Movement Generation with Circuits of Spiking Neurons
Open Access
- 1 August 2005
- journal article
- research article
- Published by MIT Press in Neural Computation
- Vol. 17 (8) , 1715-1738
- https://doi.org/10.1162/0899766054026684
Abstract
How can complex movements that take hundreds of milliseconds be generated by stereotypical neural microcircuits consisting of spiking neurons with a much faster dynamics? We show that linear readouts from generic neural microcircuit models can be trained to generate basic arm movements. Such movement generation is independent of the arm model used and the type of feedback that the circuit receives. We demonstrate this by considering two different models of a two-jointed arm, a standard model from robotics and a standard model from biology, that each generates different kinds of feedback. Feedback that arrives with biologically realistic delays of 50 to 280 ms turns out to give rise to the best performance. If a feedback with such desirable delay is not available, the neural microcircuit model also achieves good performance if it uses internally generated estimates of such feedback. Existing methods for movement generation in robotics that take the particular dynamics of sensors and actuators into account (embodiment of motor systems) are taken one step further with this approach, which provides methods for also using the embodiment of motion generation circuitry, that is, the inherent dynamics and spatial structure of neural circuits, for the generation of movement.Keywords
This publication has 10 references indexed in Scilit:
- On the computational power of circuits of spiking neuronsJournal of Computer and System Sciences, 2004
- Harnessing Nonlinearity: Predicting Chaotic Systems and Saving Energy in Wireless CommunicationScience, 2004
- Combinations of muscle synergies in the construction of a natural motor behaviorNature Neuroscience, 2003
- Real-Time Computing Without Stable States: A New Framework for Neural Computation Based on PerturbationsNeural Computation, 2002
- Role of uncertainty in sensorimotor controlPhilosophical Transactions Of The Royal Society B-Biological Sciences, 2002
- Real-time prediction of hand trajectory by ensembles of cortical neurons in primatesNature, 2000
- Direct cortical control of muscle activation in voluntary arm movements: a modelNature Neuroscience, 2000
- Organizing Principles for a Diversity of GABAergic Interneurons and Synapses in the NeocortexScience, 2000
- Differential signaling via the same axon of neocortical pyramidal neuronsProceedings of the National Academy of Sciences, 1998
- Temporal Information Transformed into a Spatial Code by a Neural Network with Realistic PropertiesScience, 1995