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PERCEPTION THRESHOLDING FOR NOISE REMOVAL IN MICROGRAPHS OF CELLULAR TISSUES ACQUIRED BY FLUORESCENCE MICROSCOPY

机译:荧光显微镜获得的细胞组织显微照片中的去噪感知阈值

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Plant petioles and stems are hierarchical structures comprising cellular tissues in one or more intermediate hierarchies displaying quasi random to heterogeneous cellularity that governs the overall structural properties. Exact replication of natural cellular tissue leads to the investigation of mechanical properties at the microstructural level. However, the micrographs often display artifacts due to experimental procedure and prevent representative spatial modeling of the tissues. Existing methods such as local thresholding or global thresholding (Otsu's method) fail to effectively remove the artifacts. Hence, an efficient algorithm is required that can effectively help to reconstruct the geometric models of tissue microstructures by removing the noise. In this work, perception-based thresholding that conceptually works like human brain in differentiating noise from the actual ones based on color is introduced to remove discrete (within a cell) or adjacent (to the cell boundaries) noise. A variety of image dataset of non-woody plant tissues were tested with the algorithm, and its effectiveness in eliminating noise was quantitatively compared with existing noise removal techniques by Bivariate Similarity Index. The bivariate metrics indicate an enhanced performance of the perception-based thresholding over other considered algorithms.
机译:植物的叶柄和茎是一种层次结构,包括一个或多个中间层次中的细胞组织,这些层次显示出控制整个结构特性的准随机到异质细胞质。天然细胞组织的精确复制导致在微观结构水平上研究机械性能。然而,由于实验过程,显微照片经常显示伪像,并且妨碍了组织的代表性空间建模。现有的方法(例如局部阈值化或全局阈值化(Otsu的方法))无法有效去除伪影。因此,需要一种有效的算法,该算法可以通过去除噪声来有效地帮助重建组织微结构的几何模型。在这项工作中,引入了基于感知的阈值,该阈值在概念上类似于人脑,可以根据颜色将噪声与实际噪声区分开来,以消除离散(在单元内)或相邻(在单元边界)的噪声。使用该算法测试了多种非木本植物组织的图像数据集,并通过双变量相似度指数将其在消除噪声方面的有效性与现有的噪声消除技术进行了定量比较。双变量度量表明与其他考虑的算法相比,基于感知的阈值性能得到了增强。

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