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Difficulty: 中等
Related Topics: 数组, 动态规划, 矩阵
在一个由 '0' 和 '1' 组成的二维矩阵内,找到只包含 '1' 的最大正方形,并返回其面积。
'0'
'1'
示例 1:
输入:matrix = [["1","0","1","0","0"],["1","0","1","1","1"],["1","1","1","1","1"],["1","0","0","1","0"]] 输出:4
示例 2:
输入:matrix = [["0","1"],["1","0"]] 输出:1
示例 3:
输入:matrix = [["0"]] 输出:0
提示:
m == matrix.length
n == matrix[i].length
1 <= m, n <= 300
matrix[i][j]
Language: JavaScript
/** * @param {character[][]} matrix * @return {number} */ var maximalSquare = function(matrix) { if(!matrix||matrix.length===0||matrix[0].length===0){ return 0 } // 1.设一个变量存放最长边 let maxSide = 0; // 长宽 let row = matrix.length; let column = matrix[0].length // 2.声明一个数组来存放每个点的最长边 let dp=[] for(let i=0;i<row;i++){ dp.push(new Array(column)) } //3.遍历所有节点 for(let i=0;i<matrix.length;i++){ for(let j=0;j<matrix[i].length;j++){ // 如果当前的节点等于1; if(matrix[i][j]=='1'){ //且该节点的下标是0 0 if(i==0||j==0){ dp[i][j]=1 }else{ dp[i][j]=Math.min(Math.min(dp[i-1][j],dp[i][j-1]),dp[i-1][j-1])+1 } }else{ dp[i][j]=0; } maxSide = Math.max(dp[i][j],maxSide) } } return Math.pow(maxSide,2) };
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221. 最大正方形
Description
Difficulty: 中等
Related Topics: 数组, 动态规划, 矩阵
在一个由
'0'和'1'组成的二维矩阵内,找到只包含'1'的最大正方形,并返回其面积。示例 1:
示例 2:
示例 3:
提示:
m == matrix.lengthn == matrix[i].length1 <= m, n <= 300matrix[i][j]为'0'或'1'Solution
Language: JavaScript
The text was updated successfully, but these errors were encountered: