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An Online Method for Detecting Nonlinearity Within a Signal

机译:一种检测信号内非线性的在线方法

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摘要

A novel method for online analysis of the changes in signal modality is proposed. This is achieved by tracking the dynamics of the mixing parameter within a hybrid filter rather than the actual filter performance. An implementation of the proposed hybrid filter using a combination of the Least Mean Square (LMS) and the Generalised Normalised Gradient Descent (GNGD) algorithms is analysed and the potential of such a scheme for tracking signal nonlinearity is highlighted. Simulations on linear and nonlinear signals in a prediction configuration support the analysis. Biological applications of the approach have been illustrated on EEG data of epileptic patients.
机译:提出了一种在线分析信号形态变化的新方法。这是通过跟踪混合过滤器内混合参数的动态而非实际过滤器性能来实现的。分析了使用最小均方(LMS)和广义归一化梯度下降(GNGD)算法的组合所提出的混合滤波器的实现,并着重指出了这种用于跟踪信号非线性的方案的潜力。在预测配置中对线性和非线性信号进行仿真可以支持该分析。该方法的生物学应用已在癫痫患者的脑电图数据中得到了说明。

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