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Using data mining technology to solve classification problems A case study of campus digital library

机译:利用数据挖掘技术解决分类问题-以校园数字图书馆为例

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Purpose - Traditional library catalogs have become inefficient and inconvenient in assisting library users. Readers may spend a lot of time searching library materials via printed catalogs. Readers need an intelligent and innovative solution to overcome this problem. The paper seeks to examine data mining technology which is a good approach to fulfill readers' requirements. Design/methodology/approach - Data mining is considered to be the non-trivial extraction of implicit, previously unknown, and potentially useful information from data This paper analyzes readers' borrowing records using the techniques of data analysis, building a data warehouse, and data mining. Findings - The paper finds that after mining data, readers can be classified into different groups according to the publications in which they are interested. Some people on the campus also have a greater preference for multimedia data. Originality/value - The data mining results shows that all readers can be categorized into five clusters, and each cluster has its own characteristics. The frequency with which graduates and associate researchers borrow multimedia data is much higher. This phenomenon shows that these readers have a higher preference for accepting digitized publications.Also, the number of readers borrowing multimedia data has increased over the years. This trend indicates that readers preferences are gradually shifting towards reading digital publications.
机译:目的-传统图书馆目录在帮助图书馆用户方面变得效率低下且不便。读者可能会花费大量时间通过印刷目录来搜索图书馆资料。读者需要一个智能且创新的解决方案来克服此问题。本文试图研究数据挖掘技术,这是一种满足读者需求的好方法。设计/方法/方法-数据挖掘被认为是从数据中隐式获取,以前未知且可能有用的信息的非平凡提取本文使用数据分析,构建数据仓库和数据的技术来分析读者的借阅记录矿业。调查结果-该论文发现,在挖掘数据之后,可以根据感兴趣的出版物将读者分为不同的类别。校园中的某些人也更喜欢多媒体数据。原创性/价值-数据挖掘结果表明,所有读者都可以分为五个类,每个类都有自己的特点。毕业生和副研究员借阅多媒体数据的频率要高得多。这种现象表明,这些读者更倾向于接受数字化出版物。此外,近年来借阅多媒体数据的读者数量也在增加。这种趋势表明,读者的喜好正在逐渐转向阅读数字出版物。

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