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Estimation of trial to trial variability of P300 subcomponents by coupled Rao-blackwellised particle filtering

机译:通过耦合Rao-Blackwellised粒子滤波估算P300子组件的试验变异性

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In this paper a new method based on Rao-blackwellised particle filtering for tracking variability of event related-potential (ERP) subcomponents in different trials is presented. The latency, amplitude, and width of each subcomponent is formulated in the state space model. Then, the observation is modeled as a linear function of amplitude and a nonlinear function of latency and width. The Rao-blackwellised particle filtering is then applied for recursive estimation of the state of the system in different trials. To prevent generation of some invalid particles and also to have a reliable estimation in every situation, using some prior knowledge about some ERP subcomponents, a coupled Rao-blackwellised particle filter is designed to detect variability of the desired ERP subcomponents. The method is applied to both simulated and real P300 data. The algorithm has the ability of tracking the variability of P300 subcomponents i.e. P3a and P3b, in single trials even in the low signal-to-noise ratio situations.
机译:本文介绍了一种基于RAO黑白粒子滤波的新方法,用于跟踪不同试验中的事件相关电位(ERP)子组件的变异性。每个子组件的延迟,幅度和宽度在状态空间模型中配制。然后,观察被建模为幅度的线性函数和延迟和宽度的非线性函数。然后应用Rao-Blackwellised颗粒过滤器用于不同试验中系统状态的递归估计。为了防止产生一些无效粒子并且在每种情况下具有可靠的估计,使用关于一些ERP子组件的一些先验知识,耦合的RAO黑威胁粒子滤波器被设计为检测所需ERP子组件的可变性。该方法应用于模拟和实际P300数据。该算法具有跟踪P300子组件的可变性的能力,即使在低信噪比情况下,在单一试验中也可以在单一试验中进行P300和P3B的可变性。

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