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Ambareesh Revanur

5 accepted papers

2023

CoralStyleCLIP: Co-Optimized Region and Layer Selection for Image Editing

CVPR 2023poster

Edit fidelity is a significant issue in open-world controllable generative image editing. Recently, CLIP-based approaches have traded off simplicity to alleviate these problems by introducing spatial attention in a handpicked layer of a StyleGAN. In this paper, we propose CoralStyleCLIP, which incor…

Cited by 16SourcePDFScholar
2020

Class-Incremental Domain Adaptation

ECCV 2020poster

We introduce a practical Domain Adaptation (DA) paradigm called Class-Incremental Domain Adaptation (CIDA). Existing DA methods tackle domain-shift but are unsuitable for learning novel target-domain classes. Meanwhile, class-incremental (CI) methods enable learning of new classes in absence of sour…

Cited by 69SourcePDFScholar
2020

Towards Inheritable Models for Open-Set Domain Adaptation

CVPR 2020oral

There has been a tremendous progress in Domain Adaptation (DA) for visual recognition tasks. Particularly, open-set DA has gained considerable attention wherein the target domain contains additional unseen categories. Existing open-set DA approaches demand access to a labeled source dataset along wi…

Cited by 156PDFcodeScholar
2020

Unsupervised Cross-Modal Alignment for Multi-Person 3D Pose Estimation

ECCV 2020poster

We present a deployment friendly, fast bottom-up framework for multi-person 3D human pose estimation. We adopt a novel neural representation of multi-person 3D pose which unifies the position of person instances with their corresponding 3D pose representation. This is realized by learning a generati…

Cited by 29SourcePDFScholar
2020

Your Classifier can Secretly Suffice Multi-Source Domain Adaptation

NeurIPS 2020poster

Multi-Source Domain Adaptation (MSDA) deals with the transfer of task knowledge from multiple labeled source domains to an unlabeled target domain, under a domain-shift. Existing methods aim to minimize this domain-shift using auxiliary distribution alignment objectives. In this work, we present a d…

Cited by 97SourcePDFScholar