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International Journal of Web Applications

The Study of the Security Physical Layer with an Arbitrary Number of Sensors
Jelena A. Anastasov, Aleksandra M. Cvetkovic, Daniela M. Milovic, Dejan N. Milic and Goran T. Dordevic
University of Niš, Faculty of Electronic Engineering Aleksandra Medvedeva 14 18000 Nis, Serbia
Abstract: We have measured the security physical layer of the system with an arbitrary number of sensors which send the sensed data to the sink. In this process we found that the eavesdropper tries to intercept the communication of each sensor-sink channel.We have assessed the intercept probability with round-robin and best-node sensors’ scheduling that provided the optimal sensor scheduling scheme so as to minimize the eavesdropper’s overheating. During experimentation, with the help of G functions, we have arrived at the results with the study 0f the fading indicators the number of sensors, elected sensors’ scheduling as well as the impact of various the average main signal-to-eavesdropper’s signal ratios on intercept probability.
Keywords: Composite Fading Channel, Physical Layer Security, Probability of Intercept, Wireless Sensor Network The Study of the Security Physical Layer with an Arbitrary Number of Sensors
DOI:https://doi.org/10.6025/ijwa/2021/13/3/84-90
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References:

[1] Gungor, V. C., Lu, B., Hancke, G. P. (2010). Opportunities and Challenges of Wireless Sensor Networks in Smart Grid, IEEE Trans. Ind. Electron., 57 (10) 3557-3564.
[2] Akyildiz, I. F. Su, W., Sankarasubramaniam, Y., Cayirci, E.(2002). Wireless sensor networks: a survey, Computer Networks, 38 (4) 393-422.
[3] Liu, R., Trappe, W. (2009). Securing wireless communications at the physical layer, New York, Springer.
[4] Pan, G., Tang, C., Zhang, X., Li, T., Weng, Y., Chen, Y. (2016). Physical-Layer Security Over Non-Small-Scale Fading, IEEE Trans. Veh. Technol., 65 (3) 1326 – 1339.
[5] Lei, H., Gao, C., Guo, Y., Pan, G. (2015). On Physical Layer Security Over Generalized Gamma Fading Channels, IEEE Commun. Lett., 19 (7) 1257-1261.
[6] Lei, H., Zhang, H., Ansari, I. S., Gao, C., Guo, Y., Pan, G., Qaraqe, K.A. (2016). Performance Analysis of Physical Layer Security Over Generalized-K Fading Channels Using a Mixture Gamma Distribution, IEEE Commun. Lett., 20 (2) 408-411 (July).
[7] Lei, H., Ansari, I. S., Yongcai, C. G., Pan, G. G., Qaraqe, K. A. (2016). Secrecy Performance Analysis of SIMO Generalized-K Fading Channels, Frontiers of Information Technology & Electronic Engineering, 17 (10).
[8] Zou, Y., Wang, G. (2016). Intercept behavior analysis of industrial wireless sensor networks in the presence of eavesdropping attack, IEEE Trans. Indust. Inform., 12 (2) 780-787.
[9] Zou, Y., Wang, X., Shen, W. (2013). Optimal relay selection for physical layer security in cooperative wireless networks, IEEE J. Sel. Areas Commun., 31(10) 2099-2111.
[10] Goel, S., Negi, R. (2008). Guaranteeing secrecy using artificial noise, IEEE Trans. Wire. Commun., 7 (6) 2180- 2189.
[11] Bloch, M., Barros, J., Rodrigues, M., McLaughlin, S. (2008). Wireless information-theoretic security, IEEE Trans. Inf.Theory, 54 (6) 2515-2534 (June).
[12] Kostic, M. (2005). Analytical approach to performance analysis for channel subject to shadowing and fading, IEEE Proc., 52 (6) 821–827.
[13] Gradshteyn, I. S., Ryzhik, I. M. (1994). Tables of integrals, series, and products, fifth edition, New York, Academic Press.
[14] Prudnikov, A. P., Brychkov, Y. A., Marichev, O. I. (1990). Integral and Series: Volume 3, More Special Functions, New York, CRC Press Inc.
[15] Adamchik, V. S., Marichev, O. I. (1990). The algorithm for calculating integrals of hypergeometric type functions and its realization in reduce system, In: Proc. of the inter. symp. on Sym. and comp., Tokyo, Japan, 212-224.


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