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imbalanced-learn

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ProphitBet is a Machine Learning Soccer Bet prediction application. It analyzes the form of teams, computes match statistics and predicts the outcomes of a match using Advanced Machine Learning (ML) methods. The supported algorithms in this application are Neural Networks, Random Forests & Ensembl Models.

  • Updated Apr 16, 2026
  • Python

Investigates age‑group differences in support for renewable energy transition and builds predictive models to identify key demographic and attitudinal predictors of support for stronger climate commitments for the UNDP Peoples’ Climate Vote 2024 dataset.

  • Updated May 18, 2026
  • Jupyter Notebook

A machine learning web app that predicts whether a telecom customer will churn or not. It uses a Random Forest model trained on the IBM Telco dataset, handles class imbalance with SMOTE, and is deployed as an interactive Streamlit app where users input customer details and get a simple Yes / No prediction.

  • Updated Apr 19, 2026
  • Jupyter Notebook

Onco-Logic is a comprehensive, multi-modal decision support ecosystem designed to transform cancer care by unifying fragmented patient data. The suite leverages advanced AI and machine learning to provide clinicians and researchers with a holistic understanding of each patient's disease, enabling a new frontier in precision oncology.

  • Updated Oct 19, 2025
  • Python

Data visualization of the NYC restaurant data, and data analysis to gauge if a restaurant located in a high-income area receives a higher health inspection grade. Uses Python (Pandas, Scikit-learn, Imbalanced-learn), PostgreSQL, SQLAlchemy, Tableau, JavaScript (Plotly.js library), HTML, CSS, and Bootstrap.

  • Updated Oct 19, 2022
  • JavaScript

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