Sibendu Samanta

Work place: Department of ECE, SRM University AP, Guntur, 522502, India

E-mail: sibendu.s@srmap.edu.in

Website: https://orcid.org/0000-0003-1280-6848

Research Interests:

Biography

Sibendu Samanta is an Assistant Professor in the Department of Electronics and Communication Engineering at SRM University–AP, Amaravati, India. He received the B.Tech. degree from Kalyani Government Engineering College, the M.Tech. degree from IIT Roorkee, and the Ph.D. degree from IIT Kharagpur, India. His research focuses on signal processing, control theory, and information theory applied to biological systems, with particular emphasis on machine learning and deep learning for biomedical signal and image analysis. He has contributed to intelligent health-monitoring systems, including the development of devices for fetal heart rate monitoring, and has worked on computational modeling of biological processes. His work spans both theoretical modeling and practical biomedical device development. He has previously held faculty positions at VIT-AP University and Techno India University and served as a Research Assistant at the Microfluidics Laboratory, IIT Kharagpur.

Author Articles
Impact of Deployment Geometry and Radio Range on Random Walk–Based SLP Protocols in WSNs

By Raja Manjula Tejodbhav Koduru Kandimalla Sai Yasheswini Tumala Meghana Kamineni Shasank Anirban Ghosh Anuj Deshpande Sibendu Samanta

DOI: https://doi.org/10.5815/ijwmt.2026.05.21, Pub. Date: 8 Oct. 2026

This research aims to understand the impact of the network area and shape on the performance metrics used in evaluating the random walk-based source location privacy (SLP) techniques developed for WSNs. In this context, the impact of circular and square network models for different network areas, node densities, and radio ranges of sensor nodes on the performance of three popular SLP techniques is investigated. The effectiveness is assessed using performance measures from the body of available literature. It has been found that square deployment performs better for sector-based SLP protocols when network area, node density, and node radio range are held constant. However, circular networks perform better for the same protocol when the radio range is varied beyond a certain threshold while holding all other parameters constant. The trend, however, changes under comparable network settings for the non-sector-based random walk protocols considered in the current work. The results reveal a strong link between deployment geometry and routing logic, demonstrating that sector-based SLP protocols are primarily geometry-sensitive, whereas non-sector-based protocols are more sensitive to radio-range variations. A radio-range threshold of approximately 100 m was identified beyond which privacy gains saturated and energy costs increased. These findings provide practical design guidelines for geometry-aware deployment of privacy-preserving WSNs. However, the conclusions are limited to simulation-based evaluation of three random walk-based SLP protocols in circular and square network topologies, and further validation in irregular and real-world deployments is required.

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