标签:new 长度 get system rgs 计算 dex while station
题目描述:
给定一个包含 m x n 个元素的矩阵(m 行, n 列),请按照顺时针螺旋顺序,返回矩阵中的所有元素。
示例 1:
输入:
[
[ 1, 2, 3 ],
[ 4, 5, 6 ],
[ 7, 8, 9 ]
]
输出: [1,2,3,6,9,8,7,4,5]
示例 2:
输入:
[
[1, 2, 3, 4],
[5, 6, 7, 8],
[9,10,11,12]
]
输出: [1,2,3,4,8,12,11,10,9,5,6,7]
解法1:
新创建一个与矩阵同大小的Boolean矩阵,将已经走过的位置置true,然后拐弯的时候判断一下是不是已经走过了或者是不是超过边界,如果走过了(根据boolean矩阵值是否为空)或超出边界就计算一下新的方向:
package array; import java.util.ArrayList; import java.util.List; public class L54_2 { public static List<Integer> spiralOrder(int[][] matrix) { List<Integer> list = new ArrayList<>(); //下方用到matrix[0],所以需要防止出现空值情况 if(matrix.length == 0){return list;} //用于指示下一个数据的位置 int[] dx ={0, 1, 0, -1},dy = {1, 0, -1, 0}; int station_x = 0, station_y = 0 , station_xnew = 0, station_ynew = 0, dirt_xy = 0,index = 0; Boolean[][] matrix_boolean = new Boolean[matrix.length][matrix[0].length]; //遍历矩阵所有数据的长度 while(index < matrix.length*matrix[0].length){ list.add(matrix[station_x][station_y]); matrix_boolean[station_x][station_y] = true; //station_xnew,station_ynew用于验证该位置的数据合法性 station_xnew = station_x + dx[dirt_xy];station_ynew = station_y + dy[dirt_xy]; if( station_xnew >=0 && station_xnew <= matrix.length-1 && station_ynew >=0 && station_ynew <=matrix[0].length-1 && (matrix_boolean[station_xnew][station_ynew] == null)){ matrix_boolean[station_xnew][station_ynew] = false; station_x = station_xnew;station_y = station_ynew; }else{ dirt_xy = (++ dirt_xy) % 4; station_x += dx[dirt_xy];station_y += dy[dirt_xy]; } index ++; } return list; } public static void main(String[] args) { int[][] matrix = {{1,2,3},{4,5,6},{7,8,9}}; List<Integer> ll = spiralOrder(matrix); for (int i =0;i<ll.size();i++){ System.out.println(ll.get(i)); } } }
解法2:
相比于上一个方法更好理解,主要就是从外圈逐渐向里圈逐渐遍历
package array; import java.util.ArrayList; import java.util.List; public class L54 { public static List<Integer> spiralOrder(int[][] matrix) { List<Integer> list = new ArrayList<>(); if(matrix.length == 0){return list;} //遍历的圈数,是长与宽之间最小值决定的 int cir_Time = Math.min(matrix.length,matrix[0].length); int start = 0; while(start <= (cir_Time-1)/2){ for(int index = start;index <= matrix[0].length-1-start;index++) list.add(matrix[start][index]); for(int index = start+ 1;index < matrix.length-1-start;index++) list.add(matrix[index][matrix[0].length-1-start]); if(start != matrix.length-1-start){ for(int index = matrix[0].length-1-start;index >= start;index--) list.add(matrix[matrix.length-1-start][index]); } if(start != matrix[0].length-1-start){ for(int index = matrix.length-start-2;index > start;index--) list.add(matrix[index][start]); } start++; } return list; } public static void main(String[] args) { int[][] matrix = {{1,2},{3,4}}; List<Integer> ll = spiralOrder(matrix); for (int i =0;i<ll.size();i++){ System.out.println(ll.get(i)); } } }
标签:new 长度 get system rgs 计算 dex while station
原文地址:https://www.cnblogs.com/mayang2465/p/11737412.html
