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Volume Morphology and Its Application in 3-D Image Speckle Noise Suppressing

机译:卷形态及其在三维图像斑块噪声抑制中的应用

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Computed Tomography(CT) generates a three-dimensional image of the internals of an object from a large series of two-dimensional X-ray images taken around a single axis of rotation. Speckle noise in 3D images, such as medical images and industrial CT images, inevitably affects the analysis results of the interested objects contained in the volume data. This paper defines a group of volume morphology arithmetic operators, mainly including open and close, by extending area morphology into 3-D space. Using these operators, the light and dark objects of small size could be removed directly from the 3-D spaces of the target objects, while the connectivity of the main 3-D target objects in the volume data is still preserved. To demonstrate the validity of the volume morphology operators, they are applied to suppress speckle noises in 3-D images of coral and rat skull. Experimental results show that the algorithm proposed in this paper processes volume data as a whole, so that could protect the 3-D shapes of the target objects, especially the boundaries in the vertical direction. Comparing with the traditional process of treating 3-D images as 2-D image sequences, this method is more beneficial to volume segmentation and feature extraction for fine structures.
机译:计算机断层摄影(CT)从围绕单个旋转轴截取的大系列二维X射线图像生成对象内部的三维图像。 3D图像中的斑点噪声,例如医学图像和工业CT图像,不可避免地影响卷数据中包含的感兴趣对象的分析结果。本文定义了一组体内形态算术运算符,主要包括开启和关闭,通过将区域形态扩展为3-D空间。使用这些运算符,可以直接从目标对象的三维空间移除小尺寸的灯和暗对象,同时仍然保留卷数据中的主3-D目标对象的连接。为了展示卷形态运算符的有效性,它们适用于抑制珊瑚和大鼠颅骨的三维图像中的斑点噪声。实验结果表明,本文提出的算法在本文中提出的总体数据,从而可以保护目标物体的三维形状,尤其是垂直方向上的边界。与将3-D图像视为2-D图像序列的传统过程比较,该方法对细结构的体积分割和特征提取更有利。

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