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A neural refinement network for single image view synthesis

机译:一种用于单图像视图合成的神经细化网络

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摘要

Recent years have seen an increasing interest in single image view synthesis. It remains however a challenging task due to the lack of comprehensive colour and depth information from different views. In this paper, we propose a novel view synthesis approach that incorporates a Neural Image Refinement Network (NIRN) and generates both depth and colour images for the target view in an end-to-end manner. The appearance of the colour image greatly benefits from the generated depth image as it provides an intermediate projection relationship for the object in the 3D world. Since the direct application of geometric projection mapping will result in empty regions and/or distortions, our approach proposes to embed a novel refinement network into the view synthesis pipeline for improved performance. Experimental results on three publicly available datasets demonstrate that our NIRN outperforms other state-of-the-art view synthesis methods.CO 2022 Published by Elsevier B.V.
机译:近年来,人们对单图像视图合成的兴趣日益浓厚。然而,由于缺乏来自不同视角的全面颜色和深度信息,这仍然是一项具有挑战性的任务。在本文中,我们提出了一种新的视图合成方法,该方法结合了神经图像细化网络(NIRN),并以端到端的方式为目标视图生成深度和彩色图像。彩色图像的外观极大地受益于生成的深度图像,因为它为对象在 3D 世界中提供了中间投影关系。由于直接应用几何投影映射会导致空白区域和/或失真,因此我们的方法建议将新颖的细化网络嵌入到视图合成管道中以提高性能。在三个公开数据集上的实验结果表明,我们的 NIRN 优于其他最先进的视图合成 methods.CO 2022 Published by Elsevier B.V.

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