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Motor unit drive: a neural interface for real-time upper limb prosthetic control.
Twardowski, Michael D; Roy, Serge H; Li, Zhi; Contessa, Paola; De Luca, Gianluca; Kline, Joshua C.
Affiliation
  • Twardowski MD; Delsys Inc. and Altec Inc., Natick, MA, United States of America. Department of Robotics Engineering, Human Inspired Robotics Laboratory, Worcester Polytechnic Institute, Worcester, MA, United States of America.
J Neural Eng ; 16(1): 016012, 2019 02.
Article in En | MEDLINE | ID: mdl-30524105
ABSTRACT

OBJECTIVE:

Modern prosthetic limbs have made strident gains in recent years, incorporating terminal electromechanical devices that are capable of mimicking the human hand. However, access to these advanced control capabilities has been prevented by fundamental limitations of amplitude-based myoelectric neural interfaces, which have remained virtually unchanged for over four decades. Consequently, nearly 23% of adults and 32% of children with major traumatic or congenital upper-limb loss abandon regular use of their myoelectric prosthesis. To address this healthcare need, we have developed a noninvasive neural interface technology that maps natural motor unit increments of neural control and force into biomechanically informed signals for improved prosthetic control.

APPROACH:

Our technology, referred to as motor unit drive (MU Drive), utilizes real-time machine learning algorithms for directly measuring motor unit firings from surface electromyographic signals recorded from residual muscles of an amputated or congenitally missing limb. The extracted firings are transformed into biomechanically informed signals based on the force generating properties of individual motor units to provide a control source that represents the intended movement. MAIN

RESULTS:

We evaluated the characteristics of the MU Drive control signals and compared them to conventional amplitude-based myoelectric signals in healthy subjects as well as subjects with congenital or traumatic trans-radial limb-loss. Our analysis established a vital proof-of-concept MU Drive provides a more responsive real-time signal with improved smoothness and more faithful replication of intended limb movement that overcomes the trade-off between performance and latency inherent to amplitude-based myoelectric methods.

SIGNIFICANCE:

MU Drive is the first neural interface for prosthetic control that provides noninvasive real-time access to the natural motor control mechanisms of the human nervous system. This new neural interface holds promise for improving prosthetic function by achieving advanced control that better reflects the user intent. Beyond the immediate advantages in the field of prosthetics, MU Drive provides an innovative alternative for advancing the control of exoskeletons, assistive devices, and other robotic rehabilitation applications.
Subject(s)

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Prosthesis Design / Artificial Limbs / Recruitment, Neurophysiological / Upper Extremity / Electromyography / Brain-Computer Interfaces Limits: Adult / Aged / Female / Humans / Male / Middle aged Language: En Journal: J Neural Eng Journal subject: NEUROLOGIA Year: 2019 Document type: Article Affiliation country: Estados Unidos

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Prosthesis Design / Artificial Limbs / Recruitment, Neurophysiological / Upper Extremity / Electromyography / Brain-Computer Interfaces Limits: Adult / Aged / Female / Humans / Male / Middle aged Language: En Journal: J Neural Eng Journal subject: NEUROLOGIA Year: 2019 Document type: Article Affiliation country: Estados Unidos
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