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3-D B-spline Wavelet-Based Local Standard Deviation (BWLSD): Its Application to Edge Detection and Vascular Segmentation in Magnetic Resonance Angiography

机译:基于3-D B样条小波的局部标准差(BWLSD):其在磁共振血管造影中的边缘检测和血管分割中的应用

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摘要

Extracting reliable image edge information is crucial for active contour models as well as vascular segmentation in magnetic resonance angiography (MRA). However, conventional edge detection techniques, such as gradientbased methods and wavelet-based methods, are incapable of returning reliable detection responses from low contrast edges in the images. In this paper, we propose a novel edge detection method by combining B-spline wavelet magnitude with standard deviation inside local region. It is proved theoretically and demonstrated experimentally in this paper that the new edge detection method, namely BWLSD, is able to give consistent and reliable strengths for edges with different image contrasts. Moreover, the relationship between the size of local region with non-zero wavelet magnitudes and the scale of wavelet function is established. This relationship indicates that if the scale of the adopted wavelet function is s, then the size of a local region, from which the standard deviation is estimated, should be 2s1. The proposed edge detection technique is embedded in FLUX, namely, BWLSD-FLUX, for vascular segmentation in MRA image volumes. Experimental results on clinical images show that, as compared with the conventional FLUX, BWLSD-FLUX can achieve better segmentations of vasculatures in MRA images under same initial conditions.
机译:提取可靠的图像边缘信息对于主动轮廓模型以及磁共振血管造影(MRA)中的血管分割至关重要。但是,常规的边缘检测技术,例如基于梯度的方法和基于小波的方法,无法从图像中低对比度的边缘返回可靠的检测响应。在本文中,我们提出了一种结合B样条小波幅度与局部区域内标准差的边缘检测方法。本文通过理论证明和实验证明,新的边缘检测方法,即BWLSD,能够为具有不同图像对比度的边缘提供一致而可靠的强度。此外,建立了非零小波幅度的局部区域大小与小波函数尺度之间的关系。这种关系表明,如果采用的小波函数的尺度为s,则从中估计标准差的局部区域的大小应为2s1。所提出的边缘检测技术被嵌入到FLUX中,即BWLSD-FLUX,用于在MRA图像体积中进行血管分割。临床图像的实验结果表明,与常规FLUX相比,BWLSD-FLUX可以在相同的初始条件下在MRA图像中实现更好的脉管系统分割。

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