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Analyzing Tree-Like Structures in Biomedical Images Based on Texture and Branching: An Application to Breast Imaging

机译:基于纹理和分支的生物医学图像中的树状结构分析:乳房成像的应用

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We propose an approach for analyzing tree-like structures in biomedical images. Our analysis is based on Vector Quantization (VQ), an image compression technique. Here, we approach VQ from a different perspective: we use the histogram of the codeword usage as a feature vector representing the initial image. As ductal tree topology has predictive value for a variety of diseases, such as papilloma, ductal ectasia, and ductal carcinoma, we chose to apply this technique to compare texture of the breast ductal tree in X-ray galactograms against the same tissue in corresponding unenhanced mammograms, which do not visualize the ductal tree. We also investigate the relationship between texture and the underlying ductal branching topology using descriptors adapted from the data mining literature. We believe that our method has the potential to assist the interpretation of clinical images and deepen our understanding of relationships among structure, texture, function, and pathology.
机译:我们提出一种用于分析生物医学图像中的树状结构的方法。我们的分析基于矢量量化(VQ),图像压缩技术。在这里,我们从不同的角度接近VQ:我们使用码字使用的直方图作为表示初始图像的特征向量。由于导管树拓扑具有各种疾病的预测值,例如乳头瘤,导管畸形和导管癌,我们选择应用该技术,以比较X射线半举的乳房导管树的质地在相应的未加入中相同的组织乳房X线照片,不会想象导管树。我们还使用数据挖掘文献改编的描述符研究了纹理与底层门分支拓扑之间的关系。我们认为,我们的方法有可能协助临床图像的解释,深化我们对结构,质地,功能和病理学之间的关系的理解。

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