Robust segmentation and accurate target definition for positron emission tomography images using Affinity Propagation

Brent Foster, Ulas Bagci, Brian Luna, Bappaditya Dey, W. Bishai, Sanjay Jain, Ziyue Xu, D. Mollura
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引用次数: 24

Abstract

Distributed inflammation in infectious diseases cause variable uptake regions in positron emission tomography (PET) images. Due to this distributed nature of immuno-pathology and associated PET uptake, intensity based methods are much better suited over region based methods for segmentation. The most commonly used intensity based segmentation is thresholding, but it has a major drawback of a lack of consensus on the selection of the thresholding value. We propose a method to select an optimal thresholding value by utilizing a novel similarity metric between the data points along the gray-level histogram of the image then using Affinity Propagation (AP) to cluster the intensities based on this metric. This method is tested against the PET images of rabbits infected with tuberculosis with distributed uptakes with promising results.
基于亲和传播的正电子发射断层成像图像鲁棒分割和精确目标定义
传染病的分布炎症引起正电子发射断层扫描(PET)图像的可变摄取区。由于免疫病理和相关PET摄取的这种分布性质,基于强度的方法比基于区域的方法更适合分割。最常用的基于强度的分割是阈值分割,但它有一个主要缺点,即在阈值的选择上缺乏共识。我们提出了一种选择最佳阈值的方法,该方法利用图像灰度直方图上数据点之间的新颖相似性度量,然后使用Affinity Propagation (AP)对基于该度量的强度进行聚类。该方法在兔结核感染的PET图像上进行了测试,结果令人满意。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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