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Donald A. Adjeroh

3 accepted papers

2017

Unified Deep Supervised Domain Adaptation and Generalization

ICCV 2017poster

This work addresses the problem of domain adaptation and generalization in a unified fashion. The main idea is to exploit the siamese architecture with the Contrastive Loss to address the domain shift and generalization problems. The framework is general, and can be used with any architecture. One o…

Cited by 1065PDFScholar
2016

Information Bottleneck Learning Using Privileged Information for Visual Recognition

CVPR 2016poster

We explore the visual recognition problem from a main data view when an auxiliary data view is available during training. This is important because it allows improving the training of visual classifiers when paired additional data is cheaply available, and it improves the recognition from multi-view…

Cited by 74PDFScholar