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首页> 外文期刊>IEEE Transactions on Image Processing >A Volumetric Approach to Point Cloud Compression—Part I: Attribute Compression
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A Volumetric Approach to Point Cloud Compression—Part I: Attribute Compression

机译:点云压缩的体积方法 - 第i部分:属性压缩

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摘要

Compression of point clouds has so far been confined to coding the positions of a discrete set of points in space and the attributes of those discrete points. We introduce an alternative approach based on volumetric functions, which are functions defined not just on a finite set of points, but throughout space. As in regression analysis, volumetric functions are continuous functions that are able to interpolate values on a finite set of points as linear combinations of continuous basis functions. Using a B-spline wavelet basis, we are able to code volumetric functions representing both geometry and attributes. Attribute compression is addressed in Part I of this paper, while geometry compression is addressed in Part II. Geometry is represented implicitly as the level set of a volumetric function (the signed distance function or similar). Experimental results show that geometry compression using volumetric functions improves over the methods used in the emerging MPEG Point Cloud Compression (G-PCC) standard.
机译:到目前为止,点云的压缩已经限制在空间中的离散点和这些离散点的属性中的位置编码。我们介绍了一种基于体积函数的替代方法,这些方法是不仅在有限一组点上定义的函数,而是整个空间。与回归分析一样,体积函数是能够在连续基本函数的线性组合上插入有限组点上的值的连续功能。使用B样曲线小波基础,我们能够代表几何和属性的模块函数。属性压缩在本文的第I部分中解决了,而在第二部分中解决了几何压缩。几何形状被隐式表示为容量函数的级别集(符号距离功能或类似)。实验结果表明,使用体积函数的几何压缩改善了新兴MPEG点云压缩(G-PCC)标准中使用的方法。

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