InfoBERT: Improving Robustness of Language Models from An Information Theoretic Perspective

Overview

InfoBERT: Improving Robustness of Language Models from An Information Theoretic Perspective

This is the official code base for our ICLR 2021 paper:

"InfoBERT: Improving Robustness of Language Models from An Information Theoretic Perspective".

Boxin Wang, Shuohang Wang, Yu Cheng, Zhe Gan, Ruoxi Jia, Bo Li, Jingjing Liu

Usage

Prepare your environment

Download required packages

pip install -r requirements.txt

ANLI and TextFooler

To run ANLI and TextFooler experiments, refer to README in the ANLI directory.

SQuAD

We will upload the code for the SQuAD experiments soon.

Citation

@inproceedings{
wang2021infobert,
title={InfoBERT: Improving Robustness of Language Models from An Information Theoretic Perspective},
author={Wang, Boxin and Wang, Shuohang and Cheng, Yu and Gan, Zhe and Jia, Ruoxi and Li, Bo and Liu, Jingjing},
booktitle={International Conference on Learning Representations},
year={2021}}
Owner
AI Secure
UIUC Secure Learning Lab
AI Secure
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