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[dahyeong-yun] WEEK 02 solutions #2684
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| Original file line number | Diff line number | Diff line change |
|---|---|---|
| @@ -0,0 +1,28 @@ | ||
| /** | ||
| * 0. 풀이 개요 | ||
| * - 시간복잡도 : O(n log n) | ||
| * - 공간복잡도 : O(n) | ||
| */ | ||
| class Solution { | ||
| /** | ||
| * 1. 풀이 과정 | ||
| * 1.1 문제 이해 | ||
| * - 애니어그램이 가능한 문자열인지 판단하는 문제임. 두 문자열 s와 t가 주어지고, t가 s의 애니어그램이라면 true를 반환 | ||
| * 1.2 제약 사항 | ||
| * - s, 와 t의 문자열의 길이가 5 * 10^4 이므로 문자열 길이 만큼 순회해야 한다면 O(n^2)은 불가능해 보임. O(n log n) 이하가 필요. | ||
| * - 문자는 반드시 영소문자로만 구성되어 있으나, 만약 Follow up 질문 처럼 유니코드를 포함해야 된다면 이를 포괄하는 자료형이 필요. | ||
| * 1.3 풀이 아이디어 | ||
| * - 문자열을 정렬했을 때, 같은 문자열이라면 애니어그램이 될 것. | ||
| * - 문자열의 character를 배열로 만들고 정렬하면, bulit-in 메서드에 의해 O(n log n)의 시간복잡도가 가짐, | ||
| * - 문자열의 길이만큼 character 배열이 필요하므로 2n 만큼의 공간이 더 필요하므로 O(n)의 공간복잡도를 가짐. | ||
| */ | ||
| public boolean isAnagram(String s, String t) { | ||
| char[] arrayS = s.toCharArray(); | ||
| char[] arrayT = t.toCharArray(); | ||
|
|
||
| Arrays.sort(arrayS); | ||
| Arrays.sort(arrayT); | ||
|
|
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| return Arrays.equals(arrayS, arrayT); | ||
| } | ||
| } |
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🏷️ 알고리즘 패턴 분석
📊 시간/공간 복잡도 분석
피드백: 두 문자열을 각각 정렬한 뒤 비교하므로 시간 복잡도는 정렬 비용에 의해 지배되고, 추가적인 O(n) 공간이 필요하다.
개선 제안: 현재 구현이 적절해 보입니다.