Papers › Retrieval Enhanced Model for Commonsense Generation

Retrieval Enhanced Model for Commonsense Generation

24 May 2021Findings (ACL) 2021 8arXiv:2105.11174archive 2025-07-28

Han Wang, Yang Liu, Chenguang Zhu, Linjun Shou, Ming Gong, Yichong Xu, Michael Zeng

Commonsense generation is a challenging task of generating a plausible sentence describing an everyday scenario using provided concepts. Its requirement of reasoning over commonsense knowledge and compositional generalization ability even puzzles strong pre-trained language generation models. We propose a novel framework using retrieval methods to enhance both the pre-training and fine-tuning for commonsense generation. We retrieve prototype sentence candidates by concept matching and use them as auxiliary input. For fine-tuning, we further boost its performance with a trainable sentence retriever. We demonstrate experimentally on the large-scale CommonGen benchmark that our approach achieves new state-of-the-art results.

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count_trainable_parameters HanNight/RE-T5/code/RE-T5/callbacks.py official repository ran Apache-2.0 (permissive) · a3826392847cbef3 · report
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