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A Formal Product Search Model with Ensembled Proximity

机译:具有合奏的邻近的正式产品搜索模型

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In this paper we study the problem of product search, where products are retrieved and ranked based on how their reviews match the query. Current product search systems suffer from the incapability to measure correspondence between a product feature and its desired property. A proximity language model is presented to embed textual adjacency in the frequency based estimation framework. To tailor for product search problem, we explore strategies for distinguishing product feature and desired property, quantifying pair-wise proximity based on conditional probability, and aggregating review opinions at product level. Experiments on a real data set demonstrate good performances of our model.
机译:在本文中,我们研究了产品搜索问题,其中产品被检索并根据其审核如何匹配查询排名。目前的产品搜索系统遭受无法衡量产品特征与其所需属性之间的对应关系。提出了一种接近语言模型以嵌入基于频率的估计框架中的文本邻接。要定制产品搜索问题,我们探讨了区分产品特征和所需属性的策略,根据条件概率量化成对的接近,并在产品级别进行审核意见。实际数据集的实验表明了我们模型的良好表现。

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