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IBM Data Analysis with R

  • Project OverviewThis data science project developed a bike-sharing demand prediction system that combines weather forecasting with machine learning to estimate bicycle rental demand across major global cities. The system helps optimize bike-sharing operations by predicting demand based on weather conditions.

  • Key Components

    • Weather data integration using OpenWeather API for 5-day forecasts
    • Machine learning model trained on Seoul bike-sharing historical data
    • Interactive R Shiny dashboard with real-time predictions for 5 major cities
    • Visualization of weather impacts on predicted demand

An R Shiny-based dashboard is designed to display the Temperature Forecast, Predicted Bike Demand Forecast for the next 5 days, and a correlation plot between Humidity and Bike Demand.

Shiny App

You can access the Shiny app for the final project here.

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