A Partial Learning Based Detection Scheme for Massive MIMO
2019
Massive multiple-input multiple-output (MIMO) is a promising key technology for the fifth-generation (5G) and future mobile wireless network. Although maximum likelihood (ML) detection can get the best detection performance with the lowest bit error rate (BER), its computational complexity significantly increases as the number of antennas increases. Thus, based on neural networks, in this paper we propose a new partial learning (PL) based detection scheme. Theoretical analyses and simulation results showed that the proposed PL based detection scheme can achieve low BER with low computational complexity.
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