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Key Applications of Predictive Analytics in Healthcare
Predictive analytics is a subset of advanced analytics that forecasts future events based on available data. These forecasts can then be used to make essential decisions
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CIO Applications | Wednesday, February 09, 2022

Predictive analytics can be used to determine the correct condition of the patients based on the predicted progression of their disease
Fremont, CA: Predictive analytics is a subset of advanced analytics that forecasts future events based on available data. These forecasts can then be used to make essential decisions, identify conditions early on, and avoid complications.
Predictive analytics can be used to determine the correct condition based on the predicted progression of their disease. Listed below are key applications of predictive analytics in healthcare industry.
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Prognosis: Predictive analytics, based on current and historical data, can help predict how the condition will progress and respond to specific treatments.
Designing a treatment plan – based on the diagnosis and prognosis, predictive analytics can assist in determining the best course of action for the most effective patient treatment.
Clinical decision support: A clinical decision support system based on predictive analytics will assist physicians in acting at precisely the right time to capitalize on the opportunity to help the patient.
Remote Monitoring: Predictive analysis can be performed remotely with the right equipment.
Reducing Adverse Events: Using predictive analytics in healthcare can help detect the potential for adverse events, such as chronic disease exacerbation, medication side effect manifestation, and others, early on, allowing them to be avoided.
Improving Care Quality: Using predictive analytics increases the efficiency and accuracy of care provided, superior to alternatives.
Reducing Healthcare Costs: Predictive analytics can better manage hospital resources, lowering certain expenses associated with an unexpected crisis.
Fraud Detection: Healthcare fraud is a common problem that costs billions of dollars each year. Specific abnormalities can be identified using predictive analytics and trained machine learning models.
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