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Tracking the behavior of UWB transmissions in invasive BCI applications

机译:跟踪UWB传输在侵入式BCI应用中的行为

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Ultra wideband (UWB) radio technology has been shown to have tremendous potential to support certain Brain Computer Interface (BCI) applications. To implant UWB transmitters inside a human brain to transmit ECoG signals from the neurons in the brain (collected by bio-implantable electrodes) to stimulators residing on the spinal cord or on muscles at different parts of the body (non-invasive), almost sounds like a sci-fi story. In order to make this sci-fi dream a reality, many aspects of the problem needs to be addressed. In this paper, we attempt to study one such aspect. Specifically, we study the behavior of UWB transmissions through the human brain, primarily focusing on the behavior of the signal when it traverses through human blood in the brain before it can be received by the receiver planted on the surface of the human body (spinal cord, upper limbs, etc). We have performed in-depth numerical analysis through theoretical and experimental procedures which has helped us gain insight into the attenuation, delay and transmit power properties of the signal at different frequencies within the UWB spectrum. We present these results in this paper. So far, there are no channel models available for UWB transmissions inside the human body. Our work, is a step in that direction.
机译:超宽带(UWB)无线电技术已被证明具有支持某些脑电脑界面(BCI)应用的巨大潜力。植入人脑内的UWB发射器,将eCog信号从大脑中的神经元(由生物植入电极收集)传递给住在脊髓上或身体不同部位(非侵入性)的肌肉上的刺激器,几乎听起来像一个科幻故事。为了使这个科幻梦想成为现实,需要解决这个问题的许多方面。在本文中,我们试图研究一个这样的方面。具体地,我们研究了通过人脑的UWB传输的行为,主要关注信号在脑中的人体血液中穿过人体血液的行为,然后可以通过种植在人体表面的接收器(脊髓,上肢等)。我们通过理论和实验程序进行了深入的数值分析,这有助于我们能够深入了解UWB频谱内不同频率的信号的衰减,延迟和传输功率特性。我们在本文中提出了这些结果。到目前为止,人体内部没有可用于UWB变速器的频道模型。我们的工作,是那个方向的一步。

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