[Swift]LeetCode976. 三角形的最大周长 | Largest Perimeter Triangle
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Given an array A of positive lengths, return the largest perimeter of a triangle with non-zero area, formed from 3 of these lengths.
If it is impossible to form any triangle of non-zero area, return 0.
Example 1:
Input: [2,1,2]
Output: 5
Example 2:
Input: [1,2,1]
Output: 0
Example 3:
Input: [3,2,3,4]
Output: 10
Example 4:
Input: [3,6,2,3]
Output: 8
Note:
3 <= A.length <= 100001 <= A[i] <= 10^6
给定由一些正数(代表长度)组成的数组 A,返回由其中三个长度组成的、面积不为零的三角形的最大周长。
如果不能形成任何面积不为零的三角形,返回 0。
示例 1:
输入:[2,1,2] 输出:5
示例 2:
输入:[1,2,1] 输出:0
示例 3:
输入:[3,2,3,4] 输出:10
示例 4:
输入:[3,6,2,3] 输出:8
提示:
3 <= A.length <= 100001 <= A[i] <= 10^6
276ms
1 class Solution { 2 func largestPerimeter(_ A: [Int]) -> Int { 3 var best = 0 4 var A = A 5 A.sort(by: >) 6 for i in 0..<A.count-2 { 7 let j = i+1 8 let k = j+1 9 if A[i]+A[j]>A[k] && A[i]+A[k]>A[j] && A[j]+A[k]>A[i] { 10 best = max(best,A[i]+A[j]+A[k]) 11 } 12 } 13 return best 14 } 15 }
308ms
1 class Solution { 2 func largestPerimeter(_ A: [Int]) -> Int { 3 var sortedA = A.sorted() 4 5 var i = A.count - 1 6 var j = i - 1 7 var k = j - 1 8 9 while k >= 0 && sortedA[j] + sortedA[k] <= sortedA[i] { 10 i -= 1 11 j -= 1 12 k -= 1 13 } 14 15 return k >= 0 ? sortedA[i] + sortedA[j] + sortedA[k] : 0 16 } 17 }
312ms
1 class Solution { 2 func largestPerimeter(_ A: [Int]) -> Int { 3 var A = A 4 A.sort() 5 for i in (2...A.count-1).reversed(){ 6 if(A[i] < A[i-1] + A[i-2]){ 7 return A[i] + A[i-1] + A[i-2] 8 } 9 } 10 return 0 11 } 12 }
324ms
1 class Solution { 2 func largestPerimeter(_ A: [Int]) -> Int { 3 var A = A.sorted(by:<) 4 var n = A.count 5 for i in stride(from:n-3,through:0,by:-1) 6 { 7 if A[i] + A[i+1] > A[i+2] 8 { 9 return A[i] + A[i+1] + A[i+2] 10 } 11 } 12 return 0 13 } 14 }
328ms
1 class Solution { 2 func largestPerimeter(_ A:[Int]) -> Int { 3 return compare(A.sorted(by: > )) 4 } 5 func compare(_ array:[Int]) -> Int { 6 if array[0] >= array[1] + array[2] { 7 if array.count == 3 { 8 return 0 9 } else{ 10 var new = array 11 new.removeFirst() 12 return compare(new) 13 } 14 } else { 15 return array[0] + array[1] + array[2] 16 } 17 } 18 }
