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A Bio-Inspired Ultra-Energy-Efficient Analog-to-Digital Converter for Biomedical Applications

机译:受生物启发的超节能型模数转换器,用于生物医学应用

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There is an increasing trend in several biomedical applications such as pulse-oximetry, ECG, PCG, EEG, neural recording, temperature sensing, and blood pressure for signals to be sensed in small portable wireless devices. Analog-to-digital converters (ADCs) for such applications only need modest precision (les 8 bits) and modest speed (les 40 kHz) but need to be very energy efficient. ADCs for implanted medical devices need micropower operation to run on a small battery for decades. We present a bio-inspired ADC that uses successive integrate-and-fire operations like spiking neurons to perform analog-to-digital conversion on its input current. In a 0.18-mum subthreshold CMOS implementation, we were able to achieve 8 bits of differential nonlinearlity limited precision and 7.4 bits of thermal-noise-limited precision at a 45-kHz sample rate with a total power consumption of 960 nW. This converter's net energy efficiency of 0.12 pJ/quantization level appears to be the best reported so far. The converter is also very area efficient (<0.021 mm2) and can be used in applications that need several converters in parallel. Its algorithm allows easy generalization to higher speed applications through interleaving, to performing polynomial analog computations on its input before digitization, and to direct time-to-digital conversion of event-based cardiac or neural signals
机译:在一些生物医学应用中,例如脉搏血氧仪,ECG,PCG,EEG,神经记录,温度感测和血压的增长趋势正在小型便携式无线设备中被感测。用于此类应用的模数转换器(ADC)仅需要适度的精度(les 8位)和适度的速度(les 40 kHz),但是需要非常节能。植入式医疗设备的ADC需要微功率运行才能使用小型电池运行数十年。我们提出了一种受生物启发的ADC,该ADC使用连续的积分和发射操作(如尖峰神经元)对其输入电流执行模数转换。在0.18μm的亚阈值CMOS实现中,我们能够以45kHz的采样率实现8位差分非线性限制精度和7.4位热噪声限制精度,总功耗为960nW。该转换器的净能量效率为0.12 pJ /量化级别,似乎是迄今为止报道得最好的。该转换器还具有极高的面积效率(<0.021 mm2),可用于需要多个并行转换器的应用。它的算法允许通过交织轻松将其推广到更高速度的应用程序,在数字化之前对其输入执行多项式模拟计算,并直接对基于事件的心脏或神经信号进行时间到数字的转换

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