Analysis of the Radio Coverage for a Mobile Private Network Implemented Using Software Defined Radio Platforms
Abstract
1. Introduction
1.1. Related Work
1.2. Problem Formulation
1.3. Contributions and Organization
- We reviewed the existing state-of-the-art concerning mobile private networks and their radio coverage.
- We implemented a 4G MPN using the USRP B210 SDR (Ettus Research Ltd., Austin, TX, USA) as radio front-end and an open-source software suite (srsRAN 4G 23.11) and extended its range using an external power amplifier.
- We estimated the radio coverage for the deployed network using the HTZ Communications 2024.3 radio network planning and optimization software [17] and different propagation models, both empirical and deterministic, for three different frequency bands (700 MHz, 1800 MHz, and 2600 MHz).
- We performed field measurements for each of the above-mentioned frequency ranges and compared them with the obtained estimations, as validation step.
- We discussed the obtained results and highlighted that the best correlation between the estimated and the measured coverage was obtained using the ITU-R 1225 propagation model.
2. Propagation Models Suitable for Radio Coverage Estimation in Case of Mobile Communication Networks
2.1. The ITU-R 1225 Propagation Model
2.2. The ITU-R P.528-3 Propagation Model
2.3. The ITU-R 2001-4 Propagation Model
2.4. The ITU-R 1546-6 Propagation Model
2.5. The ITU-R 525/526-11 Propagation Model
2.6. The M.2412 UMa Propagation Model
2.7. The ITU-R 452-14 Propagation Model
2.8. Conclusion
3. Details Regarding the Implementation of a Mobile Private Network Using SDR Platforms
4. Results and Discussion
4.1. Coverage Analysis for the 2600 MHz Frequency Band
- The percentage from the measurement route for which the difference between the measured and the estimated RSRP was of less than 6 dB (in %);
- The standard deviation (in dB);
- The average error (in dB);
- The correlation factor (ranging from 0 to 1).
4.2. Coverage Analysis for the 1800 MHz Frequency Band
4.3. Coverage Analysis for the 700 MHz Frequency Band
5. Conclusions and Future Work
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| COTS | Commercial Off-The-Shelf |
| EARFCN | E-UTRA Absolute Radio Frequency Channel Number |
| eNB | Evolved Node B |
| ITU | International Telecommunication Union |
| LTE | Long-Term Evolution |
| MIMO | Multiple Input Multiple Output |
| MPN | Mobile Private Network |
| NR | New Radio |
| PRBs | Physical Resource Blocks |
| RB | Resource Block |
| RSRP | Reference Signal Received Power |
| SDR | Software-Defined Radio |
| UE | User Equipment |
| PUSCH | Physical Uplink Shared Channel |
| USRP | Universal Software Radio Peripheral |
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| Model | Main Purpose | Frequency Range | Key Elements Included |
|---|---|---|---|
| ITU-R 1225 | Channel and link evaluation for IMT-2000 test environments | Mobile/IMT bands (hundreds of MHz to several GHz) | Simplified fading & delay spread environments |
| ITU-R P.528-3 | Aeronautical mobile & radionavigation path loss model. | 125 MHz–15.5 GHz | Empirical curves incl. free-space, diffraction, gaseous absorption, variability. |
| ITU-R 2001-4 | General-purpose composite propagation model covering multiple mechanisms. | 30 MHz–50 GHz | Includes free-space, diffraction, ducting, scattering, climatic effects. |
| ITU-R 1546-6 | Point-to-area coverage prediction for terrestrial broadcasting and land mobile. | 30 MHz–4 GHz | Empirical curves with corrections for terrain, sea, and antenna height. |
| ITU-R 525/526-11 | Free-space and diffraction prediction methods. | Broad RF bands (general purpose) | P.525: Free-space attenuation. P.526: diffraction over obstacles (knife-edge, spherical). |
| M.2412 UMa | IMT-2020 Urban Macro (UMa) scenario model. | 500 MHz–100 GHz | Standardized LOS/NLOS path loss & channel parameters. |
| ITU-R 452-14 | Comprehensive model for interference and long-range terrestrial propagation. | 100 MHz–50 GHz | Free-space, diffraction, scatter, ducting; includes statistical variability. |
| Parameter | Values | ||
|---|---|---|---|
| LTE Band | 28 | 3 | 7 |
| Frequency (Downlink) | 780.5 MHz | 1842.5 MHz | 2680 MHz |
| Frequency (Uplink) | 725.5 MHz | 1747.5 MHz | 2560 MHz |
| EARFCN Downlink | 9435 | 1575 | 3350 |
| EARFCN Uplink | 27,435 | 19,575 | 21,350 |
| Gain (TX) | 80 | ||
| Gain (RX) | 40 | ||
| Number of PRBs | 50 | ||
| Bandwidth | 10 MHz | ||
| Propagation Model | <6dB (%) | Standard Deviation | Mean Error (dB) | Correlation Factor |
|---|---|---|---|---|
| ITU-R 1225 | 100 | 0.19 | −0.04 | 1.00 |
| ITU-R 528-3 | 90.51 | 3.34 | −0.62 | 0.97 |
| ITU-R 2001-4 | 32.85 | 13.63 | 4.77 | 0.59 |
| ITU-R 1546-6 | 62.77 | 10.02 | −7.66 | 0.71 |
| ITU-R 525/526-11 | 55.47 | 10.14 | 0.81 | 0.74 |
| M.2412 UMa | 69.34 | 6.95 | 5.35 | 0.83 |
| ITU-R 452-14 | 71.53 | 9.44 | −0.03 | 0.78 |
| Propagation Model | <6 dB (%) | Standard Deviation | Mean Error (dB) | Correlation Factor |
|---|---|---|---|---|
| ITU-R 1225 | 100 | 0.18 | 0.01 | 1.00 |
| ITU-R 528-3 | 98.06 | 3.04 | 0.31 | 0.98 |
| ITU-R 2001-4 | 45.16 | 10.95 | 3.65 | 0.71 |
| ITU-R 1546-6 | 45.16 | 11.68 | −11.32 | 0.65 |
| ITU-R 525/526-11 | 52.90 | 9.48 | 5.61 | 0.71 |
| M.2412 UMa | 90.32 | 3.65 | 1.75 | 0.97 |
| ITU-R 452-14 | 72.26 | 8.16 | 0.59 | 0.83 |
| Propagation Model | <6 dB (%) | Standard Deviation | Mean Error (dB) | Correlation Factor |
|---|---|---|---|---|
| ITU-R 1225 | 100 | 0.40 | 0.09 | 1.00 |
| ITU-R 528-3 | 100 | 1.56 | 0.14 | 0.99 |
| ITU-R 2001-4 | 52.14 | 7.38 | 2.41 | 0.87 |
| ITU-R 1546-6 | 47.86 | 10.95 | −9.57 | 0.72 |
| ITU-R 525/526-11 | 58.12 | 6.40 | 2.07 | 0.89 |
| M.2412 UMa | 94.02 | 2.68 | 0.86 | 0.98 |
| ITU-R 452-14 | 94.02 | 3.05 | −0.97 | 0.97 |
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Hociung, V.-S.; Gheorghe, M.-G.; Zamfirescu, C.; Vochin, M.-C.; Preda, R.-O.; Martian, A. Analysis of the Radio Coverage for a Mobile Private Network Implemented Using Software Defined Radio Platforms. Technologies 2025, 13, 489. https://doi.org/10.3390/technologies13110489
Hociung V-S, Gheorghe M-G, Zamfirescu C, Vochin M-C, Preda R-O, Martian A. Analysis of the Radio Coverage for a Mobile Private Network Implemented Using Software Defined Radio Platforms. Technologies. 2025; 13(11):489. https://doi.org/10.3390/technologies13110489
Chicago/Turabian StyleHociung, Vlad-Stefan, Marius-George Gheorghe, Ciprian Zamfirescu, Marius-Constantin Vochin, Radu-Ovidiu Preda, and Alexandru Martian. 2025. "Analysis of the Radio Coverage for a Mobile Private Network Implemented Using Software Defined Radio Platforms" Technologies 13, no. 11: 489. https://doi.org/10.3390/technologies13110489
APA StyleHociung, V.-S., Gheorghe, M.-G., Zamfirescu, C., Vochin, M.-C., Preda, R.-O., & Martian, A. (2025). Analysis of the Radio Coverage for a Mobile Private Network Implemented Using Software Defined Radio Platforms. Technologies, 13(11), 489. https://doi.org/10.3390/technologies13110489

