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Sub-Pixel Accuracy Edge Fitting by Means of B-Spline

机译:借助于B样条型子像素精度边缘拟合

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Local perturbations around contours strongly disturb the final result of computer vision tasks. It is common to introduce a priori information in the estimation process. Improvement can be achieved via a deformable model such as the snake model. In recent works, the deformable contour is modeled by means of B-spline snakes which allows local control, concise representation, and the use of fewer parameters. The estimation of the sub-pixel edges using a global B-spline model relies on the contour global determination according to a Maximum Likelihood framework and using the observed data likelihood. This procedure guarantees that the noisiest data will be filtered out. The data likelihood is computed as a consequence of the observation model which includes both orientation and position information. Comparative experiments of this algorithm and the classical spline interpolation have shown that the proposed algorithm outperforms the classical approach for Gaussian and Salt & Pepper noise.
机译:轮廓周围的当地扰动强烈扰乱了计算机视觉任务的最终结果。常见的是在估计过程中引入先验信息。可以通过诸如蛇模型的可变形模型来实现改进。在最近的作用中,可变形轮廓通过B样条蛇建模,允许局部控制,简洁表示和使用更少的参数。使用全局B样条模型估计子像素边缘依赖于根据最大似然框架和使用观察到的数据似然性的轮廓全局确定。此过程保证最嘈杂的数据将被过滤掉。根据包括定向和位置信息的观察模型来计算数据似然性。该算法的比较实验和经典样条插值表明,所提出的算法优于高斯和盐和胡椒噪声的经典方法。

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