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How to Establish Clinical Prediction Models

Authors
 Yong-ho Lee  ;  Heejung Bang  ;  Dae Jung Kim 
Citation
 Endocrinology and Metabolism (대한내분비학회지), Vol.31(1) : 38-44, 2016 
Journal Title
Endocrinology and Metabolism(대한내분비학회지)
ISSN
 2093-596X 
Issue Date
2016
Keywords
Clinical prediction model ; Clinical usefulness ; Development ; Validation
Abstract
A clinical prediction model can be applied to several challenging clinical scenarios: screening high-risk individuals for asymptomatic disease, predicting future events such as disease or death, and assisting medical decision-making and health education. Despite the impact of clinical prediction models on practice, prediction modeling is a complex process requiring careful statistical analyses and sound clinical judgement. Although there is no definite consensus on the best methodology for model development and validation, a few recommendations and checklists have been proposed. In this review, we summarize five steps for developing and validating a clinical prediction model: preparation for establishing clinical prediction models; dataset selection; handling variables; model generation; and model evaluation and validation. We also review several studies that detail methods for developing clinical prediction models with comparable examples from real practice. After model development and vigorous validation in relevant settings, possibly with evaluation of utility/usability and fine-tuning, good models can be ready for the use in practice. We anticipate that this framework will revitalize the use of predictive or prognostic research in endocrinology, leading to active applications in real clinical practice.
Files in This Item:
T201601128.pdf Download
DOI
10.3803/EnM.2016.31.1.38
Appears in Collections:
1. College of Medicine (의과대학) > Dept. of Internal Medicine (내과학교실) > 1. Journal Papers
Yonsei Authors
Lee, Yong Ho(이용호) ORCID logo https://orcid.org/0000-0002-6219-4942
URI
https://ir.ymlib.yonsei.ac.kr/handle/22282913/146706
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