Your smartphone could act as a pulse-oximeter and as a single-lead ECG
Ahsan Mehmood, Asma Sarauji, M. Mahboob Ur Rahman, Tareq Y., Al-Naffouri

TL;DR
This paper presents a deep learning-based method to transform a smartphone into a non-invasive health monitoring device capable of measuring vital signs and extracting ECG signals from fingertip videos, enabling remote health assessments.
Contribution
It introduces novel CNN and CLIP-based models for estimating vital signs and a DCT+ neural network approach for deriving ECG signals from video data.
Findings
Accurate estimation of pulse rate, SpO2, and respiratory rate from fingertip videos.
Successful extraction of single-lead ECG signals using the proposed video-to-ECG method.
Potential applications in remote healthcare and mobile health monitoring.
Abstract
In the post-covid19 era, every new wave of the pandemic causes an increased concern among the masses to learn more about their state of well-being. Therefore, it is the need of the hour to come up with ubiquitous, low-cost, non-invasive tools for rapid and continuous monitoring of body vitals that reflect the status of one's overall health. In this backdrop, this work proposes a deep learning approach to turn a smartphone-the popular hand-held personal gadget-into a diagnostic tool to measure/monitor the three most important body vitals, i.e., pulse rate (PR), blood oxygen saturation level (aka SpO2), and respiratory rate (RR). Furthermore, we propose another method that could extract a single-lead electrocardiograph (ECG) of the subject. The proposed methods include the following core steps: subject records a small video of his/her fingertip by placing his/her finger on the rear camera…
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Taxonomy
TopicsNon-Invasive Vital Sign Monitoring · ECG Monitoring and Analysis · Heart Rate Variability and Autonomic Control
MethodsContrastive Language-Image Pre-training
