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Evolving Signal Processing for Brain–Computer Interfaces

机译:脑机接口的不断发展的信号处理

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Because of the increasing portability and wearability of noninvasive electrophysiological systems that record and process electrical signals from the human brain, automated systems for assessing changes in user cognitive state, intent, and response to events are of increasing interest. Brain–computer interface (BCI) systems can make use of such knowledge to deliver relevant feedback to the user or to an observer, or within a human–machine system to increase safety and enhance overall performance. Building robust and useful BCI models from accumulated biological knowledge and available data is a major challenge, as are technical problems associated with incorporating multimodal physiological, behavioral, and contextual data that may in the future be increasingly ubiquitous. While performance of current BCI modeling methods is slowly increasing, current performance levels do not yet support widespread uses. Here we discuss the current neuroscientific questions and data processing challenges facing BCI designers and outline some promising current and future directions to address them.
机译:由于记录和处理来自人脑的电信号的非侵入性电生理系统的便携性和可穿戴性不断提高,用于评估用户认知状态,意图和事件响应变化的自动化系统越来越引起人们的关注。脑机接口(BCI)系统可以利用这些知识向用户或观察者或人机系统内提供相关反馈,以提高安全性并增强整体性能。从积累的生物学知识和可用数据中构建健壮和有用的BCI模型是一个重大挑战,与纳入未来可能越来越普遍的多模式生理,行为和背景数据相关的技术问题也是一个重大挑战。尽管当前BCI建模方法的性能正在缓慢提高,但当前的性能水平尚未支持广泛的用途。在这里,我们讨论了BCI设计人员当前面临的神经科学问题和数据处理挑战,并概述了解决这些问题的当前和未来方向。

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  • 来源
    《Proceedings of the IEEE》 |2012年第s1期|p.1567-1584|共18页
  • 作者

    Makeig S.;

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