2025/09/26 by Zheao Li, Jiancheng An, Li, Zheao +3 · 3 citations
Engineering · #Advanced MIMO Systems Optimization #Advanced Wireless Communication Technologies #MIMO #Millimeter-Wave Propagation and Modeling #Multiplexing #Orthogonal frequency-division multiplexing #Scheduling (production processes) #Subcarrier #Transceiver #Wideband
paper · pdf · doi:10.1109/twc.2026.3713490
published in IEEE Transactions on Wireless Communications 25, 21040-21055 (Institute of Electrical and Electronics Engineers)
openalex created_date 2025/10/10 · openalex publication_date 2026/01/01 · openalex updated_date 2026/08/05
Stacked intelligent metasurfaces (SIM) enable fine-grained wave-domain signal processing, but their wideband deployment is impeded by two structural factors: (i) a single, quasi-static SIM phase tensor must adapt to all subcarriers, and (ii) multiuser scheduling changes the subcarrier activation pattern frame by frame, requiring rapid reconfiguration. To address these, we propose a SIM-enhanced wideband multiuser transceiver built on orthogonal frequency-division multiplexing with index modulation (OFDM-IM). The sparse activation of OFDM-IM confines high-fidelity equalization to the active tones, effectively widening the usable bandwidth. To make the design reliability-aware, we directly target the worst-link bit-error rate (BER) and adopt a max-min per-tone signal-to-interference-plus-noise ratio (SINR) as a principled surrogate, turning the reliability optimization tractable. For frame-rate inference and interpretability, we propose an unfolding projected-gradient-descent network (UPGD-Net) that unrolls across the SIM's layers and algorithmic iterations with a learnable per-iteration step size. Simulations demonstrate that the proposed framework achieves fast convergence and significant BER gains over fully-digital baselines. Notably, the design exhibits superior robustness against errors and outperforms large-aperture hybrid precoding benchmarks in both sum rate and energy efficiency. By combining structural sparsity with a BER-driven, deep-unfolded optimization backbone, the proposed framework effectively resolves the key wideband deficiencies of SIM.