MobilePhys

Author:

Liu Xin1,Wang Yuntao2,Xie Sinan2,Zhang Xiaoyu2,Ma Zixian3,McDuff Daniel4,Patel Shwetak1

Affiliation:

1. University of Washington, Seattle, WA, USA

2. Tsinghua University, Beijing, China

3. Zhejiang University, HangZhou, China

4. Microsoft Research, Redmond, WA, USA

Abstract

Camera-based contactless photoplethysmography refers to a set of popular techniques for contactless physiological measurement. The current state-of-the-art neural models are typically trained in a supervised manner using videos accompanied by gold standard physiological measurements. However, they often generalize poorly out-of-domain examples (i.e., videos that are unlike those in the training set). Personalizing models can help improve model generalizability, but many personalization techniques still require some gold standard data. To help alleviate this dependency, in this paper, we present a novel mobile sensing system called MobilePhys, the first mobile personalized remote physiological sensing system, that leverages both front and rear cameras on a smartphone to generate high-quality self-supervised labels for training personalized contactless camera-based PPG models. To evaluate the robustness of MobilePhys, we conducted a user study with 39 participants who completed a set of tasks under different mobile devices, lighting conditions/intensities, motion tasks, and skin types. Our results show that MobilePhys significantly outperforms the state-of-the-art on-device supervised training and few-shot adaptation methods. Through extensive user studies, we further examine how does MobilePhys perform in complex real-world settings. We envision that calibrated or personalized camera-based contactless PPG models generated from our proposed dual-camera mobile sensing system will open the door for numerous future applications such as smart mirrors, fitness and mobile health applications.

Publisher

Association for Computing Machinery (ACM)

Subject

Computer Networks and Communications,Hardware and Architecture,Human-Computer Interaction

Reference49 articles.

1. Detecting Pulse from Head Motions in Video

2. Remote spectral measurements of the blood volume pulse with applications for imaging photoplethysmography

3. Unsupervised skin tissue segmentation for remote photoplethysmography

4. Pradyumna Chari , Krish Kabra , Doruk Karinca , Soumyarup Lahiri , Diplav Srivastava , Kimaya Kulkarni , Tianyuan Chen , Maxime Cannesson , Laleh Jalilian , and Achuta Kadambi . 2020. Diverse R-PPG: Camera-Based Heart Rate Estimation for Diverse Subject Skin-Tones and Scenes. arXiv preprint arXiv:2010.12769 ( 2020 ). Pradyumna Chari, Krish Kabra, Doruk Karinca, Soumyarup Lahiri, Diplav Srivastava, Kimaya Kulkarni, Tianyuan Chen, Maxime Cannesson, Laleh Jalilian, and Achuta Kadambi. 2020. Diverse R-PPG: Camera-Based Heart Rate Estimation for Diverse Subject Skin-Tones and Scenes. arXiv preprint arXiv:2010.12769 (2020).

5. DeepPhys: Video-Based Physiological Measurement Using Convolutional Attention Networks

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1. Examining the challenges of blood pressure estimation via photoplethysmogram;Scientific Reports;2024-08-07

2. ExposureNet: Mobile camera exposure parameters autonomous control for blur effect prevention;IET Image Processing;2024-07-25

3. Non-Contact Vision-Based Techniques of Vital Sign Monitoring: Systematic Review;Sensors;2024-06-19

4. RePhys: Lightweight Heart Rate Measurement Network for Face Videos Based on Reparameterization;2024 7th International Conference on Artificial Intelligence and Big Data (ICAIBD);2024-05-24

5. Design of Portable Non-contact Physiological Data Acquisition System;Proceedings of the 2024 7th International Conference on Software Engineering and Information Management;2024-01-23

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