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Smart Garment Fabrics to Enable Non-Contact Opto-Physiological Monitoring

Imaging photoplethysmography (iPPG) is an emerging technology used to assess microcirculation and cardiovascular signs by collecting backscattered light from illuminated tissue using optical imaging sensors. The aim of this study was to study how effective smart garment fabrics could be capturing ph...

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Detalles Bibliográficos
Autores principales: Iakovlev, Dmitry, Hu, Sijung, Hassan, Harnani, Dwyer, Vincent, Ashayer-Soltani, Roya, Hunt, Chris, Shen, Jinsong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6022879/
https://www.ncbi.nlm.nih.gov/pubmed/29596396
http://dx.doi.org/10.3390/bios8020033
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author Iakovlev, Dmitry
Hu, Sijung
Hassan, Harnani
Dwyer, Vincent
Ashayer-Soltani, Roya
Hunt, Chris
Shen, Jinsong
author_facet Iakovlev, Dmitry
Hu, Sijung
Hassan, Harnani
Dwyer, Vincent
Ashayer-Soltani, Roya
Hunt, Chris
Shen, Jinsong
author_sort Iakovlev, Dmitry
collection PubMed
description Imaging photoplethysmography (iPPG) is an emerging technology used to assess microcirculation and cardiovascular signs by collecting backscattered light from illuminated tissue using optical imaging sensors. The aim of this study was to study how effective smart garment fabrics could be capturing physiological signs in a non-contact mode. The present work demonstrates a feasible approach of, instead of using conventional high-power illumination sources, integrating a grid of surface-mounted light emitting diodes (LEDs) into cotton fabric to spotlight the region of interest (ROI). The green and the red LEDs (525 and 660 nm) placed on a small cotton substrate were used to locally illuminate palm skin in a dual-wavelength iPPG setup, where the backscattered light is transmitted to a remote image sensor through the garment fabric. The results show that the illuminations from both wavelength LEDs can be used to extract heart rate (HR) reaching an accuracy of 90% compared to a contact PPG probe. Stretching the fabric over the skin surface alters the morphology of iPPG signals, demonstrating a significantly higher pulsatile amplitude in both channels of green and red illuminations. The skin compression by the fabric could be potentially utilised to enhance the penetration of illumination into cutaneous microvascular beds. The outcome could lead a new avenue of non-contact opto-physiological monitoring and assessment with functional garment fabrics.
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spelling pubmed-60228792018-07-02 Smart Garment Fabrics to Enable Non-Contact Opto-Physiological Monitoring Iakovlev, Dmitry Hu, Sijung Hassan, Harnani Dwyer, Vincent Ashayer-Soltani, Roya Hunt, Chris Shen, Jinsong Biosensors (Basel) Article Imaging photoplethysmography (iPPG) is an emerging technology used to assess microcirculation and cardiovascular signs by collecting backscattered light from illuminated tissue using optical imaging sensors. The aim of this study was to study how effective smart garment fabrics could be capturing physiological signs in a non-contact mode. The present work demonstrates a feasible approach of, instead of using conventional high-power illumination sources, integrating a grid of surface-mounted light emitting diodes (LEDs) into cotton fabric to spotlight the region of interest (ROI). The green and the red LEDs (525 and 660 nm) placed on a small cotton substrate were used to locally illuminate palm skin in a dual-wavelength iPPG setup, where the backscattered light is transmitted to a remote image sensor through the garment fabric. The results show that the illuminations from both wavelength LEDs can be used to extract heart rate (HR) reaching an accuracy of 90% compared to a contact PPG probe. Stretching the fabric over the skin surface alters the morphology of iPPG signals, demonstrating a significantly higher pulsatile amplitude in both channels of green and red illuminations. The skin compression by the fabric could be potentially utilised to enhance the penetration of illumination into cutaneous microvascular beds. The outcome could lead a new avenue of non-contact opto-physiological monitoring and assessment with functional garment fabrics. MDPI 2018-03-29 /pmc/articles/PMC6022879/ /pubmed/29596396 http://dx.doi.org/10.3390/bios8020033 Text en © 2018 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Iakovlev, Dmitry
Hu, Sijung
Hassan, Harnani
Dwyer, Vincent
Ashayer-Soltani, Roya
Hunt, Chris
Shen, Jinsong
Smart Garment Fabrics to Enable Non-Contact Opto-Physiological Monitoring
title Smart Garment Fabrics to Enable Non-Contact Opto-Physiological Monitoring
title_full Smart Garment Fabrics to Enable Non-Contact Opto-Physiological Monitoring
title_fullStr Smart Garment Fabrics to Enable Non-Contact Opto-Physiological Monitoring
title_full_unstemmed Smart Garment Fabrics to Enable Non-Contact Opto-Physiological Monitoring
title_short Smart Garment Fabrics to Enable Non-Contact Opto-Physiological Monitoring
title_sort smart garment fabrics to enable non-contact opto-physiological monitoring
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6022879/
https://www.ncbi.nlm.nih.gov/pubmed/29596396
http://dx.doi.org/10.3390/bios8020033
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