Odd Even Linked List
https://leetcode.com/explore/featured/card/may-leetcoding-challenge/536/week-3-may-15th-may-21st/3331/
只需要注意这一步
if not even:
curr = None如果不判断这一步,会报错空指针因为 当最后两个数是 1 --> None 时 curr.next 就已经为空。
class Solution:
def oddEvenList(self, head: ListNode) -> ListNode:
oddDummy = ListNode(-1)
odd = oddDummy
evenDummy = ListNode(-1)
even = evenDummy
curr = head
while curr != None:
odd.next = curr
odd = odd.next
even.next = curr.next
even = even.next
if not even:
curr = None
else:
curr = curr.next.next
odd.next = evenDummy.next
return oddDummy.nextLast updated
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