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Papers/ChatGPT as Data Augmentation for Compositional Generalizat...

ChatGPT as Data Augmentation for Compositional Generalization: A Case Study in Open Intent Detection

Yihao Fang, Xianzhi Li, Stephen W. Thomas, Xiaodan Zhu

2023-08-25Open Intent DetectionNatural Language UnderstandingIntent DetectionData Augmentation
PaperPDFCode(official)

Abstract

Open intent detection, a crucial aspect of natural language understanding, involves the identification of previously unseen intents in user-generated text. Despite the progress made in this field, challenges persist in handling new combinations of language components, which is essential for compositional generalization. In this paper, we present a case study exploring the use of ChatGPT as a data augmentation technique to enhance compositional generalization in open intent detection tasks. We begin by discussing the limitations of existing benchmarks in evaluating this problem, highlighting the need for constructing datasets for addressing compositional generalization in open intent detection tasks. By incorporating synthetic data generated by ChatGPT into the training process, we demonstrate that our approach can effectively improve model performance. Rigorous evaluation of multiple benchmarks reveals that our method outperforms existing techniques and significantly enhances open intent detection capabilities. Our findings underscore the potential of large language models like ChatGPT for data augmentation in natural language understanding tasks.

Results

TaskDatasetMetricValueModel
Intent DetectionOOS_CGF1 Score56.18ADB+GPTAUG-F4
Intent DetectionStackOverflow_CGF1 Score77.77DA-ADB
Intent DetectionBanking_CGF1 Score66.45ADB+GPTAUG-F4

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