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Visualization of blood vessels in in vitro raw speckle images using an energy-based on DWT coefficients

机译:使用基于DWT系数的能量 - 基于DWT系数的体外原始斑点图像中的血管可视化

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摘要

The visualization and localization of blood vessels is an important task to determine the presence and the health status of microvasculature in the biological tissue. Laser Speckle Contrast Imaging is one of the most widely employed techniques to study blood vessels; even so, it has some drawbacks in analyzing deep blood vessels ( 100 mu m) since the image noise level increases. The Wavelet Approach is a model of automatic denoising for contrasted in vitro Raw Speckle images using an energy criterion. The criterion selects the more suitable denoising level from the Discrete Wavelet Transform decomposition using the detail coefficients. Then, the segmentation of low-noise images by mathematical morphology techniques establish the blood vessel and biological tissue location. Finally, the region corresponding to the blood vessel and the low-noise images are used to improve the visualization of blood vessels. Results show that a Wavelet Approach improves the visualization of blood vessels up to a depth of 400 mu m. Furthermore, the proposed model demonstrates that the automatic denoising criterion improves the localization of superficial (= 100 mu m) and deep ( 100 mu m) blood vessels.
机译:血管的可视化和定位是确定生物组织中微血管结构的存在和健康状态的重要任务。激光散斑对比度成像是研究血管最广泛使用的技术之一;即便如此,由于图像噪声水平增加,它在分析深血管(& 100 mu m)时具有一些缺点。小波方法是使用能量标准对比体外原始斑点图像的自动去噪的模型。使用细节系数,标准从离散小波变换分解中选择更合适的去噪水平。然后,通过数学形态学技术进行低噪声图像的分割建立血管和生物组织位置。最后,使用对应于血管和低噪声图像的区域来改善血管的可视化。结果表明,小波方法改善了血管的可视化达到400μm的深度。此外,所提出的模型表明,自动去噪标准改善了浅表(&100μm)和深(&100μm)血管的定位。

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