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Myriad- a Novel User Feedback Based Metasearch Engine

机译:MYRIAD-基于新的用户反馈的METASEARCH引擎

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Metasearch engine is a system that provides unified access to multiple existing search engines. After the results returned from all used component search engines are collected, the metasearch system merges the results into a single ranked list which is expected to be better than the results of the best of the participating search systems. The success of a metasearch engine depends mainly on their rank aggregation method. The system is a better one, if the aggregated list of results displayed before the user satisfies the user with his information need. In this paper, we discuss the development of a metasearch engine that performs user feedback based metasearching using modified rough set based aggregation. Metasearching using the modified rough set based aggregation is performed in two phases namely the ranking rule learning phase and the rank aggregation phase. For each query in the training set, we mine the ranking rules and select the best rules-set by performing cross-validation test. Once the system is trained, we use the best rule set to get the overall ranking for the results returned from different search systems in response to other queries. We also present few snapshots of our system.
机译:Metasearch引擎是一个提供对多个现有搜索引擎的统一访问的系统。收集了从所有二手组件搜索引擎返回的结果后,Metasearch系统将结果合并到一个排名列表中,预计将优于参与搜索系统的最佳结果。 Metasearch引擎的成功主要取决于他们的排名聚集方法。如果在用户之前显示的汇总结果,系统是更好的,如果在用户满足用户信息之前满足用户。在本文中,我们讨论了使用基于修改的粗糙集的聚合来执行基于用户反馈的MetaSearch的Metasearch引擎的开发。使用基于修改的粗糙集的聚合的元素搜索以两个相位执行,即排名规则学习阶段和排名聚合阶段。对于培训集中的每个查询,我们通过执行交叉验证测试来挖掘排名规则并选择最佳规则集。培训系统后,我们使用最佳规则集来获得从不同搜索系统返回的结果的整体排名,以响应其他查询。我们还提出了一些我们系统的快照。

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