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Characterization and analysis of sales data for the semiconductor market: An expert system approach

机译:半导体市场销售数据的表征和分析:专家系统方法

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摘要

Chip purchasing policies of the Original Equipment Manufacturers (OEMs) of laptop computers are characterized by similarity measures and probabilistic rules. Our main goal is to build an expert system for predicting purchasing behavior in the semiconductor market. The probabilistic rules and similarity measures are extracted from data of products bought by the OEMs in the semiconductor market over twenty quarters. We present the data collected and different qualitative data mining approaches to analyze and extract rules from the data that best characterize the purchasing behavior of the OEMs. Our analysis of the similar product selection shows that there are two main groups of OEMs buying similar products. Using our probabilistic rules, we obtain an average score of approximately 95% reconstructing quarterly data for a one year window.
机译:便携式计算机原始设备制造商(OEM)的芯片购买策略具有相似性度量和概率规则的特征。我们的主要目标是建立一个预测半导体市场购买行为的专家系统。概率规则和相似性度量是从原始设备制造商在半导体市场上超过二十个季度购买的产品数据中提取的。我们介绍了收集的数据和不同的定性数据挖掘方法,以分析和提取最能代表OEM购买行为特征的数据中的规则。我们对相似​​产品选择的分析表明,有两组主要的OEM购买相似产品。使用我们的概率规则,我们获得一年窗口内重建季度数据的平均得分约为95%。

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