Spiral Matrix II (M)
题目
Given a positive integer n, generate a square matrix filled with elements from 1 to (n^2) in spiral order.
Example:
Input: 3
Output:
[
[ 1, 2, 3 ],
[ 8, 9, 4 ],
[ 7, 6, 5 ]
]
题意
将数(1-n^2)按照螺旋顺时针的顺序填入一个 n x n 的矩阵中。
思路
方法与 0054. Spiral Matrix 一样,在实现细节上甚至更加简单。
代码实现
Java
模拟
class Solution {
public int[][] generateMatrix(int n) {
int[][] matrix = new int[n][n];
int[] iPlus = {0, 1, 0, -1};
int[] jPlus = {1, 0, -1, 0};
int direction = 0; // 0123分别代表右下左上
int i = 0, j = 0;
for (int num = 1; num <= n * n; num++) {
matrix[i][j] = num;
// 先判断以当前方向走到的下一个位置是否合法,不合法则转向
int nextI = i + iPlus[direction];
int nextJ = j + jPlus[direction];
if (nextI == -1 || nextI == n || nextJ == -1 || nextJ == n || matrix[nextI][nextJ] != 0) {
direction = (direction + 1) % 4;
i += iPlus[direction];
j += jPlus[direction];
} else {
i = nextI;
j = nextJ;
}
}
return matrix;
}
}
层遍历
class Solution {
public int[][] generateMatrix(int n) {
int[][] matrix = new int[n][n];
// 四个参数确定四条外边
int rowUp = 0, rowDown = n - 1;
int colLeft = 0, colRight = n - 1;
int num = 1;
while (rowUp <= rowDown && colLeft <= colRight) {
for (int c = colLeft; c <= colRight; c++) {
matrix[rowUp][c] = num++;
}
for (int r = rowUp + 1; r <= rowDown; r++) {
matrix[r][colRight] = num++;
}
// 只有当前层不是一直线时,才有下边和左边
if (rowUp < rowDown && colLeft < colRight) {
for (int c = colRight - 1; c > colLeft; c--) {
matrix[rowDown][c] = num++;
}
for (int r = rowDown; r > rowUp; r--) {
matrix[r][colLeft] = num++;
}
}
// 四边向内推进一层
rowUp++;
rowDown--;
colLeft++;
colRight--;
}
return matrix;
}
}
JavaScript
模拟
/**
* @param {number} n
* @return {number[][]}
*/
var generateMatrix = function (n) {
let matrix = new Array(n).fill(0).map(v => [])
let num = 1
let stepI = [0, 1, 0, -1]
let stepJ = [1, 0, -1, 0]
let dir = 0
let i = 0, j = 0
while (num <= n * n) {
matrix[i][j] = num++
let nextI = i + stepI[dir]
let nextJ = j + stepJ[dir]
if (nextI >= n || nextI < 0 || nextJ >= n || nextJ < 0 || matrix[nextI][nextJ]) {
dir = (dir + 1) % 4
nextI = i + stepI[dir]
nextJ = j + stepJ[dir]
}
i = nextI
j = nextJ
}
return matrix
}
层遍历
/**
* @param {number} n
* @return {number[][]}
*/
var generateMatrix = function (n) {
let matrix = new Array(n).fill(0).map(v => [])
let num = 1
let left = 0, right = n - 1, top = 0, bottom = n - 1
while (left <= right && top <= bottom) {
for (let i = left; i <= right; i++) {
matrix[top][i] = num++
}
for (let i = top + 1; i <= bottom; i++) {
matrix[i][right] = num++
}
if (left < right && top < bottom) {
for (let i = right - 1; i >= left; i--) {
matrix[bottom][i] = num++
}
for (let i = bottom - 1; i > top; i--) {
matrix[i][left] = num++
}
}
left++
right--
top++
bottom--
}
return matrix
}