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A Maximum-Entropy based fast estimation of power quality for smart microgrid

机译:基于最大熵的智能微电网电能质量的快速估计

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Power quality plays a critical role in the reliability of power networks. The monitoring of power quality, however, is a non-trivial task due to the high cost of measurement devices and the requirement on real-time responses. As a result, we need fast algorithms to estimate the power quality in various segments of a power network, using only a small number of measurement points. In this paper, we propose a maximum-entropy (MaxEnt) based approach to estimating power quality in smart microgrid. Compared to other existing methods such as Monte Carlo Expectation Maximization (MCEM), the MaxEnt based approach is much faster.
机译:电力质量在电网可靠性中起着关键作用。然而,由于测量装置的高成本以及对实时响应的要求,监测功率质量是非琐碎的任务。结果,我们需要快速算法来估计电网的各个段中的功率质量,仅使用少量测量点。在本文中,我们提出了一种基于熵的最大熵(MaxEnt)方法来估算智能微电网中的电能质量。与其他现有方法相比,如Monte Carlo期望最大化(MCEM),基于最大的方法更快。

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