Accès libre

Research on the Accurate Measurement Method of Athletes’ Physical Consumption Using Intelligent Wearable Devices in Table Tennis Training

, , ,  et   
21 mars 2025
À propos de cet article

Citez
Télécharger la couverture

Cardinale, M., & Varley, M. C. (2017). Wearable training-monitoring technology: applications, challenges, and opportunities. International journal of sports physiology and performance, 12(s2), S2-55. CardinaleM. & VarleyM. C. (2017). Wearable training-monitoring technology: applications, challenges, and opportunities. International journal of sports physiology and performance, 12(s2), S2-55.Search in Google Scholar

Seçkin, A. Ç., Ateş, B., & Seçkin, M. (2023). Review on Wearable Technology in sports: Concepts, Challenges and opportunities. Applied Sciences, 13(18), 10399. SeçkinA. Ç.AteşB. & SeçkinM. (2023). Review on Wearable Technology in sports: Concepts, Challenges and opportunities. Applied Sciences, 13(18), 10399.Search in Google Scholar

Nahavandi, D., Alizadehsani, R., Khosravi, A., & Acharya, U. R. (2022). Application of artificial intelligence in wearable devices: Opportunities and challenges. Computer Methods and Programs in Biomedicine, 213, 106541. NahavandiD.AlizadehsaniR.KhosraviA. & AcharyaU. R. (2022). Application of artificial intelligence in wearable devices: Opportunities and challenges. Computer Methods and Programs in Biomedicine, 213, 106541.Search in Google Scholar

Kos, M., & Kramberger, I. (2017). A wearable device and system for movement and biometric data acquisition for sports applications. IEEE access, 5, 6411-6420. KosM. & KrambergerI. (2017). A wearable device and system for movement and biometric data acquisition for sports applications. IEEE access, 5, 6411-6420.Search in Google Scholar

Rao, P., Seshadri, D. R., & Hsu, J. J. (2021). Current and potential applications of wearables in sports cardiology. Current treatment options in cardiovascular medicine, 23, 1-15. RaoP.SeshadriD. R. & HsuJ. J. (2021). Current and potential applications of wearables in sports cardiology. Current treatment options in cardiovascular medicine, 23, 1-15.Search in Google Scholar

Kos, A., Milutinović, V., & Umek, A. (2019). Challenges in wireless communication for connected sensors and wearable devices used in sport biofeedback applications. Future generation computer systems, 92, 582-592. KosA.MilutinovićV. & UmekA. (2019). Challenges in wireless communication for connected sensors and wearable devices used in sport biofeedback applications. Future generation computer systems, 92, 582-592.Search in Google Scholar

Yang, Q., Sun, J., Zhang, Z. Y., Ding, S. C., Chen, Z., Cui, X. Y., & Li, D. Y. (2021, October). Application of wearable devices in sports: behavior change and result effect. In 2021 International Conference on Health Big Data and Smart Sports (HBDSS) (pp. 137-147). IEEE. YangQ.SunJ.ZhangZ. Y.DingS. C.ChenZ.CuiX. Y. & LiD. Y. (2021, October). Application of wearable devices in sports: behavior change and result effect. In 2021 International Conference on Health Big Data and Smart Sports (HBDSS) (pp. 137-147). IEEE.Search in Google Scholar

Kaili, Q. (2024). Wearable Devices based on Wireless Sensor Network and Speech Synchronization Overlay Algorithm Application in Sports Training Data Simulation. Mobile Networks and Applications, 1-13. KailiQ. (2024). Wearable Devices based on Wireless Sensor Network and Speech Synchronization Overlay Algorithm Application in Sports Training Data Simulation. Mobile Networks and Applications, 1-13.Search in Google Scholar

Santos-Gago, J. M., Ramos-Merino, M., Vallarades-Rodriguez, S., Álvarez-Sabucedo, L. M., Fernández-Iglesias, M. J., & García-Soidán, J. L. (2019). Innovative use of wrist-worn wearable devices in the sports domain: A systematic review. Electronics, 8(11), 1257. Santos-GagoJ. M.Ramos-MerinoM.Vallarades-RodriguezS.Álvarez-SabucedoL. M.Fernández-IglesiasM. J. & García-SoidánJ. L. (2019). Innovative use of wrist-worn wearable devices in the sports domain: A systematic review. Electronics, 8(11), 1257.Search in Google Scholar

Wang, S. (2021). Sports training monitoring of energy-saving IoT wearable devices based on energy harvesting. Sustainable Energy Technologies and Assessments, 45, 101168. WangS. (2021). Sports training monitoring of energy-saving IoT wearable devices based on energy harvesting. Sustainable Energy Technologies and Assessments, 45, 101168.Search in Google Scholar

Huifeng, W., Kadry, S. N., & Raj, E. D. (2020). Continuous health monitoring of sportsperson using IoT devices based wearable technology. Computer Communications, 160, 588-595. HuifengW.KadryS. N. & RajE. D. (2020). Continuous health monitoring of sportsperson using IoT devices based wearable technology. Computer Communications, 160, 588-595.Search in Google Scholar

Luczak, T., Burch, R., Lewis, E., Chander, H., & Ball, J. (2020). State-of-the-art review of athletic wearable technology: What 113 strength and conditioning coaches and athletic trainers from the USA said about technology in sports. International Journal of Sports Science & Coaching, 15(1), 26-40. LuczakT.BurchR.LewisE.ChanderH. & BallJ. (2020). State-of-the-art review of athletic wearable technology: What 113 strength and conditioning coaches and athletic trainers from the USA said about technology in sports. International Journal of Sports Science & Coaching, 15(1), 26-40.Search in Google Scholar

Borowski-Beszta, M., & Polasik, M. (2020). Wearable devices: new quality in sports and finance. Journal of Physical Education and Sport, 20, 1077-1084. Borowski-BesztaM. & PolasikM. (2020). Wearable devices: new quality in sports and finance. Journal of Physical Education and Sport, 20, 1077-1084.Search in Google Scholar

Migliaccio, G. M., Padulo, J., & Russo, L. (2024). The Impact of Wearable Technologies on Marginal Gains in Sports Performance: An Integrative Overview on Advances in Sports, Exercise, and Health. Applied Sciences, 14(15), 6649. MigliaccioG. M.PaduloJ. & RussoL. (2024). The Impact of Wearable Technologies on Marginal Gains in Sports Performance: An Integrative Overview on Advances in Sports, Exercise, and Health. Applied Sciences, 14(15), 6649.Search in Google Scholar

Wang, B. (2017). Evaluation of sports visualization based on wearable devices. International Journal of Emerging Technologies in Learning (iJET), 12(12), 119-126. WangB. (2017). Evaluation of sports visualization based on wearable devices. International Journal of Emerging Technologies in Learning (iJET), 12(12), 119-126.Search in Google Scholar

Adesida, Y., Papi, E., & McGregor, A. H. (2019). Exploring the role of wearable technology in sport kinematics and kinetics: A systematic review. Sensors, 19(7), 1597. AdesidaY.PapiE. & McGregorA. H. (2019). Exploring the role of wearable technology in sport kinematics and kinetics: A systematic review. Sensors, 19(7), 1597.Search in Google Scholar

Wang, Z., & Gao, Z. (2021). Analysis of real‐time heartbeat monitoring using wearable device Internet of Things system in sports environment. Computational Intelligence, 37(3), 1080-1097. WangZ. & GaoZ. (2021). Analysis of real‐time heartbeat monitoring using wearable device Internet of Things system in sports environment. Computational Intelligence, 37(3), 1080-1097.Search in Google Scholar

Zhang, X. (2021). Application of human motion recognition utilizing deep learning and smart wearable device in sports. International Journal of System Assurance Engineering and Management, 12(4), 835-843. ZhangX. (2021). Application of human motion recognition utilizing deep learning and smart wearable device in sports. International Journal of System Assurance Engineering and Management, 12(4), 835-843.Search in Google Scholar

Chidambaram, S., Maheswaran, Y., Patel, K., Sounderajah, V., Hashimoto, D. A., Seastedt, K. P., ... & Darzi, A. (2022). Using artificial intelligence-enhanced sensing and wearable technology in sports medicine and performance optimisation. Sensors, 22(18), 6920. ChidambaramS.MaheswaranY.PatelK.SounderajahV.HashimotoD. A.SeastedtK. P., ... & DarziA. (2022). Using artificial intelligence-enhanced sensing and wearable technology in sports medicine and performance optimisation. Sensors, 22(18), 6920.Search in Google Scholar

Ju, F., Wang, Y., Yin, B., Zhao, M., Zhang, Y., Gong, Y., & Jiao, C. (2023). Microfluidic wearable devices for sports applications. Micromachines, 14(9), 1792. JuF.WangY.YinB.ZhaoM.ZhangY.GongY. & JiaoC. (2023). Microfluidic wearable devices for sports applications. Micromachines, 14(9), 1792.Search in Google Scholar

Aroganam, G., Manivannan, N., & Harrison, D. (2019). Review on wearable technology sensors used in consumer sport applications. Sensors, 19(9), 1983. AroganamG.ManivannanN. & HarrisonD. (2019). Review on wearable technology sensors used in consumer sport applications. Sensors, 19(9), 1983.Search in Google Scholar

Pekas, D., Radaš, J., Baić, M., Barković, I., & Čolakovac, I. (2023). The use of wearable monitoring devices in sports sciences in COVID years (2020–2022): a systematic review. Applied Sciences, 13(22), 12212. PekasD.RadašJ.BaićM.BarkovićI. & ČolakovacI. (2023). The use of wearable monitoring devices in sports sciences in COVID years (2020–2022): a systematic review. Applied Sciences, 13(22), 12212.Search in Google Scholar

Zadeh, A., Taylor, D., Bertsos, M., Tillman, T., Nosoudi, N., & Bruce, S. (2021). Predicting sports injuries with wearable technology and data analysis. Information Systems Frontiers, 23, 1023-1037. ZadehA.TaylorD.BertsosM.TillmanT.NosoudiN. & BruceS. (2021). Predicting sports injuries with wearable technology and data analysis. Information Systems Frontiers, 23, 1023-1037.Search in Google Scholar

Jingwen Rao,Jing Ma & Guanpeng Dong. (2024). Exploring the effects of multi-dimensional geographic environment on daily sleep and physical activity based on the Actigraph data. Health & place103370. RaoJingwenMaJing & DongGuanpeng. (2024). Exploring the effects of multi-dimensional geographic environment on daily sleep and physical activity based on the Actigraph data. Health & place103370.Search in Google Scholar

Yuan Wang,Jia Fu,Hao Y Li,Shi J Du,Yun Y Zhang,Hao Y Wang... & Cheng Chang. (2024). Morphological data of the superior vena cava predicted by multiple linear regression equations. BMC cardiovascular disorders(1),694. WangYuanFuJiaLiHao YDuShi JZhangYun YWangHao Y... & ChangCheng. (2024). Morphological data of the superior vena cava predicted by multiple linear regression equations. BMC cardiovascular disorders(1),694.Search in Google Scholar

Mohamed Hesham Khalil. (2024). Environmental Affordance for Physical Activity, Neurosustainability, and Brain Health: Quantifying the Built Environment’s Ability to Sustain BDNF Release by Reaching Metabolic Equivalents (METs). Brain Sciences(11),1133-1133. KhalilMohamed Hesham. (2024). Environmental Affordance for Physical Activity, Neurosustainability, and Brain Health: Quantifying the Built Environment’s Ability to Sustain BDNF Release by Reaching Metabolic Equivalents (METs). Brain Sciences(11),1133-1133.Search in Google Scholar