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Predictive Relay Selection: A Cooperative Diversity Scheme Using Deep Learning

Wei Jiang, Hans D. Schotten

202018 citationsDOIOpen Access PDF

Abstract

In this paper, we propose a novel cooperative multi-relay transmission scheme for mobile terminals to exploit spatial diversity. By improving the timeliness of measured channel state information (CSI) through deep learning (DL)-based channel prediction, the proposed scheme remarkably lowers the probability of wrong relay selection arising from outdated CSI in fast time-varying channels. It inherits the simplicity of opportunistic relaying by selecting a single relay, avoiding the complexity of multi-relay coordination and synchronization. Numerical results reveal that it can achieve full diversity gain in slow-fading channels and substantially outperforms the existing schemes in fast-fading wireless environments. Moreover, the computational complexity brought by the DL predictor is negligible compared to off-the-shelf computing hardware.

Topics & Concepts

RelayFadingComputer scienceChannel state informationCooperative diversityDiversity gainChannel (broadcasting)Selection (genetic algorithm)Transmission (telecommunications)Synchronization (alternating current)WirelessRelay channelScheme (mathematics)Antenna diversityExploitAlgorithmComputer networkTelecommunicationsArtificial intelligenceMathematicsComputer securityMathematical analysisPhysicsPower (physics)Quantum mechanicsCooperative Communication and Network CodingAdvanced Wireless Communication TechnologiesAdvanced MIMO Systems Optimization
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