Remove Duplicates with O(1)
Sar Champagne Bielert edited this page Apr 15, 2024
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1 revision
Unit 4 Session 1 (Click for link to problem statements)
Understand what the interviewer is asking for by using test cases and questions about the problem.
- How should the function behave with an empty list?
- It should return 0 because there are no elements to process.
- Are there any constraints on the sorting of the list?
- The list is assumed to be sorted, which allows for efficient duplicate removal.
Plan the solution with appropriate visualizations and pseudocode.
General Idea: Use a two-pointer technique to modify the list in place, maintaining the order and uniqueness of elements.
1) If the list is empty, return 0.
2) Initialize a pointer j to 1.
3) Iterate through the list from the second element:
a) If the current element is different from the previous one, place it at the j-th position.
b) Increment j.
4) Return j as the new length of the list.- Not handling the case of an empty list properly.
- Incorrectly moving the j pointer could lead to either missing unique elements or not removing all duplicates.
def remove_duplicates(nums):
if not nums:
return 0
# Pointer j for the position of the next unique element
j = 1
# Iterate through the array with i
for i in range(1, len(nums)):
if nums[i] != nums[i-1]:
nums[j] = nums[i]
j += 1
return j # The new length after removing duplicates