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A multiple object geometric deformable model for image segmentation

机译:一种用于图像分割的多目标几何可变形模型

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摘要

Deformable models are widely used for image segmentation, most commonly to find single objects within an image. Although several methods have been proposed to segment multiple objects using deformable models, substantial limitations in their utility remain. This paper presents a multiple object segmentation method using a novel and efficient object representation for both two and three dimensions. The new framework guarantees object relationships and topology, prevents overlaps and gaps, enables boundary-specific speeds, and has a computationally efficient evolution scheme that is largely independent of the number of objects. Maintaining object relationships and straightforward use of object-specific and boundary-specific smoothing and advection forces enables the segmentation of objects with multiple compartments, a critical capability in the parcellation of organs in medical imaging. Comparing the new framework with previous approaches shows its superior performance and scalability.
机译:变形模型广泛用于图像分割,最常见的是在图像中查找单个对象。尽管已经提出了几种使用可变形模型分割多个对象的方法,但是它们的实用性仍然存在很大的局限性。本文提出了一种新颖的,有效的二维和二维对象表示方法。新框架保证了对象关系和拓扑结构,防止了重叠和间隙,实现了特定于边界的速度,并具有在很大程度上与对象数量无关的计算有效的演化方案。保持对象关系以及直接使用特定于对象和特定于边界的平滑和对流力,可以对具有多个隔室的对象进行分割,这是医学成像中分割器官的关键能力。将新框架与以前的方法进行比较,显示了其卓越的性能和可伸缩性。

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