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2025-01-09 20:29:41 +08:00
parent 04ecea043d
commit 48cdd06c2b
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leetcode-cn/problem (Chinese)/大礼包 [shopping-offers].html
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@@ -6,7 +6,7 @@
<p>返回<strong> 确切 </strong>满足购物清单所需花费的最低价格,你可以充分利用大礼包的优惠活动。你不能购买超出购物清单指定数量的物品,即使那样会降低整体价格。任意大礼包可无限次购买。</p>
<p> </p>
<p>&nbsp;</p>
<p><strong>示例 1</strong></p>
@@ -28,17 +28,16 @@
需要买 1A 2B 和 1C ,所以付 ¥4 买 1A 和 1B大礼包 1以及 ¥3 购买 1B ¥4 购买 1C 。
不可以购买超出待购清单的物品,尽管购买大礼包 2 更加便宜。</pre>
<p> </p>
<p>&nbsp;</p>
<p><strong>提示:</strong></p>
<ul>
<li><code>n == price.length</code></li>
<li><code>n == needs.length</code></li>
<li><code>1 <= n <= 6</code></li>
<li><code>0 <= price[i] <= 10</code></li>
<li><code>0 <= needs[i] <= 10</code></li>
<li><code>1 <= special.length <= 100</code></li>
<li><code>n == price.length == needs.length</code></li>
<li><code>1 &lt;= n &lt;= 6</code></li>
<li><code>0 &lt;= price[i], needs[i] &lt;= 10</code></li>
<li><code>1 &lt;= special.length &lt;= 100</code></li>
<li><code>special[i].length == n + 1</code></li>
<li><code>0 <= special[i][j] <= 50</code></li>
<li><code>0 &lt;= special[i][j] &lt;= 50</code></li>
<li>生成的输入对于&nbsp;<code>0 &lt;= j &lt;= n - 1</code> 至少有一个&nbsp;<code>special[i][j]</code>&nbsp;非零。</li>
</ul>