Journal article
Modeling of Endpoint Feedback Learning Implemented Through Point-to-Point Learning Control
SH Zhou, Y Tan, D Oetomo, C Freeman, E Burdet, I Mareels
IEEE Transactions on Control Systems Technology | IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC | Published : 2017
Abstract
In the last decade, several experiments were conducted to investigate human motor control behavior for the task of arm reaching, using only visual feedback of the final hand position at the end of each reaching motion. Current computational frameworks have yet to model that the humans learn to complete such a task by feedforward action based on the feedback of a displacement error at the end of past reaching motions. This paper demonstrates how such learning can be formulated as an optimization problem. By designing a cost function which weighs the tracking of the target and the smoothness of human motion, the constructed framework, implemented in the form of point-to-point learning control,..
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Funding Acknowledgements
This work was supported in part by the Australian Research Council under Project FT0991385 (Future Fellow), Project DP130100849 and Project DP160104018 (Discovery Projects), and in part by the COGIMON under Grant EU H2020 ICT-644727. Recommended by Associate Editor A. Behal.