Changing stroke rehab and research worldwide now.Time is Brain! trillions and trillions of neurons that DIE each day because there are NO effective hyperacute therapies besides tPA(only 12% effective). I have 523 posts on hyperacute therapy, enough for researchers to spend decades proving them out. These are my personal ideas and blog on stroke rehabilitation and stroke research. Do not attempt any of these without checking with your medical provider. Unless you join me in agitating, when you need these therapies they won't be there.

What this blog is for:

My blog is not to help survivors recover, it is to have the 10 million yearly stroke survivors light fires underneath their doctors, stroke hospitals and stroke researchers to get stroke solved. 100% recovery. The stroke medical world is completely failing at that goal, they don't even have it as a goal. Shortly after getting out of the hospital and getting NO information on the process or protocols of stroke rehabilitation and recovery I started searching on the internet and found that no other survivor received useful information. This is an attempt to cover all stroke rehabilitation information that should be readily available to survivors so they can talk with informed knowledge to their medical staff. It lays out what needs to be done to get stroke survivors closer to 100% recovery. It's quite disgusting that this information is not available from every stroke association and doctors group.

Showing posts with label arm rehab. Show all posts
Showing posts with label arm rehab. Show all posts

Friday, November 28, 2025

The Powered Rehab Skateboard for arm rehabilitation

 I don't understand either! Ask your doctor to explain this.

The Powered Rehab Skateboard for arm rehabilitation

November 27th, 2025
Powered Rehab Skateboard for arm rehabilitation
Powered Rehab Skateboard for arm rehabilitation. Credit: polyu

Stroke often results in significant upper limb impairment, affecting patients' ability to perform daily activities. Robotic therapy for individuals after stroke has been proven as evidence-based practice in rehabilitation because it allows high frequency and intensity of training for the individual with guided movement and standardized behavioral protocols. However, current rehabilitation methods are often limited by access to clinical facilities and high cost of robotic therapies.

The Powered Rehab Skateboard is a training robot designed for home-based rehabilitation aimed at promoting motor recovery in stroke patients with hemiparetic upper extremities. Developed by Prof. Kenneth Fong, Associate Dean of the Graduate School and Associate Head of the Department of Rehabilitation Sciences, the portable and cost-effective robotic system enables patients to engage in effective rehabilitation in the comfort of their homes. It is also recognized as CES Innovation Awards 2026 Honoree, showcasing PolyU's breakthroughs in assistive technology for elderly care and rehabilitation.

The Powered Rehab Skateboard facilitates motor learning by guiding patients through precise movements and offering personalized therapy that adapts to individual needs through multiple operational modes, including passive, assistive, and resistive. Integrated with a torque sensor, it detects the user's active force in real time and automatically adjusts the level of assistance to ensure optimal support.

The system is designed to accommodate different stages of recovery, enabling customized rehabilitation plans that evolve with patient progress. Its portable design provides a convenient solution for home-based therapy, reducing reliance on frequent clinical visits and improving accessibility.

For enhanced safety, the device is equipped with a micro edge detection sensor that immediately triggers an alarm and suspends operation if an edge beyond the table is detected, preventing accidents and ensuring secure use.

Provided by Hong Kong Polytechnic University

Saturday, July 12, 2025

A biomechanical analysis of the effectiveness of the Graded Repetitive Arm Supplementary Program (GRASP) for chronic stroke rehabilitation

Is your doctor, hospital and therapists that fucking incompetent that in 14 years they haven't implemented this program for stroke survivors?  I wrote about this in March, 2011.

GRASP PROGRAM FOR HAND AND ARM THERAPY  March, 2011 

GRASP (6 posts to March 2011)


 A biomechanical analysis of the effectiveness of the Graded Repetitive Arm Supplementary Program (GRASP) for chronic stroke rehabilitation

Madeleine A. Grealy, Luke Meneilly, Lesley-Anne Rollins & William J. McGeown To cite this article: Madeleine A. Grealy, Luke Meneilly, Lesley-Anne Rollins & William J. McGeown (05 Jul 2025): A biomechanical analysis of the effectiveness of the Graded Repetitive Arm Supplementary Program (GRASP) for chronic stroke rehabilitation, Disability and Rehabilitation, DOI: 10.1080/09638288.2025.2530158 To link to this article: https://doi.org/10.1080/09638288.2025.2530158 © 2025 The Author(s). Published by Informa UK Limited, trading as Taylor & Francis Group Published online: 05 Jul 2025. https://doi.org/10.1080/09638288.2025.2530158 
 RESEARCH ARTICLE Madeleine A. Grealy , Luke Meneilly, Lesley-Anne Rollins and William J. McGeown Department of Psychological Sciences and health, University of Strathclyde, Glasgow, Uk 

 ABSTRACT 

 Purpose: 
The Graded Repetitive Arm Supplementary Program (GRASP) is used widely to reduce arm impairment from stroke. Evidence for its effectiveness in chronic stroke survivors is based on studies that used clinical measures and different treatment lengths. This study aimed to examine whether GRASP changes movement quality by conducting a biomechanical analysis of chronic stroke survivors’ movements prior to, during and after GRASP; assess whether changes in kinematic and clinical measures are associated and an intervention duration shorter eight-weeks could be similarly effective. 
 
Materials and methods: 

Chronic stroke survivors (n = 27) completed the baseline measures, GRASP for eight weeks and post-measures. They practiced one-hour daily at home for six days/week and visited the University weekly, where arm movements were recorded. 

 Results: 

There were significant GRASP related improvements in movement duration and smoothness in the affected arm. Significant improvements in arm function, self-efficacy and quality of life were also observed, but these did not consistently significantly correlate with kinematic changes. There was no evidence to support shortening the program. 

 Conclusion: 

Kinematic changes in movement patterns were evident across the GRASP program as were benefits on clinical measures, but additional research is needed to determine the benefits of GRASP for chronic stroke rehabilitation.  

KEYWORDS 

 Stroke; chronic; GRASP; rehabilitation; kinematics; biomechanics 
 • The Graded Repetitive Arm Supplementary Program (GRASP) is an effective therapy for stroke survivors in the chronic stage of recovery. 
 • GRASP resulted in faster and smoother movements of the affected arm whilst performing an everyday task. 
 • GRASP should be practiced for at least eight weeks. 
 • GRASP is not suitable for chronic stroke survivors living with severe arm and hand disability. 
 • It is currently not clear whether GRASP is more effective than other therapies for the rehabilitation of arm and hand function in chronic stroke survivors. 
 Introduction 

 Stroke is a leading cause of long-term disability worldwide [1] with many experiencing deficits in sen sation, movement and co-ordination of the arm and hand contributing to a loss of independence and a reduction in health-related quality of life [2,3]. Evidence indicates that intensive rehabilitation can significantly improve arm function [4–6], however, the costs associated with intensive therapy are often prohibitive. This has led to an increase in demand for home-based, low-cost interventions that are largely self-directed or require minimal professional supervision. One such freely available home-based intervention is the Graded Repetitive Arm Supplementary Program (GRASP) which targets arm impairment with intensive exercise and encourages the use of the affected arm in daily tasks. CONTACT madeleine A. Grealy George Street, GlasgowG1 1Qe, Uk m.grealy@strath.ac.uk Department of Psychological Sciences and health, University of Strathclyde, 40 © 2025 the Author(s). Published by informa Uk Limited, trading as taylor & Francis Group this is an open Access article distributed under the terms of the creative commons Attribution-noncommercial-noDerivatives License (http://creativecommons. org/licenses/by-nc-nd/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited, and is not altered, transformed, or built upon in any way. the terms on which this article has been published allow the posting of the Accepted manuscript in a repository by the author(s) or with their consent. 2 M. A. GREALY ET AL. GRASP is a manual based exercise program that comprises range of motion, strengthening and weight-bearing exercises along with functional tasks and fine motor skills. It has three levels of diffi culty, and it uses a variety of objects that are inexpensive and easily sourced. Participants are advised to practice daily for one hour and to progressively increase the difficulty and number of repetitions of each exercise. GRASP was originally designed for acute stroke patients to augment their regular hos pital therapy without the need for additional supervision from physio- or occupational therapists [7] but it has since been adapted for home use. The randomised control trial (RCT) conducted by Harris et al. in 2009 [7] assessed acute stroke survivors in rehabilitation centres self-administering GRASP, and showed positive outcomes after 4 weeks on the Chedoke Arm and Hand Activity Inventory which assesses functional recovery on tasks such as opening a jar and pouring. Since then, GRASP has been widely adopted in rehabilitation facilities in a number of countries [8], however, there have been relatively few additional studies, particularly on the use of GRASP in community settings with people in the chronic stages of stroke recovery. A recent systematic review [9] found eight studies published prior to December 2022 where GRASP had been used in a variety of clinical and non-clinical settings and included patients in acute care through to people several years post-stroke. All these studies demonstrated improvements, but as a variety of outcome measures were used, mainly clinical tests, it was not possible to conduct a meta-analysis. Additionally, the validity and sensitivity of the standardised clinical tests used as outcome measures in stroke intervention trials has recently been ques tioned as they do not directly measure movement quality, making it difficult to determine whether an improved score reflects a shift towards “normal” motor control or the adoption of compensatory, and potentially maladaptive movements to achieve the task. The use of biomechanical analysis, derived from 3D motion capture, where changes in kinematic measurements are tracked over time, would allow us to assess whether GRASP related changes are predominantly compensatory or restorative. The use of kinematic analysis in rehabilitation research has increased in recent years [10] and there is evidence to suggest that kinematic measures show different patterns of recovery when compared to functional tests. For example, Cortes et al. [11] used kinematic analysis to assess recovery of arm motor control in people who had recently experienced a stroke. Their analyses showed that performance on the kinematic measures plateaued after five weeks, however, improvements on the Fugl-Meyer Assessment of the Upper Extremity (FMA-UE) and the Action Research Arm Test (ARAT) continued over 54 weeks. This suggested that these tests assess different aspects of recovery that have different time courses. Further comparisons of clinical and kinematic measures indicate that they may differ in sensitivity. For example, the meta-analysis by Villepinte et al. [12] compared changes on clinical and kinematic measures of con straint induced movement, trunk restraint and bilateral arm therapies, and found that the Motor Activity Log, Fugl-Meyer Assessment and Wolf Motor Function Test showed greater improvements than kinematic measures of smoothness, duration, efficiency and peak velocity. It may therefore be the case that some tests, particularly those that are more subjective, might over-estimate the effect of an intervention. Whilst positive changes in movement kinematics associated with constraint induced movement therapy (CIMT), bilateral arm training and mirror therapy have been demonstrated using RCTs, this has not been established for the effectiveness of GRASP in a chronic stroke population. The first aim of this study was to conduct a biomechanical analysis to examine whether changes in movement quality are evident in chronic stroke survivors who complete GRASP at home. If GRASP does improve motor control during the chronic phase of stroke recovery, we would expect to see similar patterns of improvement in both movement kinematics and functional tests such as the ARAT. Moreover, if these changes are substantial and meaning ful then improvements in quality of life and the person’s beliefs about their capabilities may also be evi dent. Conversely, if GRASP primarily promotes compensatory behaviours in chronic strokes survivors, little improvement in movement quality would be expected, although changes on functional tests may still occur. Therefore, the second aim was to examine whether there were intervention related improvements on the ARAT and its four subscales, and to see if these correlated with changes on the kinematic measures. Similarly, we looked to see if there were more general improvements in self-reported measures of quality of life and self-beliefs, and whether these were related to changes in movement kinematics. The most prevalent deficits in movement kinematics associated with stroke are longer movement times, lower peak velocities, more curved and less smooth movements [13]. However, there are many ways in which movement quality can, and has, been assessed. A systematic review of studies that used GRASP bIOMECHAnICS In STROKE 3 kinematic assessments of upper limb movements after stroke [10] identified 225 studies that used a variety of tasks resulting in 151 different metrics. Similarly, there are numerous clinical, observational and self-reported stroke measures. For the purpose of this study, we chose the ARAT test, a widely used observational measure of functional performance used by physiotherapists and occupational therapists. We picked one functional task from the ARAT, lifting a block and placing it on a shelf, for the biome chanical analysis. We recorded arm movements before, during and after the eight-week GRASP program and we measured both arms so we could account for learning effects and meaningful change in the affected arm. We assessed the person’s belief in their ability and overall quality of life, more generally, using the self-report measures detailed below. The final aim of this study was to examine changes in the kinematic variables over the eight-week program to assess whether performance improvements were evident throughout, or whether these pla teaued prior to the end. Currently, there is no recommended duration for this program and previous studies have used different treatment lengths, some at four weeks [7,14,15], eight weeks [16] and ten weeks [17,18]. Most have used designs comparing pre- and post-intervention scores and have not col lected data during the intervention. As GRASP requires one hour of daily practice it can be burdensome over eight or ten weeks, it is worth examining whether shortening the program could be achieved with out reducing the effectiveness of the intervention.

More at link

Thursday, January 2, 2025

Effects of Intensive Impairment-Oriented Arm Rehabilitation for Chronic Stroke Survivors: An Observational Cohort Study

 Wrong objective: it should have been; Create protocols based on this study.  This is useless.

Effects of Intensive Impairment-Oriented Arm Rehabilitation for Chronic Stroke Survivors: An Observational Cohort Study

 3
1
Neurorehabilitation Research Group, University Medical Centre, 17475 Greifswald, Germany
2
BDH-Klinik Greifswald, Institute for Neurorehabilitation and Evidence-Based Practice, “An-Institut”, University of Greifswald, 17491 Greifswald, Germany
3
Hand and Occupational Therapy Outpatient Service Laborn, 80802 München, Germany
*
Author to whom correspondence should be addressed.
J. Clin. Med. 2025, 14(1), 176; https://doi.org/10.3390/jcm14010176
Submission received: 28 November 2024 / Revised: 15 December 2024 / Accepted: 21 December 2024 / Published: 31 December 2024
(This article belongs to the Special Issue Rehabilitation and Management of Stroke)

Abstract

Objective

To assess the effects of a two-week course of intensive impairment-oriented arm rehabilitation for chronic stroke survivors on motor function. 

Methods

An observational cohort study that enrolled chronic stroke survivors (≥6 months after stroke) with mild to severe arm paresis, who received a two-week course of impairment-oriented and technology-supported arm rehabilitation (1:1 participant–therapist setting), which was carried out daily (five days a week) for four hours. The outcome measures were as follows: the primary outcome was the arm motor function of the affected arm (mild paresis: BBT, NHPT; severe paresis: Fugl-Meyer arm motor score). The secondary outcomes were measures of finger strength, active ROM, spasticity, joint mobility/pain, somatosensation, emotional distress, quality of life, acceptability, and adverse events. 

Results

 One hundred chronic stroke survivors (≥6 months after stroke) with mild to severe arm paresis were recruited. The training was acceptable (drop-out rate 3%; 3/100). The clinical assessment indicated improved motor function (SMD 0.42, 95% CI 0.36–0.49; n = 97), reduced spasticity/resistance to passive movement, and slightly improved joint mobility/pain and somatosensation. The technology-based objective measures corroborated the improved active range of motion for arm and finger joints, reduced finger spasticity/resistance to passive movement, and the increased amount of use in daily life, but there was no effect on finger strength. The patient’s emotional well-being and quality of life were positively influenced. Adverse events were reported by the majority of participants (51%, 49/97) and were mild. 

Conclusions

 Structured intensive impairment-oriented and technology-supported arm rehabilitation can promote(NOT GOOD ENOUGH! Exact protocols need to be created to get survivors recovered! This would be cause for firing in the business world! Namby-pamby shit like this would never fly!) motor function among chronic stroke survivors with mild to severe arm paresis and is an acceptable and tolerable form of treatment when supervised and adjusted by therapists.

1. Introduction

Stroke is the third leading cause of death and disability, combined, in the world, and the burden it places on the healthcare system has increased substantially over the last few decades [1]. As a major cause of chronic impaired arm function, it frequently affects many activities of daily living. Between forty to seventy percent of those affected by stroke suffer from arm paresis initially [2,3]. Among those, two thirds have severe arm paresis [3]. Six months after stroke, the affected arm of approximately half of all stroke survivors, who initially had severe arm paresis, still remains without function [4]. Different training- and technology-based interventions have been shown to improve arm function after stroke [5,6] and are recommended for stroke rehabilitation [7]. Most spontaneous recovery and the best course of treatment in terms of improvements can be expected early after stroke, i.e., within the first three months, and when arm paresis is not severe [8,9]. And, while there is the potential for stroke survivors in the chronic phase to improve their motor function [10], it remains controversial how improvements to arm motor function can still be gained through training and whether improvements at this stage are related to the recovery of function, the enhancement of compensatory strategies, or a reversal of learnt non-use (only) [11].
This study followed the rationale (and hypothesis) that motor recovery, i.e., the improvement of motor control, such as selective movement control (rather than improved function due to compensatory behaviour), is still achievable by stroke survivors in the chronic stage when therapy offers training that explicitly, specifically, intensively, and comprehensively addresses the motor control to be regained, i.e., the ability to move the arm in regard to its various segments selectively for stroke survivors with moderate to severe arm paresis, or the level of performance related to different sensorimotor abilities for stroke survivors with mild arm paresis [12].
This cohort study aimed to investigate whether stroke survivors in the chronic stage of their condition (i.e., ≥6 months post-stroke) with various degrees of arm paresis, i.e., from mild to severe, could benefit from a two-week course of intensive impairment-oriented arm rehabilitation. For this purpose, the participants received daily therapy as either Arm Basis Training (moderate to severe arm paresis) or Arm Ability Training (mild arm paresis) [12], combined with individually selected technology-based arm rehabilitation, for a total of 4 h per weekday, for two consecutive weeks (ten sessions). Both standardised clinical assessments and technology-based measures were used to evaluate to what degree the patient’s motor function improved and whether other body functions (strength, spasticity/resistance to passive movement, somatosensation, or passive joint mobility) were affected in parallel, whether more use of the affected limb in the community was promoted, and whether the patient-reported emotional well-being and quality of life changed. In addition, acceptability in terms of the drop-out rate and safety, based on documented adverse events, were addressed.

More at link.

Saturday, September 14, 2024

Soft ‘Robo Arm’ Could Help Stroke Recovery

 This kind of misses the needs of huge numbers of stroke survivors, spasticity that prevents reaching with the arm. I wish researchers would actually talk to survivors first before going down the wrong path; talk to survivors, NOT stroke medical 'professionals'!

Soft ‘Robo Arm’ Could Help Stroke Recovery

Soft ‘Robo Arm’ Could Help Stroke Recovery
Soft robotic arm device designed by James Greig. The device pumps air into chambers of material that inflate and encourage a bicep-curl type movement. Courtesy of ABDN.

Stroke survivors could see their recovery accelerated by a new ‘soft robotic’ arm that enables bicep movement using an inflatable material to support the muscles.

Someone is hit by a stroke every five minutes and those who survive often experience a loss of movement from muscle spasticity caused by injury to the brain.

Researchers at the University of Aberdeen have now developed a device that will allow patients to carry out invaluable physiotherapy at home. James Greig, the final year PhD researcher who designed and built the device, told MedicalExpo e-Magazine: 

“We’re using soft robotics, which is different from conventional robotics that has a lot of rigid components – gears, motors, and that kind of thing. Instead, we used flexible, lightweight fabrics and this device is driven by compressed air.”

Before this work, Greig carried out research and development in a variety of industries, including life-saving appliances such as life jackets and rafts. 

“I drew inspiration from these products and used materials commonly found in life-saving appliances across the soft robotics world.” 

The device, secured to the arm with straps, operates by using a small compressor to pump air into a series of material strips. These strips inflate and press against each other, creating a movement in the limb similar to a bicep curl.

Described by Greig as a “gentle assistance” that helps the patient without “rigidly moving” their arm, the device is intended to work alongside formal physio sessions and to accelerate recovery.  

The soft robo arm replicates the movements typically guided by physiotherapists during rehabilitation sessions, using robotics to help patients to perform these exercises in their own homes, without the need for assistance. 

Strokes on the Rise: Creating Hope with Devices

Strokes vary depending on the area of the brain that is impacted, but many individuals experience increased muscle tone, leading to spasticity in the arm. This condition can cause the muscles to contract, often leaving the arm in a nearly fixed position. During rehabilitation, physiotherapists typically work to improve limb mobility. When addressed early, this approach can help reduce the severity of spasticity.

Currently, 15 million people globally have a stroke each year, a major report by the World Stroke Organization-Lancet Neurology Commission found. Around 5 million of these individuals die, while another 5 million continue to live with stroke-related disabilities. 

Data from the World Health Organisation shows that the lifetime risk of developing stroke has increased by 50% in the last two decades and now 1 in 4 people is estimated to have a stroke in their lifetime. 

The rise is largely due to lifestyle habits, such as smoking, a lack of exercise, and poor diet, but in recent years COVID-19 has had a significant impact on stroke prevalence and recovery. A study published in the journal Nature found a 52% increased risk of stroke in one year among COVID-19 survivors, or about four extra strokes per 1,000 people.

Greig hopes his device will help to ease the burden on healthcare services that are still struggling with patient backlogs and treatment delays from the pandemic.

Using trial feedback Greig is now working on how to make the device most user-friendly for stroke survivors and is collaborating with colleagues to develop an app. 

Dr Clare Jonas, Research Communications Lead at the Stroke Association (UK), said: 

“More than three-quarters of stroke survivors experience arm weakness, which can make it harder or even impossible to do things most of us take for granted, like getting dressed or feeding ourselves. 

“The only treatment option for arm weakness available at the moment is physiotherapy. But in 2023 only one in four stroke survivors received the recommended 45 minutes of physiotherapy, five days per week, in the UK. 

“With so many people not getting the treatment they need, it’s really important to look for ways to boost the effectiveness and flexibility of physiotherapy. We are always interested to hear about new technologies such as the ‘Robo arm’.”

The device, which Greig is preparing for clinical trials, could eventually be used to aid the recovery of anyone undergoing physiotherapy on this specific movement of the arm.

Thérèse Lebedis, Consultant AHP (Occupational Therapist) in Stroke, who has worked with James on the project, said: 

“This is an exciting development in the field of robotic technology, offering the potential to provide an adjunct to rehabilitation therapies such as occupational therapy and physiotherapy and the opportunity to increase intensity through repetition.”

Sunday, January 15, 2023

Effects of Intensive Arm Training With an Electromechanical Orthosis in Chronic Stroke Patients: A Preliminary Study

I can't tell if any of these patients had spasticity so it is impossible to tell the applicability to regular patients. 

Effects of Intensive Arm Training With an Electromechanical Orthosis in Chronic Stroke Patients: A Preliminary Study

2011, Archives of Physical Medicine and Rehabilitation
Rodrigo C. de Araújo, PhD, Fábio Lúcio Junior, MSc, Daniel N. Rocha, PhD, Tálita S. Sono, MSc, Marcos Pinotti, PhD
 de Araújo RC, Junior FL, Rocha DN, SonoTS, Pinotti M. Effects of intensive arm training with an elec-tromechanical orthosis in chronic stroke patients: a preliminary study. Arch Phys Med Rehabil 2011;92:1746-53.

 ABSTRACT.

Objectives:
 To evaluate the use of an electromechanical device, comprising an exoskeleton, a static orthosis, and a glove, for functional rehabilitation of the elbow and hand inpatients with hemiparesis, and to compare it with physicaltherapy rehabilitation.
Design:
 Pretest posttest design.
Setting:
 Rehabilitation laboratory.
Participants:
 Volunteer sample of persons (N

12) with persistent hemiparesis from a single, unilateral stroke within the past 3 to 36 months.
Interventions:
 The volunteers were randomly divided into 2groups. One group was treated with a conventional program of physiotherapy, and another group participated in a training program in which an electromechanical orthosis was used. All volunteers received 24 sessions, held 3 times a week for 8 weeks.
Main Outcome Measures:
 Modified Ashworth Scale (MAS),Fugl-Meyer Assessment (FMA), and electromyogram (EMG)amplitude.
Results:
 No statistical difference was found in the initial and final values of the MAS. Both groups showed a significant increase for the total scores of the FMA. However, only the group treated with the orthosis showed an increase in FMA scores related to the wrist and hand joint. The EMG analysis showed increased EMG amplitudes for all muscles in the group treated with the orthosis, whereas the group treated with physiotherapy showed gains in electromyographic activity only in the extensor digitorum communis.  Intergroup comparison showed that the initial FMA scores of the wrist/hand were higher in the group treated with physiotherapy. However, after training, the scores in the group that used the orthosis were equivalent to those of the physiotherapy group.
Conclusions:
 The results suggest that this device can be an auxiliary tool to help the conventional rehabilitation program of motor function of the affected upper extremity.Key Words: Cerebrovascular accident; Paresis; Rehabilitation; Upper extremity.© 2011 by the American Congress of Rehabilitation Medicine THE GROWTH IN LIFE expectancy has generated a significant increase in the worldwide elderly population and an associated increase in comorbidities related to aging.Among these, stroke is one of the main causes of death and functional incapacity in the world.1-4The World Health Organization estimates that the incidence of stroke in developed countries will grow approximately 30%(So going from 1 in 4 will have a stroke to 1 in 3 will have a stroke) between 2000 and 2025,5predicting that approximately 49 million individuals worldwide will survive stroke and live with a functional incapacity that will increase health care system expenses and significantly decrease the quality of life of these individuals.6Hemiparesis has been reported as the principal effect of stroke and occurs in more than 80% of all cases.7,8The degree of motor function recovery is strongly correlated with the severity and location of the lesion.9The recovery process maybe stimulated and molded by rehabilitation programs that use different techniques and exercises for motor relearning.10Published studies indicate that only 5% to 20% of stroke patients with hemiparesis regain upper extremity function11-13and that only 6% are satisfied with the level of functionality of the affected upper extremity.14Therefore, it is necessary to search for more effective therapeutics for the rehabilitation of these patients.Because of the limited success of traditional rehabilitation programs in restoring upper extremity function after stroke,researchers have been searching for other solutions, especially those using new technologies. Different research groups have developed robotic devices to assist in motor function recovery.15-20These devices allow the performance of repeated time specific tasks in a controlled and reliable manner, which has been demonstrated to be a determining factor in the facilitation of cortical reorganization, with a concomitant increase in motor ability and an improvement in functional activity performance.
16
Of the new devices, the most studied are the MIT-Manus,17MIME,18ARM-Guide,19NeReBot,4and ARMin.20Despite their good results in preliminary studies, these robotic devices have several drawbacks: they focus on the rehabilitation of the upper extremity proximal joints, have high costs, and do not allow the accomplishment of daily life activities. Therefore, the objective of this study was to evaluate the use of an electromechanical device, composed of an exoskeleton, static orthosis, and a glove, for functional rehabilitation of the elbow and hand in patients with hemiparesis, and to compare it with physiotherapeutic rehabilitation.

Saturday, August 6, 2022

Action observation for arm rehabilitation after stroke

 Even with limited help stroke survivors would gladly do the work. NOW WHERE ARE THE VIDEOS WE CAN WATCH?

Action observation for arm rehabilitation after stroke

uthors: 
Borges LRDM, Fernandes ABGS, Oliveira dos Passos J, Rego IAnanda Oliveira, Campos TF
Primary Review Group: 

Saturday, January 15, 2022

Robot-assisted arm trainer for the passive and active practice of bilateral forearm and wrist movements in hemiparetic subjects

What did your doctor do with this information in the past 19 years? NOTHING? Then why is s/he still considered a stroke doctor?  What did your hospital find out occurred with those futher studies?

Do you prefer your doctor and hospital incompetence NOT KNOWING? OR NOT DOING?

Robot-assisted arm trainer for the passive and active practice of bilateral forearm and wrist movements in hemiparetic subjects

2003, Archives of Physical Medicine and Rehabilitation
  Stefan Hesse, MD, Gotthard Schulte-Tigges, PhD, Matthias Konrad, MD, Anita Bardeleben, MA,Cordula Werner, MA

ABSTRACT. 

Hesse S, Schulte-Tigges G, Konrad M,Bardeleben A, Werner C. Robot-assisted arm trainer for the passive and active practice of bilateral forearm and wrist movements in hemiparetic subjects. Arch Phys Med Rehabil2003;84:915-20.
Objective:
 To determine whether use of a robotic arm trainer for bilateral exercise in daily repetitive training for a3-week period reduced spasticity and improved motor control in the arm of severely affected, chronic hemiparetic subjects.
Design:
 Before-after trial.
Setting:
 Community rehabilitation center in Germany.
Participants:
 Consecutive sample of 12 chronic hemiparetic patients; minimum stroke interval 6 months; patients could maximally protract the affected shoulder, hold the extended arm, or slightly flex and extend the elbow.
Interventions:
 Additional daily therapy of 15 minutes with the arm trainer for 3 weeks; the 1 degree of freedom trainer enabled the bilateral passive and active practice of a forearm pronation and supination and wrist dorsiflexion and volarflexion; impedance control guaranteed a smooth movement.
Main Outcome Measures:
 Patients’ impressions, the Modified Ashworth Scale (MAS) score (range, 0–5) to assess spasticity, and the arm section of the Rivermead Motor Assessment (RMA) score (range, 0–15) to assess motor control were rated before therapy, after each 3-week interval, and at follow-up 3 months later.
Results:
 All patients had favorable impressions: the extremity felt more vivid, and 8 subjects noticed a reduction in spasticity, an ease of hand hygiene, and pain relief. The MAS score of the wrist and fingers joints decreased significantly(P<.0125) from a median of 3 (2–3) and 3 (3–4) to 2 (1–2) and2.5 (2–3). The RMA score minimally increased in 5 caseswithout improvement in functional tasks. The median RMA score before therapy was 2.0 (1–2) and 2.0 (1–3.75) after therapy. There were no side effects. At follow-up, the effects had waned.
Conclusions:
 The arm trainer made possible intensive bilateral elbow and wrist training of severely affected stroke patients. Future studies should address the treatment effect in subacute stroke patients and determine the optimum treatment intensity.

Wednesday, December 8, 2021

Impact of distance on stroke inpatients’ mobility in rehabilitation clinics: a shadowing study

But the real solution to distance are lever powered wheelchairs which also would vastly increase arm rehabilitation. 

Impact of distance on stroke inpatients’ mobility inrehabilitation clinics: a shadowing study

 
Received 18 May 2021, Accepted 29 Oct 2021, Published online: 03 Dec 2021
ABSTRACT

Stroke inpatients in rehabilitation clinics are highly inactive in their free time and often depend on staff members to transport them to scheduled therapies. This study examines how distances between spaces in rehabilitation clinics impact patients’ mobility. Seventy patients were shadowed over the course of one ordinary day in rehabilitation. Shadowing was accompanied by patient and staff questionnaires. Both patients and staff members described the labyrinthine built environment with long corridors that all look similar. Patients covered substantial daily distances in the clinics, and longer distances were significantly related to encountering more mobility barriers and dependence on staff. Compact layouts with vertically separate wards and main therapy areas resulted in reduced travel distances compared to more complex building layouts. Patients’ mobility abilities were occasionally observed to change on different distances and even throughout the day. As distances result from the building's layout, greater attention needs to be paid to this aspect of the built environment in the early design stages. This is especially the case since other built-environment barriers were found to be intertwined with long distances. All patients may be independently mobile if distances between their most important areas (wards, therapy areas and dining spaces) are carefully planned.

Sunday, September 10, 2017

The arm movement detection (AMD) test: A fast robotic test of proprioceptive acuity in the arm

My proprioception is decreased quite a bit.  Fairly useless, describes a problem but gives no solution. 

The arm movement detection (AMD) test: A fast robotic test of proprioceptive acuity in the arm


Journal of NeuroEngineering and Rehabilitation , Volume 14(64)

NARIC Accession Number: J76537.  What's this?
ISSN: 1743-0003.
Author(s): Mrotek, Leigh A.; Bengston, Maria; Stoeckmann, Tina; Botzer, Lior; Ghez, Claude P.; McGuire, John; Scheidt, Robert A..
Publication Year: 2017.
Number of Pages: 12.
Abstract: Study examined the validity and reliability of a short robotic test of upper-limb proprioception, the Arm Movement Detection (AMD) test, for evaluating the impact of sensory deficits on impairments of motor control, motor adaptation, and functional recovery in stroke survivors. Thirty-nine participants completed the AMD test: 25 neurologically intact control participants (NIC), 7 survivors of stroke with intact proprioception in the more-affected limb (HSS+P), and 7 survivors of stroke with impaired or absent proprioception in the more-affected limb (HSS-P). Subjects grasped the handle of a horizontal planar robot, with their arm and the robot hidden from view. The robot applied graded force perturbations, which produced small displacements of the handle. The AMD test required subjects to respond verbally to queries regarding whether or not they detected arm motions. Each participant completed ten, 60-second trials; in five of the trials, force perturbations were increased in small increments until the participant detected motion while in the others, perturbations were decreased until the participant could no longer detect motion. The mean and standard deviation of the 10 movement detection thresholds were used to compute a Proprioceptive Acuity Score (PAS), which quantifies the likelihood that proprioception is intact. Lower PAS scores correspond to higher proprioceptive acuity. Significant group differences were found, with the NIC and HSS+P groups having lower (i.e., better) PAS scores than the HSS-P group. A subset of the participants completed the AMD test multiple times and the AMD test was found to be reliable across repetitions. The AMD test required less than 15 minutes to complete and provided an objective, ratio-scaled measure of proprioceptive acuity in the upper limb.
Descriptor Terms: BODY MOVEMENT, LIMBS, MOTOR SKILLS, PERCEPTION, ROBOTICS, SENSORY IMPAIRMENTS, STROKE, TESTS.


Can this document be ordered through NARIC's document delivery service*?: Y.
Get this Document: https://jneuroengrehab.biomedcentral.com/articles/10.1186/s12984-017-0269-3.

Citation: Mrotek, Leigh A., Bengston, Maria, Stoeckmann, Tina, Botzer, Lior, Ghez, Claude P., McGuire, John, Scheidt, Robert A.. (2017). The arm movement detection (AMD) test: A fast robotic test of proprioceptive acuity in the arm.  Journal of NeuroEngineering and Rehabilitation , 14(64) Retrieved 9/10/2017, from REHABDATA database.

Saturday, May 6, 2017

Designing Two-player Competitive Games for the Rehabilitation of Upper-Limb Motor Function after Stroke

I think one person games are better, no partner needed, you can go as long as you want. 

Designing Two-player Competitive Games for the Rehabilitation of Upper-Limb Motor Function after Stroke


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Authors: Pan Wang National University of Singapore, Singapore, Singapore
Gerald Choon-Huat Koh National University of Singapore & Saw Swee Hock School of Public Health, Singapore, Singapore
Christian Gilles Boucharenc National University of Singapore, Singapore, Singapore
Ching-Chiuan Yen National University of Singapore, Singapore, Singapore

Designing Two-player Competitive Games for the Rehabilitation of Upper-Limb Motor Function after Stroke Published by ACM 2017 Article



Published in:
Cover Image
· Proceeding
CHI EA '17 Proceedings of the 2017 CHI Conference Extended Abstracts on Human Factors in Computing Systems
Pages 2201-2209

Denver, Colorado, USA — May 06 - 11, 2017
ACM New York, NY, USA ©2017
table of contents ISBN: 978-1-4503-4656-6 doi>10.1145/3027063.3053069

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This paper outlines the design and preliminary user testing of a two-player competitive game system for the training of post-stroke upper limb motor functions. The system consists of two tangible gaming boards (with 64 RGB rotary encoders on each) that support the training of shoulder reaching functions and fine motor skills. Two games were developed and tested on ten stroke survivors. System usability and player motivation were measured by questionnaire. The preliminary results indicated the system is easy to use. Participants perceived a high level of enjoyment with the game. The challenges, design strategies and future directions are also discussed.

Thursday, October 13, 2016

Medical Devices / Diagnostics Rehabilitation / Physical Therapy Stroke "Virtual physiotherapist" helps paralysed patients exercise using computer games

I could have used something like this. I bet if you have a stroke in the next year this device will not be in your stroke hospital. Bet your stroke hospital doesn't even have a person assigned to reading and implementing stroke research.  

Medical Devices / Diagnostics Rehabilitation / Physical Therapy Stroke "Virtual physiotherapist" helps paralysed patients exercise using computer games


A simple device can improve the ability of patients with arm disability to play physiotherapy-like computer games, according to new research.
The low-cost invention, called gripAble™, consists of a lightweight electronic handgrip, which interacts wirelessly with a standard PC tablet to enable the user to play arm-training games. To use it, patients squeeze, turn or lift the handgrip, and it vibrates in response to their performance whilst playing. The device uses a novel mechanism, which can detect the tiny flicker movements of severely paralysed patients and channel them into controlling a computer game.
Special-training computer games, controlled by the device, have been designed for people with no previous experience of using computers. For example one computer game requires the user to squeeze repeatedly to slowly reveal a photograph.
In a new study published in PLOS ONE, researchers from Imperial College London have shown that using the device increased the proportion of paralysed stroke patients able to direct movements on a tablet screen by 50 per cent compared to standard methods. In addition, the device enabled more than half of the severely disabled patients in the study to engage with arm-training software, whereas none of the patients were able to use conventional control methods such as swiping and tapping on tablets and smartphones.
Over five million people in the UK live with arm weakness - approximately one million of them following a stroke, plus others who have neurological and musculoskeletal conditions. Arm weakness contributes to physical disability that requires expensive long-term care. For example, treatment for stroke costs the NHS £9 billion a year, which is five per cent of the total NHS budget. The only intervention shown to improve arm function is repetitive, task-specific exercise but this is limited by the cost and availability of physiotherapists.
The gripAble™ device is designed for patients to use unsupervised in hospital and at home. The research tested the gripAble™ device with stroke patients who had suffered successive strokes with arm paralysis at Imperial College Healthcare NHS Trust over six months. The researchers assessed their ability to use gripAble™ to control mobile gaming devices such as tablets that could be used for rehabilitation and compared this to their use of conventional methods such as swiping and tapping.
They found that 93 per cent of patients were able to make meaningful movements to direct the cursor as a result of using gripAble™. In contrast, 67 per cent of patients were able to use mobile gaming devices by swiping on a tablet. For other types of control over the tablet, such as tapping or using joysticks, the number of patients able to make meaningful movements was lower.
The success of the device was most apparent for patients with severe arm weakness: no patients in this group were able to use conventional controls to play training games, whereas 58% could use gripAble™.
In a smaller sub-group the trial also demonstrated that severely disabled patients could play computer games that involve tracking a target with almost as good accuracy as healthy people.
The clinical trial was carried out at Charing Cross Hospital, part of Imperial College Healthcare Trust, between 2014 and 2015. The team is now carrying out a feasibility study in North West London to test the use of the device in patients' homes.
The potential of gripAble™ as a means of delivering cost-effective physiotherapy was recognised by a NHS England Innovation Challenge Prize in early 2016.
Lead researcher Dr Paul Bentley, who is a Clinical Senior Lecturer at Imperial College London and Honorary Consultant Neurologist at Imperial College Healthcare NHS Trust , said: "In the UK 100,000 new cases of arm weaknesses are diagnosed each year following a stroke. Often this impairs people's ability to carry out daily activities, requiring long-term care. The use of mobile-gaming could provide a cost-effective and easily available means to improve the arm movements of stroke patients but in order to be effective patients of all levels of disability should be able to access it.
"We have developed the gripAble™ device to improve arm and cognitive function of patients who have mild to severe arm weaknesses. Unlike other therapies currently on the NHS, gripAble™ is a low cost device which can be used in hospitals and independently by patients at home. As such it could potentially help save the health service millions of pounds. We now intend to further develop the device so we can help more patients who are currently suffering from the effects of poor arm and upper body mobility."
The researchers collaborated with Human Robotics Group at Imperial College London to develop the device. The research is funded by the Imperial Confidence in Concept Award, the NHS England Innovation Challenge Prize, and the EU 7th Framework Programme for Research and Technological Development grants.
The gripAble™ device is an example of the work of the Imperial Academic Health Science Centre (AHSC). This is a partnership between Imperial College London and three NHS Trusts, which aims to improve patient outcomes by harnessing scientific discoveries and translating them as quickly as possible into new diagnostics, devices and therapies, in the NHS and beyond. The researchers are working with Imperial Innovations, the College's technology transfer partner, to spinout gripAble™ as a digital healthcare start-up to commercialise the device.
Article: Democratizing neurorehabilitation: how accessible are low-cost mobile-gaming technologies for self-rehabilitation of arm disability in stroke? Rinne P, Mace M, Nakornchai T, Zimmerman K, Fayer S, Sharma P, et al., PLoS ONE, doi:10.1371/journal.pone.0163413, published 5 October 2016.