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fudan-zvg/DeepInteraction

0
View on GitHub↗
0 stars·0 forks·11 views

DeepInteraction

Features

  • 3D Object Detection - Modality interaction for 3D object detection.

Star history

Star history chart for fudan-zvg/deepinteractionStar history chart for fudan-zvg/deepinteraction

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 DeepInteraction

These projects share indexed features with DeepInteraction. Shared tags can include platform or build tooling; verify the primary use case before treating a result as a replacement.
  • open-mmlab/mmdetection3dopen-mmlab avatar

    open-mmlab/mmdetection3d

    6,273View on GitHub↗

    MMDetection3D is an open-source toolbox for 3D perception, providing a unified framework for detecting and segmenting objects in three-dimensional environments. It supports a range of core tasks including monocular 3D object detection from single camera images, LiDAR-based 3D object detection from raw point clouds, and multi-modal fusion that combines camera images with LiDAR data. The toolbox also covers point cloud semantic segmentation, assigning class labels to every point in a scan for scene understanding. The project distinguishes itself through a config-driven pipeline that orchestrate

    Python3d-object-detectionobject-detectionpoint-cloud
    View on GitHub↗6,273
  • open-mmlab/openpcdetopen-mmlab avatar

    open-mmlab/OpenPCDet

    5,621View on GitHub↗

    OpenPCDet is a PyTorch deep learning library and toolbox for LiDAR 3D object detection. It functions as a point cloud processing framework designed to develop, train, and evaluate machine learning models that identify and locate objects in three dimensional space. The project includes a GPU-accelerated geometry engine for high-performance implementation of 3D intersection over union and rotated non-maximum suppression. It also provides a distributed model training tool to scale the training and testing of detection models across multiple GPUs and computing nodes. The framework covers point c

    Python
    View on GitHub↗5,621
  • manycore-research/spatiallmmanycore-research avatar

    manycore-research/SpatialLM

    4,596View on GitHub↗

    SpatialLM is a spatial modeling framework that uses large language models to transform monocular video and sensor data into structured indoor semantic maps. It functions as a system for indoor layout estimation and a point cloud semantic parser, converting raw geometric data into representations of architectural elements and object categories. The project aligns multi-modal sensor inputs with linguistic tokens, allowing a language model to serve as a reasoning engine for inferring room topology. It employs mechanisms to convert 3D point clouds and 2D image sequences into discrete tokens and s

    Pythonmllmpoint-cloudsscene-understanding
    View on GitHub↗4,596
  • cliu2/mtransC

    Cliu2/MTrans

    0View on GitHub↗
    View on GitHub↗0
Compare all 30 related projects→

Frequently asked questions

What are the main features of fudan-zvg/deepinteraction?

The main features of fudan-zvg/deepinteraction are: 3D Object Detection.

Which projects share features with fudan-zvg/deepinteraction?

Projects with overlapping indexed features include: open-mmlab/openpcdet — OpenPCDet is a PyTorch deep learning library and toolbox for LiDAR 3D object detection. It functions as a point cloud… open-mmlab/mmdetection3d — MMDetection3D is an open-source toolbox for 3D perception, providing a unified framework for detecting and segmenting… manycore-research/spatiallm — SpatialLM is a spatial modeling framework that uses large language models to transform monocular video and sensor data… cliu2/mtrans. dvlab-research/uvtr. dscdyc/mssvt.