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A Sliding Window Based Dynamic Spatiotemporal Modeling for Distributed Parameter Systems With Time-Dependent Boundary Conditions

机译:基于滑动窗口的分布式参数系统具有时间依赖性边界条件的滑动窗口动态空间模型

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摘要

Time/space separation based spatiotemporal modeling methods have been proven to be effective and efficient for modeling a class of distributed parameter systems (DPSs). However, these conventional methods may not work satisfactorily for DPSs with time-dependent boundary conditions. A sliding window based dynamic spatiotemporal modeling method is proposed for this kind of DPSs. First, the sliding window is appropriately designed to capture the most recent spatiotemporal data. Then, the conventional Karhunen-Loeve method can be used to construct the analytical model. Besides, a more general sliding window method can be achieved by using a forgetting factor to adjust different influence of the current and previous data. This analytical model can be utilized for online performance prediction. Simulation experiments on a benchmark and a battery with unknown boundary cooling have demonstrated the superior performance of the proposed method on the DPSs with time-dependent boundary conditions.
机译:基于时间/空间分离的时空建模方法已被证明是为了对一类分布式参数系统(DPS)进行建模有效和有效。然而,这些常规方法对于具有时间依赖的边界条件的DPS可能无法令人满意地工作。基于滑动窗口的动态时空建模方法是针对这种DPSS的动态空间造型方法。首先,滑动窗口适当地设计以捕获最新的时空数据。然后,传统的Karhunen-Loeve方法可用于构建分析模型。此外,可以通过使用遗忘因子来调整电流和先前数据的不同影响来实现更一般的滑动窗口方法。该分析模型可用于在线性能预测。具有未知边界冷却的基准和电池的模拟实验表明,在具有时间依赖的边界条件的DPS上的提出方法的优异性能。

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