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Cheating Depth: Enhancing 3D Surface Anomaly Detection via Depth Simulation

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arxiv 2311.01117 v1 pith:UXEI6QT7 submitted 2023-11-02 cs.CV

classification cs.CV
keywords depthanomalydetectionsurfacedatasetsprocessingbackbonesdiscrete
verification ladder T0 review T1 audit T2 compute T3 formal
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RGB-based surface anomaly detection methods have advanced significantly. However, certain surface anomalies remain practically invisible in RGB alone, necessitating the incorporation of 3D information. Existing approaches that employ point-cloud backbones suffer from suboptimal representations and reduced applicability due to slow processing. Re-training RGB backbones, designed for faster dense input processing, on industrial depth datasets is hindered by the limited availability of sufficiently large datasets. We make several contributions to address these challenges. (i) We propose a novel Depth-Aware Discrete Autoencoder (DADA) architecture, that enables learning a general discrete latent space that jointly models RGB and 3D data for 3D surface anomaly detection. (ii) We tackle the lack of diverse industrial depth datasets by introducing a simulation process for learning informative depth features in the depth encoder. (iii) We propose a new surface anomaly detection method 3DSR, which outperforms all existing state-of-the-art on the challenging MVTec3D anomaly detection benchmark, both in terms of accuracy and processing speed. The experimental results validate the effectiveness and efficiency of our approach, highlighting the potential of utilizing depth information for improved surface anomaly detection.

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  1. Look Inside for More: Internal Spatial Modality Perception for 3D Anomaly Detection

    cs.CV 2024-12 conditional novelty 5.0 of 10

    A 3D anomaly detection method that uses internal z-axis projection slices and Laplacian feature filtering reports state-of-the-art results on Real3D-AD and Anomaly-ShapeNet.

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