Collaboration and Coordination in Secondary Networks for Opportunistic Spectrum Access
Wassim Jouini, Marco Di Felice, Luciano Bononi, Christophe, Moy

TL;DR
This paper proposes a cooperative learning framework for secondary networks to efficiently exploit spectrum opportunities, using multi-armed bandit models and novel collaboration algorithms to improve learning and reduce interference.
Contribution
It introduces a cooperative spectrum selection approach based on MAB models, with new algorithms for collaboration and interference mitigation in secondary networks.
Findings
Collaboration improves spectrum learning accuracy.
Proposed algorithms outperform non-cooperative methods.
System effectively protects primary users while maximizing secondary user performance.
Abstract
In this paper, we address the general case of a coordinated secondary network willing to exploit communication opportunities left vacant by a licensed primary network. Since secondary users (SU) usually have no prior knowledge on the environment, they need to learn the availability of each channel through sensing techniques, which however can be prone to detection errors. We argue that cooperation among secondary users can enable efficient learning and coordination mechanisms in order to maximize the spectrum exploitation by SUs, while minimizing the impact on the primary network. To this goal, we provide three novel contributions in this paper. First, we formulate the spectrum selection in secondary networks as an instance of the Multi-Armed Bandit (MAB) problem, and we extend the analysis to the collaboration learning case, in which each SU learns the spectrum occupation, and shares…
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Taxonomy
TopicsAdvanced Bandit Algorithms Research · Cognitive Radio Networks and Spectrum Sensing · Smart Grid Energy Management
