Papers › Sparsity May Be All You Need: Sparse Random Parameter Adaptation

Sparsity May Be All You Need: Sparse Random Parameter Adaptation

21 Feb 2025arXiv:2502.15975archive 2025-07-28

Jesus Rios, Pierre Dognin, Ronny Luss, Karthikeyan N. Ramamurthy

Full fine-tuning of large language models for alignment and task adaptation has become prohibitively expensive as models have grown in size. Parameter-Efficient Fine-Tuning (PEFT) methods aim at significantly reducing the computational and memory resources needed for fine-tuning these models by only training on a small number of parameters instead of all model parameters. Currently, the most popular PEFT method is the Low-Rank Adaptation (LoRA), which freezes the parameters of the model to be fine-tuned and introduces a small set of trainable parameters in the form of low-rank matrices. We propose simply reducing the number of trainable parameters by randomly selecting a small proportion of the model parameters to train on. In this paper, we compare the efficiency and performance of our proposed approach with PEFT methods, including LoRA, as well as full parameter fine-tuning.

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combine_two_sentences_map IBM/SpaRTA/sparta/tasks.py official repository unverified Apache-2.0 (permissive) · c0e4061a4ffd40d2 · report
f1_score IBM/SpaRTA/sparta/utils.py official repository unverified Apache-2.0 (permissive) · bf5cd77dea835a0c · report
find_head IBM/SpaRTA/sparta/models.py official repository unverified Apache-2.0 (permissive) · 91259adf3be2fdea · report
instruction_generator IBM/SpaRTA/sparta/tasks.py official repository unverified Apache-2.0 (permissive) · ded19a9203a66303 · report
load_classification_data IBM/SpaRTA/sparta/tasks.py official repository unverified Apache-2.0 (permissive) · 523c87d6ca392629 · report
load_classification_model IBM/SpaRTA/sparta/models.py official repository unverified Apache-2.0 (permissive) · f1c8e6dba88170ab · report
mcc IBM/SpaRTA/sparta/utils.py official repository unverified Apache-2.0 (permissive) · c4cb73db0b4bf345 · report

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