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ARTMED
1999

Two-Stage Machine Learning model for guideline development

13 years 4 months ago
Two-Stage Machine Learning model for guideline development
We present a Two-Stage Machine Learning (ML) model as a data mining method to develop practice guidelines and apply it to the problem of dementia staging. Dementia staging in clinical settings is at present complex and highly subjective because of the ies and the complicated nature of existing guidelines. Our model abstracts the two-stage process used by physicians to arrive at the global Clinical Dementia Rating Scale (CDRS) score. The model incorporates learning intermediate concepts (CDRS category scores) in the first stage that then become the feature space for the second stage (global CDRS score). The sample consisted of 678 patients evaluated in the Alzheimer's Disease Research Center at the University of California, Irvine. The demographic variables, functional and cognitive test results used by physicians for the task of dementia severity staging were used as input to the machine learning algorithms. Decision tree learners and rule inducers (C4.5, Cart, C4.5 rules) were s...
Subramani Mani, William Rodman Shankle, Malcolm B.
Added 22 Dec 2010
Updated 22 Dec 2010
Type Journal
Year 1999
Where ARTMED
Authors Subramani Mani, William Rodman Shankle, Malcolm B. Dick, Michael J. Pazzani
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