Really liked the O(1) explanation, thanx. Can you make the video explaining what does the term amortized exactly mean, can we assume it as same as avg time?

​@@akshayiithydno that was constant time operation

honestly, i only do Leetcode just when you do, so please don't stop

no its perfect.

I appreciate the longer explanations, it’s very thorough and it clears a lot of confusion for me. And I also appreciate you mentioning that you wouldn’t be able to solve it if you did it for the first time. 😅

Same here messed up with a simple question. Started grinding Daily..

You can. I came up with 2 ways: 1. Create a pointer that will refer to the element that should be returned when the pop() or peek() function is called. If we call pop(), we move this pointer forward by 1 element. In push() we add elements to the end of the list, and in the function empty() we return: pointer == len(stack). 2. If you write in Python, you can set the stack as a list, and when you call pop(), return the result of pop(0). Then 0 element will be removed from the list and its value will be returned. If we compare these two methods, the first requires more memory, but all functions are executed in O(1), the second method uses less memory, but the pop() method can take O(n) time depending on the specifics of the implementation remove 0 item from list in different languages.

@@arturpelcharskyi1281 that's breaking the rules, because in a stack, you can only look at the top of the stack (the last element)

@@arturpelcharskyi1281great solve. I solved using the first approach

I prefer WET (write everything twice) over DRY (don't repeat yourself) 😝

TIL what WET and DRY meant... learning something new every time I watch neetcode's videos

​@@NeetCodeIO 🫠

But that violates property of stack, because in stack you can only access the last element.

@@mzafarr got it!

See 11:20