Performance Evaluation of a Radio-Based Emergency Communication System for Mountain Hiking Applications

Authors

  • Elsa Anggraini Universitas Jambi
  • Togi Simarmata Universitas Jambi
  • Mohammad Rayesa Universitas Jambi
  • Muhammad Fikri Universitas Jambi
  • Muhammad Fatih Universitas Jambi

DOI:

https://doi.org/10.51903/juritek.v6i2.7435

Keywords:

Multipoint to Point; Radio Communication; CSMA; Mountain Hiking; Emergency Communication

Abstract

Reliable communication is essential for mountain hiking activities, particularly in emergency situations where cellular networks are often unavailable. This study evaluates the performance of a radio-based emergency communication system designed to transmit GPS location data from multiple transmitter nodes to a single receiver using a multipoint-to-point communication scheme. The main contribution of this work is the field-based evaluation of a practical communication system capable of delivering location information from multiple users in mountainous environments without relying on cellular infrastructure. Field experiments were conducted using handheld radios operating in the 400–470 MHz frequency band under both line-of-sight (LOS) and non-line-of-sight (NLOS) conditions. The results show that the system achieved maximum communication distances of 834.40 m and 648.03 m under LOS conditions, while NLOS communication was maintained up to 279.00 m and 277.18 m. In addition, the transmitted GPS coordinates were successfully received and displayed at the monitoring station with positional differences of only a few meters compared to a reference GPS application. These results demonstrate that the proposed system can provide a practical and reliable solution for emergency communication and location monitoring in mountainous environments.

References

[1] A. Carreras-Coch, J. Navarro, C. Sans, and A. Zaballos, “Communication Technologies in Emergency Situations,” Apr. 01, 2022, MDPI. doi: 10.3390/electronics11071155.

[2] Q. Wang et al., “An Overview of Emergency Communication Networks,” Mar. 01, 2023, MDPI. doi: 10.3390/rs15061595.

[3] F. Kagai, P. Branch, J. But, R. Allen, and M. Rice, “Rapidly Deployable Satellite-Based Emergency Communications Infrastructure,” 2024, Institute of Electrical and Electronics Engineers Inc. doi: 10.1109/ACCESS.2024.3465512.

[4] H. Song and J. M. Chung, “Next-generation wireless communication technologies for improved disaster response and management,” ETRI Journal, vol. 47, no. 3, pp. 375–392, Jun. 2025, doi: 10.4218/etrij.2024-0546.

[5] Priyangshu Sutradhar, “Drone-Assisted Mesh Networks: A Framework for Emergency Connectivity in Remote and Low-Infrastructure Zones,” International Journal of Advanced Research in Science, Communication and Technology, pp. 113–119, May 2025, doi: 10.48175/ijarsct-27018.

[6] K. Prasad, S. Vandhana, G. Sudharshan, A. Srinivasulu, and M. M. Varma, “Development OF a Portable Emergency Ham Radio Communication System For Disaster Response,” in 2025 International Conference on Computer, Electrical & Communication Engineering (ICCECE), 2025, pp. 1–7. doi: 10.1109/ICCECE61355.2025.10940426.

[7] A. Qaddus and A. A. Minhas, “Spreading Seamless Radio over IP Services in Tactical Public Safety Communications using PTP Microwave IP Radio Networks,” in 2022 39th National Radio Science Conference (NRSC), 2022, pp. 233–240. doi: 10.1109/NRSC57219.2022.9971372.

[8] T. Jawhly, “Analysis of the fresnel breakdown and diffraction losses across a hilly terrain region,” Discover Electronics, vol. 2, no. 1, May 2025, doi: 10.1007/s44291-025-00075-w.

[9] A. Booranawong, P. Hirunkitrangsri, D. Buranapanichkit, C. Pochaiya, N. Jindapetch, and H. Saito, “A 2.4 GHz IEEE 802.15.4 Multi-Hop Network for Mountainous Forest and Watercourse Environments: Sensor Node Deployment and Performance Evaluation,” Signals, vol. 5, no. 4, pp. 774–793, Dec. 2024, doi: 10.3390/signals5040043.

[10] L. Sciullo, A. Trotta, and M. Di Felice, “Design and performance evaluation of a LoRa-based mobile emergency management system (LOCATE),” Ad Hoc Networks, vol. 96, p. 101993, 2020, doi: https://doi.org/10.1016/j.adhoc.2019.101993.

[11] B. Alorda-Ladaria, M. Pons, and E. Isern, “A Self-Configurable BUS Network Topology Based on LoRa Nodes for the Transmission of Data and Alarm Messages in Power Line-Monitoring Systems,” Sensors, vol. 25, no. 5, Mar. 2025, doi: 10.3390/s25051484.

[12] S. O. Un, K. Po, K. Thourn, R. Pec, C. Srun, and S. Siren, “Design of Emergency Position Reporting System for Disasters Using Amateur Radio and Automatic Packet Reporting System (APRS) as a Mobile Station Operator for Educational Purposes,” Indonesian Journal of Educational Research and Technology, vol. 3, no. 3, pp. 257–264, Aug. 2022, doi: 10.17509/ijert.v3i3.58888.

[13] M. Hermann and B. Bloessl, “On the Feasibility of Digital VHF Communications in Crisis Scenarios,” in 2024 IEEE Global Humanitarian Technology Conference (GHTC), 2024, pp. 431–438. doi: 10.1109/GHTC62424.2024.10771549.

[14] Y. M. O. Abbas and K. Asami, “Design of software-defined radio-based adaptable packet communication system for small satellites,” Aerospace, vol. 8, no. 6, Jun. 2021, doi: 10.3390/aerospace8060159.

[15] Denny Hardiyanto, Samuel Kristiyana, Dyah Anggun Sartika, Irfan Ahmad, and Israa Al_Barazanchi, “Training of dual band HT-based emergency communication tools on member of KTB BPBD, yogyakarta,” Jurnal Pengabdian dan Pemberdayaan Masyarakat Indonesia, vol. 1, no. 2, pp. 40–48, Sep. 2021, doi: 10.59247/jppmi.v1i2.6.

[16] D. Shin, C. Lee, and S. Choi, “A Conflict-Aware Channel Assignment in Multi-Radio Multi-Channel Wireless Mesh Networks,” IEEE Access, vol. 12, pp. 14751–14763, 2024, doi: 10.1109/ACCESS.2024.3357142.

[17] I. Q. Utami and F. Ramdani, “GEMAR: web-based GIS for emergency management and ambulance routing,” Inform. Health Soc. Care, vol. 47, no. 2, pp. 123–131, Apr. 2022, doi: 10.1080/17538157.2021.1948856.

[18] L. Chen, N. Zhao, Y. Chen, F. R. Yu, and G. Wei, “Toward Optimal Rate-Delay Tradeoff for Computation Over Multiple Access Channel,” IEEE Transactions on Communications, vol. 69, no. 7, pp. 4335–4346, 2021, doi: 10.1109/TCOMM.2021.3068493.

[19] N. Cordeschi, F. De Rango, and M. Tropea, “Exploiting an Optimal Delay-Collision Tradeoff in CSMA-Based High-Dense Wireless Systems,” IEEE/ACM Transactions on Networking, vol. 29, no. 5, pp. 2353–2366, 2021, doi: 10.1109/TNET.2021.3089825.

[20] H. Ding, M. Li, and J. Zhang, “A CSMA Mechanism with Variable Collision Control and Priority Provision in Multichannel Mobile Ad Hoc Networks,” Mobile Information Systems, vol. 2021, 2021, doi: 10.1155/2021/4482815.

[21] V. V. Borodin, V. E. Kolesnichenko, and V. A. Shevtsov, “Analysis of the Efficiency of Various Receipting Multiple Access Methods with Acknowledgement in IoT Networks,” Inventions, vol. 8, no. 4, Aug. 2023, doi: 10.3390/inventions8040105.

[22] M. Espinoza, C. Oberli, M. Gutiérrez Gaitán, and A. Maass, “Channel Access Probability in Unslotted IEEE 802.15.4 csma Under Correlated Clear Channel Assessments,” IEEE Access, vol. 13, pp. 136671–136686, 2025, doi: 10.1109/ACCESS.2025.3593810.

[23] T.-Y. Kim, L. F. Capon, H. Park, and J.-H. Kim, “A Design of Hybrid CSMA using Sequential-based Scheduling Algorithm,” in 2021 International Conference on Information and Communication Technology Convergence (ICTC), 2021, pp. 215–217. doi: 10.1109/ICTC52510.2021.9620758.

[24] D. Covaciu, I. Preda, and G. Ciolan, “GPS Based Data Acquisition System for Mobile Applications,” 2011.

[25] J. P. Snyder, Map Projections: A Working Manual. U.S. Geological Survey Professional Paper 1395, 1987.

[26] “Springer Handbook oƒ Global Navigation Satellite Systems Teunissen Montenbruck Editors.”

[27] R. F. Keefe et al., “Positioning methods and the use of location and activity data in forests,” May 01, 2019, MDPI AG. doi: 10.3390/f10050458.

[28] H. Cui and S. Zhang, “Satellite availability and service performance evaluation for next-generation gnss, rnss and leo augmentation constellation,” Remote Sens. (Basel)., vol. 13, no. 18, Sep. 2021, doi: 10.3390/rs13183698.

[29] J. Jagelčák, O. Kuba, J. Kubáňová, M. Kostrzewski, and M. Nader, “Dynamic Position Accuracy of Low-Cost Global Navigation Satellite System Sensors Applied in Road Transport for Precision and Measurement Reliability,” Sustainability (Switzerland) , vol. 16, no. 13, Jul. 2024, doi: 10.3390/su16135556.

[30] S. M. Asaad and H. S. Maghdid, “A Comprehensive Review of Indoor/Outdoor Localization Solutions in IoT era: Research Challenges and Future Perspectives,” Jul. 20, 2022, Elsevier B.V. doi: 10.1016/j.comnet.2022.109041.

[31] Ø. Hanssen, “Position Tracking and GIS in Search and Rescue Operations,” in Crisis Management - Theory and Practice, K. Holla, J. Ristvej, and M. Titko, Eds., London: IntechOpen, 2018. doi: 10.5772/intechopen.75371.

[32] J. Jeon, M. Ji, J. Lee, K. S. Han, and Y. Cho, “Deep Learning-Based Emergency Rescue Positioning Technology Using Matching-Map Images,” Remote Sens. (Basel)., vol. 16, no. 21, Nov. 2024, doi: 10.3390/rs16214014.

[33] C. Specht, “Maritime DGPS System Positioning Accuracy as a Function of the HDOP in the Context of Hydrographic Survey Performance,” Remote Sens. (Basel)., vol. 15, no. 1, Jan. 2023, doi: 10.3390/rs15010010.

[34] A. Sukhenko, N. Meirambekuly, A. Syzdykov, A. Mukhamedgali, and Y. Mellatova, “GNSS for High-Precision and Reliable Positioning: A Review of Correction Techniques and System Architectures,” Nov. 01, 2025, Multidisciplinary Digital Publishing Institute (MDPI). doi: 10.3390/app152212304.

[35] K. He et al., “Improving the performance of time-relative gnss precise positioning in remote areas,” Sensors (Switzerland), vol. 21, no. 1, pp. 1–24, Jan. 2021, doi: 10.3390/s21010292.

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Published

2026-07-15

How to Cite

Anggraini, E., Simarmata, T., Rayesa, M., Fikri, M., & Fatih, M. (2026). Performance Evaluation of a Radio-Based Emergency Communication System for Mountain Hiking Applications. Jurnal Ilmiah Teknik Mesin, Elektro Dan Komputer, 6(2), 194–205. https://doi.org/10.51903/juritek.v6i2.7435