mirror of
https://gitee.com/coder-xiaomo/leetcode-problemset
synced 2025-01-10 18:48:13 +08:00
44 lines
2.1 KiB
HTML
44 lines
2.1 KiB
HTML
<p>You are given a <strong>0-indexed</strong> integer array <code>nums</code> whose length is a power of <code>2</code>.</p>
|
|
|
|
<p>Apply the following algorithm on <code>nums</code>:</p>
|
|
|
|
<ol>
|
|
<li>Let <code>n</code> be the length of <code>nums</code>. If <code>n == 1</code>, <strong>end</strong> the process. Otherwise, <strong>create</strong> a new <strong>0-indexed</strong> integer array <code>newNums</code> of length <code>n / 2</code>.</li>
|
|
<li>For every <strong>even</strong> index <code>i</code> where <code>0 <= i < n / 2</code>, <strong>assign</strong> the value of <code>newNums[i]</code> as <code>min(nums[2 * i], nums[2 * i + 1])</code>.</li>
|
|
<li>For every <strong>odd</strong> index <code>i</code> where <code>0 <= i < n / 2</code>, <strong>assign</strong> the value of <code>newNums[i]</code> as <code>max(nums[2 * i], nums[2 * i + 1])</code>.</li>
|
|
<li><strong>Replace</strong> the array <code>nums</code> with <code>newNums</code>.</li>
|
|
<li><strong>Repeat</strong> the entire process starting from step 1.</li>
|
|
</ol>
|
|
|
|
<p>Return <em>the last number that remains in </em><code>nums</code><em> after applying the algorithm.</em></p>
|
|
|
|
<p> </p>
|
|
<p><strong class="example">Example 1:</strong></p>
|
|
<img alt="" src="https://assets.leetcode.com/uploads/2022/04/13/example1drawio-1.png" style="width: 500px; height: 240px;" />
|
|
<pre>
|
|
<strong>Input:</strong> nums = [1,3,5,2,4,8,2,2]
|
|
<strong>Output:</strong> 1
|
|
<strong>Explanation:</strong> The following arrays are the results of applying the algorithm repeatedly.
|
|
First: nums = [1,5,4,2]
|
|
Second: nums = [1,4]
|
|
Third: nums = [1]
|
|
1 is the last remaining number, so we return 1.
|
|
</pre>
|
|
|
|
<p><strong class="example">Example 2:</strong></p>
|
|
|
|
<pre>
|
|
<strong>Input:</strong> nums = [3]
|
|
<strong>Output:</strong> 3
|
|
<strong>Explanation:</strong> 3 is already the last remaining number, so we return 3.
|
|
</pre>
|
|
|
|
<p> </p>
|
|
<p><strong>Constraints:</strong></p>
|
|
|
|
<ul>
|
|
<li><code>1 <= nums.length <= 1024</code></li>
|
|
<li><code>1 <= nums[i] <= 10<sup>9</sup></code></li>
|
|
<li><code>nums.length</code> is a power of <code>2</code>.</li>
|
|
</ul>
|