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A Modular Approach on Adaptive Thresholding for Extraction ofMammalian Cell Regions from Bioelectric Images in ComplexLighting Environments

机译:复合环境中生物电像中ammammelian细胞区提取的自适应阈值的模块化方法

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A modular approach on an adaptive thresholding method for segmentation of cell regions in bioelectric images with complex lighting environments and background conditions is presented in this paper. Preprocessing steps involve low-pass filtering of the image and local contrast enhancement. This image is then adaptively thresholded which produces a binary image. The binary image consists of cell regions and the edges of a metal electrode that show up as bright spots. A local region based approach is used to distinguish between cell regions and the metal electrode tip that cause bright spots. Regional properties such as area are used to separate the cell regions from the non-cell regions. Special emphasis is given on the detection of twins and triplet cells with the help of watershed transformation, which might have been lost if form-factor alone were to be used as the geometrical descriptor to separate the cell and the non-cell regions.
机译:本文介绍了具有复杂照明环境和背景条件的生物电像中小区区域分割的自适应阈值方法的模块化方法。预处理步骤涉及图像和局部对比度增强的低通滤波。然后,该图像是自适应地阈值的,其产生二进制图像。二进制图像包括单元区域和显示为亮点的金属电极的边缘。基于局部区域的方法用于区分电池区域和导致亮点的金属电极尖端。区域等区域属性用于将小区区与非小区区域分离。在流域转化的帮助下检测对双胞胎和三重态细胞进行特殊重点,如果单独的形状因子用作几何描述符以分离细胞和非细胞区域,则可能丢失。

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