Generating adversarial examples for NLP models. TextAttack is a Python framework for adversarial attacks, data augmentation, and model training in NLP.

Features

  • Understand NLP models better by running different adversarial attacks on them and examining the output
  • Research and develop different NLP adversarial attacks using the TextAttack framework and library of components
  • Augment your dataset to increase model generalization and robustness downstream
  • Train NLP models using just a single command (all downloads included!)
  • Documentation available
  • You should be running Python 3.6+ to use this package
  • Pre-trained Models for testing attacks and evaluating constraints
  • Visualization options like Weights & Biases and Visdom
  • AttackedText, a utility class for strings that includes tools for tokenizing and editing text

Project Samples

Project Activity

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Categories

Machine Learning

License

MIT License

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Additional Project Details

Operating Systems

Linux, Mac, Windows

Programming Language

Python

Related Categories

Python Machine Learning Software

Registered

2024-08-06