Home / Current Issue / Paper 1706311
Integration of Quantum Key Distribution Protocol with AES Encryption for Enhancing Security in IoT Networks
Subject area: Science,Engineering and Technology · Area of research: IoT Network Security
Abstract
The advancement of contemporary technology is driving increased technological capabilities, while applications related to the Internet of Things (IoT) continue to grow. The integration of IoT into daily routines enhances convenience and comfort. Furthermore, technology can contribute to a moderate decrease in the dependency on human labor. Nonetheless, as data transmission occurs over the Internet, ensuring robust security measures is paramount. Traditional cryptographic methods were employed to guarantee the security of data transmission. In contemporary times, cryptography relies heavily on mathematical principles; thus, if a key can be discerned through the use of advanced computing power, it may pose a security vulnerability. In contrast, quantum cryptography is founded on the principles of physics, rendering the key difficult to disclose. Moreover, any attempts to uncover it can be detected. Consequently, this paper integrates both conventional and quantum cryptography. In traditional cryptography, the Advanced Encryption Standard (AES) is employed, whereas in quantum cryptography, the B92 Quantum Key Distribution Protocol is utilized.
Keywords
IoT, MAX30100, NodeMCU ESP8266, AES, QKD
References
[1] Clark, J. A. (2001). Metaheuristic Search as a Cryptological Tool. Ph.D dissertation. University of York, December 2001.
[2] Muhammad Reza Z’aba, Mohd Aizaini Maarof, a Survey on the Cryptanalysis of the Advanced Encryption Standard, Proceedings of the Postgraduate Annual Research Seminar 2006.
[3] M. I. Khan and M. Sher, "Protocols for secure quantum transmission: a review of recent developments," Pakistan Journal of Information and Technology, vol. 2, pp. 265-276, 2003.
[4] https://iotprojectsideas.com/max30100-pulse-oximeter
[5] Nodemcu, “Nodemcu documentation,” 2021, https:// nodemcu.readthedocs.io/IEEE Trans. Antennas Propagate., to be published.
[6] J. –Y Wang et al., “Direct and full-scale experimental verifications towards ground-satellite quantum key distribution”, Nature Photon. 7 (5), 387{393 (2013).
[7] Sarah Kaiser, “Learn Quantum Computing with Python and Q#”, A Hands-on approach.
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[19] GND ---- GND (Black)
[20] D0 ---- INT (Brown)
[21] D1 ---- SCL (White)
[22] D2 ---- SDA (Yellow)
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How to cite this paper
@article{1706311,
author = {Myat Su Win, Khaing Khaing Wai},
title = {Integration of Quantum Key Distribution Protocol with AES Encryption for Enhancing Security in IoT Networks},
journal = {Iconic Research And Engineering Journals},
year = {2024},
volume = {8},
number = {3},
pages = {414-419},
issn = {2456-8880},
url = {https://www.irejournals.com/formatedpaper/1706311.pdf},
abstract = {The advancement of contemporary technology is driving increased technological capabilities, while applications related to the Internet of Things (IoT) continue to grow. The integration of IoT into daily routines enhances convenience and comfort. Furthermore, technology can contribute to a moderate decrease in the dependency on human labor. Nonetheless, as data transmission occurs over the Internet, ensuring robust security measures is paramount. Traditional cryptographic methods were employed to guarantee the security of data transmission. In contemporary times, cryptography relies heavily on mathematical principles; thus, if a key can be discerned through the use of advanced computing power, it may pose a security vulnerability. In contrast, quantum cryptography is founded on the principles of physics, rendering the key difficult to disclose. Moreover, any attempts to uncover it can be detected. Consequently, this paper integrates both conventional and quantum cryptography. In traditional cryptography, the Advanced Encryption Standard (AES) is employed, whereas in quantum cryptography, the B92 Quantum Key Distribution Protocol is utilized.},
keywords = {IoT, MAX30100, NodeMCU ESP8266, AES, QKD},
month = {September},
}