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Machine-Learning-Aided Link-Performance Prediction for Coded MIMO Systems

delete2022-03-01
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PRE
AI
T
Thuan Van Le
K
Kyungchun Lee *
DOI:10.1109/TVT.2021.3137465delete
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摘要

摘要

En 中文
Link adaptation (LA) is an adaptive transmission technique that determines the modulation and coding scheme (MCS) based on channel-state information. In LA, an accurate estimation of the link performance is required to optimally determine the MCS level. In this correspondence, a high-accuracy machine-learning (ML)-aided link-level performance-prediction method for coded multiple-input-multiple-output (MIMO) systems is proposed. The basic concept of this scheme is to apply the ML model to train the relation between the inputs, such as the channel matrix and signal-to-noise ratio, and the output of the block-error rate (BLER). Specifically, we predict the index of the quantized BLER value using a random forest classifier. The simulation results show that the proposed scheme is able to accurately predict the link performance of MIMO systems and outperforms the conventional link performance-prediction schemes.
Keyword:
MIMO communication
Signal to noise ratio
Radio frequency
Random forests
Decoding
Modulation
Receiving antennas
Machine learning
link-performance prediction
MIMO
link adaptation

期刊

IEEE Transactions on Vehicular Technology 封面图
IEEE Transactions on Vehicular Technology
IF:
7.1
论文数:
1.8W
被引数:
6.6W

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