Javascript must be enabled to continue!
Comparison of vibrotactile and joint-torque feedback in a myoelectric upper-limb prosthesis
View through CrossRef
Abstract
Background
Despite the technological advancements in myoelectric prostheses, body-powered prostheses remain a popular choice for amputees, in part due to the natural sensory advantage they provide. Research on haptic feedback in myoelectric prostheses has delivered mixed results. Furthermore, there is limited research comparing various haptic feedback modalities in myoelectric prostheses. In this paper, we present a comparison of the feedback intrinsically present in body-powered prostheses (joint-torque feedback) to a commonly proposed feedback modality for myoelectric prostheses (vibrotactile feedback). In so doing, we seek to understand whether the advantages of kinesthetic feedback present in body-powered prostheses translate to myoelectric prostheses, and whether there are differences between kinesthetic and cutaneous feedback in prosthetic applications.
Methods
We developed an experimental testbed that features a cable-driven, voluntary-closing 1-DoF prosthesis, a capstan-driven elbow exoskeleton, and a vibrotactile actuation unit. The system can present grip force to users as either a flexion moment about the elbow or vibration on the wrist. To provide an equal comparison of joint-torque and vibrotactile feedback, a stimulus intensity matching scheme was utilized. Non-amputee participants (n=12) were asked to discriminate objects of varying stiffness with the prosthesis in three conditions: no haptic feedback, vibrotactile feedback, and joint-torque feedback.
Results
Results indicate that haptic feedback increased discrimination accuracy over no haptic feedback, but the difference between joint-torque feedback and vibrotactile feedback was not significant. In addition, our results highlight nuanced differences in performance depending on the objects’ stiffness, and suggest that participants likely pay less attention to incidental cues with the addition of haptic feedback.
Conclusion
Even when haptic feedback is not modality matched to the task, such as in the case of vibrotactile feedback, performance with a myoelectric prosthesis can improve significantly. This implies it is possible to achieve the same benefits with vibrotactile feedback, which is cheaper and easier to implement than other forms of feedback.
Title: Comparison of vibrotactile and joint-torque feedback in a myoelectric upper-limb prosthesis
Description:
Abstract
Background
Despite the technological advancements in myoelectric prostheses, body-powered prostheses remain a popular choice for amputees, in part due to the natural sensory advantage they provide.
Research on haptic feedback in myoelectric prostheses has delivered mixed results.
Furthermore, there is limited research comparing various haptic feedback modalities in myoelectric prostheses.
In this paper, we present a comparison of the feedback intrinsically present in body-powered prostheses (joint-torque feedback) to a commonly proposed feedback modality for myoelectric prostheses (vibrotactile feedback).
In so doing, we seek to understand whether the advantages of kinesthetic feedback present in body-powered prostheses translate to myoelectric prostheses, and whether there are differences between kinesthetic and cutaneous feedback in prosthetic applications.
Methods
We developed an experimental testbed that features a cable-driven, voluntary-closing 1-DoF prosthesis, a capstan-driven elbow exoskeleton, and a vibrotactile actuation unit.
The system can present grip force to users as either a flexion moment about the elbow or vibration on the wrist.
To provide an equal comparison of joint-torque and vibrotactile feedback, a stimulus intensity matching scheme was utilized.
Non-amputee participants (n=12) were asked to discriminate objects of varying stiffness with the prosthesis in three conditions: no haptic feedback, vibrotactile feedback, and joint-torque feedback.
Results
Results indicate that haptic feedback increased discrimination accuracy over no haptic feedback, but the difference between joint-torque feedback and vibrotactile feedback was not significant.
In addition, our results highlight nuanced differences in performance depending on the objects’ stiffness, and suggest that participants likely pay less attention to incidental cues with the addition of haptic feedback.
Conclusion
Even when haptic feedback is not modality matched to the task, such as in the case of vibrotactile feedback, performance with a myoelectric prosthesis can improve significantly.
This implies it is possible to achieve the same benefits with vibrotactile feedback, which is cheaper and easier to implement than other forms of feedback.
Related Results
Body image and perception among adults with and without phantom limb pain
Body image and perception among adults with and without phantom limb pain
AbstractBackgroundFollowing lower‐limb amputation, phantom limb pain (i.e., pain perceived as coming from the amputated portion of the limb) is common. Phantom limb pain may be ass...
Shaping Material Experiences: Designing Vibrotactile Feedback for Active Perception
Shaping Material Experiences: Designing Vibrotactile Feedback for Active Perception
Imagine running your finger over a grid. The fingertip will start vibrating as it hits each individual element. This vibration is a function of both the spacing of the grid and the...
Amputação Parcial de Membro e Adaptação Protética em Égua Puro-Sangue Inglês
Amputação Parcial de Membro e Adaptação Protética em Égua Puro-Sangue Inglês
Background: Traditionally, severe limb injuries in horses often result in euthanasia. However, advancements in veterinary medicine allow for the treatment and rehabilitation of man...
Differential Diagnosis of Neurogenic Thoracic Outlet Syndrome: A Review
Differential Diagnosis of Neurogenic Thoracic Outlet Syndrome: A Review
Abstract
Thoracic outlet syndrome (TOS) is a complex and often overlooked condition caused by the compression of neurovascular structures as they pass through the thoracic outlet. ...
Vibrotactile Feedback to Make Real Walking inVirtual Reality More Accessible
Vibrotactile Feedback to Make Real Walking inVirtual Reality More Accessible
<p>This research aims to examine the effects of various vibrotactile feedback techniques on gait (i.e., walking patterns) in virtual reality (VR). Prior studies have demonstr...
Cortical Spectral Dynamics of Vibrotactile Frequency Processing
Cortical Spectral Dynamics of Vibrotactile Frequency Processing
Abstract
While scientific research has extensively explored how the brain integrates touch and pain signals, the cerebral processing of specific vibrotactile frequencies re...
An epistemic justice account of students’ experiences of feedback
An epistemic justice account of students’ experiences of feedback
I am a storyteller. I believe in the power of stories to share experiences and to elucidate thoughts and ideas and to help us to make sense of complex social practices. This thesis...
The Effect of Motor Imagery Ability on Function and Proprioception in Myoelectric Prosthesis Users: Protocol for a Cross-Sectional Study
The Effect of Motor Imagery Ability on Function and Proprioception in Myoelectric Prosthesis Users: Protocol for a Cross-Sectional Study
Background
Motor imagery ability (MIA) is a critical cognitive process that enables the mental simulation of movements, facilitating skill acquisition in the us...

