Compact Multitasking Multichromosome Genetic Algorithm for Heuristic Selection in Ontology Matching

被引:0
|
作者
Xue, Xingsi [1 ]
Lin, Jerry Chun-Wei [2 ]
Su, Tong [3 ]
机构
[1] Fujian University of Technology, Fujian Provincial Key Laboratory of Big Data Mining and Applications, Fujian, Fuzhou,350118, China
[2] Silesian University of Technology, Department of Distributed Systems and IT Devices, Akademicka, Gliwice,44-100, Poland
[3] Fujian University of Technology, School of Computer Science and Mathematics, Fujian, Fuzhou,350118, China
来源
基金
中国国家自然科学基金;
关键词
Gene encoding - Gene Ontology - Heuristic algorithms - Interoperability - Job analysis - Semantics;
D O I
10.1109/TAI.2024.3442731
中图分类号
学科分类号
摘要
Ontology matching (OM) is critical for knowledge integration and system interoperability on the semantic web, tasked with identifying semantically related entities across different ontologies. Despite its importance, the complexity of terminology semantics and the large number of potential matches present significant challenges. Existing methods often struggle to balance between accurately capturing the multifaceted nature of semantic relationships and computational efficiency. This work introduces a novel approach, a compact multitasking multichromosome genetic algorithm for Heuristic selection (HS) in OM, designed to navigate the nuanced hierarchical structure of ontologies and diverse entity mapping preferences. Our method combines compact genetic algorithms with multichromosome optimization for entity sequencing and assigning HS, alongside an adaptive knowledge transfer mechanism to finely balance exploration and exploitation efforts. Evaluated on the ontology alignment evaluation initiative's benchmark, our algorithm demonstrates superior ability to produce high-quality ontology alignments efficiently, surpassing comparative methods in both effectiveness and efficiency. These findings underscore the potential of advanced genetic algorithms in enhancing OM processes, offering significant contributions to the broader AI field by improving the interoperability and knowledge integration capabilities of semantic web technologies. © 2024 IEEE.
引用
收藏
页码:6752 / 6766
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