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Optimization of spatial light distribution through genetic algorithms for vision systems applied to quality control

机译:通过遗传算法优化视觉光在空间系统中的空间分布,并将其应用于质量控制

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摘要

The paper presents an adaptive illumination system for image quality enhancement in vision-based quality control systems. In particular, a spatial modulation of illumination intensity is proposed in order to improve image quality, thus compensating for different target scattering properties, local reflections and fluctuations of ambient light. The desired spatial modulation of illumination is obtained by a digital light projector, used to illuminate the scene with an arbitrary spatial distribution of light intensity, designed to improve feature extraction in the region of interest. The spatial distribution of illumination is optimized by running a genetic algorithm. An image quality estimator is used to close the feedback loop and to stop iterations once the desired image quality is reached. The technique proves particularly valuable for optimizing the spatial illumination distribution in the region of interest, with the remarkable capability of the genetic algorithm to adapt the light distribution to very different target reflectivity and ambient conditions. The final objective of the proposed technique is the improvement of the matching score in the recognition of parts through matching algorithms, hence of the diagnosis of machine vision-based quality inspections. The procedure has been validated both by a numerical model and by an experimental test, referring to a significant problem of quality control for the washing machine manufacturing industry: the recognition of a metallic clamp. Its applicability to other domains is also presented, specifically for the visual inspection of shoes with retro-reflective tape and T-shirts with paillettes.
机译:本文提出了一种自适应照明系统,用于在基于视觉的质量控制系统中提高图像质量。特别地,提出了照明强度的空间调制以改善图像质量,从而补偿不同的目标散射特性,局部反射和环境光的波动。所需的照明空间调制是通过数字投光器获得的,该数字投光器用于以光强度的任意空间分布来照明场景,该数字空间设计用于改善感兴趣区域中的特征提取。通过运行遗传算法可以优化照明的空间分布。图像质量估计器用于关闭反馈环路,并在达到所需图像质量后停止迭代。事实证明,该技术对于优化感兴趣区域中的空间照度分布特别有价值,而遗传算法具有显着的能力,可以使光分布适应非常不同的目标反射率和环境条件。提出的技术的最终目标是通过匹配算法提高零件识别中的匹配分数,从而诊断基于机器视觉的质量检查。该程序已通过数值模型和实验测试验证,涉及洗衣机制造行业质量控制的一个重大问题:金属夹具的识别。还介绍了其在其他领域的适用性,特别是对带有反光带的鞋子和带有褶pa的T恤的视觉检查。

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