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Document type:
Zeitschriftenaufsatz
Author(s):
Dhamo, H.; Tateno, K.; Laina, I.; Navab, N.; Tombari, F.
Title:
Peeking Behind Objects: Layered Depth Prediction from a Single Image
Abstract:
While conventional depth estimation can infer the geometry of a scene from a single RGB image, it fails to estimate scene regions that are occluded by foreground objects. This limits the use of depth prediction in augmented and virtual reality applications, that aim at scene exploration by synthesizing the scene from a different vantage point, or at diminished reality. To address this issue, we shift the focus from conventional depth map prediction to the regression of a specific data representa...     »
Keywords:
Layered depth image, RGB-D inpainting, Generative adversarial networks, Occlusion
Journal title:
Pattern Recognition Letters
Year:
2019
Journal volume:
125
Pages contribution:
333--340
Fulltext / DOI:
doi:10.1016/j.patrec.2019.05.007
Print-ISSN:
0167-8655
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