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On-premise users: click in-app to access the full platform documentation for your version of DataRobot.

Experimentation capabilities (video)

Watch a rapid tour of a variety of use cases that demonstrate:

  • Five major data types—numerics, categorical, text, geospatial, and images.
  • Nine major problem types—classification, regression, clustering, multilabel, anomaly detection, forecasting, time series clustering, time series anomaly detection, and generative AI.
  • More than 40 modeling techniques that are specific to each problem type.

Each quick experiment demo was built with DataRobot's automation and results in a fully deployable machine learning pipeline.


Summary of support

This video discusses the AI Experimentation capabilities in DataRobot. Specifically, what data types can be used, what problem types can be solved, what modeling techniques can be applied, and what external tools and technologies can be incorporated into your solution design.



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Updated February 23, 2024