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A proposed system for segmentation of information sources in portals and search engines repositories

机译:建议系统,用于在门户网站和搜索引擎存储库中分割信息来源

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In nowadays, there is a huge volume of information on the web, which is disseminated to the users in a chaotic way. In order to be easily accessed, the information must be clustered and classified in appropriate knowledge areas. Thus, many heavily visited sites or Portals try to unify the access to multiple information sources, providing by this way classification of information. This paper proposes a system, aiming to classify e-commerce sites according their web-content. This system can be implemented for automatic knowledge segmentation in a Portal or in a search engine repository. The system performance reached 96% in the first test sets, after the learning phase. However, the performance significantly increases (up to 98%) as the number of the test sets increases.
机译:在如今,网站上有大量信息,这些信息以混沌方式传播给用户。为了轻松访问,必须在适当的知识区域中群集和分类信息。因此,许多重大访问的站点或门户网站尝试统一对多个信息源的访问,通过这种方式提供信息的分类。本文提出了一个系统,旨在根据其网上内容对电子商务网站进行分类。该系统可以在门户或搜索引擎存储库中实现用于自动知识分段。在学习阶段之后,第一个测试集中的系统性能达到96%。然而,随着测试集的数量增加,性能显着增加(高达98%)。

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