English

From $\alpha$ decay to cluster decay: an extreme case of transfer learning

Nuclear Theory 2026-03-31 v1

Abstract

When training data are limited, data-driven models are especially vulnerable to optimization-related fluctuations from random initialization and to sampling-induced bias from insufficient training data. We address both challenges with transfer learning (TL): deep neural networks (DNNs) are first pretrained on α\alpha decay half-lives and then fine-tuned on a small cluster decay dataset. The pretraining stage provides a physically informed initialization that stabilizes optimization, while transferred global decay systematics regularize the fit and reduce sensitivity to training set composition. Despite extreme data sparsity, the resulting models accurately predict cluster decay half-lives for parent nuclei from 221^{221}Fr to 242^{242}Cm. We further quantify how initialization and sample selection affect predictive accuracy and robustness, demonstrating that TL enables stable and reliable learning in the small-sample regime.

Keywords

Cite

@article{arxiv.2603.28628,
  title  = {From $\alpha$ decay to cluster decay: an extreme case of transfer learning},
  author = {Yinu Zhang and Zhiyi Li and Kele Li and Jiaxuan Zhong and Cenxi Yuan},
  journal= {arXiv preprint arXiv:2603.28628},
  year   = {2026}
}

Comments

8 pages, 4 figures