首页> 外文期刊>European Journal of Nuclear Medicine and Molecular Imaging >Incorporation of wavelet-based denoising in iterative deconvolution for partial volume correction in whole-body PET imaging.
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Incorporation of wavelet-based denoising in iterative deconvolution for partial volume correction in whole-body PET imaging.

机译:迭代反卷积中基于小波的降噪技术在全身PET成像中进行部分体积校正。

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PURPOSE: Partial volume effects (PVEs) are consequences of the limited resolution of emission tomography. The aim of the present study was to compare two new voxel-wise PVE correction algorithms based on deconvolution and wavelet-based denoising. MATERIALS AND METHODS: Deconvolution was performed using the Lucy-Richardson and the Van-Cittert algorithms. Both of these methods were tested using simulated and real FDG PET images. Wavelet-based denoising was incorporated into the process in order to eliminate the noise observed in classical deconvolution methods. RESULTS: Both deconvolution approaches led to significant intensity recovery, but the Van-Cittert algorithm provided images of inferior qualitative appearance. Furthermore, this method added massive levels of noise, even with the associated use of wavelet-denoising. On the other hand, the Lucy-Richardson algorithm combined with the same denoising process gave the best compromise between intensity recovery, noise attenuation and qualitative aspect of the images. CONCLUSION: The appropriate combination of deconvolution and wavelet-based denoising is an efficient method for reducing PVEs in emission tomography.
机译:目的:部分体积效应(PVE)是发射体层摄影术分辨率有限的结果。本研究的目的是比较两种新的基于反卷积和基于小波的去噪的体素方式PVE校正算法。材料与方法:使用Lucy-Richardson和Van-Cittert算法进行反卷积。这两种方法均使用模拟的和实际的FDG PET图像进行了测试。为了消除经典反卷积方法中观察到的噪声,将基于小波的降噪方法引入到该过程中。结果:两种解卷积方法均导致明显的强度恢复,但是Van-Cittert算法提供了质量较差的外观图像。此外,即使与小波去噪一起使用,该方法也会增加大量噪声。另一方面,Lucy-Richardson算法与相同的去噪处理相结合,在强度恢复,噪声衰减和图像的定性方面达到了最佳折衷。结论:反卷积和基于小波的去噪的适当组合是减少发射层析成像中PVE的有效方法。

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