Fusion of Liquid Neural Networks and Multi-Head Attention for State of Health Estimation of Lithium-ion Battery Packs
ID:120 View Protection:ATTENDEE Updated Time:2025-11-10 15:40:42 Hits:168 Poster Presentation

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Abstract
This paper proposes a novel fusion architecture that combines Liquid Neural Networks (LNN) with multi-head attention mechanisms for accurate State of Health (SOH) estimation of lithium-ion battery packs. The method employs learnable liquid time constants (LTC) that enable dynamic adjustment of memory characteristics based on input temporal patterns, while the multi-head attention mechanism identifies critical time steps that contribute most to SOH prediction. Additionally, we introduce an innovative coverage-averaging mapping strategy that transforms overlapping window predictions into smooth, cycle-level SOH estimates, eliminating the boundary discontinuities commonly observed in traditional sliding window approaches. Experimental evaluation on real battery data demonstrates competitive performance with an RMSE of 0.0072 and R² of 0.9248. The results show that the proposed method successfully captures the complex temporal dynamics of battery degradation processes while maintaining computational efficiency suitable for real-time deployment in battery management systems.
Keywords
State of Health (SOH),Liquid Neural Networks (LNN),Multi-head attention
Speaker
Xinyi Zhang
Student Harbin Institute of Technology

Submission Author
Xinyi Zhang Harbin Institute of Technology
Feiran Xu Chengdu Aircraft Design & Research Institute
Mingxuan Ge Chengdu Aircraft Design & Research Institute
Pengchao Zou Chengdu Aircraft Design & Research Institute
Yuchen Song Harbin Institute of Technology
Datong Liu Harbin Institute of Technology
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Important Date
  • Conference Date

    Nov 21

    2025

    to

    Nov 23

    2025

  • Oct 20 2025

    Draft paper submission deadline

  • Dec 08 2025

    Registration deadline

Sponsored By
IEEE Instrumentation and Measurement Society
South China University of Technology
Organized By
South China University of Technology