StatsForecast is a Python library for time-series forecasting that delivers a suite of classical statistical and econometric forecasting models optimized for high performance and scalability. It is designed not just for academic experiments but for production-level time-series forecasting, meaning it handles forecasting for many series at once, efficiently, reliably, and with minimal overhead. The library implements a broad set of models, including AutoARIMA, ETS, CES, Theta, plus a battery of benchmarking and baseline methods, giving users flexibility in selecting forecasting approaches depending on data characteristics (trend, seasonality, intermittent demand, etc.). Its internal implementation leverages numba to compile performance-critical code to optimized machine-level instructions, which makes the models much faster than many traditional Python counterparts.

Features

  • Collection of widely used univariate time-series forecasting models (AutoARIMA, AutoETS, AutoCES, Theta, etc.)
  • Scikit-learn–style .fit() and .predict() API for ease of use
  • High performance via Numba JIT compilation — significantly faster than many standard Python/R implementations
  • Support for exogenous variables and static covariates in forecasts for richer modeling
  • Probabilistic forecasts with confidence intervals and built-in anomaly detection
  • Scales to large workloads: can forecast thousands or millions of series using distributed backends (Ray, Spark, Dask)

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Categories

Machine Learning

License

Apache License V2.0

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Additional Project Details

Operating Systems

Linux, Mac, Windows

Programming Language

Python

Related Categories

Python Machine Learning Software

Registered

2025-11-26