International Journal For Multidisciplinary Research
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Volume 6 Issue 6
November-December 2024
Indexing Partners
Health Insurance Cost Prediction Using Regression Machine Learning Models
Author(s) | Dr. Manjunatha S, Dr. Bharani S, Prof. Vijayalakshmi R Y, Dr. Preethi S |
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Country | India |
Abstract | India's government spends 1.5 percent of its annual GDP on public healthcare, which is significantly less than that of other countries. Global public health spending, on the other hand, has almost doubled in line with inflation in the last two decades, reaching US$ 8.5 trillion in 2019, or 9.8% of global GDP. Multinational multi-private sectors provide around 60% of comprehensive medical treatments and 70% of out-patient care, which charge patients astronomically high fees. Because of the rising expense of quality healthcare, increased life expectancy, and the epidemiological shift toward non-communicable diseases, health insurance is becoming an essential commodity for everyone. Insurance data has increased dramatically in the last decade, and carriers now have access to it. The health insurance system explores predictive modeling to boost its business operations and services. Computer algorithms and Machine Learning (ML) is used to study and analyze the past insurance data and predict new output values based on trends in customer behavior, insurance policies, and data-driven business decisions, and support in formulating new schemes. |
Keywords | Machine Learning, Regression Models, Linear Regression, Support Vector Regression, Random Forest Regression and Gradient Boosting Regression. |
Field | Engineering |
Published In | Volume 5, Issue 4, July-August 2023 |
Published On | 2023-08-29 |
Cite This | Health Insurance Cost Prediction Using Regression Machine Learning Models - Dr. Manjunatha S, Dr. Bharani S, Prof. Vijayalakshmi R Y, Dr. Preethi S - IJFMR Volume 5, Issue 4, July-August 2023. DOI 10.36948/ijfmr.2023.v05i04.17139 |
DOI | https://doi.org/10.36948/ijfmr.2023.v05i04.17139 |
Short DOI | https://doi.org/gtq3bt |
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