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Papers

Streamlining Cross-Document Coreference Resolution: Evaluation and Modeling

2020-09-23 · Arie Cattan, Alon Eirew, Gabriel Stanovsky, Mandar Joshi, Ido Dagan

Recent evaluation protocols for Cross-document (CD) coreference resolution have often been inconsistent or lenient, leading to incomparable results across works and overestimation of performance. To facilitate proper future research on this task, our primary contribution is proposing a pragmatic evaluation methodology which assumes access to only raw text -- rather than assuming gold mentions, disregards singleton prediction, and addresses typical targeted settings in CD coreference resolution. Aiming to set baseline results for future research that would follow our evaluation methodology, we build the first end-to-end model for this task. Our model adapts and extends recent neural models for within-document coreference resolution to address the CD coreference setting, which outperforms state-of-the-art results by a significant margin.

📄 PDF Abstract BibTeX arXiv:2009.11032

Code (2)

ariecattan/coref 공식 구현 pytorch
ariecattan/SciCo pytorch

Tasks

coreference-resolutionCoreference ResolutionCross Document Coreference ResolutionEntity Cross-Document Coreference ResolutionEvent Cross-Document Coreference Resolution

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Coreference Resolution