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Adaptive B- Snake model using shape and appearance information for object segmentation

机译:使用形状和外观信息进行对象分割的自适应B-Snake模型

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摘要

A novel adaptive B-Spline deformable model is presented in this paper for object segmentation. Comparing with other B-Spline models, the proposed model has the following advantages. First, a fully automatic and affine-invariant strategy is proposed for landmark point assignment. Second, contrary to other B-Spline models that rely on predetermined number of control points, an automatic scheme for control point insertion is designed to enhance the adaptivity and the flexibility of B-Spline model for segmenting shapes with high complexity. Thirdly, a statistical framework is embedded for modeling the shape distribution and appearance characteristics of landmark points in the training samples. Fine deformation can be achieved through the minimum mean square error approach that allows the model to accurately adapt to the desired object boundaries in the image. Experiments on medical image segmentation are carried out to validate the performance, and comparison has been made with respect to the traditional Snake and ASM. It turns out that the proposed adaptive B-Spline model can attain more accurate object segmentation.
机译:提出了一种新颖的自适应B样条可变形模型用于目标分割。与其他B样条曲线模型相比,该模型具有以下优点。首先,提出了一种全自动且仿射不变的策略来进行界标点分配。其次,与依赖于预定数量控制点的其他B样条模型相反,设计了用于控制点插入的自动方案以增强B样条模型用于以高复杂度分割形状的适应性和灵活性。第三,嵌入一个统计框架,用于对训练样本中标志点的形状分布和外观特征进行建模。通过最小均方误差方法可以实现精细变形,该方法允许模型准确地适应图像中所需的对象边界。进行医学图像分割实验以验证其性能,并与传统的Snake和ASM进行了比较。事实证明,提出的自适应B样条模型可以实现更准确的对象分割。

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