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BRAIN COMPUTER INTERFACE - Application of an Adaptive Bi-stage Classifier based on RBF-HMM

机译:脑计算机接口-基于RBF-HMM的自适应二级分类器的应用

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摘要

Brain Computer Interface is an emerging technology that allows new output paths to communicate the users intentions without the use of normal output paths, such as muscles or nerves. In order to obtain their objective, BCI devices make use of classifiers which translate inputs from the users brain signals into commands for external devices. This paper describes an adaptive bi-stage classifier. The first stage is based on Radial Basis Function neural networks, which provides sequences of pre-assignations to the second stage, that it is based on three different Hidden Markov Models, each one trained with pre-assignation sequences from the cognitive activities between classifying. The segment of EEG signal is assigned to the HMMwith the highest probability of generating the pre-assignation sequence. The algorithm is tested with real samples of electroencephalografic signal, from five healthy volunteers using the cross-validation method. The results allow to conclude that it is possible to implement this algorithm in an on-line BCI device. The results also shown the huge dependency of the percentage of the correct classification from the user and the setup parameters of the classifier.
机译:脑计算机接口是一种新兴技术,它允许新的输出路径传达用户的意图,而无需使用正常的输出路径,例如肌肉或神经。为了实现其目标,BCI设备利用分类器将来自用户大脑信号的输入转换为外部设备的命令。本文介绍了一种自适应两阶段分类器。第一阶段基于径向基函数神经网络,该网络为第二阶段提供预先分配的序列,第二阶段基于三个不同的隐马尔可夫模型,每个模型都根据分类之间的认知活动使用预先分配的序列进行训练。 EEG信号的片段被分配给具有预分配序列生成可能性最高的HMM。使用交叉验证方法,对来自五名健康志愿者的真实脑电信号样本进行了测试。结果可以得出结论,有可能在在线BCI设备中实现此算法。结果还显示,用户正确分类的百分比与分类器的设置参数之间存在极大的依赖性。

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