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Optimizing Image Registration for Interactive Applications

机译:优化交互式应用程序的图像注册

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摘要

With the spread of wearable and mobile devices, the request for interactive augmented reality applications is in constant growth. Among the different possibilities, we focus on the cultural heritage domain where a key step in the development applications for augmented cultural experiences is to obtain a precise localization of the user, i.e. the 6 degree-of-freedom of the camera acquiring the images used by the application. Current state of the art perform this task by extracting local descriptors from a query and exhaustively matching them to a sparse 3D model of the environment. While this procedure obtains good localization performance, due to the vast search space involved in the retrieval of 2D-3D correspondences this is often not feasible in real-time and interactive environments. In this paper we hence propose to perform descriptor quantization to reduce the search space and employ multiple KD-Trees combined with a principal component analysis dimensionality reduction to enable an efficient search. We experimentally show that our solution can halve the computational requirements of the correspondence search with regard to the state of the art while maintaining similar accuracy levels.
机译:随着可穿戴设备和移动设备的扩展,对交互式增强现实应用的要求处于恒定的增长。在不同的可能性中,我们专注于文化遗产域,其中增强文化体验的开发应用的关键步骤是获得用户的精确定位,即相机的6自由度获取所使用的图像应用程序。本领域的当前状态通过从查询中提取本地描述符并彻底匹配到环境的稀疏3D模型来执行此任务。虽然此过程获得了良好的本地化性能,但由于2D-3D对应的检索中涉及的广泛搜索空间,这通常在实时和交互式环境中往往是不可行的。在本文中,我们建议执行描述符量化以减少搜索空间,并采用多个KD树与主要成分分析维度降低,以实现有效的搜索。我们通过实验表明,我们的解决方案可以在保持类似的准确度水平的同时将对应于最新的函件的计算要求降低。

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