运动补偿小波提升与去噪预测与更新的医学CT动态数据无损编码

Daniela Lanz, Franz Schilling, A. Kaup
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引用次数: 2

摘要

像远程医疗这样的专业应用通常需要对敏感数据进行可扩展的无损编码。三维子带编码为动态CT数据提供了良好的压缩结果,并且还提供了低通和高通子带方面的可扩展表示。为了提高低通子带的视觉质量,可以在提升结构中加入运动补偿,但同时导致压缩效果较差。先前的研究表明,在更新步骤中加入去噪滤波器可以提高压缩比。本文提出了一种新的更新步的运动补偿和去噪处理顺序,并在预测步引入了第二个去噪滤波器。这允许减少整体文件大小高达4.4%,而低通子带的视觉质量几乎保持不变。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Scalable Lossless Coding of Dynamic Medical CT Data Using Motion Compensated Wavelet Lifting with Denoised Prediction and Update
Professional applications like telemedicine often require scalable lossless coding of sensitive data. 3-D subband coding has turned out to offer good compression results for dynamic CT data and additionally provides a scalable representation in terms of low- and highpass subbands. To improve the visual quality of the lowpass subband, motion compensation can be incorporated into the lifting structure, but leads to inferior compression results at the same time. Prior work has shown that a denoising filter in the update step can improve the compression ratio. In this paper, we present a new processing order of motion compensation and denoising in the update step and additionally introduce a second denoising filter in the prediction step. This allows for reducing the overall file size by up to 4.4%, while the visual quality of the lowpass subband is kept nearly constant.
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