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Coupled particle filtering: A new approach for P300-based analysis of mental fatigue~☆

机译:耦合粒子滤波:一种基于P300的精神疲劳分析新方法〜☆

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摘要

A new method for investigating mental fatigue based on P300 variability is presented here. In this approach a new coupled particle filtering for tracking variability of P300 subcomponents, i.e., P3a and P3b, across trials is developed. The latency, amplitude, and width of each subcomponent, as the main varying parameters, are modelled using state space system. In this model the observation is modelled as a linear function of amplitude and a nonlinear function of latency and width. Two Rao-blackwellised particle filters are then coupled and employed for recursive estimation of the state of the system across trials. By including some physiological based constraints, the proposed technique prevents generation of invalid particles during estimation of the state of the system. The main advantage of the algorithm compared with other single trial based methods is its robustness in the low signal-to-noise ratio situations. The method is applied to both simulated data and real mental fatigue data. The results demonstrate potential use of the method in event-related potential (ERP) based applications.
机译:本文介绍了一种基于P300变异性的心理疲劳调查新方法。在这种方法中,开发了一种新的耦合粒子滤波技术,用于跟踪整个试验中P300子组件(即P3a和P3b)的变异性。使用状态空间系统对每个子组件的等待时间,幅度和宽度作为主要变化参数进行建模。在此模型中,观测值被建模为幅度的线性函数和潜伏期和宽度的非线性函数。然后将两个Rao黑阱粒子滤波器耦合并用于在整个试验中对系统状态进行递归估计。通过包括一些基于生理的约束,所提出的技术可防止在估计系统状态期间生成无效粒子。与其他基于单次试验的方法相比,该算法的主要优势在于在低信噪比情况下的鲁棒性。该方法适用于模拟数据和真实的精神疲劳数据。结果证明了该方法在基于事件相关电位(ERP)的应用程序中的潜在用途。

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