Title :
Sensitivity analysis of an analog circuit model of lamprey unit pattern generator
Author :
Brauer, Elizabeth J. ; Jung, Ranu ; Wilson, Denise ; Abbas, James J.
Author_Institution :
Dept. of Electr. Eng., Kentucky Univ., Lexington, KY, USA
Abstract :
Neural circuitry within the spinal cord of the lamprey, a primitive vertebrate, can generate self-sustained oscillations for locomotion (swimming). This pattern generator can be modeled as a chain of oscillatory unit pattern generator segments which exhibit behavior depending on the parameter values in the network. Here, the authors present the results of a simulation study of an analog electronic circuit which mimics the behavior of the biological lamprey unit pattern generator. The circuitry mimics a neural network containing 6 neurons with simplified biophysical properties. The analog circuit exhibits symmetric oscillations, asymmetric oscillations, and fixed points, similar to the behavior of the mathematical model of the lamprey. This work is the first in a series of circuits designed to have possible applications in neuroscience research and in the development of artificial locomotor systems
Keywords :
analogue circuits; biocontrol; biomechanics; circuit oscillations; neurophysiology; physiological models; sensitivity analysis; signal generators; zoology; analog circuit model; analog electronic circuit; artificial locomotor systems; asymmetric oscillations; fixed points; lamprey unit pattern generator; locomotion; neural circuitry; oscillatory unit pattern generator segments; primitive vertebrate; self-sustained oscillations; sensitivity analysis; simplified biophysical properties; spinal cord; swimming; symmetric oscillations; Analog circuits; Biological neural networks; Biological system modeling; Circuit simulation; Electronic circuits; Mathematical model; Neurons; Neuroscience; Sensitivity analysis; Spinal cord;
Conference_Titel :
Neural Networks,1997., International Conference on
Conference_Location :
Houston, TX
Print_ISBN :
0-7803-4122-8
DOI :
10.1109/ICNN.1997.616158