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A Knowledge-based Question Answering System For B2c Ecommerce

机译:基于知识的B2c电子商务问答系统

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摘要

The evolution of Business-to-Consumer (B2C) eCommerce has been formed through various generations. Last models of B2C eCommerce are comparative shopping systems that connect to multiple vendors' databases and collect the information requested by the user. The comparative result obtained is then displayed in a tabular format in the user's browser. Although this scenario is much better than the multiple manual site comparisons, user still needs to face inconsistent user interfaces when he is linked from the comparison site to the actual purchasing site for shopping. Therefore, user has to learn logics of each site's user interface. In this paper, we propose a question answering system based on natural language processing techniques for retail (B2C) in eCommerce. This system gets a question in natural language formats, decomposes it to keywords, and extracts constraints automatically. Corresponding answers are then retrieved from the vendors' Web sites by exploiting the question constraints.
机译:企业对消费者(B2C)电子商务的发展历经了几代人的发展。 B2C电子商务的最新模型是比较购物系统,该系统连接到多个供应商的数据库并收集用户请求的信息。然后,将获得的比较结果以表格格式显示在用户的浏览器中。尽管此方案比进行多个手动站点比较要好得多,但是当用户从比较站点链接到实际的购买站点进行购物时,仍然需要面对不一致的用户界面。因此,用户必须学习每个站点的用户界面的逻辑。在本文中,我们提出了一种基于自然语言处理技术的电子商务零售业(B2C)的问答系统。该系统以自然语言格式获取问题,将其分解为关键字,并自动提取约束。然后,通过利用问题约束条件从供应商的网站中检索相应的答案。

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