English

Physics-informed mixture of experts network for interpretable battery degradation trajectory computation amid second-life complexities

Machine Learning 2025-06-24 v1

Abstract

Retired electric vehicle batteries offer immense potential to support low-carbon energy systems, but uncertainties in their degradation behavior and data inaccessibilities under second-life use pose major barriers to safe and scalable deployment. This work proposes a Physics-Informed Mixture of Experts (PIMOE) network that computes battery degradation trajectories using partial, field-accessible signals in a single cycle. PIMOE leverages an adaptive multi-degradation prediction module to classify degradation modes using expert weight synthesis underpinned by capacity-voltage and relaxation data, producing latent degradation trend embeddings. These are input to a use-dependent recurrent network for long-term trajectory prediction. Validated on 207 batteries across 77 use conditions and 67,902 cycles, PIMOE achieves an average mean absolute percentage (MAPE) errors of 0.88% with a 0.43 ms inference time. Compared to the state-of-the-art Informer and PatchTST, it reduces computational time and MAPE by 50%, respectively. Compatible with random state of charge region sampling, PIMOE supports 150-cycle forecasts with 1.50% average and 6.26% maximum MAPE, and operates effectively even with pruned 5MB training data. Broadly, PIMOE framework offers a deployable, history-free solution for battery degradation trajectory computation, redefining how second-life energy storage systems are assessed, optimized, and integrated into the sustainable energy landscape.

Cite

@article{arxiv.2506.17755,
  title  = {Physics-informed mixture of experts network for interpretable battery degradation trajectory computation amid second-life complexities},
  author = {Xinghao Huang and Shengyu Tao and Chen Liang and Jiawei Chen and Junzhe Shi and Yuqi Li and Bizhong Xia and Guangmin Zhou and Xuan Zhang},
  journal= {arXiv preprint arXiv:2506.17755},
  year   = {2025}
}
R2 v1 2026-07-01T03:27:55.491Z