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An Improved Apriori Algorithm Applied to Mining Ancient Chinese Poems

机译:一种改进的Apriori算法应用于矿山古代诗歌

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Based on the study of classical Apriori algorithm, this paper makes a comparison between FP-tree algorithm and Eclat algorithm, analyzes the basic principles of the three algorithms and their respective advantages and disadvantages. After the research on the algorithms, the author finds that time and space optimization can not have both. So the author puts forward an improved algorithm with the conception of importance inspired by the rules of Chinese poems, and puts forward the concept of “importance degree” with examples. Compared to the classic Apriori algorithm, the new improved algorithm ignores some association rules that are not concerned by the user, and greatly reduces the generation of two candidate items. The running speed of the program is increased by up to hundreds of times in the testing process. The improved algorithm can be applied to explore the association rules of the characters in Chinese poems, which is of great significance to the study of ancient poetry and grammar.
机译:基于经典APRIORI算法的研究,本文进行了FP树算法和Eclat算法的比较,分析了三种算法的基本原理及其各自的优缺点。在对算法的研究之后,作者发现时间和空间优化不能两者。因此,提交人提出了一种改进的算法,其重要性受到中国诗规则的重要性,并提出了“重要程度”的概念。与经典的APRIORI算法相比,新的改进算法忽略了用户不关心的一些关联规则,并且大大减少了两个候选项目的生成。在测试过程中,程序的运行速度增加到数百次。改进的算法可以应用于探索中国诗歌中人物的关联规则,这对古代诗歌和语法的研究具有重要意义。

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