Adaptive non-linear modeling

A. David, T. Aboulnasr
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引用次数: 1

Abstract

To obtain an accurate model of a process the adaptation process should allow for an arbitrary accuracy within a given cost. Cost may be measured in terms of processing time or computing requirements. It is well known that to gain a better approximation of a process, the adaptation should be able to model a non-linearity at a desirable precision. Currently, methods that do so achieve their accuracy at a high computational cost. Furthermore, these methods do not guarantee i) optimal solution (neural networks), ii) convergence (extended Kalman filtering), or iii) manageable cost (Volterra systems). In this paper, we offer a simple yet powerful method, a switched filter bank, to this end.
自适应非线性建模
为了获得过程的精确模型,适应过程应该在给定的成本内允许任意精度。成本可以根据处理时间或计算需求来衡量。众所周知,为了更好地逼近一个过程,自适应应该能够以理想的精度模拟非线性。目前,这样做的方法以很高的计算成本来实现其准确性。此外,这些方法不能保证i)最优解(神经网络),ii)收敛(扩展卡尔曼滤波),或iii)可管理的成本(Volterra系统)。为此,我们提出了一种简单而强大的方法——开关滤波器组。
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