Enhancing Healthcare Transparency: Leveraging Machine Learning, GIS Mapping and Power BI for Private Hospital Insurance Claims Analysis
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This project focuses on developing a machine learning-driven system to classify hospital claims and treatment outcomes, offering a second opinion on healthcare costs and decision-making for insurance claims and treatment efficacy.Key Features and Tools:<b>Machine Learning Algorithms:</b> Leveraging <b>Python (pandas, numpy, scikit-learn)</b> for predictive modeling to assess claim validity and treatment outcomes.<b>APIs Integration:</b> Used <b>Google Maps API</b> to retrieve and map the <b>locations of private hospitals</b> in Malaysia.<b>GIS Mapping Dashboard:</b> Created a <b>GIS-enabled dashboard</b> in <b>Microsoft Power BI</b> to visualize private hospital distribution across Malaysia, aiding healthcare planning and analysis.<b>Advanced Analytics Tools:</b> Integrated <b>Microsoft Excel, Python</b>, and <b>Google Collab</b> for data processing and automation workflows.



