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Towards a Low Complexity Scheme for Medical Images in Scalable Video Coding

机译:朝着可伸缩视频编码中的医学图像的低复杂性方案

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Medical imaging has become of vital importance for diagnosing diseases and conducting noninvasive procedures. Advances in eHealth applications are challenged by the fact that Digital Imaging and Communications in Medicine (DICOM) requires high-resolution images, thereby increasing their size and the associated computational complexity, particularly when these images are communicated over IP and wireless networks. Therefore, medical research requires an efficient coding technique to achieve high-quality and low-complexity images with error-resilient features. In this study, we propose an improved coding scheme that exploits the content features of encoded videos with low complexity combined with flexible macroblock ordering for error resilience. We identify the homogeneous region in which the search for optimal macroblock modes is early terminated. For non-homogeneous regions, the integration of smaller blocks is employed only if the vector difference is less than the threshold. Results confirm that the proposed technique achieves a considerable performance improvement compared with existing schemes in terms of reducing the computational complexity without compromising the bit-rate and peak signal-to-noise ratio.
机译:医学成像对诊断和进行非侵入性程序具有至关重要的重要性。 EHealth应用程序的进步受到医学(DICOM)中的数字成像和通信需要高分辨率图像的挑战,从而提高其大小和相关的计算复杂性,特别是当这些图像通过IP和无线网络传送时。因此,医学研究需要一种有效的编码技术来实现具有错误弹性特征的高质量和低复杂性图像。在这项研究中,我们提出了一种改进的编码方案,该方案利用了具有低复杂性的编码视频的内容特征,与灵活的宏块排序进行错误弹性。我们确定早期终止搜索最佳宏块模式的均匀区域。对于非均匀区域,仅当载体差小于阈值时,才采用较小块的积分。结果证实,在降低计算复杂性的情况下,该提出的技术与现有方案相比实现了相当大的性能改进,而不会影响比特率和峰值信噪比。

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