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Efficient contour representation and estimation using image segmentation and second-order B-spline descriptors

机译:使用图像分割和二阶B样条描述符的高效轮廓表示和估计

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A novel algorithm is presented for segmentation and approximation of object boundaries using edge detection and periodic second-order B-splines. A rectangular region of interest containing the closed object boundary is defined. Segmentation is done and the target contour is identified followed by smoothing and the extraction of geometrical properties. Iteration is minimal and the error criterion is defined as a 1-pixel tolerance band around the contour. Unlike other active contour algorithms, the order of parameterization is unsupervised and the only [f3]a priori [f2]condition is the rectangular region of interest. The computational efficiency of this algorithm surpasses that of other active contours. The experiments reported in the paper, performed on MR (Magnetic Resonance) images, illustrate the adequacy and good performance of this approach.
机译:呈现了使用边缘检测和周期性二阶B样条分割和对象边界的分割和近似的新颖算法。定义了包含闭合对象边界的矩形区域。完成分割,并识别目标轮廓,然后进行平滑,并提取几何特性。迭代是最小的,并且误差标准被定义为轮廓周围的1像素公差带。与其他活动轮廓算法不同,参数化的顺序是无监督的,并且唯一的[F3] a先验[F2]条件是矩形的感兴趣区域。该算法的计算效率超过了其他活动轮廓的效率。本文报告的实验,对MR(磁共振)图像进行,说明了这种方法的充分性和良好性能。

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