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model-tuning

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The Disease Prediction Project uses AI/ML to predict diseases based on selected symptoms, designed for low-resource communities. It delivers fast, accurate predictions using a MLP model, offering tailored, efficient diagnostics for areas with limited healthcare access.

  • Updated Sep 23, 2024
  • Jupyter Notebook

Deep learning framework for multi-horizon financial time series forecasting using RNN, GRU, and LSTM. Incorporates hyperparameter optimization, visualization, and multivariate sequence prediction across Open, High, Low, Close, and Volume indicators.

  • Updated Jun 19, 2025
  • Jupyter Notebook

🫀 Heart Disease Risk Prediction This project focuses on predicting the risk of heart disease using machine learning techniques. It includes thorough Exploratory Data Analysis (EDA), dimensionality reduction using Principal Component Analysis (PCA), model training, evaluation, and visualization of the results

  • Updated Oct 22, 2025
  • Jupyter Notebook

✨ Stock Price Prediction Using Tesla Dataset ✨ In this project, I analyzed Tesla’s historical stock data to forecast future closing prices using machine learning models like Random Forest Regressor. Through data cleaning, feature engineering, and rich visual analytics, I explored patterns in price trends, volatility, and trading volume.

  • Updated Nov 6, 2025
  • Python

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