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Discovering Multiple-Level Association Rules from Transactional Databases with Consideration of Temporal Characteristics of Products' Discounts Rates

机译:通过考虑产品折扣率的时间特征,从事务数据库中发现多级关联规则

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摘要

Due to the development of information systems and technology, businesses increasingly have the capability to accumulate huge amounts of retail data in large databases. In the recent marketing research, products' discounts have rarely been considered as an important decision variable. Although few researches have analyzed the effect of discount on sales, they ignore its temporal characteristics. That is, in real world, each product may appear with different discounts rates in different time periods. Moreover, they have considered discount at single concept level. Therefore, the discovered knowledge is less concrete and implementation of the results of analyses become difficult. The problem addressed in this paper is the consideration of products' discounts in discovering multiple-level association rules in different time intervals that a specific discount appears on a specific product. The proposed algorithm makes it possible to acquire more concrete and specific knowledge corresponding to association between products and their discounts as well as implementation of its results.
机译:由于信息系统和技术的发展,企业越来越具有积累大型数据库中零售数据的能力。在最近的营销研究中,产品的折扣很少被视为一个重要的决策变量。虽然少数研究已经分析了销售折扣的效果,但它们忽略了其时间特征。也就是说,在现实世界中,每个产品在不同的时间段中可能出现不同的折扣率。此外,他们在单一概念级别考虑了折扣。因此,发现的知识不太具体,分析结果的实施变得困难。本文解决的问题是考虑在特定产品上显示特定时间间隔的多级关联规则方面的产品折扣。该算法可以获得与产品及其折扣之间的关联相对应的更具体和特定的知识,以及其结果的实施。

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