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Adopting Data Mining Techniques on the Recommendations of Library Collections

机译:在图书馆馆藏推荐书中采用数据挖掘技术

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In this research, the researchers explored not only the cluster of the readers with similar characteristics, but also the connection between the readers and the book collections of the library by using Data Mining techniques. By doing this, the library will be able to improve the interaction with its readers, and further increase the usage of library collections.The Modified Attribute-Oriented Induction (MAOI) method was introduced to deal with the multi-valued attribute table and further sort the readers into different clusters. Instead of using concept hierarchy and concept trees, MAOI method implemented the concept climbing and generalization of multi-valued attribute table with Boolean Algebra and modified Karnaugh Map, and described the clusters with concept description. On the other hand, the Chinese books in the library collections were classified into four groups with New Classification Science for Chinese Libraries (CCL). Not only the attributes of readers, but also the attributes of library collections borrowed by readers are included in the multi-valued attribute table. After the completion of induction, the reading preferences of the readers with the same characteristics can be learned.
机译:在这项研究中,研究人员不仅探索了具有相似特征的读者群体,而且还利用数据挖掘技术探索了读者与图书馆藏书之间的联系。这样,图书馆将能够改善与读者的互动,并进一步提高图书馆馆藏的使用率。引入了面向属性的改进归纳(MAOI)方法来处理多值属性表并进一步排序将读者分为不同的群体。 MAOI方法不是使用概念层次结构和概念树,而是使用布尔代数和经过修改的卡诺图,实现了多值属性表的概念爬升和泛化,并使用概念描述描述了聚类。另一方面,根据《中国图书馆新分类科学》(CCL),将图书馆藏书中的中文书籍分为四类。多值属性表中不仅包括读者的属性,而且还包括读者借用的图书馆藏书的属性。归纳完成后,可以了解具有相同特征的读者的阅读偏好。

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