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MicroCT Image Coding Based on Air Filtering

机译:基于空气过滤的MicroCT图像编码

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摘要

Preclinical imaging is a key enabling technology for medical research, such as in drug discovery, cancer detection, or osteoporosis screening. Europe is investing a significant amount of resources in a distributed phenotype study, carried out using Micro Computed Tomography (CT) images, which are acquired at very high resolutions to ease the detection of skeleton malformations. Unfortunately, like other CT images, MicroCT images commonly contain a notable amount of noise emitted by the acquisition device, which hinders the encoding of such images. In order to improve coding performance, we propose to use the Hounsfield Scale to establish a relationship between CT values and biological tissue together with an air-filtering approach, which modifies only samples located outside the biological area without penalizing the usefulness of the images to clinical experts, nor the visual perception of images. The proposed filter sets all samples having value lower than a specific threshold T to a constant figure.
机译:临床前成像是医学研究(例如药物发现,癌症检测或骨质疏松症筛查)中一项关键的使能技术。欧洲正在使用微计算机断层扫描(CT)图像进行的分布式表型研究中投入了大量资源,该图像以非常高分辨率获得,以简化骨骼畸形的检测。不幸的是,像其他CT图像一样,MicroCT图像通常包含采集设备发出的大量噪声,这阻碍了此类图像的编码。为了提高编码性能,我们建议使用Hounsfield量表以及空气过滤方法来建立CT值与生物组织之间的关系,该方法仅修改位于生物区域之外的样本,而不会损害图像对临床的实用性专家,也不是图像的视觉感知。所提出的滤波器将具有低于特定阈值T的值的所有样本设置为常数。

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