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Lossy cardiac x-ray image compression based on acquisition noise

机译:基于采集噪声的有损心脏X射线图像压缩

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Abstract: In lossy medical image compression, the requirements for the preservation of diagnostic integrity cannot be easily formulated in terms of a perceptual model. Especially since, in reality, human visual perception is dependent on numerous factors such as the viewing conditions and psycho-visual factors. Therefore, we investigate the possibility to develop alternative measures for data loss, based on the characteristics of the acquisition system, in our case, a digital cardiac imaging system. In general, due to the low exposure, cardiac x-ray images tend to be relatively noisy. The main noise contributions are quantum noise and electrical noise. The electrical noise is not correlated with the signal. In addition, the signal can be transformed such that the correlated Poisson-distributed quantum noise is transformed into an additional zero-mean Gaussian noise source which is uncorrelated with the signal. Furthermore, the systems modulation transfer function imposes a known spatial-frequency limitation to the output signal. In the assumption that noise which is not correlated with the signal contains no diagnostic information, we have derived a compression measure based on the acquisition parameters of a digital cardiac imaging system. The measure is used for bit- assignment and quantization of transform coefficients. We present a blockwise-DCT compression algorithm which is based on the conventional JPEG-standard. However, the bit- assignment to the transform coefficients is now determined by an assumed noise variance for each coefficient, for a given set of acquisition parameters. Experiments with the algorithm indicate that a bit rate of 0.6 bit/pixel is feasible, without apparent loss of clinical information. !13
机译:摘要:在有损医学图像压缩中,不能轻易地根据感知模型来提出保持诊断完整性的要求。尤其是因为实际上,人类的视觉感知取决于许多因素,例如观看条件和心理视觉因素。因此,我们根据采集系统(在我们的情况下为数字心脏成像系统)的特性,研究开发针对数据丢失的替代措施的可能性。通常,由于低曝光,心脏X射线图像倾向于相对嘈杂。主要的噪声贡献是量子噪声和电噪声。电噪声与信号不相关。另外,可以对信号进行变换,使得相关的泊松分布的量子噪声被变换为与信号不相关的附加零均值高斯噪声源。此外,系统调制传递函数对输出信号施加了已知的空间频率限制。在与信号不相关的噪声不包含诊断信息的假设下,我们基于数字心脏成像系统的采集参数得出了一种压缩量度。该度量用于变换系数的位分配和量化。我们提出了一种基于常规JPEG标准的逐块DCT压缩算法。但是,对于给定的一组采集参数,现在通过每个系数的假定噪声方差确定对变换系数的位分配。使用该算法的实验表明,采用0.6比特/像素的比特率是可行的,而不会明显丢失临床信息。 !13

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