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Understanding and predicting what influence online product sales? A neural network approach

机译:了解和预测在线产品销售的影响? 神经网络方法

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摘要

Understanding the factors that influence sales is important for online sellers to manage their supply chains. This study aims to examine the roles of online reviews and reviewer characteristics in predicting product sales. With Amazon.com data captured using our big data architecture, this study performs sentiment analysis to measure the sentiment strength and polarity of review content. The predicting powers of sentiment together with other variables are then examined using neural network analysis. The results indicate that all the proposed variables are important predictors of online sales, and among them helpful votes of reviewer and picture of reviewer are the most influential ones. The findings of this study can be helpful for online sellers to manage their businesses, and the big data architecture and methodology can be generalised into other research contexts.
机译:了解影响销售的因素对在线销售人员来说很重要,以管理供应链。 本研究旨在审查在线评审和审核特征在预测产品销售方面的作用。 使用我们的大数据架构捕获的Amazon.com数据,本研究表现出情感分析,以测量审查内容的情绪强度和极性。 然后使用神经网络分析检查与其他变量的致情绪的预测能力。 结果表明,所有提议的变量都是在线销售的重要预测因子,其中包括审阅者的投票和审阅者的图片是最有影响力的投票。 本研究的调查结果有助于在线销售商管理业务,大数据架构和方法可以广泛地推向其他研究环境。

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