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OntoMerger: An Ontology Integration Library for Deduplicating and Connecting Knowledge Graph Nodes

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arxiv 2206.02238 v1 pith:ZEF4WSJG submitted 2022-06-05 cs.AI cs.LGcs.SC

OntoMerger: An Ontology Integration Library for Deduplicating and Connecting Knowledge Graph Nodes

classification cs.AI cs.LGcs.SC
keywords nodesontomergerlibraryduplicationfunctionalitygraphintegrationknowledge
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Duplication of nodes is a common problem encountered when building knowledge graphs (KGs) from heterogeneous datasets, where it is crucial to be able to merge nodes having the same meaning. OntoMerger is a Python ontology integration library whose functionality is to deduplicate KG nodes. Our approach takes a set of KG nodes, mappings and disconnected hierarchies and generates a set of merged nodes together with a connected hierarchy. In addition, the library provides analytic and data testing functionalities that can be used to fine-tune the inputs, further reducing duplication, and to increase connectivity of the output graph. OntoMerger can be applied to a wide variety of ontologies and KGs. In this paper we introduce OntoMerger and illustrate its functionality on a real-world biomedical KG.

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