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Back to prbonn/overlapnet

Open-source alternatives to OverlapNet

30 open-source projects similar to prbonn/overlapnet, ranked by how many features they have in common. Compare stars, activity and what each one does to find the best OverlapNet alternative.

  • tixiaoshan/lio-samAvatar de TixiaoShan

    TixiaoShan/LIO-SAM

    4,794Ver en GitHub↗

    LIO-SAM is a lidar inertial SLAM framework and tightly-coupled sensor fusion pipeline. It functions as a factor graph optimization engine that combines lidar scans and inertial measurement unit data to build 3D point cloud maps and estimate robot trajectories. The system integrates global position factors to align local coordinates with real-world data. It employs loop closure detection to identify previously visited locations, creating constraints in the optimization graph to correct accumulated global drift. The framework covers lidar inertial odometry, point cloud processing, and trajecto

    C++
    Ver en GitHub↗4,794
  • irapkaist/removertAvatar de irapkaist

    irapkaist/removert

    640Ver en GitHub↗

    Remove then revert (IROS 2020)

    C++
    Ver en GitHub↗640
  • michaelgrupp/evoAvatar de MichaelGrupp

    MichaelGrupp/evo

    4,255Ver en GitHub↗

    evo is a Python framework for the evaluation of SLAM algorithms, robot odometry, and trajectory data. It serves as an analysis library for measuring drift and precision by calculating absolute and relative pose errors between estimated paths and ground truth references. The project provides a geometric alignment framework to correct rotation, translation, and scale between spatial trajectories, ensuring consistent error measurement. It includes specialized tools for odometry drift analysis and the processing of robotics data, including the ability to extract trajectory information from ROS ba

    Python
    Ver en GitHub↗4,255
  • hku-mars/fast-livo2Avatar de hku-mars

    hku-mars/FAST-LIVO2

    3,634Ver en GitHub↗

    FAST-LIVO2 is a LiDAR-inertial odometry framework and factor-graph SLAM implementation designed for real-time robot localization and 3D mapping. It functions as a multi-sensor fusion pipeline and state estimator that integrates LiDAR, inertial, and camera inputs to track a robot's position and orientation. The system employs a tightly-coupled sensor fusion approach to maintain stable navigation, particularly in degraded environments. It utilizes a voxel-based 3D mapping tool to organize point clouds into volumetric grids, which optimizes memory usage and search speed during spatial reconstruc

    C++3d-reconstructioncolored-point-cloudgaussian-splatting
    Ver en GitHub↗3,634

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  • cgal/cgalAvatar de CGAL

    CGAL/cgal

    5,757Ver en GitHub↗

    CGAL is a software library that provides a comprehensive collection of computational geometry algorithms and data structures. It is built around a geometry kernel that defines fundamental geometric primitives and operations, enabling the construction of complex geometric objects and the computation of geometric predicates with exact arithmetic for reliable results. The library covers a wide range of geometric computation capabilities, including the construction of convex hulls, triangulations of point sets, and the generation of Voronoi diagrams. It also supports the processing of polygonal m

    C++algorithmsarrangeboolean-operations
    Ver en GitHub↗5,757
  • pointcloudlibrary/pclAvatar de PointCloudLibrary

    PointCloudLibrary/pcl

    11,028Ver en GitHub↗

    The Point Cloud Library is a collection of C++ algorithms designed for filtering, registering, and analyzing large-scale 3D spatial datasets. It provides a framework for 3D point cloud processing, incorporating tools for spatial data filtering and geometric feature estimation. The library includes specialized systems for aligning multiple spatial datasets into a single unified coordinate system and a rendering engine for the visual inspection and analysis of processed point cloud data. It also features tools for calculating spatial descriptors to identify structural patterns and shapes within

    C++c-plus-pluscomputer-visioncpp
    Ver en GitHub↗11,028
  • hku-mars/fast_lioAvatar de hku-mars

    hku-mars/FAST_LIO

    4,829Ver en GitHub↗

    FAST_LIO is a real-time SLAM system and LiDAR-inertial odometry package designed for simultaneous localization and mapping. It functions as a state estimation engine and 3D mapping tool that fuses LiDAR point clouds with inertial measurement unit data to provide robust robot state estimation. The system utilizes a tightly-coupled sensor fusion approach with an iterative Kalman filter to estimate position and orientation. It distinguishes itself through direct point-to-plane matching, which calculates odometry by matching raw lidar points to the map surface without manual geometric feature ext

    C++lidar-odometrylivox-avia-lidar
    Ver en GitHub↗4,829
  • open-mmlab/mmcvAvatar de open-mmlab

    open-mmlab/mmcv

    6,446Ver en GitHub↗

    mmcv is a foundation library for computer vision based on PyTorch. It provides a comprehensive system for constructing convolutional neural networks, a toolkit for image and video preprocessing, and a collection of high-performance deep learning vision operators. The project is distinguished by its hardware-accelerated kernels for complex operations such as deformable convolutions and region pooling. It features a configuration-driven framework that allows for the dynamic instantiation of network layers and the registration of custom modules without modifying code. The library covers a broad

    Python
    Ver en GitHub↗6,446
  • openai/point-eAvatar de openai

    openai/point-e

    6,886Ver en GitHub↗

    Point-e is a system for 3D model synthesis that generates three-dimensional point clouds from natural language descriptions and two-dimensional images. It utilizes diffusion models to synthesize these spatial representations based on text prompts or source images. The project includes specialized tools for refining these outputs, such as a point cloud upsampler to increase the density and resolution of low-resolution models. It also provides a mesh converter that uses distance function regression to transform raw point cloud data into structured 3D meshes. The broader capability surface cove

    Python
    Ver en GitHub↗6,886
  • connormanning/entwineAvatar de connormanning

    connormanning/entwine

    518Ver en GitHub↗

    Entwine - point cloud organization for massive datasets

    C++
    Ver en GitHub↗518
  • evetion/lazio.jlAvatar de evetion

    evetion/LazIO.jl

    12Ver en GitHub↗

    Extends LasIO with Laszip integration

    Julia
    Ver en GitHub↗12
  • evetion/lasindex.jlAvatar de evetion

    evetion/LASindex.jl

    4Ver en GitHub↗

    Pure Julia reader of lasindex .lax files

    Julia
    Ver en GitHub↗4
  • facebookresearch/votenetAvatar de facebookresearch

    facebookresearch/votenet

    1,760Ver en GitHub↗

    Deep Hough Voting for 3D Object Detection in Point Clouds

    Python
    Ver en GitHub↗1,760
  • giswqs/lidarAvatar de giswqs

    giswqs/lidar

    297Ver en GitHub↗

    A Python package for delineating nested surface depressions from digital elevation data.

    Python
    Ver en GitHub↗297
  • cloudcompare/cloudcompareAvatar de CloudCompare

    CloudCompare/CloudCompare

    4,577Ver en GitHub↗

    CloudCompare is a professional software application for processing and analyzing 3D point clouds and polygonal meshes. It functions as a 3D mesh analysis tool and a large dataset visualizer designed to display and manage millions of points in a 3D environment. The software provides specialized capabilities for point cloud comparison, utilizing an optimized octree structure to calculate spatial differences between two 3D datasets. This allows for the identification of variations and errors between point clouds or between a point cloud and a mesh. The system covers broad 3D data analysis areas

    C++
    Ver en GitHub↗4,577
  • bichenwuucb/squeezesegAvatar de BichenWuUCB

    BichenWuUCB/SqueezeSeg

    575Ver en GitHub↗

    Implementation of SqueezeSeg, convolutional neural networks for LiDAR point clout segmentation

    Python
    Ver en GitHub↗575
  • ethz-asl/libpointmatcherAvatar de ethz-asl

    ethz-asl/libpointmatcher

    1,817Ver en GitHub↗

    An Iterative Closest Point (ICP) library for 2D and 3D mapping in Robotics

    C++
    Ver en GitHub↗1,817
  • intel-isl/open3dAvatar de intel-isl

    intel-isl/Open3D

    13,695Ver en GitHub↗

    Open3D is a 3D data processing library, visualization engine, and machine learning library. It provides a framework for manipulating point clouds and meshes through specialized algorithms designed for 3D data science workflows. The project includes a toolkit for 3D scene reconstruction to generate spatial models and align surfaces from raw data. It also functions as a GPU accelerated framework that offloads intensive spatial computations to the graphics processor to increase processing speed. The library covers a broad range of capabilities including physically based light simulations for vi

    C++
    Ver en GitHub↗13,695
  • eperdices/lego-loam-srAvatar de eperdices

    eperdices/LeGO-LOAM-SR

    61Ver en GitHub↗

    This code is a fork from LeGO-LOAM-BOR to migrate LeGO-LOAM algorithm to ROS2.

    C++
    Ver en GitHub↗61
  • edwardzhou130/polarsegAvatar de edwardzhou130

    edwardzhou130/PolarSeg

    420Ver en GitHub↗

    Implementation for PolarNet: An Improved Grid Representation for Online LiDAR Point Clouds Semantic Segmentation (CVPR 2020)

    Python
    Ver en GitHub↗420
  • isee-technology/camvoxAvatar de ISEE-Technology

    ISEE-Technology/CamVox

    566Ver en GitHub↗

    ICRA2021 A low-cost SLAM system based on camera and Livox lidar.

    C++
    Ver en GitHub↗566
  • jianboqi/csfAvatar de jianboqi

    jianboqi/CSF

    632Ver en GitHub↗

    LiDAR point cloud ground filtering / segmentation (bare earth extraction) method based on cloth simulation

    C++
    Ver en GitHub↗632
  • keijiro/pcxAvatar de keijiro

    keijiro/Pcx

    1,505Ver en GitHub↗

    Point cloud importer & renderer for Unity

    C#
    Ver en GitHub↗1,505
  • kitware/lidarviewAvatar de Kitware

    Kitware/LidarView

    301Ver en GitHub↗

    LidarView performs real-time reception, recording, visualization and processing of 3D LiDAR data. This repository is a mirror of https://gitlab.kitware.com/LidarView/lidarview.

    C++
    Ver en GitHub↗301
  • kitware/veloviewAvatar de Kitware

    Kitware/VeloView

    329Ver en GitHub↗

    VeloView performs real-time visualization and easy processing of live captured 3D LiDAR data from Velodyne sensors (Alpha Prime™, Puck™, Ultra Puck™, Puck Hi-Res™, Alpha Puck™, Puck LITE™, HDL-32, HDL-64E). Runs on Windows, Linux and MacOS. This repository is a mirror of https://gitlab.kitware.com/LidarView/VeloView-Velodyne.

    C++
    Ver en GitHub↗329
  • kzampog/cilantroAvatar de kzampog

    kzampog/cilantro

    1,130Ver en GitHub↗

    A lean C++ library for working with point cloud data

    C++
    Ver en GitHub↗1,130
  • lastools/lastoolsAvatar de LAStools

    LAStools/LAStools

    1,059Ver en GitHub↗

    efficient tools for LiDAR processing

    C++
    Ver en GitHub↗1,059
  • liangliangnan/polyfitAvatar de LiangliangNan

    LiangliangNan/PolyFit

    820Ver en GitHub↗

    Polygonal Surface Reconstruction from Point Clouds (C++ & Python)

    C++
    Ver en GitHub↗820
  • maudzung/super-fast-accurate-3d-object-detectionAvatar de maudzung

    maudzung/Super-Fast-Accurate-3D-Object-Detection

    1,125Ver en GitHub↗

    Super Fast and Accurate 3D Object Detection based on 3D LiDAR Point Clouds (The PyTorch implementation)

    Python
    Ver en GitHub↗1,125
  • heremaps/pptkAvatar de heremaps

    heremaps/pptk

    633Ver en GitHub↗

    The Point Processing Toolkit (pptk) is a Python package for visualizing and processing 2-d/3-d point clouds.

    C++
    Ver en GitHub↗633