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An Evolutionary Tabu Search Algorithm for Matching Biomedical Ontologies

机译:一种匹配生物医学本体的进化塔布搜索算法

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Since these biomedical ontologies are mostly developed independently and many of them cover overlapping domains, establishing meaningful links between them, so-called biomedical ontology matching, is critical to ensure inter-operability and has the potential to unlock biomedical knowledge by bridging related data. Due to the complexity of the biomedical ontology matching problem (large-scale optimal problem with lots of local optimal solutions), Evolutionary Algorithm (EA) can present a good methodology for determining biomedical ontology alignments. However, the slow convergence and premature convergence are two main shortcomings of EA-based ontology matching techniques, which make them incapable of effectively searching the optimal solution for biomedical ontology matching problems. To overcome this drawback, in this paper, an Evolutionary Tabu Search Algorithm (ETSA) is proposed, which introduces the Tabu Search algorithm (TS) as a local search strategy into EA's evolving process. Moreover, to efficiently solve the biomedical ontology matching problem, an biomedical concept similarity measure is presented to calculate the similarity value of two biomedical concepts and an optimal model for biomedical ontology matching is constructed. The experiment is conducted on the Large Biomed track provided by the Ontology Alignment Evaluation Initiative (OAEI), and the comparisons with state-of-the-art ontology matchers show the effectiveness of ETSA.
机译:由于这些生物医学本体主要是独立的,并且其中许多覆盖重叠域,因此在它们之间建立有意义的链接,所谓的生物医学本体匹配是至关重要的,以确保可操作性并且通过桥接相关数据来解锁生物医学知识。由于生物医学本体论匹配问题的复杂性(大规模最佳解决方案的大规模最佳问题),进化算法(EA)可以呈现用于确定生物医学本体对齐的良好方法。然而,缓慢的收敛性和早产是基于EA的本体匹配技术的两个主要缺点,这使得它们无法有效地搜索生物医学本体匹配问题的最佳解决方案。为了克服该缺点,在本文中,提出了一种进化的禁忌搜索算法(ETSA),其将禁忌搜索算法(TS)作为本地搜索策略介绍为EA的不断发展过程。此外,为了有效地解决生物医学本体匹配问题,提出了一种生物医学概念相似度测量来计算两个生物医学概念的相似性值,并且构建了生物医学本体匹配的最佳模型。实验是在本体对准评估倡议(OAEI)提供的大型生物公路轨道上,以及与最先进的本体匹配者的比较显示ETSA的有效性。

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