Substantiation of construction and evaluation ways of the application efficiency for spatially distributed system of information sensors to provide environment monitoring
https://doi.org/10.17586/2226-1494-2022-22-3-600-609
Abstract
Based on the principles of structural information analysis of the situation, the ways to build a system of spatially distributed information sensors with functions of reconfiguring the structure and changing the composition in accordance with monitoring tasks and conditions are justified. Using the method of indeterminate Lagrange multipliers, a procedure has been developed for rationally selecting the configuration of a sensor system to achieve stability and reliability of control over a given area of space. Experimental estimates of the determining location accuracy of objects in spatially distributed passive radar systems are obtained when azimuth-angular direction finders and signal detectors are used as information sensors. Regularities of accuracy increase due to selection of number and positions of information sensors are revealed.
Keywords
About the Authors
A. V. ZyuzinRussian Federation
Alexey V. Zyuzin — D. Sc. (Eng.), Professor, Head of Department
Yaroslavl, 150001
M. V. Knysh
Russian Federation
Marina V. Knysh — PhD (Physics & Mathematics), Associate Professor
Yaroslavl, 150001
S. N. Razinkov
Russian Federation
Sergey N. Razinkov — D. Sc. (Physics & Mathematics), Associate Professor, Leading Researcher
Voronezh, 394065
A. V. Tymoshenko
Russian Federation
Alexander V. Tymoshenko — D. Sc. (Eng.), Professor, Leading Researcher
Moscow, 125993
References
1. Kupriianov A.I., Sakharov A.V. Theoretical Background of the Radioelectronic Warfare. Tutorial. Moscow, Vuzovskaja kniga Publ., 2007, 356 p. (in Russian)
2. Kostylev V.I., Slichenko M.P. Energy detection of partially polarized radio signals against the background of gaussian noise. Radio-Physics and Quantum Electronics, 2011, vol. 53, no. 12, pp. 721–731. https://doi.org/10.1007/s11141-011-9265-9
3. Trifonov A.P., Korchagin Y.E., Chernoyarov O.V., Shakhtarin B.I. Detection of radio signals that appear and disappear at unknown moments. Journal of Communications Technology and Electronics, 2015, vol. 60, no. 4, pp. 375–385. https://doi.org/10.1134/S1064226915040130
4. Kochkarov A.A., Razin’kov S.N., Timoshenko A.V., Shevtsov V.A. Comprehensive method of information resources control ensuring the security of telecommunication systems of aviation monitoring complexes. Russian Aeronautics, 2020, vol. 63, no. 2, pp. 347–356. https://doi.org/10.3103/s1068799820020233
5. Menshakov Iu.K. Theoretical Background of the Technical Reconnaissance. Tutorial. Moscow, Bauman Moscow State Technical University, 2008, 536 p. (in Russian)
6. Radzievskii V.G., Sirota A.A. Theoretical Background of the Electronic Reconnaissance. Moscow, Radiotehnika Publ., 2004, 432 p. (in Russian)
7. Pieraccini M., Miccinesi L., Rojhani N. RCS Measurements and ISAR images of small UAVs. IEEE Aerospace and Electronic Systems Magazine, 2017, vol. 32, no. 9, pp. 28–32. https://doi.org/10.1109/MAES.2017.160167
8. Kondratev V.S., Kotov A.F., Markov L.N. Multi-Position Radio Engineering Systems. Moscow, Radio i svjaz’ Publ., 1986, 264 p. (in Russian)
9. White W.D. Low-angle radar tracking in the presence of multipath. IEEE Transactions on Aerospace and Electronic Systems, 1974, vol. AES-10, no. 6, pp. 835–852. https://doi.org/10.1109/TAES.1974.307892
10. Rаzinkоv S.N., Rеshetnyak Е.А., Zhidko E.А. Measurement of the coordinates of radio emission at high frequencies by goniometric and goniometric-range finding methods. Measurement Techniques, 2020, vol. 62, no. 12, pp. 1056–1063. https://doi.org/10.1007/s11018-020-01734-y
11. Gurov G.B., Pozdyshev V.Y., Timoshenko A.V., Razinkova O.E. Identification of maneuvering objects during structural and system control of airspace. Journal of Computational Technologies, 2021, vol. 26, no. 4, pp. 16–26. (in Russian). https://doi.org/10.25743/ICT.2021.26.4.003
12. Bakhtin V.I., Ivanishko I.A., Lebedev A.V., Pindrik O.I. Method of the Lagrange Multipliers. Minsk, BSU, 2012, 40 p. (in Russian)
13. Barton D.K. Modern Radar System Analysis. Norwood, Mass., Artech House, 1988, 388 p.
14. Agafonov L.K. Elements of the Mathematical Description of the Cellular Systems Structures for Mobile Radio Communications. Sredstva svjazi, 1991, no. 2, pp. 28–32. (in Russian)
15. Lvov A.V., Mitelkova A.D., Kabaev D.V., Starodubrovsky A.S. Development and prototyping of SDR radio systems using the GNU RADIO toolkit. Proс. of the XXIV International Conference “Radar Ranging, Navigation, and Communications”. Vol. 2. Voronezh, Voronezh State University, 2018, pp. 228–234. (in Russian)
16. Zhidko E.A., Razin’kov S.N. Methods for determining the angular coordinates and locations of radio sources in unmanned monitoring systems and experimental estimates of the accuracy of these parameters. Measurement Techniques, 2020, vol. 62, no. 10, pp. 893–899. https://doi.org/10.1007/s11018-020-01710-6
Review
For citations:
Zyuzin A.V., Knysh M.V., Razinkov S.N., Tymoshenko A.V. Substantiation of construction and evaluation ways of the application efficiency for spatially distributed system of information sensors to provide environment monitoring. Scientific and Technical Journal of Information Technologies, Mechanics and Optics. 2022;22(3):600-609. (In Russ.) https://doi.org/10.17586/2226-1494-2022-22-3-600-609