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Robust estimation for range image segmentation and reconstruction

机译:范围图像分割和重建的鲁棒估计

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This correspondence presents a segmentation and fitting method using a new robust estimation technique. We present a robust estimation method with high breakdown point which can tolerate more than 80% of outliers. The method randomly samples appropriate range image points in the current processing region and solves equations determined by these points for parameters of selected primitive type. From K samples, we choose one set of sample points that determines a best-fit equation for the largest homogeneous surface patch in the region. This choice is made by measuring a residual consensus (RESC), using a compressed histogram method which is effective at various noise levels. After we get the best-fit surface parameters, the surface patch can be segmented from the region and the process is repeated until no pixel left. The method segments the range image into planar and quadratic surfaces. The RESC method is a substantial improvement over the least median squares method by using histogram approach to inferring residual consensus. A genetic algorithm is also incorporated to accelerate the random search.
机译:该对应关系提出了使用新的鲁棒估计技术的分段和拟合方法。我们提出了一种具有高故障点的鲁棒估计方法,该方法可以容忍超过80%的异常值。该方法在当前处理区域中随机采样适当范围的图像点,并针对选定的原始类型的参数求解由这些点确定的方程式。从K个样本中,我们选择一组样本点,以确定该区域中最大的均匀表面斑的最佳拟合方程。通过使用压缩直方图方法测量残余共识(RESC)来做出选择,该方法在各种噪声水平下均有效。在获得最适合的表面参数之后,可以从该区域中分割出表面补丁,并重复该过程直到没有像素为止。该方法将范围图像分割为平面和二次曲面。通过使用直方图方法来推断残差共识,RESC方法是对最小均方平方方法的实​​质改进。遗传算法也被并入以加速随机搜索。

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