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Bruker Corporation to Present at the 37th Annual J.P. Morgan Healthcare Conference
Bruker Corporation (NASDAQ: BRKR) announced today it will participate in the 37th annual J.P. Morgan Healthcare Conference in San Francisco. Frank Laukien, Chairman, President & CEO and Gerald Herman, CFO [...]
Allergan to Present at the 37th Annual J.P. Morgan Healthcare Conference
2019-01-07    
3:30 pm
Allergan plc (NYSE: AGN), a leading global biopharmaceutical company, today announced that Chairman and CEO Brent Saunders will present at the 37th Annual J.P. Morgan Healthcare Conference in San Francisco, [...]
Johnson & Johnson to Participate in 37th Annual JP Morgan Health Care Conference
2019-01-07    
3:30 pm
Johnson & Johnson (NYSE: JNJ) will participate in the 37th Annual JP Morgan Health Care Conference on Monday, Jan. 7th, at the Westin St. Francis in San Francisco.  Joseph J. [...]
Halozyme Therapeutics To Present At The 37th Annual J.P. Morgan Healthcare Conference
2019-01-09    
10:30 am
Halozyme Therapeutics, Inc. (NASDAQ: HALO), a biotechnology company developing novel oncology and drug-delivery therapies, will be presenting at the 37th Annual J.P. Morgan Healthcare Conference in San [...]
International Conference on Chemistry, Chemical Engineering and Chemical Process
2019-01-30 - 2019-01-31    
All Day
It is a great pleasure and an honor to extend to you a warm invitation to attend the "International Conference on Chemistry, Chemical Engineering and [...]
Streamline HCP Workflow • Drive Patient Education • Navigate the Specialty Prescribing Landscape
2019-02-01    
12:00 am
The original and most comprehensive conference series dedicated entirely to strategies for effective utilization of e-Rx and EHR technologies is back for 2019. Whether new [...]
Articles

Dec 10: Study Identifies & Tracks Multiple Sclerosis With EHR Data, Algorithms

regenstrief institute and indiana university

Using natural language processing technology in electronic health record systems has helped identify patients with multiple sclerosis and collect information on disease traits, according to a study by researchers at Vanderbilt University Medical Center, Health Data Management reports.

Details of the Study

The study — published in the Journal of the American Medical Informatics Association — identified 5,789 patients with MS by using information from their EHRs to create an algorithm. The algorithm included data from:

  • ICD-9 codes;
  • Medications; and
  • Text keywords.

Researchers also collected data on the clinical course of disease progression.

According to the study’s authors, “This is one of the first studies to focus on specific traits of a disease by text mining of the [EHR].”

The study found that for all clinical traits examined:

  • Precision was 87%; and
  • Specificity was greater than 80% (Goedert, Health Data Management, 12/7).

Reaction

The researchers wrote , “This dataset provides a rich resource for better understanding MS and also shows that extraction of detailed disease states and markers of prognosis in patients with chronic disease is possible and may yield a powerful tool in chronic disease research.”

They added, “This information is extractable from clinic notes by simple algorithms, with high specificity, precision, and recall”

source