客服电话
APP下载
迪恩网络APP
随时随地掌握行业动态
官方微信
扫描二维码
关注迪恩网络微信公众号
|
★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★ Given a binary matrix To flip an image horizontally means that each row of the image is reversed. For example, flipping To invert an image means that each Example 1: Input: [[1,1,0],[1,0,1],[0,0,0]] Output: [[1,0,0],[0,1,0],[1,1,1]] Explanation: First reverse each row: [[0,1,1],[1,0,1],[0,0,0]]. Then, invert the image: [[1,0,0],[0,1,0],[1,1,1]] Example 2: Input: [[1,1,0,0],[1,0,0,1],[0,1,1,1],[1,0,1,0]] Output: [[1,1,0,0],[0,1,1,0],[0,0,0,1],[1,0,1,0]] Explanation: First reverse each row: [[0,0,1,1],[1,0,0,1],[1,1,1,0],[0,1,0,1]]. Then invert the image: [[1,1,0,0],[0,1,1,0],[0,0,0,1],[1,0,1,0]] Notes:
给定一个二进制矩阵 水平翻转图片就是将图片的每一行都进行翻转,即逆序。例如,水平翻转 反转图片的意思是图片中的 示例 1: 输入: [[1,1,0],[1,0,1],[0,0,0]]
输出: [[1,0,0],[0,1,0],[1,1,1]]
解释: 首先翻转每一行: [[0,1,1],[1,0,1],[0,0,0]];
然后反转图片: [[1,0,0],[0,1,0],[1,1,1]]
示例 2: 输入: [[1,1,0,0],[1,0,0,1],[0,1,1,1],[1,0,1,0]]
输出: [[1,1,0,0],[0,1,1,0],[0,0,0,1],[1,0,1,0]]
解释: 首先翻转每一行: [[0,0,1,1],[1,0,0,1],[1,1,1,0],[0,1,0,1]];
然后反转图片: [[1,1,0,0],[0,1,1,0],[0,0,0,1],[1,0,1,0]]
说明:
Runtime: 32 ms
Memory Usage: 18.7 MB
1 class Solution { 2 func flipAndInvertImage(_ A: [[Int]]) -> [[Int]] { 3 var a = Array<Array<Int>>() 4 for i in 0..<A.count{ 5 var temp = Array<Int>() 6 for j in 0..<A.count{ 7 temp.append(1 - A[i][A.count - j - 1]) 8 } 9 a.append(temp) 10 } 11 return a 12 } 13 } 32ms 1 class Solution { 2 func flipAndInvertImage(_ A: [[Int]]) -> [[Int]] { 3 return A.map({$0.reversed().map({$0 == 1 ? 0 : 1})}) 4 } 5 } 36ms 1 class Solution { 2 func flipAndInvertImage(_ A: [[Int]]) -> [[Int]] { 3 func inverse(_ int: Int) -> Int { 4 return int == 0 ? 1 : 0 5 } 6 return A.map { row in 7 row.compactMap { element in 8 inverse(element) 9 }.reversed() 10 } 11 } 12 } 36ms 1 class Solution { 2 func flipAndInvertImage(_ A: [[Int]]) -> [[Int]] { 3 var result: [[Int]] = [] 4 for row in A { 5 let temp = row.reversed().map{ $0 == 1 ? 0 : 1} 6 result.append(temp) 7 } 8 return result 9 } 10 } 36ms 1 class Solution { 2 func flipAndInvertImage(_ A: [[Int]]) -> [[Int]] { 3 if A.count == 0 || A[0].count == 0{ 4 return A 5 } 6 7 var A = A 8 9 if A[0].count == 1 { 10 for x in 0..<A.count { 11 if A[x][0] == 1{ 12 A[x][0] = 0 13 }else{ 14 A[x][0] = 1 15 } 16 } 17 return A 18 } 19 20 let isOdd = A[0].count/2*2 != A[0].count 21 let checkYCount = isOdd ? (A[0].count/2 + 1) : (A[0].count/2) 22 for x in 0..<A.count { 23 for y in 0..<checkYCount { 24 if A[x][y] == A[x][A[0].count-y-1] { 25 if A[x][y] == 1{ 26 A[x][y] = 0 27 }else{ 28 A[x][y] = 1 29 } 30 A[x][A[0].count-y-1] = A[x][y] 31 } 32 } 33 } 34 return A 35 } 36 } 40ms 1 class Solution { 2 func flipAndInvertImage(_ A: [[Int]]) -> [[Int]] { 3 if A == nil || A.count == 0 || A[0].count == 0 { 4 return A 5 } 6 let m = A.count, n = A[0].count 7 var res = [[Int]]() 8 for array in A { 9 res.append(array.reversed()) 10 } 11 12 for i in 0 ..< m { 13 for j in 0 ..< n { 14 if res[i][j] == 0 { 15 res[i][j] = 1 16 } else { 17 res[i][j] = 0 18 } 19 } 20 } 21 return res 22 } 23 } 52ms 1 class Solution { 2 func flipAndInvertImage(_ A: [[Int]]) -> [[Int]] { 3 return A.map { 4 $0.reversed().map { 1 - $0 } 5 } 6 } 7 } 52ms 1 class Solution { 2 func flipAndInvertImage(_ A: [[Int]]) -> [[Int]] { 3 var countA = A.count 4 var res:[[Int]] = [[Int]](repeating:[Int](),count:countA) 5 for i in 0..<countA 6 { 7 for j in stride(from:countA - 1,through:0,by: -1) 8 { 9 res[i].append(1 - A[i][j]) 10 } 11 } 12 return res 13 } 14 } 76ms 1 class Solution { 2 func flipAndInvertImage(_ A: [[Int]]) -> [[Int]] { 3 return A.map({ (nums) -> [Int] in 4 return flip(nums) 5 }) 6 } 7 8 func flip(_ A: [Int]) -> [Int] { 9 return A.reversed().map { (num) -> Int in 10 return num == 0 ? 1 : 0 11 } 12 } 13 }
|
请发表评论