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A Model-Based Denoising Adaptive Diffusion Method Based on Multi-Scale Bilateral Filter

机译:一种基于模型的基于多尺寸双侧滤波器的去噪自适应扩散方法

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In order to filter out the noise points of the medical spine model effectively and keep the details of the model better, a model-based denoising adaptive diffusion method based on multi-scale bilateral filter is proposed. This method firstly extracts the contour lines of the 3D model of the spine by using bilateral filter in multi-scale conditions, and then designs and improves the adaptive diffusion coefficient so as to optimize and control the whole diffusion process. Then, according to the discreteness of the image, the corresponding discrete iterative equations are established to discretize the iterative process, and the iteration stopping criterion is designed to make the denoising and smoothing image model stop the iteration when the correlation between that image model and the noise is the minimum, and finally to establish the spine image denoising model. After compared with the experimental results of the classical PM method, Catte method and other methods, this method achieves good filtering effect in denoising, and also preserves the edge detail features of medical image, much better than traditional filtering algorithm.
机译:为了有效地过滤出医疗脊柱模型的噪声点并保持模型的细节,提出了一种基于多尺度双侧滤波器的基于模型的去噪自适应扩散方法。该方法首先通过在多尺度条件下使用双边滤波器提取脊柱的3D模型的轮廓线,然后设计和改善了自适应扩散系数,以便优化和控制整个扩散过程。然后,根据图像的离散性,建立相应的离散迭代方程以使迭代过程分开,并且迭代停止标准被设计为使得当该图像模型之间的相关性时,使得去噪和平滑图像模型停止迭代。噪声是最小的,最后建立脊柱图像去噪模式。与经典PM方法的实验结果相比,Catte方法等方法,这种方法在去噪方面取得了良好的过滤效果,并保留了医学图像的边缘细节特征,比传统的过滤算法更好。

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