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Seyed Sina Mirrazavi Salehian

dblp:164/8458 · DBLP profile ↗
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4ranked-venue papers
2as first author
0since 2021 · last 2020
0000-0001-7448-101XORCID · corroborated

Domains — the database's venue-derived domains; a paper can count in several

Artificial intelligence and machine learning · 3 · 1 first-authorSystems, architecture and hardware · 2Graphics, computer vision, multimedia, augmented reality and games · 1 · 1 first-authorApplied, interdisciplinary, general and emerging computing · 1 · 1 first-author

Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.

Artificial intelligence
4 papers
Robot manipulation · 79% Motion planning and robot control · 21%

Topics — the 6 heaviest of 7, each with the papers that count most for it

TopicWeightPapersLastEvidence papers
Robotics › Robot manipulation
compliant manipulation
0.412020
Arm-hand motion-force coordination for physical interactions with non-flat surfaces using dynamical systems: Toward compliant robotic massage · ICRA 2020
Robotics › Motion planning and robot control › robot control › motion control
coordinated multi-arm control
0.312017
Dynamical System-Based Motion Planning for Multi-Arm Systems: Reaching for Moving Objects · IJCAI 2017
Robotics › Robot manipulation › cooperative manipulation
multi-arm manipulation
0.312017
Dynamical System-Based Motion Planning for Multi-Arm Systems: Reaching for Moving Objects · IJCAI 2017
Robotics › Robot manipulation
grasping
0.212016
A Dynamical System Approach for Softly Catching a Flying Object: Theory and Experiment · IEEE Trans. Robotics 2016
Robotics › Robot manipulation
physical human-robot interaction
0.112020
Arm-hand motion-force coordination for physical interactions with non-flat surfaces using dynamical systems: Toward compliant robotic massage · ICRA 2020
Robotics › Motion planning and robot control › motion planning
configuration planning
0.112015
An under actuated robotic arm with adjustable stiffness shape memory polymer joints · ICRA 2015

Methods — techniques the papers use, named apart from their topics

support vector regression · 0.4impedance control · 0.4dynamical systems · 0.4virtual object · 0.3dynamical systems control · 0.3optimal control · 0.2lyapunov stability theory · 0.2gaussian mixture model · 0.2shape memory polymer joints · 0.2probabilistic configuration planning · 0.2
YearPublicationVenuePosition
2020 Arm-hand motion-force coordination for physical interactions with non-flat surfaces using dynamical systems: Toward compliant robotic massage
abstract
Many manipulation tasks require coordinated motions for arm and fingers. Complexity increases when the task requires to control for the force at contact against a non-flat surface; This becomes even more challenging when this contact is done on a human. All these challenges are regrouped when one, for instance, massages a human limb. When massaging, the robotic arm is required to continuously adapt its orientation and distance to the limb while the robot fingers exert desired patterns of forces and motion on the skin surface. To address these challenges, we adopt a Dynamical System (DS) approach that offers a unified motion-force control approach and enables to easily coordinate multiple degrees of freedom. As each human limb may slightly differ, we learn a model of the surface using support vector regression (SVR) which enable us to obtain a distance-to-surface mapping. The gradient of this mapping, along with the DS, generates the desired motions for the interaction with the surface. A DS-based impedance control for the robotic fingers allows to control separately for force along the normal direction of the surface while moving in the tangential plane. We validate our approach using the KUKA IIWA robotic arm and Allegro robotic hand for massaging a mannequin arm covered with a skin-like material. We show that our approach allows for 1) reactive motion planning to reach for an unknown surface, 2) following desired motion patterns on the surface, and 3) exerting desired interaction forces profiles. Our results show the effectiveness of our approach; especially the robustness toward uncertainties for shape and the given location of the surface.
Mahdi Khoramshahi, Gustav Henriks, Aileen C. Naef, Seyed Sina Mirrazavi Salehian, Joonyoung Kim 0002, Aude Billard
ICRA4
2017 Dynamical System-Based Motion Planning for Multi-Arm Systems: Reaching for Moving Objects
abstract
The use of coordinated multi-arm robotic systems allows to preform manipulations of heavy or bulky objects that would otherwise be infeasible for a single-arm robot. This paper concisely introduces our work on coordinated multi-arm control [Salehian et al., 2016a], where we proposed a virtual object based dynamical systems (DS) control law to generate autonomous and synchronized motions for a multi-arm robot system. We show theoretically and empirically that the multi-arm + virtual object system converges asymptotically to a moving object. The proposed framework is validated on a dual-arm robotic system. We demonstrate that it can re-synchronize and adapt the motion of each arm in a fraction of a second, even when the object’s motion is fast and not accurately predictable.
Seyed Sina Mirrazavi Salehian, Nadia Figueroa, Aude Billard
IJCAI1
2016 A Dynamical System Approach for Softly Catching a Flying Object: Theory and Experiment
abstract
Catching a fast flying object is particularly challenging as it consists of two tasks: extremely precise estimation of the object's motion and control of the robot's motion. Any small imprecision may lead the fingers to close too abruptly and let the object fly away from the hand before closing. We present a strategy to overcome for sensorimotor imprecision by introducing softness in the catching approach. Soft catching consists of having the robot moves with the object for a short period of time, so as to leave more time for the fingers to close on the object. We use a dynamic system-based control law to generate the appropriate reach and follow motion, which is expressed as a linear parameter varying (LPV) system. We propose a method to approximate the parameters of LPV systems using Gaussian mixture models, based on a set of kinematically feasible demonstrations generated by an offline optimal control framework. We show theoretically that the resulting DS will intercept the object at the intercept point, at the right time with the desired velocity direction. Stability and convergence of the approach are assessed through Lyapunov stability theory. The proposed method is validated systematically to catch three objects that generate elastic contacts and demonstrate important improvement over a hard catching approach.
Seyed Sina Mirrazavi Salehian, Mahdi Khoramshahi, Aude Billard
IEEE Trans. Robotics1
2015 An under actuated robotic arm with adjustable stiffness shape memory polymer joints
abstract
Various robotic applications including surgical instruments, wearable robots and autonomous mobile robots are often constrained with strict design requirements on high degrees of freedom (DoF) and minimal volume and weight. An intuitive design to meet these contradictory requirements is to embed locking mechanism in under actuated robotic manipulators to direct the actuation from a single and remote source to drive different joints on demand. Mechanical clutches do serve such purposes but often are bulky and require auxiliary mechanism making it difficult to justify the high cost adding the additional DoF, especially in cm scale. Here, we introduce an under-actuated robotic arm with shape memory polymer (SMP) joints. Through controlling the temperature, the stiffness of the joints can be adjusted and selected joints will be activated while the rest are fixed in their position. The presented prototype can control the joints independently with a coupled actuation from two stepper motors. Since we have redundant DoFs in the arm, there can be more than one configuration to reach a given position. We use a probabilistic technique to determine the optimum configuration with the minimum number of active joints that can yield the desired posture. In this paper, we report on the performance of the proposed design for the hardware and the configuration planner.
Amir Firouzeh, Seyed Sina Mirrazavi Salehian, Aude Billard, Jamie Kyujin Paik
ICRA2