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Automated product taxonomy mapping in an e-commerce environment

机译:电子商务环境中的自动化产品分类映射

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摘要

Over the last few years, we have experienced a steady growth in e-commerce. This growth introduces many problems for services that want to aggregate product information and offerings. One of the problems that aggregation services face is the matching of product categories from different Web shops. This paper proposes an algorithm to perform this task automatically, making it possible to aggregate product information from multiple Web sites, in order to deploy it for search, comparison, or recommender systems applications. The algorithm uses word sense disambiguation techniques to address varying denominations between different taxonomies. Path similarity is assessed between source and candidate target categories, based on lexical relatedness and structural information. The main focus of the proposed solution is to improve the disambiguation procedure in comparison to an existing state-of-the-art approach, while coping with product taxonomy-specific characteristics, like composite categories, and re-examining lexical similarity and similarity aggregation in this context. The performance evaluation based on data from three real-world Web shops demonstrates that the proposed algorithm improves the bench-marked approach by 62% on average F_1-measure.
机译:在过去的几年中,我们在电子商务方面经历了稳定的增长。这种增长为想要汇总产品信息和产品的服务带来了许多问题。聚合服务面临的问题之一是来自不同Web商店的产品类别的匹配。本文提出了一种算法来自动执行此任务,从而可以聚合来自多个网站的产品信息,以便将其部署到搜索,比较或推荐系统应用程序中。该算法使用词义消歧技术来解决不同分类法之间的不同面额。基于词汇相关性和结构信息,评估来源和候选目标类别之间的路径相似性。提出的解决方案的主要重点是与现有的最新方法相比,改进消歧过程,同时应对产品分类标准的特定特征(如复合类别),并重新检查词法相似性和相似性聚合。在这种情况下。基于来自三个真实世界网店的数据进行的性能评估表明,该算法将基准方法的平均F_1量度提高了62%。

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