TMTDyn: A Matlab package for modeling and control of hybrid rigid–continuum robots based on discretized lumped systems and reduced-order models

A reliable, accurate, and yet simple dynamic model is important to analyzing, designing, and controlling hybrid rigid–continuum robots. Such models should be fast, as simple as possible, and user-f...

[1]  Arianna Menciassi,et al.  STIFF-FLOP surgical manipulator: Mechanical design and experimental characterization of the single module , 2013, 2013 IEEE/RSJ International Conference on Intelligent Robots and Systems.

[2]  Robert J. Wood,et al.  Untethered soft robotics , 2018 .

[3]  Frédéric Boyer,et al.  Multibody system dynamics for bio-inspired locomotion: from geometric structures to computational aspects , 2015, Bioinspiration & biomimetics.

[4]  Mark Whitty,et al.  Robotics, Vision and Control. Fundamental Algorithms in MATLAB , 2012 .

[5]  D. Caleb Rucker,et al.  A Geometrically Exact Model for Externally Loaded Concentric-Tube Continuum Robots , 2010, IEEE Transactions on Robotics.

[6]  Ian D. Walker,et al.  A Neural Network Controller for Continuum Robots , 2007, IEEE Transactions on Robotics.

[7]  Christian Duriez,et al.  Finite Element Method-Based Kinematics and Closed-Loop Control of Soft, Continuum Manipulators. , 2018, Soft robotics.

[8]  Darwin G. Caldwell,et al.  Shape function-based kinematics and dynamics for variable length continuum robotic arms , 2011, 2011 IEEE International Conference on Robotics and Automation.

[9]  Ian D. Walker,et al.  A model-based sliding mode controller for extensible continuum robots , 2010 .

[10]  Daniela Rus,et al.  Autonomous Object Manipulation Using a Soft Planar Grasping Manipulator , 2015, Soft robotics.

[11]  S. M. Hadi Sadati,et al.  A geometry deformation model for compound continuum manipulators with external loading , 2016, 2016 IEEE International Conference on Robotics and Automation (ICRA).

[12]  Robert J. Wood,et al.  An integrated design and fabrication strategy for entirely soft, autonomous robots , 2016, Nature.

[13]  Bruno Siciliano,et al.  A Geometrically Exact Model for Soft Continuum Robots: The Finite Element Deformation Space Formulation. , 2019, Soft robotics.

[14]  Simon de Lusignan,et al.  Granular Jamming Based Controllable Organ Design for Abdominal Palpation , 2018, 2018 40th Annual International Conference of the IEEE Engineering in Medicine and Biology Society (EMBC).

[15]  Matthew Howard,et al.  Gait Reconstruction From Motion Artefact Corrupted Fabric-Embedded Sensors , 2018, IEEE Robotics and Automation Letters.

[16]  S. M. Hadi Sadati,et al.  Three-Dimensional-Printable Thermoactive Helical Interface With Decentralized Morphological Stiffness Control for Continuum Manipulators , 2018, IEEE Robotics and Automation Letters.

[17]  Cecilia Laschi,et al.  Control Strategies for Soft Robotic Manipulators: A Survey. , 2018, Soft robotics.

[18]  Arianna Menciassi,et al.  New STIFF-FLOP module construction idea for improved actuation and sensing , 2015, 2015 IEEE International Conference on Robotics and Automation (ICRA).

[19]  S. M. Hadi Sadati,et al.  Toward a low hysteresis helical scale Jamming interface inspired by teleost fish scale morphology and arrangement , 2018, 2018 IEEE International Conference on Soft Robotics (RoboSoft).

[20]  Gregory S. Chirikjian,et al.  Snake-Like and Continuum Robots , 2016, Springer Handbook of Robotics, 2nd Ed..

[21]  Christian Duriez,et al.  Reduced Order Control of Soft Robots with Guaranteed Stability , 2018, 2018 European Control Conference (ECC).

[22]  Martin Berzins,et al.  A Method for the Spatial Discretization of Parabolic Equations in One Space Variable , 1990, SIAM J. Sci. Comput..

[23]  Caleb Rucker,et al.  Integrating Rotations Using Nonunit Quaternions , 2018, IEEE Robotics and Automation Letters.

[24]  Cosimo Della Santina,et al.  Using Nonlinear Normal Modes for Execution of Efficient Cyclic Motions in Soft Robots , 2018, ArXiv.

[25]  Jiancheng Liu,et al.  ChainQueen: A Real-Time Differentiable Physical Simulator for Soft Robotics , 2018, 2019 International Conference on Robotics and Automation (ICRA).

[26]  Brendan Michael,et al.  Activity recognition with wearable sensors on loose clothing , 2017, PloS one.

[27]  D. Rus,et al.  Design, fabrication and control of soft robots , 2015, Nature.

[28]  Lakmal Seneviratne,et al.  Screw-Based Modeling of Soft Manipulators With Tendon and Fluidic Actuation , 2017 .

[29]  Alain Delchambre,et al.  Flexible Medical Devices: Review of Controllable Stiffness Solutions , 2017 .

[30]  Howie Choset,et al.  Continuum Robots for Medical Applications: A Survey , 2015, IEEE Transactions on Robotics.

[31]  Ilker Tunay,et al.  Spatial Continuum Models of Rods Undergoing Large Deformation and Inflation , 2013, IEEE Transactions on Robotics.

[32]  Christopher D. Rahn,et al.  Geometrically Exact Models for Soft Robotic Manipulators , 2008, IEEE Transactions on Robotics.

[33]  Darwin G. Caldwell,et al.  Dynamics for variable length multisection continuum arms , 2016, Int. J. Robotics Res..

[34]  Christian Duriez,et al.  Control Design for Soft Robots Based on Reduced-Order Model , 2019, IEEE Robotics and Automation Letters.

[35]  S. M. Hadi Sadati,et al.  Mechanics of Continuum Manipulators, a Comparative Study of Five Methods with Experiments , 2017, TAROS.

[36]  Robert J. Webster,et al.  Design and Kinematic Modeling of Constant Curvature Continuum Robots: A Review , 2010, Int. J. Robotics Res..

[37]  T. Nanayakkara,et al.  Soft Robotics Technologies to Address Shortcomings in Today ’ s Minimally Invasive Surgery : The STIFF-FLOP Approach , 2014 .

[38]  Kevin M. Lynch,et al.  Modern Robotics: Mechanics, Planning, and Control , 2017 .

[39]  Mihir Kumar Sutar,et al.  Bond Graph Modelling and Control of Hyper-Redundant Miniature Robot for In-Vivo Biopsy , 2017 .

[40]  S. M. Hadi Sadati,et al.  A Geometry Deformation Model for Braided Continuum Manipulators , 2017, Front. Robot. AI.

[41]  Jinwoo Jung,et al.  A modeling approach for continuum robotic manipulators: Effects of nonlinear internal device friction , 2011, 2011 IEEE/RSJ International Conference on Intelligent Robots and Systems.

[42]  Lakmal D. Seneviratne,et al.  A Geometric and Unified Approach for Modeling Soft-Rigid Multi-Body Systems with Lumped and Distributed Degrees of Freedom , 2018, 2018 IEEE International Conference on Robotics and Automation (ICRA).

[43]  Tao Li,et al.  Exploiting the Dynamics of Soft Materials for Machine Learning , 2018, Soft robotics.

[44]  Cecilia Laschi,et al.  Model-Based Reinforcement Learning for Closed-Loop Dynamic Control of Soft Robotic Manipulators , 2019, IEEE Transactions on Robotics.

[45]  Inderjeet Singh,et al.  Curve Based Approach for Shape Reconstruction of Continuum Manipulators. (Modélisation par des Courbes pour la Reconstruction des Formes de Manipulateurs Continuums) , 2018 .

[46]  Kaspar Althoefer,et al.  Reduced Order vs. Discretized Lumped System Models with Absolute and Relative States for Continuum Manipulators , 2019, Robotics: Science and Systems.

[47]  D. Caleb Rucker,et al.  Elastic Stability of Cosserat Rods and Parallel Continuum Robots , 2017, IEEE Transactions on Robotics.

[48]  Mostafa Sayahkarajy,et al.  Mode shape analysis, modal linearization, and control of an elastic two-link manipulator based on the normal modes , 2018, Applied Mathematical Modelling.

[49]  Steffen Zschaler,et al.  A Matlab-Internal DSL for Modelling Hybrid Rigid-Continuum Robots with TMTDyn , 2019, 2019 ACM/IEEE 22nd International Conference on Model Driven Engineering Languages and Systems Companion (MODELS-C).

[50]  Ali Meghdari,et al.  Singularity-free planning for a robot cat free-fall with control delay: Role of limbs and tail , 2017, 2017 8th International Conference on Mechanical and Aerospace Engineering (ICMAE).

[51]  Peter I. Corke Robotics, Vision and Control - Fundamental Algorithms In MATLAB® Second, Completely Revised, Extended And Updated Edition, Second Edition , 2017, Springer Tracts in Advanced Robotics.

[52]  Nikolaus Correll,et al.  Shape-Changing Materials Using Variable Stiffness and Distributed Control. , 2018, Soft robotics.

[53]  Arianna Menciassi,et al.  Hybrid Soft-Rigid Actuators for Minimally Invasive Surgery. , 2018, Soft robotics.

[54]  Koji Shibuya,et al.  Computational model for tactile sensing system with wrinkle’s morphological change , 2018, Adv. Robotics.

[55]  I. Walker,et al.  Elasticity vs. Hyperelasticity Considerations in Quasi-Static Modelling of a Soft Finger-like Robotic Appendage for Real-time Position & Force Estimation , 2018 .

[56]  Cosimo Della Santina,et al.  Dynamic control of soft robots interacting with the environment , 2018, 2018 IEEE International Conference on Soft Robotics (RoboSoft).

[57]  D. Caleb Rucker,et al.  Statics and Dynamics of Continuum Robots With General Tendon Routing and External Loading , 2011, IEEE Transactions on Robotics.

[58]  Jérémie Dequidt,et al.  Software toolkit for modeling, simulation, and control of soft robots , 2017, Adv. Robotics.

[59]  M Calisti,et al.  Bioinspired locomotion and grasping in water: the soft eight-arm OCTOPUS robot , 2015, Bioinspiration & biomimetics.

[60]  John Till,et al.  Real-time dynamics of soft and continuum robots based on Cosserat rod models , 2019, Int. J. Robotics Res..

[61]  Lakmal D. Seneviratne,et al.  Discrete Cosserat Approach for Multi-Section Soft Robots Dynamics , 2017, ArXiv.

[62]  Hiromi Mochiyama,et al.  Real-time shape estimation of Kirchhoff elastic rod based on force/torque sensor , 2017, 2017 IEEE International Conference on Robotics and Automation (ICRA).

[63]  Lakmal Seneviratne,et al.  Discrete Cosserat Approach for Multisection Soft Manipulator Dynamics , 2017, IEEE Transactions on Robotics.

[64]  S. M. Hadi Sadati,et al.  Control Space Reduction and Real-Time Accurate Modeling of Continuum Manipulators Using Ritz and Ritz–Galerkin Methods , 2018, IEEE Robotics and Automation Letters.

[65]  Tao Li,et al.  Information processing via physical soft body , 2015, Scientific Reports.

[66]  Darwin G. Caldwell,et al.  Locomotion with continuum limbs , 2012, 2012 IEEE/RSJ International Conference on Intelligent Robots and Systems.

[67]  S. M. Hadi Sadati,et al.  Toward Computing with Spider Webs: Computational Setup Realization , 2018, Living Machines.

[68]  L. Mahadevan,et al.  Forward and inverse problems in the mechanics of soft filaments , 2018, Royal Society Open Science.

[69]  CianchettiMatteo,et al.  Soft Robotics Technologies to Address Shortcomings in Today's Minimally Invasive Surgery: The STIFF-FLOP Approach , 2014 .

[70]  Arianna Menciassi,et al.  Soft Robots in Surgery , 2017 .

[71]  Martin Fowler,et al.  Domain-Specific Languages , 2010, The Addison-Wesley signature series.

[72]  Seri Mastura Mustaza,et al.  Dynamic Modeling of Fiber-Reinforced Soft Manipulator: A Visco-Hyperelastic Material-Based Continuum Mechanics Approach. , 2019, Soft robotics.

[73]  M. Naraghi,et al.  An Automatic Algorithm to Derive Linear Vector Form of Lagrangian Equation of Motion with Collision and Constraint , 2015 .

[74]  Helmut Hauser,et al.  Morphological Computation and Morphological Control: Steps Toward a Formal Theory and Applications , 2013, Artificial Life.

[75]  John J. Craig Zhu,et al.  Introduction to robotics mechanics and control , 1991 .

[76]  Richard Q. van der Linde,et al.  Delft Pneumatic Bipeds , 2007 .

[77]  Ivan Giorgio,et al.  Modelling flexible multi-link robots for vibration control: Numerical simulations and real-time experiments , 2019 .