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Multi-objective decision analysis for data-driven based estimation of battery states: A case study of remaining useful life estimation

机译:基于数据驱动的电池状态估计的多目标决策分析:剩余寿命估计的案例研究

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摘要

Data-driven methods, which can explore the relationship among battery external parameters and battery states automatically without establishing complicated battery model, have been intensively applied to estimate state of charge (SOC), state of health (SOH) and remaining useful life (RUL) etc. Nevertheless, relatively few researches have been done on the selection of data-driven model parameters and the determination of model with the optimal comprehensive performance. To address these questions, this paper presents a multi-objective decision method for data-driven based estimation of battery states. This method adopts the combination of the analytic hierarchy process and the entropy weight method together with integrating subjective and objective weights. The mean absolute error and root squared mean error of training-set, validation-set and test-set are used as accuracy indexes, and modeling time is seen as computation burden index. These seven indexes are applied as objective criteria for the multi-objective evaluation method, successfully evaluating the comprehensive performance of estimation model. Moreover, with three cases for RUL estimation, the specific application process of selecting the model with the optimal comprehensive performance by the proposed method is presented in detail. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:数据驱动方法,可以自动探索电池外部参数和电池状态之间的关系,无需建立复杂的电池模型,已经集中应用于估计充电状态(SOC),健康状况(SOH)和剩余使用寿命(RUL)然而,已经在选择数据驱动的模型参数和最佳综合性能的模型的确定时完成了相对较少的研究。为了解决这些问题,本文提出了一种用于基于数据驱动的电池状态估计的多目标决策方法。该方法采用分析层次处理和熵权法的组合以及整合主观和客观权重。训练集,验证集和测试集的平均绝对误差和根平均误差用作精度索引,并且建模时间被视为计算负担索引。这七个索引被应用于多目标评估方法的客观标准,成功地评估了估计模型的综合性能。此外,对于RUL估计的三个案例,详细介绍了通过所提出的方法选择具有最佳综合性能的模型的具体应用过程。 (c)2020氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

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