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A Benchmark for Surface Reconstruction

机译:表面重建基准

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摘要

We present a benchmark for the evaluation and comparison of algorithms which reconstruct a surface from point cloud data. Although a substantial amount of effort has been dedicated to the problem of surface reconstruction, a comprehensive means of evaluating this class of algorithms is noticeably absent. We propose a simple pipeline for measuring surface reconstruction algorithms, consisting of three main phases: surface modeling, sampling, and evaluation. We use implicit surfaces for modeling shapes which are capable of representing details of varying size and sharp features. From these implicit surfaces, we produce point clouds by synthetically generating range scans which resemble realistic scan data produced by an optical triangulation scanner. We validate our synthetic sampling scheme by comparing against scan data produced by a commercial optical laser scanner, where we scan a 3D-printed version of the original surface. Last, we perform evaluation by comparing the output reconstructed surface to a dense uniformly distributed sampling of the implicit surface. We decompose our benchmark into two distinct sets of experiments. The first set of experiments measures reconstruction against point clouds of complex shapes sampled under a wide variety of conditions. Although these experiments are quite useful for comparison, they lack a fine-grain analysis. To complement this, the second set of experiments measures specific properties of surface reconstruction, in terms of sampling characteristics and surface features. Together, these experiments depict a detailed examination of the state of surface reconstruction algorithms.
机译:我们为评估和比较从点云数据重建曲面的算法提供了基准。尽管已经为表面重建问题投入了大量精力,但显然缺乏评估此类算法的综合方法。我们提出了一个用于测量表面重构算法的简单管道,该管道包括三个主要阶段:表面建模,采样和评估。我们使用隐式曲面来建模形状,这些形状能够表示变化的大小和鲜明特征的细节。通过这些隐式曲面,我们通过合成生成范围扫描来生成点云,这些范围扫描类似于光学三角测量扫描仪生成的真实扫描数据。我们通过与商用光学激光扫描仪产生的扫描数据进行比较来验证我们的合成采样方案,在此我们扫描原始表面的3D打印版本。最后,我们通过将输出重构表面与隐式表面的密集均匀分布采样进行比较来执行评估。我们将基准分解为两组不同的实验。第一组实验测量针对在多种条件下采样的复杂形状的点云的重构。尽管这些实验对于比较而言非常有用,但它们缺乏细粒度的分析。作为补充,第二组实验根据采样特征和表面特征来测量表面重建的特定属性。这些实验共同描绘了表面重建算法状态的详细检查。

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