Charanjeet Singh Chahil

Work place: Department of Computer Science, Chitkara University, Rajpura (Punjab), India

E-mail: Charanjeet1002cse.phd21@chitkara.edu.in

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Biography

Charanjeet Singh Chahil received the BTech degree in electronics and information technology from Jawaharlal Nehru University, New Delhi, India, in 2007, and the MTech degree in electronics and communication in 2012. He is currently pursuing the PhD degree in computer science from Chitkara University, India. He has professional experience in planning and fielding large enterprise IP/MPLS communication networks and in managing communication infrastructure in difficult and remote terrain. His research interests include cognitive radio networks, secure spectrum allocation, network resilience, and communication systems for constrained and mission-critical environments.

Author Articles
ProCLAMUS: A Matrix Completion Based Proactive Spectrum Allocation Protocol for Security of IoT based CRNs

By Charanjeet Singh Chahil Milan Patnaik Deepali Gupta Vashek Matyas

DOI: https://doi.org/10.5815/ijieeb.2026.05.10, Pub. Date: 8 Oct. 2026

Proactive prediction based channel allocation for Cognitive Radio Networks (CRNs) remains a challenging area of research. In Internet of Things (IoT) scenarios, prediction algorithms must balance resource efficiency with high accuracy. The proposed algorithm, ProCLAMUS, a Matrix Completion (MC) Based Proactive Spectrum Allocation Protocol for CRNs, couples nuclear norm matrix completion with short horizon sliding window prediction. By reconstructing sparse spectrum sensing data and down weighting inconsistent reports, ProCLAMUS enables infrequent sensing and decentralized decisions without a fusion center, reducing energy and attack surface. In a network of 40 Secondary Users (SUs), 400 Primary Users (PUs) and 400 channels with malicious data ranging from 5 to 50%, ProCLAMUS sustains the highest channel utilization (avg 89.96%) with the lowest backoff rate (3.81 s^(-1)) and sensing delay (0.58 channels/success). ProCLAMUS achieves the lowest radio energy (16.82×10^(-3) J/s), a 44–53% reduction when compared with recently proposed techniques, while using 33–43% less memory. These gains arise from sparse sensing, fusion (majority voting) and conservative allocation. The results demonstrate superior energy efficiency and robust prediction under malicious data conditions during the Spectrum Sensing Data Falsification Attack.

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