首页> 外文会议>Intelligent Ubiquitous Computing and Education, 2009. IUCE 2009. >ARTMAP-Based Data Mining Approach and Its Application to Library Book Recommendation
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ARTMAP-Based Data Mining Approach and Its Application to Library Book Recommendation

机译:基于ARTMAP的数据挖掘方法及其在图书馆推荐书中的应用

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To overcome some disadvantages of the conventional data mining methods, a model based-approach to data mining by using supervised ARTMAP neural network is proposed and applied to a library book recommendation system. The proposed algorithm is based on formation of reference vectors that make a data mining system able to classify user profile patterns into classes of similar profiles, which forms the basis of a library book recommendation system. A correspondent computer program is developed by using C++ language. To evaluate the performance of the presented approach, the book circulation data of a university library is collected and used for the developed program. Simulation experiment results show that the ARTMAP network provides better performance than both ART2 network and the popular memory-based neighborhood algorithm.
机译:为了克服传统数据挖掘方法的一些弊端,提出了一种基于模型的监督式ARTMAP神经网络数据挖掘方法,并将其应用于图书馆图书推荐系统。所提出的算法基于参考向量的形成,该参考向量使数据挖掘系统能够将用户配置文件模式分类为相似配置文件的类别,这构成了图书馆图书推荐系统的基础。通过使用C ++语言开发相应的计算机程序。为了评估所提出方法的性能,收集了大学图书馆的图书发行数据并将其用于开发的程序。仿真实验结果表明,ARTMAP网络的性能优于ART2网络和流行的基于内存的邻域算法。

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