首页> 外文会议>2018 4th International Conference on Computer and Technology Applications >Adaptive speckle reducing anisotropic diffusion filter for positron emission tomography images based on anatomical prior
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Adaptive speckle reducing anisotropic diffusion filter for positron emission tomography images based on anatomical prior

机译:基于解剖先验的正电子发射断层图像自适应散斑减少各向异性扩散滤波器

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Positron Emission Tomography (PET)/Computed Tomography (CT) is the main medical imaging technique which used for diagnosing cancer. PET image is showing the functional activities in the patient while CT imaging presents the anatomical information. The PET raw-projection data (sinogram) contains a very high level of Poisson noise, while the reconstructed image through filtered back-projection algorithm (FBP) is contaminated with unknown noise that is very similar to speckle noise distribution. This noise may lead to increase the doze of radioactive material that given to the patient for imaging PET and to errors in the diagnosis results. Applying a suitable filtering approach can increase the effectiveness of the diagnosing process. Using the high resolution information in the CT, we propose in this work an adaptive post-reconstruction curvature motion filtering technique for PET image. The proposed filter consider computing the diffusivity function (edge stopping function) based on the fused image (PET/CT) to guide the smoothing and the sharpening process in the image. Experiments demonstrate through simulated images that the performance of the proposed method significantly enhance the reconstructed PET using FBP algorithm. Further, it compared with recently published methods, both visually and in terms of statistical measures.
机译:正电子发射断层扫描(PET)/计算机断层扫描(CT)是用于诊断癌症的主要医学成像技术。 PET图像显示患者的功能活动,而CT图像显示解剖信息。 PET原始投影数据(正弦图)包含非常高的泊松噪声,而通过滤波反投影算法(FBP)重建的图像被未知噪声污染,该噪声与散斑噪声分布非常相似。该噪声可能导致增加放射给患者以使PET成像的放射性物质的ze睡,并导致诊断结果错误。应用合适的过滤方法可以提高诊断过程的效率。利用CT中的高分辨率信息,我们在这项工作中提出了一种适用于PET图像的自适应重建后曲率运动滤波技术。提出的滤波器考虑基于融合图像(PET / CT)计算扩散率函数(边缘停止函数),以指导图像的平滑和锐化过程。实验通过仿真图像证明了该方法的性能明显增强了使用FBP算法重建的PET。此外,在视觉上和统计指标上,它都与最近发布的方法进行了比较。

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