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Long Short-Term Memory Recurrent Neural Network for Remaining Useful Life Prediction of Lithium-Ion Batteries

IEEE Transactions on Vehicular Technology · 2018 · Vol. 67(7) · pp. 5695–5705
Yongzhi ZhangRui XiongHongwen HeMichael Pecht

Abstract

Remaining useful life (RUL) prediction of lithium-ion batteries can assess the battery reliability to determine the advent of failure and mitigate battery risk. The existing RUL prediction techniques for lithium-ion batteries are inefficient for learning the long-term dependencies among the capacity degradations. This paper investigates deep-learning-enabled battery RUL prediction. The long short-term memory (LSTM) recurrent neural network (RNN) is employed to learn the long-term dependencies among the degraded capacities of lithium-ion batteries. The LSTM RNN is adaptively optimized using the resilient mean square back-propagation method, and a dropout technique is used to address the overfitting problem. The developed LSTM RNN is able to capture the underlying long-term dependencies among the degraded capacities and construct an explicitly capacity-oriented RUL predictor, whose long-term learning performance is contrasted to the support vector machine model, the particle filter model, and the simple RNN model. Monte Carlo simulation is combined to generate a probabilistic RUL prediction. Experimental data from multiple lithium-ion cells at two different temperatures is deployed for model construction, verification, and comparison. The developed method is able to predict the battery's RUL independent of offline training data, and when some offline data is available, the RUL can be predicted earlier than in the traditional methods.

Advanced Battery Technologies ResearchAdvancements in Battery MaterialsReliability and Maintenance OptimizationOverfittingParticle filterRecurrent neural networkComputer scienceBattery (electricity)Artificial neural networkProbabilistic logicDropout (neural networks)Artificial intelligenceData modeling

Funding

  • National Natural Science Foundation of China
  • Beijing Nova Program
Citations
1,213
FWCI
57.17
field-weighted impact
References
48
Percentile
100%
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Citations per year
References
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