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Recognition and Reconstruction of Transparent Objects for Augmented Reality

机译:用于增强现实的透明物体的识别和重建

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摘要

Dealing with real transparent objects for AR is challenging due to their lack of texture and visual features as well as the drastic changes in appearance as the background, illumination and camera pose change. The few existing methods for glass object detection usually require a carefully controlled environment, specialized illumination hardware or ignore information from different viewpoints.In this work, we explore the use of a learning approach for classifying transparent objects from multiple images with the aim of both discovering such objects and building a 3D reconstruction to support convincing augmentations. We extract, classify and group small image patches using a fast graph-based segmentation and employ a probabilistic formulation for aggregating spatially consistent glass regions. We demonstrate our approach via analysis of the performance of glass region detection and example 3D reconstructions that allow virtual objects to interact with them.
机译:由于AR缺乏质感和视觉特征,而且随着背景,照明和相机姿势的变化,外观也发生了急剧变化,因此处理用于AR的真实透明物体是一项挑战。现有的几种用于检测玻璃物体的方法通常需要精心控制的环境,专用的照明硬件或忽略不同观点的信息。在本工作中,我们探索使用一种学习方法对多个图像中的透明物体进行分类,以期发现这样的对象,并构建3D重建以支持令人信服的扩充。我们使用基于图形的快速分割来提取,分类和分组小图像斑块,并采用概率公式汇总空间一致的玻璃区域。我们通过分析玻璃区域检测的性能以及允许虚拟对象与之交互的示例3D重建来演示我们的方法。

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