An Integrated Approach for Energy Efficient Handover and Key Distribution Protocol for Secure NC-enabled Small Cells
Vipindev Adat Vasudevan, Muhammad Tayyab, George P. Koudouridis,, Xavier Gelabert, Ilias Politis

TL;DR
This paper introduces a blockchain-assisted key distribution protocol combined with an uplink reference signal handover mechanism to enhance energy efficiency and security in NC-enabled small cell networks, reducing overhead and improving security against pollution attacks.
Contribution
It proposes a novel blockchain-based key distribution scheme integrated with a handover mechanism for secure, energy-efficient network coding in dense small cell environments.
Findings
The protocol ensures high security against pollution attacks.
It reduces bandwidth and signaling overhead during handover.
Energy efficiency is significantly improved over legacy schemes.
Abstract
Future wireless networks must serve dense mobile networks with high data rates, keeping energy requirements to a possible minimum. The small cell-based network architecture and device-to-device (D2D) communication are already being considered part of 5G networks and beyond. In such environments, network coding (NC) can be employed to achieve both higher throughput and energy efficiency. However, NC-enabled systems need to address security challenges specific to NC, such as pollution attacks. All integrity schemes against pollution attacks generally require proper key distribution and management to ensure security in a mobile environment. Additionally, the mobility requirements in small cell environments are more challenging and demanding in terms of signaling overhead. This paper proposes a blockchain-assisted key distribution protocol tailored for MAC-based integrity schemes, which…
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