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Shape constrained discrete dynamic contours for noisy object segmentation

机译:形状受限的离散动态轮廓用于嘈杂的对象分割

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In this paper, we focus on using shape information of a known class of objects to match an active contour model (ACM) with the boundary of an object in a noisy scene. The problem is addressed as finding two similar shapes in the presence of noise, where the edges of the desired object are not clearly distinguishable, during the iterative process of finding the energy-minimized active contour. The shape information is obtained through the transformation, scale, and rotation invariant Fourier descriptors (FD). During a training phase, the principal component analysis (PCA) of the FD is performed to find the modes of the variation of the FD. This is different from active shape models (ASM) that deal with shape through a point distribution model (PDM) in the spatial domain. Our proposed method overcomes the difficulties associated with landmark localization and shape normalization in ASM. We replace the shape constraint with the internal energy of ACM. The contour is constrained to an allowable space in FD domain (shape information) and cannot freely deform according to the external energy. Experimental results show a faster convergence in comparison to the original ACM and less user interaction in the training phase compared to ASM. Also, the resulting contours are more similar to the mean of the expert's manual segmentation.
机译:在本文中,我们专注于使用已知对象类别的形状信息将主动轮廓模型(ACM)与嘈杂场景中对象的边界进行匹配。解决该问题的方法是,在找到能量最小的活动轮廓的迭代过程中,在存在噪声的情况下找到两个相似的形状,在这些形状中,无法清晰区分所需对象的边缘。形状信息是通过变换,缩放和旋转不变傅立叶描述符(FD)获得的。在训练阶段,执行FD的主成分分析(PCA)以查找FD变化的模式。这不同于通过空间域中的点分布模型(PDM)处理形状的主动形状​​模型(ASM)。我们提出的方法克服了ASM中与地标定位和形状归一化相关的困难。我们用ACM的内部能量代替形状约束。轮廓被限制在FD域(形状信息)中的允许空间内,并且无法根据外部能量自由变形。实验结果表明,与原始ACM相比,收敛更快,与ASM相比,训练阶段的用户交互更少。同样,所得轮廓与专家手动分割的平均值更相似。

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