Looking 3D: Anomaly Detection with 2D-3D Alignment
Ankan Bhunia, Changjian Li, Hakan Bilen
摘要
Automatic anomaly detection based on visual cues holds practical significance in various domains, such as manufacturing and product quality assessment. This paper introduces a new conditional anomaly detection problem, which involves identifying anomalies in a query image by comparing it to a reference shape. To address this challenge, we have created a large dataset, BrokenChairs-180K, consisting of around 180K images, with diverse anomalies, geometries, and textures paired with 8,143 reference 3D shapes. To tackle this task, we have proposed a novel transformer-based approach that explicitly learns the correspondence between the query image and reference 3D shape via feature alignment and leverages a customized attention mechanism for anomaly detection. Our approach has been rigorously evaluated through comprehensive experiments, serving as a benchmark for future research in this domain.
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引用它的顶会 Paper4
- Look Inside for More: Internal Spatial Modality Perception for 3D Anomaly DetectionHanzhe Liang, Guoyang Xie, Chengbin Hou, Bingshu Wang 等AAAI 2025 · 被引用 28 次
- Taming Anomalies with Down-Up Sampling Networks: Group Center Preserving Reconstruction for 3D Anomaly DetectionHanzhe Liang, Jie Zhang, Tao Dai, Linlin Shen 等ACM MM 2025 · 被引用 3 次
- Interactive Anomaly Detection for Articulated Objects via Motion AnticipationAnkan Bhunia, Changjian Li, Hakan BilenNeurIPS 2025 · 被引用 1 次
- Odd-One-Out: Anomaly Detection by Comparing with NeighborsAnkan Bhunia, Changjian Li, Hakan BilenCVPR 2025
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