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RaUF: Learning the Spatial Uncertainty Field of Radar

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Millimeter-wave radar offers unique advantages in adverse weather but suffers from low spatial fidelity, severe azimuth ambiguity, and clutter-induced spurious returns. Existing methods mainly focus on improving spatial perception effectiveness via coarse-to-fine cross-modal supervision, yet often overlook the ambiguous feature-to-label mapping, which may lead to ill-posed geometric inference and pose fundamental challenges to downstream perception tasks. In this work, we propose RaUF, a spatial uncertainty field learning framework that models radar measurements through their physically grounded anisotropic properties. To resolve conflicting feature-to-label mapping, we design an anisotropic probabilistic model that learns fine-grained uncertainty. To further enhance reliability, we propose a Bidirectional Domain Attention mechanism that exploits the mutual complementarity between spatial structure and Doppler consistency, effectively suppressing spurious or multipath-induced reflections. Extensive experiments on public benchmarks and real-world datasets demonstrate that RaUF delivers highly reliable spatial detections with well-calibrated uncertainty. Moreover, downstream case studies further validate the enhanced reliability and scalability of RaUF under challenging real-world driving scenarios.

Shengpeng Wang, Kuangyu Wang, Wei Wang• 2026

Related benchmarks

TaskDatasetResultRank
Spatial DetectionColoradar Single-Chip Classroom
CD Error1.74
8
Spatial DetectionColoradar Single-Chip Aspen Room
CD Score0.48
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Spatial DetectionColoradar Cascade Hallways
CD1.1
8
Spatial DetectionColoradar Single-Chip Armyroom
CD2.62
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Spatial DetectionColoradar Single-Chip Hallways
CD1.34
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Spatial DetectionColoradar Cascade Armyroom
CD0.99
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Spatial DetectionColoradar Cascade Labroom
CD Score1.22
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Spatial DetectionColoradar Cascade Longboard
CD Score7.97
8
Spatial DetectionColoradar Single-Chip Labroom
CD0.86
8
Spatial DetectionColoradar Cascade Classroom
CD Score0.5
8
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