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Xiewu Zheng
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Breaking the Bias: Recalibrating the Attention of Industrial Anomaly Detection
2024 · arXiv (Cornell University)
Due to the scarcity and unpredictable nature of defect samples, industrial anomaly detection (IAD) predominantly employs unsupervised learning. However, all unsupervised IAD methods face a common challenge: the inherent bias in normal samples, which causes …