Depth Completion Using a View-constrained Deep Prior

被引:5
|
作者
Ghosh, Pallabi [1 ]
Vineet, Vibhav [2 ]
Davis, Larry S. [1 ]
Shrivastava, Abhinav [1 ]
Sinha, Sudipta [2 ]
Joshi, Neel [2 ]
机构
[1] Univ Maryland, College Pk, MD 20742 USA
[2] Microsoft Res, Redmond, WA USA
关键词
D O I
10.1109/3DV50981.2020.00082
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Recent work has shown that the structure of convolutional neural networks (CNNs) induces a strong prior that favors natural images. This prior, known as a deep image prior (DIP), is an effective regularizer in inverse problems such as image denoising and inpainting. We extend the concept of the DIP to depth images. Given color images and noisy and incomplete target depth maps, we optimize a randomly-initialized CNN model to reconstruct a depth map restored by virtue of using the CNN network structure as a prior combined with a view-constrained photo-consistency loss. This loss is computed using images from a geometrically calibrated camera from nearby viewpoints. We apply this deep depth prior for inpainting and refining incomplete and noisy depth maps within both binocular and multi-view stereo pipelines. Our quantitative and qualitative evaluation shows that our refined depth maps are more accurate and complete, and after fusion, produces dense 3D models of higher quality.
引用
收藏
页码:723 / 733
页数:11
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