首页> 外文会议>Fourth International Conference on Flexible Query Answering Systems, FQAS'2000, Oct 25-28, 2000, Warsaw, Poland >Integrating and Extending Fuzzy Clustering and Inferencing to Improve Text Retrieval Performance
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Integrating and Extending Fuzzy Clustering and Inferencing to Improve Text Retrieval Performance

机译:集成和扩展模糊聚类和推理,以提高文本检索性能

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We present an integrated approach to information retrieval, which combines fuzzy clustering and fuzzy inference in order to improve textual retrieval performance. We capture the relationships among index terms by using fuzzy logic rules (with truth value assignment in [0,1]). We adapt fuzzy clustering methods (e.g., fuzzy c-means and fuzzy hierarchical clustering) in order to cluster documents with respect to the terms. The clusters generated provide a basis for building fuzzy logic rules concerning the terms, and the clusters can also be used to form hyperlinks between documents. The fuzzy logic rules are applied via fuzzy inference in order to derive query modification. In addition, relevance feedback is discussed as an alternative way to employ the fuzzy clusters. We explore retrieving an entire fuzzy cluster in response to a query. Finally, we note the need to test this approach more thoroughly on a larger standard test bed.
机译:我们提出了一种综合的信息检索方法,该方法将模糊聚类和模糊推理相结合,以提高文本检索性能。我们使用模糊逻辑规则(在[0,1]中使用真值分配)来捕获索引项之间的关系。我们采用模糊聚类方法(例如,模糊c均值和模糊层次聚类)以针对术语对文档进行聚类。生成的聚类为构建有关术语的模糊逻辑规则提供了基础,并且聚类也可用于形成文档之间的超链接。通过模糊推理应用模糊逻辑规则,以得出查询修改。另外,相关性反馈被讨论为采用模糊聚类的替代方法。我们探索响应查询来检索整个模糊聚类。最后,我们注意到有必要在更大的标准测试床上进行更彻底的测试。

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