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Machine Learning to Predict, Detect, and Intervene Older Adults Vulnerable for Adverse Drug Events in the Emergency Department
by
Ouchi, Kei
, Lindvall, Charlotta
, Boyer, Edward W
, Chai, Peter R
in
Adults
/ Algorithms
/ Artificial intelligence
/ Electronic health records
/ Electronic medical records
/ Emergency medical services
/ Learning algorithms
/ Machine learning
/ Older people
2018
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Machine Learning to Predict, Detect, and Intervene Older Adults Vulnerable for Adverse Drug Events in the Emergency Department
by
Ouchi, Kei
, Lindvall, Charlotta
, Boyer, Edward W
, Chai, Peter R
in
Adults
/ Algorithms
/ Artificial intelligence
/ Electronic health records
/ Electronic medical records
/ Emergency medical services
/ Learning algorithms
/ Machine learning
/ Older people
2018
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Do you wish to request the book?
Machine Learning to Predict, Detect, and Intervene Older Adults Vulnerable for Adverse Drug Events in the Emergency Department
by
Ouchi, Kei
, Lindvall, Charlotta
, Boyer, Edward W
, Chai, Peter R
in
Adults
/ Algorithms
/ Artificial intelligence
/ Electronic health records
/ Electronic medical records
/ Emergency medical services
/ Learning algorithms
/ Machine learning
/ Older people
2018
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Machine Learning to Predict, Detect, and Intervene Older Adults Vulnerable for Adverse Drug Events in the Emergency Department
Journal Article
Machine Learning to Predict, Detect, and Intervene Older Adults Vulnerable for Adverse Drug Events in the Emergency Department
2018
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Overview
Adverse drug events (ADEs) are common and have serious consequences in older adults. ED visits are opportunities to identify and alter the course of such vulnerable patients. Current practice, however, is limited by inaccurate reporting of medication list, time-consuming medication reconciliation, and poor ADE assessment. This manuscript describes a novel approach to predict, detect, and intervene vulnerable older adults at risk of ADE using machine learning. Toxicologists’ expertise in ADE is essential to creating the machine learning algorithm. Leveraging the existing electronic health records to better capture older adults at risk of ADE in the ED may improve their care.
Publisher
Springer Nature B.V
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