基于约束神经网络的谐波源识别

R. K. Hartana, G. Richards
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引用次数: 27

摘要

在没有足够的直接测量数据的情况下,约束神经网络用于识别具有非线性负载的电力系统中谐波源的位置和大小。这种方法允许用相对较少的永久谐波测量仪器测量谐波。通过一个模拟配电系统,证明了神经网络可以训练成利用现有的测量值来估计谐波源。这些估计被约束以符合现有的直接谐波测量,从而提高了它们的精度。结果表明,通过假设检验过程可以识别和测量可疑的谐波源。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Constrained neural network based identification of harmonic sources
Constrained neural nets are used to identify the location and magnitude of harmonic sources in power systems with nonlinear loads, in situations where sufficient direct measurement data are not available. This approach permits measurement of harmonics with relatively few permanent harmonic measuring instruments. A simulated power distribution system is used to show that neural nets can be trained to use available measurements to estimate harmonic sources. These estimates are constrained to conform to the available direct harmonic measurements, which improve their accuracy. It is shown that suspected harmonic sources can be identified and measured by a process of hypothesis testing.<>
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