TARU PUBLICATIONS
Journal of Discrete Mathematical Sciences and Cryptography cover
Open Access ·Peer-reviewed·ISSN (Online): 2169-0065·ISSN (Print): 0972-0529

Monthly Journal: Publishes theoretical and applied research in all areas of Discrete Mathematical Sciences, Cryptography, Combinatorics, Elliptic Curves and Information Security.

Issues up to 2022 co-published with and available at:Taylor & Francis Online
submissions@tarupublications.com
Open Access Research Article

Implementing secure end-to-end data transmission in wireless sensor networks for healthcare monitoring

, * , , , ,

* Corresponding author · click or hover a name for details

pp. 1599–1609Vol. 28Issue 5-AAugust 2025DOI: 10.47974/JDMSC-2159 Crossmark XML
Received:
06 Nov 2024
Published Online:
30 Aug 2025
Article type:
Research Article
Language:
EN
Article no.:
JDMSC-2159
Pages:
1599–1609

Abstract

Remote sensor systems (WSNs) are basic to healthcare observing frameworks since they give real-time quiet information. Healthcare information is sensitive and requires solid security approaches that account for sensor hub asset limits. This ponder ensures WSN end-to-end information stream with a cross breed cryptographic framework utilizing Elliptic Bend Cryptography (ECC). The strategy combines symmetric encryption for information transmission with ECC for key trade and advanced marks. This crossover strategy optimizes asset utilize and secures information protection, judgment, and genuineness. We compared the proposed convention to RSA with AES, lightweight symmetric encryption, and immaculate ECC encryption to demonstrate its viability. Our cross-breed strategy outflanks choices in numerous key zones. In specific, the proposed approach accomplishes 15 ms encryption and 14 ms unscrambling times, which are much lower than current methods. Since its employments as it were 10 mJ of vitality and 8 KB of memory, it is perfect for resource-constrained situations. Comes about appear that the crossover ECC framework can progress healthcare WSN security and effectiveness, guaranteeing dependable and secure persistent information transmission. This convention meets the require for solid security without relinquishing execution, making it appropriate for healthcare checking frameworks.

Keywords

Subject Classifications

68M18

References

[1] Y. M. Huang, M. Y. Hsieh, H. C. Chao, S. H. Hung, and J. H. Park, “Pervasive, secure access to a hierarchical sensor-based healthcare monitoring architecture in wireless heterogeneous networks,” IEEE J. Sel. Areas Commun., vol. 27, no. 4, pp. 400–411 (2009), doi: 10.1109/JSAC.2009.090505.
[2] S. R. Moosavi, T. N. Gia, E. Nigussie, A. M. Rahmani, S. Virtanen, J. Isoaho, and P. Liljeberg, “Session Resumption-Based End-to-End Security for Healthcare Internet-of-Things,” in 2015 IEEE International Conference on Computer and Information Technology; Ubiquitous Computing and Communications; Dependable, Autonomic and Secure Computing; Pervasive Intelligence and Computing, pp. 581–588 (2015), doi: 10.1109/CIT/IUCC/DASC/PICOM.2015.83.
[3] T.-V. Le, “Cross-Server End-to-End Patient Key Agreement Protocol for DNA-Based U-Healthcare in the Internet of Living Things,” Mathematics, vol. 11, no. 7. (2023), doi: 10.3390/math11071638.
[4] S. R. Moosavi, T. N. Gia, A. M. Rahmani, A. H. Anzanpour, M. A. Pusti, P. Liljeberg, and H. Tenhunen, “End-to-end security scheme for mobility enabled healthcare Internet of Things,” Futur. Gener. Comput. Syst., vol. 64, pp. 108–124 (2016), doi: https://doi.org/10.1016/j.future.2016.02.020.
[5] A. Mathur, T. Newe, W. Elgenaidi, M. Rao, G. Dooly, and D. Toal, “A secure end-to-end IoT solution,” Sensors Actuators A Phys., vol. 263, pp. 291–299 (2017), doi: https://doi.org/10.1016/j.sna.2017.06.019.
[6] S. R. Moosavi, E. Nigussie, M. Levorato, S. Virtanen, and J. Isoaho, “Performance Analysis of End-to-End Security Schemes in Healthcare IoT,” Procedia Comput. Sci., vol. 130, pp. 432–439 (2018), doi: https://doi.org/10.1016/j.procs.2018.04.064.
[7] R. Nidhya, S. Karthik, and G. Smilarubavathy, “An End-to-End Secure and Energy-Aware Routing Mechanism for IoT-Based Modern Health Care System BT - Soft Computing and Signal Processing,” pp. 379–388 (2019).
[8] C. Chakraborty, S. Ben Othman, F. A. Almalki, and H. Sakli, “FC-SEEDA: fog computing-based secure and energy efficient data aggregation scheme for Internet of healthcare Things,” Neural Comput. Appl., vol. 36, no. 1, pp. 241–257 (2024), doi: 10.1007/s00521-023-08270-0.
[9] S. K. Swami Durai, B. Duraisamy, and J. T. Thirukrishna, “Certain Investigation on Healthcare Monitoring for Enhancing Data Transmission in WSN,” Int. J. Wirel. Inf. Networks, vol. 30, no. 1, pp. 103–110 (2023), doi: 10.1007/s10776-021-00530-x.
[10] A. Duddalwar and P. Khobragade, “A statistical approach for hospital management system using machine learning,” AIP Conference Proceedings, vol. 3139, no. 1, p. 100007 (Aug. 2024). doi: 10.1063/5.0224460.
[11] V. Anusuya Devi and T. Sampradeepraj, “End-to-End Self-organizing Intelligent Security Model for Wireless Sensor Network based on a Hybrid (AES–RSA) Cryptography,” Wirel. Pers. Commun., vol. 136, no. 3, pp. 1675–1703 (2024), doi: 10.1007/s11277-024-11353-3.
[12] H. Yu, J. He, T. Zhang, P. Xiao, and Y. Zhang, “Enabling end-to-end secure communication between wireless sensor networks and the Internet,” World Wide Web, vol. 16, no. 4, pp. 515–540 (2013), doi: 10.1007/s11280-012-0194-0.
[13] A. Ullah, G. Said, M. Sher, and H. Ning, “Fog-assisted secure healthcare data aggregation scheme in IoT-enabled WSN,” Peer-to-Peer Netw. Appl., vol. 13, no. 1, pp. 163–174 (2020), doi: 10.1007/s12083-019-00745-z.
[14] F. S. Chowdhury, A. Istiaque, A. Mahmud, and M. Miskat, “An implementation of a lightweight end-to-end secured communication system for patient monitoring system,” in 2018 Emerging Trends in Electronic Devices and Computational Techniques (EDCT), pp. 1–5 (2018), doi: 10.1109/EDCT.2018.8405076.
[15] K. Ramasamy, M. H. Anisi, and A. Jindal, “E2DA: Energy Efficient Data Aggregation and End-to-End Security in 3D Reconfigurable WSN,” IEEE Trans. Green Commun. Netw., vol. 6, no. 2, pp. 787–798 (2022), doi: 10.1109/TGCN.2021.3126786.

Views: 191Downloads: 5Citations: 0