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首页> 外文期刊>Journal of biomedical informatics. >Dynamic sub-ontology evolution for traditional Chinese medicine web ontology.
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Dynamic sub-ontology evolution for traditional Chinese medicine web ontology.

机译:中医网络本体的动态亚本体进化。

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摘要

As a form of important domain knowledge, large-scale ontologies play a critical role in building a large variety of knowledge-based systems. To overcome the problem of semantic heterogeneity and encode domain knowledge in reusable format, a large-scale and well-defined ontology is also required in the traditional Chinese medicine discipline. We argue that to meet the on-demand and scalability requirement ontology-based systems should go beyond the use of static ontology and be able to self-evolve and specialize for the domain knowledge they possess. In particular, we refer to the context-specific portions from large-scale ontologies like the traditional Chinese medicine ontology as sub-ontologies. Ontology-based systems are able to reuse sub-ontologies in local repository called ontology cache. In order to improve the overall performance of ontology cache, we propose to evolve sub-ontologies in ontology cache to optimize the knowledge structure of sub-ontologies. Moreover, we present the sub-ontology evolution approach based on a genetic algorithm for reusing large-scale ontologies. We evaluate the proposed evolution approach with the traditional Chinese medicine ontology and obtain promising results.
机译:作为重要领域知识的一种形式,大规模本体在构建各种基于知识的系统中起着至关重要的作用。为了克服语义异质性的问题并以可重用的格式对领域知识进行编码,中医学科也需要大规模且定义明确的本体。我们认为,要满足按需和可伸缩性的需求,基于本体的系统应该超越静态本体的使用范围,并且能够自我发展并专门研究其拥有的领域知识。尤其是,我们将诸如传统中医本体之类的大规模本体中特定于上下文的部分称为子本体。基于本体的系统能够重用本地存储库中称为本体缓存的子本体。为了提高本体缓存的整体性能,我们提出在本体缓存中发展子本体,以优化子本体的知识结构。此外,我们提出了一种基于遗传算法的子本体进化方法,用于重用大规模本体。我们用中医本体论评估了提出的进化方法,并获得了可喜的结果。

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