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amir32002 avatar

amir32002/feedback-networks

0
View on GitHub↗
91 stars·20 forks·Lua·MIT·10 viewsfeedbacknet.stanford.edu↗

Feedback Networks

Paper: Feedback Networks, CVPR 2017.

Features

  • 3D Object Classification - Feedback-based neural network architecture.

Star history

Star history chart for amir32002/feedback-networksStar history chart for amir32002/feedback-networks

How this analysis was created: This summary and feature list were written by an AI model that read the project's README and public documentation pages. Each feature links to the documentation it came from; stars, license and language come straight from the GitHub API. The model does not read the source code, and the analysis is refreshed when the project is re-analysed. Learn more on our About page.

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Frequently asked questions

What does amir32002/feedback-networks do?

Paper: Feedback Networks, CVPR 2017.

What are the main features of amir32002/feedback-networks?

The main features of amir32002/feedback-networks are: 3D Object Classification.

What are some open-source alternatives to amir32002/feedback-networks?

Open-source alternatives to amir32002/feedback-networks include: charlesq34/3dcnn.torch — Volumetric CNN (Convolutional Neural Networks) for Object Classification on 3D Data, with Torch implementation. 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.

Open-source alternatives to Feedback Networks

Similar open-source projects, ranked by how many features they share with Feedback Networks.
  • charlesq34/3dcnn.torchcharlesq34 avatar

    charlesq34/3dcnn.torch

    230View on GitHub↗

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

    Lua
    View on GitHub↗230
  • 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
  • See all 16 alternatives to Feedback Networks→