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3D small structure detection in medical image using texture analysis

机译:3d使用纹理分析的医学图象中的小结构检测

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Small structure segmentation from medical images is a challenging problem yet has important applications. Examples are labeling cell, lesion and glomeruli for disease diagnosis, just to name a few. Though extensive research has proposed various detectors for this type of problem, most are 2D detectors. Recently, we have developed a Hessian based 3D detector to segment small structures from medical images (e.g., MRI). In our detector, two 3D geometrical features: regional blobness and flatness, in conjunction with the intensity features are fully utilized to serve the segmentation purpose. The objective of this research is to further improve the 3D detector with additions of texture features. Medical images contain rich information which can be presented as texture, the local characteristics pattern of image intensity. We hypothesize the Hessian based detector extended with the 3D texture features is expected to have improved performance in segmenting small structures. To thoroughly evaluate the contributions from the textual features, 25 synthetic images and 6 real world rat MR images are studied. It is observed the combination of intensity, blobness, and two texture features: intensity standard deviation and entropy improves performance in synthetic dataset by about 19% in F-score, and performs as well as other detectors on rat MR images.
机译:来自医学图像的小结构细分是一个具有挑战性的问题,但具有重要的应用。例子是标记细胞,病变和肾小球用于疾病诊断,只是为了命名几个。虽然广泛的研究提出了这种类型的问题的各种探测器,但大多数是2D探测器。最近,我们已经开发了一种基于Hessian的3D探测器,用于从医学图像(例如,MRI)分段小结构。在我们的探测器中,两种3D几何特征:区域Blobness和平坦度,与强度特征结合使用,充分利用了分割目的。该研究的目的是通过添加纹理特征,进一步改善3D检测器。医学图像包含丰富的信息,可以呈现为纹理,局部特征模式的图像强度。我们假设与3D纹理特征延伸的粗糙基于的探测器有望在分割小结构方面具有改进的性能。为了彻底评估文本特征的贡献,研究了25个合成图像和6个现实世界大鼠MR图像。它被观察到强度,Blob,和两个纹理特征的组合:强度标准偏差和熵在F分数中提高了合成数据集的性能约19%,并且在大鼠MR图像上执行以及其他探测器。

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