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Comparison of 3D local and global descriptors for similarity retrieval of range data

机译:比较3D局部和全局描述符以进行距离数据的相似性检索

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摘要

Recent improvements in scanning technologies such as consumer penetration of RGB-D cameras lead obtaining and managing range image databases practical. Hence, the need for describing and indexing such data arises. In this study, we focus on similarity indexing of range data among a database of range objects (range-to-range retrieval) by employing only single view depth information. We utilize feature based approaches both on local and global scales. However, the emphasis is on the local descriptors with their global representations. A comparative study with extensive experimental results is presented. In addition, we introduce a publicly available range object database which is large and has a high diversity that is suitable for similarity retrieval applications. The simulation results indicate competitive performance between local and global methods. While better complexity trade-off can be achieved with the global techniques, local methods perform better in distinguishing different parts of incomplete depth data. (C) 2015 Elsevier B.V. All rights reserved.
机译:扫描技术的最新改进(例如消费者对RGB-D照相机的渗透)使获取和管理范围图像数据库变得切实可行。因此,出现了描述和索引这种数据的需求。在这项研究中,我们专注于通过仅使用单个视图深度信息在范围对象数据库(范围到范围检索)中范围数据的相似性索引。我们在本地和全球范围内都采用基于特征的方法。但是,重点是带有全局表示的局部描述符。提出了具有广泛实验结果的比较研究。另外,我们介绍了一个公开可用的范围对象数据库,该数据库很大并且具有很高的多样性,适合于相似性检索应用程序。仿真结果表明了本地方法和全局方法之间的竞争性能。虽然可以使用全局技术实现更好的复杂性权衡,但是局部方法在区分不完整深度数据的不同部分时表现更好。 (C)2015 Elsevier B.V.保留所有权利。

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