IoT Based Automatic Electric Appliances Controlling Device based on Visitor Counter

Authors

  • Hitesh Kumar Sharma School of Computer Science, University of Petroleum & Energy Studies (UPES), Energy Acres, Bidholi, Dehradun- 248007, Uttarakhand, India Author
  • Khushwant Singh School Dept. of Computer Science, Manipal University Jaipur Author
  • Dr Md Ezaz Ahmed Assistant Professor, CS Department, Saudi Electronic University, Al Madina KSA Author
  • Jagdish Chandra Patni School of Computer Science, University of Petroleum & Energy Studies (UPES), Energy Acres, Bidholi, Dehradun- 248007, Uttarakhand, India Author
  • Yudhvir Singh School Dept. of Computer Science, Manipal University Jaipur Author
  • Prashant Ahlawat School Dept. of Computer Science, Manipal University Jaipur Author

DOI:

https://doi.org/10.61841/tqm2xe98

Keywords:

Sensor, Power Supply, Energy Conservation, Infrared Sensors (IR), Bidirectional Visitor Counter, Microcontroller, Relay

Abstract

The 21st Centaury is considered the Era of automation and Artificial Intelligence. Electricity and power sectors are required automation in various levels including grid level as well as home appliances level. IoT has played a significant role to achieve automation at home/office level. Home Automation, Smart Cities, Agriculture and many more sectors have used IoT to automate ON/OFF functioning of Electrical appliances/ Machinery. We are adding one more level to this automation where we have developed a device to do ON/OFF function automatically based on person count entering/exiting in/from a room. It will impact an organization financially and environmentally. It will help an organization to use their electrical appliance effectively. Unnecessary usage of appliances can be avoided using this controlling device. This device is designed using basic electronic components.

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References

[1] Taneja, S., Karthik, M., Shukla, M., & Sharma, H. K. (2017). Architecture of IoT-based real-time tracking system. International Journal of Innovations & Advancement in Computer Science, 6(12), December 2017. ISSN: 2347-8616.

[2] Sarangama, P. B., & Gupta, K. A. (2015). A novel implementation for automated health monitoring system. International Journal of Emerging Technology and Advanced Engineering (IJETAE), 5(6), June 2015.

[3] Wcislik, M., Pozoga, M., & Smerdzynski, P. (2015). Wireless health monitoring system. IFAC Proceedings Volumes, Elsevier Ltd., pp. 312–317.

[4] Pardeshi, V., Sagar, S., Murmurwar, S., & Hage, P. (2017). Health monitoring systems using IoT and Raspberry Pi – A review. In Proceedings of the International Conference on Innovative Mechanisms for Industry Applications (ICIMIA), Bangalore, India, pp. 134–137.

[5] Navya, K., & Murthy, M. B. R. (2013). A ZigBee-based patient health monitoring system. International Journal of Engineering Research and Applications, 3(5), 483–486.

[6] Mansor, H., Shukor, M. H. A., Meskam, S. S., Rusli, N. Q. A. M., & Zamery, N. S. (2013). Body temperature measurement for remote health monitoring system. In IEEE International Conference on Smart Instrumentation, Measurement and Applications (ICSIMA), November 26–27, 2013.

[7] Kumar, K. M., & Venkatesan, R. S. (2014). A design approach to smart health monitoring using Android mobile devices. In IEEE International Conference on Advanced Communication Control and Computing Technologies (ICACCCT), pp. 1740–1744.

[8] Piyare, R. (2013). Internet of Things: Ubiquitous home control and monitoring system using Android-based smartphone. International Journal of Internet of Things, 2(1), 5–11.

[9] Mukhopadhyay, S. C. (2015). Wearable sensors for human activity monitoring: A review. IEEE Sensors Journal, 15(3), 1321–1330.

[10] Djuknic, G. M., & Richton, R. E. (2001). Geolocation and assisted GPS. Computer, 34(2), 123–125.

[11] Sanders, G., Thorens, L., Reisky, M., Rulik, O., & Deylitz, S. (2003). GPRS Networks. Hoboken, NJ: Wiley.

[12] Gharge, S., Chhaya, M., Chheda, G., & Deshpande, J. (2012). Real-time bus monitoring system using GPS. International Journal of Engineering Science and Technology, 2(3), June 2012.

[13] Clifton, L., Clifton, D. A., Pimentel, M. A. F., Watkinson, P. J., & Tarassenko, L. (2014). Predictive monitoring of mobile patients by combining clinical observations with data from wearable sensors. IEEE Journal of Biomedical and Health Informatics, 18(3), May 2014.

[14] Subudhi, C. S. K., & Sivanandam, S. (2014). Intelligent wireless patient monitoring and tracking system (using sensor network and wireless communication). International Journal of Interdisciplinary and Multidisciplinary Studies, 1(3), 97–104.

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Published

03.08.2020

How to Cite

Hitesh Kumar Sharma, Khushwant Singh, Md Ezaz Ahmed, Patni, J. C., Yudhvir Singh, & Prashant Ahlawat. (2020). IoT Based Automatic Electric Appliances Controlling Device based on Visitor Counter. International Journal of Psychosocial Rehabilitation, 24(10), 4186-4196. https://doi.org/10.61841/tqm2xe98