This research assesses data provenance in widely used health datasets, revealing flaws that could undermine clinical prediction models and patient care.
Some AI models designed to predict stroke and diabetes risk may be based on datasets whose origins cannot be verified, ...
The study published in the journal BMC Medicine was led by researchers at the Queensland University of Technology and the ...
AI tools are proliferating across pulmonary medicine and critical care, with promising early results in diagnostics and ...
Recent technological advances have opened valuable possibilities for supporting people with motor impairments or who are ...
In a suburb of east London, an illegal tip has been catching alight for years. Although residents and experts suspect it is ...
23 天on MSN
Researcher at LSU Health Shreveport awarded grant to predict and prevent heat illness in ...
A researcher at LSU Health Shreveport has been awarded a grant of just over $200,000 to study how to predict and prevent heat illness in student-athletes.
Timely and accurate prediction of poststroke motor outcome is important for efficient rehabilitation planning and resource allocation. Existing bedside models for predicting upper-limb outcome after ...
A 4-metabolite stroke score independently predicted incident ischemic stroke and improved risk prediction beyond traditional risk factors, suggesting potential utility for earlier identification of ...
ACUTE ischemic stroke outcome prediction may be improved by a reasoning enhanced large language model that can extract prognostic value from routine clinical notes, according to findings presented at ...
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