mirror of
https://gitee.com/coder-xiaomo/leetcode-problemset
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190 lines
26 KiB
JSON
190 lines
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"title": "Total Cost to Hire K Workers",
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"content": "<p>You are given a <strong>0-indexed</strong> integer array <code>costs</code> where <code>costs[i]</code> is the cost of hiring the <code>i<sup>th</sup></code> worker.</p>\n\n<p>You are also given two integers <code>k</code> and <code>candidates</code>. We want to hire exactly <code>k</code> workers according to the following rules:</p>\n\n<ul>\n\t<li>You will run <code>k</code> sessions and hire exactly one worker in each session.</li>\n\t<li>In each hiring session, choose the worker with the lowest cost from either the first <code>candidates</code> workers or the last <code>candidates</code> workers. Break the tie by the smallest index.\n\t<ul>\n\t\t<li>For example, if <code>costs = [3,2,7,7,1,2]</code> and <code>candidates = 2</code>, then in the first hiring session, we will choose the <code>4<sup>th</sup></code> worker because they have the lowest cost <code>[<u>3,2</u>,7,7,<u><strong>1</strong>,2</u>]</code>.</li>\n\t\t<li>In the second hiring session, we will choose <code>1<sup>st</sup></code> worker because they have the same lowest cost as <code>4<sup>th</sup></code> worker but they have the smallest index <code>[<u>3,<strong>2</strong></u>,7,<u>7,2</u>]</code>. Please note that the indexing may be changed in the process.</li>\n\t</ul>\n\t</li>\n\t<li>If there are fewer than candidates workers remaining, choose the worker with the lowest cost among them. Break the tie by the smallest index.</li>\n\t<li>A worker can only be chosen once.</li>\n</ul>\n\n<p>Return <em>the total cost to hire exactly </em><code>k</code><em> workers.</em></p>\n\n<p> </p>\n<p><strong class=\"example\">Example 1:</strong></p>\n\n<pre>\n<strong>Input:</strong> costs = [17,12,10,2,7,2,11,20,8], k = 3, candidates = 4\n<strong>Output:</strong> 11\n<strong>Explanation:</strong> We hire 3 workers in total. The total cost is initially 0.\n- In the first hiring round we choose the worker from [<u>17,12,10,2</u>,7,<u>2,11,20,8</u>]. The lowest cost is 2, and we break the tie by the smallest index, which is 3. The total cost = 0 + 2 = 2.\n- In the second hiring round we choose the worker from [<u>17,12,10,7</u>,<u>2,11,20,8</u>]. The lowest cost is 2 (index 4). The total cost = 2 + 2 = 4.\n- In the third hiring round we choose the worker from [<u>17,12,10,7,11,20,8</u>]. The lowest cost is 7 (index 3). The total cost = 4 + 7 = 11. Notice that the worker with index 3 was common in the first and last four workers.\nThe total hiring cost is 11.\n</pre>\n\n<p><strong class=\"example\">Example 2:</strong></p>\n\n<pre>\n<strong>Input:</strong> costs = [1,2,4,1], k = 3, candidates = 3\n<strong>Output:</strong> 4\n<strong>Explanation:</strong> We hire 3 workers in total. The total cost is initially 0.\n- In the first hiring round we choose the worker from [<u>1,2,4,1</u>]. The lowest cost is 1, and we break the tie by the smallest index, which is 0. The total cost = 0 + 1 = 1. Notice that workers with index 1 and 2 are common in the first and last 3 workers.\n- In the second hiring round we choose the worker from [<u>2,4,1</u>]. The lowest cost is 1 (index 2). The total cost = 1 + 1 = 2.\n- In the third hiring round there are less than three candidates. We choose the worker from the remaining workers [<u>2,4</u>]. The lowest cost is 2 (index 0). The total cost = 2 + 2 = 4.\nThe total hiring cost is 4.\n</pre>\n\n<p> </p>\n<p><strong>Constraints:</strong></p>\n\n<ul>\n\t<li><code>1 <= costs.length <= 10<sup>5 </sup></code></li>\n\t<li><code>1 <= costs[i] <= 10<sup>5</sup></code></li>\n\t<li><code>1 <= k, candidates <= costs.length</code></li>\n</ul>\n",
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"translatedTitle": "雇佣 K 位工人的总代价",
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"translatedContent": "<p>给你一个下标从 <strong>0</strong> 开始的整数数组 <code>costs</code> ,其中 <code>costs[i]</code> 是雇佣第 <code>i</code> 位工人的代价。</p>\n\n<p>同时给你两个整数 <code>k</code> 和 <code>candidates</code> 。我们想根据以下规则恰好雇佣 <code>k</code> 位工人:</p>\n\n<ul>\n\t<li>总共进行 <code>k</code> 轮雇佣,且每一轮恰好雇佣一位工人。</li>\n\t<li>在每一轮雇佣中,从最前面 <code>candidates</code> 和最后面 <code>candidates</code> 人中选出代价最小的一位工人,如果有多位代价相同且最小的工人,选择下标更小的一位工人。\n\t<ul>\n\t\t<li>比方说,<code>costs = [3,2,7,7,1,2]</code> 且 <code>candidates = 2</code> ,第一轮雇佣中,我们选择第 <code>4</code> 位工人,因为他的代价最小 <code>[<em>3,2</em>,7,7,<em><strong>1</strong>,2</em>]</code> 。</li>\n\t\t<li>第二轮雇佣,我们选择第 <code>1</code> 位工人,因为他们的代价与第 <code>4</code> 位工人一样都是最小代价,而且下标更小,<code>[<em>3,<strong>2</strong></em>,7,<em>7,2</em>]</code> 。注意每一轮雇佣后,剩余工人的下标可能会发生变化。</li>\n\t</ul>\n\t</li>\n\t<li>如果剩余员工数目不足 <code>candidates</code> 人,那么下一轮雇佣他们中代价最小的一人,如果有多位代价相同且最小的工人,选择下标更小的一位工人。</li>\n\t<li>一位工人只能被选择一次。</li>\n</ul>\n\n<p>返回雇佣恰好<em> </em><code>k</code> 位工人的总代价。</p>\n\n<p> </p>\n\n<p><strong>示例 1:</strong></p>\n\n<pre><b>输入:</b>costs = [17,12,10,2,7,2,11,20,8], k = 3, candidates = 4\n<b>输出:</b>11\n<b>解释:</b>我们总共雇佣 3 位工人。总代价一开始为 0 。\n- 第一轮雇佣,我们从 [<strong><em>17,12,10,2</em></strong>,7,<strong><em>2,11,20,8</em></strong>] 中选择。最小代价是 2 ,有两位工人,我们选择下标更小的一位工人,即第 3 位工人。总代价是 0 + 2 = 2 。\n- 第二轮雇佣,我们从 [<strong><em>17,12,10,7</em></strong>,<strong><em>2,11,20,8</em></strong>] 中选择。最小代价是 2 ,下标为 4 ,总代价是 2 + 2 = 4 。\n- 第三轮雇佣,我们从 [<strong><em>17,12,10,7,11,20,8</em></strong>] 中选择,最小代价是 7 ,下标为 3 ,总代价是 4 + 7 = 11 。注意下标为 3 的工人同时在最前面和最后面 4 位工人中。\n总雇佣代价是 11 。\n</pre>\n\n<p><strong>示例 2:</strong></p>\n\n<pre><b>输入:</b>costs = [1,2,4,1], k = 3, candidates = 3\n<b>输出:</b>4\n<b>解释:</b>我们总共雇佣 3 位工人。总代价一开始为 0 。\n- 第一轮雇佣,我们从 [<strong><em>1,2,4,1</em></strong>] 中选择。最小代价为 1 ,有两位工人,我们选择下标更小的一位工人,即第 0 位工人,总代价是 0 + 1 = 1 。注意,下标为 1 和 2 的工人同时在最前面和最后面 3 位工人中。\n- 第二轮雇佣,我们从 [<strong><em>2,4,1</em></strong>] 中选择。最小代价为 1 ,下标为 2 ,总代价是 1 + 1 = 2 。\n- 第三轮雇佣,少于 3 位工人,我们从剩余工人 [<strong><em>2,4</em></strong>] 中选择。最小代价是 2 ,下标为 0 。总代价为 2 + 2 = 4 。\n总雇佣代价是 4 。\n</pre>\n\n<p> </p>\n\n<p><strong>提示:</strong></p>\n\n<ul>\n\t<li><code>1 <= costs.length <= 10<sup>5 </sup></code></li>\n\t<li><code>1 <= costs[i] <= 10<sup>5</sup></code></li>\n\t<li><code>1 <= k, candidates <= costs.length</code></li>\n</ul>\n",
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