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Modeling Contextual Changes in User Behaviour in Fashion e-Commerce

机译:建模时尚电子商务中用户行为的上下文变化

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Impulse purchases are quite frequent in fashion e-commerce; browse patterns indicate fluid context changes across diverse product types probably due to the lack of a well-defined need at the consumer's end. Data from our fashion e-commerce portal indicate that the final product a person ends-up purchasing is often very different from the initial product he/she started the session with. We refer to this characteristic as a 'context change'. This feature of fashion e-commerce makes understanding and predicting user behaviour quite challenging. Our work attempts to model this characteristic so as to both detect and preempt context changes. Our approach employs a deep Gated Recurrent Unit (GRU) over clickstream data. We show that this model captures context changes better than other non-sequential baseline models.
机译:在时尚电子商务中,冲动购买非常频繁。浏览模式表明,可能是由于消费者端缺乏明确定义的需求,导致跨多种产品类型的流畅上下文变化。来自我们的时尚电子商务门户网站的数据表明,一个人最终购买的最终产品通常与开始会话时所使用的初始产品有很大差异。我们将此特征称为“上下文更改”。时尚电子商务的这一特征使理解和预测用户行为颇具挑战性。我们的工作试图对该特征进行建模,以便检测和抢占上下文更改。我们的方法对点击流数据采用了深度门控循环单元(GRU)。我们证明,与其他非顺序基线模型相比,该模型更好地捕获了上下文变化。

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