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Performance Evaluation of Electroencephalograph with Negative Capacitance Converter In terms of measuring somatosensory-evoked potentials and high-frequency oscillations

机译:测量躯体感应诱发电位和高频振荡的磁性电容转换器的脑电图性能评价

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Spontaneous electroencephalogram (EEG) and evoked potentials measured from the scalp are considered to be attenuated by impedance of mediated biological tissues such as skull, biomembrane and cortex. Voltage loss at these tissues may deteriorate the measured signal. In this study, we explored a possibility that an electroencephalograph bearing enhanced input- impedance could detect more sensitively the short latency somatosensory-evoked potential (SEPs) and high frequency oscillations (HFOs) in SEPs. We introduced a negative capacitance converter (NCC) into the electroencephalograph at front end. We expected the NCC to reduce floating capacitance in shielded wires between electrode and the electroencephalograph, and consequently to enhance the input-impedance of the device especially in higher frequency region. SEPs and HFOs were measured in eight subjects with the proposed device and compared with those measured with a commercial electroencephalograph. 7 of 8 showed larger amplitude of SEPs when EEG measured with the proposed device, but only 4 out of 7 showed larger amplitude of HFOs.
机译:从头皮中测量的自发脑电图(EEG)和诱发电位被认为是通过介导的生物组织如颅骨,生物膜和皮质等阻抗来衰减。这些组织的电压损失可能会劣化测量信号。在这项研究中,我们探讨了脑电图的可能性增强的输入可能在SEP中的短期延迟躯体感应诱发的潜在(SEP)和高频振荡(HFOS)更敏感地检测。我们将负电容转换器(NCC)引入前端的脑电图。我们预计NCC将在电极和脑电图之间的屏蔽线中降低浮动电容,从而提高器件的输入阻抗,尤其是在较高频率区域中。在八个受试者中测量SEPS和HFO,并与所提出的装置进行比较,与商业脑电图测量的那些。当用所提出的装置测量EEG时,7的8个中的7个中的较大幅度较大,但是7中只有4个显示出较大的HFO幅度。

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