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Pollution Control & Sustainable 2021
2021-04-26 - 2021-04-27    
All Day
Pollution Control 2021 conference is organizing with the theme of “Accelerating Innovations for Environmental Sustainability” Conference Series llc LTD organizes environmental conferences series 1000+ Global [...]
Food and Beverages
2021-05-05 - 2021-05-06    
All Day
Conference Series LLC Ltd Organizes 3000+Global Events inclusive of 600+ Conferences, 1200+ Workshops and 1200+ Symposiums every year across USA, Europe & Asia with support [...]
Dental Public Health and Dental Diseases
2021-05-08 - 2021-05-09    
All Day
Conference series LLC would like to take the immense pleasure to announce the “ International Conference on Dental Public Health and Dental Diseases” (Dental Public [...]
10 May
2021-05-10 - 2021-05-11    
All Day
Are you planning to start a new business?? Don't have any background?? Want some useful tips from the successful Entrepreneurs then come and participate in [...]
Climate Change and Ecosystem 2021
2021-05-17 - 2021-05-18    
All Day
Conference Series LLC Ltd in conjunction with its institutional partners and whereas Advisory board members are delighted to invite you all to the World Congress [...]
Machine Learning and Deep learning 2021
2021-05-24 - 2021-05-25    
All Day
Looking for a moment to learn something new and need a short break for professional life. Both are possible by attending the Machine Learning 2021 [...]
Artificial Intelligence and Neural Networks
2021-05-24 - 2021-05-25    
All Day
The year 2020 hasn’t turned out the way people expected, we all aware of Covid-19 pandemic. As countries around the world started to open its [...]
Asia Pacific Entrepreneurship Congress
2021-05-26 - 2021-05-27    
All Day
We welcome all the Business Tycoons, Women Entrepreneurs, and enthusiastic youth, Academic Entrepreneurs, Small-scale Industrial People to come and participate in our conference and take [...]
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Articles

EHR analytics can identify diabetes earlier and in real time

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  • EHR algorithms scanning patient records for signs of diabetes can identify sufferers more than 90% of the time, and predict the exact date of a diagnosis for the disease in 78.4% of cases, according to research published in BioMedCentral.   Using only data typically entered into an EHR, the algorithm can prevent a delayed diagnosis in 11% of patient cases, allowing physicians to prescribe treatment earlier than ever before.
Diabetes is seen as a prime example of how data analytics can improve care and reduce the costs associated with poorly controlled chronic diseases.  With the disease affecting 25.8 million people, and costing $174 billion annually, diabetes is an effective test case for the principles of the patient-centered medical home (PCMH), accountable care organizations (ACOs), and the power of predictive EHR analytics.  There is often a significant delay in the diagnosis and treatment of the condition, the researchers from the University of California San Francisco say, with a median delay between onset and treatment of 2.4 years, and 7% of cases going completely undiagnosed for a whopping seven years.
“Achieving early glycemic control in patients with newly diagnosed diabetes reduces the risk of  microvascular complications, myocardial infarction, and all-cause mortality,” the study states.  “The distinct advantage of our automated, real-time algorithm is the timely recognition of diabetes. Relying on only two ICD-9 encounter codes to establish the diagnosis date, a quarter of the cases in our cohort would have been missed.”
The researchers were able to look at how individual components of EHR data work together to build a picture of a diabetes patient, with the aim of helping health systems build diabetes prediction software in the future.  Such software could help providers seeking financial incentives for quality accountable care to achieve their goals while getting patients the treatment they need as soon as possible.
“Healthcare systems may additionally apply this algorithm to provide feedback to providers on the quality of their care, generate letters to patients, identify underperforming clinics for quality improvement initiatives, link clinical decision support tools to inform decision making at the point-of-care, and risk stratify diabetic patients to direct limited resources to patients at greatest risk for developing complications.” Source