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English(EN) Extracting Neural Materials from Multi-view Images

新方法从图像中提取复杂神经材质

研究人员开发了NeuMatEx,一种新颖的可微分逆渲染方法,旨在从多视图图像中提取复杂的神经材质。该方法利用大型材质重建模型(LMRM)来预测初始材质属性和潜在表示,然后指导逆路径追踪优化。该方法旨在克服表示和创作复杂镜面反射和散射效应的挑战,与传统的基于物理的渲染技术相比,可提供更高的视觉质量和材质分解能力。 AI

影响 这项研究可能带来更逼真、更高效的计算机图形学和模拟中的材质创建。

排序理由 该集群包含一篇详细介绍从图像中提取神经材质新方法的论文。

在 arXiv cs.CV 阅读 →

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新方法从图像中提取复杂神经材质

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报道来源 [3]

  1. Hugging Face Daily Papers TIER_1 English(EN) ·

    从多视图图像中提取神经材料

    Neural materials can represent complex specular reflections and scattering effects in a compact, universal basis. However, acquiring and authoring such materials remains challenging. We present NeuMatEx, a differentiable inverse rendering method for extracting spatially varying n…

  2. arXiv cs.CV TIER_1 English(EN) · Kim Youwang, Jon Hasselgren, Peter Kocsis, Andrea Weidlich, Tae-Hyun Oh, Jacob Munkberg ·

    从多视图图像中提取神经材料

    arXiv:2606.26715v1 Announce Type: new Abstract: Neural materials can represent complex specular reflections and scattering effects in a compact, universal basis. However, acquiring and authoring such materials remains challenging. We present NeuMatEx, a differentiable inverse ren…

  3. arXiv cs.CV TIER_1 English(EN) · Jacob Munkberg ·

    从多视角图像中提取神经材料

    Neural materials can represent complex specular reflections and scattering effects in a compact, universal basis. However, acquiring and authoring such materials remains challenging. We present NeuMatEx, a differentiable inverse rendering method for extracting spatially varying n…