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Bayesian Parameter-Efficient Fine-Tuning for Overcoming Catastrophic Forgetting

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arxiv 2402.12220 v3 pith:J4RIYE5R submitted 2024-02-19 eess.AS cs.LG

classification eess.AScs.LG
keywords catastrophicforgettingpeftadaptationfine-tuningbayesiandemonstratediagonal
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We are motivated primarily by the adaptation of text-to-speech synthesis models; however we argue that more generic parameter-efficient fine-tuning (PEFT) is an appropriate framework to do such adaptation. Nevertheless, catastrophic forgetting remains an issue with PEFT, damaging the pre-trained model's inherent capabilities. We demonstrate that existing Bayesian learning techniques can be applied to PEFT to prevent catastrophic forgetting as long as the parameter shift of the fine-tuned layers can be calculated differentiably. In a principled series of experiments on language modeling and speech synthesis tasks, we utilize established Laplace approximations, including diagonal and Kronecker-factored approaches, to regularize PEFT with the low-rank adaptation (LoRA) and compare their performance in pre-training knowledge preservation. Our results demonstrate that catastrophic forgetting can be overcome by our methods without degrading the fine-tuning performance, and using the Kronecker-factored approximation produces a better preservation of the pre-training knowledge than the diagonal ones.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. SOS-LoRA: Static Orthogonal-Subspace Low-Rank Adaptation with Fixed Multi-Scale Scaling

    cs.LG 2026-06 conditional novelty 5.0 of 10

    A LoRA update split into several fixed, differently-scaled low-rank experts with orthogonal input directions improves fine-tuning accuracy at the same parameter count.

  2. Continual Gradient Low-Rank Projection Fine-Tuning for LLMs

    cs.LG 2025-07 conditional novelty 5.0 of 10

    GORP jointly trains LoRA and full-rank parameters inside a low-rank gradient subspace built from Adam first moments, reporting higher average accuracy and lower forgetting than O-LoRA and N-LoRA on LLM continual learn...

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