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charlesq34 avatar

charlesq34/3dcnn.torch

0
View on GitHub↗
230 stars·70 forks·Lua·14 viewsgraphics.stanford.edu/projects/3dcnn↗

3dcnn.torch

Volumetric CNN (Convolutional Neural Networks) for Object Classification on 3D Data, with Torch implementation.

Features

  • 3D Object Classification - Volumetric and multi-view CNNs for 3D object classification.

Star history

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How this analysis was created: This summary and feature list are AI-generated from collected project material and can contain mistakes. Stars, license and language are imported from GitHub. Inclusion does not mean that we have tested or audited this project. Check the source documentation for any feature you depend on. Learn more on our About page.

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Projects sharing features with 3dcnn.torch

These projects share indexed features with 3dcnn.torch. Shared tags can include platform or build tooling; verify the primary use case before treating a result as a replacement.
  • amir32002/feedback-networksamir32002 avatar

    amir32002/feedback-networks

    91View on GitHub↗

    Paper: Feedback Networks, CVPR 2017.

    Lua
    View on GitHub↗91
  • charlesq34/pointnetcharlesq34 avatar

    charlesq34/pointnet

    5,433View on GitHub↗

    PointNet is a deep learning architecture designed to process and classify raw 3D point clouds directly without voxelization. It provides a system for 3D object classification, semantic segmentation frameworks for partitioning clouds into categories, and tools for visualizing 3D shapes. The project utilizes a transform network to align point clouds into a canonical coordinate space and employs symmetric-function-based aggregation to condense point-wise features into global vectors regardless of point order. It also features a multi-scale grouping architecture to extract hierarchical geometric

    Python
    View on GitHub↗5,433
  • charlesq34/pointnet2charlesq34 avatar

    charlesq34/pointnet2

    3,678View on GitHub↗

    PointNet++ is a deep learning framework designed for processing and classifying 3D point cloud data. It utilizes a hierarchical feature learning architecture to extract geometric patterns from sampled 3D point sets. The framework implements a variety of 3D analysis tools, including a point cloud classifier for categorizing objects based on spatial coordinates and surface normals, a semantic scene segmenter for labeling surfaces in large-scale environments, and a tool for 3D object part segmentation. The system covers a broad range of capabilities including geometric feature extraction, 3D da

    Python
    View on GitHub↗3,678
  • ajbrock/generative-and-discriminative-voxel-modelingajbrock avatar

    ajbrock/Generative-and-Discriminative-Voxel-Modeling

    214View on GitHub↗

    Voxel-Based Variational Autoencoders, VAE GUI, and Convnets for Classification

    Python
    View on GitHub↗214
Compare all 16 related projects→

Frequently asked questions

What does charlesq34/3dcnn.torch do?

Volumetric CNN (Convolutional Neural Networks) for Object Classification on 3D Data, with Torch implementation.

What are the main features of charlesq34/3dcnn.torch?

The main features of charlesq34/3dcnn.torch are: 3D Object Classification.

Which projects share features with charlesq34/3dcnn.torch?

Projects with overlapping indexed features include: amir32002/feedback-networks — Paper: Feedback Networks, CVPR 2017. charlesq34/pointnet — PointNet is a deep learning architecture designed to process and classify raw 3D point clouds directly without… charlesq34/pointnet2 — PointNet++ is a deep learning framework designed for processing and classifying 3D point cloud data. It utilizes a… dimatura/voxnet — 3D/Volumetric Convolutional Neural Networks with Theano+Lasagne. dylanwusee/pointconv — PointConv: Deep Convolutional Networks on 3D Point Clouds. CVPR 2019 Wenxuan Wu, Zhongang Qi, Li Fuxin. ajbrock/generative-and-discriminative-voxel-modeling — Voxel-Based Variational Autoencoders, VAE GUI, and Convnets for Classification.