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Exploring Stereovision-Based 3-D Scene Reconstruction for Augmented Reality

机译:探索基于立体视图的三维场景重建,以实现增强现实

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Three-dimensional (3-D) scene reconstruction is one of the key techniques in Augmented Reality (AR), which is related to the integration of image processing and display systems of complex information. Stereo matching is a computer vision based approach for 3-D scene reconstruction. In this paper, we explore an improved stereo matching network, SLED-Net, in which a Single Long Encoder-Decoder is proposed to replace the stacked hourglass network in PSM-Net for better contextual information learning. We compare SLED-Net to state-of-the-art methods recently published, and demonstrate its superior performance on Scene Flow and KITTI2015 test sets.
机译:三维(3-D)场景重建是增强现实(AR)中的关键技术之一,其与复杂信息的图像处理和显示系统的集成有关。立体匹配是一种基于计算机视觉的三维场景重建方法。在本文中,我们探索了一种改进的立体声匹配网络,SLED-net,其中提出了单个长编码器解码器,以替换PSM-Net中的堆叠沙漏网络以获得更好的上下文信息学习。我们将雪橇网与最近发表的最先进的方法进行比较,并展示其在场景流程和基提2015测试集上的优越性。

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