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[ICE0208] WEEK 04 Solutions #2744
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| Original file line number | Diff line number | Diff line change |
|---|---|---|
| @@ -0,0 +1,34 @@ | ||
| class Solution { | ||
| /** | ||
| * 두 정렬된 연결 리스트의 기존 노드를 재사용하여 하나의 정렬된 리스트로 병합한다. | ||
| * | ||
| * 시간 복잡도: O(n + m) | ||
| * - n: list1의 길이 | ||
| * - m: list2의 길이 | ||
| * | ||
| * 공간 복잡도: O(1) | ||
| * - 새로운 노드를 생성하지 않고 기존 노드를 재사용한다. | ||
| */ | ||
| public ListNode mergeTwoLists(ListNode list1, ListNode list2) { | ||
| ListNode dummyHead = new ListNode(); | ||
| ListNode tail = dummyHead; | ||
|
|
||
| // 두 리스트를 순회하며 더 작은 노드를 결과 리스트의 뒤에 연결한다. | ||
| while (list1 != null && list2 != null) { | ||
| if (list1.val <= list2.val) { | ||
| tail.next = list1; | ||
| list1 = list1.next; | ||
| } else { | ||
| tail.next = list2; | ||
| list2 = list2.next; | ||
| } | ||
|
|
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| tail = tail.next; | ||
| } | ||
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| // 한쪽 리스트가 끝나면 다른 리스트의 남은 노드들을 그대로 연결한다. | ||
| tail.next = list1 != null ? list1 : list2; | ||
|
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| return dummyHead.next; | ||
| } | ||
| } |
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🏷️ 알고리즘 패턴 분석
📊 시간/공간 복잡도 분석
피드백: 두 리스트를 한 방향으로 순회하며 더 작은 노드를 결과에 연결하고, 남은 노드를 뒤에 연결한다. 추가적인 노드 생성을 하지 않고 상수 공간으로 병합한다.
개선 제안: 현재 구현이 적절해 보입니다.