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Time Series Prophet

Time Series Analysis & Forecasting of Rossmann Sales with Python. EDA, TSA and seasonal decomposition, Forecasting with Prophet and XGboost modeling for regression.

Install / Use

npx skills add elena-roff/time-series-prophet

Installs into whichever agent you are using.

About this skill

Quality Score

0/100

Category

Sales

Supported Platforms

Universal

README

rossmann_TSA_forecasts

This project is built using the data from Rossmann competition hosted at Kaggle and then published for comfortable reading as the Jupyter notebook.

To check out the project open an .ipynb file.

Time Series Analysis & Forecasting

  • Exploratory Data Analysis with Python (ECDF, missing values, Correlation analysis ...)
  • Time Series Analysis per store type (Seasonal decomposition, Autocorrelation)
  • Forecasting with Prophet
  • Predictive modeling with XGboost

Libraries used: numpy, pandas, matplotlib, seaborn, statsmodel, fbprophet (Facebook), xgboost, sklearn.

Thank you for reading!

Related Skills

View on GitHub
GitHub Stars200
CategorySales
Updated18d ago
Forks71

Languages

Jupyter Notebook

Security Score

80/100

Audited on Jul 20, 2026

No findings