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A Comparative Study Among Various Algorithms for Lossless Airborne LiDAR Data Compression

机译:机载LiDAR数据无损压缩各种算法的比较研究

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Airborne LiDAR scanning systems are one of the most advanced remote sensing systems. They are capable to rapidly cover large geographical areas to gather data from with very high precision and great density. As a result, obtained datasets can contain tens of millions of points which consume more than a gigabyte per square kilometers (GB/km2). In practice, significant problems had been issued such as expensive storage, difficult distribution to the users, and time-consuming exchange over the internet and data processing and display time. For these reasons, LiDAR data compression has become recently a critical issue. In this paper, we compared three LiDAR domain-specific compression algorithms (LASzip, LASComp, and LiDAR Compressor) against three general-purpose compression algorithms (7-Zip, WinZip, and WinRAR). We have used real Airborne LiDAR point clouds data for Washington, DC (District of Columbia) for doing the experiments to reflect real LiDAR data compression issues. In this work, the algorithms had been evaluated in terms of Compression Ratios, Compression Times, and Bits per Point. Also, we have evaluated effects of point cloud density and number of contained points on the compression efficiency. Experiment results indicated that LASzip algorithm outperforms other algorithms with average compression ratio achieved 16.63% and average compression time achieved 16.65 sec. on the other hand, the general-purpose compression algorithm (WinRAR) surpass the LiDAR domain-specific compression algorithm (LiDAR Compressor) with compression ratio achieved 20.24%.
机译:机载LiDAR扫描系统是最先进的遥感系统之一。它们能够快速覆盖较大的地理区域,以非常高的精度和高密度来收集数据。结果,获得的数据集可以包含数千万个点,这些点的消耗量超过每平方公里(GB / km2)千兆字节。在实践中,已经发布了重大问题,例如昂贵的存储,难以分发给用户以及在Internet上进行费时的交换以及数据处理和显示时间。由于这些原因,LiDAR数据压缩最近已成为一个关键问题。在本文中,我们将三种特定于LiDAR域的压缩算法(LASzip,LASComp和LiDAR Compressor)与三种通用压缩算法(7-Zip,WinZip和WinRAR)进行了比较。我们已经使用华盛顿特区(哥伦比亚特区)的真实机载LiDAR点云数据进行了实验,以反映真实的LiDAR数据压缩问题。在这项工作中,已经根据压缩率,压缩时间和每点位数对算法进行了评估。此外,我们评估了点云密度和包含点数对压缩效率的影响。实验结果表明,LASzip算法的性能优于其他算法,平均压缩率达到16.63%,平均压缩时间达到16.65 sec。另一方面,通用压缩算法(WinRAR)超过了LiDAR领域专用压缩算法(LiDAR Compressor),压缩率达到20.24%。

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