School of Electrical Engineering, Korea Advanced Institute of Science and Technology (KAIST), Daejeon 34141, Korea.
Division of Engineering, New York University Abu Dhabi, Abu Dhabi 129188, United Arab Emirates.
Sensors (Basel). 2022 Feb 17;22(4):1563. doi: 10.3390/s22041563.
This paper presents an error-tolerant and power-efficient impedance measurement scheme for bioimpedance acquisition. The proposed architecture measures the magnitude and the real part of the target complex impedance, unlike other impedance measurement architectures measuring either the real/imaginary components or the magnitude and phase. The phase information of the target impedance is obtained by using the ratio between the magnitude and the real components. This can allow for avoiding direct phase measurements, which require fast, power-hungry circuit blocks. A reference resistor is connected in series with the target impedance to compensate for the errors caused by the delay in the sinusoidal signal generator and the amplifier at the front. Moreover, an additional magnitude measurement path is connected to the reference resistor to cancel out the nonlinearity of the proposed system and enhance the settling speed of the low-pass filter by a ratio-based detection. Thanks to this ratio-based detection, the accuracy is enhanced by 30%, and the settling time is improved by 87.7% compared to the conventional single-path detection. The proposed integrated circuit consumes only 513 μW for a wide frequency range of 10 Hz to 1 MHz, with the maximum magnitude and phase errors of 0.3% and 2.1°, respectively.
本文提出了一种用于生物阻抗采集的容错且节能的阻抗测量方案。与仅测量实部/虚部或幅度和相位的其他阻抗测量架构不同,所提出的架构测量目标复阻抗的幅度和实部。通过使用幅度和实部之间的比值来获取目标阻抗的相位信息,这可以避免直接进行相位测量,因为直接相位测量需要快速、耗电的电路模块。在前端,将参考电阻与目标阻抗串联,以补偿正弦信号发生器和放大器延迟引起的误差。此外,还连接了一个额外的幅度测量路径到参考电阻,以消除系统的非线性,并通过基于比率的检测提高低通滤波器的稳定速度。由于这种基于比率的检测,与传统的单路径检测相比,精度提高了 30%,稳定时间提高了 87.7%。该集成电路在 10 Hz 至 1 MHz 的宽频率范围内仅消耗 513 μW,最大幅度和相位误差分别为 0.3%和 2.1°。