mirror of
https://gitee.com/coder-xiaomo/leetcode-problemset
synced 2025-01-11 02:58:13 +08:00
178 lines
20 KiB
JSON
178 lines
20 KiB
JSON
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"questionId": "54",
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"categoryTitle": "Algorithms",
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"boundTopicId": 1104,
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"title": "Spiral Matrix",
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"titleSlug": "spiral-matrix",
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"content": "<p>Given an <code>m x n</code> <code>matrix</code>, return <em>all elements of the</em> <code>matrix</code> <em>in spiral order</em>.</p>\n\n<p> </p>\n<p><strong>Example 1:</strong></p>\n<img alt=\"\" src=\"https://assets.leetcode.com/uploads/2020/11/13/spiral1.jpg\" style=\"width: 242px; height: 242px;\" />\n<pre>\n<strong>Input:</strong> matrix = [[1,2,3],[4,5,6],[7,8,9]]\n<strong>Output:</strong> [1,2,3,6,9,8,7,4,5]\n</pre>\n\n<p><strong>Example 2:</strong></p>\n<img alt=\"\" src=\"https://assets.leetcode.com/uploads/2020/11/13/spiral.jpg\" style=\"width: 322px; height: 242px;\" />\n<pre>\n<strong>Input:</strong> matrix = [[1,2,3,4],[5,6,7,8],[9,10,11,12]]\n<strong>Output:</strong> [1,2,3,4,8,12,11,10,9,5,6,7]\n</pre>\n\n<p> </p>\n<p><strong>Constraints:</strong></p>\n\n<ul>\n\t<li><code>m == matrix.length</code></li>\n\t<li><code>n == matrix[i].length</code></li>\n\t<li><code>1 <= m, n <= 10</code></li>\n\t<li><code>-100 <= matrix[i][j] <= 100</code></li>\n</ul>\n",
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"translatedTitle": "螺旋矩阵",
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"translatedContent": "<p>给你一个 <code>m</code> 行 <code>n</code> 列的矩阵 <code>matrix</code> ,请按照 <strong>顺时针螺旋顺序</strong> ,返回矩阵中的所有元素。</p>\n\n<p> </p>\n\n<p><strong>示例 1:</strong></p>\n<img alt=\"\" src=\"https://assets.leetcode.com/uploads/2020/11/13/spiral1.jpg\" style=\"width: 242px; height: 242px;\" />\n<pre>\n<strong>输入:</strong>matrix = [[1,2,3],[4,5,6],[7,8,9]]\n<strong>输出:</strong>[1,2,3,6,9,8,7,4,5]\n</pre>\n\n<p><strong>示例 2:</strong></p>\n<img alt=\"\" src=\"https://assets.leetcode.com/uploads/2020/11/13/spiral.jpg\" style=\"width: 322px; height: 242px;\" />\n<pre>\n<strong>输入:</strong>matrix = [[1,2,3,4],[5,6,7,8],[9,10,11,12]]\n<strong>输出:</strong>[1,2,3,4,8,12,11,10,9,5,6,7]\n</pre>\n\n<p> </p>\n\n<p><strong>提示:</strong></p>\n\n<ul>\n\t<li><code>m == matrix.length</code></li>\n\t<li><code>n == matrix[i].length</code></li>\n\t<li><code>1 <= m, n <= 10</code></li>\n\t<li><code>-100 <= matrix[i][j] <= 100</code></li>\n</ul>\n",
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"Well for some problems, the best way really is to come up with some algorithms for simulation. Basically, you need to simulate what the problem asks us to do.",
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"We go boundary by boundary and move inwards. That is the essential operation. First row, last column, last row, first column and then we move inwards by 1 and then repeat. That's all, that is all the simulation that we need.",
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"Think about when you want to switch the progress on one of the indexes. If you progress on <pre>i</pre> out of <pre>[i, j]</pre>, you'd be shifting in the same column. Similarly, by changing values for <pre>j</pre>, you'd be shifting in the same row.\r\nAlso, keep track of the end of a boundary so that you can move inwards and then keep repeating. It's always best to run the simulation on edge cases like a single column or a single row to see if anything breaks or not."
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