2022
DOI: 10.48550/arxiv.2202.11278
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Joint Channel Estimation, Activity Detection and Decoding using Dynamic Message-Scheduling for Machine-Type Communications

Abstract: In this work, we present a joint channel estimation, activity detection and data decoding scheme for massive machinetype communications. By including the channel and the a priori activity factor in the factor graph, we present the bilinear message-scheduling GAMP (BiMSGAMP), a message-passing solution that uses the channel decoder beliefs to refine the activity detection and data decoding. We include two messagescheduling strategies based on the residual belief propagation and the activity user detection in wh… Show more

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