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"categoryTitle": "Algorithms",
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"title": "Count Good Meals",
"titleSlug": "count-good-meals",
"content": "<p>A <strong>good meal</strong> is a meal that contains <strong>exactly two different food items</strong> with a sum of deliciousness equal to a power of two.</p>\n\n<p>You can pick <strong>any</strong> two different foods to make a good meal.</p>\n\n<p>Given an array of integers <code>deliciousness</code> where <code>deliciousness[i]</code> is the deliciousness of the <code>i<sup>th</sup></code> item of food, return <em>the number of different <strong>good meals</strong> you can make from this list modulo</em> <code>10<sup>9</sup> + 7</code>.</p>\n\n<p>Note that items with different indices are considered different even if they have the same deliciousness value.</p>\n\n<p> </p>\n<p><strong>Example 1:</strong></p>\n\n<pre>\n<strong>Input:</strong> deliciousness = [1,3,5,7,9]\n<strong>Output:</strong> 4\n<strong>Explanation: </strong>The good meals are (1,3), (1,7), (3,5) and, (7,9).\nTheir respective sums are 4, 8, 8, and 16, all of which are powers of 2.\n</pre>\n\n<p><strong>Example 2:</strong></p>\n\n<pre>\n<strong>Input:</strong> deliciousness = [1,1,1,3,3,3,7]\n<strong>Output:</strong> 15\n<strong>Explanation: </strong>The good meals are (1,1) with 3 ways, (1,3) with 9 ways, and (1,7) with 3 ways.</pre>\n\n<p> </p>\n<p><strong>Constraints:</strong></p>\n\n<ul>\n\t<li><code>1 <= deliciousness.length <= 10<sup>5</sup></code></li>\n\t<li><code>0 <= deliciousness[i] <= 2<sup>20</sup></code></li>\n</ul>\n",
"translatedTitle": "大餐计数",
"translatedContent": "<p><strong>大餐</strong> 是指 <strong>恰好包含两道不同餐品</strong> 的一餐,其美味程度之和等于 2 的幂。</p>\n\n<p>你可以搭配 <strong>任意</strong> 两道餐品做一顿大餐。</p>\n\n<p>给你一个整数数组 <code>deliciousness</code> ,其中 <code>deliciousness[i]</code> 是第 <code>i<sup></sup></code> 道餐品的美味程度,返回你可以用数组中的餐品做出的不同 <strong>大餐</strong> 的数量。结果需要对 <code>10<sup>9</sup> + 7</code> 取余。</p>\n\n<p>注意,只要餐品下标不同,就可以认为是不同的餐品,即便它们的美味程度相同。</p>\n\n<p> </p>\n\n<p><strong>示例 1:</strong></p>\n\n<pre>\n<strong>输入:</strong>deliciousness = [1,3,5,7,9]\n<strong>输出:</strong>4\n<strong>解释:</strong>大餐的美味程度组合为 (1,3) 、(1,7) 、(3,5) 和 (7,9) 。\n它们各自的美味程度之和分别为 4 、8 、8 和 16 ,都是 2 的幂。\n</pre>\n\n<p><strong>示例 2:</strong></p>\n\n<pre>\n<strong>输入:</strong>deliciousness = [1,1,1,3,3,3,7]\n<strong>输出:</strong>15\n<strong>解释:</strong>大餐的美味程度组合为 3 种 (1,1) ,9 种 (1,3) ,和 3 种 (1,7) 。</pre>\n\n<p> </p>\n\n<p><strong>提示:</strong></p>\n\n<ul>\n\t<li><code>1 <= deliciousness.length <= 10<sup>5</sup></code></li>\n\t<li><code>0 <= deliciousness[i] <= 2<sup>20</sup></code></li>\n</ul>\n",
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"Note that the number of powers of 2 is at most 21 so this turns the problem to a classic find the number of pairs that sum to a certain value but for 21 values",
"You need to use something fasters than the NlogN approach since there is already the log of iterating over the powers so one idea is two pointers"
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"isSubscribed": false,
"isDailyQuestion": false,
"dailyRecordStatus": null,
"editorType": "CKEDITOR",
"ugcQuestionId": null,
"style": "LEETCODE",
"exampleTestcases": "[1,3,5,7,9]\n[1,1,1,3,3,3,7]",
"__typename": "QuestionNode"
}
}
}
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