Condition: Brain Injuries · Sponsor: Istituto per la Ricerca e l'Innovazione Biomedica
Acquired brain injury (ABI) is the leading cause of death and disability worldwide. The degree of severity varies according to a combination of numerous demographics, etiological, clinical, cognitive, behavioral, psychosocial and environmental factors, which can interfere with the effectiveness of rehabilitation interventions and, therefore, with the final outcome. The most important goal of the modern clinic is to predict in time the progression of possible recovery after the brain injury event in order to provide more effective treatment, but the high heterogeneity and clinical variability and the unpredictability of the onset of comorbidities makes this a hard target to reach. In recent years, artificial intelligence algorithms have been applied to more precisely define the role of critical variables that can help clinical practice to predict the final outcome. The classical approach of these algorithms provides only probabilistic values on the final outcome, without considering the typology of clinical interventions and overall complications that may appear throughout the hospitalization period. The objective of this multicentric study is to define a new statistical approach that can describe the dynamics of individual clinical changes occuring during the inpatient intensive rehabilitation care period. The proposed approach combines a principal component analysis (PCA) for dimension reduction (capturing the maximum amount of information and reducing the dimensionality …
This description comes directly from the study's public registry record.
Antonio Cerasa · +393339633511 · antonio.cerasa@irib.cnr.it
Maria Valeria Maiorana · mariavaleria.maiorana@irib.cnr.it
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| Institute for Biomedical Research and Innovation (IRIB) - National Research Council (CNR) | Messina, Italy | Recruiting |
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Source record: clinicaltrials.gov/study/NCT06162091