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Fereshteh Forghani

3 accepted papers

2025

Can Generative Models Improve Self-Supervised Representation Learning?

AAAI 2025technical

The rapid advancement in self-supervised representation learning has highlighted its potential to leverage unlabeled data for learning rich visual representations. However, the existing techniques, particularly those employing different augmentations of the same image, often rely on a limited set of…

2024

PolyOculus: Simultaneous Multi-view Image-based Novel View Synthesis

ECCV 2024poster

"This paper considers the problem of generative novel view synthesis (GNVS), generating novel, plausible views of a scene given a limited number of known views. Here, we propose a set-based generative model that can simultaneously generate multiple, self-consistent new views, conditioned on any numb…

2023

Long-Term Photometric Consistent Novel View Synthesis with Diffusion Models

ICCV 2023poster

Novel view synthesis from a single input image is a challenging task, where the goal is to generate a new view of a scene from a desired camera pose that may be separated by a large motion. The highly uncertain nature of this synthesis task due to unobserved elements within the scene (i.e. occlusion…

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