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Noise Intensity-Based Denoising of Point-Sampled Geometry

机译:基于噪声强度的点采样几何的去噪

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摘要

A denoising algorithm for point-sampled geometry is proposed based on noise intensity. The noise intensity of each point on point-sampled geometry (PSG) is first measured by using a combined criterion. Based on mean shift clustering, the PSG is then clustered in terms of the local geometry-features similarity. According to the cluster to which a sample point belongs, a moving least squares surface is constructed, and in combination with noise intensity, the PSG is finally denoised. Some experimental results demonstrate that the algorithm is robust, and can denoise the noise efficiently while preserving the surface features.
机译:基于噪声强度提出了一种用于点采样几何体的去噪算法。首先通过使用组合标准测量点采样几何形状(PSG)上的每个点的噪声强度。基于平均移位聚类,然后根据本地几何特征相似性聚集PSG。根据采样点所属的簇,构造移动最小二乘表面,并且与噪声强度结合,最终被置于噪声强度。一些实验结果表明该算法具有稳健性,并且可以在保持表面特征的同时有效地噪音。

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