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    SVM 이용한 다중 생체신호기반 온열질환 감지 스마트 안전모 개발 = Smart Helmet for Vital Sign-Based Heatstroke Detection Using Support Vector Machine

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    https://www.riss.kr/link?id=A108364743

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    다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

    Recently, owing to global warming, average summer temperatures are increasing and the number of hot days is increasing is increasing, which leads to an increase in heat stroke. In particular, outdoor workers directly exposed to the heat are at higher risk of heat stroke; therefore, preventing heat-related illnesses and managing safety have become important. Although various wearable devices have been developed to prevent heat stroke for outdoor workers, applying various sensors to the safety helmets that workers must wear is an excellent alternative. In this study, we developed a smart helmet that measures various vital signs of the wearer such as body temperature, heart rate, and sweat rate; external environmental signals such as temperature and humidity; and movement signals of the wearer such as roll and pitch angles. The smart helmet can acquire the various data by connecting with a smartphone application. Environmental data can check the status of heat wave advisory, and the individual vital signs can monitor the health of workers. In addition, we developed an algorithm that classifies the risk of heat-related illness as normal and abnormal by inputting a set of vital signs of the wearer using a support vector machine technique, which is a machine learning technique that allows for rapid binary classification with high reliability. Furthermore, the classified results suggest that the safety manager can supervise the prevention of heat stroke by receiving feedback from the control system.
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    Recently, owing to global warming, average summer temperatures are increasing and the number of hot days is increasing is increasing, which leads to an increase in heat stroke. In particular, outdoor workers directly exposed to the heat are at higher ...

    Recently, owing to global warming, average summer temperatures are increasing and the number of hot days is increasing is increasing, which leads to an increase in heat stroke. In particular, outdoor workers directly exposed to the heat are at higher risk of heat stroke; therefore, preventing heat-related illnesses and managing safety have become important. Although various wearable devices have been developed to prevent heat stroke for outdoor workers, applying various sensors to the safety helmets that workers must wear is an excellent alternative. In this study, we developed a smart helmet that measures various vital signs of the wearer such as body temperature, heart rate, and sweat rate; external environmental signals such as temperature and humidity; and movement signals of the wearer such as roll and pitch angles. The smart helmet can acquire the various data by connecting with a smartphone application. Environmental data can check the status of heat wave advisory, and the individual vital signs can monitor the health of workers. In addition, we developed an algorithm that classifies the risk of heat-related illness as normal and abnormal by inputting a set of vital signs of the wearer using a support vector machine technique, which is a machine learning technique that allows for rapid binary classification with high reliability. Furthermore, the classified results suggest that the safety manager can supervise the prevention of heat stroke by receiving feedback from the control system.

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    참고문헌 (Reference)

    1 T. W. Son, "Wearable Heat Stroke Detection System in IoT-based Environment" 192 : 3686-3695, 2021

    2 C. Cortes, "Support-vector networks" 20 (20): 273-297, 1995

    3 I. Campero-Jurado, "Smart helmet 5.0 for industrial internet of things using artificial intelligence" 20 (20): 6241(1)-6241(27), 2020

    4 A. Altamura, "SAFE : Smart helmet for advanced factory environment" 2 (2): e86-, 2019

    5 W. O. Roberts, "Recurrent Heat Stroke in a Runner : Race Simulation Testing for Return to Activity" 48 (48): 785-789, 2016

    6 D. Yoon, "Recent changes in heatwave characteristics over Korea" 55 (55): 1685-1696, 2020

    7 G. Havenith, "Male and female upper body sweat distribution during running measured with technical absorbents" 104 (104): 245-255, 2008

    8 T. Eldemerdash, "IoT based smart helmet for mining industry application" 29 (29): 373-387, 2020

    9 K. L. Ebi, "Hot weather and heat extremes : health risks" 398 (398): 698-708, 2021

    10 A. Haines, "Health effects of climate change" 291 (291): 99-103, 2004

    1 T. W. Son, "Wearable Heat Stroke Detection System in IoT-based Environment" 192 : 3686-3695, 2021

    2 C. Cortes, "Support-vector networks" 20 (20): 273-297, 1995

    3 I. Campero-Jurado, "Smart helmet 5.0 for industrial internet of things using artificial intelligence" 20 (20): 6241(1)-6241(27), 2020

    4 A. Altamura, "SAFE : Smart helmet for advanced factory environment" 2 (2): e86-, 2019

    5 W. O. Roberts, "Recurrent Heat Stroke in a Runner : Race Simulation Testing for Return to Activity" 48 (48): 785-789, 2016

    6 D. Yoon, "Recent changes in heatwave characteristics over Korea" 55 (55): 1685-1696, 2020

    7 G. Havenith, "Male and female upper body sweat distribution during running measured with technical absorbents" 104 (104): 245-255, 2008

    8 T. Eldemerdash, "IoT based smart helmet for mining industry application" 29 (29): 373-387, 2020

    9 K. L. Ebi, "Hot weather and heat extremes : health risks" 398 (398): 698-708, 2021

    10 A. Haines, "Health effects of climate change" 291 (291): 99-103, 2004

    11 P. Sithinamsuwan, "Exertional heatstroke : early recognition and outcome with aggressive combined cooling—a 12-year experience" 174 (174): 496-502, 2009

    12 S. T. Chen, "Design and development of a wearable device for heat stroke detection" 18 (18): 17(1)-17(15), 2017

    13 R. W. Byard, "Dehydration and HeatRelated Death : Sweat Lodge Syndrome" 26 (26): 236-239, 2005

    14 S. S. Lin, "Data analytics of a wearable device for heat stroke detection" 18 (18): 4347(1)-4347(24), 2018

    15 J. Y. Lee, "Comparison between Alginate Method and 3D Whole Body Scanning in Measuring Body Surface Area" 29 (29): 1507-1519, 2005

    16 G. Luber, "Climate change and extreme heat events" 35 (35): 429-435, 2008

    17 K. Hayashida, "A novel early risk assessment tool for detecting clinical outcomes in patients with heat-related illness(J-ERATO score) : Development and validation in independent cohorts in Japan" 13 (13): e0197032(1-e0197032(1, 2018

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