Comparing joint kinematics and center of mass acceleration as feedback for control of standing balance by functional neuromuscular stimulation

被引:0
作者
Raviraj Nataraj
Musa L Audu
Ronald J Triolo
机构
[1] Case Western Reserve University,Biomedical Engineering Department
[2] Louis Stokes Veterans Affairs Medical Center,Motion Study Laboratory
[3] Case Western Reserve University,Orthopaedics Department
来源
Journal of NeuroEngineering and Rehabilitation | / 9卷
关键词
Biomechanics; Standing balance; Biomedical engineering technology; Rehabilitation;
D O I
暂无
中图分类号
学科分类号
摘要
引用
收藏
相关论文
共 55 条
[1]  
Triolo RJ(1999)Lower extremity applications of functional neuromuscular stimulation after spinal cord injury Topics in SCI Rehabil 5 44-65
[2]  
Bogie K(1986)Design and simulation of closed-loop electrical stimulation orthoses for restoration of quiet standing in paraplegia J Biomech 19 825-835
[3]  
Jaeger RJ(1993)Characterization of paraplegic disturbance response during FNS standing IEEE Trans Rehabil Eng 1 43-48
[4]  
Moynahan M(1988)Control of functional neuromuscular stimulation systems for standing and locomotion in paraplegics Proc IEEE 76 1155-1165
[5]  
Chizeck HJ(1991)Feedback control of coronal plane hip angle in paraplegic subjects using functional neuromuscular stimulation IEEE Trans Biomed Eng 38 687-698
[6]  
Chizeck HJ(2001)Control of paraplegic ankle joint stiffness using FES while standing Med Eng Phys 23 541-555
[7]  
Kobetic R(2010)Comprehensive joint-feedback control for standing by functional neuromuscular stimulation following spinal cord injury – a simulation study IEEE Trans Neural Syst Rehabil Eng 18 646-657
[8]  
Marsolais EB(2012)Center of mass acceleration feedback control for standing by functional neuromuscular stimulation – a simulation study J Rehabil Res Dev 49 279-296
[9]  
Abbas JJ(2006)Algorithm 856: APPSPACK 40: Asynchronous parallel pattern search for derivative-free optimization ACM Transactions on Mathematical Software 32 486-507
[10]  
Donner IH(1998)A bipedal, closed-chain dynamic model of the human lower extremities and pelvis for simulation-based development of standing and mobility neuroprostheses Proc IEEE EMBS 5 2605-2608