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Smart sportswear design that can detect vital parameters

Ömür Ceran1,
Özgür Tamer2,
Aksel Çelik3,
Ozan Kayacan4,
Tolga Akşit5,
Duygu Yavuzkasap Ayakta6,
Mehmet Ali Balcı7,
Ömer Akgüller8,
Aysu Bakkal İldeniz9
1Dokuz Eylul University
2Dokuz Eylul University
3Dokuz Eylul University
4Dokuz Eylul University
5Ege University
6YUNSA, Research and Development Department
7Mugla Sitki Kocman University
8Mugla Sitki Kocman University
9YUNSA, Research and Development Department
Published:December 31, 2023

Abstract

The subject of wearable electronics is expanding quickly, and it has just lately begun to provide profitable commercial items to the consumer electronics market. It is anticipated that the use of biopotential signals in wearable systems as either biofeedback or command commands will revolutionize.There are numerous technologies, such as brain-computer interfaces, point-of-care health monitoring systems, rehabilitation tools. Since electrodes are seen to be a crucial component of such items, they have been researched for about ten years, which has led to the development of textile electrodes.In this paper , wearable devices for sport is studied with detecting vital parameters. There are a few sensors such as ECG and IMU based acceleration. Smart textile products are used for testing and taking data purpose

Keywords
ECGSmart TextileIMU based accelerationBluetooth low energy

References

  1. 1.Tao, X. Wearable Electronics and Photonics; Elsevier: Amsterdam, The Netherlands, 2005 .
  2. 2.Wearable Electronics and Technology Market by Applications. Available online: http://www. marketsandmarkets.com/Market-Reports/wearable-electronics-market-983.html (accessed on 27 April 2019).Link
  3. 3.Hu, E.; Kaynak, A.; Li, Y. Development of a cooling fabric from conducting polymer coated fibres: Proof of concept. Synth. Met. 2005, 150, 139–143.
  4. 4.Khan, A.; Hussain, M.; Nur, O.; Willander, M. Fabrication of zinc oxide nanoneedles on conductive textile for harvesting piezoelectric potential. Chem. Phys. Lett. 2014, 612, 62–67.
  5. 5.Mehta, D.D.; Nazir, N.T.; Trohman, R.G.; Volgman, A.S. Single-lead portable ECG devices: Perceptions and clinical accuracy compared to conventional cardiac monitoring. J. Electrocardiol. 2015, 48, 710–716.
  6. 6.Sun, F.; Yi, C.; Li, W.; Li, Y. A wearable H-shirt for exercise ECG monitoring and individual lactate threshold computing. Comput. Ind. 2017, 92–93, 1–11.
  7. 7.Guzik, P.; Marek, M. ECG by mobile technologies. J. Electrocardiol. 2016, 49, 894–901.
  8. 8.Jung, J.; Lee, J.; Lee, J.; Kim, Y.T. A smartphone-based U-Healthcare system for real-time monitoring of acute myocardial infarction. Int. J. Commun. Syst. 2015, 28, 2311–2325.
  9. 9.Baig, M. M.; Gholamhosseini, H.; Connolly, M. J. A comprehensive survey of wearable and wireless ECG monitoring systems for older adults. Med. Biol. Eng. Comput. 2013, 51, 485–495. Electronics 2021, 10, 608 11 of 11
  10. 10.Spano, E.; Pascoli, S.D.; Iannaccone, G. Low-power wearable ECG monitoring system for multiple-patient remote monitoring. IEEE Sensors J. 2016, 16, 5452–5462.
  11. 11.Ozkan, H.; Ozhan, O.; Karadana, Y.; Gulcu, M.; Macit, S.; Husain, F. A Portable Wearable Tele-ECG Monitoring System. IEEE Trans. Instrum. Meas. 2020, 69, 173–182.
  12. 12.Dias, D.; Paulo Silva Cunha, J. Wearable health devices—vital sign monitoring, systems and technologies. Sensors 2018, 18, 2414.
  13. 13.Patel, S.; Park, H.; Bonato, P.; Chan, L.; Rodgers, M. A review of wearable sensors and systems with application in rehabilitation.J. Neuroeng. Rehabil. 2012, 9, 1-17.
  14. 14.Van Loon, K.; van Zaane, B.; Bosch, E.J.; Kalkman, C.J.; Peelen, L.M. Non-invasive continuous respiratory monitoring on general hospital wards: A systematic review. PLoS ONE 2015, 10, e0144626.
  15. 15.Nicolò, A.; Massaroni, C.; Schena, E.; Sacchetti, M. The Importance of Respiratory Rate Monitoring: From Healthcare to Sport and Exercise. Sensors 2020, 20, 6396
  16. 16.Di Tocco, J., Raiano, L., Sabbadini, R., Massaroni, C., Formica, D., Schena, E. (2021). A wearable system with embedded conductive textiles and an imu for unobtrusive cardio-respiratory monitoring. Sensors, 21(9), 3018.
  17. 17.Beck, S., Laufer, B., Krueger-Ziolek, S., Moeller, K. (2020). Measurement of respiratory rate with inertial measurement units. Current Directions in Biomedical Engineering, 6(3), 237-240.
  18. 18.Guo, L., Peterson, J., Qureshi, W., Kalantar Mehrjerdi, A., Skrifvars, M., Berglin, L. (2011). Knitted wearable stretch sensor for breathing monitoring application. In Ambience'11, Borås, Sweden, 2011.
  19. 19.AD8232, D. S. (2013). Single-Lead, Heart Rate Monitor Front End. Analog Device.
  20. 20.InvenSense. (2013). MPU-6050 Datasheet.
  21. 21.Manullang, M. C. T., Simanjuntak, J., Ramdani, A. L. (2019). Implementation of AD8232 ECG Signal Classification Using Peak Detection Method For Determining RST Point. Indonesian Journal of Artificial Intelligence and Data Mining, 2(2), 61-66.
  22. 22.Yang, X., Wang, Y., Du, J., Huang, R., & Liu, G. (2020, November). Study on Vibration Monitoring of Railway Seamless Line. In 2020 IEEE International Conference on Information Technology, Big Data and Artificial Intelligence (ICIBA) (Vol. 1, pp. 539-544). IEEE.
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Cite This Article
Ceran, Ö., Tamer, Ö., Çelik, A., Kayacan, O., Akşit, T., Ayakta, D. Y., Balcı, M. A., Akgüller, Ö., İldeniz, A. B. (2023). Smart sportswear design that can detect vital parameters. *The European Journal of Research and Development*, 3(4), 76-87. https://doi.org/10.56038/ejrnd.v3i4.352

Bibliographic Info

JournalThe European Journal of Research and Development
Volume3
Issue4
Pages76–87
PublishedDecember 31, 2023
eISSN2822-2296