1. Kunitsyn V. E., Tereshchenko E. D., Andreeva E. S. Radiotomografija ionosfery. Radio Tomography of the Ionosphere. Moscow, Fizmatlit, 2007, 336 p. (In Russ.).
2. GLONASS. Principy postroenija i funkcionirovanija. GLONASS. Principles of Construction and Functioning. In A. I. Perov, V. N. Kharisov (eds.). 4th ed. Moscow, IPRZhR, 2010, 800 p. (In Russ.).
3. Afraimovich E. L., Perevalova N. P. GPS-monitoring verhnej atmosfery Zemli. GPS Monitoring of the Earth’s Upper Atmosphere. Irkutsk, Gosudarstvennoe uchrezhdenie Nauchnyj centr Vostochno-Sibirskogo nauchnogo centra Sibirskogo otdelenija Rossijskoj akademii nauk, 2006, 480 p. (In Russ.).
4. Belokonov I. V., Boltov E. A., Elisov N. A., Lomaka I. A., Nikolaev P. N., Shafran S. V. A family of nanosatellites for studying the ionosphere based on the SamSat platform developed by Samara University. Vos'moj Belorusskij kosmicheskij kongress : materialy kongressa : v 2 t., Minsk, 25-27 oktjabrja 2022 g. [Eighth Belarusian Space Congress : Materials of the Congress : in 2 Volumes, Minsk, 25-27 October 2022]. Minsk, Ob''edinennyj institut problem informatiki Nacional'noj akademii nauk Belarusi, 2022, rr. 167-170 (In Russ.).
5. Fong C.-J., Wu B.-H., Yen N., Chen P. Application of FORMOSAT-3/COSMIC mission to global Earth monitoring. Space 2005, Long Beach, California, 30 August - 01 September 2005. Long Beach, 2005, r. 6774. https://doi.org/10.2514/6.2005-6774
6. Romanov A. A., Novikov A. V. Measurement of the total electron content of the Earth's ionosphere using a multi-frequency coherent sounding signal. Voprosy jelektromehaniki. Trudy Nauchno-proizvodstvennogo predprijatija Vserossijskogo nauchno-issledovatel'skogo instituta jelektromehaniki [Questions of electromechanics. Proceedings of the Research and Production Enterprise of the All-Russian Research Institute of Electromechanics], Moscow, Federal'noe gosudarstvennoe unitarnoe predprijatie "Nauchno-proizvodstvennoe predprijatie - Vserossijskij nauchno-issledovatel'skij institut jelektromehaniki s zavodom im. A. G. Iosif'jana", 2009, vol. 111, pp. 31-36 (In Russ.).
7. Sevastyanov N. N., Branets V. N., Panchenko V. A., Kazinsky N. V., Kondranin T. V., Negodyaev S. S. Analysis of Modern Possibilities of Creating Small Spacecraft for Remote Sensing of the Earth. Trudy Moskovskogo fiziko-tehnicheskogo instituta [Proceedings of the Moscow Institute of Physics and Technology], 2009, vol. 1, no. 3, pp. 15-23 (In Russ.).
8. Belokonov I. V., Krot A. M., Kumarin A. A., Nikolaev P. N., Filonin O. V. Use of GNSS signals to study the state of the ionosphere. Navigacija i upravlenie dvizheniem : tezisy dokladov Mezhdunarodnogo seminara, Samara, 28 sentjabrja - 2 oktjabrja 2020 g. Samarskij nacional'nyj issledovatel'skij universitet imeni akademika S. P. Koroleva. Navigation and Traffic Control : Abstracts of Reports of the International Seminar, Samara, 28 September - 2 October 2020. Samara, Samara National Research University named after academician S. P. Korolev, 2020, pp. 85-86 (In Russ.).
9. Nikolaev P. N., Filonin O. V., Belokonov I. V. Fast back projection algorithm with filtering in 2D ionospheric radio tomography using intersatellite measurements. Advances in Space Research, 2021, vol. 68, no. 10, pp. 4167-4188. https://doi.org/10.1016/j.asr.2021.07.042
10. Shirman Ya. D., Manzhos V. N. Teorija i tehnika obrabotki radiolokacionnoj informacii na fone pomeh. Theory and Technique of Processing Radar Information Against the Background of Interference. Moscow, Radio i svjaz', 1981, 416 p. (In Russ.).
11. Savrasov Yu. S. Algoritmy i programmy v radiolokacii. Algorithms and Programs in Radar. Moscow, Radio i svjaz', 1985, 216 p. (In Russ.).
12. Kupryashkin I. F. Malogabaritnye mnogofunkcional'nye RLS s nepreryvnym chastotno-modulirovannym izlucheniem. Small-sized Multifunctional Radars with Continuous Partial-modulated Radiation. Moscow, Radiotehnika, 2020, 280 p. (In Russ.).
13. Le V. K., Kozlov S. V. Algorithms for long-term coherent accumulation of the reflected signal with non-zero higher derivatives of the distance to the radar target in the spectral region. Doklady Belorusskogo gosudarstvennogo universiteta informatiki i radioèlektroniki [Reports of the Belarusian State University of Informatics and Radioelectronics], 2021, no. 5, pp. 35-44 https://doi.org/10.35596/1729-7648-2021-19-5-35-44 (In Russ.).
14. Kuan N. V. Passive radar system for monitoring the movement of ships in coastal areas using satellite illumination signals. Izvestija vysshih uchebnyh zavedenij Rossii. Radiojelektronika [News of higher educational institutions in Russia, Radioelectronics], 2020, vol. 23, no. 3, pp. 41-52. https://doi.org/10.32603/1993-8985-2020-23-3-41-52 (In Russ.).
15. Vierinen J., Norberg J., Lehtinen M. S., Amm O., Roininen L., Väänänen A., Erickson P. J., McKay-Bukowski D. Beacon satellite receiver for ionospheric tomography. Radio Science, 2014, vol. 49, iss. 12, pp. 1141-1152. https://doi.org/10.1002/2014RS005434
16. Davies K. Ionospheric Radio Waves. Blaisdell Publishing Company, 1969, 460 r.
17. Tikhonov V. I. Optimal'nyj priem signalov. Optimum Signal Reception. Moscow, Radio i svjaz', 1983, 320 p. (In Russ.).
18. Genike A. A., Pobedinsky G. G. Global'nye sputnikovye sistemy opredelenija mestopolozhenija i ih primenenie v geodezii. Global Satellite Positioning Systems and Their Application in Geodesy. Moscow, Kartgeotsentr, 2004, 355 p. (In Russ.).