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EvaSurf: Efficient View-Aware Implicit Textured Surface Reconstruction

delete2024-01-01
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PRE
AI
J
Jingnan Gao
Z
Zhuo Chen
Y
Yichao Yan
B
Bowen Pan
Z
Zhe Wang
J
Jiangjing Lyu
X
Xiaokang Yang
DOI:10.1109/TVCG.2024.3508712delete
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Abstract

Abstract

En 中文
Reconstructing real-world 3D objects has numerous applications in computer vision, such as virtual reality, video games, and animations. Ideally, 3D reconstruction methods should generate high-fidelity results with 3D consistency in real-time. Traditional methods match pixels between images using photo-consistency constraints or learned features, while differentiable rendering methods like Neural Radiance Fields (NeRF) use differentiable volume rendering or surface-based representation to generate high-fidelity scenes. However, these methods require excessive runtime for rendering, making them impractical for daily applications. To address these challenges, we present EvaSurf, an Efficient View-Aware implicit textured Surface reconstruction method on mobile devices. In our method, we first employ an efficient surface-based model with a multi-view supervision module to ensure accurate mesh reconstruction. To enable high-fidelity rendering, we learn an implicit texture embedded with view-aware encoding to capture view-dependent information. Furthermore, with the explicit geometry and the implicit texture, we can employ a lightweight neural shader to reduce the expense of computation and further support real-time rendering on common mobile devices. Extensive experiments demonstrate that our method can reconstruct high-quality appearance and accurate mesh on both synthetic and real-world datasets. Moreover, our method can be trained in just 1-2 hours using a single GPU and run on mobile devices at over 40 FPS (Frames Per Second), with a final package required for rendering taking up only 40–50 MB.
Keywords:
3D reconstruction
mobile applications

Journal

IEEE Transactions on Visualization and Computer Graphics cover
IEEE Transactions on Visualization and Computer Graphics
IF:
6.5
Papers:
294
Citations:
2.2W

Organization

A
alibaba group, zhejiang, china
Scholars:
3
Papers: 1
Citations: 0
S
shanghai jiao tong university
Scholars:
15.5W
Papers: 11.6W
Citations: 159