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DMESH:一种用于三维网格去噪的结构保留扩散模型。

DMESH: A Structure-Preserving Diffusion Model for 3-D Mesh Denoising.

作者信息

Lee Seongmin, Heo Suwoong, Lee Sanghoon

出版信息

IEEE Trans Neural Netw Learn Syst. 2025 Mar;36(3):4385-4399. doi: 10.1109/TNNLS.2024.3367327. Epub 2025 Feb 28.

Abstract

Denoising diffusion models have shown a powerful capacity for generating high-quality image samples by progressively removing noise. Inspired by this, we present a diffusion-based mesh denoiser that progressively removes noise from mesh. In general, the iterative algorithm of diffusion models attempts to manipulate the overall structure and fine details of target meshes simultaneously. For this reason, it is difficult to apply the diffusion process to a mesh denoising task that removes artifacts while maintaining a structure. To address this, we formulate a structure-preserving diffusion process. Instead of diffusing the mesh vertices to be distributed as zero-centered isotopic Gaussian distribution, we diffuse each vertex into a specific noise distribution, in which the entire structure can be preserved. In addition, we propose a topology-agnostic mesh diffusion model by projecting the vertex into multiple 2-D viewpoints to efficiently learn the diffusion using a deep network. This enables the proposed method to learn the diffusion of arbitrary meshes that have an irregular topology. Finally, the denoised mesh can be obtained via refinement based on 2-D projections obtained from reverse diffusion. Through extensive experiments, we demonstrate that our method outperforms the state-of-the-art mesh denoising methods in both quantitative and qualitative evaluations.

摘要

去噪扩散模型已显示出通过逐步去除噪声来生成高质量图像样本的强大能力。受此启发,我们提出了一种基于扩散的网格去噪器,它可以逐步从网格中去除噪声。一般来说,扩散模型的迭代算法试图同时操纵目标网格的整体结构和精细细节。因此,很难将扩散过程应用于在去除伪影的同时保持结构的网格去噪任务。为了解决这个问题,我们制定了一个结构保留扩散过程。我们不是将网格顶点扩散为零中心的各向同性高斯分布,而是将每个顶点扩散到特定的噪声分布中,在这种分布中可以保留整个结构。此外,我们通过将顶点投影到多个二维视角,提出了一种与拓扑无关的网格扩散模型,以使用深度网络有效地学习扩散。这使得所提出的方法能够学习具有不规则拓扑的任意网格的扩散。最后,可以通过基于反向扩散获得的二维投影进行细化来获得去噪后的网格。通过大量实验,我们证明了我们的方法在定量和定性评估中均优于当前最先进的网格去噪方法。

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