robotology / idyntree

Multibody Dynamics Library designed for Free Floating Robots
BSD 3-Clause "New" or "Revised" License
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cxx dynamics floating-base free-floating multibody-dynamics python robot robotics robotics-libraries urdf urdf-parser

iDynTree License ZenHub

iDynTree is a library of robots dynamics algorithms for control, estimation and simulation. It is specifically designed for free-floating robots, but it is possible to use it also with fixed-base robots.

The major characteristic features of iDynTree are:

To avoid confusion, it is also useful to clarify what iDynTree is not:

Contents

Installation

conda (recommended)

You can easily install the C++ and Python library with via conda-forge using the following command

conda install -c conda-forge idyntree

If you need to install also the MATLAB bindings, you can install them with:

conda install -c conda-forge -c robotology idyntree-matlab-bindings

If you are not familiar with conda or conda-forge, you can read an introduction document in conda-forge overview.

robotology-superbuild (advanced)

If you are installing iDynTree for use as part of iCub humanoid robot software installation, you may want to install iDynTree through the robotology-superbuild, an easy way to download, compile and install the robotology software on multiple operating systems, using the CMake build system and its extension YCM. To get iDynTree when using the robotology-superbuild, please enable the ROBOTOLOGY_ENABLE_DYNAMICS CMake option of the superbuild. If you want to install also iDynTree Python or MATLAB bindings, remember to enable the ROBOTOLOGY_USES_PYTHON or ROBOTOLOGY_USES_MATLAB options.

Build from source (advanced)

If you want to build iDynTree directly from source, you can check the documentation in doc/build-from-source.md.

Library Usage

Usage in C++

Once the library is installed, you can link it in C++ programs using CMake with as little effort as writing the following line of code in your project's CMakeLists.txt:

find_package(iDynTree REQUIRED)
target_link_libraries(<target> PRIVATE iDynTree::idyntree-high-level iDynTree::idyntree-estimation)

See CMake's reference documentation if you need more info on the find_package or target_link_libraries CMake commands.

Usage in MATLAB

To make sure that iDynTree is available in MATLAB, try to run some simple code that uses it:

p = iDynTree.Position()

If this is not working, make sure that you are launching matlab after having activated the conda environment (if you installed iDynTree via conda) or after having sourced por executed the correct setup script (if you installed iDynTree via the robotology-superbuild).

Tutorials

These tutorials describe how to use specific parts of iDynTree. Are you interested in a tutorial on a specific feature or algorithm that you can't find in this list? Just request it on an enhancement issue.

Topic Location Language
Basic usage of the KinDynComputations class together with the Eigen C++ Matrix library to compute kinematics and dynamics quantities such as forward kinematics, inverse dynamics, mass matrix. examples/cxx/KinDynComputationsWithEigen/main.cpp C++
How to use the InverseKinematics class for the IK of an industrial fixed-base manipulator. examples/cxx/InverseKinematics/README.md C++
Use of the ExtWrenchesAndJointTorquesEstimator class for computing offset for FT sensors examples/matlab/SixAxisFTOffsetEstimation/SixAxisFTOffsetEstimation.m MATLAB
How to get the axis of a revolute joint expressed in a arbitary frame using the KinDynComputations class examples/matlab/SensorsListParsing/SensorsListParsing.m MATLAB
How to read the Six Axis Force Torque sensors information contained in a URDF model. examples/matlab/GetJointAxesInWorldFrame.m MATLAB
Usage of the MATLAB-native visualizer using the MATLAB high-level wrappers. examples/matlab/iDynTreeWrappers/visualizeRobot.m MATLAB
Basic usage of the KinDynComputations class. examples/python/KinDynComputationsTutorial.py Python
Basic usage of the MeshcatVisualizer class. examples/python/MeshcatVisualizerExample.ipynb Python

Tools Usage

iDynTree also includes some command line tools to use some of the functionality of the library without writing any line of code. The available command line tools are listed in the following, and each tool also includes an online help that is tipically available by passing the -h flag.

idyntree-model-info

Tool that reads a model from a file, and print some useful information as specified via the command line.

Example: Print the total mass of a given model

idyntree-model-info -m <location-of-the-model> --total-mass

idyntree-model-view

Tool that reads a model from a file and visualize it using the idyntree-visualizer library

Example: Visualize a given model

idyntree-model-view -m <location-of-the-model>

idyntree-model-simplify-shapes

Tool that reads a model from a file, and returns in output the same model, but with all solid shapes of the model (both collision and visual) substituted with a primitive shape that approximates in some way the original solid shape. At the moment, the only conversion type provided is to approximate each solid shape of the model with its axis aligned bounding box.

Example: Approximate a given model

idyntree-model-simplify-shapes -m <location-of-the-input-model> -o <desired-location-of-the-output-model>

Reference Documentation

The documentation for the complete API of iDynTree is automatically extracted from the C++ code using Doxygen, and is available at the URL : https://robotology.github.io/idyntree.

Announcements

Announcements on new releases, API changes or other news are done on robotology/QA GitHub repository. You can watch that repository to get all the iDynTree-related announcements, that will always tagged with the announcement tag.

Developer Documentation

If you want to contribute to iDynTree development, please check the Developer's FAQ.

Reference paper

A paper describing some of the algorithms implemented in iDynTree and their use in a real world scenario can be downloaded here . If you're going to use this library for your work, please quote it within any resulting publication:

F. Nori, S. Traversaro, J. Eljaik, F. Romano, A. Del Prete, D. Pucci "iCub whole-body control through force regulation on rigid non-coplanar contacts", Frontiers in Robotics and AI, 2015.

The bibtex code for including this citation is provided:

@ARTICLE{10.3389/frobt.2015.00006,
  AUTHOR={Nori, Francesco  and  Traversaro, Silvio  and  Eljaik, Jorhabib  and  Romano, Francesco  and  Del Prete, Andrea  and  Pucci, Daniele},
  TITLE={iCub Whole-body Control through Force Regulation on Rigid Noncoplanar Contacts},
  JOURNAL={Frontiers in Robotics and AI},
  VOLUME={2},
  YEAR={2015},
  NUMBER={6},
  URL={http://www.frontiersin.org/humanoid_robotics/10.3389/frobt.2015.00006/abstract},
  DOI={10.3389/frobt.2015.00006},
  ISSN={2296-9144}}

Acknowledgments

The initial development of iDynTree was supported by the FP7 EU projects CoDyCo (No. 600716 ICT 2011.2.1 Cognitive Systems and Robotics) and Koroibot (No. 611909 ICT- 2013.2.1 Cognitive Systems and Robotics).

The development is now supported by the Artificial Mechanical Intelligence research line at the Italian Institute of Technology.

License

iDynTree is licensed under either the BSD-3-Clause license : https://spdx.org/licenses/BSD-3-Clause.html .