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WIDIT: Fusion-Based Approach to Web Search Optimization

机译:WIDIT:基于融合的Web搜索优化方法

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To facilitate both the understanding and the discovery of information, we need to utilize multiple sources of evidence, integrate a variety of methodologies, and combine human capabilities with those of the machine. The Web Information Discovery Integrated Tool (WIDIT) Laboratory at the School of Library and Information Science, Indiana University-Bloomington, houses several projects that employ this idea of multi-level fusion in the areas of information retrieval and knowledge discovery. This paper describes a Web search optimization study by the TREC research group of WIDIT, who explores a fusion-based approach to enhancing retrieval performance on the Web. In the study, we employed both static and dynamic tuning methods to optimize the fusion formula that combines multiple sources of evidence. By static tuning, we refer to the typical stepwise tuning of system parameters based on training data. "Dynamic tuning", the key idea of which is to combine the human intelligence, especially pattern recognition ability, with the computational power of the machine, involves an interactive system tuning process that facilitates fine-tuning of the system parameters based on the cognitive analysis of immediate system feedback. The rest of the paper is organized as follows. The next section discusses related work in Web information retrieval (IR). Section 3 details the WIDIT approach to Web IR, followed by the description of our experiment using the TREC .gov data in section 4 and the discussion of results in section 5.
机译:为了促进对信息的理解和发现,我们需要利用多种证据来源,整合各种方法,并将人的能力与机器的能力相结合。印第安纳大学-布卢明顿分校图书馆和信息科学学院的Web信息发现集成工具(WIDIT)实验室提供了多个项目,这些项目在信息检索和知识发现领域采用了这种多层次融合的思想。本文介绍了WIDIT的TREC研究小组进行的Web搜索优化研究,该小组探索了一种基于融合的方法来增强Web上的检索性能。在研究中,我们采用静态和动态调整方法来优化融合多种证据来源的融合公式。通过静态调整,我们指的是基于训练数据的典型的系统参数逐步调整。 “动态调整”的关键思想是将人类的智能(尤其是模式识别能力)与机器的计算能力相结合,涉及一个交互式的系统调整过程,该过程有助于基于认知分析对系统参数进行精细调整。立即的系统反馈。本文的其余部分安排如下。下一节讨论Web信息检索(IR)中的相关工作。第3节详细介绍了WIDIT的Web IR方法,然后在第4节中使用TREC .gov数据描述了我们的实验,并在第5节中讨论了结果。

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