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Location-Based Context Retrieval and Filtering

机译:基于位置的上下文检索和过滤

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摘要

Context-based applications are supposed to decrease human-machine interactions. To this end, they must interpret the meaning of context data. Ontologies are a commonly accepted approach of specifying data semantics and are thus considered a precondition for the implementation of context-based systems. Yet, experiences gained from the European project Daidalos evoke concerns that this approach has its flaws when the application domain can hardly be delimited. These concerns are raised by the human limitation in dealing with complex specifications. This paper proposes a relaxation of the situation: Humans strength is the understating of natural languages, computers, however, possess superior pattern matching power. Therefore, it is suggested to enrich or even replace semantic specifications of context data items by free-text descriptions. For instance, rather than using an Ontology specification to describe an Italian restaurant the restaurant can simply be described by its menu card. To facilitate this methodology, context documents are introduced and a novel information retrieval approach is elucidated, evaluated, and analysed with the help of Bose-Einstein statistics. It is demonstrated that the new approach clearly outperforms conventional information retrieval engines and is an excellent addition to context Ontologies.
机译:基于上下文的应用程序应该减少人机交互。为此,他们必须解释上下文数据的含义。本体是指定数据语义的一种普遍接受的方法,因此被认为是实现基于上下文的系统的前提。然而,从欧洲Daidalos项目中获得的经验令人担忧,即当应用领域难以界定时,这种方法存在缺陷。这些担忧是由于在处理复杂规范方面的人为限制而引起的。本文提出了一种放松的情况:人类的力量是对自然语言的低估,但是计算机拥有卓越的模式匹配能力。因此,建议通过自由文本描述来丰富甚至替换上下文数据项的语义规范。例如,与其使用本体规范来描述意大利餐厅,不如简单地通过其菜单卡来描述餐厅。为了简化此方法,引入了上下文文档,并借助Bose-Einstein统计数据阐明,评估和分析了一种新颖的信息检索方法。事实证明,新方法明显优于传统的信息检索引擎,并且是上下文本体的绝佳补充。

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