Effective Distant Supervision for Temporal Relation Extraction

October 24, 2020 ยท Declared Dead ยท ๐Ÿ› ADAPTNLP

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Authors Xinyu Zhao, Shih-ting Lin, Greg Durrett arXiv ID 2010.12755 Category cs.CL: Computation & Language Cross-listed cs.LG Citations 22 Venue ADAPTNLP Last Checked 4 months ago
Abstract
A principal barrier to training temporal relation extraction models in new domains is the lack of varied, high quality examples and the challenge of collecting more. We present a method of automatically collecting distantly-supervised examples of temporal relations. We scrape and automatically label event pairs where the temporal relations are made explicit in text, then mask out those explicit cues, forcing a model trained on this data to learn other signals. We demonstrate that a pre-trained Transformer model is able to transfer from the weakly labeled examples to human-annotated benchmarks in both zero-shot and few-shot settings, and that the masking scheme is important in improving generalization.
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