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Expanding Knowledge Source with Ontology Alignment for Augmented Cognition

机译:扩展具有本体对齐的知识源,用于增强认知

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Augmented cognition on sensory data requires knowledge sources to expand the abilities of human senses. Ontologies are one of the most suitable knowledge sources, since they are designed to represent human knowledge and a number of ontologies on diverse domains can cover various objects in human life. To adopt ontologies as knowledge sources for augmented cognition, various ontologies for a single domain should be merged to prevent noisy and redundant information. This paper proposes a novel composite kernel to merge heterogeneous ontologies. The proposed kernel consists of lexical and graph kernels specialized to reflect structural and lexical information of ontology entities. In experiments, the composite kernel handles both structural and lexical information on ontologies more efficiently than other kernels designed to deal with general graph structures. The experimental results also show that the proposed kernel achieves the comparable performance with top-five systems in OAEI 2010.
机译:在感官数据上增强认知需要知识来源扩大人类感官的能力。本体是最合适的知识来源之一,因为它们旨在代表人类知识,并且各个域的许多本体可以涵盖人类生活中的各种物体。要采用本体论作为增强认知的知识来源,应合并单个域的各种本体,以防止嘈杂和冗余信息。本文提出了一种新型复合核以合并异质本体。建议的内核由专门反映本体实体的结构和词汇信息的词汇和图形内核组成。在实验中,复合内核比旨在处理一般图结构的其他内核更有效地处理在本体上的结构和词法信息。实验结果还表明,拟议的内核实现了OAII 2010年前五种系统的可比性。

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