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Online Detection of P300 and Error Potentials in a BCI Speller

机译:在线检测BCI喷射器中的P300和错误电位

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摘要

Error potentials (ErrPs), that is, alterations of the EEG traces related to the subject perception of erroneous responses, have been suggested to be an elegant way to recognize misinterpreted commands in brain-computer interface (BCI) systems. We implemented a P300-based BCI speller that uses a genetic algorithm (GA) to detect P300s, and added an automatic error-correction system (ECS) based on the single-sweep detection of ErrPs. The developed system was tested on-line on three subjects and here we report preliminary results. In two out of three subjects, the GA provided a good performance in detecting P300 (90% and 60% accuracy with 5 repetitions), and it was possible to detect ErrP with an accuracy (roughly 60%) well above the chance level. In our knowledge, this is the first time that ErrP detection is performed on-line in a P300-based BCI. Preliminary results are encouraging, but further refinements are needed to improve performances.
机译:潜在错误(ErrP),即与错误反应的主体感知有关的EEG迹线的改变,已被认为是识别脑机接口(BCI)系统中错误解释的命令的一种优雅方法。我们实现了基于P300的BCI拼写器,该拼写器使用遗传算法(GA)来检测P300,并基于对ErrP的单扫描检测添加了自动纠错系统(ECS)。所开发的系统已在三个主题上进行了在线测试,在这里我们报告了初步结果。在三分之二的受试者中,GA在检测P300方面表现良好(5次重复的准确率达到90%和60%),并且有可能以远高于机会水平的准确度(大约60%)检测ErrP。据我们所知,这是第一次在基于P300的BCI中在线执行ErrP检测。初步结果令人鼓舞,但需要进一步改进以提高性能。

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