NeSy is alive and well: A LLM-driven symbolic approach for better code comment data generation and classification

Published: 26 May 2024, Last Modified: 10 Jun 2024GeNeSy workshop at the Extended Semantic Web Conference (ESWC) 2024EveryoneCC BY 4.0
Abstract: We present a neuro-symbolic (NeSy) workflow combining a symbolic-based learning technique with a large language model (LLM) agent to generate synthetic data for code comment classification in the C programming language. We also show how generating controlled synthetic data using this workflow fixes some of the notable weaknesses of LLM-based generation and increases the performance of classical machine learning models on the code comment classification task. Our best model, a Neural Network, achieves a Macro-F1 score of 91.412% with an increase of 1.033% after data augmentation.
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