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leetcode-cn/problem (Chinese)/插入区间 [insert-interval].html
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<p>给你一个<strong> 无重叠的</strong><em> </em>按照区间起始端点排序的区间列表。</p>
<p>给你一个<strong> 无重叠的</strong><em> </em>按照区间起始端点排序的区间列表 <code>intervals</code>,其中&nbsp;<code>intervals[i] = [start<sub>i</sub>, end<sub>i</sub>]</code>&nbsp;表示第&nbsp;<code>i</code>&nbsp;个区间的开始和结束,并且&nbsp;<code>intervals</code>&nbsp;按照&nbsp;<code>start<sub>i</sub></code>&nbsp;升序排列。同样给定一个区间&nbsp;<code>newInterval = [start, end]</code>&nbsp;表示另一个区间的开始和结束</p>
<p>列表中插入一个新的区间,你需要确保列表中的区间仍然有序且不重叠(如果有必要的话,可以合并区间)。</p>
<p>&nbsp;<code>intervals</code> 中插入区间&nbsp;<code>newInterval</code>,使得&nbsp;<code>intervals</code>&nbsp;依然按照&nbsp;<code>start<sub>i</sub></code>&nbsp;升序排列,且区间之间不重叠(如果有必要的话,可以合并区间)。</p>
<p> </p>
<p>返回插入之后的&nbsp;<code>intervals</code></p>
<p><strong>示例 1</strong></p>
<p><strong>注意</strong> 你不需要原地修改&nbsp;<code>intervals</code>。你可以创建一个新数组然后返回它。</p>
<p>&nbsp;</p>
<p><strong>示例&nbsp;1</strong></p>
<pre>
<strong>输入:</strong>intervals = [[1,3],[6,9]], newInterval = [2,5]
@@ -16,38 +20,18 @@
<pre>
<strong>输入:</strong>intervals = [[1,2],[3,5],[6,7],[8,10],[12,16]], newInterval = [4,8]
<strong>输出:</strong>[[1,2],[3,10],[12,16]]
<strong>解释:</strong>这是因为新的区间 <code>[4,8]</code><code>[3,5],[6,7],[8,10]</code> 重叠。</pre>
<p><strong>示例 3</strong></p>
<pre>
<strong>输入:</strong>intervals = [], newInterval = [5,7]
<strong>输出:</strong>[[5,7]]
<strong>解释:</strong>这是因为新的区间 <code>[4,8]</code><code>[3,5],[6,7],[8,10]</code>&nbsp;重叠。
</pre>
<p><strong>示例 4</strong></p>
<pre>
<strong>输入:</strong>intervals = [[1,5]], newInterval = [2,3]
<strong>输出:</strong>[[1,5]]
</pre>
<p><strong>示例 5</strong></p>
<pre>
<strong>输入:</strong>intervals = [[1,5]], newInterval = [2,7]
<strong>输出:</strong>[[1,7]]
</pre>
<p> </p>
<p>&nbsp;</p>
<p><strong>提示:</strong></p>
<ul>
<li><code>0 <= intervals.length <= 10<sup>4</sup></code></li>
<li><code>0 &lt;= intervals.length &lt;= 10<sup>4</sup></code></li>
<li><code>intervals[i].length == 2</code></li>
<li><code>0 <= intervals[i][0] <= intervals[i][1] <= 10<sup>5</sup></code></li>
<li><code>intervals</code> 根据 <code>intervals[i][0]</code><strong>升序</strong> 排列</li>
<li><code>0 &lt;=&nbsp;start<sub>i</sub> &lt;=&nbsp;end<sub>i</sub> &lt;= 10<sup>5</sup></code></li>
<li><code>intervals</code> 根据 <code>start<sub>i</sub></code><strong>升序</strong> 排列</li>
<li><code>newInterval.length == 2</code></li>
<li><code>0 <= newInterval[0] <= newInterval[1] <= 10<sup>5</sup></code></li>
<li><code>0 &lt;=&nbsp;start &lt;=&nbsp;end &lt;= 10<sup>5</sup></code></li>
</ul>