DocumentCode
612542
Title
Cerebellum-based adaptation for fine haptic control over the space of uncertain surfaces
Author
Barron-Gonzalez, H. ; Porrill, J. ; Lepora, N.F. ; Chinellato, Eris ; Metta, G. ; Prescott, T.J.
Author_Institution
Dept. of Psychol., Univ. of Sheffield, Sheffield, UK
fYear
2013
fDate
14-17 April 2013
Firstpage
353
Lastpage
358
Abstract
This work aims to augment the capacities for haptic perception in the iCub robot to generate a controller for surface exploration. The main task involves moving the hand over an irregular surface with uncertain slope, by concurrently regulating the pressure of the contact. Providing this ability will enable the autonomous extraction of important haptic features, such as texture and shape. We propose a hand controller whose operational space is defined over the surface of contact. The surface is estimated using a robust probabilistic estimator, which is then used for path planning. The motor commands are generated using a feedback controller, taking advantage of the kinematic information available by proprioception. Finally, the effectiveness of this controller is extended using a cerebellar-like adapter that generates reliable pressure tracking over the finger and results in a trajectory with less vulnerability to perturbations. The results of this work are consistent with insights about the role of the cerebellum on haptic perception in humans.
Keywords
brain; feedback; haptic interfaces; mechanical contact; mechanoception; mobile robots; path planning; perturbation techniques; robot kinematics; autonomous extraction; cerebellum-based adaptation; contact pressure; contact surface; feedback controller; fine haptic control; hand controller; haptic features; haptic perception capacities; haptic perception cerebellum; iCub robot; kinematic information; motor command generation; operational space; path planning; proprioception; reliable pressure tracking; robust probabilistic estimator; surface exploration controller; uncertain slope; uncertain surfaces space; End effectors; Force; Haptic interfaces; Joints; Kinematics; Robot sensing systems; Haptic perception; robot sensorimotor control; tactile exploration;
fLanguage
English
Publisher
ieee
Conference_Titel
World Haptics Conference (WHC), 2013
Conference_Location
Daejeon
Print_ISBN
978-1-4799-0087-9
Type
conf
DOI
10.1109/WHC.2013.6548434
Filename
6548434
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