Electrical Engineering Department, National Sun Yat-Sen University, Kaohsiung 804, Taiwan.
IEEE Trans Neural Syst Rehabil Eng. 2013 Jan;21(1):47-54. doi: 10.1109/TNSRE.2012.2213842. Epub 2012 Aug 23.
Low-power wearable recording of biopotentials requires acquisition front-ends with high common-mode rejection for interference suppression and adjustable gain to provide an optimum signal range to a cascading analogue-to-digital stage. A microcontroller operated double-differential (DD) recording setup and automatic gain control circuit (AGC) are discussed which reject common-mode interference and provide tunable gain, thus compensating for imbalance and variation in electrode interface impedance. Custom-designed variable gain amplifiers (ASIC) are used as part of the recording setup. The circuit gain and balance is set by the timing of microcontroller generated clock signals. Measured results are presented which confirm that improved common-mode rejection is achieved compared to a single differential amplifier in the presence of input network imbalance. Practical measured examples further validate gain control suitable for biopotential recording and power-line rejection for wearable ECG and EMG recording. The prototype front-end consumes 318 μW including amplifiers and microcontroller.
低功耗可穿戴式生物电势记录需要具有高共模抑制比的采集前端,以抑制干扰并提供可调增益,为级联模拟-数字转换阶段提供最佳信号范围。讨论了一种由微控制器操作的双差分(DD)记录设置和自动增益控制电路(AGC),该电路可抑制共模干扰并提供可调增益,从而补偿电极接口阻抗的不平衡和变化。定制设计的可变增益放大器(ASIC)用作记录设置的一部分。电路增益和平衡由微控制器生成的时钟信号的定时设置。给出了测量结果,证实与存在输入网络不平衡的单个差分放大器相比,实现了改进的共模抑制。实际测量的示例进一步验证了适合生物电势记录的增益控制以及可穿戴式 ECG 和 EMG 记录的电源线抑制。该原型前端包括放大器和微控制器在内,消耗的功率为 318 μW。