Synergistic Elbow Control for a Myoelectric Transhumeral Prosthesis

被引:19
|
作者
Alshammary, Nasser A. [1 ,2 ]
Bennett, Daniel A. [1 ]
Goldfarb, Michael [1 ]
机构
[1] Vanderbilt Univ, Ctr Intelligent Mechatron, Nashville, TN 37212 USA
[2] King Abdulaziz City Sci & Technol, Riyadh 11442, Saudi Arabia
关键词
Myoelectric control; transhumeral prosthesis; myoelectric elbow control; electromyograms (EMG) control; coordinated control; MOVEMENTS; ARM; DISTAL;
D O I
10.1109/TNSRE.2017.2781719
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
This paper presents a control approach for a myoelectric transhumeral prostheses that supplements a typical two-site electromyograms (EMG) input with the inertial measurement of arm motion. The inertial measurement is employed to: 1) provide synergistic movement between the prosthetic elbow joint and intact upper arm and 2) to switch control between the myoelectric elbow and hand. In order to assess the prospective efficacy of the control method, experiments were conducted on six healthy subjects who performed a series of pick-and-place tasks within a virtual environment. The assessments compared the time required to complete the pick-and-place tasks using the proposed coordinated control approach, with the time required using a sequential control approach (i.e., the conventional approach used in commercial devices). Subjects on average completed the pick-and-place tasks 34% fasterwith the coordinated control approach, relative to the conventionals equential EMG method, with no difference in compensatory torso motion.
引用
收藏
页码:468 / 476
页数:9
相关论文
共 50 条
  • [21] EMG Based Control of Transhumeral Prosthesis Using Machine Learning Algorithms
    Sattar, Neelum Yousaf
    Kausar, Zareena
    Usama, Syed Ali
    Farooq, Umer
    Khan, Umar Shahbaz
    INTERNATIONAL JOURNAL OF CONTROL AUTOMATION AND SYSTEMS, 2021, 19 (10) : 3522 - 3532
  • [22] Fabrication and application of an adjustable myoelectric transhumeral prosthetic socket
    Schofield, Jonathon S.
    Schoepp, Katherine R.
    Stobbe, Michael
    Marasco, Paul D.
    Hebert, Jacqueline S.
    PROSTHETICS AND ORTHOTICS INTERNATIONAL, 2019, 43 (05) : 564 - 567
  • [23] Patterns of use of a myoelectric prosthesis in a cohort of children with transverse defects below the level of the elbow
    Dopico, Lucia Ros
    Barrera, Ejessie Alfonso
    Telleria, Berta Valero
    Ruiz-Zurita, Gonzalo
    Moreno, Mercedes Martinez
    PROSTHETICS AND ORTHOTICS INTERNATIONAL, 2025, 49 (01) : 111 - 118
  • [24] MYOELECTRIC CONTROL SYSTEM FOR ARM-HAND PROSTHESIS
    STEIN, A
    ELECTRONICS LETTERS, 1971, 7 (10) : 238 - &
  • [25] An implantable myoelectric sensor based prosthesis control system
    DeMichele, Glenn A.
    Troyk, Philip R.
    Kems, Douglas A.
    Weir, Richard
    2006 28TH ANNUAL INTERNATIONAL CONFERENCE OF THE IEEE ENGINEERING IN MEDICINE AND BIOLOGY SOCIETY, VOLS 1-15, 2006, : 5380 - +
  • [26] Development of an Implantable Myoelectric Sensor for Advanced Prosthesis Control
    Merrill, Daniel R.
    Lockhart, Joseph
    Troyk, Phil R.
    Weir, Richard F.
    Hankin, David L.
    ARTIFICIAL ORGANS, 2011, 35 (03) : 249 - 252
  • [27] Tactile Feedback Experiments for Forearm Prosthesis with Myoelectric Control
    Milea, P. L.
    Dascalu, M.
    Franti, E. D.
    Barbilian, A.
    Stoica, I. C.
    ROMANIAN JOURNAL OF INFORMATION SCIENCE AND TECHNOLOGY, 2017, 20 (02): : 101 - 114
  • [28] NEURAL NETWORK CLASSIFICATION OF MYOELECTRIC SIGNAL FOR PROSTHESIS CONTROL
    KELLY, MF
    PARKER, PA
    SCOTT, RN
    JOURNAL OF ELECTROMYOGRAPHY AND KINESIOLOGY, 1991, 1 (04) : 229 - 236
  • [29] Game-Based Rehabilitation for Myoelectric Prosthesis Control
    Prahm, Cosima
    Vujaklija, Ivan
    Kayali, Fares
    Purgathofer, Peter
    Aszmann, Oskar C.
    JMIR SERIOUS GAMES, 2017, 5 (01):
  • [30] Targeted muscle reinnervation for improved myoelectric prosthesis control
    Kuiken, TA
    Dumanian, GA
    Lipschutz, RD
    Miller, LA
    Stubblefield, KA
    2005 2ND INTERNATINOAL IEEE/EMBS CONFERENCE ON NEURAL ENGINEERING, 2005, : 396 - 399