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A novel mobile wearable system for providing real-time monitoring of respiratory pattern, thoracic motion, and SpO2 on a tablet PC: A feasibility study

Jun Ueki, Keiko Hino, Emika Sano, Megumi Ikeda, Masaya Yonezawa, Hiroshi Gyobu, Yuko Sano, Hiroo Wada
European Respiratory Journal 2020 56: 406; DOI: 10.1183/13993003.congress-2020.406
Jun Ueki
1Clinical Research Unit of Respiratory Pathophysiology, Graduate School of Health Care and Nursing, Juntendo University, Urayasu, Japan
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  • For correspondence: junueki@juntendo.ac.jp
Keiko Hino
2Department of Adult Health Nursing, Faculty of health care and nursing, Juntendo University, Urayasu, Japan
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Emika Sano
3Department of Nursing, Faculty of Health Science Kyorin University, Tokyo, Japan
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Megumi Ikeda
2Department of Adult Health Nursing, Faculty of health care and nursing, Juntendo University, Urayasu, Japan
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Masaya Yonezawa
4Bando Chemical Industries, Kobe, Japan
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Hiroshi Gyobu
4Bando Chemical Industries, Kobe, Japan
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Yuko Sano
1Clinical Research Unit of Respiratory Pathophysiology, Graduate School of Health Care and Nursing, Juntendo University, Urayasu, Japan
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Hiroo Wada
5Department of Public Health , Juntendo University Graduate School of Medicine, Tokyo, Japan
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Abstract

Background: A real-time assessment of breathing condition such as respiratory pattern, thoracic motion, and SpO2 is essential in conducting breathing retraining and stretching of thorax as a respiratory conditioning of pulmonary rehabilitation.

Aims: To examine assessment of accuracy and usability of the wearable suite using C-STRETCH® (Bando Chemical Industries, Japan) we developed, breathing conditions of 12 healthy volunteers (mean age 44.3) were studied.

Methods: C-STRETCH® is a capacitance type strain sensor which is composed of a highly elastic elastomer film insulation layer and the elastic electrically conducting layers made from nanocarbon. Participants were asked to breathe with a quantitative rating of respiration rate and I:E ratio within the rage of 10 to 43/min and 1:1 to 1:3, respectively. Their breathing conditions were tracked using respiratory profile monitor by wearing a mask.

Results: Bland Altman analysis confirmed the agreement between respiratory rate and I:E ratios of the volunteers and that of a developed system, respectively. Limits of agreements were within the range of 78.9 % to 100 %. Regarding usability, 92% answered this wearable suite was comfortable and did not feel any tightness in their chest, respectively.

Conclusions: It is suggested that the novel mobile wearable system we developed will provide us with accurate real-time assessment of respiratory pattern and thoracic motion non-invasively. An interface that allows tablet PC to integrate with real-time monitoring and total control system using Bluetooth improved portability and will be available in many clinical settings.

  • Chronic diseases
  • Measurement properties
  • Critically ill patients

Footnotes

Cite this article as: European Respiratory Journal 2020; 56: Suppl. 64, 406.

This abstract was presented at the 2020 ERS International Congress, in session “Respiratory viruses in the "pre COVID-19" era”.

This is an ERS International Congress abstract. No full-text version is available. Further material to accompany this abstract may be available at www.ers-education.org (ERS member access only).

  • Copyright ©the authors 2020
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A novel mobile wearable system for providing real-time monitoring of respiratory pattern, thoracic motion, and SpO2 on a tablet PC: A feasibility study
Jun Ueki, Keiko Hino, Emika Sano, Megumi Ikeda, Masaya Yonezawa, Hiroshi Gyobu, Yuko Sano, Hiroo Wada
European Respiratory Journal Sep 2020, 56 (suppl 64) 406; DOI: 10.1183/13993003.congress-2020.406

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A novel mobile wearable system for providing real-time monitoring of respiratory pattern, thoracic motion, and SpO2 on a tablet PC: A feasibility study
Jun Ueki, Keiko Hino, Emika Sano, Megumi Ikeda, Masaya Yonezawa, Hiroshi Gyobu, Yuko Sano, Hiroo Wada
European Respiratory Journal Sep 2020, 56 (suppl 64) 406; DOI: 10.1183/13993003.congress-2020.406
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