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Development of 16-channels Compact EEG System Using Real-time High-speed Wireless Transmission

机译:利用实时高速无线传输开发16通道紧凑型EEG系统

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For the convenience of people with disability and for normal people, a demand for intelligent interfaces is ever increasing and therefore related studies are actively being conducted. Recently a study is being conducted to develop an interface through face expression, movement of the body and eye movements, and further more active attempts to use electrical signals(brainwave, electrocardiogram, electromyogram) measured from the human body is also actively being progressed. In addition, the development and the usage of mobile devices and smart devices are promoting these research activities even more. The brainwave is measured by electrical activities between nerve cells in the cerebral cortex using scalp electrodes. The brainwave is mainly used for diagnosis and treatment of diseases such as epilepsy, encephalitis, brain tumors and brain damage. As a result, the brainwave measurement methods and analytical methods were developed. Interface using the brainwave will not go through language or body behavior which is the result of the information processed by the brain but will pass directly to the system providing a brain-computer interface (BCI). This is possible because a variety of the brainwave appears depending on the human’s physical and mental state. Using the brainwave with the intelligent brain-computer interface or combining it with mobile devices and smart devices, regardless of space constraints, the brainwave measurement should be possible.[4,7] In this study, in order to measure the brainwave without spatial constraint, 16 channel compact brainwave measurements system using a high-speed wireless communications were designed. It was designed with a 16 channel to classify the various brainwave patterns that appear and for estimating the location of the nerve cells that triggered the brainwave. And in order to transmit the brainwave data within the channel without loss, a high-speed wireless communication must be possible that can enable a high-speed wireless transmission more sufficient than the Bluetooth, therefore, 802.11 compliant Wi-Fi communication methods were used to transfer the data to the PC. In addition, by using an analog front-end IC having a single-chip configuration with real-time digital filters, the miniaturization of the system was implemented and in order to verify the system Eye-blocking was used to observe the changes in the EEG signal.
机译:为了方便残疾人和普通人,对智能接口的需求不断增长,因此正在积极进行相关研究。最近,正在进行通过面部表情,身体运动和眼睛运动来开发界面的研究,并且还积极地进行更积极的尝试来使用从人体测量的电信号(脑波,心电图,肌电图)。另外,移动设备和智能设备的开发和使用正在进一步促进这些研究活动。脑电波是使用头皮电极通过大脑皮层神经细胞之间的电活动来测量的。脑电波主要用于癫痫,脑炎,脑肿瘤和脑损伤等疾病的诊断和治疗。结果,开发了脑电波测量方法和分析方法。使用脑电波的界面不会经过语言或身体行为,而这是大脑处理信息的结果,但是会直接传递给提供脑机接口(BCI)的系统。这是可能的,因为取决于人的身体和精神状态,会出现各种各样的脑电波。将脑电波与智能脑机接口配合使用,或将其与移动设备和智能设备结合使用,无论空间如何限制,都应该可以进行脑电波测量。[4,7]在这项研究中,为了测量不受空间限制的脑电波设计了使用高速无线通信的16通道紧凑型脑电波测量系统。它设计有16个通道,用于对出现的各种脑电波模式进行分类,并估计触发脑电波的神经细胞的位置。并且为了在通道内无损失地传输脑电波数据,高速无线通信必须是可能的,该高速无线通信可以使高速无线传输比蓝牙更充分,因此,使用了802.11兼容的Wi-Fi通信方法将数据传输到PC。另外,通过使用具有实时数字滤波器的单芯片配置的模拟前端IC,实现了系统的小型化,并且为了验证系统,采用了“遮眼”功能来观察EEG的变化。信号。

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