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Low-Complexity, Space Splitting-based User Selection in MU-MIMO for Massive Connectivity and AI-Native Traffic
This paper introduces the Space Splitting-based User Selection (SS-US) algorithm, a novel low-complexity and massively parallelizable method for MU-MIMO user selection. It addresses the scalability challenges posed by the combinatorial nature of existing approaches in dense, uplink-oriented, and latency-critical AI-native traffic scenarios, while achieving comparable spectral efficiency to state-of-the-art baselines.