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Lior Yariv

7 accepted papers

2023

MultiDiffusion: Fusing Diffusion Paths for Controlled Image Generation

ICML 2023poster

Recent advances in text-to-image generation with diffusion models present transformative capabilities in image quality. However, user controllability of the generated image, and fast adaptation to new tasks still remains an open challenge, currently mostly addressed by costly and long re-training an…

2022

VisCo Grids: Surface Reconstruction with Viscosity and Coarea Grids

NeurIPS 2022accept

Surface reconstruction has been seeing a lot of progress lately by utilizing Implicit Neural Representations (INRs). Despite their success, INRs often introduce hard to control inductive bias (i.e., the solution surface can exhibit unexplainable behaviours), have costly inference, and are slow to tr…

Cited by 19SourcePDFScholar
2020

Implicit Geometric Regularization for Learning Shapes

ICML 2020poster

Representing shapes as level-sets of neural networks has been recently proved to be useful for different shape analysis and reconstruction tasks. So far, such representations were computed using either: (i) pre-computed implicit shape representations; or (ii) loss functions explicitly defined over t…

2020

Multiview Neural Surface Reconstruction by Disentangling Geometry and Appearance

NeurIPS 2020spotlight

In this work we address the challenging problem of multiview 3D surface reconstruction. We introduce a neural network architecture that simultaneously learns the unknown geometry, camera parameters, and a neural renderer that approximates the light reflected from the surface towards the camera. The…