Advances in Machine Learning Models for Healthcare Applications: A Precise and Patient-Centric Approach
Bhumika Parashar1, Sathvik Belagodu Sridhar2, Kalpana3
1Department of Pharmacy, School of Medical and Allied Sciences, Galgotias University, Greater Noida, U.P., India.
Background:
Healthcare is rapidly leveraging machine learning to enhance patient care, streamline operations, and address complex medical issues. Though ethical issues, model efficiency, and algorithmic bias exist, the COVID-19 pandemic highlighted its usefulness in disease outbreak prediction and treatment optimization.
Aim:
This article aims to discuss machine learning applications, benefits, and the ethical and practical challenges in healthcare.
Discussion:
Machine learning assists in diagnosis, patient monitoring, and epidemic prediction but faces challenges like algorithmic bias and data quality. Overcoming these requires high-quality data, impartial algorithms, and model monitoring.
Conclusion:
Machine learning might revolutionize healthcare by making it more efficient and better for patients. Full acceptance and the advancement of technologies to improve health outcomes on a global scale depend on resolving ethical, practical, and technological concerns.
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