Portable take-home system enables proportional control and high-resolution data logging with a multi-degree-of-freedom bionic arm

MR Brinton, E Barcikowski, T Davis… - Frontiers in Robotics …, 2020 - frontiersin.org
This paper describes a portable, prosthetic control system and the first at-home use of a
multi-degree-of-freedom, proportionally controlled bionic arm. The system uses a modified …

[HTML][HTML] Conversion of a medical implant into a versatile computer-brain interface

B Várkuti, L Halász, SH Gooie, G Miklós, RS Serena… - Brain Stimulation, 2024 - Elsevier
Background Information transmission into the human nervous system is the basis for a
variety of prosthetic applications. Spinal cord stimulation (SCS) systems are widely …

Introduction to somatosensory neuroprostheses

B Güçlü - Somatosensory feedback for neuroprosthetics, 2021 - Elsevier
Although simple prostheses and orthoses date back to antiquity, there has been an
explosion of research and development for neuroprostheses in recent decades. This is …

Connecting residual nervous system and prosthetic legs for sensorimotor and cognitive rehabilitation

G Valle, G Preatoni, S Raspopovic - Somatosensory Feedback for …, 2021 - Elsevier
Leg amputees wear commercial prosthetic devices that do not give any sensory information
about the interaction of the device with the ground or its movement. Amputees, relying on a …

High-fidelity interfacing for bionic rehabilitation

I Vujaklija - Progress in Motor Control, 2024 - Elsevier
Bionic rehabilitation leverages advanced bionic technology to enhance mobility and
functional abilities in individuals with limited sensorimotor capabilities. However, the …

Stimulus interaction in transcutaneous electrical stimulation

S Dupan, L Jabban, BW Metcalfe… - Somatosensory Feedback …, 2021 - Elsevier
This chapter gives an overview of how our understanding of the nervous system and human
motor control has shaped strategies to deliver functional sensory feedback for prosthetic …