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[JustHm] Week 05 Solution #1404
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| Original file line number | Diff line number | Diff line change |
|---|---|---|
| @@ -0,0 +1,17 @@ | ||
| // time: O(n) space: O(n) | ||
| class Solution { | ||
| func maxProfit(_ prices: [Int]) -> Int { | ||
| guard !prices.isEmpty else { return 0 } | ||
| var result = [Int]() | ||
| var current = prices[0] | ||
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| for price in prices { | ||
| if current > price { | ||
| current = price | ||
| continue | ||
| } | ||
| result.append(price - current) | ||
| } | ||
| return result.max() ?? 0 | ||
| } | ||
| } |
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| Original file line number | Diff line number | Diff line change |
|---|---|---|
| @@ -0,0 +1,35 @@ | ||
|
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| class Trie { | ||
| var children: [Character: Trie] = [:] | ||
| var isEndOfWord = false | ||
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| func insert(_ word: String) { | ||
| guard !word.isEmpty else { return } | ||
| var node = self | ||
| for char in word { | ||
| if node.children[char] == nil { | ||
| node.children[char] = Trie() | ||
| } | ||
| node = node.children[char]! | ||
| } | ||
| node.isEndOfWord = true | ||
| } | ||
|
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| func search(_ word: String) -> Bool { | ||
| guard let node = findNode(word) else { return false } | ||
| return node.isEndOfWord | ||
| } | ||
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| func startsWith(_ prefix: String) -> Bool { | ||
| return findNode(prefix) != nil | ||
| } | ||
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| private func findNode(_ word: String) -> Trie? { | ||
| var node = self | ||
| for char in word { | ||
| guard let next = node.children[char] else { return nil } | ||
| node = next | ||
| } | ||
| return node | ||
| } | ||
| } |
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공간 복잡도의 경우 최대 이익을 하나의 변수에 업데이트 해주는 식으로 하면 O(1) 으로 최적화 가능할 것 같습니다!