基于数据约简方法的产品销售速度和产品推荐结构建模

R. Pasichnyk, B. Maslyyak, V. Vitsentiy
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引用次数: 2

摘要

本文提出了一种选择最具信息量的产品参数的算法,从而可以预测产品的销售速度。该方法是在数据挖掘过程的帮助下,基于销售的统计信息。构建的决策树允许根据其属性值将可分析产品引用到销售速度集群。决策树结构为新产品开发提供了关于产品的哪些属性对销售影响最大的信息。它为设计人员提供直接搜索。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modeling of products sale velocity and products recommended structure on the basis of a data reduction method
This article presents an algorithm for the selection of the most informative product parameters, so that the product sale velocity can be predicted. The method is based on statistical information about sales with the help of data mining procedures. The constructed decision tree allows one to refer an analyzable product according to its attribute values to a cluster of sale velocities. A decision tree structure gives developments of new product information about what attributes of products influence sales most essentially. It provides direct search to the designers.
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