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A supervised machine learning semantic segmentation approach for detecting artifacts in plethysmography signals from wearables.

Zhicheng GuoCheng DingXiao HuCynthia Rudin
Published in: Physiological measurement (2021)
The proposed method is able to pinpoint exact locations of artifacts with high precision; in the past, we had only a binary classification of whether a PPG signal has good or poor quality. This more nuanced information will be critical to further inform the design of algorithms to detect cardiac arrhythmia.
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