A Novel Energy-Efficient and Secure Opportunistic Routing Protocol for Data Transmission in Wireless Sensor Networks
Abstract
Purpose: Wireless Sensor Networks (WSNs) are foundational to modern Internet of Things (IoT) applications, but they face a critical challenge: a fundamental trade-off between energy efficiency and security. While many routing protocols exist, they often fail to address both aspects concurrently, leaving networks vulnerable to common attacks such as blackhole, flooding, spoofing, and wormhole attacks while draining limited power resources. This paper introduces a novel, secure opportunistic routing protocol designed to holistically address this dual-objective problem.
Methodology: The proposed protocol employs a new system architecture that incorporates Associate Cluster Heads (ACHs) to create resilient routing paths. It utilizes a multi-layered security approach, including a neighbor validation mechanism to prevent spoofing and a request-thresholding mechanism to effectively mitigate flooding attacks. A novel dynamic trust management model is also integrated to quantify node trustworthiness and provide cluster-wide reputation management. The performance of the protocol was evaluated through extensive simulations, measuring key metrics such as packet delivery ratio, energy consumption, and network lifetime against established WSN routing methods.
Results: The simulation results demonstrate that the proposed scheme significantly enhances network performance. It achieved a higher packet delivery ratio, confirming its effectiveness in ensuring reliable data transmission even under adversarial conditions. Furthermore, the protocol exhibited substantial improvements in energy efficiency, leading to an extended network lifetime compared to traditional and other state-of-the-art routing techniques. The integrated security mechanisms proved successful in identifying and neutralizing various attacks, with performance remaining high even when the percentage of malicious nodes increased.
Conclusion: The findings confirm that the proposed secure opportunistic routing protocol provides a robust and practical solution for WSNs. By effectively balancing the critical trade-off between energy optimization and security, the model not only improves resilience against a range of attacks but also extends the operational lifespan of the network. This research presents a significant step toward developing more secure and sustainable WSN and IoT deployments for real-world applications.
Keywords
References
Similar Articles
- Dr. Arben Kola, Dr. Elira Hoxha, Dr. Gentian Leka, Study of Threat Evaluation and Forecasting Framework for Communication Infrastructure Using Neural Intelligence Techniques , International Journal of Cyber Threat Intelligence and Secure Networking: Vol. 3 No. 04 (2026): Volume 03 Issue 04
- Dr. Elena Petrova, Research on Unusual Transmission Pattern Recognition in Telecommunication Infrastructure Using Fuzzy Equation Approach , International Journal of Cyber Threat Intelligence and Secure Networking: Vol. 3 No. 04 (2026): Volume 03 Issue 04
- Prof. Daniel M. Hughes, A HYBRID SECURE SPECTRUM ALLOCATION FRAMEWORK FOR SPACE-DIVISION MULTIPLEXING ELASTIC OPTICAL NETWORKS , International Journal of Cyber Threat Intelligence and Secure Networking: Vol. 2 No. 01 (2025): Volume 02 Issue 01
- Dr. Arjun Pratap Singh, Dr. Neha Verma, Research on Unusual Transmission Pattern Recognition in Telecommunication Infrastructure Using Fuzzy Equation Approach , International Journal of Cyber Threat Intelligence and Secure Networking: Vol. 3 No. 04 (2026): Volume 03 Issue 04
- Dr. Tanvi Das, James D. Walker, A FEDERATED MULTI-MODAL SYSTEM FOR INSIDER THREAT DETECTION IN ENERGY INFRASTRUCTURE USING BIOMETRIC AND CYBER DATA , International Journal of Cyber Threat Intelligence and Secure Networking: Vol. 2 No. 01 (2025): Volume 02 Issue 01
- Dr. Ahmed Saeed Al-Mansoori, Detection of Malicious Query Attack Weaknesses within Online Software Systems Using Byte-Level Pattern Matching , International Journal of Cyber Threat Intelligence and Secure Networking: Vol. 3 No. 04 (2026): Volume 03 Issue 04
- Dr. Julian R. Cortez, A Comparative Analysis of Image Encryption Techniques Based on Linear Feedback Shift Registers and Chaotic Systems , International Journal of Cyber Threat Intelligence and Secure Networking: Vol. 3 No. 05 (2026): Volume 03 Issue 05
- Dr. Marcus A. Rodriguez, A Longitudinal Analysis of Cybersecurity Technology and Innovation: A Technology Mining Approach Using Bibliometric and Patent Analysis , International Journal of Cyber Threat Intelligence and Secure Networking: Vol. 3 No. 05 (2026): Volume 03 Issue 05
- Dr. Samuel O. Adebayo, A Socio-Technical Approach to Mitigating Cybersecurity Risks in Industrial Control Systems: The Vulnerability Analysis Critical Impact Point (VACIP) Methodology , International Journal of Cyber Threat Intelligence and Secure Networking: Vol. 3 No. 06 (2026): Volume 03 Issue 06
- Dr. Nisha Verma, Vinay Rajan, OPTIMIZING CRYPTOGRAPHIC HASH FUNCTION PERFORMANCE THROUGH AN EXTENDED SECURE HASH ALGORITHM (2080-BIT VARIANT) , International Journal of Cyber Threat Intelligence and Secure Networking: Vol. 2 No. 06 (2025): Volume 02 Issue 06
You may also start an advanced similarity search for this article.