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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >KNOWLEDGE-BASED ORGAN IDENTIFICATION FROM CT IMAGES
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KNOWLEDGE-BASED ORGAN IDENTIFICATION FROM CT IMAGES

机译:基于CT图像的基于知识的组织识别

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摘要

This paper describes a new knowledge-based procedure for identifying and extracting organs from normal CT imagery. Our procedure differs from previous attempts in its use of a wide variety of knowledge about both the anatomy and the image processing operations. The system features the use of constraint-based dynamic thresholding, negative-shape constraints to rapidly rule out infeasible segmentations, and progressive landmarking that takes advantage of the different degrees of certainty of successful identification of each organ. The results of a series of tests on training data of 100 images from five patients plus additional test data of 75 images from three more patients indicate that the knowledge-based approach is promising. [References: 12]
机译:本文介绍了一种新的基于知识的程序,用于从正常CT图像中识别和提取器官。我们的程序与以前的尝试不同,它使用了有关解剖结构和图像处理操作的各种知识。该系统的特点是使用基于约束的动态阈值,负形约束来快速排除不可行的分割,以及利用成功识别每个器官的不同确定性程度的渐进式地标。对来自五位患者的100张图像的训练数据以及来自另外三位患者的75张图像的附加测试数据进行的一系列测试的结果表明,基于知识的方法很有希望。 [参考:12]

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