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Trajectory Formation of Arm Movement by Cascade Neural Network Model Based on Minimum Torque-change Criterion

Overview
Journal Biol Cybern
Specialties Neurology
Physiology
Date 1990 Jan 1
PMID 2310782
Citations 29
Authors
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Abstract

We proposed that the trajectory followed by human subject arms tended to minimize the time integral of the square of the rate of change of torque (Uno et al. 1987). This minimum torque-change model predicted and reproduced human multi-joint movement data quite well (Uno et al. 1989). Here, we propose a neural network model for trajectory formation based on the minimum torque-change criterion. Basic ideas of information representation and algorithm are (i) spatial representation of time, (ii) learning of forward dynamics and kinetics model and (iii) relaxation computation based on the acquired model. The model can resolve ill-posed inverse kinematics and inverse dynamics problems for redundant controlled object as well as ill-posed trajectory formation problems. By computer simulation, we show that the model can produce a multi-joint arm trajectory while avoiding obstacles or passing through viapoints.

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References
1.
Uno Y, Kawato M, Suzuki R . Formation and control of optimal trajectory in human multijoint arm movement. Minimum torque-change model. Biol Cybern. 1989; 61(2):89-101. DOI: 10.1007/BF00204593. View

2.
Kawato M, Isobe M, Maeda Y, Suzuki R . Coordinates transformation and learning control for visually-guided voluntary movement with iteration: a Newton-like method in a function space. Biol Cybern. 1988; 59(3):161-77. DOI: 10.1007/BF00318008. View

3.
Poggio T, Torre V, Koch C . Computational vision and regularization theory. Nature. 1985; 317(6035):314-9. DOI: 10.1038/317314a0. View

4.
Hogan N . An organizing principle for a class of voluntary movements. J Neurosci. 1984; 4(11):2745-54. PMC: 6564718. View

5.
Flash T . The control of hand equilibrium trajectories in multi-joint arm movements. Biol Cybern. 1987; 57(4-5):257-74. DOI: 10.1007/BF00338819. View