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Real-time identification of state-of-charge in battery systems: Dynamic data-driven estimation with limited window length

机译:电池系统中充电状态的实时识别:窗口长度有限的动态数据驱动估计

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This paper presents a symbolic dynamic method for real-time estimation of battery state-of-charge (SOC). In the proposed method, symbol strings are generated by partitioning (finite-length) time windows of synchronized input-output (e.g., current-voltage) pairs in the respective two-dimensional space. Then, a special class of probabilistic finite state automata (PFSA), called D-Markov machine, is constructed from the symbol strings to extract pertinent features. The SOC estimation is formulated as a sequential estimation scheme with adaptive acceptance of new features to circumvent the problem of having potential outliers. A major challenge is that SOC value is continuously varying during the operation. While modeling and analysis of such time-varying problems is computationally intensive, the data-driven approach requires adequate length of time series data for statistically significant analysis. From these perspectives, a critical aspect is to determine an optimal (or suboptimal) length of the analysis window to make a tradeoff between estimation accuracy and dynamic sensitivity. The proposed method has been validated on experimental data of a commercial-scale lead-acid battery.
机译:本文提出了一种用于电池实时评估充电状态(SOC)的符号动态方法。在提出的方法中,通过在各个二维空间中划分(有限长度)同步的输入-输出(例如,电流-电压)对的时间窗来生成符号串。然后,从符号字符串构造一类特殊的概率有限状态自动机(PFSA),称为D-Markov机,以提取相关特征。 SOC估计被公式化为具有新特征的自适应接受的顺序估计方案,从而规避了具有潜在异常值的问题。一个主要的挑战是,SOC值在操作过程中会不断变化。尽管对此类随时间变化的问题进行建模和分析需要大量计算,但数据驱动方法需要足够长的时间序列数据才能进行具有统计意义的分析。从这些角度来看,一个关键方面是确定分析窗口的最佳(或次优)长度,以在估计精度和动态灵敏度之间进行权衡。所提出的方法已经在商业规模的铅酸电池的实验数据上得到了验证。

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