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kundajelab avatar

kundajelab/deeplift

0
View on GitHub↗
875 stars·168 forks·Python·MIT·8 views

Deeplift

DeepLIFT: Deep Learning Important FeaTures

Features

  • Explainable AI Libraries - Backpropagation-based method for feature importance in neural networks.
  • Model Interpretability - Propagating activation differences for feature importance.

Star history

Star history chart for kundajelab/deepliftStar history chart for kundajelab/deeplift

How this analysis was created: This summary and feature list were written by an AI model that read the project's README and public documentation pages. Each feature links to the documentation it came from; stars, license and language come straight from the GitHub API. The model does not read the source code, and the analysis is refreshed when the project is re-analysed. Learn more on our About page.

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Open-source alternatives to Deeplift

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Frequently asked questions

What does kundajelab/deeplift do?

DeepLIFT: Deep Learning Important FeaTures

What are the main features of kundajelab/deeplift?

The main features of kundajelab/deeplift are: Explainable AI Libraries, Model Interpretability.

What are some open-source alternatives to kundajelab/deeplift?

Open-source alternatives to kundajelab/deeplift include: austinrochford/pycebox — ⬛ Python Individual Conditional Expectation Plot Toolbox. aerdem4/lofo-importance — Leave One Feature Out Importance. albermax/innvestigate — A toolbox to iNNvestigate neural networks' predictions! andosa/treeinterpreter — TreeInterpreter. ankurtaly/integrated-gradients — (a.k.a. Path-Integrated Gradients, a.k.a. Axiomatic Attribution for Deep Networks). csinva/imodels — Interpretable ML package 🔍 for concise, transparent, and accurate predictive modeling (sklearn-compatible).