Convolutional Neural Shading for High-Quality 3D Reconstruction from Multi-View Images 文章

ArXiv CS.CV2026-07-31PAPERen作者: Juheon Hwang, Taewan Kim, Heeseok Oh, Jiwoo Kang

详细信息

来源站点
ArXiv CS.CV
作者
Juheon Hwang, Taewan Kim, Heeseok Oh, Jiwoo Kang
文章类型
PAPER
语言
en
发布日期
2026-07-31

摘要

arXiv:2607.28132v1 Announce Type: new Abstract: We propose a convolutional neural shading (CNS), a novel pipeline to reconstruct high-quality 3D shapes from multi-view images. Several recent studies have used neural radiance fields and other neural differentiable rendering methods to understand 3D geometry. However, these approaches rely on single-point geometric information, such as positions and normals of the surface, leading to a lack of detailed local geometry. Our approach addresses the inherent limitations of single-point information by leveraging a neural shader to capture variations even in dark and textureless regions with a convolutional neural shader, resulting in far more accurate geometry predictions.

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