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Improving ontology alignment through memetic algorithms

机译:通过模因算法改善本体对齐

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Born primarily as means to model knowledge, ontologies have successfully been exploited to enable knowledge exchange among people, organizations and software agents. However, because of strong subjectivity of ontology modeling, a matching process is necessary in order to lead ontologies into mutual agreement and obtain the relative alignment, i.e., the set of correspondences among them. The aim of this paper is to propose a memetic algorithm to perform an automatic matching process capable of computing a suboptimal alignment between two ontologies. To achieve this aim, the ontology alignment problem has been formulated as a minimum optimization problem characterized by an objective function depending on a fuzzy similarity. As shown in the performed experiments, the memetic approach results more suitable for ontology alignment problem than other evolutionary techniques such as genetic algorithms.
机译:本体主要作为建模知识的手段而诞生,已成功地利用本体来实现人员,组织和软件代理之间的知识交换。但是,由于本体建模的强烈主观性,必须进行匹配处理,以使本体达成相互一致并获得相对对齐,即它们之间的对应关系集。本文的目的是提出一种模因算法,以执行能够计算两个本体之间次优对齐的自动匹配过程。为了实现该目的,已经将本体对准问题表述为最小模糊问题,其特征在于取决于模糊相似度的目标函数。如进行的实验所示,与其他进化技术(例如遗传算法)相比,模因方法的结果更适合于本体对齐问题。

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