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Accurate segmentation of single isolated human insulin crystals for in-situ microscopy

机译:用于原位显微镜的单分离的人胰岛素晶体的精确分割

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An Algorithm is presented for accurate segmentation of single isolated human insulin crystals in an image captured by an in situ microscope inside of a bioreactor. It consists of three major steps. First, the foreground regions are extracted by thresholding the image. Then, the regions which correspond to the single isolated human insulin crystals are detected among the previously segmented foreground regions using a single nearest prototype rule, where each segmented foreground region class prototype represents a 7-dimensional mean vector of rotation, translation and scale invariant shape characteristics of several class members, which were extracted a priori from a training set of images. Finally, the contour accuracy of the detected regions is improved by moving each contour point to that image position where the weighted sum of the image intensity and the first and the second contour derivatives is minimal. The search of the minimum is carried out only along the line segment that goes from the region contour point position to the position of the region center of gravity. Experiments with 60 real images revealed very accurate segmentation results with an average contour accuracy of 1.61±2.53 pixel.
机译:呈现一种算法,用于在通过在生物反应器内部捕获的图像捕获的图像中单分离的人胰岛素晶体的精确分割。它由三个主要步骤组成。首先,通过阈值平衡图像来提取前景区域。然后,使用单个最近的原型规则在先前分段的前景区域中检测对应于单个分离的人胰岛素晶体的区域,其中每个分段的前景区域类原型代表旋转,平移和鳞片不变形状的7维平均矢量几个类成员的特征,从训练集中提取了先验。最后,通过将每个轮廓点移动到图像位置和第一和第二轮廓衍生物的加权和最小的图像位置,通过将每个轮廓点移动到该图像位置来改善检测区域的轮廓精度。最小的搜索仅沿着从区域轮廓点位置到区域重心的位置的线段来执行。具有60个真实图像的实验显示非常精确的分割结果,平均轮廓精度为1.61±2.53像素。

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