Impact of Semantic Granularity on Geographic Information Search Support

Noemi Mauro, L. Ardissono, Laura Di Rocco, M. Bertolotto, G. Guerrini
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引用次数: 4

Abstract

The Information Retrieval research has used semantics to provide accurate search results, but the analysis of conceptual abstraction has mainly focused on information integration. We consider session-based query expansion in Geographical Information Retrieval, and investigate the impact of semantic granularity (i.e., specificity of concepts representation) on the suggestion of relevant types of information to search for. We study how different levels of detail in knowledge representation influence the capability of guiding the user in the exploration of a complex information space. A comparative analysis of the performance of a query expansion model, using three spatial ontologies defined at different semantic granularity levels, reveals that a fine-grained representation enhances recall. However, precision depends on how closely the ontologies match the way people conceptualize and verbally describe the geographic space.
语义粒度对地理信息搜索支持的影响
信息检索的研究主要是利用语义提供准确的检索结果,而概念抽象的分析主要集中在信息集成上。我们考虑了地理信息检索中基于会话的查询扩展,并研究了语义粒度(即概念表示的特异性)对搜索相关信息类型建议的影响。我们研究了知识表示中不同层次的细节如何影响引导用户探索复杂信息空间的能力。使用在不同语义粒度级别定义的三个空间本体对查询扩展模型的性能进行了比较分析,结果表明,细粒度表示增强了召回率。然而,精度取决于本体与人们概念化和口头描述地理空间的方式的匹配程度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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