Information indicators of radar portraits of air objects and generalized indicators of the ability of recognition systems to extract information
https://doi.org/10.26467/2079-0619-2018-21-5-94-104
Abstract
About the Authors
R. N. AkinshinRussian Federation
Ruslan N. Akinshin - Doctor of Technical Sciences, Associate Professor, Leading Researcher.
Moscow
A. V. Peteshov
Russian Federation
Andrey V. Peteshov - Candidate of Technical Sciences, Associate Professor, Head of the CWWIURE Chair
References
1. Shirman, Y.D., Gorshkov, C.A., Leshenko, S.P. Bratchenko, G.D. and Orlenko, V.M. (2000). Metody radiolokatsionnogo raspoznavaniya i ikh modelirovanie [Methods of radar recognition and modeling]. Radiolokatsiya i radiometriya [Radar and radiometry], no. 2, pp. 5–65. (in Russian)
2. Vasiliev, O.V., Abaturov, V.A., Potapov, R.A., Sitnikov, A.G. and Korotkov, S.S. (2011). Osobennosti raspoznavaniya vozdushnykh tseley v bortovoy RLS pri dlitelnoy kogerentnoy obrabotke signalov [The features of identification of air targets in radar with long-term coherent signal processing]. Radiotekhnika [Radio engineering], no. 2, pp. 43–51. (in Russian)
3. Abaturov, V.A., Vasiliev, O.V., Efimov, V.A. and Makaev, V.E. (2006). Matematicheskie modeli radiolokatsionnykh signalov, otrazhennykh ot vozdushnykh tseley raznykh klassov [Mathematical models of radar signals reflected from air targets of different classes]. Radiotekhnika [Radio engineering], no. 7, pp. 28–33. (in Russian)
4. Tsivlin, I.P. (2002). Avtomaticheskoe raspoznavanie radiolokatsionnykh izobrazheniy v bortovoy RLS [Automatic recognition of radar images in the onboard RLS]. Radiotekhnika [Radio engineering], no. 9, pp. 43–50. (in Russian)
5. Jacobs, S.P. and O'Sullivan, J.A. (2000). Automatic target recognition using sequences of high resolution radar range-profiles. IEEE Transactions on Aerospace and Electronic Systems, vol. 36, no. 2, pp. 364–382.
6. Fomin, Y.A. and Tarlovskiy, G.R. (1986). Statisticheskaya teoriya raspoznavaniya obrazov [Statistical theory of pattern recognition]. Moscow: Radio i svyaz, 264 p. (in Russian)
7. Akinshin, N., Avilushkin, V.F., Dudka, V.D. and Nikolaev, V.A. (2003). Radiosistemy peredachi informatsii [Radio systems of information transfer]. Tula: TAII, pp. 475–480. (in Russian)
8. Zatuchniy, D.A. (2012). Umenshenie pogreshnostey pri peredache dannykh s borta vozdushnogo sudna v gornykh rayonakh dlya ovch-diapazona putem sovershenstvovaniya vybora mesta peredachi [Reducing errors in the transmission of data from aircraft in mountain areas for the VHF band by improving the choice of the transmission place]. Scientific Bulletin of the Moscow State Technical University of Civil Aviation, no. 176, pp. 150–152. (in Russian)
9. Braytkrayc, S.G., Ilin, E.M., Polubekhin, A.I. and Zatuchniy, D.A. (2017). Metodicheskij podkhod k opredeleniyu mesta netraditsionnykh metodov radiolokatsii v perspektivnom radiolokatsionnom primenenii [A methodical approach to determining the location of non-traditional methods of radar in a prospective radar application]. Vestnik SPbGU GA [Bulletin of the St. Petersburg State University of Civil Aviation], vol. 3, no. 16, pp. 72–84. (in Russian)
10. Kozlov, A.I., Tatarinov, V.N., Tatarinov, S.V. and Krivin, N.N. (2013). Polyarizacionno-dopplerovskaya funktsiya otklika sostavnogo radiolokatsionnogo obekta v zadache obnaruzheniya [Polarization-Doppler response function of a composite radar object in the detection problem]. Scientific Bulletin of the Moscow State Technical University of Civil Aviation, vol. 7, no. 193, pp. 26–28. (in Russian)
11. Kozlov, A.I., Tatarinov, V.N., Tatarinov, S.V. and Krivin, N.N. (2013). «Polyarizatsionnyy sled» pri rasseyanii elektromagnitnykh voln sostavnymi obektami [“Polarization trace” in the scattering of electromagnetic waves by composite objects]. Scientific Bulletin of the Moscow State Technical University of Civil Aviation, vol. 3, no. 189, pp. 66–73. (in Russian)
12. Troickiy, V.I. (2016). Razrabotka metodov matematicheskogo modelirovaniya radioteplovykh KESN letatelnykh apparatov [Development of methods for mathematical modeling of radio thermal CESN aircraft]. Civil Aviation High Technologies, vol. 19, no. 5, pp. 97–103. (in Russian)
Review
For citations:
Akinshin R.N., Peteshov A.V. Information indicators of radar portraits of air objects and generalized indicators of the ability of recognition systems to extract information. Civil Aviation High Technologies. 2018;21(5):94-104. (In Russ.) https://doi.org/10.26467/2079-0619-2018-21-5-94-104