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DualCross: Cross-Modality Cross-Domain Adaptation for Monocular BEV Perception (2305.03724v2)

Published 5 May 2023 in cs.CV, cs.AI, and cs.RO

Abstract: Closing the domain gap between training and deployment and incorporating multiple sensor modalities are two challenging yet critical topics for self-driving. Existing work only focuses on single one of the above topics, overlooking the simultaneous domain and modality shift which pervasively exists in real-world scenarios. A model trained with multi-sensor data collected in Europe may need to run in Asia with a subset of input sensors available. In this work, we propose DualCross, a cross-modality cross-domain adaptation framework to facilitate the learning of a more robust monocular bird's-eye-view (BEV) perception model, which transfers the point cloud knowledge from a LiDAR sensor in one domain during the training phase to the camera-only testing scenario in a different domain. This work results in the first open analysis of cross-domain cross-sensor perception and adaptation for monocular 3D tasks in the wild. We benchmark our approach on large-scale datasets under a wide range of domain shifts and show state-of-the-art results against various baselines.

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Authors (3)
  1. Yunze Man (17 papers)
  2. Liang-Yan Gui (18 papers)
  3. Yu-Xiong Wang (87 papers)
Citations (4)
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