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基于图形处理器的真实4D图像去噪

True 4D Image Denoising on the GPU.

作者信息

Eklund Anders, Andersson Mats, Knutsson Hans

机构信息

Division of Medical Informatics, Department of Biomedical Engineering, Linköping University, Linköping, Sweden.

出版信息

Int J Biomed Imaging. 2011;2011:952819. doi: 10.1155/2011/952819. Epub 2011 Oct 1.

Abstract

The use of image denoising techniques is an important part of many medical imaging applications. One common application is to improve the image quality of low-dose (noisy) computed tomography (CT) data. While 3D image denoising previously has been applied to several volumes independently, there has not been much work done on true 4D image denoising, where the algorithm considers several volumes at the same time. The problem with 4D image denoising, compared to 2D and 3D denoising, is that the computational complexity increases exponentially. In this paper we describe a novel algorithm for true 4D image denoising, based on local adaptive filtering, and how to implement it on the graphics processing unit (GPU). The algorithm was applied to a 4D CT heart dataset of the resolution 512  × 512  × 445  × 20. The result is that the GPU can complete the denoising in about 25 minutes if spatial filtering is used and in about 8 minutes if FFT-based filtering is used. The CPU implementation requires several days of processing time for spatial filtering and about 50 minutes for FFT-based filtering. The short processing time increases the clinical value of true 4D image denoising significantly.

摘要

图像去噪技术的应用是许多医学成像应用的重要组成部分。一个常见的应用是提高低剂量(有噪声)计算机断层扫描(CT)数据的图像质量。虽然三维图像去噪以前已被独立应用于多个体数据,但在真正的四维图像去噪方面却没有太多工作,在四维图像去噪中,算法会同时考虑多个体数据。与二维和三维去噪相比,四维图像去噪的问题在于计算复杂度呈指数级增加。在本文中,我们描述了一种基于局部自适应滤波的真正四维图像去噪新算法,以及如何在图形处理单元(GPU)上实现它。该算法应用于分辨率为512×512×445×20的四维CT心脏数据集。结果是,如果使用空间滤波,GPU大约25分钟就能完成去噪,如果使用基于快速傅里叶变换(FFT)的滤波,则大约8分钟就能完成。CPU实现对于空间滤波需要几天的处理时间,对于基于FFT的滤波则需要大约50分钟。短处理时间显著提高了真正四维图像去噪的临床价值。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fe7f/3184419/7a84e6c81df2/IJBI2011-952819.001.jpg

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