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Publications

Anthropomorphic Robot arm movement model attractor dynamics approach attractor dynamics approach BCI behavior generation collision avoidance direct physical interaction dynamic neural field dynamical systems EEG haptic interface human robot collaboration image processing Inverse kinematics Machine Learning man machine interaction Man-machine-interaction manipulator dynamics movement model recurrent neural network redundant robot arm Reinforcement learning Robot manipulator control Robotics Robotics scene representation simulated reality Simulation speech recognition

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2010

4.

H Reimann; I Iossifidis; G Schöner

Generating collision free reaching movements for redundant manipulators using dynamical systems Inproceedings

In: 2010 IEEE/RSJ International Conference on Intelligent Robots and Systems, pp. 5372–5379, IEEE, 2010, ISBN: 978-1-4244-6674-0.

Abstract | Links | BibTeX | Tags: attractor dynamics approach, central nervous system, collision avoidance, dynamical systems, manipulator dynamics, obstacle avoidance, redundant robot arm

@inproceedings{Reimann2010b,
title = {Generating collision free reaching movements for redundant manipulators using dynamical systems},
author = {H Reimann and I Iossifidis and G Schöner},
url = {http://ieeexplore.ieee.org/xpl/freeabs_all.jsp?arnumber=5650603},
doi = {10.1109/IROS.2010.5650603},
isbn = {978-1-4244-6674-0},
year = {2010},
date = {2010-10-01},
booktitle = {2010 IEEE/RSJ International Conference on Intelligent Robots and Systems},
pages = {5372--5379},
publisher = {IEEE},
abstract = {For autonomous robots to manipulate objects in unknown environments, they must be able to move their arms without colliding with nearby objects, other agents or humans. The simultaneous avoidance of multiple obstacles in real time by all link segments of a manipulator is still a hard task both in practice and in theory. We present a systematic scheme for the generation of collision free movements for redundant manipulators in scenes with arbitrarily many obstacles. Based on the dynamical systems approach to robotics, constraints are formulated as contributions to a dynamical system that erect attractors for targets and repellors for obstacles. These contributions are formulated in terms of variables relevant to each constraint and then transformed into vector fields over the manipulator joint velocity vector as an embedding space in which all constraints are simultaneously observed. We demonstrate the feasibility of the approach by implementing it on a real anthropomorphic 8-degrees-of-freedom redundant manipulator. In addition, performance is characterized by detecting failures in a systematic simulation experiment in randomized scenes with varying numbers of obstacles.},
keywords = {attractor dynamics approach, central nervous system, collision avoidance, dynamical systems, manipulator dynamics, obstacle avoidance, redundant robot arm},
pubstate = {published},
tppubtype = {inproceedings}
}

Close

For autonomous robots to manipulate objects in unknown environments, they must be able to move their arms without colliding with nearby objects, other agents or humans. The simultaneous avoidance of multiple obstacles in real time by all link segments of a manipulator is still a hard task both in practice and in theory. We present a systematic scheme for the generation of collision free movements for redundant manipulators in scenes with arbitrarily many obstacles. Based on the dynamical systems approach to robotics, constraints are formulated as contributions to a dynamical system that erect attractors for targets and repellors for obstacles. These contributions are formulated in terms of variables relevant to each constraint and then transformed into vector fields over the manipulator joint velocity vector as an embedding space in which all constraints are simultaneously observed. We demonstrate the feasibility of the approach by implementing it on a real anthropomorphic 8-degrees-of-freedom redundant manipulator. In addition, performance is characterized by detecting failures in a systematic simulation experiment in randomized scenes with varying numbers of obstacles.

Close

  • http://ieeexplore.ieee.org/xpl/freeabs_all.jsp?arnumber=5650603
  • doi:10.1109/IROS.2010.5650603

Close

3.

H Reimann; Ioannis Iossifidis; G Schöner

Generating collision free reaching movements for redundant manipulators using dynamical systems Inproceedings

In: 2010 IEEE/RSJ International Conference on Intelligent Robots and Systems, pp. 5372–5379, IEEE, 2010, ISBN: 978-1-4244-6674-0.

Abstract | Links | BibTeX | Tags: anthropomorphic arm, attractor dynamics approach, autonomous obstacle avoidance, central nervous system, collision avoidance, dynamical systems, manipulator dynamics, redundant manipulators, redundant robot arm

@inproceedings{Reimann2010bb,
title = {Generating collision free reaching movements for redundant manipulators using dynamical systems},
author = {H Reimann and Ioannis Iossifidis and G Schöner},
url = {http://ieeexplore.ieee.org/xpl/freeabs_all.jsp?arnumber=5650603},
doi = {10.1109/IROS.2010.5650603},
isbn = {978-1-4244-6674-0},
year = {2010},
date = {2010-10-01},
urldate = {2010-10-01},
booktitle = {2010 IEEE/RSJ International Conference on Intelligent Robots and Systems},
pages = {5372--5379},
publisher = {IEEE},
abstract = {For autonomous robots to manipulate objects in unknown environments, they must be able to move their arms without colliding with nearby objects, other agents or humans. The simultaneous avoidance of multiple obstacles in real time by all link segments of a manipulator is still a hard task both in practice and in theory. We present a systematic scheme for the generation of collision free movements for redundant manipulators in scenes with arbitrarily many obstacles. Based on the dynamical systems approach to robotics, constraints are formulated as contributions to a dynamical system that erect attractors for targets and repellors for obstacles. These contributions are formulated in terms of variables relevant to each constraint and then transformed into vector fields over the manipulator joint velocity vector as an embedding space in which all constraints are simultaneously observed. We demonstrate the feasibility of the approach by implementing it on a real anthropomorphic 8-degrees-of-freedom redundant manipulator. In addition, performance is characterized by detecting failures in a systematic simulation experiment in randomized scenes with varying numbers of obstacles.},
keywords = {anthropomorphic arm, attractor dynamics approach, autonomous obstacle avoidance, central nervous system, collision avoidance, dynamical systems, manipulator dynamics, redundant manipulators, redundant robot arm},
pubstate = {published},
tppubtype = {inproceedings}
}

Close

For autonomous robots to manipulate objects in unknown environments, they must be able to move their arms without colliding with nearby objects, other agents or humans. The simultaneous avoidance of multiple obstacles in real time by all link segments of a manipulator is still a hard task both in practice and in theory. We present a systematic scheme for the generation of collision free movements for redundant manipulators in scenes with arbitrarily many obstacles. Based on the dynamical systems approach to robotics, constraints are formulated as contributions to a dynamical system that erect attractors for targets and repellors for obstacles. These contributions are formulated in terms of variables relevant to each constraint and then transformed into vector fields over the manipulator joint velocity vector as an embedding space in which all constraints are simultaneously observed. We demonstrate the feasibility of the approach by implementing it on a real anthropomorphic 8-degrees-of-freedom redundant manipulator. In addition, performance is characterized by detecting failures in a systematic simulation experiment in randomized scenes with varying numbers of obstacles.

Close

  • http://ieeexplore.ieee.org/xpl/freeabs_all.jsp?arnumber=5650603
  • doi:10.1109/IROS.2010.5650603

Close

2009

2.

Ioannis Iossifidis; Gregor Schöner

Reaching while avoiding obstacles: a neuronally inspired attractor dynamics approach Inproceedings

In: Bernstein Conference on Computational Neuroscience (BCCN 2009), 2009.

Links | BibTeX | Tags: central nervous system, collision avoidance, dynamical systems, manipulator dynamics, obstacle avoidance, redundant robot arm

@inproceedings{Iossifidis2009,
title = {Reaching while avoiding obstacles: a neuronally inspired attractor dynamics approach},
author = {Ioannis Iossifidis and Gregor Schöner},
doi = {10.3389/conf.neuro.10.2009.14.007},
year = {2009},
date = {2009-01-01},
booktitle = {Bernstein Conference on Computational Neuroscience (BCCN 2009)},
keywords = {central nervous system, collision avoidance, dynamical systems, manipulator dynamics, obstacle avoidance, redundant robot arm},
pubstate = {published},
tppubtype = {inproceedings}
}

Close

  • doi:10.3389/conf.neuro.10.2009.14.007

Close

1.

Ioannis Iossifidis; Gregor Schöner

Reaching while avoiding obstacles: a neuronally inspired attractor dynamics approach Inproceedings

In: Bernstein Conference on Computational Neuroscience (BCCN 2009), 2009.

Links | BibTeX | Tags: anthropomorphic arm, central nervous system, collision avoidance, dynamical systems, manipulator dynamics, obstacle avoidance, redundant manipulators, redundant robot arm

@inproceedings{Iossifidis2009b,
title = {Reaching while avoiding obstacles: a neuronally inspired attractor dynamics approach},
author = {Ioannis Iossifidis and Gregor Schöner},
doi = {10.3389/conf.neuro.10.2009.14.007},
year = {2009},
date = {2009-01-01},
booktitle = {Bernstein Conference on Computational Neuroscience (BCCN 2009)},
keywords = {anthropomorphic arm, central nervous system, collision avoidance, dynamical systems, manipulator dynamics, obstacle avoidance, redundant manipulators, redundant robot arm},
pubstate = {published},
tppubtype = {inproceedings}
}

Close

  • doi:10.3389/conf.neuro.10.2009.14.007

Close

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