-
Notifications
You must be signed in to change notification settings - Fork 266
Delete Tail
Sar Champagne Bielert edited this page Apr 20, 2024
·
1 revision
Unit 5 Session 2 (Click for link to problem statements)
Understand what the interviewer is asking for by using test cases and questions about the problem.
- What happens if the linked list has only one node?
- The function should update the head to
None, effectively making the list empty since the tail (which is also the head) is being removed.
- The function should update the head to
Plan the solution with appropriate visualizations and pseudocode.
General Idea: Traverse the linked list to find and remove the last node (tail), updating the second-to-last node's next to None.
1) Check if the list is empty or has only one node by examining `head` and `head.next`.
2) If the list has only one node or is empty, set `head` to `None` to represent an empty list.
3) Otherwise, traverse the list to find the second-to-last node using two pointers: `previous` and `current`.
4) Once the last node is found (`current.next` is `None`), set `previous.next` to `None` to remove the tail.
5) There's no need to return a value as the function modifies the list in place.- Not handling cases where the list is empty or has a single node, which requires different handling than removing nodes from longer lists.
- Incorrectly maintaining the
previousandcurrentpointers could lead to incorrect or failed removals.
def delete_tail(head):
# If the list is empty or has only one node
if head is None or head.next is None:
return None # After removing the tail, the list is empty
# Start with the first node
previous = None
current = head
# Traverse the list until the last node
while current.next is not None:
previous = current
current = current.next
# Set the second-to-last node's next to None, removing the last node
previous.next = None