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The Use of Artificial Intelligence to Predict the Prognosis of Patients Undergoing Central Nervous System Rehabilitation: A Narrative Review

Min Cheol Chang, Jeoung Kun Kim, Donghwi Park, Jang Hwan Kim, Chung Reen Kim, Yoo Jin Choo

2023Healthcare18 citationsDOIOpen Access PDF

Abstract

Applications of machine learning in the healthcare field have become increasingly diverse. In this review, we investigated the integration of artificial intelligence (AI) in predicting the prognosis of patients with central nervous system disorders such as stroke, traumatic brain injury, and spinal cord injury. AI algorithms have shown promise in prognostic assessment, but challenges remain in achieving a higher prediction accuracy for practical clinical use. We suggest that accumulating more diverse data, including medical imaging and collaborative efforts among hospitals, can enhance the predictive capabilities of AI. As healthcare professionals become more familiar with AI, its role in central nervous system rehabilitation is expected to advance significantly, revolutionizing patient care.

Topics & Concepts

RehabilitationNarrative reviewMedicineSpinal cord injuryCentral nervous systemHealth careNeurological rehabilitationHealthcare systemTraumatic brain injuryPhysical medicine and rehabilitationArtificial intelligenceIntensive care medicineComputer sciencePhysical therapySpinal cordInternal medicinePsychiatryEconomicsEconomic growthMedical Imaging and AnalysisAcute Ischemic Stroke ManagementArtificial Intelligence in Healthcare and Education
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