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首页> 外文期刊>IEEE Transactions on Biomedical Engineering >Discriminative Canonical Pattern Matching for Single-Trial Classification of ERP Components
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Discriminative Canonical Pattern Matching for Single-Trial Classification of ERP Components

机译:用于ERP组件的单试分类的鉴别规范模式

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摘要

Event-related potentials (ERPs) are one of the most popular control signals for brain-computer interfaces (BCIs). However, they are very weak and sensitive to the experimental settings including paradigms, stimulation parameters and even surrounding environments, resulting in a diversity of ERP patterns across different BCI experiments. It's still a challenge to develop a general decoding algorithm that can adapt to the ERP diversities of different BCI datasets with small training sets. This study compared a recently developed algorithm, i.e., discriminative canonical pattern matching (DCPM), with seven ERP-BCI classification methods, i.e., linear discriminant analysis (LDA), stepwise LDA, bayesian LDA, shrinkage LDA, spatial-temporal discriminant analysis (STDA), xDAWN and EEGNet for the single-trial classification of two private EEG datasets and three public EEG datasets with small training sets. The feature ERPs of the five datasets included P300, motion visual evoked potential (mVEP), and miniature asymmetric visual evoked potential (aVEP). Study results showed that the DCPM outperformed other classifiers for all of the tested datasets, suggesting the DCPM is a robust classification algorithm for assessing a wide range of ERP components.
机译:事件相关的电位(ERP)是脑 - 计算机接口最流行的控制信号之一(BCIS)。然而,它们对包括范式,刺激参数甚至周围环境的实验设置非常弱和敏感,导致不同BCI实验中的ERP模式的多样性。开发一般解码算法仍然是一个挑战,可以适应具有小型训练集的不同BCI数据集的ERP分集。该研究比较了最近开发的算法,即鉴别的规范模式匹配(DCPM),具有七种ERP-BCI分类方法,即线性判别分析(LDA),逐步LDA,贝叶斯LDA,收缩LDA,空间判别分析( STDA),XDAWN和EEGNET,用于两个私有EEG数据集的单试分和具有小型训练集的三个公共EEG数据集。五个数据集的特征ERP包括P300,运动视觉诱发电位(MVEP)和微型不对称视觉诱发电位(AVEP)。研究结果表明,DCPM对所有测试数据集的其他分类器表明DCPM是一种鲁棒分类算法,用于评估各种ERP组件。

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