Surface HOF: Surface Reconstruction from a Single Image Using Higher Order Function Networks
Ziyun Wang, Volkan Isler, Daniel D. Lee

TL;DR
Surface HOF introduces a neural network-based method for high-resolution, arbitrary-resolution surface reconstruction from a single image, outperforming existing methods in accuracy and efficiency.
Contribution
It presents a novel neural network framework that learns a continuous higher order function for surface reconstruction from a single image, enabling arbitrary resolution outputs.
Findings
More accurate surface reconstructions than state-of-the-art methods.
Efficient neural network representation requiring minimal pre- and post-processing.
Parameter-efficient and easier to train than existing approaches.
Abstract
We address the problem of generating a high-resolution surface reconstruction from a single image. Our approach is to learn a Higher Order Function (HOF) which takes an image of an object as input and generates a mapping function. The mapping function takes samples from a canonical domain (e.g. the unit sphere) and maps each sample to a local tangent plane on the 3D reconstruction of the object. Each tangent plane is represented as an origin point and a normal vector at that point. By efficiently learning a continuous mapping function, the surface can be generated at arbitrary resolution in contrast to other methods which generate fixed resolution outputs. We present the Surface HOF in which both the higher order function and the mapping function are represented as neural networks, and train the networks to generate reconstructions of PointNet objects. Experiments show that Surface HOF…
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Taxonomy
Topics3D Shape Modeling and Analysis · Advanced Numerical Analysis Techniques · Computer Graphics and Visualization Techniques
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