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Isabella Liu

5 accepted papers

2024

MeshFormer : High-Quality Mesh Generation with 3D-Guided Reconstruction Model

NeurIPS 2024oral

Open-world 3D reconstruction models have recently garnered significant attention. However, without sufficient 3D inductive bias, existing methods typically entail expensive training costs and struggle to extract high-quality 3D meshes. In this work, we introduce MeshFormer, a sparse-view reconstruct…

2023

OpenIllumination: A Multi-Illumination Dataset for Inverse Rendering Evaluation on Real Objects

NeurIPS 2023poster

We introduce OpenIllumination, a real-world dataset containing over 108K images of 64 objects with diverse materials, captured under 72 camera views and a large number of different illuminations. For each image in the dataset, we provide accurate camera parameters, illumination ground truth, and for…

2023

TensoIR: Tensorial Inverse Rendering

CVPR 2023poster

We propose TensoIR, a novel inverse rendering approach based on tensor factorization and neural fields. Unlike previous works that use purely MLP-based neural fields, thus suffering from low capacity and high computation costs, we extend TensoRF, a state-of-the-art approach for radiance field modeli…

2022

ActiveZero: Mixed Domain Learning for Active Stereovision With Zero Annotation

CVPR 2022poster

Traditional depth sensors generate accurate real world depth estimates that surpass even the most advanced learning approaches trained only on simulation domains. Since ground truth depth is readily available in the simulation domain but quite difficult to obtain in the real domain, we propose a met…

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