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Mesh denoising by improved 3D geometric bilateral filter

机译:通过改进的3D几何双边滤波器对网格进行去噪

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摘要

We present an improved mesh denoising method based on 3D geometric bilateral filtering. Its novelty is that it can preserve the details of the object as well as reduce the noise in an effective manner. The previous approach of geometric bilateral filtering for 3D-scan points has a limitation that it reduces the point density, thereby losing the details present in the object. The approach proposed by us, on the contrary, works on the surface mesh obtained after triangulating the 3D-scan points without any data downsampling. Each vertex of the mesh is repositioned appropriately based on the estimated centroid of the vertices in its local neighborhood and a Gaussian weight function. Experimental results demonstrate its strength, efficiency, and robustness.
机译:我们提出了一种基于3D几何双边滤波的改进的网格降噪方法。它的新颖之处在于它可以保留对象的细节,并以有效的方式减少噪音。用于3D扫描点的几何双边过滤的先前方法存在局限性,即它降低了点密度,从而丢失了对象中存在的细节。相反,我们提出的方法适用于对3D扫描点进行三角剖分后获得的表面网格,而无需进行任何数据下采样。网格的每个顶点都基于其局部邻域中顶点的估计质心和高斯权重函数进行适当地重定位。实验结果证明了它的强度,效率和鲁棒性。

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