首个面向真实工业缺陷检测的多类纹理异常数据集,挑战当前最先进算法。
Texture-AD: An Anomaly Detection Dataset and Benchmark for Real Algorithm Development
- 构建覆盖15种布料、14类晶圆、10种金属板的真实纹理图像数据集
- 包含10余种真实制造缺陷,像素级标注,提升评估精度
- 专为自动化产线设计新评测方法,适合工业异常检测研究者
异常检测在工业制造中至关重要,近年来取得显著进展。然而,研发阶段所用数据与实际生产环境采集的数据存在较大差异。为此,我们基于典型纹理异常检测任务,提出Texture-AD基准数据集,用于评估无监督异常检测算法在真实场景中的表现。该数据集包含15种不同布料、14类半导体晶圆和10种金属板材的图像,采用多种光学方案采集。涵盖超过10种真实制造过程中产生的缺陷类型,如划痕、褶皱、色差和点缺陷,这些缺陷往往比现有数据集更难检测。所有异常区域均提供像素级标注,便于对异常检测模型进行全方位评估。针对自动化产线中多样化产品需求,我们提出了新的评估方法并报告了基线算法结果。实验表明,Texture-AD对当前最先进的算法构成严峻挑战。据我们所知,Texture-AD是首个专门用于评估工业缺陷检测算法在真实世界中性能的数据集。数据集已公开获取。
原文摘要 · Abstract (English)
Anomaly detection is a crucial process in industrial manufacturing and has made significant advancements recently. However, there is a large variance between the data used in the development and the data collected by the production environment. Therefore, we present the Texture-AD benchmark based on representative texture-based anomaly detection to evaluate the effectiveness of unsupervised anomaly detection algorithms in real-world applications. This dataset includes images of 15 different cloth, 14 semiconductor wafers and 10 metal plates acquired under different optical schemes. In addition, it includes more than 10 different types of defects produced during real manufacturing processes, such as scratches, wrinkles, color variations and point defects, which are often more difficult to detect than existing datasets. All anomalous areas are provided with pixel-level annotations to facilitate comprehensive evaluation using anomaly detection models. Specifically, to adapt to diverse products in automated pipelines, we present a new evaluation method and results of baseline algorithms. The experimental results show that Texture-AD is a difficult challenge for state-of-the-art algorithms. To our knowledge, Texture-AD is the first dataset to be devoted to evaluating industrial defect detection algorithms in the real world. The dataset is available at https://XXX.
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