Enhancing Cognitive Radio Networks with Multiple Antenna Techniques: Innovations and Performance Optimization

Sanjeev Kukreti, Kassem Al-Attabi, Rakesh Chandrashekar, K. Pushpa Rani, Arti Badhoutiya, Nandini Shirish Boob · 2024

A revolutionary approach to effectively using spectrum, Cognitive Radio Networks (CRNs) have surfaced to meet the increasing need for wireless communication. Performance gains of up to 30% may be achieved by integrating multiple antenna methods like beamforming and Multiple Input Multiple Output (MIMO) into CRNs. These gains include higher data speeds, better interference resistance, and greater spectral efficiency. This study examines new developments in the use of multiple antenna systems in CRNs, emphasising how these methods maximise spectrum availability and detection, improve communication quality, and increase network capacity overall. Adaptive beamforming techniques, spatial variety, spectrum sensing, and the difficulties of integrating numerous antennas into dynamic CRN settings are important research topics. Simulations and case studies are used to assess the performance advantages of these improvements, emphasising the effects they have on main and secondary users. Furthermore, this study explores how machine learning and sophisticated signal processing methods might be used to optimise antenna layout for real-time adaptation. This work intends to contribute to the continued development of high-performance CRNs, opening the door for more effective and adaptable wireless communication systems, by addressing these advancements and problems.

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