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arxiv: 2508.19736 · v1 · pith:OIZEU5ADnew · submitted 2025-08-27 · 💻 cs.NI

Experimental Insights from OpenAirInterface 5G positioning Testbeds: Challenges and solutions

classification 💻 cs.NI
keywords positioningtestbedsaccuracychallengesexperimentalfactoriesinsightsmoreover
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5G New Radio (NR) is a key enabler of accurate positioning in smart cities and smart factories. This paper presents the experimental results from three 5G positioning testbeds running open-source OpenAirInterface (OAI) gNB and Core Network (CN), using Uplink Time Difference of Arrival (UL-TDoA) with the newly integrated Location Management Function (LMF). The testbeds are deployed across both indoor factories and outdoor scenarios with O-RAN Radio Units (RUs), following a 3GPP-compliant system model. The experiments highlight the impact of synchronization impairments, multipath propagation, and deployment geometry on positioning accuracy. To address these challenges, we propose tailored ToA and TDoA filtering as well as a novel position estimation method based on Particle Swarm Optimization (PSO) within the LMF pipeline. Moreover, we show a beyond-5G framework that leverages non-conventional measurements such as Channel Impulse Response (CIR) to train and test Artificial Intelligence and Machine Learning (AI/ML) models for data-driven positioning. The results demonstrate the feasibility of achieving 1-2 meter positioning accuracy in 90% of cases in different testbeds, offering practical insights for the design of robust 5G positioning systems. Moreover, we publicly release the datasets collected in this work to support the research within the 5G positioning community.

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  1. TDoA-Based Self-Supervised Channel Charting with NLoS Mitigation

    cs.NI 2025-10 unverdicted novelty 6.0

    TDoA-based self-supervised channel charting with NLoS mitigation and UE displacement achieves 2-4 meter accuracy in 90% of cases in a real 5G testbed, outperforming prior semi- and self-supervised methods.