
Explanation: We perform the following operations on nums:
- Replace the number 1 with 3. nums becomes [3,2,4,6].
- Replace the number 4 with 7. nums becomes [3,2,7,6].
- Replace the number 6 with 1. nums becomes [3,2,7,1].
We return the final array [3,2,7,1].

Example 2:

Input: nums = [1,2], operations = [[1,3],[2,1],[3,2]]
Output: [2,1]
Explanation: We perform the following operations to nums:
- Replace the number 1 with 3. nums becomes [3,2].
- Replace the number 2 with 1. nums becomes [3,1].
- Replace the number 3 with 2. nums becomes [2,1].
We return the array [2,1].

 

Constraints:

  • n == nums.length
  • m == operations.length
  • 1 <= n, m <= 105
  • All the values of nums are distinct.
  • operations[i].length == 2
  • 1 <= nums[i], operations[i][0], operations[i][1] <= 106
  • operations[i][0] will exist in nums when applying the ith operation.
  • operations[i][1] will not exist in nums when applying the ith operation.

Solution

replace-elements-in-an-array.py
class Solution:
    def arrayChange(self, nums: List[int], operations: List[List[int]]) -> List[int]:
        mp = {x:i for i, x in enumerate(nums)}

        for a, b in operations:
            currIndex = mp[a]
            nums[currIndex] = b
            mp[b] = currIndex

        return nums