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A QUANTITATIVE STUDY OF ILLUMINATION TECHNIQUES FOR MACHINE VISION BASED INSPECTION

机译:基于机器视觉的检测照明技术的定量研究

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In this paper, three basic lighting geometries are compared quantitatively in an inspection task that checks for the presence of J-clips on an aluminum carrier. Two independent LabVIEW® machine vision algorithms were used to evaluate backlight, bright field and dark field illumination on their ability to minimize variations within a pass (clip present) or fail (clip absent) sample set, as well as maximize the separation between sample sets. Results showed that there were clear differences in performance with the different lighting geometries, with over a 30% change in performance. Although it is widely acknowledged that the choice of lighting is not a trivial exercise for machine vision systems, this paper provides a case study of the quantitative performance of different lighting geometries.
机译:在本文中,在一项检查任务中定量比较了三种基本的照明几何形状,该任务检查铝载体上是否存在J形夹。两种独立的LabVIEW®机器视觉算法用于评估背光,明场和暗场照明的能力,以最大程度地减少通过(存在夹子)或失败(不存在夹子)样品组中的差异,以及最大化样品组之间的间隔。结果表明,在不同的照明几何形状下,性能存在明显差异,性能变化超过30%。尽管众所周知,对于机器视觉系统而言,照明的选择并非轻而易举,但本文还是对不同照明几何形状的定量性能进行了案例研究。

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