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DNF-Net: A Deep Normal Filtering Network for Mesh Denoising

Published: 01 October 2021 Publication History

Abstract

This article presents a deep normal filtering network, called DNF-Net, for mesh denoising. To better capture local geometry, our network processes the mesh in terms of local patches extracted from the mesh. Overall, DNF-Net is an end-to-end network that takes patches of facet normals as inputs and directly outputs the corresponding denoised facet normals of the patches. In this way, we can reconstruct the geometry from the denoised normals with feature preservation. Besides the overall network architecture, our contributions include a novel multi-scale feature embedding unit, a residual learning strategy to remove noise, and a deeply-supervised joint loss function. Compared with the recent data-driven works on mesh denoising, DNF-Net does not require manual input to extract features and better utilizes the training data to enhance its denoising performance. Finally, we present comprehensive experiments to evaluate our method and demonstrate its superiority over the state of the art on both synthetic and real-scanned meshes.

Cited By

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  • (2024)Mesh Denoising Using Filtering Coefficients Jointly Aware of Noise and GeometryProceedings of the 32nd ACM International Conference on Multimedia10.1145/3664647.3681143(1791-1799)Online publication date: 28-Oct-2024
  • (2024)Semi-Supervised 3D Shape Segmentation via Self RefiningIEEE Transactions on Image Processing10.1109/TIP.2024.337420033(2044-2057)Online publication date: 12-Mar-2024
  • (2024)Human-airway surface mesh smoothing based on graph convolutional neural networksComputer Methods and Programs in Biomedicine10.1016/j.cmpb.2024.108061246:COnline publication date: 1-Apr-2024
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          cover image IEEE Transactions on Visualization and Computer Graphics
          IEEE Transactions on Visualization and Computer Graphics  Volume 27, Issue 10
          Oct. 2021
          246 pages

          Publisher

          IEEE Educational Activities Department

          United States

          Publication History

          Published: 01 October 2021

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          • (2024)Mesh Denoising Using Filtering Coefficients Jointly Aware of Noise and GeometryProceedings of the 32nd ACM International Conference on Multimedia10.1145/3664647.3681143(1791-1799)Online publication date: 28-Oct-2024
          • (2024)Semi-Supervised 3D Shape Segmentation via Self RefiningIEEE Transactions on Image Processing10.1109/TIP.2024.337420033(2044-2057)Online publication date: 12-Mar-2024
          • (2024)Human-airway surface mesh smoothing based on graph convolutional neural networksComputer Methods and Programs in Biomedicine10.1016/j.cmpb.2024.108061246:COnline publication date: 1-Apr-2024
          • (2024)Enhanced 3D reconstruction with all-neighbor-first philosophy and Ricci flow-based mesh smoothing approachMultimedia Systems10.1007/s00530-023-01210-x30:1Online publication date: 19-Jan-2024
          • (2024)FFANet: dual attention-based flow field-aware network for wall identificationThe Visual Computer: International Journal of Computer Graphics10.1007/s00371-023-03176-340:9(6463-6477)Online publication date: 1-Sep-2024
          • (2023)Geometric and Learning-Based Mesh Denoising: A Comprehensive SurveyACM Transactions on Multimedia Computing, Communications, and Applications10.1145/362509820:3(1-28)Online publication date: 10-Nov-2023
          • (2023)Surface Geometry Processing: An Efficient Normal-Based Detail RepresentationIEEE Transactions on Pattern Analysis and Machine Intelligence10.1109/TPAMI.2023.329650945:11(13749-13765)Online publication date: 1-Nov-2023
          • (2023)FCNet: Learning Noise-Free Features for Point Cloud DenoisingIEEE Transactions on Circuits and Systems for Video Technology10.1109/TCSVT.2023.326645833:11(6288-6301)Online publication date: 1-Nov-2023
          • (2023)MeT: mesh transformer with an edgeThe Visual Computer: International Journal of Computer Graphics10.1007/s00371-023-02966-z39:8(3235-3246)Online publication date: 14-Jul-2023
          • (2023)FFANet: Dual Attention-Based Flow Field Aware Network for 3D Grid Classification and SegmentationComputer-Aided Design and Computer Graphics10.1007/978-981-99-9666-7_3(30-44)Online publication date: 19-Aug-2023
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