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Denoising low dose CT images via 3D total variation using CUDA

机译:使用CUDA通过3D总变化对低剂量CT图像进行降噪

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The purpose of this paper is to improve the quality of low dose Computed Tomography (CT) images. Low dose artifacts are the Gaussian noises superimposed on the CT images and are often caused by insufficient calibrated detector and photon starvation. A noise reduction method via three dimensionaltotal variation usingCompute Unified Device Architecture (CUDA) is proposed on the three dimensional image. This method can also be employed for low dose noise removal ofthetwo dimensional CT images by decreasing a total variation dimension processing technique. The performanceof the proposed algorithm has been tested by using quantitative measures. For quantitative analysis, the quality assessment parameter Peak-signal-to-noise-ratio (PSNR) is used in this paper. Both simulation and real experiment results show that the proposed technique increases the image quality and has high calculation speed.
机译:本文的目的是提高低剂量计算机断层扫描(CT)图像的质量。低剂量伪影是叠加在CT图像上的高斯噪声,通常是由于校准探测器和光子饥饿不足而引起的。提出了一种基于三维整体变化的降噪方法,即使用计算机统一设备架构(CUDA)对三维图像进行降噪。通过减少总变化维数处理技术,该方法还可用于二维CT图像的低剂量噪声去除。该算法的性能已经通过定量方法进行了测试。为了进行定量分析,本文使用质量评估参数峰信噪比(PSNR)。仿真和实际实验结果均表明,该技术提高了图像质量,具有较高的计算速度。

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