首页> 外文会议>IEEE International Symposium on Biomedical Imaging >NOISE ADAPTIVE MATRIX EDGE FIELD ANALYSIS OF SMALL SIZED HETEROGENEOUS ONION LAYERED TEXTURES FOR CHARACTERIZING HUMAN EMBRYONIC STEM CELL NUCLEI
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NOISE ADAPTIVE MATRIX EDGE FIELD ANALYSIS OF SMALL SIZED HETEROGENEOUS ONION LAYERED TEXTURES FOR CHARACTERIZING HUMAN EMBRYONIC STEM CELL NUCLEI

机译:小尺寸异质洋葱分层纹理噪声自适应矩阵边缘场分析,用于表征人胚胎干细胞核

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We present a methodology for characterizing small size heterogeneous textures that are hard to analyze in general due to the paucity of pixels and textural heterogeneity. The methodology overcomes the limitation for a large class of heterogeneous textures that exhibit onion layer type textural variation, where we may assume that within a layer the behavior is homogeneous, but may vary from layer to layer. The shape of the onion layers is data dependent; radial symmetry is not required. We use an energy functional approach for simultaneous smoothing and segmentation that relies on two key innovations: a matrix edge field, and adaptive weighting of the measurements relative to the smoothing process model. The matrix edge function adaptively and implicitly modulates the shape, size, and orientation of smoothing neighborhoods over different regions of the texture. It thus provides directional information on the texture that is not available in the more conventional scalar edge field based approaches. The adaptive measurement weighting varies the weighting between the measurements at each pixel. Image based analysis of human embryonic stem cells is the motivating application for this new approach, and we show how the features extracted using this approach can be used to automate the classification of pluripotent vs. differentiated stem cell nuclei based on confocal images of fluorescent GFP-labeled chromatin.
机译:我们提出了一种表征小尺寸异质纹理的方法,这是由于像素和纹理异质性的缺乏而难以分析。该方法克服了表现出洋葱层型纹理变化的大类异构纹理的限制,在那里我们可以假设在行为均匀的层内,但可以从层到层变化。洋葱层的形状是数据所依赖的;不需要径向对称性。我们使用能量功能方法来同时平滑和分割,依赖于两个关键创新:矩阵边缘场,以及相对于平滑过程模型的测量的自适应加权。矩阵边缘函数自适应地且隐含地调制平滑邻域的形状,大小和方向在纹理的不同区域上。因此,它提供关于基于传统标量边缘场的方法不可用的纹理的方向信息。自适应测量加权在每个像素处的测量值之间变化。人胚胎干细胞的基于图像分析是这种新方法的激励应用,并且我们展示了利用这种方法提取的特征如何基于荧光GFP的共焦图像自动化多能Vs.分化的干细胞核的分类。标记的染色质。

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