A Machine Learning Approach to Classifying Self-Reported Health Status in a Cohort of Patients With Heart Disease Using Activity Tracker Data.
Journal
IEEE journal of biomedical and health informatics
ISSN: 2168-2208
Titre abrégé: IEEE J Biomed Health Inform
Pays: United States
ID NLM: 101604520
Informations de publication
Date de publication:
03 2020
03 2020
Historique:
pubmed:
15
6
2019
medline:
2
3
2021
entrez:
15
6
2019
Statut:
ppublish
Résumé
Constructing statistical models using personal sensor data could allow for tracking health status over time, thereby enabling the possibility of early intervention. The goal of this study was to use machine learning algorithms to classify patient-reported outcomes (PROs) using activity tracker data in a cohort of patients with stable ischemic heart disease (SIHD). A population of 182 patients with SIHD were monitored over a period of 12 weeks. Each subject received a Fitbit Charge 2 device to record daily activity data, and each subject completed eight Patient-Reported Outcomes Measurement Information Systems short form at the end of each week as a self-assessment of their health status. Two models were built to classify PRO scores using activity tracker data. The first model treated each week independently, whereas the second used a hidden Markov model (HMM) to take advantage of correlations between successive weeks. Retrospective analysis compared the classification accuracy of the two models and the importance of each feature. In the independent model, a random forest classifier achieved a mean area under curve (AUC) of 0.76 for classifying the physical function PRO. The HMM model achieved significantly better AUCs for all PROs (p < 0.05) other than Fatigue and Sleep Disturbance, with a highest mean AUC of 0.79 for the physical function-short form 10a. Our study demonstrates the ability of activity tracker data to classify health status over time. These results suggest that patient outcomes can be monitored in real time using activity trackers.
Identifiants
pubmed: 31199276
doi: 10.1109/JBHI.2019.2922178
pmc: PMC6904535
mid: NIHMS1042730
doi:
Types de publication
Journal Article
Research Support, N.I.H., Extramural
Research Support, Non-U.S. Gov't
Langues
eng
Sous-ensembles de citation
IM
Pagination
878-884Subventions
Organisme : NCRR NIH HHS
ID : UL1 RR033176
Pays : United States
Organisme : NHLBI NIH HHS
ID : R56 HL135425
Pays : United States
Organisme : NCATS NIH HHS
ID : UL1 TR000124
Pays : United States
Organisme : NHLBI NIH HHS
ID : K23 HL127262
Pays : United States
Organisme : NHLBI NIH HHS
ID : R01 HL141773
Pays : United States
Organisme : NCATS NIH HHS
ID : UL1 TR001881
Pays : United States
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