Title :
Ratiometric Artifact Reduction in Low Power Reflective Photoplethysmography
Author :
Patterson, J.A.C. ; Guang-Zhong Yang
Author_Institution :
Hamlyn Centre, Imperial Coll. London, London, UK
Abstract :
This paper presents effective signal-processing techniques for the compensation of motion artifacts and ambient light offsets in a reflective photoplethysmography sensor suitable for wearable applications. A ratiometric comparison of infrared (IR) and red absorption characteristics cancels out noise that is multiplicative in nature and amplitude modulation of pulsatile absorption signals enables rejection of additive noise. A low-power, discrete-time pulse-oximeter platform is used to capture IR and red photoplethysmograms so that the data used for analysis have noise levels representative of what a true body sensor network device would experience. The proposed artifact rejection algorithm is designed for real-time implementation with a low-power microcontroller while being robust enough to compensate for varying levels in ambient light as well as reducing the effects of motion-induced artifacts. The performance of the system is illustrated by its ability to extract a typical plethysmogram heart-rate waveform since the sensor is subjected to a range of physical disturbances.
Keywords :
biomedical electronics; biomedical optical imaging; body sensor networks; cardiology; data analysis; feature extraction; infrared imaging; low-power electronics; medical image processing; microcontrollers; motion compensation; photoplethysmography; prosthetics; waveform analysis; ambient light offsets; artifact rejection algorithm; body sensor network device; data analysis; discrete-time pulse-oximeter platform; feature extraction; infrared absorption; low-power microcontroller; low-power reflective photoplethysmography sensor; motion artifact compensation; plethysmogram heart-rate waveform; ratiometric artifact reduction; real-time implementation; red photoplethysmogram; signal-processing technique; wearable applications; Absorption; Blood; Light emitting diodes; Mathematical model; Noise; Optical sensors; Transducers; Amplitude modulation; body sensor networks (BSNs); heart-rate (HR) monitoring; low power; motion artifact; photoplethysmography (PPG); reflective photoplethysmography;
Journal_Title :
Biomedical Circuits and Systems, IEEE Transactions on
DOI :
10.1109/TBCAS.2011.2161304