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A compensation scheme for non-ideal circuit effects in biomedical impedance sensor

机译:生物医学阻抗传感器非理想电路效应补偿方案

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The accuracy of an I/Q based biomedical impedance sensing sensor (IQBIS) suffers significantly from the PVT effects of the analog front-end, such as the amplitude errors of the stimulation signals, gain mismatches, amplitude and phase imbalances of in-phase (I) and quadrature (Q) signals, etc. These practical effects will severely impede the system performance if handled improperly. In this paper, the degradations of sensing performance by such imperfections are mathematically analyzed and quantified. Following theoretical studies, a digitally controlled correction approach is proposed to finely alleviate these impairments. The performance of the proposed scheme had been verified using Simulink and MATLAB. With the proposed error correction scheme, the accuracy is improved by at least 17 times compared to that of the typical IQBIS, for both real and imaginary values of impedance. Thus, the proposed method is very useful for IQBIS, in resisting degradation in sensing accuracies due to the process-voltage-temperature (PVT) effects.
机译:基于I / Q的生物医学阻抗感测传感器(IQBIS)的准确性显着地从模拟前端的PVT效应,例如刺激信号的幅度误差,增益不匹配,同期的幅度和相位不平衡( i)和正交(Q)信号等。如果处理不当,这些实际效果将严重阻碍系统性能。在本文中,通过这种缺陷的感测性能的降解进行了数学分析和量化。在理论研究之后,提出了一种数字控制的校正方法来细化这些损伤。使用Simulink和Matlab验证了所提出的方案的性能。利用所提出的纠错方案,与典型的IQBIS相比,精度提高了至少17次,对​​于阻抗的实际和虚数。因此,所提出的方法对于IQBIS非常有用,在抵抗由于过程 - 电压 - 温度(PVT)效应引起的感测精度的劣化。

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