Development and Application of a Methodology for Optimizing Frequency Spectrum Usage in the Design of LTE-1800 TDD Radio Access Networks
https://doi.org/10.31854/1813-324X-2025-11-6-53-61
EDN: RTUYNI
Abstract
Relevance of the research topic is simultaneously driven by technical, industry, and regulatory factors. First, mission-critical operational radiocommunications are a fundamental element in ensuring the safety and controllability of railway infrastructure; at the same time, current GSM-R-based solutions are reaching their limits in capacity and functionality. Second, spectrum scarcity and fragmentation in the 1785–1805 MHz band, as well as the need for its coexistence with other radio networks, necessitate spectrally efficient planning methods and the reduction of mutual interference. Existing radio planning practices are generally poorly adapted to the specifics of railways, increasing the risks of coverage shortfalls, degradation of handover performance, and failure to meet latency regulations. The comprehensive methodology proposed in this study for LTE‑1800 TDD delivers measurable reductions in mutual interference, expands zones of reliable coverage, ensures compliance with <50 ms latency for critical services, and enables rational use of scarce spectrum. Accordingly, the topic has high practical relevance for the modernization of existing lines, the design of new sections, and the phased migration to FRMCS/5G.
The main objective of the study is to develop and substantiate a comprehensive methodology for designing digital systems of operational railway radiocommunications based on the LTE‑1800 TDD standard under limited spectrum resources and stringent requirements for reliability and latency.
Results: mutual interference reduced by up to 30 %, the radius of reliable coverage increased by up to 15 % through antenna system optimization, guaranteed compliance with <50 ms signal delay requirements for control systems; the effectiveness of adaptive bandwidth selection is demonstrated. Adaptive multi-stage LTE‑1800 TDD planning for operational railway communications delivers measurable improvements in interference immunity, coverage, and latency under spectrum constraints and can serve as a practical design standard.
Scientific novelty: an integrated methodology with adaptive branching and a set of application-specific correction factors for the railway environment is proposed, ensuring simultaneous fulfillment of latency, robustness, and spectral efficiency requirements amid spectrum scarcity.
Practical significance: the methodology has been implemented in real-world design practice, improving the reliability of critical services and the efficiency of spectrum use.
About the Authors
D. P. LobeevRussian Federation
K. Z. Bilyatdinov
Russian Federation
References
1. Roslyakov A. Generations of fixed networks F1G-F5G. Part 1. First Mile. 2022;8(108):34–40. (in Russ.) DOI:10.22184/2070-8963.2022.108.8.34.40. EDN:FHVCQW
2. Roslyakov A.V. Generations of F1G-F5G fixed networks. Part 2. First Mile. 2023;1(109):36–46. (in Russ.) DOI:10.22184/2070-8963.2023.109.1.36.46. EDN:ODRGNG
3. Privalov A., Boldinov A., Privalov A. Mathematical model of the process of transmission of control commands over radio channels of automated systems. Information and Space. 2023;4:71–83. (in Russ.) EDN:JQXUQN
4. Petrov A.G., Vasiliev M.N. The role of automatic control systems in railway transport and the transport system of Russia. Special equipment and transport technologies. 2023;18:7–11. (in Russ.) EDN:ISWFZT
5. Schneps-Schneppe M.A., Fedorova N.O., Sukonnikov G.V., Kupriyanovsky V.P. Digital railway and the transition from the GSM-R network to the LTE-R and 5G-R – whether it takes place? International Journal of Open Information Technologies. 2017;1:71–79. (in Russ.) EDN:XNRUKL
6. Lobeev D.P., Bilyatdinov K.Z. Scientific and technical proposals for designing radio networks of the LTE-1800 TDD standard. Age of Quality. 2025;2:301–312. (in Russ.) EDN:VUBZLJ
7. Yurkin Yu.V., Maslova A.A. Calculation of coverage area when designing a mobile communication network. Automation, Communications, Informatics. 2024;8:2–5. (in Russ.) DOI:10.62994/AT.2024.8.8.001. EDN:QWVDND
8. Olifer V., Olifer N. Computer Networks. Principles, Technologies, Protocols. Anniversary Edition. St. Petersburg: Peter Publ.; 2024. 1008 p. (in Russ.)
9. Skrynnikov V.G. UMTS/LTE Radio Subsystems Theory and Practice. Moscow: Sports and culture Publ., 2012. 864 p. (in Russ.) EDN:QMXKHV
10. Babkov V.Yu., Golant G.Z., Rusakov A.V. Mobile Communication Systems: Terms and Definitions. Moscow: Goryachaya liniya – Telekom Publ.; 2011. 160 p. (in Russ.)
11. Lobeev D.P., Roenkov D.N. Features of the radio channel organization in digital networks of LTE standard technological railway radio communication. Scientific and Technical Conference of the St. Petersburg NTO RES Named after A.S. Popov, Dedicated to Radio Day. 2024;1(79)274–277. (in Russ.) EDN:HEWVCO
12. Zhu X., Chen S., Hu H., Su X. TDD-based mobile communication solutions for high-speed railway scenarios. IEEE Wireless Communcations. 2013;20(6):22–29. DOI:10.1109/MWC.2013.6704470
13. Taranenko A.Y., Gritsenko A.A., Lobeev D.P. Optimization of the use of the frequency spectrum in railway transport. Automation, Communications, Informatics. 2025;1:9–12. (in Russ.) DOI:10.62994/AT.2025.1.1.002. EDN:AUZIRU
Review
For citations:
Lobeev D.P., Bilyatdinov K.Z. Development and Application of a Methodology for Optimizing Frequency Spectrum Usage in the Design of LTE-1800 TDD Radio Access Networks. Proceedings of Telecommunication Universities. 2025;11(6):53-61. (In Russ.) https://doi.org/10.31854/1813-324X-2025-11-6-53-61. EDN: RTUYNI


























