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Influenciæ: A Library for Tracing the Influence Back to the Data-Points

  • Agustin Picard,
  • Lucas Hervier,
  • Thomas Fel,
  • David Vigouroux

摘要

In today’s AI-driven world, understanding model behavior is becoming more important than ever. While libraries abound for doing so via traditional XAI methods, the domain of influence-based techniques for data-centric explanations remains mostly underserved. To fill this void, we introduce Influenciæ (Available at: https://github.com/deel-ai/influenciae ), an open-source library that implements the state-of-the-art methods for estimating the influence of training points on the model, with a focus on efficiency and scalability to fit the needs and the recent trends in the field. Finally, we have thoroughly documented and included plenty of tutorials to make the library reachable to the public, in the hopes that it will bring these methods back into the spotlight.