zoukankan      html  css  js  c++  java
  • [Swift]LeetCode835. 图像重叠 | Image Overlap

    ★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★
    ➤微信公众号:山青咏芝(shanqingyongzhi)
    ➤博客园地址:山青咏芝(https://www.cnblogs.com/strengthen/
    ➤GitHub地址:https://github.com/strengthen/LeetCode
    ➤原文地址: https://www.cnblogs.com/strengthen/p/10576125.html 
    ➤如果链接不是山青咏芝的博客园地址,则可能是爬取作者的文章。
    ➤原文已修改更新!强烈建议点击原文地址阅读!支持作者!支持原创!
    ★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★

    Two images A and B are given, represented as binary, square matrices of the same size.  (A binary matrix has only 0s and 1s as values.)

    We translate one image however we choose (sliding it left, right, up, or down any number of units), and place it on top of the other image.  After, the overlap of this translation is the number of positions that have a 1 in both images.

    (Note also that a translation does not include any kind of rotation.)

    What is the largest possible overlap?

    Example 1:

    Input: A = [[1,1,0],
                [0,1,0],
                [0,1,0]]
           B = [[0,0,0],
                [0,1,1],
                [0,0,1]]
    Output: 3
    Explanation: We slide A to right by 1 unit and down by 1 unit.

    Notes: 

    1. 1 <= A.length = A[0].length = B.length = B[0].length <= 30
    2. 0 <= A[i][j], B[i][j] <= 1

    给出两个图像 A 和 B ,A 和 B 为大小相同的二维正方形矩阵。(并且为二进制矩阵,只包含0和1)。

    我们转换其中一个图像,向左,右,上,或下滑动任何数量的单位,并把它放在另一个图像的上面。之后,该转换的重叠是指两个图像都具有 1 的位置的数目。

    (请注意,转换不包括向任何方向旋转。)

    最大可能的重叠是什么?

    示例 1:

    输入:A = [[1,1,0],
              [0,1,0],
              [0,1,0]]
         B = [[0,0,0],
              [0,1,1],
              [0,0,1]]
    输出:3
    解释: 将 A 向右移动一个单位,然后向下移动一个单位。

    注意: 

    1. 1 <= A.length = A[0].length = B.length = B[0].length <= 30
    2. 0 <= A[i][j], B[i][j] <= 1

    288ms

     1 class Solution {
     2     func largestOverlap(_ A: [[Int]], _ B: [[Int]]) -> Int {
     3         var LA = [Int](), LB = [Int]()
     4         let N = A.count
     5         var count = [Int: Int]()
     6         for i in 0..<N*N {
     7             if A[i/N][i%N] == 1 {
     8                 LA.append( i/N * 100 + i % N)
     9             }
    10             if B[i/N][i%N] == 1  {
    11                 LB.append( i/N * 100 + i % N)
    12             }
    13         }
    14 
    15         for i in LA {
    16             for j in LB {
    17                 count[i-j, default: 0] += 1
    18             }
    19         }
    20 
    21         var res = 0
    22         for (k, v) in count {
    23             res = max(res, v)
    24         }
    25         return res
    26     }
    27 }

    Runtime: 292 ms
    Memory Usage: 19.3 MB
     1 class Solution {
     2     func largestOverlap(_ A: [[Int]], _ B: [[Int]]) -> Int {
     3         var res:Int = 0
     4         var n:Int = A.count
     5         var listA:[Int] = [Int]()
     6         var listB:[Int] = [Int]()
     7         var diffCnt:[Int:Int] = [Int:Int]()
     8         for i in 0..<(n * n)
     9         {
    10             if A[i / n][i % n] == 1
    11             {
    12                 listA.append(i / n * 100 + i % n)
    13             }
    14             if B[i / n][i % n] == 1
    15             {
    16                 listB.append(i / n * 100 + i % n)
    17             }
    18         }
    19         for a in listA
    20         {
    21             for b in listB
    22             {
    23                 diffCnt[a - b,default:0] += 1
    24             }
    25         }
    26         for diff in diffCnt
    27         {
    28             res = max(res, diff.value)
    29         }
    30         return res
    31     }
    32 }
  • 相关阅读:
    1>/dev/null 2>&1的含义
    rpm常用命令及rpm参数介绍
    linux按位运算
    关于比较运算符的一个例子
    js屏蔽效果
    jquery异步提交无刷新
    常用js验证
    获取输入字符的首字母(中文为拼音首字母)
    SQL查询合并字符串
    获取鼠标点击的坐标处理
  • 原文地址:https://www.cnblogs.com/strengthen/p/10576125.html
Copyright © 2011-2022 走看看