Literature DB >> 24551361

Patient clustering with uncoded text in electronic medical records.

Ricardo Henao1, Jared Murray1, Geoffrey Ginsburg1, Lawrence Carin1, Joseph E Lucas2.   

Abstract

We propose a mixture model for text data designed to capture underlying structure in the history of present illness section of electronic medical records data. Additionally, we propose a method to induce bias that leads to more homogeneous sets of diagnoses for patients in each cluster. We apply our model to a collection of electronic records from an emergency department and compare our results to three other relevant models in order to assess performance. Results using standard metrics demonstrate that patient clusters from our model are more homogeneous when compared to others, and qualitative analyses suggest that our approach leads to interpretable patient sub-populations when applied to real data. Finally, we demonstrate an example of our patient clustering model to identify adverse drug events.

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Year:  2013        PMID: 24551361      PMCID: PMC3900202     

Source DB:  PubMed          Journal:  AMIA Annu Symp Proc        ISSN: 1559-4076


  14 in total

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Journal:  Proc AMIA Symp       Date:  2000

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Authors:  A R Aronson
Journal:  Proc AMIA Symp       Date:  2001

Review 3.  Detecting adverse events using information technology.

Authors:  David W Bates; R Scott Evans; Harvey Murff; Peter D Stetson; Lisa Pizziferri; George Hripcsak
Journal:  J Am Med Inform Assoc       Date:  2003 Mar-Apr       Impact factor: 4.497

Review 4.  Outbreak detection through automated surveillance: a review of the determinants of detection.

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5.  Comparing ICD9-encoded diagnoses and NLP-processed discharge summaries for clinical trials pre-screening: a case study.

Authors:  Li Li; Herbert S Chase; Chintan O Patel; Carol Friedman; Chunhua Weng
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6.  Use abstracted patient-specific features to assist an information-theoretic measurement to assess similarity between medical cases.

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7.  Antiandrogens in the treatment of priapism.

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8.  Detection of pharmacovigilance-related adverse events using electronic health records and automated methods.

Authors:  K Haerian; D Varn; S Vaidya; L Ena; H S Chase; C Friedman
Journal:  Clin Pharmacol Ther       Date:  2012-06-20       Impact factor: 6.875

9.  Analysis of costs, length of stay, and utilization of emergency department services by frequent users: implications for health policy.

Authors:  Jennifer Prah Ruger; Christopher J Richter; Edward L Spitznagel; Lawrence M Lewis
Journal:  Acad Emerg Med       Date:  2004-12       Impact factor: 3.451

10.  Inter-patient distance metrics using SNOMED CT defining relationships.

Authors:  Genevieve B Melton; Simon Parsons; Frances P Morrison; Adam S Rothschild; Marianthi Markatou; George Hripcsak
Journal:  J Biomed Inform       Date:  2006-02-24       Impact factor: 6.317

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  4 in total

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Journal:  Diabetes Care       Date:  2022-01-01       Impact factor: 19.112

2.  Leveraging Food and Drug Administration Adverse Event Reports for the Automated Monitoring of Electronic Health Records in a Pediatric Hospital.

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3.  Patterns of Patients' Interactions With a Health Care Organization and Their Impacts on Health Quality Measurements: Protocol for a Retrospective Cohort Study.

Authors:  Arriel Benis; Nissim Harel; Refael Barak Barkan; Einav Srulovici; Calanit Key
Journal:  JMIR Res Protoc       Date:  2018-11-07

4.  Communication Behavior Changes Between Patients With Diabetes and Healthcare Providers Over 9 Years: Retrospective Cohort Study.

Authors:  Arriel Benis; Refael Barak Barkan; Tomer Sela; Nissim Harel
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  4 in total

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