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An Analysis of Multi-type Relational Interactions in FMA Using Graph Motifs with Disjointness Constraints

机译:使用不相交约束的图形母题分析FMA中的多类型关系交互

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摘要

The interaction of multiple types of relationships among anatomical classes in the Foundational Model of Anatomy (FMA) can provide inferred information valuable for quality assurance. This paper introduces a method called Motif Checking (MOCH) to study the effects of such multi-relation type interactions for detecting logical inconsistencies as well as other anomalies represented by the motifs. MOCH represents patterns of multi-type interaction as small labeled (with multiple types of edges) sub-graph motifs, whose nodes represent class variables, and labeled edges represent relational types. By representing FMA as an RDF graph and motifs as SPARQL queries, fragments of FMA are automatically obtained as auditing candidates. Leveraging the scalability and reconfigurability of Semantic Web Technology, we performed exhaustive analyses of a variety of labeled sub-graph motifs. The quality assurance feature of MOCH comes from the distinct use of a subset of the edges of the graph motifs as constraints for disjointness, whereby bringing in rule-based flavor to the approach as well. With possible disjointness implied by antonyms, we performed manual inspection of the resulting FMA fragments and tracked down sources of abnormal inferred conclusions (logical inconsistencies), which are amendable for programmatic revision of the FMA. Our results demonstrate that MOCH provides a unique source of valuable information for quality assurance. Since our approach is general, it is applicable to any ontological system with an OWL representation.
机译:解剖学基础模型(FMA)中的解剖学类之间的多种关系之间的相互作用可以提供对质量保证有价值的推断信息。本文介绍了一种称为Motif Checking(MOCH)的方法,以研究这种多关系类型的交互作用对检测逻辑不一致以及由图案表示的其他异常的影响。 MOCH将多类型交互的模式表示为小标记的(具有多种类型的边缘)子图图案,其子节点表示类变量,而标记的边缘表示关系类型。通过将FMA表示为RDF图,将图案表示为SPARQL查询,可以自动获取FMA的片段作为审核候选对象。利用语义Web技术的可伸缩性和可重新配置性,我们对各种带标签的子图图案进行了详尽的分析。 MOCH的质量保证功能来自于图形图案边缘的一部分子集的独特使用,以作为不相交的约束,从而也为该方法带来了基于规则的风味。在反义词暗示可能存在脱节的情况下,我们对生成的FMA片段进行了手动检查,并跟踪了异常推断结论(逻辑上不一致)的来源,这些结论可用于FMA的程序修订。我们的结果表明,MOCH为质量保证提供了宝贵信息的独特来源。由于我们的方法是通用的,因此它适用于任何具有OWL表示形式的本体系统。

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