SymNoise: Advancing Language Model Fine-tuning with Symmetric Noise
December 03, 2023 ยท Declared Dead ยท ๐ arXiv.org
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Authors
Abhay Kumar Yadav, Arjun Singh
arXiv ID
2312.01523
Category
cs.CL: Computation & Language
Cross-listed
cs.LG
Citations
3
Venue
arXiv.org
Last Checked
5 months ago
Abstract
In this paper, we introduce a novel fine-tuning technique for language models, which involves incorporating symmetric noise into the embedding process. This method aims to enhance the model's function by more stringently regulating its local curvature, demonstrating superior performance over the current method, NEFTune. When fine-tuning the LLaMA-2-7B model using Alpaca, standard techniques yield a 29.79% score on AlpacaEval. However, our approach, SymNoise, increases this score significantly to 69.04%, using symmetric noisy embeddings. This is a 6.7% improvement over the state-of-the-art method, NEFTune~(64.69%). Furthermore, when tested on various models and stronger baseline instruction datasets, such as Evol-Instruct, ShareGPT, OpenPlatypus, SymNoise consistently outperforms NEFTune. The current literature, including NEFTune, has underscored the importance of more in-depth research into the application of noise-based strategies in the fine-tuning of language models. Our approach, SymNoise, is another significant step towards this direction, showing notable improvement over the existing state-of-the-art method.
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