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Detail Karya Ilmiah Dosen

Yamato Tan, Anton Setiaji, Evyta Wismiana, Mochamad Yunus,

Judul : IoT System Implementation for ATmega328 Microcontroller Based Home Door Control
Abstrak :

Abstract—The house gate or home door control system uses
a lot of infrared remote control, and it takes time to look for
an infrared remote control if there is a loss of the remote.
On the basis of this thought a design tool was made that
was able to be used automatically. This home door control
system works automatically when the electricity supply from PLN
provides voltage to the power supply to turn on the ATMega328
microcontroller, Wi-Fi NodeMCU ESP8266 module, LCD and
L298 shield motor driver. The Wi-Fi module will receive orders
to open the house gate through a smartphone, and will provide
notifications to LCD, LED and smartphone. This control system
can accept orders to open and close the gate of house which
depends on the speed of internet connection.
Keywords—ATmega328 microcontroller; DC motor; Wi-Fi
NodeMCU ESP8266 module; L298 shield motor driver.

Tahun : 2019 Media Publikasi : Seminar Internasional
Kategori : Prosiding No/Vol/Tahun : 978-1-7281-4796-3/19/$31.00 ©2019 IEEE / 978-1-7281-4796-3/19/$31.00 ©2019 IEEE / 2019
ISSN/ISBN : 978-1-7281-4796-3/19/$31.00 ©20
PTN/S : Universitas pakuan Program Studi : TEKNIK ELEKTRO
Bibliography :

REFERENCES
[1] F. Mankiewicz, Remote Control: Television and the Manipulation of
American Life, 1st ed., Times Books, 1978.
[2] K. M. S. Publishing.com, The Ultimate Collection of Tips For All Kinds
of Remote Control Toys, CreateSpace Independent Publishing, 2010.
[3] J. Niko, How to Repair Electric Gates: Common Problems and Solutions,
2016.
[4] P. Adamopoulos, A. Pagkos, and V. Kitsoulis, Integrated Home
Automation System with Situation Awareness: Remote Control of
Electric Devices Using IoT, LAP LAMBERT Academic, 2016.
[5] O. Liberg, M. Sundberg, E. Wang, J. Bergman, and J. Sachs, Cellular
Internet of Things: Technologies, Standards, and Performance, 1st ed.,
Academic Press, 2017.
[6] C. X. Mavromoustakis, G. Mastorakis, and J. M. Batalla, Internet of
Things (IoT) in 5G Mobile Technologies, 1st ed., Springer, 2016.
[7] F. M. Cady, Microcontrollers and Microcomputers Principles of Software
and Hardware Engineering, 2nd ed., 2009.
[8] M. A. Wibisono and A. Munir, “Development of AVR microcontrollerbased
antenna measurement tool for student experimentation,” in 9th
International Conference on Telecommunication Systems Services and
Applications (TSSA), Bandung, Indonesia, Nov. 2015, pp. 1–4.
[9] D. P. Tran, D. Morita, N. Sato, Y. Morita, and M. Takekawa,
“Improvement of non-invasive semi-automatic test device for
measurement of finger joints range of motion: Reduction in burden on
therapist,” in 16th International Conference on Control, Automation and
Systems (ICCAS), Gyeongju, South Korea, Oct. 2016, pp. 423–427.
[10] A. Munir and J.I. Litouw, “Electronically programmable beam direction
of array antennas based on microcontroller,” in 3rd International
Conference on Instrumentation, Control and Automation (ICA), Bali,
Indonesia, Aug. 2013, pp. 165–167.
[11] G. M. Aji and A. Munir, “Automatic direction system for outdoor
WLAN antenna array driven by AT89S51 microcontroller,” in
International Electrical Engineering Congress (iEECON), Pattaya,
Thailand, Mar. 2017, pp. 1–4.
[12] S. M. Huq, M. A. Rahman, and S. M. Saleh, “Application for integrating
microcontrollers to Internet of Things,” in 20th International Conference
of Computer and Information Technology (ICCIT), Dhaka, Bangladesh,
Dec. 2018, pp. 1–4.
[13] Y. Tan, M. R. Rahmadi, E. Wismiana, M. Yunus, and A. Munir, “IoT
based organic waste burner for wood vinegar production,” in 12th
International Conference on Telecommunication Systems Services and
Applications (TSSA), Yogyakarta, Indonesia, Oct. 2018, pp. 1–4.
[14] S. C. Yener and R. Mutlu, “A microcontroller-based ECG signal
generator design utilizing microcontroller PWM output and experimental
ECG data,” in Electric Electronics, Computer Science, Biomedical
Engineerings’ Meeting (EBBT), Istanbul, Turkey, Apr. 2018, pp. 1–4.
[15] N. F. A. Hakim, M. S. Arifianto, A. Najmurrokhman, and A. Munir,
“SFCW signal generator based on ATMega328 microcontroller and R/2R
ladder networks,” in 9th Electrical Power, Electronics, Communication,
Control and Informatics Seminar (EECCIS), Batu, Indonesia, Oct. 2018,
pp. 177–180.

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