Reflexes and preflexes: on the role of sensory feedback on rhythmic patterns in insect locomotion
@article{Proctor2010ReflexesAP, title={Reflexes and preflexes: on the role of sensory feedback on rhythmic patterns in insect locomotion}, author={Joshua L. Proctor and Philip Holmes}, journal={Biological Cybernetics}, year={2010}, volume={102}, pages={513-531} }
Neuromuscular systems are stabilized and controlled by both feedforward and feedback signals. Feedforward pathways driven by central pattern generators (CPGs), in conjunction with preflexive mechanical reaction forces and nonlinear muscle properties, can produce stable stereotypical gaits. Feedback is nonetheless present in both slow and rapid running, and preflexive mechanisms can join with neural reflexes originating in proprioceptive sensors to yield robust behavior in uncertain environments…Â
51 Citations
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References
SHOWING 1-10 OF 74 REFERENCES
Neuromechanical models for insect locomotion: Stability, maneuverability, and proprioceptive feedback.
- BiologyChaos
- 2009
A hierarchy of models for legged locomotion, emphasizing relationships among feedforward (preflexive) stability, maneuverability, and reflexive feedback is described, with preliminary studies of proprioceptive leg force feedback showing how a reflexive pathway can reinforce the preflexive stability inherent in the system.
Synaptic drive contributing to rhythmic activation of motoneurons in the deafferented stick insect walking system
- BiologyThe European journal of neuroscience
- 2004
The results indicate that alternating rhythmic motoneuron activity in the deafferented stick insect walking system results from phasic inhibitory drive provided by central pattern generating networks.
Central Programming and Reflex Control of Walking in the Cockroach
- Biology
- 1972
Reciprocal activity in levator and depressor motoneurones can be evoked, or occurs spontaneously, in the partially de-afferented preparations, thus indicating the existence of a central locomotory rhythm generator.
A model for insect locomotion in the horizontal plane: feedforward activation of fast muscles, stability, and robustness.
- BiologyJournal of theoretical biology
- 2009
Simulations of neuromuscular control in lamprey swimming.
- BiologyPhilosophical transactions of the Royal Society of London. Series B, Biological sciences
- 1999
Neuromechanical simulations of the neuronal generation of vertebrate locomotion in the lamprey show that the currently known network is sufficient for generating a whole repertoire of swimming patterns, and that vestibular signals can stabilize the posture during swimming.
Neuromechanical response of musculo-skeletal structures in cockroaches during rapid running on rough terrain
- BiologyJournal of Experimental Biology
- 2008
A musculo-skeletal structure can stabilize rapid locomotion using neural and/or mechanical feedback and arthropods appear to simplify control on rough terrain by rapid running that uses kinetic energy to bridge gaps between footholds and distributed mechanical feedback to stabilize the body.
Nonlinear Muscles, Passive Viscoelasticity and Body Taper Conspire To Create Neuromechanical Phase Lags in Anguilliform Swimmers
- Engineering, BiologyPLoS Comput. Biol.
- 2008
A model of anguilliform (eel-like) swimming in slender fishes is constructed and it is found that nonlinear force dependence on muscle length and shortening velocity may reduce the work done by the swimming muscles in steady swimming.
Templates and anchors: neuromechanical hypotheses of legged locomotion on land.
- BiologyThe Journal of experimental biology
- 1999
Anchored templates of many-legged, sprawled-postured animals suggest that passive, dynamic self-stabilization from a feedforward, tuned mechanical system can reject rapid perturbations and simplify control.
A hierarchical foundation for models of sensorimotor control
- Biology, PsychologyExperimental Brain Research
- 1999
A general hierarchical approach to modeling sensorimotor systems is suggested, which better reflects the real control problem faced by the brain, as a first step toward identifying the actual neurocomputational steps and their anatomical partitioning in the brain.