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IoT-Based Smart Wearable Devices Using Very Large Scale Integration (VLSI) Technology

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Soft Computing and Signal Processing ( ICSCSP 2023)

Abstract

People’s usage of smart wearable devices and sensors plays a crucial role in VLSI technology. The wearable devices are embedded in clothes, smartwatches, and accessories. The wear gadgets like smart rings, smartwatches, and smart spectacles are associated with human healthcare monitoring, actual period location discovery and portable online games, etc. This paper presents a survey of the recent usage of wearable devices and sensors with VLSI technology. Three key features considered to make user-friendly smart wearable devices: They are security, performance, and deployment cost. Almost all wearable devices are equipped with Bluetooth communication and screen displays like smartwatches and smartphones. The primary goal of this research is to minimize the power consumption for wearable devices. Smart wearable devices are utilized for a wide range of applications like medicine, sports, fitness, business, etc.

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References

  1. Lo NW, Yohan A (2020) BLE-based authentication protocol for micropayment using a wearable device. Wireless Pers Commun 112(4):2351–2372

    Article  Google Scholar 

  2. Yang X, Wu N, Andrian JH (2017) Comparative power analysis of an adaptive bus encoding method on the MBUS structure. VLSI Des

    Google Scholar 

  3. Al-Eidan RM, Al-Khalifa H, Al-Salman AM (2018) A review of wrist-worn wearable: sensors, models, and challenges. J Sens 2018:1–20

    Article  Google Scholar 

  4. Chen SL, Tuan MC, Lee HY, Lin TL (2017) VLSI implementation of a cost-efficient micro control unit with asymmetric encryption for wireless body sensor networks. IEEE Access 5:4077–4086

    Article  Google Scholar 

  5. Led S, Fernández J, Serrano L (2004) Design of a wearable device for ECG continuous monitoring using wireless technology. In: The 26th annual international conference of the IEEE engineering in medicine and biology society, vol 2. IEEE, pp 3318–3321

    Google Scholar 

  6. Franklin AB, Sasilatha T (2019) Design and analysis of low power full adder for portable and wearable applications. Int J Recent Technol Eng (IJRTE). ISSN 2277-3878

    Google Scholar 

  7. Antony A, Paulson SR, Moni D (2018) JAsynchronous level crossing ADC design for wearable devices: a review. Int J Appl Eng Res 13(4):1858–1865

    Google Scholar 

  8. Lundager K, Zeinali B, Tohidi M, Madsen JK, & Moradi F (2016) Low power design for future wearable and implantable devices. J Low Power Electron Appl 6(4):20

    Google Scholar 

  9. Rodríguez-Flores L, Morales-Sandoval M, Cumplido R, Feregrino-Uribe C, Algredo-Badillo I (2018) Compact FPGA hardware architecture for public key encryption in embedded devices. PLoS ONE 13(1):e0190939

    Article  Google Scholar 

  10. Marni L, Hosseini M, Hopp J, Mohseni P, Mohsenin T (2018) A real-time wearable FPGA-based seizure detection processor using MCMC. In: 2018 IEEE international symposium on circuits and systems (ISCAS). IEEE, pp 1–4

    Google Scholar 

  11. Yamada I, Lopez G (2012) Wearable sensing systems for healthcare monitoring. In: The 2012 symposium on VLSI technology. IEEE, pp 5–10

    Google Scholar 

  12. Mubarakali A, Ashwin M, Mavaluru D, Kumar AD (2020) Design an attribute-based health record protection algorithm for healthcare services in a cloud environment. Multimedia Tools Appl 79:3943–3956

    Article  Google Scholar 

  13. Dokania V, Verma R, Guduri M, Islam A (2018) Design of 10T full adder cell for ultralow-power applications. Ain Shams Eng J 9(4):2363–2372

    Article  Google Scholar 

  14. Ramamoorthy R, Thangavelu M (2022) An enhanced distance and residual energy-based congestion aware ant colony optimization routing for vehicular ad hoc networks. Int J Commun Syst 35(11):e5179

    Article  Google Scholar 

  15. Raghu R, Menakadevi T (2016) A survey on anonymous secure on-demand routing protocols in MANETs. Middle East J Sci Res 24:3869–3880

    Google Scholar 

  16. Ashwin M, Kumar ES, Naidu RCA, Ramamoorthy R (2023) IoT based innovative teaching learning using smart class rooms. In: 2023 International conference on sustainable computing and data communication systems (ICSCDS). IEEE, pp 1143–1148

    Google Scholar 

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Correspondence to M. Ashwin .

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Ashwin, M., Naidu, R.C.A., Ramamoorthy, R., Kumar, E.S. (2024). IoT-Based Smart Wearable Devices Using Very Large Scale Integration (VLSI) Technology. In: Zen, H., Dasari, N.M., Latha, Y.M., Rao, S.S. (eds) Soft Computing and Signal Processing. ICSCSP 2023. Lecture Notes in Networks and Systems, vol 840. Springer, Singapore. https://doi.org/10.1007/978-981-99-8451-0_13

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