Publication | Closed Access
ML-Based Massive MIMO Channel Prediction: Does It Work on Real-World Data?
53
Citations
10
References
2022
Year
Wireless CommunicationsEngineeringMachine LearningReal-world DataChannel ModelingMimo SystemChannel Capacity EstimationData ScienceGenerated Channel RealizationsSystems EngineeringMassive MimoMultiuser MimoPredictive AnalyticsComputer EngineeringMulti-channel ProcessingComputer ScienceChannel PredictorSignal ProcessingChannel ModelChannel Estimation
Accurate channel state information (CSI) acquisition is hindered by CSI estimation errors, compression, feedback, and processing delays. We propose a machine learning (ML)-based massive multiple-input multiple-output (mMIMO) channel predictor (CP), which can work on the estimated channel and the compressed version of the estimated channel as well. While existing work has evaluated the performance of ML algorithms by only using the artificially generated channel realizations, this letter reports the results of the ML algorithm using the real-world channel realizations from a measurement campaign performed at Nokia Bell-Labs. The results corroborate the validity of the proposed ML-based CP.
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