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Segmentation of medical images using mean value guided contour

机译:使用均值导向轮廓的医学图像分割

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Partial differential equation-based (PDE-based) methods are extensively used in image segmentation, especially in contour models. Difficulties associated with the boundaries, namely troubles with developing initialization, inadequate convergence to boundary concavities, and difficulties connected to saddle points and stationary points of active contours make the contour models suffer from a feeble performance of referring to complex geometries. The present paper is designed to take advantage of mean value theorem rather than minimizing energy function for contours. It is efficiently capable of resolving above mentioned problems by applying this theorem to the edge map gradient vectors, which is calculated from the image. Since the contour is computed in a straightforward manner from an edge map instead of force balance equation, it varies from other contour-based image segmentation methods. To illustrate the ability of the proposed model in complex geometries and ruptures, several experiments were also provided to validate the model. The experiments' results demonstrated that the proposed method, which is called mean value guided contour (MVGC), is capable of repositioning contours into boundary concavities and has suitable forcefulness in complex geometries. (C) 2017 Elsevier B.V. All rights reserved.
机译:基于部分微分方式(基于PDE的)方法广泛用于图像分割,尤其是在轮廓模型中。与边界相关的困难,即开发初始化的困境,对边界凹陷的收敛不充分,以及与鞍座点和有源轮廓的静止点连接的困难使得轮廓模型遭受了指在复杂几何形状的微弱性能。本文旨在利用平均值定理而不是最小化轮廓的能量函数。通过将该定理应用于从图像计算的边缘映射梯度向量,它有效地解决了上述问题。由于轮廓以直接的方式从边缘图计算而不是力平衡方程计算,因此它从其他基于轮廓的图像分割方法变化。为了说明所提出的模型在复杂的几何形状和破裂中的能力,还提供了几个实验以验证模型。实验结果表明,被称为平均值导形轮廓(MVGC)的所提出的方法能够将轮廓重新定位成边界凹凸,并且在复杂的几何形状中具有适当的力度。 (c)2017 Elsevier B.v.保留所有权利。

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