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Error Mitigation for TDoA UWB Indoor Localization using Unsupervised Machine Learning

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arxiv 2404.06824 v1 pith:C3VSAIJA submitted 2024-04-10 cs.LG

classification cs.LG
keywords anchorerrorclusteringclusterscompareddenseexclusionindoor
verification ladder T0 review T1 audit T2 compute T3 formal
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Indoor positioning systems based on Ultra-wideband (UWB) technology are gaining recognition for their ability to provide cm-level localization accuracy. However, these systems often encounter challenges caused by dense multi-path fading, leading to positioning errors. To address this issue, in this letter, we propose a novel methodology for unsupervised anchor node selection using deep embedded clustering (DEC). Our approach uses an Auto Encoder (AE) before clustering, thereby better separating UWB features into separable clusters of UWB input signals. We furthermore investigate how to rank these clusters based on their cluster quality, allowing us to remove untrustworthy signals. Experimental results show the efficiency of our proposed method, demonstrating a significant 23.1% reduction in mean absolute error (MAE) compared to without anchor exclusion. Especially in the dense multi-path area, our algorithm achieves even more significant enhancements, reducing the MAE by 26.6% and the 95th percentile error by 49.3% compared to without anchor exclusion.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. UWB TDoA Error Correction using Transformers: Patching and Positional Encoding Strategies

    eess.SP 2025-07 conditional novelty 6.0 of 10

    A transformer that consumes raw UWB channel impulse responses from all anchors corrects TDoA positions, reaching 0.39 m MAE in a nearly all-NLOS industrial environment.

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