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Semantic and structural similarities between XML Schemas for integration of ubiquitous healthcare data

机译:XML模式之间的语义和结构相似性,用于集成无处不在的医疗数据

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摘要

Currently, a lot of recent electronic health records are based on XML documents. In order to integrate these heterogeneous XML medical documents efficiently, studies on finding structure and semantic similarity between XML Schemas have been exploited. The main problem is how to harvest the most appropriate relatedness to combine two schemas as a global XML Schema for reusing and referring purposes. In this paper, we propose the novel resemblance measure that concurrently considers both structural and semantic information of two specific healthcare XML Schemas. Specifically, we introduce new metrics to compute the datatype and cardinality constraint similarities, which improve the quality of the semantic assessment. On the basis of the similarity between each element pair, we put forward an algorithm to calculate the similarity between XML Schema trees. Experimental results lead to the conclusion that our methodology provides better similarity values than the others with regard to the accuracy of semantic and structure similarities.
机译:当前,许多最近的电子健康记录都基于XML文档。为了有效地集成这些异构XML医学文档,已经对寻找XML模式之间的结构和语义相似性进行了研究。主要问题是如何获取最合适的相关性,以将两个模式组合为一个全局XML Schema,以实现重用和引用目的。在本文中,我们提出了一种新颖的相似性度量,它同时考虑了两个特定医疗XML Schema的结构和语义信息。具体来说,我们引入了新的指标来计算数据类型和基数约束相似度,从而提高了语义评估的质量。基于每个元素对之间的相似度,我们提出了一种计算XML Schema树之间相似度的算法。实验结果得出的结论是,就语义和结构相似性的准确性而言,我们的方法提供了比其他方法更好的相似性值。

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