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Granular computing in model based abdominal organs detection

机译:基于模型的腹部器官检测中的颗粒计算

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Detection of region specific voxel is a true challenge in many segmentation procedures. In this study a concept of implementing granular computing in the detection of anatomical structures in abdominal computed tomography (CT) scans is introduced. After proving the usefulness of the information granules to identify voxels that mark certain organs, an automatic model-based approach has been developed. A three-parameter granule that combines the interval and density distribution of voxels has been introduced and employed to identify organ specific voxels of the liver, spleen and kidneys. The specificity of the information granules varies between 90 and 99% for the liver and spleen and over 85% for the kidneys. (C) 2015 Elsevier Ltd. All rights reserved.
机译:在许多分割程序中,区域特定体素的检测是真正的挑战。在这项研究中,介绍了在腹部计算机断层扫描(CT)扫描中在检测解剖结构中实施粒度计算的概念。在证明信息颗粒对识别标记某些器官的体素的有用性之后,已经开发了一种基于模型的自动方法。引入了结合了体素的间隔和密度分布的三参数颗粒,并将其用于识别肝脏,脾脏和肾脏的器官特异性体素。对于肝脏和脾脏,信息颗粒的特异性介于90%至99%之间,对于肾脏,特异性超过85%。 (C)2015 Elsevier Ltd.保留所有权利。

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