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Robust Parameter Design of Derivative Optimization Methods for Image Acquisition Using a Color Mixer ?¢????

机译:使用混色器进行图像采集的导数优化方法的鲁棒参数设计

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A tuning method was proposed for automatic lighting (auto-lighting) algorithms derived from the steepest descent and conjugate gradient methods. The auto-lighting algorithms maximize the image quality of industrial machine vision by adjusting multiple-color light emitting diodes (LEDs)?¢????usually called color mixers. Searching for the driving condition for achieving maximum sharpness influences image quality. In most inspection systems, a single-color light source is used, and an equal step search (ESS) is employed to determine the maximum image quality. However, in the case of multiple color LEDs, the number of iterations becomes large, which is time-consuming. Hence, the steepest descent (STD) and conjugate gradient methods (CJG) were applied to reduce the searching time for achieving maximum image quality. The relationship between lighting and image quality is multi-dimensional, non-linear, and difficult to describe using mathematical equations. Hence, the Taguchi method is actually the only method that can determine the parameters of auto-lighting algorithms. The algorithm parameters were determined using orthogonal arrays, and the candidate parameters were selected by increasing the sharpness and decreasing the iterations of the algorithm, which were dependent on the searching time. The contribution of parameters was investigated using ANOVA. After conducting retests using the selected parameters, the image quality was almost the same as that in the best-case parameters with a smaller number of iterations.
机译:针对从最速下降和共轭梯度法得出的自动照明(自动照明)算法,提出了一种调整方法。自动照明算法通过调节通常被称为混色器的多色发光二极管(LED)来最大化工业机器视觉的图像质量。搜索驱动条件以获得最大清晰度会影响图像质量。在大多数检查系统中,使用单色光源,并且采用等步搜索(ESS)来确定最大图像质量。但是,在使用多个彩色LED的情况下,迭代次数变大,这很耗时。因此,应用最速下降法(STD)和共轭梯度法(CJG)来减少搜索时间,以实现最大图像质量。照明与图像质量之间的关系是多维的,非线性的,并且很难使用数学方程式来描述。因此,Taguchi方法实际上是唯一可以确定自动照明算法参数的方法。使用正交数组确定算法参数,并通过增加清晰度和减少算法迭代来选择候选参数,这取决于搜索时间。使用方差分析研究了参数的贡献。使用所选参数进行重新测试后,图像质量几乎与最佳情况下的参数相同,但迭代次数较少。

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