Indexing and retrieval of 3D models aided by active learning

Cha Zhang, Tsuhan Chen
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引用次数: 80

Abstract

We demonstrate a system for indexing and retrieval of 3D models aided by active learning. We propose a new set of region-based features for 3D models. Each model is treated as a solid volume with a uniform density. Features such as the volume-surface ratio, the moment invariants and the Fourier transform coefficients are efficiently calculated from the mesh model directly. Comparable retrieval performance is achieved with other features such as the cord histogram, the 3D shape spectrum, etc. To further improve the performance, we incorporate hidden annotation into our system. We propose to use active learning to improve the annotation efficiency. We show that with active learning, the system can perform better than random annotation, and the retrieval result improves rapidly with the number of annotated samples. Moreover, relevance feedback is included in the system and combined with active learning, which provides better user-adoptive retrieval results.
主动学习辅助下的三维模型索引与检索
我们展示了一个基于主动学习的三维模型索引和检索系统。我们提出了一套新的基于区域的三维模型特征。每个模型都被视为具有均匀密度的固体体积。直接从网格模型中有效地计算出体面比、矩不变量和傅里叶变换系数等特征。与其他特征如脐带直方图、三维形状谱等的检索性能相当。为了进一步提高性能,我们在系统中加入了隐藏注释。我们建议使用主动学习来提高标注效率。研究表明,通过主动学习,系统的检索效果优于随机标注,并且随着标注样本数量的增加,检索结果迅速提高。此外,将相关反馈纳入系统,并与主动学习相结合,提供了更好的用户自适应检索结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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