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Design of EEG Signal Acquisition System Using Arduino MEGA1280 and EEGAnalyzer

机译:使用Arduino Mega1280和Eeganalyzer设计EEG信号采集系统

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This study integrates the hardware circuit design and software development to achieve a 16 channels Electroencephalogram (EEG) system for Brain Computer Interface (BCI) applications. Signals obtained should be strong enough amplitude that is usually expressed in units of millivolts and reasonably clean of noise that appears when the data acquisition process. The process of data acquisition consists of two stages are the acquisition of the original EEG signal can be done by the active electrode with an instrumentation amplifier or a preamplifier and processing the signal to get better signals with improved signal quality by removing noise using filters with IC OPAMP. The design of a preamplifier with high common-mode rejection ratio and high signal-to-noise ratio is very important. Moreover, the friction between the electrode pads and the skin as well as the design of dual power supply. Designs used single-power AC-coupled circuit, which effectively reduces the DC bias and improves the error caused by the effects of part errors. At the same time, the digital way is applied to design the adjustable amplification and filter function, which can design for different EEG frequency bands. The next step, those EEG signals received by the microcontroller through a port Analog to Digital Converter (ADC) that integrated and converted into digital signals and stored in the RAM of microcontroller which simultaneously at 16 ports in accordance with the minimal number of points of data collection on the human scalp. Implementation results have shown the series of acquisitions to work properly so that it can be displayed EEG signals via software EEGAnalyzer.
机译:本研究集成了硬件电路设计和软件开发,实现了16个通道脑电图(BCI)应用程序的脑电图(EEG)系统。所获得的信号应该是足够强大的幅度,其通常以毫伏为单位表示,并且在数据采集过程中出现的噪声合理地清洁。数据采集​​的过程由两个阶段组成的是原始EEG信号的采集可以由有源电极与仪表放大器或前置放大器完成,并通过使用IC的滤波器去除噪声来处理具有改善的信号质量的更好的信号以获得更好的信号。 opamp。具有高共模抑制比和高信噪比的前置放大器的设计非常重要。而且,电极垫和皮肤之间的摩擦以及双电源的设计。设计使用单功率交流耦合电路,有效降低了DC偏置并提高了部分误差效果引起的误差。同时,数字方式应用于设计可调放大和过滤功能,可以为不同的EEG频带设计。下一步,微控制器通过端口模拟到数字转换器(ADC)接收的那些EEG信号,它集成并转换为数字信号并存储在微控制器的RAM中,根据最小数据数量的最小数量,同时在16个端口处同时在人类头皮上收藏。实施结果显示了正常工作的一系列采集,以便通过软件EEGANALYZER显示EEG信号。

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