Title :
A 58 nW ECG ASIC With Motion-Tolerant Heartbeat Timing Extraction for Wearable Cardiovascular Monitoring
Author :
Da He, David ; Sodini, Charles G.
Author_Institution :
Dept. of Electr. Eng. & Comput. Sci., Massachusetts Inst. of Technol., Cambridge, MA, USA
Abstract :
An ASIC for wearable cardiovascular monitoring is implemented using a topology that takes advantage of the electrocardiogram´s (ECG) waveform to replace the traditional ECG instrumentation amplifier, ADC, and signal processor with a single chip solution. The ASIC can extract heartbeat timings in the presence of baseline drift, muscle artifact, and signal clipping. The circuit can operate with ECGs ranging from the chest location to remote locations where the ECG magnitude is as low as 30 μV. Besides heartbeat detection, a midpoint estimation method can accurately extract the ECG R-wave timing, enabling the calculations of heart rate variability. With 58 nW of power consumption at 0.8 V supply voltage and 0.76 mm 2 of active die area in standard 0.18 μm CMOS technology, the ECG ASIC is sufficiently low power and compact to be suitable for long term and wearable cardiovascular monitoring applications under stringent battery and size constraints.
Keywords :
application specific integrated circuits; body sensor networks; cardiovascular system; electrocardiography; feature extraction; medical signal detection; muscle; patient monitoring; ADC; CMOS technology; ECG ASIC; ECG magnitude; R-wave timing; active die area; baseline drift; chest location; electrocardiogram waveform; heart rate variability; heartbeat detection; midpoint estimation method; motion-tolerant heartbeat timing extraction; muscle artifact; power 58 nW; power consumption; signal clipping; signal processor; single chip solution; supply voltage; traditional ECG instrumentation amplifier; voltage 0.8 V; voltage 30 muV; wearable cardiovascular monitoring applications; Clocks; Electrocardiography; Electronics packaging; Gain; Heart beat; Noise; Topology; Cardiovascular monitoring; electrocardiogram; heart rate; motion artifacts; wearable sensor;
Journal_Title :
Biomedical Circuits and Systems, IEEE Transactions on
DOI :
10.1109/TBCAS.2014.2346761