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RSpell: Retrieval-augmented Framework for Domain Adaptive Chinese Spelling Check

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arxiv 2308.08176 v1 pith:O2HPRU4G submitted 2023-08-16 cs.CL

RSpell: Retrieval-augmented Framework for Domain Adaptive Chinese Spelling Check

classification cs.CL
keywords rspellframeworkspellingcheckchineseretrieval-augmentedadaptivedomain
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Chinese Spelling Check (CSC) refers to the detection and correction of spelling errors in Chinese texts. In practical application scenarios, it is important to make CSC models have the ability to correct errors across different domains. In this paper, we propose a retrieval-augmented spelling check framework called RSpell, which searches corresponding domain terms and incorporates them into CSC models. Specifically, we employ pinyin fuzzy matching to search for terms, which are combined with the input and fed into the CSC model. Then, we introduce an adaptive process control mechanism to dynamically adjust the impact of external knowledge on the model. Additionally, we develop an iterative strategy for the RSpell framework to enhance reasoning capabilities. We conducted experiments on CSC datasets in three domains: law, medicine, and official document writing. The results demonstrate that RSpell achieves state-of-the-art performance in both zero-shot and fine-tuning scenarios, demonstrating the effectiveness of the retrieval-augmented CSC framework. Our code is available at https://github.com/47777777/Rspell.

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