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Sustainability as a criterion for information security in cyber-physical systems

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Abstract

A new point of view on security of cyber-physical systems as a single complex combining both physical and information components is presented. An approach is proposed to the assessment of the security of such systems based on homeostasis, i.e., a property to maintain the functioning stability under destabilizing factors. The dynamic model of the cyber-physical system security is given.

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References

  1. Chernyak, L., Cyber-physical systems at the start, Otkrytye Sist., 2014, no. 2, pp. 10–13.

    Google Scholar 

  2. Kranenburg, van, R., The Internet of Things. A Critique of Ambient Technology and the All-Seeing Network of RFID, Amsterdam, 2008.

    Google Scholar 

  3. Colombo, A. and Bangemann, T., Industrial Cloud-based Cyber-physical Systems: The IMC-AESOP Approach, Cham Springer International Publishing, 2014.

    Book  Google Scholar 

  4. Dat Dac Hoang, Hye-Young Paik, and Chae-Kyu Kim, Serviceoriented middleware architectures for cyberphysical systems, Int. J. Comput. Sci. Network Secur., 2012, pp. 79–87.

    Google Scholar 

  5. Teodora, S. and Miclea, L., Cyber-physical systems-concept, challenges and research areas, J. Control Eng. Appl. Inf., 2012, pp. 28–33.

    Google Scholar 

  6. Khakhanov, V.I., Obrizan, V.I., Mishchenko, A.S., and Filippenko, I.V., Computer engineering and technical diagnostics, Radioelectron. Inf., 2014, no. 1 (64), pp. 39–45. http://openarchive.nure.ua/bitstream/123456789/2393/1/%D0%A5%D0%90%D0%A5%D0%90%D0%9D%D0%9E%D0%92_%D0%A0%D0% 98_2014_1.pdf.

    Google Scholar 

  7. Gupta, R., Programming models and methods for spatio-temporal actions and reasoning in cyber-physical systems, NSF Workshop on CPS, 2006.

    Google Scholar 

  8. Zegzhda, D.P. and Stepanova, T.V., Applying large-scale adaptive graphs to modeling internet of things security, ACM International Conference Proceeding Series 7. Ser. “Proceedings of the 7th International Conference on Security of Information and Networks, SIN 2014,” 2014, pp. 479–482. http://elibrary.ru/item.asp?id=24049150.

    Google Scholar 

  9. Zegzhda, D.P., The evolution of information security paradigms–a look from the point of view of control theory, Sb. Materialov 24-i nauchno-tekhnicheskoi konferentsii “Metody i tekhnicheskie sredstva obespecheniya bezopasnosti informatsii” (Proc. 24th Scientific and Technical Conference “Methods and Technical Tools of Information Security”), St. Petersburg, 2015, pp. 13–14.

    Google Scholar 

  10. Zegzhda, P.D. and Zegzhda, D.P., Methodology of Dynamic Protection, Moscow: Mosk. Gos. Univ., 2005, pp. 216–229.

    MATH  Google Scholar 

  11. Sistemnyi analiz i prinyatie reshenii: Slovar’-spravochnik (System Analysis and Decision Making: Reference Dictionary), Volkova, V.N. and Kozlov, V.N., Eds., Moscow: Vysshaya shkola, 2004.

  12. Zegzhda, D.P. and Stepanova, T.V., Large-scale systems security evolution: Control theory approach, SIN’15, Proceedings of the 7th International Conference on Security of Information and Networks, Sochi, 2015.

    Google Scholar 

  13. Nicolis, J.S., Dynamics of Hierarchical Systems: An Evolutionary Approach, Springer, 1986.

    Book  MATH  Google Scholar 

  14. Lavrova, D.S., The approach to the development of the SIEM-system of the Internet of Things, Probl. Inf. Bezop., Komp’yut. Sist., 2016, no. 2.

    Google Scholar 

  15. Lavrova, D.S. and Pechenkin, A.I., Detection of security incidents in the Internet of Things, Probl. Inf. Bezop., Komp’yut. Sist., 2015, no. 2, pp. 80–85.

    Google Scholar 

  16. Shelukhin, O.I., Osin, A.V., and Smolski, S.M., Samopodobie i fraktaly. Telekommunikatsionnye prilozheniya (Self-Similarity and Fractals. Telecommunication Applications), Moscow: Fizmatlit, 2008.

    Google Scholar 

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Correspondence to D. P. Zegzhda.

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Original Russian Text © D.P. Zegzhda, 2016, published in Problemy Informatsionnoi Bezopasnosti, Komp’yuternye Sistemy.

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Zegzhda, D.P. Sustainability as a criterion for information security in cyber-physical systems. Aut. Control Comp. Sci. 50, 813–819 (2016). https://doi.org/10.3103/S0146411616080253

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