You are given an n x n 2D matrix representing an image.
Rotate the image by 90 degrees (clockwise).

Example：

Given input matrix =
[
[1,2,3],
[4,5,6],
[7,8,9]
],
rotate the input matrix in-place such that it becomes:
[
[7,4,1],
[8,5,2],
[9,6,3]
]

Given input matrix =
[
[ 5, 1, 9,11],
[ 2, 4, 8,10],
[13, 3, 6, 7],
[15,14,12,16]
],
rotate the input matrix in-place such that it becomes:
[
[15,13, 2, 5],
[14, 3, 4, 1],
[12, 6, 8, 9],
[16, 7,10,11]
]

Note：

You have to rotate the image in-place, which means you have to modify the input 2D matrix directly. DO NOT allocate another 2D matrix and do the rotation.

解釋下題目：

將矩陣按照90度進(jìn)行順時(shí)針旋轉(zhuǎn)，注意不要開一個(gè)新的二維數(shù)組來處理，必須在原數(shù)組上處理

1. 利用數(shù)學(xué)方法

實(shí)際耗時(shí)：2ms

public void rotate(int[][] matrix) {
        int len = matrix.length;
        int temp = 0;

        //第一步午绳，對角線交換
        for (int i = 0; i < len; i++) {
            for (int j = i + 1; j < len; j++) {
                temp = matrix[i][j];
                matrix[i][j] = matrix[j][i];
                matrix[j][i] = temp;
            }
        }

        //第二步匪燕，按照最中間的一列進(jìn)行鏡像交換
        for (int i = 0; i < len; i++) {
            for (int j = 0; j < len / 2; j++) {
                temp = matrix[i][j];
                matrix[i][j] = matrix[i][len - j - 1];
                matrix[i][len - j - 1] = temp;
            }
        }

}

??先按照對角線進(jìn)行交換署隘，然后按照把第一列和最后一列進(jìn)行交換磨取。沒什么技術(shù)含量情萤。

時(shí)間復(fù)雜度O(n^2)

空間復(fù)雜度O(1)

2. 按照實(shí)際的交換進(jìn)行交換

實(shí)際耗時(shí)：2ms

public void rotate2(int[][] matrix) {
        int n = matrix.length;
        for (int i = 0; i < n / 2; i++)
            for (int j = i; j < n - i - 1; j++) {
                int tmp = matrix[i][j];
                matrix[i][j] = matrix[n - j - 1][i];
                matrix[n - j - 1][i] = matrix[n - i - 1][n - j - 1];
                matrix[n - i - 1][n - j - 1] = matrix[j][n - i - 1];
                matrix[j][n - i - 1] = tmp;
            }
}

??選取矩陣的四分之一积瞒，然后進(jìn)行4次交換即可。

時(shí)間復(fù)雜度O(n^2)

空間復(fù)雜度O(1)