Set-theoretic model of the information state of the industrial cyber- physical system https://doi.org/10.33108/visnyk_tntu2018.01.132

Main Article Content

Serhii Volkov

Abstract

The article presents the results of the study, which made it possible to define the concept of sensory, sensory-hardware, sensory-functional and sensory-software infrastructures of the cyber-physical system and formulate the principles of a unified approach to the identification of the current state of a cyber-physical
system based on its sensory infrastructure. The set-theoretical model of formation of the information state of the cyber-physical system based on the model of its sensory infrastructure is proposed, the decomposition of which enables to determine the current state of its hardware, functional and programmatic components.

Article Details

Section

Articles

References

1. US National Science Foundation, Cyber-Physical Systems (CPS) NSF 11-516, https://www.nsf.gov/pubs/2012/nsf12520/nsf12520.htm, 2012.

2. Lee E. A. and Seshia S. A., Introduction to Embedded Systems, A Cyber-Physical Systems Approach, http:,LeeSeshia.org, 2011.

3. Colombo А. W., Karnouskos S. and Bangemann T., “Towards the Next Generation of Industrial Cyber-Physical Systems”, in Industrial Cloud-based Cyber-Physical Systems: The IMC-AESOP Approach, Springer, 2014.

4. Kiselev M. I., Novikov S.V. “Industriya 4.0”: nekotoryye problemnyye voprosy. Stankoinstrument, 2016, No. 2/2016, рр. 42 – 46. Rezhim dostupu www.stankoinstrument.su/journal/2016/2 [in Russian].

5. Lee, Jay; Bagheri, Behrad; Kao, Hung-An (2014). “Recent Advances and Trends of Cyber-Physical Systems and Big Data Analytics in Industrial Informatics”. IEEE Int. Conference on Industrial Informatics (INDIN) 2014.

6. Volkov S.L. Teoretychni zasady pobudovy modeli struktury ekspertnoyi systemy yakosti kiberfizychnykh system. Collection of scientific works of the 6-th International Scientific and Practical Conference “Metrology, Technical Regulation, Quality: Achievements and Prospects” (October 11–12) Odessa ODATRY, 2016, pp. 139 – 141 [in Ukrainian].

7. IEC 61499 Function Blocks. Part 1: Architecture, Edition. 2.0, retrieved 12 October 2015.

8. Yoong L.H., Roop P.S., Bhatti Z.E., Kuo M.M.Y. (2015) IEC 61499 in a Nutshell. In: Model-Driven Design Using IEC 61499. Springer, Cham.

https://doi.org/10.1007/978-3-319-10521-5_2

9. Volkov S.L. Modelʹ sensorno-aparatnoyi infrastruktury kiberfizychnoyi systemy. Collection of scientific works of the seventh international scientific-practical conference “Technical regulation, metrology and information technologies”. Odessa: ODATRY, 2017, pp. 157 – 159 [in Ukrainian].

10. Noveyshiy filosofskiy slovar': [2-ye izd., pererabotannoye i dopolnennoye]. Minsk: Interpresservice; The Book House, 2001, 1280 p. (World of Encyclopedias) [in Russian].

11. Kadomtsev B.B. Dinamika i informatsiya. Moscow: Redaktsiya zhurnala “Uspekhi fizicheskikh nauk”, 1997, 400 p. [in Russian].

Most read articles by the same author(s)