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Ontology Matching Through Absolute Orientation of Embedding Spaces

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arxiv 2204.04040 v1 pith:SWYJDBIQ submitted 2022-04-08 cs.AI cs.DBcs.IRcs.LG

classification cs.AIcs.DBcs.IRcs.LG
keywords approachabsolutedatasetsembeddingmatchingontologiesontologyorientation
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Ontology matching is a core task when creating interoperable and linked open datasets. In this paper, we explore a novel structure-based mapping approach which is based on knowledge graph embeddings: The ontologies to be matched are embedded, and an approach known as absolute orientation is used to align the two embedding spaces. Next to the approach, the paper presents a first, preliminary evaluation using synthetic and real-world datasets. We find in experiments with synthetic data, that the approach works very well on similarly structured graphs; it handles alignment noise better than size and structural differences in the ontologies.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Integration of Contextual Descriptors in Ontology Alignment for Enrichment of Semantic Correspondence

    cs.CL 2024-11 reject novelty 3.0 of 10

    Adding context descriptors to ontology alignment raises similarity scores by about 4.36% in one expert-scored AI ethics experiment, but no external benchmark or statistical test supports the claimed improvement.

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