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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 [...]
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AI transforms clinical research: Enhanced matching

In this complimentary webinar, discover utilizing AI for precise extraction of patient data from structured and unstructured electronic medical records (EMRs). Featured speakers will delve into case studies focusing on accurate identification of patients experiencing chronic obstructive pulmonary disease (COPD) exacerbations and the strategic prioritization of individuals for participation in a heart device clinical trial.

The intersection of artificial intelligence (AI) and electronic medical record (EMR) data has ushered in unprecedented accuracy and speed in patient selection for clinical trials, real-world evidence studies, and clinical treatments. This webinar explores novel approaches employed by life sciences companies, leveraging AI to pinpoint patients with greater precision, prioritize research subjects based on therapy-specific criteria, and collaborate with sites for expedited access to EMR data.

Traditionally, identifying suitable patients for trials or research involves searching EMRs for structured codes or conducting keyword searches. Unfortunately, this method yields imprecise results and demands time-consuming processes, including manual chart reviews and validation. Challenges arise when seeking patients without specific codes or encountering inconsistent documentation (e.g., ‘triple negative breast cancer’ appearing as TNBC, triple negative BC, breast tumor – TN, etc.).

Moreover, life science firms often face a prolonged process, often exceeding a year, to acquire access to electronic medical record (EMR) data for the creation of innovative patient-matching algorithms in their research endeavors. Leveraging AI to extract comprehensive, real-time EMR data—encompassing both structured and unstructured elements like clinician notes, omics, labs, and pathology reports—enables swift and accurate identification of all clinically suitable patients for a given clinical trial or research study.

Join this webinar to explore how AI is utilized to identify patients with chronic obstructive pulmonary disease (COPD) exacerbations in clinical settings. Presenters will also detail their approaches to identifying and prioritizing patients for a heart device clinical trial.

Register now to gain a deeper understanding of the advantages of AI-driven patient matching and the analysis of real-time electronic medical record (EMR) data.