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首页> 外文期刊>Journal of Scientific Computing >Wavelet-Based De-noising of Positron Emission Tomography Scans
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Wavelet-Based De-noising of Positron Emission Tomography Scans

机译:正电子发射断层扫描的基于小波的去噪

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摘要

A method to improve the signal-to-noise-ratio (SNR)of positron emission tomography (PET) scans is presented. A wavelet-based image decomposition technique decomposes an image into two parts, one which primarily contains the desired restored image and the other primarily the remaining unwanted portion of the image. Because the method is based on a texture extraction model that identifies the desired image in the space of bounded variation, these restorations are approximations of piecewise constant images, and are referred to as the cartoon part of the image. Here an approximation using a wavelet decomposition is used which allows solutions to be computed very efficiently. To process 3-D volume data a slice by slice approach in all three directions is adopted. Using a redundant discrete wavelet transform, 3-D restorations can be efficiently computed on standard desktop computers. The method is illustrated for PET images which have been reconstructed from simulated data using the expectation maximization algorithm. When post-processed by the presented wavelet decomposition they show a significant increase in SNR. It is concluded that the new wavelet based method can be used as an alternative to the well established de- noising of PET scans by smoothing with a Gaussian point spread function. In particular, if the volume data are reconstructed using the EM algorithm with a larger number of iterations than the number of iterations that would be used without post-processing, the 3-D images are sharper and show more detail. A MATLAB~® based graphical user interface is provided that allows easy exploration of the impact of parameter choices.
机译:提出了一种改善正电子发射断层扫描(PET)扫描的信噪比(SNR)的方法。基于小波的图像分解技术将图像分解为两个部分,一个部分主要包含所需的还原图像,另一部分主要包含图像的剩余不需要部分。因为该方法基于在有限变化空间中标识所需图像的纹理提取模型,所以这些恢复是分段恒定图像的近似值,被称为图像的卡通部分。此处使用了使用小波分解的近似值,可以非常有效地计算解。为了处理3-D体数据,采用了在所有三个方向上逐片的方法。使用冗余离散小波变换,可以在标准台式计算机上有效地计算3D恢复。针对使用期望最大化算法从模拟数据重建的PET图像说明了该方法。当通过提出的小波分解进行后处理时,它们显示出SNR的显着提高。结论是,通过使用高斯点扩展函数进行平滑处理,可以将基于小波的新方法用作完善的PET扫描去噪的替代方法。特别是,如果使用EM算法以比没有后处理时要使用的迭代次数大的迭代次数来重建体数据,则3D图像将更清晰并显示更多细节。提供了基于MATLAB〜®的图形用户界面,可轻松探索参数选择的影响。

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