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A FAST METHOD FOR MEASURING THE SIMILARITY BETWEEN 3D MODEL AND 3D POINT CLOUD

机译:一种测量3D模型与3D点云相似性的快速方法

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This paper proposes a fast method for measuring the partial Similarity between 3D Model and 3D point Cloud (SimMC). It is crucial to measure SimMC for many point cloud-related applications such as 3D object retrieval and inverse procedural modelling. In our proposed method, the surface area of model and the Distance from Model to point Cloud (DistMC) are exploited as measurements to calculate SimMC. Here, DistMC is defined as the weighted distance of the distances between points sampled from model and point cloud. Similarly, Distance from point Cloud to Model (DistCM) is defined as the average distance of the distances between points in point cloud and model. In order to reduce huge computational burdens brought by calculation of DistCM in some traditional methods, we define SimMC as the ratio of weighted surface area of model to DistMC. Compared to those traditional SimMC measuring methods that are only able to measure global similarity, our method is capable of measuring partial similarity by employing distance-weighted strategy. Moreover, our method is able to be faster than other partial similarity assessment methods. We demonstrate the superiority of our method both on synthetic data and laser scanning data.
机译:本文提出了一种测量3D模型与3D点云(SIMMC)之间部分相似性的快速方法。对于诸如3D对象检索和逆过程建模等许多点云相关应用来说,测量SIMMC至关重要。在我们所提出的方法中,模型的表面积和从模型到点云(DISTMC)的距离被利用为计算SIMMC的测量值。这里,DISTMC被定义为从模型和点云采样的点之间的距离的加权距离。类似地,从点云到模型(DISTCM)的距离被定义为点云和模型中点之间的距离的平均距离。为了减少在某些传统方法中计算STORCM所带来的巨大计算负担,我们将SIMMC定义为模型的加权表面区域与DISTMC的比率。与仅能够测量全球相似性的传统SIMMC测量方法相比,我们的方法能够通过采用距离加权策略来测量部分相似度。此外,我们的方法能够比其他部分相似性评估方法更快。我们展示了我们在合成数据和激光扫描数据上的方法的优越性。

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