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OPTIMAL BOUNDARY DETECTION ON GREY-TONE IMAGE

机译:灰度图像的最佳边界检测

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摘要

The paper is devoted to the problem of optimal boundary detection for a two-object image. The objects have different average brightnesses under conditions of stationary noise. There is no a priori information about the average brightness of the objects, the type and parameters of noise density distribution functions, the shapes of the objects or the boundary length. However, the location of an initial point belonging to an object contour is presumed to be known. It is shown that an unknown contour line can only be found among level lines. A graph is constructed from a group of level lines passing through the initial point. The problem of finding the optimal path on the graph is solved according to a pre-defined quality criterion. The investigation included previously known criteria (maximization of gradient sums, the average gradient maximization) as well as some proposed by the authors (average risk minimization, as applied to a segmentation task, and alternative choice). The efficiency of the criteria is tested on a set of image models with different signal-to-noise ratios. An effective suboptimal tracking algorithm is developed for practical tasks of grey-tone image segmentation. (C) 1997 Pattern Recognition Society. [References: 32]
机译:本文致力于解决两物体图像的最优边界检测问题。在平稳噪声条件下,物体的平均亮度不同。没有关于物体的平均亮度,噪声密度分布函数的类型和参数,物体的形状或边界长度的先验信息。然而,假定属于对象轮廓的初始点的位置是已知的。结果表明,未知的轮廓线只能在水平线之间找到。由一组通过初始点的水平线构造图形。根据预定的质量标准解决了在图上找到最佳路径的问题。研究包括先前已知的标准(梯度总和的最大化,平均梯度的最大化)以及作者提出的一些标准(应用于分段任务的平均风险最小化和替代选择)。在一组具有不同信噪比的图像模型上测试了标准的效率。针对灰度图像分割的实际任务,开发了一种有效的次优跟踪算法。 (C)1997模式识别学会。 [参考:32]

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