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Image segmentation with adaptive region growing based on a polynomial surface model

机译:基于多项式曲面模型的自适应区域生长图像分割

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摘要

A new method for segmenting intensity images into smooth surface segments is presented. The main idea is to divide the image into flat, planar, convex, concave, and saddle patches that coincide as well as possible with meaningful object features in the image. Therefore, we propose an adaptive region growing algorithm based on low-degree polynomial fitting. The algorithm uses a new adaptive thresholding technique with the L∞ fitting cost as a segmentation criterion. The polynomial degree and the fitting error are automatically adapted during the region growing process. The main contribution is that the algorithm detects outliers and edges, distinguishes between strong and smooth intensity transitions and finds surface segments that are bent in a certain way. As a result, the surface segments corresponding to meaningful object features and the contours separating the surface segments coincide with real-image object edges. Moreover, the curvature-based surface shape information facilitates many tasks in image analysis, such as object recognition performed on the polynomial representation. The polynomial representation provides good image approximation while preserving all the necessary details of the objects in the reconstructed images. The method outperforms existing techniques when segmenting images of objects with diffuse reflecting surfaces.
机译:提出了一种将强度图像分割为光滑表面的新方法。主要思想是将图像分为平坦的,平面的,凸的,凹的和鞍形的补丁,这些补丁应尽可能与图像中有意义的对象特征相吻合。因此,我们提出了一种基于低次多项式拟合的自适应区域增长算法。该算法使用一种新的自适应阈值技术,其中L∞拟合成本为分割标准。在区域增长过程中会自动调整多项式次数和拟合误差。该算法的主要作用在于,该算法可以检测离群值和边缘,区分强和平滑的强度过渡,并找到以某种方式弯曲的曲面段。结果,对应于有意义的物体特征的表面片段以及将表面片段分开的轮廓与真实图像物体边缘重合。此外,基于曲率的表面形状信息有助于图像分析中的许多任务,例如对多项式表示法执行的对象识别。多项式表示法提供了良好的图像逼近效果,同时保留了重建图像中对象的所有必要细节。当分割具有漫反射表面的对象的图像时,该方法优于现有技术。

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