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2014 National Health Leadership Conference
2014-06-02    
All Day
WELCOME! This conference is the largest national gathering of health system decision-makers in Canada including trustees, chief executive officers, directors, managers, department heads and other [...]
EMR : Every Step Conference and Vendor Showcase
2014-06-12    
8:00 am - 6:00 pm
OntarioMD is pleased to invite you to join us for the EMR: Every Step Conference and Vendor Showcase, an interactive day to learn and participate in [...]
GOVERNMENT HEALTH IT Conference & Exhibition
Why Attend? As budgets tighten, workforces shrink, ICD-10 looms, more consumers enter the healthcare system and you still struggle with meaningful use — challenges remain [...]
MD Logic EHR User Conference 2014
2014-06-20    
All Day
Who Should Attend: Doctors, PA’s, NP’s, PT’s, Administrators,Managers, Clinical Staff, IT Staff What is the Focus of the Conference: Meaningful Use Stage II, ICD-10 and [...]
Events on 2014-06-02
Events on 2014-06-12
Events on 2014-06-17
Events on 2014-06-20
Articles

AI’s involvement in next-generation diagnosis: anticipating and averting cardiac disease

A new age in cardiovascular care is being heralded by the implications of this new frontier for early prediction, prevention, and tailored treatment plans.

The investigation into the effects of AI on the diagnosis and prevention of heart disease is not just a story of technological achievement but also an example of cross-disciplinary cooperation. Experts in AI, data science, and cardiology are collaborating to fully realize the promise of deep learning networks and machine learning techniques. Massive datasets, including genetic data, electronic health records, lifestyle habits, and environmental factors, can be analyzed by these AI systems, which can reveal patterns and risk factors that are invisible to the human eye.

Predictive analytics represents one of the most innovative uses of AI in this field. Artificial intelligence (AI) programs can detect people who are at a high risk of heart disease years before the disease’s symptoms appear by sorting through layers of patient data. For example, researchers have created an algorithm that is more accurate than traditional risk assessment tools at predicting the chance of a heart attack or stroke. Because of this predictive ability, medical professionals can take proactive steps to stop heart disease before it starts, such changing a patient’s lifestyle or prescribing medication.