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Predicting the onset of Alzheimer's disease and related dementia using Electronic Health Records: Findings from the Cache County Study on Memory in Aging (1995-2008).
Schliep, Karen C; Thornhill, Jeffrey; Tschanz, JoAnn; Facelli, Julio C; Østbye, Truls; Sorweid, Michelle K; Smith, Ken R; Varner, Michael; Boyce, Richard D; Brown, Christine J Cliatt; Meeks, Huong; Abdelrahman, Samir.
Afiliação
  • Schliep KC; University of Utah Health.
  • Thornhill J; University of Utah Health.
  • Tschanz J; Utah State University.
  • Facelli JC; University of Utah Health.
  • Østbye T; Duke University.
  • Sorweid MK; University of Utah Health.
  • Smith KR; University of Utah.
  • Varner M; University of Utah.
  • Boyce RD; University of Pittsburgh.
  • Brown CJC; University of Utah.
  • Meeks H; University of Utah.
  • Abdelrahman S; University of Utah Health.
Res Sq ; 2024 Jun 07.
Article em En | MEDLINE | ID: mdl-38883755
ABSTRACT

Introduction:

Clinical notes, biomarkers, and neuroimaging have been proven valuable in dementia prediction models. Whether commonly available structured clinical data can predict dementia is an emerging area of research. We aimed to predict Alzheimer's disease (AD) and Alzheimer's disease related dementias (ADRD) in a well-phenotyped, population-based cohort using a machine learning approach.

Methods:

Administrative healthcare data (k=163 diagnostic features), in addition to Census/vital record sociodemographic data (k = 6 features), were linked to the Cache County Study (CCS, 1995-2008).

Results:

Among successfully linked UPDB-CCS participants (n=4206), 522 (12.4%) had incident AD/ADRD as per the CCS "gold standard" assessments. Random Forest models, with a 1-year prediction window, achieved the best performance with an Area Under the Curve (AUC) of 0.67. Accuracy declined for dementia subtypes AD/ADRD (AUC = 0.65); ADRD (AUC = 0.49).

DISCUSSION:

Commonly available structured clinical data (without labs, notes, or prescription information) demonstrate modest ability to predict AD/ADRD, corroborated by prior research.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article