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A FAST ADAPTIVE BALLOON ACTIVE CONTOUR FOR IMAGE SEGMENTATION

机译:用于图像分割的快速自适应气球活动轮廓

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摘要

Active Contour Models (ACM) have been widely used for segmentation in many computer vision applications. These models are dened by an energy functional attached to an initial curve that evolves under some constraints to extract desired objects in the image. New models are proposed, and existing techniques are investigated and improved in different domains. Among these ACM, Balloon ACM is an edge-based model that adds a normal force as constraint making the curve to have more dynamic behaviors and more effectiveness in detecting objects boundary. However, some problems have been pointed out including segmentation of complex shape and high runtime processing. In this paper, we develop a new method -called Fast Adaptive Balloon (FAB)-su±cient to segment complex shape with lower computational complexity. The proposed denition for balloon force achieves satisfactory segmentation performance compared with other ACMs using both synthetic and medical images in two dimension. The results demonstrate the accuracy and effectiveness in segmentation besides the convergence speed.
机译:主动轮廓模型(ACM)已广泛用于许多计算机视觉应用中的分段。这些模型由附加到初始曲线的能量函数被置于一些约束下的初始曲线以提取图像中所需的物体。提出了新的模型,在不同的域中研究了现有技术和改进。在这些ACM中,气囊ACM是一种基于边的模型,其增加了正常力,作为使曲线具有更大动态行为的约束和在检测对象边界中具有更多有效性。然而,已经指出了一些问题,包括复杂形状和高运行时处理的分割。在本文中,我们开发了一种新的方法,适应快速自适应气球(Fab)-su±Cient,以较低计算复杂性的段复杂形状。对于使用两维的合成和医学图像的其他ACM相比,拟议的气球力达到令人满意的分割性能。结果证明除了收敛速度之外的分割中的准确性和有效性。

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