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Context based medical image coding with contextual set partitioning with improved active contours algorithm

机译:基于上下文的医学图像编码,带有改进的主动轮廓算法的上下文集划分

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Image compression plays a crucial role in medical imaging, allowing efficient manipulation, storage, and transmission. Nevertheless, in medical applications the need to conserve the diagnostic validity of the image requires the use of lossless compression methods, producing low compression factors. In this paper, a novel near-lossless compression scheme for context based coding is proposed here and yields significantly better compression rates. In this proposed method the object and the background are obtain using improved active contours with selective local or global segmentation image segmentation, and the contextual part of the image is encoded selectively on the high priority basis with a very low compression rate (high bpp) and the background of the image is separately encoded with a low priority and a high compression rate (low bpp) and they are recombined for the reconstruction of the image. As a result, high over all compression rates, better diagnostic image quality and improved performance parameters are obtained. The algorithm is tested on experimental medical images from different modalities and different body districts and results are reported.
机译:图像压缩在医学成像中起着至关重要的作用,可以有效地进行操纵,存储和传输。然而,在医学应用中,需要保持图像的诊断有效性,需要使用无损压缩方法,从而产生较低的压缩因子。在本文中,这里提出了一种新的基于上下文的编码的近无损压缩方案,并且产生了明显更好的压缩率。在这种提出的方​​法中,使用改进的主动轮廓以及选择性的局部或全局分割图像分割来获得对象和背景,并且在高优先级的基础上以非常低的压缩率(高bpp)选择性地对图像的上下文部分进行编码,并且图像的背景分别以低优先级和高压缩率(低bpp)进行编码,然后将它们重新组合以重建图像。结果,获得了较高的所有压缩率,更好的诊断图像质量和改进的性能参数。该算法在来自不同方式和不同身体部位的实验医学图像上进行了测试,并报告了结果。

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