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APIO: Automatic Prompt Induction and Optimization for Grammatical Error Correction and Text Simplification

APIO: Automatic Prompt Induction and Optimization for Grammatical Error Correction and Text Simplification

来源:Arxiv_logoArxiv
英文摘要

Recent advancements in large language models (LLMs) have enabled a wide range of natural language processing (NLP) tasks to be performed through simple prompt-based interactions. Consequently, several approaches have been proposed to engineer prompts that most effectively enable LLMs to perform a given task (e.g., chain-of-thought prompting). In settings with a well-defined metric to optimize model performance, automatic prompt optimization (APO) methods have been developed to refine a seed prompt. Advancing this line of research, we propose APIO, a simple but effective prompt induction and optimization approach for the tasks of Grammatical Error Correction (GEC) and Text Simplification, without relying on manually specified seed prompts. APIO achieves a new state-of-the-art performance for purely LLM-based prompting methods on these tasks. We make our data, code, prompts, and outputs publicly available.

Artem Chernodub、Aman Saini、Yejin Huh、Vivek Kulkarni、Vipul Raheja

计算技术、计算机技术

Artem Chernodub,Aman Saini,Yejin Huh,Vivek Kulkarni,Vipul Raheja.APIO: Automatic Prompt Induction and Optimization for Grammatical Error Correction and Text Simplification[EB/OL].(2025-08-12)[2025-08-24].https://arxiv.org/abs/2508.09378.点此复制

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