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LREC-COLING 2024main

Leros: Learning Explicit Reasoning on Synthesized Data for Commonsense Question Answering

Proceedings of the 2024 Joint International Conference on Computational Linguistics, Language Resources and Evaluation (LREC-COLING 2024)

DOI:10.63317/28f2yarmoikf

Abstract

Recent work shows large language models can be prompted to generate useful rationales for commonsense question answering (CQA), which can improve the performance of both themselves and other models. However, the cost of deployment and further tuning is relatively expensive for the large models. Some work explores to distill the the rationale-generation ability to convenient small-sized models, yet it typically requires human-authored QA instances during the distillation. In this paper, we propose a novel framework that leverages both knowledge graphs and large language models to synthesize rationale-augmented CQA data. Based on it, we train Leros, a model that can generate helpful rationales to assist generic QA models to accomplish unseen CQA tasks. Empirical results demonstrate Leros can substantially enhance the performance of QA models on five unseen CQA benchmarks, providing better gains than both same-sized counterpart models trained with downstream data and 10x larger language models. Our work reveals a novel way to integrate knowledge from both knowledge graphs and large language models into smaller models. The codes and synthesized resources are publicly available at https://github.com/wchrepo/leros.

Details

Paper ID
lrec2024-main-0900
Pages
pp. 10303-10315
BibKey
wang-etal-2024-leros
Editor
N/A
Publisher
European Language Resources Association (ELRA) and ICCL
ISSN
2522-2686
ISBN
979-10-95546-34-4
Conference
Joint International Conference on Computational Linguistics, Language Resources and Evaluation
Location
Turin, Italy
Date
20 May 2024 25 May 2024

Authors

  • CW

    Chenhao Wang

  • PC

    Pengfei Cao

  • JL

    Jiachun Li

  • YC

    Yubo Chen

  • KL

    Kang Liu

  • XJ

    Xiaojian Jiang

  • JX

    Jiexin Xu

  • LQ

    Li Qiuxia

  • JZ

    Jun Zhao

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