Use the labels in the right column to find what you want. Or you can go thru them one by one, there are only 33,991 posts. Searching is done in the search box in upper left corner. I blog on anything to do with stroke. DO NOT DO ANYTHING SUGGESTED HERE AS I AM NOT MEDICALLY TRAINED, YOUR DOCTOR IS, LISTEN TO THEM. BUT I BET THEY DON'T KNOW HOW TO GET YOU 100% RECOVERED. I DON'T EITHER BUT HAVE PLENTY OF QUESTIONS FOR YOUR DOCTOR TO ANSWER.
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.
Saturday, May 23, 2026
Intensive Individualized Recovery in Chronic Post-stroke Disability: Functional Outcomes, Fatigue Modulation, and Implications for Extended Neuroplasticity
Sunday, May 17, 2026
Intrinsic Capacity, Resilience, Frailty in Stroke Recovery
Recovery would be much more assured if you had 100% recovery protocols! You're totally overthinking this. That motivation would solve most of your described problems. My conclusion is you don't understand ONE GODDAMN THING ABOUT SURVIVOR MOTIVATION/DEMORALIZATION, DO YOU? You create EXACT 100% recovery protocols, and your survivor will be motivated to do the millions of reps needed because they are looking forward to 100% recovery. GET THERE!
Intrinsic Capacity, Resilience, Frailty in Stroke Recovery
In a groundbreaking new study set to transform our understanding of aging and neurological recovery, researchers have unveiled intricate connections between intrinsic capacity, physical resilience, and frailty among older adults navigating the aftermath of a stroke. This unprecedented exploration, published in BMC Geriatrics, unveils complex bidirectional relationships, challenging conventional notions and opening new vistas in geriatric medicine and rehabilitation science.
Stroke remains a leading cause of long-term disability among the elderly, often propelling patients into a spiral of declining health and functional independence. Against this backdrop, the concept of intrinsic capacity—the composite of an individual’s physical and mental capacities—emerges as a vital determinant of recovery trajectories. The newly published cross-lagged panel study meticulously dissects how intrinsic capacity interplays with physical resilience, the ability to recover or maintain function amid stressors, and frailty, a syndrome characterized by decreased physiological reserves, vulnerability to adverse outcomes, and increased risk of mortality. What sets this investigation apart is its longitudinal design capturing dynamic interactions over time rather than static snapshots. Whereas prior research predominantly examined correlations at isolated points, the cross-lagged modeling approach quantifies reciprocal influences across successive time intervals, revealing causation directionality that has eluded scientific discourse thus far. This methodology offers unparalleled granularity in deciphering the causative web linking intrinsic capacity and resilience to frailty progression in stroke recovery.
The researchers enrolled a robust cohort of elderly stroke survivors, systematically assessing key functional domains including muscle strength, cognitive aptitude, mobility, and emotional well-being. Measurements extended beyond conventional clinical markers to encompass psychological and social facets, reflecting a holistic approach aligned with World Health Organization frameworks. Results demonstrated that intrinsic capacity substantially predicts future physical resilience levels, which in turn inversely impacts the evolution of frailty states. Intriguingly, diminished physical resilience also feeds back to accelerate declines in intrinsic capacity, creating a self-perpetuating cycle that jeopardizes recovery potential.
Beyond establishing these relationships, the study elucidates mechanistic insights underpinning these associations. Intrinsic capacity appears to modulate neuroplasticity—the brain’s adaptive rewiring post-injury—where enhanced capacity supports faster and more effective restoration of motor and cognitive functions. Concurrently, physical resilience functions as a buffer mitigating physiological stressors such as inflammation and oxidative damage, which are known contributors to frailty exacerbation. The identification of these pathways offers promising targets for therapeutic interventions, potentially delaying or reversing frailty progression.
The implications for clinical practice are profound. Current rehabilitation paradigms often emphasize physical therapy intensity or pharmacological management individually. This study advocates for integrated strategies targeting intrinsic capacity enhancement—through cognitive training, nutritional support, and psychosocial engagement—coupled with resilience-building modalities to disrupt frailty’s advancement. Early identification of patients at risk could enable personalized rehabilitation plans that dynamically adapt as their capacities and resilience fluctuate.
Moreover, the study’s findings resonate beyond stroke recovery, illuminating universal principles relevant to aging populations confronting diverse chronic illnesses. As global demographics skew older, frailty presents escalating challenges for healthcare systems worldwide. Understanding the bidirectional interplay between intrinsic capacity and resilience not only refines prognostication but also sparks a paradigm shift in preventive geriatrics, emphasizing maintenance and restoration of overall functional capacity rather than merely managing isolated symptoms.
This research heralds a new era where aging is not viewed as an inexorable decline but as a malleable trajectory influenced by modifiable factors. Harnessing insights from intrinsic capacity and resilience dynamics could redefine healthy aging metrics, shifting focus towards sustaining holistic vigor and autonomy. Society stands to reap immense economic and quality-of-life benefits by reducing hospitalizations, institutionalizations, and dependency caregiving burdens linked to frailty.
The authors also highlight exciting avenues for future research. Integrating biomarkers such as inflammatory cytokines and neuroimaging data could deepen mechanistic understanding, while expanding cohorts to diverse ethnic and socioeconomic groups enhances generalizability. Development of digital health tools enabling continuous remote monitoring of intrinsic capacity and resilience represents another frontier, facilitating timely clinical interventions.
In summary, this comprehensive cross-lagged panel study fundamentally advances geriatric neuroscience by exposing the dynamic and reciprocal influences between intrinsic capacity, physical resilience, and frailty during stroke recovery. Its robust methodological rigor and multidimensional perspective render it a landmark contribution propelling personalized, capacity-focused rehabilitation approaches. As clinical and public health stakeholders embrace these insights, the possibility of transforming stroke recovery—and aging itself—into journeys marked by hope and renewed functional potential becomes tangible.
The translation of this knowledge into actionable strategies promises not only to extend lifespan but critically to enhance healthspan—the period of life spent in robust health. By unraveling the complex symbiosis of bodily and cognitive reserves that define human resilience, this study offers a compelling blueprint for advancing both science and care paradigms dedicated to the world’s rapidly aging populations.
Wednesday, May 13, 2026
Factors associated with exercise adherence among stroke survivors: a cross-sectional study using the COM-B model
It's fuckingly simple, with NO EXACT 100% RECOVERY PROTOCOLS there really is NO incentive to follow whatever shitworthy guidelines are given!
You're that fucking clueless that you UNDERSTAND NOTHING ABOUT SURVIVOR MOTIVATION! My god, I'd have you all fired for stupidity!
My conclusion is you don't understand ONE GODDAMN THING ABOUT SURVIVOR MOTIVATION/DEMORALIZATION, DO YOU? You create EXACT 100% recovery protocols, and your survivor will be motivated to do the millions of reps needed because they are looking forward to 100% recovery. I'd fire all of you for absurd incompetence! GET THERE!
Factors associated with exercise adherence among stroke survivors: a cross-sectional study using the COM-B model
Scientific Reports (2026) Cite this article
We are providing an unedited version of this manuscript to give early access to its findings. Before final publication, the manuscript will undergo further editing. Please note there may be errors present which affect the content, and all legal disclaimers apply.Abstract
Exercise adherence plays a critical role in lowering physical disability and mortality rates among stroke survivors. Previous research indicates that exercise adherence among stroke survivors is generally low, influenced by various factors, the mechanisms of which remain not yet fully understood(Then you don't have enough functioning brain cells to even be working in stroke!). This study aimed to explore the factors affecting exercise adherence in stroke survivors using the Capability, Opportunity, Motivation, and Behavior (COM-B) model in a cross-sectional study. Using convenience sampling, 359 participants were recruited from a tertiary hospital, and they filled out the demographic questionnaire, the Connor-Davidson Resilience Scale, and the Social Support Rating Scale, Stroke Rehabilitation Motivation Scale, and Stroke Functional Exercise Adherence Questionnaire Scale. Structural equation modeling (SEM) was used for data analysis. The average scores for psychological resilience, social support, rehabilitation motivation and exercise adherence were 67.86 ± 16.26, 36.60 ± 6.17, 107.70 ± 15.18, and 41.76 ± 6.13, respectively. The SEM showed a satisfactory fit (χ2/df = 2.097 < 3, RMSEA = 0.055, SRMR = 0.0376, CFI = 0.979, TLI = 0.974, IFI = 0.980, GFI = 0.933, AGFI = 0.902, and NFI = 0.951). Direct path analyses revealed that psychological resilience (β = 0.174, p < 0.01), social support (β = 0.184, p < 0.01), and rehabilitation motivation (β = 0.517, p < 0.001) significantly affected exercise adherence. Furthermore, both psychological resilience (β = 0.142, p < 0.001) and social support (β = 0.218, p < 0.001) exerted indirect effects on exercise adherence through their impact on rehabilitation motivation. Enhancing exercise adherence among stroke survivors requires attention to psychological resilience, social support, and particularly, rehabilitation motivation. The mediating influence of rehabilitation motivation in linking psychological resilience and social support to adherence is especially noteworthy. Interventions targeting these factors may effectively improve exercise adherence and optimize post-stroke recovery outcomes.(You really are that fucking dumb!)
Sunday, May 10, 2026
Leveraging Social Interaction: Stroke Rehabilitation Using Extended Reality
Why won't your competent? doctor do rehabilitation the correct way? 100% recovery protocols! That would get the survivor back to all former social connections.
You're that fucking clueless that you UNDERSTAND NOTHING ABOUT SURVIVOR MOTIVATION! My god, I'd have you all fired for stupidity!
My conclusion is you don't understand ONE GODDAMN THING ABOUT SURVIVOR MOTIVATION/DEMORALIZATION, DO YOU? You create EXACT 100% recovery protocols, and your survivor will be motivated to do the millions of reps needed because they are looking forward to 100% recovery. I'd fire all of you for absurd incompetence! GET THERE!
Leveraging Social Interaction: Stroke Rehabilitation Using Extended Reality
Abstract
Stroke survivors are often left with physical and cognitive limitations. Effective rehabilitation is essential to promote functional recovery and improve quality of life. However, existing approaches are limited by their repetitive/monotonous nature, which can lead to decreased motivation, emotional disengagement, and depression, as well as a lack of personalization and little to no social interaction. A five-month longitudinal study conducted at a rehabilitation center, employing a virtual reality supermarket, led to the creation of a research line focused on social interaction. Building on this, a broader extended reality rehabilitation framework was introduced, aimed at fostering motivation through multiuser experiences. We report initial results on healthcare professionals' and stroke survivors' acceptance, and explore the impact of collaborative versus competitive dynamics. Finally, we discuss the promising role of augmented reality for daily living environments.
Saturday, May 9, 2026
Brain Switch for Action and Stress Identified
When your competent? doctor figures this out, you can say goodbye to stress and your lack of motivation to do the stupid guidelines(NOT PROTOCOLS!) you're given for recovery. Would this also solve the post stroke fatigue problem?
Brain Switch for Action and Stress Identified
Summary: The “switch” that shifts the body from rest to action has long been a mystery, but researchers may have found the dial.
In a new study, researchers identified a critical mechanism involving the anterior cingulate cortex (ACC) that regulates autonomic arousal, the involuntary physiological response to stress, movement, and threats. By mastering this “dial,” researchers believe they can unlock new ways to treat conditions ranging from Parkinson’s disease to alcohol use disorder.
Key Research Findings
- The “Gain Control” Mechanism: The research team discovered that a specific brain region controls the “gain” or intensity of autonomic responses, such as heart rate and pupil diameter.
- A Two-Region Partnership: The study examined the interaction between the locus coeruleus (a brainstem nucleus that triggers arousal via norepinephrine) and the anterior cingulate cortex (a frontal region responsible for cognitive control).
- Regulating the Intensity: While the locus coeruleus triggers the arousal, the ACC acts as the regulator. When ACC activity was suppressed in mouse models, arousal was muted; when it was accelerated, pupil dilation increased dramatically and triggered movement.
- Methodology: Researchers used fiber optics and light-sensitive proteins (optogenetics) to turn brain activity on and off in real-time while monitoring physiological changes with machine-vision software.
- Clinical Implications:
- Parkinson’s: Dysfunction in this “intention-to-movement” connection could explain the inability to initiate movement, a core symptom of the disease.
- Alcohol Use Disorder: Since high stress and sympathetic tone drive cravings, tuning the ACC “dial” could potentially reduce dependence or curb cravings.
Source: Rutgers University
When danger lurks, instinct keeps us safe. It compels us to run from a burning building or wrestle a knife-wielding attacker to the ground. It also adjusts our body physiology to support these behaviors.
Survival helps explain why. But the mechanisms that link the brain and the body – the “switch” between rest and action – have long been shrouded in mystery.A research team at Rutgers University-New Brunswick thinks they may have identified a key mechanism, and the findings may hold important clues to how diverse neurological conditions, such as alcohol use disorder and Parkinson’s, could be diagnosed and treated.
In a paper published in the journal Science Advances, Rafiq Huda, an assistant professor in the Department of Cell Biology and Neuroscience within the Rutgers School of Arts and Sciences, together with lead author Nithik Chintalacheruvu, an undergraduate in the lab at the time of the research, report on a series of mouse studies that modeled the human brain’s response to autonomic arousal – the sympathetic nervous system’s involuntary response to neutral, stressful, threatening or emotional stimuli.
“What we’ve discovered is the region in the brain that can control the gain of these autonomic responses for movement and environmental stimuli,” Huda said. “It acts as a dial to mediate how strongly our heart rate and other measures of sympathetic tone, like the pupil diameter, respond in these situations.”
Cardiovascular and metabolic demands at rest are vastly different than during action. To assess the mechanisms that trigger and regulate autonomic responses, Huda and his team looked at how two brain regions – the locus coeruleus, a brainstem nucleus that releases the neurotransmitter norepinephrine, and the anterior cingulate cortex, a frontal brain region responsible for cognitive control – respond during movement and sensory stimulation.
Previous studies have identified the locus coeruleus as a trigger for autonomic arousal. Less clear is the role of the anterior cingulate cortex in this process.
Huda and his team speculated the anterior cingulate cortex might control the intensity of autonomic responses. For instance, if our heart races or palms start to sweat when we hear a sudden noise, perhaps the anterior cingulate cortex is the reason.
Testing the theory required a multistep experiment. First, Huda and colleagues injected the mice with a virus. Then, they implanted tiny fiber optics into the animals’ brains. In some experiments, when the fiber optics were activated, they delivered pulses of light to a target protein that could turn brain activity on or off in real time. In others, the fiber optics allowed recording of brain activity associated with autonomic changes.Next, the researchers set up a video camera with custom machine vision software to record changes in the mouse’s pupils as a measure of sympathetic tone. As with humans, minute changes in pupil size occur in mice before a movement happens, and they continue to dilate as the activity intensifies.
With the camera trained on the eyes, the researchers then switched on their fiber optics and waited.
What they found was strong evidence that these two brain areas work together to trigger and regulate an arousal event, Huda said. When activity in the anterior cingulate cortex was turned off, the arousal event was suppressed. When activity in this region accelerated, pupil dilation “dramatically increased,” Huda said. Mice were even triggered to start moving.
Connecting the results to movement and stress-induced behavioral conditions will take more research, Huda said, but the evidence points in this direction.
Consider Parkinson’s disease.
“One of the major symptoms of the disease is an inability to start moving,” Huda said. “If there is a dysfunction in processes that connect your intention to move to preparing your body to enact those movements, it might help explain the disease’s most debilitating symptoms.”
Future research will test whether changes in autonomic regulation by the anterior cingulate cortex could be what drives the mobility challenges in Parkinson’s.
The findings also could have implications for alcohol use disorder, Huda said, something he and his team are exploring with a National Institutes of Health grant. Because alcohol use is often linked to stress and a high baseline sympathetic tone, Huda is looking to see if the response dial – the anterior cingulate cortex – could be tuned to control cravings or reduce dependence.These are early days for this research, but the implications for modulating negative physiological responses to external stressors are profound, said Huda.
“We believe our findings will be transformative, not only for researchers working on arousal and the prefrontal cortex but broadly for scientists interested in cortical information processing and cortical-subcortical interactions in both health and disease,” he said.
Key Questions Answered:
A: Exactly. Your brain prepares your physiology (pupil dilation, heart rate) for the metabolic demands of action before you move. This study suggests the ACC is the reason that response can feel like a “mild hum” or a “full-blown panic”.
A: In Parkinson’s, patients often struggle to start moving. If the ACC “dial” isn’t properly connecting the intention to move with the body’s physiological preparation, it creates a bottleneck. Future research will test if “tuning” this area can restore mobility.
A: While we need stress for survival, this research targets the maladaptive responses. For conditions like alcohol use disorder, where a high baseline of stress triggers cravings, modulating the ACC could help patients regain control over their physiological triggers.
Editorial Notes:
- This article was edited by a Neuroscience News editor.
- Journal paper reviewed in full.
- Additional context added by our staff.About this neuroscience research news
Author: Megan Schumann
Source: Rutgers University
Contact: Megan Schumann – Rutgers University
Image: The image is credited to Neuroscience News
Original Research: Open access.
“The anterior cingulate cortex modulates pupil-linked arousal” by Nithik Chintalacheruvu, Anagha Kalelkar, Hector Alatriste-León, Joël Boutin, Vincent Breton-Provencher, and Rafiq Huda. Science Advances
DOI:10.1126/sciadv.adv5652
Monday, May 4, 2026
Prevalence of anxiety and depression in young stroke patients, and associated factors: a meta-analysis
You're that fucking clueless that you UNDERSTAND NOTHING ABOUT SURVIVOR MOTIVATION! My god, I'd have you all fired for stupidity!
My conclusion is you don't understand ONE GODDAMN THING ABOUT SURVIVOR MOTIVATION/DEMORALIZATION, DO YOU? You create EXACT 100% recovery protocols, and your survivor will be motivated to do the millions of reps needed because they are looking forward to 100% recovery. I'd fire all of you for absurd incompetence! GET THERE!
Here's my email: oc1dean@gmail.com Tell me EXACTLY where I'm wrong! Difficulty in getting to those protocols will not be tolerated as an excuse. You've known of this problem of 100% recovery since your education, so you've had years if not decades to work on it! Comeuppance is going to be a bitch when you are the 1 in 4 per WHO that has a stroke? Then you just might want 100% recovery. Or you can be like me where half my life will be disabled!
Prevalence of anxiety and depression in young stroke patients, and associated factors: a meta-analysis
Yuxue Tong
Songmei Cao *
Jingjing Wang
Yuan Qin
- J
Jingxi Lin
- Z
Zhen Fang
Jing Qiu
Department of Nursing, Affiliated Hospital of Jiangsu University, Zhenjiang, Jiangsu, China
Abstract
Objective:
To systematically evaluate the prevalence of anxiety and depression among young stroke patients and their associated factors using a meta-analysis.
Methods:
In this review, young stroke was defined as stroke occurring in individuals aged 15–60 years. A comprehensive literature search was conducted in the China National Knowledge Infrastructure (CNKI), Wanfang Data, China Biomedical Literature Database, PubMed, Embase, Web of Science, the Cochrane Library, and Wiley for studies reporting the prevalence of anxiety and depression as well as their associated factors in young stroke patients. The search period spanned from database inception to September 2025. Meta-analysis was performed using RevMan 5.4, and publication bias analyses were conducted in Stata 17.0.
Results:
Twenty-six studies involving 5,634 patients were included, with 555 cases of anxiety and 1,334 cases of depression. Meta-analysis revealed that the prevalence rates of anxiety and depression among young stroke patients were 35% [95% CI (29–41%)] and 35% [95% CI (29–41%)], respectively. Subgroup analyses revealed the following: by publication year, 32% anxiety and 33% depression among young stroke patients from 2005 to 2018; 43% anxiety and 32% depression from January 2019 to September 2025. By country, the prevalence rates of anxiety and depression among young stroke patients in China were 35 and 34%, respectively, while those in other countries were 36 and 30%. By first-ever stroke, the prevalence rates among first-ever stroke patients were 32 and 31%, respectively, while those for non-first-ever patients were 37 and 34%. By gender, the prevalence rates of anxiety and depression among male patients were 32 and 36%, respectively, while those among female patients were 43 and 37%, respectively. Alcohol consumption and prior depressive symptoms showed relatively stable associations with anxiety in young stroke patients. Gender reached statistical significance in the primary analysis, but this finding was not robust in sensitivity analysis. National Institutes of Health Stroke Scale (NIHSS) score [OR = 3.22, 95% CI (2.04, 5.08)], alcohol consumption [OR = 3.15, 95% CI (1.85, 5.36)], lesion location [OR = 4.8, 95% CI (2.55, 9.06)], Herth Hope Index (HHI) score [OR = 1.96, 95% CI (1.42, 2.71)], Stroke-related shame (SSS) score [OR = 2.04, 95% CI (1.47, 2.81)], hypertension [OR = 1.64, 95% CI (1.31, 2.04)], diabetes [OR = 2.15, 95% CI (1.6, 2.88)], hyperlipidemia [OR = 1.53, 95% CI (1.2, 1.96)], monthly household income [OR = 1.93, 95% CI (1.18, 3.15)], lesion area [OR = 3.25, 95% CI (1.8, 5.87)], multiple lesions [OR = 2.31, 95% CI (1.51, 3.55)], and length of hospitalization [OR = 1.62, 95% CI (1.16, 2.27)] were identified as factors influencing depression in young stroke patients (p < 0.05).
Conclusion:
In conclusion, this review indicates that anxiety and depression are both common among young stroke patients and deserve greater attention in routine stroke care. Alcohol consumption appears to be a common factor associated with both anxiety and depression, while prior depressive symptoms may also be associated with anxiety. For depression, neurological severity, lesion-related characteristics, vascular comorbidities, and psychosocial factors were identified as potential associated factors. However, some findings, particularly those related to gender and several other exploratory variables, were not stable in sensitivity analyses and should therefore be interpreted with caution. More standardized, prospective, and longitudinal studies are needed to further clarify the mental health burden and associated factors in young stroke patients and to support earlier and more targeted psychological assessment and intervention in this population.
Systematic review registration:
https://www.crd.york.ac.uk/PROSPERO, identifier, CRD420251181939.
Sunday, April 19, 2026
Latent profile analysis and associated factors of rehabilitation motivation in stroke patients.
You're that fucking clueless that you UNDERSTAND NOTHING ABOUT SURVIVOR MOTIVATION! My god, I'd have you all fired for stupidity!
My conclusion is you don't understand ONE GODDAMN THING ABOUT SURVIVOR MOTIVATION/DEMORALIZATION, DO YOU? You create EXACT 100% recovery protocols, and your survivor will be motivated to do the millions of reps needed because they are looking forward to 100% recovery. I'd fire all of you for absurd incompetence! GET THERE!
Here's my email: oc1dean@gmail.com Tell me EXACTLY where I'm wrong! Difficulty in getting to those protocols will not be tolerated as an excuse. You've known of this problem of 100% recovery since your education, so you've had years if not decades to work on it! Comeuppance is going to be a bitch when you are the 1 in 4 per WHO that has a stroke? Then you just might want 100% recovery. Or you can be like me where half my life will be disabled!
Latent profile analysis and associated factors of rehabilitation motivation in stroke patients.
Database: APA PsycArticles First Posting
Citation
Abstract
Purpose/Objective: Rehabilitation motivation is a critical determinant of recovery outcomes in stroke patients, yet its underlying profiles and associated factors remain insufficiently explored. This study aimed to delineate distinct latent profiles of rehabilitation motivation and examine their demographic and clinical correlates. Research Methods/Design: A total of 429 stroke patients were recruited from three tertiary hospitals in Qingdao, Shandong Province, China, between January and April 2022 using convenience sampling. Participants completed the General Information Questionnaire, Stroke Rehabilitation Motivation Scale, and Stroke Knowledge and Attitude Questionnaire. Latent profile analysis was conducted using the seven dimensions of Stroke Rehabilitation Motivation Scale to identify motivational subgroups, and their predictors were analyzed via multinomial logistic regression. Results: Four unique motivation profiles were identified: Low group (7.7%), low introjected group (30.8%), balanced motivation group (28.6%), and high regulation group (32.9%). Significant differences (p < .05) were observed among groups in gender, age, employment status, education level, medical insurance, income, stroke frequency, primary caregiver, dizziness/headache symptoms, disease guidance, self-care ability, and Stroke Knowledge and Attitude Questionnaire scores. Conclusion/Implications: This study revealed four distinct rehabilitation motivation profiles and their predictors in stroke patients. These findings provide a foundation for clinicians to accurately identify patient subgroups and implement tailored interventions, ultimately optimizing rehabilitation motivation and improving recovery outcomes. (PsycInfo Database Record (c) 2026 APA, all rights reserved)
Impact Statement
This study identified four distinct motivation patterns among stroke patients during rehabilitation. Understanding these motivational differences could help health care professionals recognize which patients are at risk of low engagement and design personalized strategies to enhance rehabilitation motivation. By tailoring interventions to each patient’s motivational profile, clinicians can promote active participation in recovery and improve overall rehabilitation outcomes. (PsycInfo Database Record (c) 2026 APA, all rights reserved)
Copyright
- Holder: American Psychological Association
- Year: 2026