A Deep Neural Network-Based Interference Mitigation for MIMO-FBMC/OQAM Systems

Author:

Bedoui Abla,Et-tolba Mohamed

Abstract

Offset quadrature amplitude modulation-based filter bank multicarrier (FBMC/OQAM) is among the promising waveforms for future wireless communication systems. This is due to its flexible spectrum usage and high spectral efficiency compared with the conventional multicarrier schemes. However, with OQAM modulation, the FBMC/OQAM signals are not orthogonal in the imaginary field. This causes a significant intrinsic interference, which is an obstacle to apply multiple input multiple output (MIMO) technology with FBMC/OQAM. In this paper, we propose a deep neural network (DNN)-based approach to deal with the imaginary interference, and enable the application of MIMO technique with FBMC/OQAM. We show, by simulations, that the proposed approach provides good performance in terms of bit error rate (BER).

Publisher

Frontiers Media SA

Reference15 articles.

1. Comparison of Different Input Selection Algorithms in Neuro-Fuzzy Modeling;Alizadeh;Expert Syst. Appl.,2012

2. A Neuro-Fuzzy Based Detection Approach for HARQ-CC in FBMC-OQAM Systems;Bedoui,2020

3. Multi-Stream Transmission for Highly Frequency Selective Channels in MIMO-FBMC/OQAM Systems;Caus;IEEE Trans. Signal. Process.,2014

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