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首页> 外文期刊>IEEE Transactions on Medical Imaging >Contextual encoding in uniform and adaptive mesh-based lossless compression of MR images
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Contextual encoding in uniform and adaptive mesh-based lossless compression of MR images

机译:基于均匀且自适应的基于网格的MR图像无损压缩中的上下文编码

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摘要

We propose and evaluate a number of novel improvements to the mesh-based coding scheme for 3-D brain magnetic resonance images. This includes: 1) elimination of the clinically irrelevant background leading to meshing of only the brain part of the image; 2) content-based (adaptive) mesh generation using spatial edges and optical flow between two consecutive slices; 3) a simple solution for the aperture problem at the edges, where an accurate estimation of motion vectors is not possible; and 4) context-based entropy coding of the residues after motion compensation using affine transformations. We address only lossless coding of the images, and compare the performance of uniform and adaptive mesh-based schemes. The bit rates achieved (about 2 bits per voxel) by these schemes are comparable to those of the state-of-the-art three-dimensional (3-D) wavelet-based schemes. The mesh-based schemes have been shown to be effective for the compression of 3-D brain computed tomography data also. Adaptive mesh-based schemes perform marginally better than the uniform mesh-based methods, at the expense of increased complexity.
机译:我们提出并评估了对基于网格的3D脑磁共振图像的编码方案的许多新颖改进。这包括:1)消除与临床无关的背景,从而仅使图像的大脑部分啮合; 2)使用空间边缘和两个连续切片之间的光流,基于内容的(自适应)网格生成; 3)对于边缘的孔径问题的简单解决方案,其中不可能对运动矢量进行准确的估计; 4)使用仿射变换对运动补偿后的残差进行基于上下文的熵编码。我们仅处理图像的无损编码,并比较基于统一和自适应网格的方案的性能。这些方案实现的比特率(每个体素大约2位)与最新的基于三维(3-D)小波的方案的比特率相当。基于网格的方案已被证明对于压缩3D脑计算机断层扫描数据也是有效的。自适应的基于网格的方案在性能上要比统一的基于网格的方法略胜一筹,但会增加复杂性。

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