mirror of
https://gitee.com/coder-xiaomo/leetcode-problemset
synced 2025-01-10 18:48:13 +08:00
188 lines
21 KiB
JSON
188 lines
21 KiB
JSON
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"questionId": "100183",
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"questionFrontendId": "面试题 05.04",
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"categoryTitle": "LCCI",
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"boundTopicId": 46357,
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"title": "Closed Number LCCI",
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"content": "<p>Given a positive integer, print the next smallest and the next largest number that have the same number of 1 bits in their binary representation.</p>\r\n\r\n<p><strong>Example1:</strong></p>\r\n\r\n<pre>\r\n<strong> Input</strong>: num = 2 (0b10)\r\n<strong> Output</strong>: [4, 1] ([0b100, 0b1])\r\n</pre>\r\n\r\n<p><strong>Example2:</strong></p>\r\n\r\n<pre>\r\n<strong> Input</strong>: num = 1\r\n<strong> Output</strong>: [2, -1]\r\n</pre>\r\n\r\n<p><strong>Note:</strong></p>\r\n\r\n<ol>\r\n\t<li><code>1 <= num <= 2147483647</code></li>\r\n\t<li>If there is no next smallest or next largest number, output -1.</li>\r\n</ol>\r\n",
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"translatedTitle": "下一个数",
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"translatedContent": "<p>下一个数。给定一个正整数,找出与其二进制表达式中1的个数相同且大小最接近的那两个数(一个略大,一个略小)。</p>\n\n<p> <strong>示例1:</strong></p>\n\n<pre>\n<strong> 输入</strong>:num = 2(或者0b10)\n<strong> 输出</strong>:[4, 1] 或者([0b100, 0b1])\n</pre>\n\n<p> <strong>示例2:</strong></p>\n\n<pre>\n<strong> 输入</strong>:num = 1\n<strong> 输出</strong>:[2, -1]\n</pre>\n\n<p> <strong>提示:</strong></p>\n\n<ol>\n<li><code>num</code>的范围在[1, 2147483647]之间;</li>\n<li>如果找不到前一个或者后一个满足条件的正数,那么输出 -1。</li>\n</ol>\n",
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"difficulty": "Medium",
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"topicTags": [
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"name": "Bit Manipulation",
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"slug": "bit-manipulation",
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"translatedName": "位运算",
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"code": "class Solution {\npublic:\n vector<int> findClosedNumbers(int num) {\n\n }\n};",
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"code": "\n\n/**\n * Note: The returned array must be malloced, assume caller calls free().\n */\nint* findClosedNumbers(int num, int* returnSize){\n\n}\n",
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"hints": [
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"下一步:从每个蛮力解法开始。",
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"下一个:想象一个二进制数,在整个数中分布一串1和0。假设你把一个1翻转成0,把一个0翻转成1。在什么情况下数会更大?在什么情况下数会更小?",
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"下一步:如果你将1翻转成0,0翻转成1,假设 0 -> 1位更大,那么它就会变大。你如何使用这个来创建下一个最大的数字(具有相同数量的1)?",
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"下一步:你能翻转0到1,创建下一个最大的数字吗?",
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"下一步:把0翻转为1将创建一个更大的数字。索引越靠右,数字越大。如果有一个1001这样的数字,那么我们就想翻转最右边的0(创建1011)。但是如果有一个1010这样的数字,我们就不应该翻转最右边的1。",
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"下一步:我们应该翻转最右边但非拖尾的0。数字1010会变成1110。完成后,我们需要把1翻转成0让数字尽可能小,但要大于原始数字(1010)。该怎么办?如何缩小数字?",
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"下一步:我们可以通过将所有的1移动到翻转位的右侧,并尽可能地向右移动来缩小数字(在这个过程中去掉一个1)。",
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"获取前一个:一旦你解决了“获取后一个”,请尝试翻转“获取前一个”的逻辑。"
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