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Neill D. F. Campbell

5 accepted papers

2020

The GAN That Warped: Semantic Attribute Editing With Unpaired Data

CVPR 2020poster

Deep neural networks have recently been used to edit images with great success, in particular for faces. However, they are often limited to only being able to work at a restricted range of resolutions. Many methods are so flexible that face edits can often result in an unwanted loss of identity. Thi…

Cited by 27PDFScholar
2018

DiverseNet: When One Right Answer Is Not Enough

CVPR 2018poster

Many structured prediction tasks in machine vision have a collection of acceptable answers, instead of one definitive ground truth answer. Segmentation of images, for example, is subject to human labeling bias. Similarly, there are multiple possible pixel values that could plausibly complete occlude…

Cited by 38SourcePDFScholar
2018

Structured Uncertainty Prediction Networks

CVPR 2018poster

This paper is the first work to propose a network to predict a structured uncertainty distribution for a synthesized image. Previous approaches have been mostly limited to predicting diagonal covariance matrices. Our novel model learns to predict a full Gaussian covariance matrix for each reconstruc…

Cited by 81SourcePDFScholar
2015

Direct, Dense, and Deformable: Template-Based Non-Rigid 3D Reconstruction From RGB Video

ICCV 2015poster

In this paper we tackle the problem of capturing the dense, detailed 3D geometry of generic, complex non-rigid meshes using a single RGB-only commodity video camera and a direct approach. While robust and even real-time solutions exist to this problem if the observed scene is static, for non-rigid…

Cited by 115PDFScholar