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Knowledge Graph Refinement based on Triplet BERT-Networks

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arxiv 2211.10460 v1 pith:GABFXQNG submitted 2022-11-18 cs.CL cs.AI

classification cs.CLcs.AI
keywords graphknowledgetripletembeddingrefinementrelationtasksclassification
verification ladder T0 review T1 audit T2 compute T3 formal
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Knowledge graph embedding techniques are widely used for knowledge graph refinement tasks such as graph completion and triple classification. These techniques aim at embedding the entities and relations of a Knowledge Graph (KG) in a low dimensional continuous feature space. This paper adopts a transformer-based triplet network creating an embedding space that clusters the information about an entity or relation in the KG. It creates textual sequences from facts and fine-tunes a triplet network of pre-trained transformer-based language models. It adheres to an evaluation paradigm that relies on an efficient spatial semantic search technique. We show that this evaluation protocol is more adapted to a few-shot setting for the relation prediction task. Our proposed GilBERT method is evaluated on triplet classification and relation prediction tasks on multiple well-known benchmark knowledge graphs such as FB13, WN11, and FB15K. We show that GilBERT achieves better or comparable results to the state-of-the-art performance on these two refinement tasks.

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  1. Flow-Modulated Scoring for Semantic-Aware Knowledge Graph Completion

    cs.CL 2025-06 reject novelty 5.0 of 10

    A relation-prediction model that combines top-K edge message passing with a conditional flow matching auxiliary loss, reporting near-perfect relation prediction and a 25% relative MRR gain in entity prediction.

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