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Decision support for the academic library acquisition budget allocation via circulation database mining

机译:通过流通数据库挖掘为高校图书馆购置预算分配提供决策支持

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Many approaches to decision support for the academic library acquisition budget allocation have been proposed to diversely reflect the management requirements. Different from these methods that focus mainly on either statistical analysis or goal programming, this paper introduces a model (ABAMDM, acquisition budget allocation model via data mining) that addresses the use of descriptive knowledge discovered in the historical circulation data explicitly to support allocating library acquisition budget. The major concern in this study is that the budget allocation should be able to reflect a requirement that the more a department makes use of its acquired materials in the present academic year, the more it can get budget for the coming year. The primary output of the ABAMDM used to derive weights of acquisition budget allocation contains two parts. One is the descriptive knowledge via utilization concentration and the other is the suitability via utilization connection for departments concerned. An application to the library of Kun Shan University of Technology was described to demonstrate the introduced ABAMDM in practice.
机译:已经提出了许多为高校图书馆购置预算分配提供决策支持的方法,以多样化地反映管理要求。与这些主要侧重于统计分析或目标规划的方法不同,本文引入了一个模型(ABAMDM,通过数据挖掘的购置预算分配模型),该模型明确地利用了在历史流通数据中发现的描述性知识来支持分配图书馆的购置。预算。这项研究的主要关注点是预算分配应该能够反映一个要求,即一个部门在当前学年中更多地利用其获得的材料,来年就可以获得更多的预算。 ABAMDM的主要输出用于得出购置预算分配的权重,包括两个部分。一个是通过利用集中来描述的知识,另一个是通过利用联系对有关部门的适用性。描述了一种在昆山理工大学图书馆中的应用程序,以在实践中演示引入的ABAMDM。

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