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Cross-Document Contextual Coreference Resolution in Knowledge Graphs

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arxiv 2504.05767 v1 pith:ELA5CSWK submitted 2025-04-08 cs.CL cs.MA

Cross-Document Contextual Coreference Resolution in Knowledge Graphs

classification cs.CL cs.MA
keywords knowledgecoreferenceresolutionacrosscontextualentitiesgraphsinformation
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Coreference resolution across multiple documents poses a significant challenge in natural language processing, particularly within the domain of knowledge graphs. This study introduces an innovative method aimed at identifying and resolving references to the same entities that appear across differing texts, thus enhancing the coherence and collaboration of information. Our method employs a dynamic linking mechanism that associates entities in the knowledge graph with their corresponding textual mentions. By utilizing contextual embeddings along with graph-based inference strategies, we effectively capture the relationships and interactions among entities, thereby improving the accuracy of coreference resolution. Rigorous evaluations on various benchmark datasets highlight notable advancements in our approach over traditional methodologies. The results showcase how the contextual information derived from knowledge graphs enhances the understanding of complex relationships across documents, leading to better entity linking and information extraction capabilities in applications driven by knowledge. Our technique demonstrates substantial improvements in both precision and recall, underscoring its effectiveness in the area of cross-document coreference resolution.

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