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Clement Godard

3 accepted papers

2019

Digging Into Self-Supervised Monocular Depth Estimation

ICCV 2019poster

Per-pixel ground-truth depth data is challenging to acquire at scale. To overcome this limitation, self-supervised learning has emerged as a promising alternative for training models to perform monocular depth estimation. In this paper, we propose a set of improvements, which together result in both…

Cited by 2896PDFcodeScholar
2017

Unsupervised Monocular Depth Estimation With Left-Right Consistency

CVPR 2017oral

Learning based methods have shown very promising results for the task of depth estimation in single images. However, most existing approaches treat depth prediction as a supervised regression problem and as a result, require vast quantities of corresponding ground truth depth data for training. Just…

Cited by 3871PDFcodeScholar