Papers › Dataset Size Recovery from LoRA Weights

Dataset Size Recovery from LoRA Weights

27 Jun 2024arXiv:2406.19395archive 2025-07-28

Mohammad Salama, Jonathan Kahana, Eliahu Horwitz, Yedid Hoshen

Model inversion and membership inference attacks aim to reconstruct and verify the data which a model was trained on. However, they are not guaranteed to find all training samples as they do not know the size of the training set. In this paper, we introduce a new task: dataset size recovery, that aims to determine the number of samples used to train a model, directly from its weights. We then propose DSiRe, a method for recovering the number of images used to fine-tune a model, in the common case where fine-tuning uses LoRA. We discover that both the norm and the spectrum of the LoRA matrices are closely linked to the fine-tuning dataset size; we leverage this finding to propose a simple yet effective prediction algorithm. To evaluate dataset size recovery of LoRA weights, we develop and release a new benchmark, LoRA-WiSE, consisting of over 25000 weight snapshots from more than 2000 diverse LoRA fine-tuned models. Our best classifier can predict the number of fine-tuning images with a mean absolute error of 0.36 images, establishing the feasibility of this attack.

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Tasks

Dataset Size Recovery

Datasets

Introduced by this paper, per the archive.

LoRA-WiSE

Results from the paper archive 2025-07-28

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Methods

Introduced by this paper: DSiRe

DSiRe

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