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首页> 外文期刊>IEEE transactions on circuits and systems . I , Regular papers >Discrete Adjoint Sensitivity Analysis of Hybrid Dynamical Systems With Switching
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Discrete Adjoint Sensitivity Analysis of Hybrid Dynamical Systems With Switching

机译:具有切换的混合动力系统的离散伴随灵敏度分析

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Sensitivity analysis is an important tool for describing power system dynamic behavior in response to parameter variations. It is a central component in preventive and corrective control applications. The existing approaches for sensitivity calculations, namely, finite-difference and forward sensitivity analysis, require a computational effort that increases linearly with the number of sensitivity parameters. In this paper, we investigate, implement, and test a discrete adjoint sensitivity approach whose computational effort is effectively independent of the number of sensitivity parameters. The proposed approach is highly efficient for calculating sensitivities of larger systems and is consistent, within machine precision, with the function whose sensitivity we are seeking. This is an essential feature for use in optimization applications. Moreover, our approach includes a consistent treatment of systems with switching, such as dc exciters, by deriving and implementing the adjoint jump conditions that arise from state-dependent and time-dependent switchings. The accuracy and the computational efficiency of the proposed approach are demonstrated in comparison with the forward sensitivity analysis approach. This paper focuses primarily on the power system dynamics, but the approach is general and can be applied to hybrid dynamical systems in a broader range of fields.
机译:灵敏度分析是描述电力系统响应参数变化的动态行为的重要工具。它是预防和纠正控制应用程序中的核心组件。现有的灵敏度计算方法,即有限差分和正向灵敏度分析,要求计算量随灵敏度参数的数量线性增加。在本文中,我们研究,实施和测试了离散的伴随灵敏度方法,其计算工作量实际上与灵敏度参数的数量无关。所提出的方法对于计算较大系统的灵敏度非常有效,并且在机器精度范围内与我们要寻找其灵敏度的函数保持一致。这是在优化应用程序中使用的基本功能。此外,我们的方法包括通过推导和实现由状态相关和时间相关的切换引起的伴随跳变条件,来对带有直流电的励磁系统进行一致的处理。与前向灵敏度分析方法相比,该方法的准确性和计算效率得到了证明。本文主要关注电力系统动力学,但是这种方法是通用的,可以应用于更广泛领域的混合动力系统。

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