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A Gaussian-mixture based approach to spatial image background modeling and compensation

机译:基于高斯混合的空间图像背景建模与补偿方法

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In an optical inspection instrument, there is an undesirable image background which is often due to the nonuniform illumination characteristics of the system. The background however may also involve other, hard-to-model effects such as stray light. In the present paper, we report on our efforts to achieve robust elimination of smooth image backgrounds so as to achieve improved inspection of flat patterned media. We consider a uniform two-dimensional array of bivariate Gaussian functions on the image plane and consider the optimal approximating model to the smooth image background signal. The representation and associated algorithm effectively captures the background while being minimally effected by the high frequency pattern on the inspection surface. The set of linear weights of the Gaussian kernel offers a compact representation of the background and is used to eliminate the background for further processing (e.g., defect detection) of the surface image. Performance results are illustrated on a representative problem of TFT-LCD panel inspection for finding production defects. This process involves a sub-pixel resolution pattern subtraction scheme and therefore is sensitive to background variations, effectively forming a good case study.
机译:在光学检查仪器中,存在不期望的图像背景,这通常是由于系统的照明特性不均匀造成的。但是,背景还可能涉及其他难以建模的效果,例如杂散光。在本文中,我们报告了我们为实现对平滑图像背景的鲁棒消除而进行的努力,以便对平面图案介质进行改进的检查。我们考虑了图像平面上双变量高斯函数的统一二维阵列,并考虑了平滑图像背景信号的最佳逼近模型。该表示法和相关算法有效地捕获了背景,同时受检查表面上的高频图案影响最小。高斯核的线性权重集合提供了背景的紧凑表示,并且被用于消除背景以用于表面图像的进一步处理(例如,缺陷检测)。性能结果以TFT-LCD面板检查中发现生产缺陷的代表性问题为例。此过程涉及亚像素分辨率图案减法方案,因此对背景变化敏感,有效地形成了很好的案例研究。

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