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Menghua Zhai

4 accepted papers

2018

Learning to Look around Objects for Top-View Representations of Outdoor Scenes

ECCV 2018poster

Given a single RGB image of a complex outdoor road scene in the perspective view, we address the novel problem of estimating an occlusion-reasoned semantic scene layout in the top-view. This challenging problem not only requires an accurate understanding of both the 3D geometry and the semantics of…

Cited by 95SourcePDFScholar
2017

Predicting Ground-Level Scene Layout From Aerial Imagery

CVPR 2017poster

We introduce a novel strategy for learning to extract semantically meaningful features from aerial imagery. Instead of manually labeling the aerial imagery, we propose to predict (noisy) semantic features automatically extracted from co-located ground imagery. Our network architecture takes an aeria…

Cited by 282PDFcodeScholar
2016

Detecting Vanishing Points Using Global Image Context in a Non-Manhattan World

CVPR 2016spotlight

We propose a novel method for detecting horizontal vanishing points and the zenith vanishing point in man-made environments. The dominant trend in existing methods is to first find candidate vanishing points, then remove outliers by enforcing mutual orthogonality. Our method reverses this process: w…

Cited by 138PDFScholar