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The Strategies for Supporting Query Specialization and Query Generalization in Social Tagging Systems

机译:社会标签系统中支持查询专业化和查询通用化的策略

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摘要

In this paper, we design a tag ranking method to provide multi-level keyword suggestion. The suggested keywords are used to effectively filter query results, which helps users to perform query specialization in social tagging systems. Besides, error-tolerant set containment queries are used to support various degrees of query generalization. We propose an index structure, which aggregates similar tag sets into clusters. A bounding mechanism is provided to efficiently deal with query processing for error-tolerant set containment queries on tag sets. These strategies can be used to support generalizations of a query. A systematic performance study is performed to show the effectiveness and the efficiency of the proposed methods.
机译:在本文中,我们设计了一种标签排名方法来提供多级关键字建议。建议的关键字用于有效过滤查询结果,从而帮助用户在社交标签系统中执行查询专业化。此外,容错集包含查询用于支持各种程度的查询泛化。我们提出了一种索引结构,该结构将相似的标签集聚合到群集中。提供了一种限制机制,可有效处理标签集上的容错集包含查询的查询处理。这些策略可用于支持查询的概括。进行了系统的性能研究,以显示所提出方法的有效性和效率。

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