Solutions for optimal Boolean and stack filter design under a training framework

I. Tabus, D. Petrescu, M. Gabbouj
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引用次数: 3

Abstract

This paper introduces a training framework for the optimal nonlinear filter design problem. The problem to be solved within the present framework is the selection of the best filter under a data dependent criterion (rather than a model dependent criterion) in one class of nonlinear filters. A class of filters, namely Boolean filters is then considered, for which holds a decoupling property, allowing to transform the initial integer valued problem into the binary domain. The equivalence between the original criterion (in the integer signal domain) and a criterion expressed in the binary signal domain is shown then to hold. The procedures for obtaining the optimal solution for two classes of nonlinear filters, Boolean filters and stack filters, are derived under the new framework. Some numerical simulations are provided, in order to illustrate the effectiveness of the procedures in solving the noise rejection problem.<>
训练框架下布尔滤波器和堆栈滤波器最优设计的解决方案
本文介绍了非线性滤波器最优设计问题的训练框架。在本框架内要解决的问题是在一类非线性滤波器中,在数据依赖准则(而不是模型依赖准则)下选择最佳滤波器。然后考虑一类滤波器,即布尔滤波器,它具有解耦性,允许将初始整数值问题转换为二进制域。原始判据(在整数信号域中)和在二进制信号域中表示的判据之间的等价性被证明是成立的。在此框架下,给出了布尔滤波器和堆栈滤波器两类非线性滤波器最优解的求解过程。为了说明这些方法在解决噪声抑制问题上的有效性,给出了一些数值模拟
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