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An Algebraic Method for Eye Blink Artifacts Detection in Single Channel EEG Recordings

机译:单通道脑电图记录中眨眼伪像检测的一种代数方法

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Single channel EEG systems are very useful in EEG based applications where real time processing, low computational complexity and low cumbersomeness are critical constrains. These include brain-computer interface and biofeed-back devices and also some clinical applications such as EEG recording on babies or Alzheimer's disease recognition. In this paper we address the problem of eye blink artifacts detection in such systems. We study an algebraic approach based on numerical differentiation, which is recently introduced from operational calculus. The occurrence of an artifact is modeled as an irregularity which appears explicitly in the time (generalized) derivative of the EEG signal as a delay. Manipulating such delay is easy with the operational calculus and it leads to a simple joint detection and localization algorithm. While the algorithm is devised based on continuous-time arguments, the final implementation step is fully realized in a discrete-time context, using very classical discrete-time FIR filters. The proposed approach is compared with three other approaches: (1) the very basic threshold approach, (2) the approach that combines the use of median filter, matched filter and nonlinear energy operator (NEO) and (3) the wavelet based approach. Comparison is done on: (a) the artificially created signal where the eye activity is synthesized from real EEG recordings and (b) the real single channel EEG recordings from 32 different brain locations. Results are presented with Receiver Operating Characteristics curves. The results show that the proposed approach compares to the other approaches better or as good as, while having lower computational complexity with simple real time implementation. Comparison of the results on artificially created and real signal leads to conclusions that with detection techniques based on derivative estimation we are able to detect not only eye blink artifacts, but also any spike shaped artifact, even if it is very low in amplitude.
机译:单通道EEG系统在基于EEG的应用中非常有用,在这些应用中,实时处理,低计算复杂性和低麻烦是关键约束。其中包括脑机接口和生物反馈设备,以及一些临床应用,例如婴儿的脑电图记录或阿尔茨海默氏病识别。在本文中,我们解决了此类系统中眨眼伪像检测的问题。我们研究了一种基于数值微分的代数方法,这是最近从运算演算引入的。伪像的出现被建模为不规则性,该不规则性在EEG信号的时间(广义)导数中明确显示为延迟。通过操作演算可以很容易地控制这种延迟,并且这导致了简单的联合检测和定位算法。虽然算法是基于连续时间参数设计的,但最终实现步骤是使用非常经典的离散时间FIR滤波器在离散时间上下文中完全实现的。将该方法与其他三种方法进行了比较:(1)最基本的阈值方法;(2)结合使用中值滤波器,匹配滤波器和非线性能量算子(NEO)的方法;(3)基于小波的方法。比较如下:(a)人工创建的信号,其中眼睛活动是根据真实的EEG记录合成的;以及(b)来自32个不同大脑位置的真实的单通道EEG记录。结果与接收器工作特性曲线一起显示。结果表明,所提出的方法与其他方法相比具有更好的效果,同时具有较低的计算复杂度和简单的实时实现。对人造信号和真实信号的结果进行比较得出结论,即使用基于导数估计的检测技术,我们不仅可以检测眨眼伪像,还可以检测任何尖峰状伪像,即使幅度很低。

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