Reinhard Wiesmayr, Nuri Berke Baytekin
Site-specific training can improve wireless receiver performance without increasing computational complexity. However, real-world results have so far focused on fully trainable neural receivers and single-layer transmissions. We study site-specific finetuning of three receiver architectures: fully trainable neural, model-driven neural, and model-based. We train and evaluate these receivers using new measurements from a standard-compliant 5G NR testbed at ETH Zurich with dual-layer uplink transmission, including measurement campaigns conducted more than six months apart. Our results show that site-specific finetuning (i) substantially improves fully trainable and model-driven neural receivers, while resulting in only marginal gains for the less tunable model-based receiver; (ii) enables a single neural receiver jointly finetuned for single- and dual-layer transmission to closely match receivers finetuned separately for each configuration; and (iii) remains effective across measurement campaigns separated by more than six months. We also investigate site-specific linear minimum mean-square error channel estimation using covariance matrices estimated from either synthetic channels or site-specific measurements. When combined with iterative detection and decoding, site-specific channel estimation achieves the lowest error rate observed in our datasets. Our finetuning code and measurement datasets are publicly available online.
@article{b1a7a972-1605-4a9d-9d06-8808e523ce23,
title={2026 Wiesmayr Site Specific Training 5G NR},
author={Reinhard Wiesmayr and Nuri Berke Baytekin},
year={2026},
language={en}
}TY - JOUR TI - 2026 Wiesmayr Site Specific Training 5G NR AU - Reinhard Wiesmayr AU - Nuri Berke Baytekin PY - 2026 LA - en ER -
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