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End-to-End Product Taxonomy Extension from Text Reviews

机译:终端产品分类文字介绍

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Product ontologies - consisting of a taxonomic categorization of product types and lists of attributes that types and products have - are invaluable for analyzing sales, opinions and ratings of items on e-commerce sites. Unfortunately, many international and smaller sites lack such ontologies, and instead feature only coarse high-level categories. We present a Siamese neural model which utilizes such coarse categories to learn a fine-grained hierarchical categorization of products, and jointly extract lists of product attributes from text reviews. We show that our model retains a high accuracy on the categorization task for unseen products and unseen category depths, and as a side effect learns to extract useful product attributes.
机译:产品本体 - 由类型和产品的产品类型和属性列表组成 - 对于分析电子商务网站上的物品的销售,意见和评级,是非常宝贵的。不幸的是,许多国际和较小的网站缺乏此类本体,而是只有粗高的高级类别。我们提出了一个暹罗神经模型,它利用这种粗大类别来学习产品的细粒度分类,并联合提取文本评论的产品属性列表。我们展示我们的模型对未经证明产品和看不见的类别深度的分类任务保留了高精度,并且随着副作用,学会提取有用的产品属性。

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