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A Real-Time Contrasts Method for Monitoring Image Data

机译:实时对比度图像数据监控方法

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Machine vision inspection integrated with statistical process control is increasingly being used to detect the surface defects in industrial products. The existing methods utilized traditional control charts to monitor the change point or abnormal regions of images. However, there are some challenges in handling high-dimensional and complex image data. This paper proposes to monitor image data based on the real-time contrasts (RTC) method. RTC method converts the monitoring problem to a continuous classification problem by labelling the reference images and the real-time images with different labels. Classification accuracy is used to build statistics for image data monitoring. And a kind of under-sampling method is used to tackle the problem of sample imbalance, which exists in process and has negative effects on the classification accuracy. Performance of the proposed method is compared with that of an alternative method under both single and multiple defects scenarios via simulations. The results show that the proposed method performs better in some situations and can effectively identify the occurrence of shifts in the process.
机译:集成了统计过程控制的机器视觉检查越来越多地用于检测工业产品中的表面缺陷。现有方法利用传统控制图来监视图像的变化点或异常区域。但是,在处理高维和复杂的图像数据时存在一些挑战。本文提出了一种基于实时对比度(RTC)方法的图像数据监控。 RTC方法通过使用不同的标签标记参考图像和实时图像,将监视问题转换为连续分类问题。分类准确度用于构建统计数据以监视图像数据。为了解决样本不平衡的问题,这种欠采样方法在处理过程中一直存在,对分类精度产生负面影响。通过模拟,在单缺陷和多缺陷情况下,将所提方法的性能与替代方法的性能进行了比较。结果表明,所提出的方法在某些情况下性能更好,并且可以有效地识别过程中移位的发生。

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