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On the Introduction of Neural Network-based Optimization Algorithm in an Automated Calibration System

机译:基于神经网络的优化算法在自动校准系统中的应用

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This work presents the introduction of a neural network-based optimization approach in the tuning of voltage-controlled circuits (such as active filters). A custom calibration system has been already presented by the same Authors. It was realized with a hardware interface and a dedicated software based on a modified version of a Differential Evolution algorithm. In this paper the implemented algorithms are described in detail together with a possible integration of the neural network synthesis to further enhance performance of the proposed system. As the first step in exploiting neural networks, in this paper they are used as a tool for speeding up the choice of initial values of the filter control voltages. Neural networks are used to replace a look-up table representing the relationship between filter parameters, the central frequency and the corresponding attenuation, and the control voltages. According to the obtained results, in such a way, the optimization time is shortened significantly.
机译:这项工作介绍了在电压控制电路(例如有源滤波器)的调整中基于神经网络的优化方法的引入。同一作者已经提出了定制的校准系统。它是通过硬件接口和基于差分进化算法修改版的专用软件来实现的。在本文中,将详细描述已实现的算法以及神经网络综合的可能集成,以进一步增强所提出系统的性能。作为开发神经网络的第一步,本文将它们用作加快滤波器控制电压初始值选择的工具。使用神经网络代替查找表,该表代表滤波器参数,中心频率和相应的衰减以及控制电压之间的关系。根据获得的结果,以这种方式大大缩短了优化时间。

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