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A Generalized Hausdorff Distance Based Quality Metric for Point Cloud Geometry

机译:基于广义Hausdorff距离的点云几何质量度量

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Reliable quality assessment of decoded point cloud geometry is essential to evaluate the compression performance of emerging point cloud coding solutions and guarantee some target quality of experience. This paper proposes a novel point cloud geometry quality assessment metric based on a generalization of the Hausdorff distance. To achieve this goal, the so-called generalized Hausdorff distance for multiple rankings is exploited to identify the best performing quality metric in terms of correlation with the MOS scores obtained from a subjective test campaign. The experimental results show that the quality metric derived from the classical Hausdorff distance leads to low objective-subjective correlation and, thus, fails to accurately evaluate the quality of decoded point clouds for emerging codecs. However, the quality metric derived from the generalized Hausdorff distance with an appropriately selected ranking, outperforms the MPEG adopted geometry quality metrics when decoded point clouds with different types of coding distortions are considered.
机译:可靠的解码点云几何形状质量评估对于评估新兴点云编码解决方案的压缩性能并保证一定的目标体验质量至关重要。本文基于Hausdorff距离的推广,提出了一种新颖的点云几何质量评估指标。为了实现此目标,利用了针对多个排名的所谓广义H​​ausdorff距离,以根据与从主观测试活动中获得的MOS得分的相关性来确定最佳性能的质量度量。实验结果表明,基于经典Hausdorff距离的质量度量导致客观-主观相关性较低,因此无法准确评估新兴编解码器的解码点云质量。但是,从广义Hausdorff距离衍生自具有适当选择的居质量度量优于MPEG采用几何质量度量时与不同类型的编码失真的解码点云被考虑。

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