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Open-source software platform for medical image segmentation applications

机译:用于医学图像分割应用程序的开源软件平台

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摘要

Segmenting 2D and 3D images is a crucial and challenging problem in medical image analysis. Although several image segmentation algorithms have been proposed for different applications, no universal method currently exists. Moreover, their use is usually limited when detection of complex and multiple adjacent objects of interest is needed. In addition, the continually increasing volumes of medical imaging scans require more efficient segmentation software design and highly usable applications. In this context, we present an extension of our previous segmentation framework which allows the combination of existing explicit deformable models in an efficient and transparent way, handling simultaneously different segmentation strategies and interacting with a graphic user interface (GUI). We include the object-oriented design and the general architecture which consist of two layers: the GUI at the top layer, and the processing core filters at the bottom layer. We apply the framework for segmenting different real-case medical image scenarios on public available datasets including bladder and prostate segmentation from 2D MRI, and heart segmentation in 3D CT. Our experiments on these concrete problems show that this framework facilitates complex and multi-object segmentation goals while providing a fast prototyping open-source segmentation tool.
机译:分割2D和3D图像是医学图像分析中一个至关重要的挑战性问题。尽管已经针对不同的应用提出了几种图像分割算法,但是目前还没有通用的方法。此外,当需要检测复杂的多个相邻目标物体时,通常限制使用它们。另外,不断增长的医学成像扫描量需要更有效的分割软件设计和高度可用的应用程序。在这种情况下,我们提出了先前分割框架的扩展,该框架允许以有效且透明的方式组合现有的显式可变形模型,同时处理不同的分割策略并与图形用户界面(GUI)进行交互。我们包括面向对象的设计和由两层组成的常规体系结构:顶层的GUI和底层的处理核心过滤器。我们应用该框架在公共可用数据集上分割不同的实际医学图像场景,包括从2D MRI进行膀胱和前列腺分割,以及在3D CT中进行心脏分割。我们针对这些具体问题的实验表明,该框架有助于实现复杂的多对象细分目标,同时提供快速原型的开源细分工具。

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