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Use of a priori information in the identification of globalnonlinear models-a case study using a buck converter

机译:先验信息在识别全局非线性模型中的使用-使用降压转换器的案例研究

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This paper investigates some issues related to grey-box identification. In particular it is discussed how a priori information about the system static nonlinearity can be incorporated into the model. Also, it is shown that in some applications involving nonlinear systems, there must be a tradeoff between the accuracy of the estimated model static nonlinearity and the quality of forecasts. These concepts are applied in the identification of a real DC-DC buck converter operating in continuous mode. Improvement in model global stability was achieved by using simple a priori information that takes into account the steady-state voltage relation of the converter. Models that are valid over a wide operating range are included. Such models are compact and can be estimated directly from data obtained from the converter
机译:本文研究了与灰盒识别有关的一些问题。特别是讨论了如何将有关系统静态非线性的先验信息整合到模型中。此外,它表明,在涉及非线性系统的某些应用中,必须在估计的模型静态非线性的准确性和预测质量之间进行权衡。这些概念可用于识别以连续模式工作的实际DC-DC降压转换器。通过使用简单的先验信息,考虑了转换器的稳态电压关系,可以提高模型全局稳定性。包括在广泛的工作范围内有效的型号。这种模型非常紧凑,可以直接从转换器获得的数据中进行估算

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