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FAPM: Fast Adaptive Patch Memory for Real-time Industrial Anomaly Detection

2022-11-14 · Donghyeong Kim, Chaewon Park, Suhwan Cho, Sangyoun Lee

Feature embedding-based methods have shown exceptional performance in detecting industrial anomalies by comparing features of target images with normal images. However, some methods do not meet the speed requirements of real-time inference, which is crucial for real-world applications. To address this issue, we propose a new method called Fast Adaptive Patch Memory (FAPM) for real-time industrial anomaly detection. FAPM utilizes patch-wise and layer-wise memory banks that store the embedding features of images at the patch and layer level, respectively, which eliminates unnecessary repetitive computations. We also propose patch-wise adaptive coreset sampling for faster and more accurate detection. FAPM performs well in both accuracy and speed compared to other state-of-the-art methods

📄 PDF Abstract BibTeX arXiv:2211.07381

Code (1)

donghyung87/FAPM_official 공식 구현 pytorch

Tasks

Anomaly Detection

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