Skip to main content
Top
Published in: Journal of NeuroEngineering and Rehabilitation 1/2006

Open Access 01-12-2006 | Methodology

Error mapping controller: a closed loop neuroprosthesis controlled by artificial neural networks

Authors: Alessandra Pedrocchi, Simona Ferrante, Elena De Momi, Giancarlo Ferrigno

Published in: Journal of NeuroEngineering and Rehabilitation | Issue 1/2006

Login to get access

Abstract

Background

The design of an optimal neuroprostheses controller and its clinical use presents several challenges. First, the physiological system is characterized by highly inter-subjects varying properties and also by non stationary behaviour with time, due to conditioning level and fatigue. Secondly, the easiness to use in routine clinical practice requires experienced operators. Therefore, feedback controllers, avoiding long setting procedures, are required.

Methods

The error mapping controller (EMC) here proposed uses artificial neural networks (ANNs) both for the design of an inverse model and of a feedback controller. A neuromuscular model is used to validate the performance of the controllers in simulations. The EMC performance is compared to a Proportional Integral Derivative (PID) included in an anti wind-up scheme (called PIDAW) and to a controller with an ANN as inverse model and a PID in the feedback loop (NEUROPID). In addition tests on the EMC robustness in response to variations of the Plant parameters and to mechanical disturbances are carried out.

Results

The EMC shows improvements with respect to the other controllers in tracking accuracy, capability to prolong exercise managing fatigue, robustness to parameter variations and resistance to mechanical disturbances.

Conclusion

Different from the other controllers, the EMC is capable of balancing between tracking accuracy and mapping of fatigue during the exercise. In this way, it avoids overstressing muscles and allows a considerable prolongation of the movement. The collection of the training sets does not require any particular experimental setting and can be introduced in routine clinical practice.
Appendix
Available only for authorised users
Literature
1.
go back to reference Ferrarin M, Palazzo F, Riener R, Quintern J: Model-based control of FES-induced single joint movements. IEEE Trans Neural Syst Rehabil Eng 2001,9(3):245-257. 10.1109/7333.948452CrossRefPubMed Ferrarin M, Palazzo F, Riener R, Quintern J: Model-based control of FES-induced single joint movements. IEEE Trans Neural Syst Rehabil Eng 2001,9(3):245-257. 10.1109/7333.948452CrossRefPubMed
2.
go back to reference Chen J, Yu N, Huang D: Applying fuzzy logic to control cycling movement induced by functional electrical stimulation. IEEE Trans on Rehab Eng 1997,5(2):158-169. 10.1109/86.593285CrossRef Chen J, Yu N, Huang D: Applying fuzzy logic to control cycling movement induced by functional electrical stimulation. IEEE Trans on Rehab Eng 1997,5(2):158-169. 10.1109/86.593285CrossRef
3.
go back to reference Hunt K, Stone B, Negard N: Control strategies for integration of electric motor assist and functional electrical stimulation in paraplegic cycling: utility for exercise testing and mobile cycling. IEEE Trans Neur Sys Rehab Eng 2004,12(1):89-101. 10.1109/TNSRE.2003.819955CrossRef Hunt K, Stone B, Negard N: Control strategies for integration of electric motor assist and functional electrical stimulation in paraplegic cycling: utility for exercise testing and mobile cycling. IEEE Trans Neur Sys Rehab Eng 2004,12(1):89-101. 10.1109/TNSRE.2003.819955CrossRef
4.
go back to reference Riener R, Fuhr T: Patient-driven control of fes-supported standing-up: a simulation study. IEEE Trans Rehab Eng 1998, 6: 113-124. 10.1109/86.681177CrossRef Riener R, Fuhr T: Patient-driven control of fes-supported standing-up: a simulation study. IEEE Trans Rehab Eng 1998, 6: 113-124. 10.1109/86.681177CrossRef
5.
go back to reference Wieler M, Stein RB, Ladouceur M, Whittaker M, Smith AW: Multicenter evaluation of electrical stimulation systems for walking. Arch Phys Med Rehabil 1999, 80: 495-500. 10.1016/S0003-9993(99)90188-0CrossRefPubMed Wieler M, Stein RB, Ladouceur M, Whittaker M, Smith AW: Multicenter evaluation of electrical stimulation systems for walking. Arch Phys Med Rehabil 1999, 80: 495-500. 10.1016/S0003-9993(99)90188-0CrossRefPubMed
6.
go back to reference Haugland M, Larsen B, Burridge JH, Svaneborg N, Iversen H: A preliminary non-randomised study to evaluate the safety and performance of the acti-gait implanted drop-foot stimulator in established hemiplegia. In Proceedings of 9th Annual Conf Int FES Soc: 6–9 September 2004; Bournemouth UK Edited by: Duncan Wood, Paul Taylor. 2004, 153-55. Haugland M, Larsen B, Burridge JH, Svaneborg N, Iversen H: A preliminary non-randomised study to evaluate the safety and performance of the acti-gait implanted drop-foot stimulator in established hemiplegia. In Proceedings of 9th Annual Conf Int FES Soc: 6–9 September 2004; Bournemouth UK Edited by: Duncan Wood, Paul Taylor. 2004, 153-55.
7.
go back to reference Smith B, Peckham P, Keith M, Roscoe D: An externally powered, multichannel, implantable stimulator for versatile control of paralyzed muscle. IEEE Trans Biomech 1987,34(7):499-508.CrossRef Smith B, Peckham P, Keith M, Roscoe D: An externally powered, multichannel, implantable stimulator for versatile control of paralyzed muscle. IEEE Trans Biomech 1987,34(7):499-508.CrossRef
8.
go back to reference Ijzerman M, Stoffers T, In 't Groen F, et al.: The ness handmaster orthosis: restoration of hand function in c5 and stroke patients by means of electrical stimulation. J Rehabil Sci 1996, 9: 86-89. Ijzerman M, Stoffers T, In 't Groen F, et al.: The ness handmaster orthosis: restoration of hand function in c5 and stroke patients by means of electrical stimulation. J Rehabil Sci 1996, 9: 86-89.
9.
go back to reference Vitenzon AS, Mironov EM, Petrushanskaya KA: Functional electrostimulation of muscles as a method for restoring motor functions. Neurosci Behav Physiol 2005,35(7):709-14. 10.1007/s11055-005-0114-1CrossRefPubMed Vitenzon AS, Mironov EM, Petrushanskaya KA: Functional electrostimulation of muscles as a method for restoring motor functions. Neurosci Behav Physiol 2005,35(7):709-14. 10.1007/s11055-005-0114-1CrossRefPubMed
10.
go back to reference Stein RB, Chong SL, James KB, Kido A, Bell GJ, Tubman LA, Bélanger M: Electrical stimulation for therapy and mobility after spinal cord injury. Prog Brain Res 2002, 137: 27-34.CrossRefPubMed Stein RB, Chong SL, James KB, Kido A, Bell GJ, Tubman LA, Bélanger M: Electrical stimulation for therapy and mobility after spinal cord injury. Prog Brain Res 2002, 137: 27-34.CrossRefPubMed
11.
go back to reference Lan N, Crago PE, Chizeck HI: Control of end-point forces of a multijoint limb by functional electrical stimulation. IEEE Trans Biomed Eng 1991, 38: 953-965. 10.1109/10.88441CrossRefPubMed Lan N, Crago PE, Chizeck HI: Control of end-point forces of a multijoint limb by functional electrical stimulation. IEEE Trans Biomed Eng 1991, 38: 953-965. 10.1109/10.88441CrossRefPubMed
12.
go back to reference Marsolais EB, Kobetic R: Functional electrical stimulation for walking in paraplegia. J Bone Joint Surg 1987,69-A(5):728-733. Marsolais EB, Kobetic R: Functional electrical stimulation for walking in paraplegia. J Bone Joint Surg 1987,69-A(5):728-733.
13.
go back to reference Peckham PH, Keith MW: Motor prostheses for restoration of upper extremity function. In Neural Prostheses: Replacing Motor Function After Disuse or Disability. Edited by: Stein RB, Peckham PH, Popovic D. London, UK: Oxford Univ. Press; 1992:162-190. Peckham PH, Keith MW: Motor prostheses for restoration of upper extremity function. In Neural Prostheses: Replacing Motor Function After Disuse or Disability. Edited by: Stein RB, Peckham PH, Popovic D. London, UK: Oxford Univ. Press; 1992:162-190.
14.
go back to reference Hatwell MS, Oderkerk BJ, Sacher CA, Inhar GF: The development of a model reference adaptive controller to control the knee joint of paraplegics. IEEE Trans on Automatic Control 1991, 36: 683-691. 10.1109/9.86942CrossRef Hatwell MS, Oderkerk BJ, Sacher CA, Inhar GF: The development of a model reference adaptive controller to control the knee joint of paraplegics. IEEE Trans on Automatic Control 1991, 36: 683-691. 10.1109/9.86942CrossRef
15.
go back to reference Veltink P: Control of fes-induced cyclical movements of the lower leg. Med Biol Eng Comput 1991, 29: 8-12. 10.1007/BF02446096CrossRef Veltink P: Control of fes-induced cyclical movements of the lower leg. Med Biol Eng Comput 1991, 29: 8-12. 10.1007/BF02446096CrossRef
16.
go back to reference Chang G, Luh J, Liao G: A neuro-control system for the knee joint position control with quadriceps stimulation. IEEE Trans Rehabil Eng 1997, 5: 2-11. 10.1109/86.559344CrossRefPubMed Chang G, Luh J, Liao G: A neuro-control system for the knee joint position control with quadriceps stimulation. IEEE Trans Rehabil Eng 1997, 5: 2-11. 10.1109/86.559344CrossRefPubMed
17.
go back to reference Abbas J, Chizack H: Neural network control of functional neuromuscular stimulation systems: Computer simulation studies. IEEE Trans Biomed Eng 1995,42(11):1117-1127. 10.1109/10.469379CrossRefPubMed Abbas J, Chizack H: Neural network control of functional neuromuscular stimulation systems: Computer simulation studies. IEEE Trans Biomed Eng 1995,42(11):1117-1127. 10.1109/10.469379CrossRefPubMed
18.
go back to reference Riess J, Abbas J: Adaptive neural network control of cyclic movements using functional neuromuscular stimulation. IEEE Trans Rehab Eng 2000,8(1):42-52. 10.1109/86.830948CrossRef Riess J, Abbas J: Adaptive neural network control of cyclic movements using functional neuromuscular stimulation. IEEE Trans Rehab Eng 2000,8(1):42-52. 10.1109/86.830948CrossRef
19.
go back to reference Riess J, Abbas J: Adaptive control of cyclic movements as muscles fatigue using functional neuromuscular stimulation. IEEE Trans on Neural Syst and Rehab Eng 2001,9(3):326-330. 10.1109/7333.948462CrossRef Riess J, Abbas J: Adaptive control of cyclic movements as muscles fatigue using functional neuromuscular stimulation. IEEE Trans on Neural Syst and Rehab Eng 2001,9(3):326-330. 10.1109/7333.948462CrossRef
20.
go back to reference Jezernik S, Wassink RGV, Keller T: Sliding Mode Closed-Loop Control of FES: Controlling the Shank Movement. IEEE Trans on Biomed Eng 2004,51(2):263-272. 10.1109/TBME.2003.820393CrossRef Jezernik S, Wassink RGV, Keller T: Sliding Mode Closed-Loop Control of FES: Controlling the Shank Movement. IEEE Trans on Biomed Eng 2004,51(2):263-272. 10.1109/TBME.2003.820393CrossRef
21.
go back to reference Ferrante S, Pedrocchi A, Iannò M, De Momi E, Ferrarin M, Ferrigno G: Functional electrical stimulation controlled by artificial neural networks: pilot experiments with simple movements are promising for rehabilitation applications. Funct Neurol 2004,19(4):243-252.PubMed Ferrante S, Pedrocchi A, Iannò M, De Momi E, Ferrarin M, Ferrigno G: Functional electrical stimulation controlled by artificial neural networks: pilot experiments with simple movements are promising for rehabilitation applications. Funct Neurol 2004,19(4):243-252.PubMed
22.
go back to reference Kumpaty S, Narendra K, Parthasarathy K: Identification and control of dynamical systems using neural networks. IEEE Trans Neural Networks 1990, 1: 4-27. 10.1109/72.80202CrossRef Kumpaty S, Narendra K, Parthasarathy K: Identification and control of dynamical systems using neural networks. IEEE Trans Neural Networks 1990, 1: 4-27. 10.1109/72.80202CrossRef
23.
go back to reference Matsuoka K: Noise injection into inputs in back-propagation learning. IEEE Transactions on Systems, Man and Cybernetics 1992,22(3):436-440. 10.1109/21.155944CrossRef Matsuoka K: Noise injection into inputs in back-propagation learning. IEEE Transactions on Systems, Man and Cybernetics 1992,22(3):436-440. 10.1109/21.155944CrossRef
24.
go back to reference Hagan M, Menhaj M: Training feedforward networks with the Marquardt algorithm. IEEE Trans Neural Networks 1994,5(6):989-993. 10.1109/72.329697CrossRefPubMed Hagan M, Menhaj M: Training feedforward networks with the Marquardt algorithm. IEEE Trans Neural Networks 1994,5(6):989-993. 10.1109/72.329697CrossRefPubMed
25.
go back to reference Quintern J, Riener R, Rupprecht S: Comparison of simulation and experiments of different closed-loop strategies for functional electrical stimulation: experiments in paraplegics. Artif Organs 1997, 21: 232-235.CrossRefPubMed Quintern J, Riener R, Rupprecht S: Comparison of simulation and experiments of different closed-loop strategies for functional electrical stimulation: experiments in paraplegics. Artif Organs 1997, 21: 232-235.CrossRefPubMed
26.
go back to reference Ferrarin M, D'Acquisto E, Mingrino A, Pedotti A: PID controller for knee movement restoration with closed-loop fes system. Proceedings of the 18th Annual International Conference of the IEEE Engineering in Medicine and Biology Society: 31 October–3 November 1996; Amsterdam, The Netherlands 1996, 453-454. Ferrarin M, D'Acquisto E, Mingrino A, Pedotti A: PID controller for knee movement restoration with closed-loop fes system. Proceedings of the 18th Annual International Conference of the IEEE Engineering in Medicine and Biology Society: 31 October–3 November 1996; Amsterdam, The Netherlands 1996, 453-454.
27.
go back to reference Ferrante S, Previdi F, Ferrigno G: Model identification for fes supported standing up and sitting down. In Proceedings of 9th Annual Conf Int FES Soc: 6–9 September 2004; Bournemouth UK Edited by: Duncan Wood, Paul Taylor. 2004, 210-212. Ferrante S, Previdi F, Ferrigno G: Model identification for fes supported standing up and sitting down. In Proceedings of 9th Annual Conf Int FES Soc: 6–9 September 2004; Bournemouth UK Edited by: Duncan Wood, Paul Taylor. 2004, 210-212.
Metadata
Title
Error mapping controller: a closed loop neuroprosthesis controlled by artificial neural networks
Authors
Alessandra Pedrocchi
Simona Ferrante
Elena De Momi
Giancarlo Ferrigno
Publication date
01-12-2006
Publisher
BioMed Central
Published in
Journal of NeuroEngineering and Rehabilitation / Issue 1/2006
Electronic ISSN: 1743-0003
DOI
https://doi.org/10.1186/1743-0003-3-25

Other articles of this Issue 1/2006

Journal of NeuroEngineering and Rehabilitation 1/2006 Go to the issue