5 CONCLUSION
This paper presents a PET-based wearable sensor for
arterial pulse waveform measurement for untrained
individuals to conduct the arterial pulse waveform
measurement. The sensor contains a PDMS
microstructure embedded with a 51 resistive
transducer array, spanning 6mm and with a spatial
resolution of 1.5mm. Built on PET substrate, the
sensor is fabricated using a low-cost, two-mask
fabrication process. To demonstrate its feasibility for
arterial pulse waveform measurement, one sensor is
used to measure carotid arterial pulse waveform of
three subjects at rest and two subjects post-exercise,
while another sensor of the same design is used to
measure radial arterial pulse waveform of one
subject at rest. The respiration and motion artifact
introduces baseline drift to originally recorded pulse
signal. A combination of DMWT and CSE is
utilized to effectively remove the baseline drift in a
pulse signal. The robustness of the sensor to baseline
drift is demonstrated by the pulse signals measured
on a subject post-exercise. After its baseline drift
being removed, an arterial pulse waveform is
expressed in terms of the sensor deflection as a
function of time. All the measured pulse waveforms
of carotid and radial arteries of the three subjects at
rest and post-exercise are consistent with their
counterparts in the literature, thus demonstrating the
feasibility of using the sensor as a wearable health
monitoring device.
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