DocumentCode :
1710037
Title :
A computational model of the spastic behavior of the lower limb
Author :
Mantilla, B. ; Foulds, R. ; Sisto, S.A.
Author_Institution :
Biomed. Eng., New Jersey Inst. of Technol., Newark, NJ, USA
fYear :
2003
Firstpage :
277
Lastpage :
278
Abstract :
Three different levels of analysis were conducted in a parallel fashion in order to understand spasticity. First we observed the behavior of the patient´s limb muscles as the examination was conducted, both in normal volunteers and in patients with different degrees of spasticity. Second we analyzed the mathematical behavior of the curves depicted during the examination. Third we created a computer model that could mimic the behavior of the patients test. The data showed a progressive displacement of the final resting position from the normal vertical, as the spasticity severity progressed, to a more horizontal position near the starting position. Also, a diminished oscillating time as a consequence of transition from an under-damped to a critically damped and finally over-damped type of behavior, as spasticity was incremented. The computer model was constructed based on the second order differential equation that describes an oscillator. Subsequently, extra forces, identified by the EMG and clinical observation of the patients, were added to the model in order to reproduce the extra torques. Finally, two different components of the system are identified as needed, in order to adequately conduct the modeling. As a result, a biomechanical definition of spasticity is proposed.
Keywords :
biocontrol; biomechanics; diseases; electromyography; muscle; neurophysiology; physiological models; torque; EMG; biomechanical definition; clinical observation; computational model; critically damped behavior; different spasticity degrees; diminished oscillating time; extra torques; final resting position; limb muscles; lower limb; mathematical behavior; more horizontal position; normal neuromuscular control coupling function; normal vertical position; normal volunteers; over-damped behavior; progressive displacement; second order differential equation; spastic behavior; starting position; under-damped behavior; Biomedical computing; Computational modeling; Differential equations; Electromyography; Knee; Medical tests; Motion analysis; Muscles; Neurons; Oscillators;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Bioengineering Conference, 2003 IEEE 29th Annual, Proceedings of
Print_ISBN :
0-7803-7767-2
Type :
conf
DOI :
10.1109/NEBC.2003.1216102
Filename :
1216102
Link To Document :
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